Aerosol delivery device improved in connectivity, airflow and aerosol paths
The aerosol delivery device addresses connectivity and airflow issues by integrating a control device with a removable cartridge and optimized airflow and aerosol paths, enhancing user experience and vapor generation efficiency.
Patent Information
- Application Number
- JP2025129185
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2019-10-10
- Filing Date
- 2025-08-01
- Publication Date
- 2025-10-15
AI Technical Summary
Existing aerosol delivery devices lack improved connectivity, airflow, and aerosol path designs, which affect the user experience and efficiency of vapor generation.
The aerosol delivery device incorporates a control device with a housing, a removable cartridge, and specific airflow and aerosol path configurations, including a heating assembly, inlet airflow channels, and aerosol paths defined by gaps and flow tubes, enhancing connectivity and airflow dynamics.
The improved design provides enhanced user experience by mimicking traditional smoking sensations and efficient vapor generation, while allowing interchangeable cartridges and improved airflow and aerosol delivery.
Smart Images

Figure 2025157590000001_ABST
Abstract
Description
[Technical Field]
[0001] This application claims priority to and the benefit of U.S. patent application Ser. No. 16 / 598,496, filed October 10, 2019, entitled "Aerosol Delivery Device with Improved Connectivity, Airflow, and Aerosol Paths," and U.S. patent application Ser. No. 16 / 598,575, filed October 10, 2019, entitled "Aerosol Delivery Device with Improved Connectivity, Airflow, and Aerosol Paths," and U.S. provisional patent application Ser. No. 62 / 744,978, filed October 12, 2018, entitled "Aerosol Forming Device," and U.S. provisional patent application Ser. No. 62 / 911,519, filed October 7, 2019, entitled "Aerosol Delivery Device with Improved Connectivity, Airflow, and Aerosol Paths," each of which is incorporated herein by reference in its entirety.
[0002] The present disclosure relates to aerosol delivery devices such as smoking articles, and more particularly to aerosol delivery devices (e.g., smoking articles commonly referred to as e-cigarettes) that can utilize electrically generated heat for the generation of an aerosol. The smoking article can be configured to heat an aerosol precursor, which can be made from or incorporate tobacco-derived materials or can incorporate tobacco, and the precursor can form an inhalable substance for human consumption. [Background technology]
[0003] Many smoking devices have been proposed over the years as an improvement or replacement for smoking products that require the burning of tobacco for use. Many of these devices are intentionally designed to provide the sensation associated with cigarette, cigar, or pipe smoking, but without delivering significant amounts of incomplete combustion and pyrolysis products resulting from the burning of tobacco. For this purpose, many smoking products, flavor generators, and medicinal inhalers have been proposed that utilize electrical energy to vaporize or heat volatile substances, or to provide the sensation of cigarette, cigar, or pipe smoking without significantly burning tobacco. For example, see the various alternative smoking articles, aerosol delivery devices, and heat sources described in the background art of U.S. Patent No. 7,726,320 to Robinson et al., U.S. Patent Application Publication No. 2013 / 0255702 to Griffith Jr. et al., and U.S. Patent Application Publication No. 2014 / 0096781 to Sears et al., all of which are incorporated herein by reference in their entireties. See also, for example, the various types of smoking articles, aerosol delivery devices, and electrically powered heat sources referenced by trade name and commercial source in U.S. Patent Application No. 14 / 170,838, filed February 3, 2014, by Bless et al., which is incorporated herein by reference in its entirety. It would be desirable to provide an aerosol delivery device with advantageous utility characteristics. [Prior art documents] [Patent documents]
[0004] [Patent Document 1] U.S. Patent No. 7,726,320 [Patent Document 2] US Patent Application Publication No. 2013 / 0255702 [Patent Document 3] US Patent Application Publication No. 2014 / 0096781 [Patent Document 4] U.S. Patent Application No. 14 / 170,838 Summary of the Invention [Problem to be solved by the invention]
[0005] The present disclosure relates to aerosol delivery devices, methods of forming such devices, and elements of such devices. The present disclosure particularly relates to aerosol delivery devices and cartridges for use in aerosol delivery devices. In this regard, various embodiments of the present disclosure provide aerosol delivery devices and / or cartridges with advantageous utility features. The present disclosure includes, but is not limited to, the following exemplary implementations: [Means for solving the problem]
[0006] Exemplary Implementation 1: An aerosol delivery device comprising: a control device including an outer housing defining an outer wall and having a proximal end and a distal end, the proximal end of the control device defining a receiving chamber, the control device further including a power source and control components; and a cartridge including a mouthpiece, a reservoir, a heating assembly, and a bottom cap, the mouthpiece having a proximal end and a distal end, the proximal end of the mouthpiece having an exit portal defined therethrough, the reservoir defining a proximal end and a distal end and configured to contain a liquid composition, the mouthpiece configured to engage with the proximal end of the reservoir, and the bottom cap configured to engage with the distal end of the reservoir, wherein the cartridge is configured to be removably coupled to the receiving chamber of the control device, the heating assembly defines a vaporization chamber and is configured to heat the liquid composition to generate an aerosol, an inlet airflow is defined by a gap between the cartridge and the control device, an aerosol path is defined through the reservoir and the exit portal of the mouthpiece, the gap beginning at an interface between the outer circumferential surface of the mouthpiece and the control device.
[0007] Exemplary Implementation 2: The aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the interface is positioned proximate the outer circumferential surface of the mouthpiece and the upper edge of the outer wall of the housing.
[0008] Exemplary Implementation 3: The aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the inlet airflow enters the cartridge through a single inlet channel located approximately in the center of the bottom surface of the bottom cap.
[0009] Exemplary Implementation 4: The aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the inlet channel disposed in the bottom cap has a nozzle-like shape.
[0010] Exemplary Implementation 5: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the gap between the cartridge and the control device is established by a plurality of protrusions disposed on the control device.
[0011] Exemplary Implementation 6: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the plurality of protrusions comprises a plurality of raised elongated bosses disposed on the upper frame of the control device.
[0012] Exemplary Implementation 7: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein a gap between the cartridge and the control device is established between the outer housing and upper frame of the control device and the mouthpiece, reservoir, and bottom cap of the cartridge.
[0013] Exemplary Implementation 8: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein a gap between the cartridge and the control device is further established between a concave surface of the upper frame of the control device and a bottom surface of the bottom cap of the cartridge.
[0014] Exemplary Implementation 9: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the heating assembly comprises a flat heating element and a liquid transport element, and the flat heating element and the liquid transport element are installed in a curved orientation.
[0015] Exemplary Implementation 10: The aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the cartridge further defines a vaporization chamber defined by a bottom cap and a heating assembly.
[0016] Exemplary Implementation 11: The aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the aerosol path begins in a vaporization chamber.
[0017] Exemplary Implementation 12: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the inlet air entering the vaporization chamber impinges on the heating element substantially vertically and expands substantially horizontally.
[0018] Exemplary Implementation 13: The aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the tank further defines a reservoir cavity configured to hold a liquid composition.
[0019] Exemplary Implementation 14: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the aerosol path is defined by a pair of flow tubes disposed within the tank, at least a portion of the flow tubes being disposed on opposite sides of the reservoir cavity.
[0020] Exemplary Implementation 15: The aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the reservoir cavity defines a closed proximal end and an open distal end.
[0021] Exemplary Implementation 16: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the open distal end of the reservoir cavity of the cartridge is at least partially sealed by a separate base member.
[0022] Exemplary Implementation 17: The aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the base member includes a plurality of slots configured to provide a liquid flow path.
[0023] Exemplary Implementation 18: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the aerosol path is further defined via an upper aerosol channel insert disposed between the reservoir and the outlet portal of the mouthpiece.
[0024] Exemplary Implementation 19: The aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the bottom cap of the cartridge includes a pair of inserts that include a ferromagnetic metallic material.
[0025] Exemplary Implementation 20: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the upper frame of the control device includes a pair of magnets configured to substantially align with a pair of metal inserts of the cartridge.
[0026] Exemplary Implementation 21: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the control device includes a pressure sensor, and the cartridge and control device include a pressure path configured to signal a negative pressure to the pressure sensor.
[0027] Exemplary Implementation 22: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the pressure path is defined at least in part by an offset pressure channel defined in the bottom cap of the cartridge.
[0028] Exemplary Implementation 23: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the pressure path is defined at least in part by a corresponding channel in the upper frame seal of the control device.
[0029] Exemplary Implementation 24: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the upper frame seal includes a pair of channels configured such that a pressure path is established in either of two rotational directions of the cartridge.
[0030] Exemplary Implementation 25: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the upper edge of the outer wall of the housing defines an opening of a size larger than the outer peripheral surface of the mouthpiece such that the maximum perimeter of the cartridge is completely received within the receiving chamber.
[0031] Exemplary Implementation 26: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein, when coupled to the control device, a portion of the mouthpiece extends below the upper edge of the outer wall of the housing into the containment chamber.
[0032] Exemplary implementation 27: A cartridge for use with an aerosol delivery device, the cartridge comprising: a mouthpiece having a proximal end and a distal end, the proximal end having an exit portal defined therethrough; a tank having a proximal end and a distal end and configured to contain a liquid composition therein; a heating assembly defining an evaporation chamber configured to heat the liquid composition to generate an aerosol; a reservoir cavity configured to hold the liquid composition; and a bottom cap, wherein the mouthpiece is configured to engage with the proximal end of the tank and the bottom cap is configured to engage with the distal end of the tank, an inlet airflow enters the cartridge through a single inlet channel located approximately in the center of a bottom surface of the bottom cap, an aerosol path is defined through the tank and the exit portal of the mouthpiece, and the aerosol path is defined by a pair of flow tubes located in the tank, at least a portion of the flow tubes being located on either side of the reservoir cavity.
[0033] Exemplary Implementation 28: A cartridge of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the inlet channel disposed in the bottom cap has a nozzle-like shape.
[0034] Exemplary Implementation 29: A cartridge of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the heating assembly comprises a flat heating element and a liquid transport element, and the flat heating element and the liquid transport element are installed in a curved orientation.
[0035] Exemplary Implementation 30: A cartridge of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the cartridge further defines a vaporization chamber defined by a bottom cap and a heating assembly.
[0036] Exemplary Implementation 31: A cartridge of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the aerosol path begins in a vaporization chamber.
[0037] Exemplary Implementation 32: A cartridge of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the inlet air entering the vaporization chamber impinges on the heating element substantially vertically and expands substantially horizontally.
[0038] Exemplary Implementation 33: A cartridge of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the reservoir cavity defines a closed proximal end and an open distal end.
[0039] Exemplary Implementation 34: A cartridge of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the open distal end of the reservoir cavity is at least partially sealed by a separate base member.
[0040] Example Implementation 35: A cartridge of any preceding example implementation, or any combination of any preceding example implementation, wherein the base member includes a plurality of slots configured to provide a liquid flow path.
[0041] Exemplary Implementation 36: A cartridge of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the aerosol path is further defined via an upper aerosol channel insert disposed between the reservoir and the outlet portal of the mouthpiece.
[0042] Exemplary Implementation 37: A cartridge of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the bottom cap includes a pair of inserts comprising a ferromagnetic metallic material.
[0043] Example Implementation 38: A cartridge of any preceding example implementation, or any combination of any preceding example implementation, wherein the pressure path is defined at least in part by an offset pressure channel defined in the bottom cap of the cartridge.
[0044] Exemplary implementation 39: An aerosol delivery device comprising: a control device including an outer housing defining an outer wall and having a proximal end and a distal end, the proximal end of the control device defining a receiving chamber, the control device further including a power source and control components; and a cartridge including a mouthpiece, a reservoir, and a heating assembly, the reservoir configured to contain a liquid composition, the cartridge configured to be removably coupled to the receiving chamber of the control device; the heating assembly configured to heat the liquid composition to generate an aerosol, the heating assembly comprising a substantially planar heating element and a liquid transport element, the heating element being positioned in an arcuate orientation.
[0045] Exemplary Implementation 40: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the heating member comprises a first end, a second end, and a heater loop connecting the first end and the second end.
[0046] Exemplary Implementation 41: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the heater loop comprises a serpentine pattern of connected heater traces extending substantially transverse to the longitudinal axis of the heating element.
[0047] Exemplary Implementation 42: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the serpentine pattern of the heater traces comprises a plurality of divided traces disposed in a central region of the heating element.
[0048] Exemplary Implementation 43: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the heater loop is configured to concentrate heat in an area of the heating element that contacts the liquid transport element.
[0049] Exemplary Implementation 44: The aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, further comprising a base member on which the heating member and the liquid transport element are disposed.
[0050] Exemplary Implementation 45: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein at least one edge of the heating member is configured to engage with the base member to facilitate an arcuate orientation of the heating member.
[0051] Exemplary Implementation 46: The aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, further comprising a pair of connectors configured to electrically connect the cartridge to one or more of a control component or a power source.
[0052] Exemplary Implementation 47: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the heating element includes a pair of contact holes configured to connect the heating member to the connector.
[0053] Exemplary Implementation 48: An aerosol delivery device of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein each of the contact holes includes one or more extensions that form an effective inner diameter that is smaller than the outer diameter of the mating connector.
[0054] Exemplary implementation 49: A cartridge for use with an aerosol delivery device, the cartridge comprising a mouthpiece, a tank configured to contain a liquid composition, and a heating assembly, the heating assembly being configured to heat the liquid composition to generate an aerosol, the heating assembly comprising a substantially flat heating element and a liquid transport element, the heating element being positioned in a curved orientation.
[0055] Example implementation 50: A cartridge of any preceding example implementation, or any combination of any preceding example implementation, wherein the heating element comprises a first end, a second end, and a heater loop connecting the first end and the second end.
[0056] Exemplary Implementation 51: A cartridge of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the heater loop comprises a serpentine pattern of connected heater traces extending substantially transverse to the longitudinal axis of the heating element.
[0057] Example Implementation 52: A cartridge of any preceding example implementation, or any combination of any preceding example implementation, wherein the serpentine pattern of heater traces comprises a plurality of segmented traces disposed in a central region of the heating element.
[0058] Exemplary Implementation 53: A cartridge of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein the heater loop is configured to concentrate heat in an area of the heating element that contacts the liquid transport element.
[0059] Exemplary Implementation 54: The cartridge of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, further comprising a base member on which the heating member and liquid transport element are disposed.
[0060] Exemplary Implementation 55: A cartridge of any preceding exemplary implementation, or any combination of any preceding exemplary implementation, wherein at least one edge of the heating element is configured to engage with the base element to facilitate arcuate orientation of the heating element.
[0061] Example Implementation 56: The cartridge of any preceding example implementation, or any combination of any preceding example implementation, further comprising a pair of connectors configured to electrically connect the cartridge with a controller.
[0062] Example Implementation 57: A cartridge of any preceding example implementation, or any combination of any preceding example implementation, wherein the heating element includes a pair of contact holes configured to connect the heating member to a connector.
[0063] Example Implementation 58: A cartridge of any preceding example implementation, or any combination of any preceding example implementation, wherein each of the contact holes includes one or more extensions that form an effective inner diameter that is smaller than the outer diameter of the mating connector.
[0064] These and other features, aspects, and advantages of the present disclosure will become apparent from the following detailed description read in conjunction with the accompanying drawings, which are briefly described below. The present invention includes any combination of two, three, four, or more of the above-described embodiments, as well as combinations of any two, three, four, or more features or elements described in this disclosure, regardless of whether such features or elements are explicitly combined in the description of a specific embodiment herein. The present disclosure, in any of its various aspects and embodiments, is intended to be read as a whole, such that any separable features or elements of the disclosed invention are intended to be combinable unless the context clearly dictates otherwise.
[0065] Having thus described the present disclosure in general terms above, reference is now made to the accompanying drawings, which are not necessarily drawn to scale. [Brief explanation of the drawings]
[0066] [Figure 1] 1 shows a perspective view of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 2] 1 shows a perspective view of a control device of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 3] 1 shows an exploded perspective view of a control device of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 4A]1 shows a front view of a control device of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 4B] 4B shows a corresponding cross-sectional view of the control device of FIG. 4A according to an exemplary implementation of the present disclosure. [Figure 5A] 1 shows a side view of a control device of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 5B] 5B shows a corresponding cross-sectional view of the control device of FIG. 5A according to an exemplary implementation of the present disclosure. [Figure 6] 1 shows a perspective, partially cross-sectional view of a control device of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 7] 1 shows a perspective view of a cartridge of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 8] 1 shows an exploded perspective view of a cartridge of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 9A] 1 shows a front view of a cartridge of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 9B] 8B shows a corresponding cross-sectional view of the cartridge of FIG. 8A according to an exemplary implementation of the present disclosure. [Figure 10A] 1 shows a side view of a cartridge of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 10B] 9B shows a corresponding cross-sectional view of the cartridge of FIG. 9A according to an exemplary implementation of the present disclosure. [Figure 11] 1 shows a perspective cross-sectional view of an aerosol delivery device showing a portion of the airflow and aerosol path according to an exemplary implementation of the present disclosure. [Figure 12A] 1 shows a side view of a cartridge of an aerosol delivery device showing a portion of the airflow and aerosol path according to an exemplary implementation of the present disclosure. [Figure 12B] 12B shows a corresponding cross-sectional view of the cartridge of FIG. 12A according to an exemplary implementation of the present disclosure. [Figure 13] 1 illustrates a bottom perspective view of a cartridge of a control device showing a portion of the airflow and aerosol path according to an exemplary implementation of the present disclosure. [Figure 14] 1 shows an exploded perspective view of a control device of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 15] 1 shows a front cross-sectional view of a control device of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 16] 1 illustrates a perspective view of an end cap assembly according to an exemplary implementation of the present disclosure. [Figure 17A] 15 illustrates a subassembly of the control device of FIG. 14 according to an exemplary implementation. [Figure 17B] 15 illustrates a subassembly of the control device of FIG. 14 according to an exemplary implementation. [Figure 17C] 15 illustrates a subassembly of the control device of FIG. 14 according to an exemplary implementation. [Figure 18] 1 shows a perspective view of a cartridge of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 19] 1 shows an exploded perspective view of a cartridge of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 20] 1 shows a side cross-sectional view of a cartridge of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 21A] 1 illustrates a subassembly of a cartridge of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 21B] 1 illustrates a subassembly of a cartridge of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 22] 1 shows an exploded perspective view of a control device of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 23] 1 shows a front cross-sectional view of a control device of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 24] 1 shows an exploded perspective view of a cartridge of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 25] 1 shows a front cross-sectional view of a cartridge of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 26]1 shows a side cross-sectional view of a cartridge of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 27] 1 shows a front cross-sectional view of a cartridge and control device of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 28] 1 shows an exploded perspective view of a control device of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 29] 1 shows a front cross-sectional view of a control device of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 30] 1 shows a perspective, partially cross-sectional view of a control device of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 31] 1 illustrates a perspective view of an end cap assembly according to an exemplary implementation of the present disclosure. [Figure 32] 1 shows an exploded perspective view of a cartridge of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 33] 1 shows a front cross-sectional view of a cartridge of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 34] 1 shows a side cross-sectional view of a cartridge of an aerosol delivery device according to an exemplary implementation of the present disclosure. [Figure 35] 1 shows a side cross-sectional view of a control device of an aerosol delivery device showing airflow through the control device according to an exemplary implementation of the present disclosure. [Figure 36] FIG. 1 is a perspective side cross-sectional view of a cartridge of an aerosol delivery device showing air and aerosol flow paths according to an exemplary implementation of the present disclosure. [Figure 37] FIG. 1 is a perspective front cross-sectional view of a cartridge of an aerosol delivery device showing air and aerosol flow paths according to an exemplary implementation of the present disclosure. [Figure 38] 1 shows a bottom perspective view of a cartridge of an aerosol delivery device showing a portion of the air and aerosol flow paths according to an exemplary implementation of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION
[0067] The present disclosure will now be described more fully hereinafter with reference to exemplary embodiments thereof. These exemplary embodiments are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the disclosure to those skilled in the art. Indeed, this disclosure may be embodied in many different forms and should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will satisfy applicable legal requirements. As used in this specification and the appended claims, the singular forms "a," "an," and "the" include plural referents unless the context clearly dictates otherwise.
[0068] As described below, embodiments of the present disclosure relate to aerosol delivery devices or vaporization devices, the terms being used interchangeably herein. Aerosol delivery devices according to the present disclosure use electrical energy to heat a material (preferably without burning the material to any significant extent and / or significantly chemically altering it) to form an inhalable substance, and the components of such devices most preferably have the form of an article that is compact enough to be considered a handheld device. That is, the use of preferred aerosol delivery device components does not result in the production of smoke—i.e., from by-products of tobacco combustion or pyrolysis—but rather, the use of these preferred systems results in the production of vapor resulting from the volatilization or vaporization of certain components incorporated therein. In preferred embodiments, the components of the aerosol delivery device can be characterized as electronic cigarettes, which most preferably incorporate tobacco and / or tobacco-derived components and thus deliver tobacco-derived components in aerosol form.
[0069] The aerosol delivery device can provide many of the sensations of cigarette, cigar, or pipe smoking (e.g., the act of inhaling and exhaling, the type of taste or flavor, the sensory stimulating effect, the physical feel, the act of use, visual cues such as those provided by a visible aerosol, etc.) by lighting and burning tobacco (and thus inhaling tobacco smoke) without any appreciable combustion of any of its components. For example, a user of the aerosol generating device of the present disclosure can hold and use its components as a smoker would use a traditional type of smoking article, draw on one end of the component to inhale the aerosol generated by the component, take a puff or smoke on the cigarette at selected time intervals, etc.
[0070] The aerosol delivery device of the present disclosure can also be characterized as a vapor product or drug delivery article. Accordingly, such an article or device can be configured to provide one or more substances (e.g., flavorings and / or active pharmaceutical ingredients) in an inhalable form or state. For example, the inhalable substance can be substantially in vapor form (i.e., a substance in the gas phase at a temperature below its critical point). Alternatively, the inhalable substance can be in the form of an aerosol (i.e., a suspension of fine solid particles or liquid droplets in a gas). For simplicity, the term "aerosol" as used herein is meant to include vapors, gases, and aerosols in any form or type suitable for human inhalation, whether or not visible and whether or not in a form that can be considered smoke-like.
[0071] The aerosol delivery device of the present disclosure most preferably comprises some combination of a power source (i.e., an electrical power source), at least one control component (e.g., a means for activating, controlling, regulating, and terminating power for heat generation, such as by controlling the current from the power source to other components of the article—e.g., a microcontroller or microprocessor), a heater or heat-generating member (e.g., an electrical resistance heating element or other component having, alone or in combination, one or more additional elements sometimes commonly referred to as an “atomizer”), a liquid composition (e.g., an aerosol precursor composition liquid that can generally generate an aerosol upon application of sufficient heat, such as the components commonly referred to as “smoke juice,” “e-liquid,” and “e-juice”), and a mouthpiece or mouth area that allows for drawing by the aerosol delivery device for aerosol inhalation (e.g., a defined air flow path through which the article, such as the generated aerosol, can be withdrawn upon inhalation).
[0072] More specific forms, configurations, and arrangements of components within the aerosol delivery devices of the present disclosure will become apparent in light of the further disclosure provided below. Additionally, the selection and arrangement of components of various aerosol delivery devices can be understood in light of commercially available electronic aerosol delivery devices, such as the representative products referenced in the Background section of this disclosure.
[0073] In various implementations, the present disclosure relates to an aerosol delivery device and a cartridge and control device that both comprise the aerosol delivery device. As described in more detail below, in various implementations, the aerosol delivery device can have improved connectivity, airflow, and / or aerosol pathways through the device.
[0074] An exemplary implementation of an aerosol delivery device 100 of the present disclosure is shown in FIG. 1. As shown, the aerosol delivery device 100 includes a control device 200 and a removable cartridge 300. While only one cartridge is shown in the illustrated implementation, it should be understood that in various implementations, the aerosol delivery device 100 may include an interchangeable system. For example, in one or more implementations, a single control device may be used with multiple different cartridges. Similarly, in one or more implementations, a single cartridge may be used with multiple different control devices.
[0075] FIG. 2 illustrates a perspective view of the control device 200, and FIG. 3 illustrates an exploded perspective view of the control device 200. As shown, the control device 200 in the illustrated implementation generally includes a housing 202 defining an outer wall 204, an upper frame 206, an upper frame seal 208, a pressure sensor seal 210, a lower frame 212, control components 214, a battery 216, a vibration motor 218, a motor housing 220, a pin seal 222, an end cap 224, and a light diffuser 226. The arrangement of these components is illustrated in FIGS. 4A and 4B and 5A and 5B. In particular, FIG. 4A illustrates a front view of the control device 200, and FIG. 4B illustrates a corresponding cross-sectional view of the control device 200. Similarly, FIG. 5A illustrates a side view of the control device 200, and FIG. 5B illustrates a corresponding cross-sectional view of the control device 200. As shown, the upper frame 206 of the control device 200 defines a cartridge-receiving chamber 230 within which a cartridge can be coupled. The control device 200 also includes an outer wall 204 of the housing 202, as well as a pair of opposing viewing windows 232 defined through the upper frame 206. As described in more detail below, in various implementations, the viewing windows 232 can provide a user with the ability to view one or more components (and / or their status) of an installed cartridge. However, it will be understood that the illustrated viewing windows 232 are provided by way of example and not limitation. For example, alternative implementations can include viewing windows having different shapes than those illustrated. As another example, some implementations can include only a single viewing window. In still other implementations, an indication window need not be present. In the illustrated implementation, the upper frame 206 and the housing 202 represent different components. However, in other implementations, the upper frame and the housing can be continuously formed such that they comprise the same component.
[0076] In the illustrated implementation, the housing 202 comprises a metal material such as, for example, aluminum. However, in other implementations, the housing may comprise a metal alloy material, and in still other implementations, the housing may comprise a molded plastic material. In the illustrated implementation, one or more of the housing 202, the upper frame 206, the lower frame 212, and the end cap 224 may be made from a molded polymeric material such as, for example, a molded plastic material (e.g., polybutylene terephthalate (PBT), acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high-impact polystyrene, polypropylene, and combinations thereof). In other implementations, one or more of these components may be made from other materials, including, for example, a metal material (e.g., aluminum, stainless steel, metal alloy, etc.), a glass material, a ceramic material (e.g., alumina, silica, mullite, silicon carbide, silicon nitride, aluminum nitride, etc.), a composite material, and / or any combination thereof.
[0077] In the illustrated implementation, the lower frame 212 is configured to house a battery 216 in its interior region. In the illustrated implementation, the battery may include a lithium polymer (LiPo) battery. However, various other batteries may be suitable. Some other examples of batteries that may be used in accordance with the present disclosure are described in U.S. Patent Application Publication No. 2010 / 0028766 to Peckerar et al., the disclosure of which is incorporated herein by reference in its entirety. In some implementations, other types of power sources may be utilized. For example, in various implementations, the power source can comprise a replaceable or rechargeable battery, a solid-state battery, a thin-film solid-state battery, a rechargeable supercapacitor, etc., and thus can be combined with any type of charging technology, including connection to a wall charger, connection to an automobile charger (e.g., a cigarette lighter socket, a USB port, etc.), connection to a USB connector (e.g., USB 2.0, 3.0, 3.1, USB Type-C, which can be implemented in wall outlets, electronic devices, vehicles, etc.), connection to a photovoltaic cell (sometimes called a solar cell) or solar panel, chargers using inductive wireless charging (e.g., including wireless charging according to the Qi wireless charging standard from the Wireless Power Consortium (WPC)) or wireless chargers such as radio frequency (RF)-based chargers, and connection to an array of external cells such as a power bank for charging the device via a USB connector or wireless charger. An example of an inductive wireless charging system is described in U.S. Patent Application Publication No. 2017 / 0112196 by Sur et al., which is incorporated herein by reference in its entirety. In further implementations, the power source can also include a capacitor. Because capacitors can discharge faster than batteries and can be charged between puffs, the battery can be discharged into the capacitor at a slower rate than if it were used to directly power the heating element. For example, a supercapacitor, such as an electric double layer capacitor (EDLC), can be used separately from or in combination with a battery. When used alone, the supercapacitor can be recharged each time the article is used.Thus, the device may also include a charger component that can be attached to the smoking article during use to replenish the supercapacitor. Examples of power sources that include supercapacitors are described in U.S. Patent Application Publication No. 2017 / 0112191 to Sur et al., which is incorporated herein by reference in its entirety.
[0078] The aerosol delivery device 100 in the illustrated implementation includes a control mechanism in the form of a control component 214 configured, in part, to control the amount of power supplied to the heating element of the cartridge. Although other configurations are possible, the control component 214 in the illustrated implementation comprises a circuit board 234 (e.g., a printed circuit board (PCB)) that includes both rigid and flexible portions. In particular, the circuit board 234 in the illustrated implementation includes a rigid central section 215 and two rigid end sections, including a proximal end section 217 and a distal end section 219, with each end section 217, 219 connected to the central section 215 by a respective flexible connection. As such, when the lower frame 212, battery 216, and circuit board 234 are assembled into the control device 200, the central section 215 of the circuit board 234 is configured to be positioned proximate a major surface of the battery 216, and the two end sections 217, 219 are configured to be positioned substantially perpendicular to the central section 215. In particular, a proximal end section 217 of the circuit board 234 is configured to extend across the top of the lower frame 212, and a distal end section 219 is configured to extend across the bottom of the lower frame 212. The lower frame 212 of the control device 200 is also configured to house a motor housing 220 in which a vibration motor 218 is housed. In various implementations, the vibration motor 218 can provide tactile feedback regarding various operations of the device 100.
[0079] The central section 215 of the illustrated implementation also includes an indicator in the form of a light source 221. In some implementations, the light source may comprise, for example, at least one light emitting diode (LED) capable of providing light of one or more colors. In other implementations, the light source may be configured to emit light of only one color, while in other implementations, the light source may be configured to emit light of a variety of different colors. In still other implementations, the light source may be configured to provide white light. In the illustrated implementation, the light source 221 comprises an RGB (red, green, blue) LED configured to provide light of various colors, including white light. The central section 215 of the illustrated circuit board 234 also includes electrical contacts 223 configured to operably connect the circuit board 234 to the vibration motor 218. Other types of electronic components, their structure and configuration, their features, and their general method of operation are described in U.S. Pat. No. 4,735,217 to Gerth et al.; U.S. Pat. No. 4,947,874 to Brooks et al.; U.S. Pat. No. 5,372,148 to McCafferty et al.; U.S. Pat. No. 6,040,560 to Fleischhauer et al.; U.S. Pat. No. 7,040,314 to Nguyen et al. and U.S. Pat. No. 8,205,622 to Pan; U.S. Pat. App. Pub. Nos. 2009 / 0230117 to Fernando et al., 2014 / 0060554 to Collet et al., and 2014 / 0270727 to Ampolini et al.; and U.S. Pat. App. Pub. No. 2015 / 0257445 to Henry et al., which are incorporated herein by reference.Still other features, controls, or components that may be incorporated into the aerosol delivery devices of the present disclosure include those disclosed in U.S. Pat. No. 5,967,148 to Harris et al.; U.S. Pat. No. 5,934,289 to Watkins et al.; U.S. Pat. No. 5,954,979 to Counts et al.; U.S. Pat. No. 6,040,560 to Fleischhauer et al.; U.S. Pat. No. 8,365,742 to Hon; U.S. Pat. No. 8,402,976 to Fernando et al. ..., all of which are incorporated herein by reference in their entireties. U.S. Patent Application Publication No. 2010 / 0163063 to Tucker et al.; U.S. Patent Application Publication No. 2013 / 0192623 to Leven et al.; U.S. Patent Application Publication No. 2013 / 0298905 to Leven et al.; U.S. Patent Application Publication No. 2013 / 0180553 to Kim et al., U.S. Patent Application Publication No. 2014 / 0000638 to Sebastian et al., U.S. Patent Application Publication No. 2014 / 0261495 to Novak et al., and U.S. Patent Application Publication No. 2014 / 0261408 to DePiano et al.
[0080] In the illustrated implementation, the light source 221 is covered by a light diffuser 226, a portion of which is configured to be received by the end cap 224. Thus, when assembled, the light diffuser 226 is positioned within or adjacent to the distal end of an opening 225 defined in the outer wall 204 of the housing 202. In the illustrated implementation, the opening 225 comprises a narrow, elongated opening. However, in other implementations, the opening may be provided in any desired shape and may be located at any location on the control device 200. In some implementations, the light diffuser 226 may comprise a transparent or translucent member configured to allow a user to view the light source 221 from outside the housing 202. In the illustrated implementation, the light diffuser 226 may be made from a molded polymeric material, such as, for example, a molded plastic material (e.g., acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high-impact polystyrene, polypropylene, and combinations thereof), although other materials, including glass, are possible. In various implementations, additional indicators (e.g., other tactile feedback components, audio feedback components, etc.) can be included in addition to or in place of the indicators included in the illustrated implementation. Additional exemplary types of components that generate visual cues or indicators, such as LED components, and their construction and use, are described in U.S. Patent No. 5,154,192 to Sprinkel et al.; U.S. Patent No. 8,499,766 to Newton and U.S. Patent No. 8,539,959 to Scatterday; U.S. Patent Application Publication No. 2015 / 0020825 to Galloway et al.; and U.S. Patent Application Publication No. 2015 / 0216233 to Sears et al., which are incorporated by reference in their entireties.
[0081] Although other configurations are possible, the proximal end section 217 of the circuit board 234 in the illustrated implementation includes a pair of conductive pins 236A, 236B, as well as a pressure sensor 240. In the illustrated implementation, the conductive pins 236A, 236B comprise spring-loaded pins (e.g., electrical pogo pins) that extend through the upper frame 206 such that a portion of the end of the pins 236A, 236B extends into the cartridge-receiving chamber 230 and is biased to that position by the force of the internal springs of the conductive pins 236A, 236B. In that manner, when a cartridge is coupled to the control device 200, the conductive pins 236A, 236B are configured to contact corresponding features on the cartridge and deflect downward (e.g., toward the lower frame 212) against the force of the springs, thus operably connecting the installed cartridge to the control component 214 and the battery 216. In the illustrated implementation, the conductive pins 236A, 236B comprise gold-plated metal pins. However, other materials or combinations of materials are possible, which may also include coatings and / or platings of conductive materials. Examples of conductive materials include, but are not limited to, copper, aluminum, platinum, gold, silver, iron, steel, brass, bronze, graphite, conductive ceramic materials, and / or any combination thereof. Although other contours are possible, the ends of the conductive pins 236A, 236B in the illustrated implementation have a rounded contour to facilitate deflection of the conductive pins 236A, 236B when a cartridge is inserted into the cartridge-receiving chamber 230. In other implementations, the conductive pins may be positioned at other locations in the cartridge-receiving chamber 230, such as near the top of the cartridge-receiving chamber 230. In other implementations, the conductive pins may be positioned at a point on the side of the upper frame 206 between the proximal end of the outer housing 202 and the bottom wall of the upper frame 206. Furthermore, in still other implementations, the conductive pins may be positioned between the midpoint of the side wall and the proximal end of the outer housing 202 (i.e., in the upper half of the side wall). Alternatively, the conductive pins may be located between the midpoint of the side wall and the bottom wall of the inner frame wall (e.g., in the lower half of the side wall). Additionally, in still other implementations, the conductive pins may be located anywhere on the upper frame 206.
[0082] In various implementations, the aerosol delivery device 100 may include an airflow sensor, a pressure sensor, or the like. As mentioned above, the control component 214 of the illustrated implementation includes a pressure sensor 240 positioned proximate to and below the cartridge receiving chamber 230. The location and function of the pressure sensor 240 in the illustrated implementation are described below. However, in other implementations, the airflow or pressure sensor may be located anywhere within the control device 200 to receive airflow and / or pressure changes that can signal inhalation of the device and, therefore, cause the battery 216 to power the heating element of the cartridge 300. Various configurations of printed circuit boards and pressure sensors are described, for example, in U.S. Patent Application Publication No. 2015 / 0245658 to Worm et al., the disclosure of which is incorporated herein by reference in its entirety. In the absence of an airflow sensor, a pressure sensor, or the like, the aerosol delivery device may be manually activated via a push button or the like that may be located on the control device and / or cartridge. For example, one or more push buttons can be used, as described in U.S. Patent Application Publication No. 2015 / 0245658 to Worm et al., which is incorporated herein by reference in its entirety. Similarly, a touch screen can be used, as described in U.S. Patent Application No. 14 / 643,626 to Sears et al., filed March 10, 2015, which is incorporated herein by reference in its entirety. As a further example, a component adapted for gesture recognition based on designated movements of the aerosol delivery device may be used as input. See U.S. Patent Application Publication No. 2016 / 0158782 to Henry et al., which is incorporated herein by reference in its entirety.
[0083] Although not included in the illustrated implementation, some implementations may include other types of input elements that can replace or supplement the airflow or pressure sensors. Inputs may be included to allow a user to control device functions and / or for outputting information to the user. Any component or combination of components may be utilized as an input for controlling device functions. In some implementations, the input may comprise a computer or computing device, such as a smartphone or tablet. In particular, the aerosol delivery device may be hardwired to a computer or other device, such as via a USB cord or similar protocol. The aerosol delivery device may also communicate with a computer or other device that serves as an input via wireless communication. See, for example, the systems and methods for controlling a device via a read request described in U.S. Patent Application Publication No. 2016 / 0007561 to Ampolini et al., the disclosure of which is incorporated herein by reference in its entirety. In such embodiments, an app or other computer program may be used in conjunction with a computer or other computing device to input control instructions to the aerosol delivery device, including, for example, the ability to form an aerosol of a specific composition by selecting the nicotine content and / or additional flavoring content to be included. Further exemplary types of sensing or detection mechanisms, their structure and configuration, their components, and their general methods of operation are described in U.S. Pat. No. 5,261,424 to Sprinkel, Jr.; U.S. Pat. No. 5,372,148 to McCafferty et al.; and WO 2010 / 003480 to Flick, which are incorporated by reference in their entireties.
[0084] In the illustrated implementation, the pressure sensor seal 210 is configured to cover the pressure sensor 240 to protect it from liquids and / or aerosols from an installed cartridge. Additionally, the pressure sensor seal 210 of the illustrated implementation is configured to seal the conductive pins 236A, 236B. As such, the pressure sensor seal 210 of the illustrated implementation can be made of silicone rubber, boron nitride (BN) rubber, natural rubber, thermoplastic polyurethane, or another elastic material. In the illustrated implementation, the upper frame seal 208 is configured to be positioned adjacent to and above the pressure sensor seal 210 such that a pair of upper frame seal tubes 209A, 209B (see FIG. 6 ) of the upper frame seal 208 extend through the upper frame 206 and into the cartridge-receiving chamber 230. The upper frame seal 208 of the illustrated implementation may also be made of silicone, thermoplastic polyurethane, or another elastic material.
[0085] Although other configurations are possible, the distal end section 219 of the circuit board 234 includes an external connection element 238. In various implementations, the external connection element 238 may be configured to connect to an external connector and / or a docking station or other power or data source. For example, in some implementations, the external connector may include first and second connector ends that can be interconnected by a union, which may be, for example, a variable-length cord. In some implementations, the first connector end may be configured for electrical and, optionally, mechanical connection with the device (100, 200), and the second connector end may be configured for connection to a computer or similar electronic device or for connection to a power source. An adapter including a USB connector on one end and a power unit connector on the opposite end is disclosed in U.S. Patent Application Publication No. 2014 / 0261495 to Novak et al., which is incorporated herein by reference in its entirety. In the illustrated implementation, a pin seal 222 is configured to seal the interface between the external connection element 238 and the end cap 224. As such, the pin seal 222 in the illustrated implementation can be made from silicone, thermoplastic polyurethane, or another elastomeric material. In the illustrated implementation, one or more pins of the external connection element 238 can extend through the end cap 224 of the control device, as described above.
[0086] In various implementations, the control device can include one or more components configured to meet battery gassing requirements under UL 8139. For example, the control device can include an end cap configured to vent in the event of a sudden pressurization within the control device enclosure. In one implementation, the end cap can include a retaining pin extending substantially perpendicularly from a wall of the end cap. The retaining pin can be configured to mate with a receiving feature (e.g., a hole) in the frame of the control device to establish a friction fit or press fit that can be released if the internal pressure within the control device housing exceeds a specified internal pressure.
[0087] FIG. 6 shows a perspective, partial cross-sectional view of the control device of the aerosol delivery device. In particular, FIG. 6 shows a partial cross-sectional view of the housing 202, upper frame 206, upper frame seal 208, pressure sensor seal 210, pressure sensor 240, and lower frame 212 of the control device 200. As shown, portions of the conductive pins 236A, 236B of the control component 214 extend through the upper frame 206. In particular, portions of the conductive pins 236A, 236B of the illustrated implementation, which include spring-loaded contacts as described above, extend through the recessed surface 244 of the upper frame 206 into the cartridge-receiving chamber 230. Additionally, portions of the upper frame seal tubes 209A, 209B of the upper frame seal 208 (which define the respective seal tube channels 211A, 211B) extend through the upper frame 206 and are exposed within the cartridge-receiving chamber 230. As described in more detail below, regardless of the orientation of the installed cartridge, one of the conductive pins 236A, 236B and upper frame seal tubes 209A, 209B is configured to substantially align with a corresponding feature of the installed cartridge.
[0088] As also shown, the upper frame 206 includes a pair of magnets 246A, 246B that are also exposed within the cartridge-receiving chamber 230. In various implementations, the magnets 246A, 246B can comprise any type of magnet, including rare earth magnets. For example, in some implementations, one or more of the magnets can include neodymium magnets (also known as NdFeB, NIB, or Neo magnets). In various implementations, different grades of neodymium magnets can be used, including, for example, N35, N38, N40, N42, N45, N48, N50, and / or N52 grades. In other implementations, one or more of the magnets can include samarium-cobalt magnets (also known as SmCo magnets). In yet other implementations, one or more of the magnets can include ceramic / ferrite magnets. In other implementations, one or more of the magnets can include aluminum-nickel-cobalt (AlNiCo) magnets. In any of the foregoing implementations, one or more of the magnets can be plated and / or coated. For example, in some implementations, one or more of the magnets may be coated with nickel. In other implementations, one or more of the magnets may be coated with one or more of zinc, tin, copper, epoxy, silver, and / or gold. In some implementations, one or more of the magnets may be coated with a combination of these materials. For example, in one implementation, one or more of the magnets may again be coated with nickel, copper, and nickel. In another implementation, one or more of the magnets may be coated with an overcoat of nickel, copper, nickel, and gold.
[0089] In the illustrated implementation, each magnet 246A, 246B is substantially surrounded by a respective positioning feature 248A, 248B of the upper frame 206, which also extends into the cartridge-receiving chamber 230. Similarly, each upper frame seal tube 209A, 209B of the upper frame seal 208 is substantially surrounded by a respective positioning feature 250A, 250B. As described in more detail below, one or more of the positioning features 248A, 248B, 250A, 250B of the upper frame 206 are configured as stops or vertical positioning features for an installed cartridge and, therefore, are configured to position the cartridge 300 relative to the recessed surface 244 of the upper frame 206 of the control device 200.
[0090] As described above, a portion of the cartridge 300 is configured to be coupled to the cartridge receiving chamber 230 of the inner frame 206 of the controller 200 such that a mechanical and electrical connection is formed between the cartridge 300 and the controller 200. In particular, when the cartridge 300 in the illustrated implementation is coupled to the upper frame 206 of the controller 200, a magnetic connection is formed between the magnets 246A, 246B disposed on the upper frame 206 and corresponding features of the cartridge 300. Furthermore, when the cartridge 300 in the illustrated implementation is coupled to the inner frame 206, an electrical connection is formed between the pair of conductive pins 236A, 236B of the controller 200 and corresponding features of the cartridge 300. Thus, when the cartridge 300 is received in the receiving chamber 230 of the controller 200, the cartridge 300 can be operably connected to the control component 214 and the battery 216 of the controller 200. Thus, when the cartridge 300 of the illustrated implementation is coupled with the controller 200, the cartridge 300 is mechanically biased into connection with the controller 200 such that an electrical connection between the cartridge and the controller is maintained. For purposes of this disclosure, it should be understood that the term "operably connected" and other related forms should be interpreted broadly to encompass components directly connected and / or connected via one or more additional components.
[0091] FIG. 7 shows a perspective view of cartridge 300, and FIG. 8 shows an exploded perspective view of cartridge 300. While other configurations are possible, the cartridge 300 in the illustrated implementation generally includes a mouthpiece 302, a mouthpiece insert 304, an upper aerosol channel insert 306, an upper cartridge seal 308, a reservoir 310 defining a reservoir wall 311, a lower cartridge seal 312, a base member 314, a liquid transport element (e.g., a wick) 316, a heating member 318, a pair of heater connectors 320A, 320B, a pair of O-ring seals 322A, 322B, a pair of metal inserts 324A, 324B, and a bottom cap 326. The arrangement of these components is shown in FIGS. 9A, 9B, 10A, and 10B. In particular, FIG. 9A shows a front view of cartridge 300, and FIG. 9B shows a corresponding cross-sectional view of cartridge 300. Similarly, FIG. 10A shows a side view of cartridge 300, and FIG. 10B shows a corresponding cross-sectional view of cartridge 300.
[0092] As shown in the figure, mouthpiece 302 in the illustrated implementation defines a proximal end and a distal end, with the proximal end of mouthpiece 302 defining exit portal 315 therein. In the illustrated implementation, mouthpiece insert 304 is configured to be positioned adjacent the proximal end of mouthpiece 302 so as to extend through exit portal 315 of mouthpiece 302. In the illustrated implementation, mouthpiece 302 and mouthpiece insert 304 may be made from a molded polymeric material, such as, for example, a molded plastic material (e.g., polypropylene, acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high-impact polystyrene, and combinations thereof), although other materials are possible. Mouthpiece insert 304 in the illustrated implementation includes a flange feature on its bottom so that mouthpiece insert 304 can be installed from inside mouthpiece 302 and configured for a press-fit or snap-fit connection with exit portal 315. In other implementations, other attachment methods are possible (e.g., via adhesive, heat staking / welding, ultrasonic welding, etc.). In still other implementations, the mouthpiece and mouthpiece insert may be constructed using an insert molding or overmolding process such that the mouthpiece 302 and mouthpiece insert 304 comprise a single piece. The mouthpiece 302 in the illustrated implementation is configured to be secured to the tank 310 via snap features included on one or both of the mouthpiece 302 and the tank 310. However, other attachment methods are also possible (e.g., via adhesive, heat staking / welding, ultrasonic welding, etc.).
[0093] In some implementations, the mouthpiece insert may exhibit a color associated with a distinctive characteristic of the cartridge. For example, in some implementations, the cartridge of the present disclosure may contain a liquid composition including a distinctive characteristic, such as a particular flavor (described below) or a particular strength of nicotine, although any characteristic of the cartridge may be considered a distinctive characteristic. For purposes of the current description, the term "color" should be interpreted broadly to cover, for example, any color or any shade of the same color. It should also be noted that in some implementations, a particular color may be generally associated with a particular distinctive characteristic (e.g., green may be associated with mint flavor, and red may be associated with apple flavor). However, in other implementations, a particular color may be associated with a particular distinctive characteristic according to an index or guide that may be provided or made available to the user. Examples of distinctive characteristics are described in U.S. Patent Application No. 16 / 171,920, entitled "Aerosol Delivery Device with Flavor Indicator," which is incorporated herein by reference in its entirety.
[0094] The reservoir 310 in the illustrated implementation defines a proximal end and a distal end, the mouthpiece 302 is configured to engage the proximal end of the reservoir 310, and the bottom cap 326 is configured to engage the distal end of the reservoir 310. In the illustrated implementation, the reservoir 310 also defines a reservoir cavity 328 including a closed proximal end and an open distal end. Thus, the reservoir cavity 328 of the reservoir 310 is configured to contain a liquid composition (e.g., an e-liquid or aerosol precursor composition) therein. The closed proximal end of the reservoir cavity 328 allows the cavity to form a reliable seal with the top surface of the liquid composition column. This can prevent air from seeping / entering the reservoir cavity from the top when the cartridge is held upright. This can also prevent air from entering the top of the liquid composition column, which can create a vacuum and reduce the likelihood of the liquid composition leaking out the bottom of the reservoir through a liquid transport element or other passageway.
[0095] Although other configurations are possible, in the illustrated implementation, a pair of internal aerosol flow conduits 333A, 333B are defined on either side of the reservoir cavity 328 of the tank 310. In the case of an injection-molded tank 310, the internal aerosol flow conduits 333A, 333B are configured to be molded therein. As described in more detail below, aerosol generated in the vaporization chamber of the cartridge 300 is configured to travel through the aerosol flow conduits 333A, 333B for delivery to a user.
[0096] In the illustrated implementation, the tank wall 311 is configured to be transparent or translucent so that the liquid composition contained therein is visible from the outside. Thus, in the illustrated implementation, the entire tank wall 311 is configured to be transparent or translucent. Alternatively, in some implementations, only a portion of the tank wall or only one side of the tank wall may be transparent or translucent, while the remaining portion of the tank wall may be substantially opaque. In other implementations, the tank wall may be substantially opaque, with a strip extending from the proximal end of the tank to the distal end of the tank being transparent or translucent. In further implementations, the tank wall may be colored. In some implementations, the color can be configured so that the liquid composition within the tank is still visible, such as by using a transparent or translucent outer tank wall. In other implementations, the tank wall can be configured so that the outer tank wall has a substantially opaque color. In the illustrated implementation, the tank 310 can be made from a molded polymeric material such as, for example, a molded plastic material (e.g., a copolyester material such as Tritan™ copolyester, acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high impact polystyrene, polypropylene, and combinations thereof), although other materials are possible, including glass.
[0097] The viewing window 232 in the illustrated implementation of the control device 200 is configured so that at least a portion of the reservoir 310 and at least a portion of the bottom cap 326 are visible when the cartridge 300 is engaged with the control device 200. As described above, in some implementations, at least a portion of the reservoir wall 311 may be configured to be at least partially transparent or translucent so that the liquid composition contained therein is visible from the outside. Thus, the relative amount of any liquid composition present in the reservoir 310 can be visible through the viewing window 232 when the cartridge 300 is engaged with the control device 200. As shown in FIGS. 1-6 , the viewing window 232 in the illustrated implementation is located near the proximal end of the control device 200 and is configured as an elongated oval cutout in the outer wall 204 of the housing 202 and the upper frame 206 of the control device 200. It should be understood that in other implementations, the viewing window can have any other shape and / or location. For example, in some implementations, the viewing window may be configured as a notch extending a distance from the proximal end of the outer wall of the control device toward the distal end of the device. In still other implementations, the viewing window may be configured without any open boundaries, thus explicitly excluding the notch configuration described above. In some implementations, the viewing window may be completely open, while in other implementations, the viewing window may have a transparent member (e.g., glass or plastic) disposed within an opening defined by the viewing window or covering the viewing window on one or both of the inner and outer surfaces of the outer wall of the control device. It should be understood that in some implementations, the viewing window may be formed in part by the cartridge and in part by the control device. For example, in some implementations, the cartridge may include a portion of the viewing window (e.g., the top of the viewing window) and the control device may include a separate portion of the viewing window (e.g., the bottom of the viewing window).
[0098] Although other configurations are possible, in the illustrated implementation, the proximal end of the reservoir 310 is configured to receive an upper cartridge seal 308 configured to form a substantially airtight and liquid-tight seal between the reservoir 310 and the mouthpiece 302. Accordingly, the upper cartridge seal 308 can be made from silicone rubber, boron nitride (BN) rubber, natural rubber, thermoplastic polyurethane, or another resilient material. In the illustrated implementation, the upper cartridge seal 308 is also configured to receive and seal the upper aerosol channel insert 306 (see also FIG. 11 ).
[0099] In the case of an aerosol delivery system characterized as an electronic cigarette, the aerosol precursor composition can incorporate tobacco or tobacco-derived components. In one aspect, the tobacco may be provided as tobacco parts or fragments, such as finely ground, crushed, or powdered tobacco flakes. It may also include tobacco beads, pellets, or other solid forms, such as those described in U.S. Patent Application Publication No. 2015 / 0335070 to Sears et al., the disclosure of which is incorporated herein by reference. In another aspect, the tobacco may be provided in the form of an extract, such as a spray-dried extract incorporating many of the water-soluble components of tobacco. Alternatively, the tobacco extract may have the form of a relatively high-nicotine extract that also incorporates small amounts of other extracted components derived from tobacco. In another aspect, the tobacco-derived component may be provided in a relatively pure form, such as a particular flavoring derived from tobacco. In one aspect, a component derived from tobacco that can be used in a highly purified or essentially pure form is nicotine (e.g., pharmaceutical-grade nicotine).
[0100] In the illustrated implementation, the liquid composition, sometimes referred to as an aerosol precursor composition or vapor precursor composition or "e-liquid," may include various ingredients including, by way of example, a polyhydric alcohol (e.g., glycerin, propylene glycol, or mixtures thereof), nicotine, tobacco, tobacco extract, and / or flavorings. Representative types of aerosol precursor components and formulations are also described and characterized in U.S. Pat. No. 7,217,320 to Robinson et al. and U.S. Pat. Appl. Pub. No. 2013 / 0008457 to Zheng et al.; U.S. Pat. Appl. Pub. No. 2013 / 0213417 to Chong et al.; U.S. Pat. Appl. Pub. No. 2014 / 0060554 to Collett et al.; U.S. Pat. Appl. Pub. No. 2015 / 0020823 to Lipowicz et al.; and U.S. Pat. Appl. Pub. No. 2015 / 0020830 to Koller, the disclosures of which are incorporated herein by reference in their entireties, and WO 2014 / 182736 to Bowen et al. Other aerosol precursors that may be used include the aerosol precursors incorporated into VUSE® products by RJ Reynolds Vapor Company, BLU™ products by Fontem Ventures BV, MISTIC MENTHOL products by Mistic Ecigs, MARK TEN products by Nu Mark LLC, JUUL products by Juul Labs, Inc., and VYPE products by CN Creative Ltd. Also desirable are so-called "smoke juices" for e-cigarettes, available from Johnson Creek Enterprises LLC.Further exemplary aerosol precursor compositions are sold under the brand names BLACK NOTE, COSMIC FOG, THE MILKMAN E-LIQUID, FIVE PAWNS, THE VAPOR CHEF, VAPE WILD, BOOSTED, THE STEAM FACTORY, MECH SAUCE, CASEY JONES MAINLINE RESERVE, MITTEN VAPORS, DR. CRIMMY'S V-LIQUID, SMILEY E LIQUID, BEANTOWN VAPOR, CUTTWOOD, CYCLOPS VAPOR, SICBOY, GOOD LIFE VAPOR, TELEOS, PINUP VAPORS, SPACE JAM, MT. BAKER VAPOR, and JIMMY THE JUICE MAN.
[0101] The amount of aerosol precursor incorporated into the aerosol delivery system is such that the aerosol generating component provides acceptable sensory characteristics and desirable performance characteristics. For example, it is highly preferred to use a sufficient amount of aerosol-forming material (e.g., glycerin and / or propylene glycol) to provide visible mainstream aerosol production that resembles in many respects the appearance of cigarette smoke. The amount of aerosol precursor in the aerosol generating system may depend on factors such as the number of puffs desired per aerosol generating component. In the illustrated implementation, the reservoir cavity 328 is configured to hold approximately 1.5 mL of the aerosol precursor composition. In other embodiments, the reservoir cavity 328 is configured to hold at least about 1 mL, at least about 2 mL, at least about 5 mL, or at least about 10 mL of the aerosol precursor composition.
[0102] In some implementations, the liquid composition may include one or more flavorings. As used herein, reference to a "flavoring" refers to a compound or ingredient that can be aerosolized and delivered to a user and that provides a sensory experience in terms of taste and / or aroma. Exemplary flavorings include, but are not limited to, vanillin, ethyl vanillin, cream, tea, coffee, fruit (e.g., apple, cherry, strawberry, peach, and citrus flavors including lime and lemon), maple, menthol, mint, peppermint, spearmint, wintergreen, nutmeg, clove, lavender, cardamom, ginger, honey, anise, sage, rosemary, hibiscus, rosehip, erbamate, guayusa, honeybush, rooibos, erba santa, bacopa monniera, ginkgo biloba, withania somnifera, cinnamon, sandalwood, jasmine, cascarilla, cocoa, licorice, and flavors and flavor packages of the type and characteristics traditionally used in tobacco, cigar, and pipe tobacco flavorings. Syrups, such as high fructose corn syrup, can also be used. Exemplary plant-derived compositions that may be suitable are disclosed in U.S. Patent No. 9,107,453 and U.S. Patent Application Publication No. 2012 / 0152265, both by Dube et al., the disclosures of which are incorporated herein by reference in their entireties. The selection of such additional components can vary based on factors such as the sensory characteristics desired in the smoking article, and the present disclosure is intended to encompass such additional components that are readily apparent to those skilled in the art of tobacco and tobacco-related or tobacco-derived products. See, for example, Gutcho, Tobacco Flavoring Substances and Methods, Noyes Data Corp. (1972) and Leffingwell et al., Tobacco Flavoring for Smoking Products (1972), the disclosures of which are incorporated herein by reference in their entireties. It should be understood that reference to flavor should not be limited to a single flavor as described above, but may actually refer to a combination of one or more flavors.
[0103] As shown, the cartridge 300 of the illustrated implementation also includes a base member 314 configured to engage and cover the open distal end of the reservoir cavity 328 of the tank 310. The lower seal 312 of the illustrated implementation is configured to form a substantially air-tight and liquid-tight seal between the lower part of the tank 310 and a bottom cap 326 (see also FIG. 11 ). In particular, the lower seal 312 is configured to be disposed within a groove in the outer surface of the base member 314 to facilitate a substantially air-tight and liquid-tight seal between the base member 314 and the tank 310. In various implementations, the lower seal 312 can be made from silicone rubber, boron nitride (BN) rubber, natural rubber, thermoplastic polyurethane, or another resilient material. In the illustrated implementation, the base member 314 can be made from a molded polymeric material such as, for example, a molded plastic material (e.g., acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high-impact polystyrene, polypropylene, and combinations thereof), although other materials are possible. The base member 314 of the illustrated implementation also includes a plurality of slots 335 (see also FIG. 11 ) configured to provide a liquid flow path for the liquid composition contained in the reservoir cavity 328 of the tank 310 to facilitate transfer of the liquid to the liquid transport element 316. In some implementations, the slots 335 can also provide some liquid retention even when the bulk liquid composition in the reservoir cavity 328 is not in contact with the base member 314 (e.g., when the aerosol delivery device 100 is turned upside down).
[0104] As shown, the liquid transport element 316 is disposed within the base member 314 and extends between the liquid composition in the reservoir cavity 328 and the heating member 318 (see also FIG. 11 ). In the illustrated implementation, the liquid transport element 316 is formed from a cotton material and has a curved shape when installed in the cartridge 300. However, in other implementations, the liquid transport element 316 may have other shapes and may be formed from various materials configured to transport liquids by capillary action or the like. For example, in some implementations, the liquid transport element can be formed from a fibrous material (e.g., organic cotton, cellulose acetate, regenerated cellulose fabric, glass fiber), porous ceramic, porous carbon, graphite, porous glass, sintered glass beads, sintered ceramic beads, capillaries, etc. In other implementations, the liquid transport element can be any material that includes an open pore network (i.e., multiple pores interconnected so that fluid can flow from one pore to another in multiple directions through the element). As further described herein, some implementations of the present disclosure may specifically relate to the use of non-fibrous transport elements. Thus, fibrous transport elements can be explicitly excluded. Alternatively, a combination of fibrous and non-fibrous transport elements may be utilized. Representative types of substrates, reservoirs, or other components for supporting aerosol precursors are described in U.S. Patent No. 8,528,569 to Newton; U.S. Patent Application Publication Nos. 2014 / 0261487 to Chapman et al. and 2014 / 0059780 to Davis et al.; and U.S. Patent Application Publication No. 2015 / 0216232 to Bless et al., which are incorporated herein by reference in their entireties. Additionally, various wicking materials, and the configuration and operation of these wicking materials within specific types of electronic cigarettes, are described in U.S. Patent No. 8,910,640 to Sears et al., which is incorporated herein by reference in its entirety. In some implementations, the liquid transport element may be partially or completely formed from a porous monolith, such as a porous ceramic or porous glass.Exemplary ceramic materials suitable for use in accordance with embodiments of the present disclosure are described, for example, in U.S. Patent Application No. 14 / 988,109, filed January 5, 2016, and U.S. Patent Application Publication No. 2014 / 0123989 to LaMothe, the disclosures of which are incorporated herein by reference in their entireties.
[0105] As shown, the heating element 318 of the illustrated implementation is also configured to be disposed within the base member 314. Notably, the heating element 318 of the illustrated implementation comprises a heating element having a substantially flat profile (e.g., initially formed as a substantially flat element). Although other implementations may differ, in the illustrated implementation, the heating element 318 includes a first end, a second end, and a heater loop connecting the first end and the second end. Notably, the heater loop of the illustrated implementation includes a serpentine pattern of heater traces connected to their respective ends and extending substantially transverse to the longitudinal axis of the heating element to connect the first end to the second end. While in some implementations the heater traces may be solid, the heater traces of the illustrated implementation comprise multiple split traces. In the illustrated implementation, the edges of the heating element are substantially solid, and the multiple split traces are disposed in a central region of the heating element. As such, the heater loop of the illustrated implementation may be configured to concentrate heat in the area of the heating element configured to contact the liquid transport element 316 .
[0106] In some implementations, the heating element can maintain a substantially flat profile when attached to the cartridge; however, when the heating element 318 of the illustrated implementation is attached to the cartridge 300, it has a curved or arcuate shape that corresponds to the curved shape of the liquid transport element 316 (see also FIG. 11 ). As such, the heating element 318 in the installed position contacts the bottom surface of the liquid transport element 316. In the illustrated implementation, the curved form of the flat heating element 318 can provide a large ratio of cross-sectional flow area to flow path length through the liquid transport element 316. This can provide improved performance with respect to delivery of the liquid composition to the liquid transport element 316. When installed, the edges of the heating element 318 are configured to engage with the base member 314 so that the heating element 318 maintains its curved shape. As such, the curvature of the heating element 318 can also provide a compressive force against the liquid transport element 316. Furthermore, the spring restoring force of the heating member 318 allows the edges of the heating member 318 to position or lock within the base member 314, which can reduce or eliminate the need for additional features configured to hold the heating member 318 within the base member 314 from the other side. The installed curvature of the heating member 318 also biases deflection of the heating member 318 that may occur with thermal expansion toward the liquid transport element 316, thus helping to maintain thermal contact between the heating member 318 and the liquid transport element 316. In the illustrated implementation, the liquid transport element 316 and the heating member 318 comprise a heating assembly 334 that, together with the base member 314 and the bottom cap 326, defines a vaporization chamber 332.
[0107] It should be noted that some implementations need not include a heating assembly, but rather may include an atomization assembly configured to generate the aerosol in another manner. Some examples of atomization assemblies that generate the aerosol in another manner can be found, for example, in U.S. Patent Application No. 16 / 544,326, filed August 19, 2019, entitled "Detachable Atomization Assembly for Aerosol Delivery Device," which is incorporated herein by reference in its entirety.
[0108] In the illustrated implementation, the heating element 318 can be made from a metallic material, such as a stainless steel material, including, but not limited to, 316L, 316, 304, or 304L stainless steel. In other implementations, the heating element can be made from different materials, such as Kanthal (FeCrAl), nichrome, molybdenum disilicide (MoSi), molybdenum silicide (MoSi), aluminum-doped molybdenum disilicide (Mo(Si,Al)), titanium, platinum, silver, palladium, alloys of silver and palladium, graphite, and graphite-based materials (e.g., carbon-based foams and threads). In further implementations, the heating element can be formed from conductive ink, boron-doped silica, and / or ceramic (e.g., positive or negative temperature coefficient ceramic). Other types of heaters, such as laser diodes or microheaters, can also be utilized. The laser diode can be configured to deliver electromagnetic radiation of a specific wavelength or wavelength band that can be tuned for vaporizing the aerosol precursor composition and / or for heating a liquid transport element to which the aerosol precursor composition can be provided for vaporization. The laser diode can be specifically positioned to deliver electromagnetic radiation into a chamber, and the chamber can be configured to be a radiation trap (e.g., a black body or a white body). Suitable microheaters are described in U.S. Pat. No. 8,881,737 to Collett et al., incorporated herein by reference in its entirety. The microheater can include, for example, a substrate (e.g., quartz, silica) having a heater trace thereon (e.g., a resistive element such as Ag, Pd, Ti, Pt, Pt / Ti, boron-doped silicon, or other metal or metal alloy), which can be printed or otherwise applied to the substrate. A passivation layer (e.g., aluminum oxide or silica) can be provided on the heater trace. Other heaters are described in US Patent Application Publication No. 2016 / 0345633 to DePiano et al., which is incorporated herein by reference in its entirety.
[0109] Although other implementations may provide additional and / or different contact mechanisms, the heating element 318 in the illustrated implementation includes a pair of contact holes 331A, 331B configured to connect the heating element 318 to the heater connectors 320A, 320B of the cartridge 300. In the illustrated implementation, the heater connectors 320A, 320B are made of a conductive material and are plated with nickel and / or gold. Examples of conductive materials include, but are not limited to, copper, aluminum, platinum, gold, silver, iron, steel, brass, bronze, graphite, conductive ceramic materials, and / or any combination thereof. In the illustrated implementation, the contact holes 331A, 331B are configured to have an inner diameter that is smaller than the outer diameter of the mating portions of the heater connectors 320A, 320B. In some implementations, the contact holes may include one or more features (e.g., one or more fingers or extensions) that form an effective inner diameter that is smaller than the outer diameter of the mating portions of the heater connectors 320A, 320B. As such, the contact holes 331A, 331B of the heating element 318 can form an interference fit with the upper ends of the heater connectors 320A, 320B such that the heating element 318 can maintain electrical contact with the heater connectors 320A, 320B. In the illustrated implementation, the lower ends of the heater connectors 320A, 320B are sealed around their respective peripheries by a pair of O-rings 322A, 322B configured to form a substantially air-tight and liquid-tight seal between the heater connectors 320A, 320B and the bottom cap 326. As such, the O-rings 322A, 322B of the illustrated implementation can be made from silicone rubber, boron nitride (BN) rubber, natural rubber, thermoplastic polyurethane, or another resilient material.
[0110] The bottom cap 326 in the illustrated implementation is configured to be secured to the distal end of the reservoir 310 via snap features included on one or both of the bottom cap 326 and the reservoir 310. However, other attachment methods are possible (e.g., via adhesive, heat staking / welding, ultrasonic welding, etc.). In the illustrated implementation, the bottom cap 326 of the cartridge 300 includes a cartridge air inlet channel 330 located approximately in the center of the bottom surface of the bottom cap 326. Although other configurations are possible, in the illustrated implementation, the cartridge air inlet channel 330 has a nozzle-like shape. In particular, the cartridge air inlet channel 330 in the illustrated implementation includes a first portion (proximate the bottom surface of the bottom cap 326) having a substantially cylindrical shape and a second portion having a substantially conical shape and leading to the vaporization chamber 332. In this manner, the inner diameter of the cartridge air inlet channel 330 decreases before leading to the vaporization chamber 332. This configuration can help keep liquid accumulation leading to the vaporization chamber 332 relatively far from the air inlet channel 330 .
[0111] Although other configurations are possible, the cartridge 300 in the illustrated implementation also includes a pair of metal inserts 324A, 324B configured to be disposed within and exposed through a bottom surface of the bottom cap 326. In some implementations, the metal inserts 324A, 324B may be configured for a press-fit or snap-fit connection with the bottom cap 326. In other implementations, the metal inserts may be the product of an insert molding process such that the bottom cap 326 and the metal inserts 324A, 324B form a single piece. In the illustrated implementation, the metal inserts 324A, 324B comprise any material configured to be attracted by a magnet, such as various ferromagnetic materials, including, but not limited to, alloys such as iron, nickel, cobalt, steel, and / or any combination thereof.
[0112] As described above, when the cartridge 300 is coupled to the cartridge receiving chamber 230 of the controller 200, a mechanical and electrical connection is formed between the cartridge 300 and the controller 200. In particular, when the cartridge 300 in the illustrated implementation is coupled to the upper frame 206 of the controller 200, a magnetic connection is formed between the magnets 246A, 246B located on the upper frame 206 and the metal inserts 324A, 324B located on the bottom cap 326 of the cartridge 300. Furthermore, when the cartridge 300 in the illustrated implementation is coupled to the inner frame 206, an electrical connection is formed between the pair of conductive pins 236A, 236B of the controller 200 and the heater connectors 320A, 320B of the cartridge 300. Thus, when the cartridge 300 in the illustrated implementation is coupled to the controller 200, the cartridge 300 is mechanically biased into connection with the controller 200 such that an electrical connection is maintained between the cartridge 300 (particularly the heating assembly 334) and the controller (particularly the control component 214 and the battery 216).
[0113] When the cartridge 300 of the illustrated implementation is coupled with the control unit 200, an electrical connection between the control unit 200 and the heating element 318 of the cartridge 300 (via the conductive pins 236A, 236B of the control unit 200 and the heater connectors 320A, 320B of the cartridge) allows the control body 200 to direct an electric current to the heating element 318. In the illustrated implementation, this can occur when a puff in the aerosol delivery device 100 is detected (or, in other implementations, via user actuation, such as via a push button). When a user of the aerosol device 100 of the illustrated implementation inhales on the mouthpiece 302, inlet airflow is directed into the device 100 through a gap 400 (see FIG. 11 ) between the cartridge 300 (e.g., the outer wall of the cartridge 300) and the control unit 200 (e.g., the inner wall of the control unit 200 that defines its receiving chamber 230).
[0114] In the illustrated implementation, the gap 400 comprises a peripheral gap extending substantially around the entire circumference of the cartridge 300. It should be understood that in other implementations, the gap need not extend around the entire circumference of the cartridge; for example, in some implementations, the gap may comprise one or more gaps that extend around a portion of the circumference of the cartridge rather than the entire circumference, and in some implementations, the gap may comprise one or more individual holes. As shown, the gap 400 begins at the interface between the outer surface of the cartridge 300 and the inner surface of the control device 200. In particular, the gap 400 begins at the interface between the outer surface of the mouthpiece 302 of the cartridge 300 and the upper edge of the outer wall 204 of the housing 202 of the control device 200. However, in other implementations, the gap may begin at another interface between the cartridge and the control device. For example, in one implementation, the gap may begin at the interface between the outer surface of the cartridge below the mouthpiece and the inner surface of the control device. Although other implementations may differ, in the illustrated implementation, the opening defined by the upper edge of the outer wall of the housing 202 is larger in size than the outer circumferential surface of the mouthpiece 302 so that the maximum perimeter of the cartridge 300 is fully received within the receiving chamber 230. Additionally, as shown in FIG. 11 , when the cartridge 300 of the illustrated implementation is coupled to the control device 200, a portion of the mouthpiece 302 extends into the receiving chamber 230 below the upper edge of the outer wall of the housing 202.
[0115] In the illustrated implementation, a gap 400 between the cartridge 300 and the control device 200 is established and maintained by features of the cartridge 300 and the control device 200. Although other configurations are possible, the upper frame 206 of the illustrated implementation includes a plurality of protrusions 260 (see FIG. 6 ) spaced about the inner surface of the upper frame 206 and configured to laterally position the cartridge 300. In the illustrated implementation, the plurality of protrusions 260 comprise a plurality of raised, elongated bosses extending from approximately the top of the upper frame 206 to its concave surface 244. When the cartridge 300 of the illustrated implementation is coupled to the control device 200, the plurality of protrusions 260 of the upper frame 206 contact the outer surface of the cartridge 300 (particularly, the outer surface of the mouthpiece 302 and / or the outer surface of the reservoir 310 and / or the outer surface of the bottom cap 326). In this manner, the protrusions 260 laterally position the cartridge 300 relative to the upper frame 206, thus establishing and maintaining the gap 400. It should be understood that in other implementations, the protrusions may take other forms (e.g., including one or more bumps) and may be located on one or more components of the cartridge rather than (or in addition to) the control device.
[0116] When a user draws on the device 100, air entering the gap 400 between the cartridge 300 and the control device 200 travels downward, around the outside of the cartridge 300, and beneath its bottom cap 326. In the illustrated implementation, the drawn air can travel beneath the bottom cap 326 due to the vertical position of the cartridge 300 relative to the bottom of the cartridge-receiving chamber 230. Notably, the vertical position of the cartridge 300 in the illustrated implementation is established using one or more of the positioning features 248A, 248B, 250A, 250B extending upward from the recessed surface 244 of the upper frame 206, at least one of which is configured to contact the bottom surface of the bottom cap 326 when the cartridge 300 is coupled with the control device 200. In that way, when the cartridge 300 is received within the control device 200, the gap between the cartridge 300 and the control device 200 is also established between the bottom of the bottom cap 326 and the recessed surface 244 of the upper frame 206.
[0117] As noted above, although other configurations are possible, the bottom cap 326 in the illustrated implementation includes an inlet channel 330 located approximately in the center of the bottom surface of the bottom cap 326. Due to the gap established between the bottom of the bottom cap 326 and the concave surface 244 of the upper frame 206, intake air traveling around the outside of the cartridge 300 and below the bottom cap 326 enters the cartridge 300 through the inlet channel 330 in the bottom cap 326. The air entering through the inlet channel 330 then enters the vaporization chamber 332 of the cartridge 300, as indicated by the beginning of the arrowed flow path shown in Figures 11-13. As air is drawn into the cartridge 300 through the inlet channel 330, the pressure sensor 240 of the control device 200 detects the suction. In the illustrated implementation, the pressure sensor 240 can detect the suction by sensing a pressure drop within the cartridge 300. In the illustrated implementation, the pressure drop within the cartridge 300 is transmitted to the pressure sensor 240 via a single offset pressure channel 342 defined in the bottom cap 326 of the cartridge 300. The pair of upper frame seal tubes 209A, 209B of the upper frame seal 208 of the controller 200 are configured such that, regardless of the rotational orientation of the installed cartridge 300, when the cartridge 300 is mated with the controller 200, one of the seal tube channels 211A, 211B of the upper frame seal tubes 209A, 209B substantially aligns with the offset pressure channel 342 of the cartridge 300, as shown in FIG. 11 . In the illustrated implementation, the cavity defined by the pressure sensor seal 210 and the bottom of the upper frame seal 208 (with which the pressure channel 342 communicates when the cartridge 300 is mated with the controller) represents a substantially sealed cavity. During suction of the device 100 in the illustrated implementation, there is substantially little or no air flow through the pressure channel 342, and therefore the pressure channel 342 acts as a static pressure line, thereby having substantially no effect on the system pressure drop.
[0118] When suction is detected by the pressure sensor 240, the control component 214 applies current to the heating element 318 to heat it. As the heating element 318 heats, at least a portion of the liquid composition contained in the liquid transport element 316 is vaporized in the vaporization chamber 332. The aerosol generated in the vaporization chamber 332 can then be directed toward the user. In particular, when air enters the cartridge 300 via the air inlet channel 330, the air travels through the vaporization chamber 332, where it impinges substantially perpendicularly on the heating element 318 and mixes with the vaporized liquid composition to become an aerosol. Due to the geometry of the vaporization chamber 332 and the bottom cap 326, the aerosol splits into two separate paths that extend through the interior of the bottom cap 326 and then through aerosol flow conduits 333A, 333B defined on either side of the reservoir cavity 328 of the tank 310 (see FIGS. 12B and 13). This relatively tortuous configuration can increase the effective flow path length and area for heat sinking, thus increasing cooling of the aerosol stream before it reaches the user. As shown, the two aerosol paths converge at the proximal end of the tank 310 and below the upper aerosol channel insert 306. The recombined aerosol then flows through the upper aerosol channel insert 306 and out the outlet portal 315 of the mouthpiece 300 to the user. It should be appreciated that the aerosol passages downstream from the entrance of the air inlet channel 330 are configured to be oversized to minimize any additional system pressure drop created by these passages. In this manner, the device is configured so that the majority of the system pressure drop is at the location of the pressure channel 342 to maximize the pressure “signal” available to the pressure sensor 240.
[0119] Although other configurations are possible, in the illustrated implementation, the upper aerosol channel insert 306 is configured to absorb liquid formed by deposition and / or condensation from the aerosol formed in the vaporization chamber 332 and is configured to have rigid or semi-rigid properties. Accordingly, the upper aerosol channel insert 306 in the illustrated implementation may be made from fibers, sintered beads, or open-cell foam material. As such, the upper aerosol channel insert 306 may be configured for press-fit or snap-fit attachment with the mouthpiece 302. The upper aerosol channel insert 306 is also configured to help prevent liquid buildup from exiting the cartridge 300 through the mouthpiece 302. Furthermore, the upper aerosol channel insert 306 is positioned such that the aerosol generated in the vaporization chamber 332 passes through the insert 306 just before exiting the cartridge 300. In the illustrated implementation, the inner cavity of the upper aerosol channel insert 306 can also function as a cooling chamber in which the formed aerosol can expand and / or cool before passing through the exit portal 315. In some implementations, the vaporization chamber 332 and the cooling chamber may be configured to have a defined relative volume ratio.
[0120] 14 shows an exploded perspective view of a control device of an aerosol delivery device according to another exemplary implementation of the present disclosure. As shown, the control device 400 of the illustrated implementation generally includes a housing 402 defining an outer wall 404, an upper frame 406, a pressure sensor seal 410, a lower frame 412, a control component 414, a battery 416, a vibration motor 418, a motor housing 420, a pin seal 422, an end cap 424, a light diffuser 426 (shown assembled to the end cap 424), and a vent 439. The control device 400 of the illustrated implementation also includes a front foam pad 431, a rear foam pad 433, an upper chassis seal 435, and a base seal 437. In the illustrated implementation, the front foam pad is configured to be disposed between the battery 416 and the control component 414, and the rear foam pad 433 is configured to be disposed between the battery 416 and the lower frame 412. An upper chassis seal 435 is configured to seal around the upper frame 406, and a base seal 437 is configured to seal around the end cap 424. The arrangement of the components of the control device 400 is shown in FIG. 15. In particular, FIG. 15 shows a front cross-sectional view of the control device 400. As shown, the upper frame 406 of the control device 400 defines a cartridge-receiving chamber 430 within which a cartridge can be coupled. The control device 400 also includes an outer wall 404 of the housing 402, as well as a pair of opposing viewing windows 432 defined through the upper frame 406. As described in more detail below, in various implementations, the viewing windows 432 can provide a user with the ability to view one or more components (and / or their status) of an installed cartridge. However, it will be understood that the illustrated viewing windows 432 are provided by way of example and not limitation. For example, alternative implementations may include viewing windows 432 having different shapes than those illustrated. As another example, some implementations may include only a single viewing window 432 or may omit the viewing window 432 entirely. In the illustrated implementation, the upper frame 406 and the housing 402 represent different components.However, in other implementations, the upper frame and the housing may be formed continuously such that they comprise the same part.
[0121] In the illustrated implementation, the housing 402 comprises a metal material such as, for example, aluminum. However, in other implementations, the housing may comprise a metal alloy material, and in still other implementations, the housing may comprise a molded polymer material. In the illustrated implementation, one or more of the upper frame 406, the lower frame 412, and the end cap 424 may be made from a molded polymer material, such as, for example, a molded plastic material (e.g., polybutylene terephthalate (PBT), acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high-impact polystyrene, polypropylene, and combinations thereof). In other implementations, one or more of these components may be made from other materials, including, for example, a metal material (e.g., aluminum, stainless steel, metal alloy, etc.), a glass material, a ceramic material (e.g., alumina, silica, mullite, silicon carbide, silicon nitride, aluminum nitride, etc.), a composite material, and / or any combination thereof.
[0122] In the illustrated implementation, the lower frame 412 is configured to house a battery 416 in its interior region. In the illustrated implementation, the battery may include a lithium polymer (LiPo) battery. However, various other batteries may be suitable. Some other examples of batteries that may be used in accordance with the present disclosure are described in U.S. Patent Application Publication No. 2010 / 0028766 to Peckerar et al., the disclosure of which is incorporated herein by reference in its entirety. In some implementations, other types of power sources may be utilized. For example, in various implementations, the power source can comprise a replaceable or rechargeable battery, a solid-state battery, a thin-film solid-state battery, a rechargeable supercapacitor, etc., and thus can be combined with any type of charging technology, including connection to a wall charger, connection to an automobile charger (e.g., a cigarette lighter socket, a USB port, etc.), connection to a USB connector (e.g., USB 2.0, 3.0, 3.1, USB Type-C, which can be implemented in wall outlets, electronic devices, vehicles, etc.), connection to a photovoltaic cell (sometimes called a solar cell) or solar panel, chargers using inductive wireless charging (e.g., including wireless charging according to the Qi wireless charging standard from the Wireless Power Consortium (WPC)) or wireless chargers such as radio frequency (RF)-based chargers, and connection to an array of external cells such as a power bank for charging the device via a USB connector or wireless charger. An example of an inductive wireless charging system is described in U.S. Patent Application Publication No. 2017 / 0112196 by Sur et al., which is incorporated herein by reference in its entirety. In further implementations, the power source can also include a capacitor. Because capacitors can discharge faster than batteries and can be charged between puffs, the battery can be discharged into the capacitor at a slower rate than if it were used to directly power the heating element. For example, a supercapacitor, such as an electric double layer capacitor (EDLC), can be used separately from or in combination with a battery. When used alone, the supercapacitor can be recharged each time the article is used.Thus, the device may also include a charger component that can be attached to the smoking article during use to replenish the supercapacitor. Examples of power sources that include supercapacitors are described in U.S. Patent Application Publication No. 2017 / 0112191 to Sur et al., which is incorporated herein by reference in its entirety.
[0123] The aerosol delivery device 400 of the illustrated implementation includes a control mechanism in the form of a control component 414 configured, in part, to control the amount of power supplied to the heating element of the cartridge. Although other configurations are possible, the control component 414 of the illustrated implementation comprises a circuit board 434 (e.g., a printed circuit board (PCB)) that includes both rigid and flexible portions. In particular, the circuit board 434 of the illustrated implementation includes a rigid central section 415 and two rigid end sections, including a proximal end section 417 and a distal end section 419, with each end section 417, 419 connected to the central section 415 by a respective flexible connection. As such, when the lower frame 412, battery 416, and circuit board 434 are assembled into the control device 400, the central section 415 of the circuit board 434 is configured to be positioned proximate a major surface of the battery 416, and the two end sections 417, 419 are configured to be positioned substantially perpendicular to the central section 415. In particular, a proximal end section 417 of the circuit board 434 is configured to extend across the top of the lower frame 412, and a distal end section 419 is configured to extend across the bottom of the lower frame 412. The lower frame 412 of the control device 400 is also configured to house a motor housing 420 in which a vibration motor 418 is received. In various implementations, the vibration motor 418 can provide tactile feedback regarding various operations of the device.
[0124] The central section 415 of the illustrated implementation also includes an indicator in the form of a light source 421. In some implementations, the light source may comprise, for example, at least one light emitting diode (LED) capable of providing light of one or more colors. In other implementations, the light source may be configured to emit light of only one color, while in other implementations, the light source may be configured to emit light of a variety of different colors. In still other implementations, the light source may be configured to provide white light. In the illustrated implementation, the light source 421 comprises an RGB (red, green, blue) LED configured to provide light of various colors, including white light. The central section 415 of the illustrated circuit board 434 also includes electrical contacts 423 configured to operably connect the circuit board 434 to the vibration motor 418. Other types of electronic components, their structure and configuration, their features, and their general method of operation are described in U.S. Pat. No. 4,735,217 to Gerth et al.; U.S. Pat. No. 4,947,874 to Brooks et al.; U.S. Pat. No. 5,372,148 to McCafferty et al.; U.S. Pat. No. 6,040,560 to Fleischhauer et al.; U.S. Pat. No. 7,040,314 to Nguyen et al. and U.S. Pat. No. 8,205,622 to Pan; U.S. Pat. App. Pub. Nos. 2009 / 0230117 to Fernando et al., 2014 / 0060554 to Collet et al., and 2014 / 0270727 to Ampolini et al.; and U.S. Pat. App. Pub. No. 2015 / 0257445 to Henry et al., which are incorporated herein by reference.Still other features, controls, or components that may be incorporated into the aerosol delivery devices of the present disclosure include those disclosed in U.S. Pat. No. 5,967,148 to Harris et al.; U.S. Pat. No. 5,934,289 to Watkins et al.; U.S. Pat. No. 5,954,979 to Counts et al.; U.S. Pat. No. 6,040,560 to Fleischhauer et al.; U.S. Pat. No. 8,365,742 to Hon; U.S. Pat. No. 8,402,976 to Fernando et al. ..., all of which are incorporated herein by reference in their entireties. U.S. Patent Application Publication No. 2010 / 0163063 to Tucker et al.; U.S. Patent Application Publication No. 2013 / 0192623 to Leven et al.; U.S. Patent Application Publication No. 2013 / 0298905 to Leven et al.; U.S. Patent Application Publication No. 2013 / 0180553 to Kim et al., U.S. Patent Application Publication No. 2014 / 0000638 to Sebastian et al., U.S. Patent Application Publication No. 2014 / 0261495 to Novak et al., and U.S. Patent Application Publication No. 2014 / 0261408 to DePiano et al.
[0125] In the illustrated implementation, the vent 439 is configured to be positioned inside the housing 402 to cover the opening 425. Accordingly, in the illustrated implementation, one side of the vent 439 may include a pressure-sensitive adhesive. In the illustrated implementation, the vent 439 includes a breathable membrane material, such as a Gore-Tex® material. However, other suitable materials are possible. In the illustrated implementation, the light source 421 is covered by a light diffuser 426, a portion of which is configured to be received by the end cap 424. Thus, when assembled, the light diffuser 426 is positioned within or adjacent to the distal end of the opening 425 defined in the outer wall 404 of the housing 402. In the illustrated implementation, the opening 425 includes a narrow, elongated opening. However, in other implementations, the opening may be provided in any desired shape and may be located at any location on the control device 400. In some implementations, the light diffuser 426 can comprise a transparent or translucent member configured to allow a user to view the light source 421 from outside the housing 402. In the illustrated implementation, the light diffuser 426 can be made from a molded polymeric material such as, for example, a molded plastic material (e.g., polybutylene terephthalate (PBT), acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high impact polystyrene, polypropylene, and combinations thereof), although other materials are possible, including glass. In various implementations, additional indicators (e.g., other tactile feedback components, audio feedback components, etc.) can be included in addition to or in place of the indicators included in the illustrated implementation.Additional exemplary types of components that generate visual cues or indicators, such as LED components, and their construction and use are described in U.S. Pat. No. 5,154,192 to Sprinkel et al.; U.S. Pat. No. 8,499,766 to Newton and U.S. Pat. No. 8,539,959 to Scatterday; U.S. Patent Application Publication No. 2015 / 0020825 to Galloway et al.; and U.S. Patent Application Publication No. 2015 / 0216233 to Sears et al., which are incorporated by reference in their entireties.
[0126] Although other configurations are possible, the proximal end section 417 of the circuit board 434 in the illustrated implementation includes a pair of conductive pins 436A, 436B, as well as a pressure sensor 440. In the illustrated implementation, the conductive pins 436A, 436B comprise spring-loaded pins (e.g., electrical pogo pins) that extend through the upper frame 406 such that a portion of the end of the pins 436A, 436B extends into the cartridge-receiving chamber 430 and is biased to that position by the force of the internal springs of the conductive pins 436A, 436B. In that way, when a cartridge is coupled to the control device 400, the conductive pins 436A, 436B contact corresponding features on the cartridge and are configured to deflect downward (e.g., toward the lower frame 412) against the force of the springs, thus operably connecting the installed cartridge to the control component 414 and battery 416. In the illustrated implementation, the conductive pins 436A, 436B comprise gold-plated metal pins. However, other materials or combinations of materials are possible, which may also include coatings and / or platings of conductive materials. Examples of conductive materials include, but are not limited to, copper, aluminum, platinum, gold, silver, iron, steel, brass, bronze, graphite, conductive ceramic materials, and / or any combination thereof. Although other contours are possible, the ends of the conductive pins 436A, 436B in the illustrated implementation have a rounded contour to facilitate deflection of the conductive pins 436A, 436B when a cartridge is inserted into the cartridge-receiving chamber 430. In other implementations, the conductive pins may be positioned at other locations in the cartridge-receiving chamber 430, such as near the top of the cartridge-receiving chamber 430. In other implementations, the conductive pins may be positioned at a point on the side of the upper frame 406 between the proximal end of the outer housing 402 and the bottom wall of the upper frame 406. Furthermore, in still other implementations, the conductive pins may be positioned between the midpoint of the side wall and the proximal end of the outer housing 402 (i.e., in the upper half of the side wall). Alternatively, the conductive pins may be located between the midpoint of the side wall and the bottom wall of the inner frame wall (e.g., in the lower half of the side wall). Additionally, in still other implementations, the conductive pins may be located anywhere on the upper frame 406.
[0127] In various implementations, the aerosol delivery device may include an airflow sensor, a pressure sensor, etc. As mentioned above, the control component 414 of the illustrated implementation includes a pressure sensor 440 positioned proximate to and below the cartridge-receiving chamber 430. The location and function of the pressure sensor 440 in the illustrated implementation are described below. However, in other implementations, the airflow or pressure sensor may be located anywhere within the control device 400 so as to receive airflow and / or pressure changes that can signal inhalation of the device and therefore cause the battery 416 to power the heating element of the cartridge. Various configurations of printed circuit boards and pressure sensors are described, for example, in U.S. Patent Application Publication No. 2015 / 0245658 to Worm et al., the disclosure of which is incorporated herein by reference in its entirety. In the absence of an airflow sensor, a pressure sensor, etc., the aerosol delivery device may be manually activated via a push button, etc., that may be located on the control device and / or cartridge. For example, one or more push buttons can be used, as described in U.S. Patent Application Publication No. 2015 / 0245658 to Worm et al., which is incorporated herein by reference in its entirety. Similarly, a touch screen can be used, as described in U.S. Patent Application No. 14 / 643,626 to Sears et al., filed March 10, 2015, which is incorporated herein by reference in its entirety. As a further example, a component adapted for gesture recognition based on designated movements of the aerosol delivery device may be used as input. See U.S. Patent Application Publication No. 2016 / 0158782 to Henry et al., which is incorporated herein by reference in its entirety.
[0128] Although not included in the illustrated implementation, some implementations may include other types of input elements that can replace or supplement the airflow or pressure sensors. Inputs may be included to allow a user to control device functions and / or for outputting information to the user. Any component or combination of components may be utilized as an input for controlling device functions. In some implementations, the input may comprise a computer or computing device, such as a smartphone or tablet. In particular, the aerosol delivery device may be hardwired to a computer or other device, such as via a USB cord or similar protocol. The aerosol delivery device may also communicate with a computer or other device that serves as an input via wireless communication. See, for example, the systems and methods for controlling a device via a read request described in U.S. Patent Application Publication No. 2016 / 0007561 to Ampolini et al., the disclosure of which is incorporated herein by reference in its entirety. In such embodiments, an app or other computer program may be used in conjunction with a computer or other computing device to input control instructions to the aerosol delivery device, including, for example, the ability to form an aerosol of a specific composition by selecting the nicotine content and / or additional flavoring content to be included. Further exemplary types of sensing or detection mechanisms, their structure and configuration, their components, and their general methods of operation are described in U.S. Pat. No. 5,261,424 to Sprinkel, Jr.; U.S. Pat. No. 5,372,148 to McCafferty et al.; and WO 2010 / 003480 to Flick, which are incorporated by reference in their entireties.
[0129] In the illustrated implementation, pressure sensor seal 410 is configured to cover pressure sensor 440 and protect it from liquids and / or aerosols from an installed cartridge. As such, pressure sensor seal 410 of the illustrated implementation (as well as other sealing members including upper chassis seal 435, lower chassis seal 437, motor housing 420, and pin seal 422) can be made from silicone rubber, boron nitride (BN) rubber, natural rubber, thermoplastic polyurethane, or another resilient material.
[0130] The distal end section 419 of the circuit board 434 includes an external connection element 438, although other configurations are possible. In various implementations, the external connection element 438 may be configured to connect to an external connector and / or a docking station or other power or data source. For example, in some implementations, the external connector may include first and second connector ends that can be interconnected by a union, which may be, for example, a variable-length cord. In some implementations, the first connector end may be configured for electrical and, optionally, mechanical connection with a device, and the second connector end may be configured for connection to a computer or similar electronic device or for connection to a power source. An adapter including a USB connector on one end and a power unit connector on the opposite end is disclosed in U.S. Patent Application Publication No. 2014 / 0261495 to Novak et al., which is incorporated herein by reference in its entirety. In the illustrated implementation, a pin seal 422 is configured to seal the interface between the external connection element 438 and the end cap 424. In the illustrated implementation, one or more pins of the external connection element 438 can extend through the end cap 424 of the control device, as described above. In the illustrated implementation, the end cap 424 also includes a pair of end cap pins 441A, 441B, which can be secured to the end cap 424. For example, in some implementations, the end cap pins 441A, 441B can be insert molded into the end cap 424. In some implementations, the bottom surfaces of the end cap pins 441A, 441B (which can be flat in some implementations) can be configured to provide an attractive force to a magnet included in the external charger assembly. As such, the end cap pins 441A, 441B can be made from any material configured to be attracted by a magnet, such as various ferromagnetic materials, including, but not limited to, steel, iron, nickel, cobalt, other alloys, and / or any combination thereof. A detailed view of the end cap assembly is shown in FIG. 16.
[0131] Referring back to FIG. 15 , the upper frame 406 includes a pair of magnets 446A, 446B exposed within the cartridge-receiving chamber 430. In various implementations, the magnets 446A, 446B can comprise any type of magnet, including rare earth magnets. For example, in some implementations, one or more of the magnets can include neodymium magnets (also known as NdFeB, NIB, or Neo magnets). In various implementations, different grades of neodymium magnets can be used, including, for example, N35, N38, N40, N42, N45, N48, N50, and / or N52 grades. In other implementations, one or more of the magnets can include samarium-cobalt magnets (also known as SmCo magnets). In yet other implementations, one or more of the magnets can include ceramic / ferrite magnets. In other implementations, one or more of the magnets can include aluminum-nickel-cobalt (AlNiCo) magnets. In any of the foregoing implementations, one or more of the magnets can be plated and / or coated. For example, in some implementations, one or more of the magnets may be coated with nickel. In other implementations, one or more of the magnets may be coated with one or more of zinc, tin, copper, epoxy, silver, and / or gold. In some implementations, one or more of the magnets may be coated with a combination of these materials. For example, in one implementation, one or more of the magnets may again be coated with nickel, copper, and nickel. In another implementation, one or more of the magnets may be coated with an overcoat of nickel, copper, nickel, and gold.
[0132] FIG. 16 shows a perspective view of an end cap assembly according to an exemplary implementation of the present disclosure. In particular, FIG. 16 shows a perspective view of the end cap 424, the light diffuser 426, and the end cap pins 441A, 441B. As shown, the end cap 424 also includes a seal groove 442 extending around the distal periphery of the end cap 424. Referring back to FIG. 15, the seal groove 442 of the end cap 424 is configured to receive an end cap seal 443 that provides a sealing interface between the end cap 424 and the housing 402, particularly the inner surface of the outer wall 404. In various implementations, the end cap seal 443 can be made from silicone rubber, boron nitride (BN) rubber, natural rubber, thermoplastic polyurethane, or another resilient material. As also shown in FIG. 15, in various implementations, the upper portions of the end cap pins 441A, 441B are configured to engage with the lower frame 412. For example, in the illustrated implementation, the tops of the end cap pins 441A, 441B are configured to form an interference or press-fit engagement with corresponding slotted openings in the lower frame 412. In various implementations, the interface between the end cap 424 and the housing 402 (e.g., via the interface between the end cap seal 443 and the inner surface of the outer housing wall 404 and / or the end cap pins 441A, 441B and the top of the lower frame 412) can form a press-fit engagement with the housing 402 that is releasably configured such that the end cap 424 (or end cap assembly) may be removable.
[0133] In various implementations, the control device can include one or more components configured to meet battery gassing requirements under UL 8139. For example, the control device can include an end cap configured to vent in the event of a sudden pressurization within the control device enclosure. In one implementation, the end cap can include a retaining pin extending substantially perpendicularly from a wall of the end cap. The retaining pin can be configured to mate with a receiving feature (e.g., a hole) in the frame of the control device to establish a friction fit or press fit that can be released if the internal pressure within the control device housing exceeds a specified internal pressure.
[0134] 17A-17C illustrate several subassemblies that together make up the control device 400. In particular, FIG. 17A illustrates a lower inner subassembly 447 and an upper inner subassembly 445, FIG. 17B illustrates an inner subassembly 451 and a housing subassembly 449, and FIG. 17C illustrates a main subassembly 453 and an end cap subassembly 455. In the illustrated implementation, the upper inner subassembly 445 is assembled by applying adhesive to receiving pockets in the upper frame 406 and press-fitting the magnets 446A and 446B into the upper frame 406. Additionally, the sensor seal 410 is pressed into the receiving pocket in the upper frame 406, and the upper chassis seal 435 is pulled into a receiving groove in the upper frame 406. In the illustrated implementation, the lower inner subassembly 447 is assembled by soldering the battery 416 to the circuit board 434 (in the illustrated implementation, the vibration motor 418 is pre-soldered to the circuit board 434). The circuit board 434 is then coupled to the battery 416 using a front foam pad 431, which may have adhesive material on both sides. The motor housing 420 may then be pressed onto the vibration motor 418, such as by an interference fit. The circuit board 434 with attached components may then be inserted into the lower frame 412 with the rear foam pad 433 disposed therebetween (adhesive may be present on one or both sides of the rear foam pad 433 to aid in assembly). As shown in FIG. 17A , the lower inner subassembly 447 and the upper inner subassembly 445 may then be assembled together via one or more snap mechanisms that may be included in the upper inner subassembly 445 and / or the lower inner subassembly 447. As shown in FIG. 17B , an inner subassembly 451, comprised of the lower inner subassembly 447 and the upper inner subassembly 445, may then be inserted into a housing subassembly 449, which is assembled by adhering the vent 439 to the inside of the housing 406 adjacent its opening 425.In some implementations, adhesive may be used to secure the components together (eg, by applying adhesive through one or more holes in the lower frame 412).
[0135] 18-20 illustrate the cartridge 400 in a portion configured to be coupled with the cartridge receiving chamber 430 of the inner frame 406 of the controller 400 such that a mechanical and electrical connection is formed between the cartridge 500 and the controller 400. In particular, when the cartridge 400 in the illustrated implementation is coupled to the upper frame 406 of the controller 400, a magnetic connection is formed between the magnets 446A, 446B disposed on the upper frame 406 and corresponding features of the cartridge 500. Furthermore, when the cartridge 500 in the illustrated implementation is coupled to the inner frame 406, an electrical connection is formed between the pair of conductive pins 436A, 436B of the controller 400 and corresponding features of the cartridge 500. Thus, when the cartridge 500 is received in the upper frame 430 of the controller 400, the cartridge 500 can be operably connected to the control component 414 and the battery 416 of the controller 400. Thus, when the cartridge 500 of the illustrated implementation is coupled with the controller 400, the cartridge 500 is mechanically biased into connection with the controller 400 such that an electrical connection between the cartridge and the controller is maintained.
[0136] In particular, Figure 18 shows a perspective view of a cartridge 500 according to another exemplary implementation of the present disclosure, Figure 19 shows an exploded perspective view of the cartridge 500, and Figure 20 shows a side cross-sectional view of the cartridge 500. Although other configurations are possible, the cartridge 500 of the illustrated implementation generally includes a mouthpiece 502, a mouthpiece insert 504, an upper aerosol channel insert 506, an upper cartridge seal 508, a reservoir 510 defining a reservoir wall 511, a lower cartridge seal 512, a base member 514, a liquid transport element (e.g., a wick) 516, a heating member 518, a pair of heater connectors 520A, 520B, a pair of metal inserts 524A, 524B, and a bottom cap 526.
[0137] As shown, the mouthpiece 502 of the illustrated implementation defines a proximal end and a distal end, with the proximal end of the mouthpiece 502 defining an exit portal 515 therein. In the illustrated implementation, the mouthpiece insert 504 is configured to be positioned adjacent the proximal end of the mouthpiece so as to extend through the exit portal 515 of the mouthpiece 502. In the illustrated implementation, the mouthpiece 502 and mouthpiece insert 504 may be made from a molded polymeric material, such as, for example, a molded plastic material (e.g., polypropylene, acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high-impact polystyrene, and combinations thereof), although other materials are possible. The mouthpiece insert 504 of the illustrated implementation includes a flange feature on its bottom so that the mouthpiece insert 504 can be installed from inside the mouthpiece 502 and configured for a press-fit or snap-fit connection with the exit portal 515. In other implementations, other attachment methods are possible (e.g., via adhesive, heat staking / welding, ultrasonic welding, etc.). In still other implementations, the mouthpiece and mouthpiece insert may be constructed using an insert molding or overmolding process such that the mouthpiece 502 and mouthpiece insert 504 comprise a single piece. The mouthpiece 502 of the illustrated implementation is configured to be secured to the tank 510 via a snap mechanism. For example, the mouthpiece 502 of the illustrated implementation includes a ridge feature 543 (see FIG. 20 ) extending around at least a portion of its inner surface, and the tank 510 includes a corresponding groove feature 541 extending around at least a portion of its outer surface. In other implementations, these features may be reversed (e.g., the mouthpiece can include a groove and the tank can include a ridge feature). In still other implementations, other attachment methods are possible (e.g., via adhesive, heat staking / welding, ultrasonic welding, etc.).
[0138] In some implementations, the mouthpiece insert may exhibit a color associated with a distinctive characteristic of the cartridge. For example, in some implementations, the cartridge of the present disclosure may contain a liquid composition including a distinctive characteristic, such as a particular flavor (described below) or a particular strength of nicotine, although any characteristic of the cartridge may be considered a distinctive characteristic. For purposes of the current description, the term "color" should be interpreted broadly to cover, for example, any color or any shade of the same color. It should also be noted that in some implementations, a particular color may be generally associated with a particular distinctive characteristic (e.g., green may be associated with mint flavor, and red may be associated with apple flavor). However, in other implementations, a particular color may be associated with a particular distinctive characteristic according to an index or guide that may be provided or made available to the user. Examples of distinctive characteristics are described in U.S. Patent Application No. 16 / 171,920, entitled "Aerosol Delivery Device with Flavor Indicator," which is incorporated herein by reference in its entirety.
[0139] The reservoir 510 in the illustrated implementation defines a proximal end and a distal end, the mouthpiece 502 is configured to engage the proximal end of the reservoir 510, and the bottom cap 526 is configured to engage the distal end of the reservoir 510. In the illustrated implementation, the reservoir 510 also defines a reservoir cavity 528 including a closed proximal end and an open distal end. Thus, the reservoir cavity 528 of the reservoir 510 is configured to contain a liquid composition (e.g., an e-liquid or an aerosol precursor composition) therein. The closed proximal end of the reservoir cavity 528 allows the cavity to form a reliable seal with the top surface of the liquid composition column. This can prevent air from seeping / entering the reservoir cavity from the top when the cartridge is held upright. This can also prevent air from entering the top of the liquid composition column, which can create a vacuum and reduce the likelihood of the liquid composition leaking out the bottom of the reservoir through a liquid transport element or other passageway.
[0140] Although other configurations are possible, in the illustrated implementation, a pair of internal aerosol flow tubes are defined on either side of the reservoir cavity 528 of the tank 510. In the case of an injection-molded tank 510, the internal aerosol flow tubes are configured to be molded therein. As described in more detail below, aerosol generated in the vaporization chamber of the cartridge 500 is configured to travel through the aerosol flow tubes for delivery to a user.
[0141] In the illustrated implementation, the tank wall 511 is configured to be transparent or translucent so that the liquid composition contained therein is visible from the outside. Thus, in the illustrated implementation, the entire tank wall 511 is configured to be transparent or translucent. Alternatively, in some implementations, only a portion of the tank wall or only one side of the tank wall may be transparent or translucent, while the remaining portion of the tank wall may be substantially opaque. In other implementations, the tank wall may be substantially opaque, with a strip extending from the proximal end of the tank to the distal end of the tank being transparent or translucent. In further implementations, the tank wall may be colored. In some implementations, the color can be configured so that the liquid composition within the tank is still visible, such as by using a transparent or translucent outer tank wall. In other implementations, the tank wall can be configured so that the outer tank wall has a substantially opaque color. In the illustrated implementation, the tank 510 can be made from a molded polymeric material such as, for example, a molded plastic material (e.g., a copolyester material such as Tritan™ copolyester, acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high impact polystyrene, polypropylene, and combinations thereof), although other materials are possible, including glass.
[0142] In some implementations, the viewing window 432 of the control device 400 may be configured such that at least a portion of the reservoir 510 and at least a portion of the bottom cap 526 are visible when the cartridge 500 is engaged with the control device 400. As described above, in some implementations, at least a portion of the reservoir wall 511 may be configured to be at least partially transparent or translucent so that the liquid composition contained therein is visible from the outside. Thus, the relative amount of any liquid composition present in the reservoir 510 can be visible through the viewing window when the cartridge 500 is engaged with the control device 400. As shown in FIGS. 14 and 15 , the viewing window 432 in the illustrated implementation is located near the proximal end of the control device 400 and is configured as an elongated oval cutout in the outer wall 404 of the housing 402 and the top frame 406 of the control device 400. It should be understood that in other implementations, the viewing window can have any other shape and / or location. For example, in some implementations, the viewing window may be configured as a notch extending a distance from the proximal end of the outer wall of the control device toward the distal end of the device. In still other implementations, the viewing window may be configured without any open boundaries, thus explicitly excluding the notch configuration described above. In some implementations, the viewing window may be completely open, while in other implementations, the viewing window may be disposed within an opening defined by the viewing window or may have a transparent member (e.g., glass or plastic) covering the viewing window on one or both of the inner and outer surfaces of the outer wall of the control device. It should be understood that in some implementations, the viewing window may be formed in part by the cartridge and in part by the control device. For example, in some implementations, the cartridge may include a portion of the viewing window (e.g., the top of the viewing window) and the control device may include a separate portion of the viewing window (e.g., the bottom of the viewing window). In some implementations, the viewing window may be disposed within the cartridge rather than, or in addition to, a viewing window disposed within the control device. For example, in one implementation, the mouthpiece and / or another cartridge component may function as a sleeve covering the transparent wall of the cartridge.The sleeve may include a viewing window that may be located mostly or entirely over the power unit chamber when the cartridge is inserted into the control device. As noted above, other implementations may not include any viewing window.
[0143] Although other configurations are possible, in the illustrated implementation, the proximal end of the reservoir 510 is configured to receive an upper cartridge seal 508 configured to form a substantially airtight and liquid-tight seal between the reservoir 510 and the mouthpiece 502. Accordingly, the upper cartridge seal 508 can be made from silicone rubber, boron nitride (BN) rubber, natural rubber, thermoplastic polyurethane, or another resilient material. In the illustrated implementation, the upper cartridge seal 508 is also configured to receive and seal the upper aerosol channel insert 506 (see also FIG. 20 ).
[0144] In the case of an aerosol delivery system characterized as an electronic cigarette, the aerosol precursor composition can incorporate tobacco or tobacco-derived components. In one aspect, the tobacco may be provided as tobacco parts or fragments, such as finely ground, crushed, or powdered tobacco flakes. It may also include tobacco beads, pellets, or other solid forms, such as those described in U.S. Patent Application Publication No. 2015 / 0335070 to Sears et al., the disclosure of which is incorporated herein by reference. In another aspect, the tobacco may be provided in the form of an extract, such as a spray-dried extract incorporating many of the water-soluble components of tobacco. Alternatively, the tobacco extract may have the form of a relatively high-nicotine extract that also incorporates small amounts of other extracted components derived from tobacco. In another aspect, the tobacco-derived component may be provided in a relatively pure form, such as a particular flavoring derived from tobacco. In one aspect, a component derived from tobacco that can be used in a highly purified or essentially pure form is nicotine (e.g., pharmaceutical-grade nicotine).
[0145] In the illustrated implementation, the liquid composition, sometimes referred to as an aerosol precursor composition or vapor precursor composition or "e-liquid," may include various ingredients including, by way of example, a polyhydric alcohol (e.g., glycerin, propylene glycol, or mixtures thereof), nicotine, tobacco, tobacco extract, and / or flavorings. Representative types of aerosol precursor components and formulations are also described and characterized in U.S. Pat. No. 7,217,320 to Robinson et al. and U.S. Pat. Appl. Pub. No. 2013 / 0008457 to Zheng et al.; U.S. Pat. Appl. Pub. No. 2013 / 0213417 to Chong et al.; U.S. Pat. Appl. Pub. No. 2014 / 0060554 to Collett et al.; U.S. Pat. Appl. Pub. No. 2015 / 0020823 to Lipowicz et al.; and U.S. Pat. Appl. Pub. No. 2015 / 0020830 to Koller, the disclosures of which are incorporated herein by reference in their entireties, and WO 2014 / 182736 to Bowen et al. Other aerosol precursors that may be used include the aerosol precursors incorporated into VUSE® products by RJ Reynolds Vapor Company, BLU™ products by Fontem Ventures BV, MISTIC MENTHOL products by Mistic Ecigs, MARK TEN products by Nu Mark LLC, JUUL products by Juul Labs, Inc., and VYPE products by CN Creative Ltd. Also desirable are so-called "smoke juices" for e-cigarettes, available from Johnson Creek Enterprises LLC.Further exemplary aerosol precursor compositions are sold under the brand names BLACK NOTE, COSMIC FOG, THE MILKMAN E-LIQUID, FIVE PAWNS, THE VAPOR CHEF, VAPE WILD, BOOSTED, THE STEAM FACTORY, MECH SAUCE, CASEY JONES MAINLINE RESERVE, MITTEN VAPORS, DR. CRIMMY'S V-LIQUID, SMILEY E LIQUID, BEANTOWN VAPOR, CUTTWOOD, CYCLOPS VAPOR, SICBOY, GOOD LIFE VAPOR, TELEOS, PINUP VAPORS, SPACE JAM, MT. BAKER VAPOR, and JIMMY THE JUICE MAN.
[0146] The amount of aerosol precursor incorporated into the aerosol delivery system is such that the aerosol generating component provides acceptable sensory characteristics and desirable performance characteristics. For example, it is highly preferred to use a sufficient amount of aerosol-forming material (e.g., glycerin and / or propylene glycol) to provide visible mainstream aerosol production that resembles in many respects the appearance of cigarette smoke. The amount of aerosol precursor in the aerosol generating system may depend on factors such as the number of puffs desired per aerosol generating component. In the illustrated implementation, the reservoir cavity 528 is configured to hold approximately 1.5 mL of the aerosol precursor composition. In other embodiments, the reservoir cavity 528 is configured to hold at least about 1 mL, at least about 2 mL, at least about 5 mL, or at least about 10 mL of the aerosol precursor composition.
[0147] In some implementations, the liquid composition may include one or more flavorings. As used herein, reference to a "flavoring" refers to a compound or ingredient that can be aerosolized and delivered to a user and that provides a sensory experience in terms of taste and / or aroma. Exemplary flavorings include, but are not limited to, vanillin, ethyl vanillin, cream, tea, coffee, fruit (e.g., apple, cherry, strawberry, peach, and citrus flavors including lime and lemon), maple, menthol, mint, peppermint, spearmint, wintergreen, nutmeg, clove, lavender, cardamom, ginger, honey, anise, sage, rosemary, hibiscus, rosehip, erbamate, guayusa, honeybush, rooibos, erba santa, bacopa monniera, ginkgo biloba, withania somnifera, cinnamon, sandalwood, jasmine, cascarilla, cocoa, licorice, and flavors and flavor packages of the type and characteristics traditionally used in tobacco, cigar, and pipe tobacco flavorings. Syrups, such as high fructose corn syrup, can also be used. Exemplary plant-derived compositions that may be suitable are disclosed in U.S. Patent No. 9,107,453 and U.S. Patent Application Publication No. 2012 / 0152265, both by Dube et al., the disclosures of which are incorporated herein by reference in their entireties. The selection of such additional components can vary based on factors such as the sensory characteristics desired in the smoking article, and the present disclosure is intended to encompass such additional components that are readily apparent to those skilled in the art of tobacco and tobacco-related or tobacco-derived products. See, for example, Gutcho, Tobacco Flavoring Substances and Methods, Noyes Data Corp. (1972) and Leffingwell et al., Tobacco Flavoring for Smoking Products (1972), the disclosures of which are incorporated herein by reference in their entireties. It should be understood that reference to flavor should not be limited to a single flavor as described above, but may actually refer to a combination of one or more flavors.
[0148] As shown, the cartridge 500 of the illustrated implementation also includes a base member 514 configured to engage and cover the open distal end of the reservoir cavity 528 of the tank 510. The lower seal 512 of the illustrated implementation is configured to form a substantially air-tight and liquid-tight seal between the lower part of the tank 510 and a bottom cap 526 (see also FIG. 20 ), and in particular, the lower seal 512 is configured to be disposed within a groove in the outer surface of the base member 514 to facilitate a substantially air-tight and liquid-tight seal between the base member 514 and the tank 510. In various implementations, the lower seal 512 can be made from silicone rubber, boron nitride (BN) rubber, natural rubber, thermoplastic polyurethane, or another resilient material. In the illustrated implementation, the base member 514 can be made from a molded polymeric material such as, for example, a molded plastic material (e.g., a copolyester material such as Tritan™ copolyester, acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high-impact polystyrene, polypropylene, and combinations thereof), although other materials are possible. The base member 514 of the illustrated implementation also includes a plurality of slots (see also FIG. 17 ) configured to provide a liquid flow path for the liquid composition contained in the reservoir cavity 528 of the tank 510 to facilitate transfer of the liquid to the liquid transport element 516. In some implementations, the slots can also provide some liquid retention even when the bulk liquid composition in the reservoir cavity 528 is not in contact with the base member 514 (e.g., when the aerosol delivery device is turned upside down).
[0149] As shown, the liquid transport element 516 is disposed within the base member 514 and extends between the liquid composition in the reservoir cavity 528 and the heating member 518 (see also FIG. 20 ). In the illustrated implementation, the liquid transport element 516 is formed from a cotton material and has a curved shape when installed in the cartridge 500. However, in other implementations, the liquid transport element 516 may have other shapes and may be formed from various materials configured to transport liquids by capillary action or the like. For example, in some implementations, the liquid transport element can be formed from a fibrous material (e.g., organic cotton, cellulose acetate, regenerated cellulose fabric, glass fiber), porous ceramic, porous carbon, graphite, porous glass, sintered glass beads, sintered ceramic beads, capillaries, etc. In other implementations, the liquid transport element can be any material that includes an open pore network (i.e., multiple pores interconnected so that fluid can flow from one pore to another in multiple directions through the element). As further described herein, some implementations of the present disclosure may specifically relate to the use of non-fibrous transport elements. Thus, fibrous transport elements can be explicitly excluded. Alternatively, a combination of fibrous and non-fibrous transport elements may be utilized. Representative types of substrates, reservoirs, or other components for supporting aerosol precursors are described in U.S. Patent No. 8,528,569 to Newton; U.S. Patent Application Publication Nos. 2014 / 0261487 to Chapman et al. and 2014 / 0059780 to Davis et al.; and U.S. Patent Application Publication No. 2015 / 0216232 to Bless et al., which are incorporated herein by reference in their entireties. Additionally, various wicking materials, and the configuration and operation of these wicking materials within specific types of electronic cigarettes, are described in U.S. Patent No. 8,910,640 to Sears et al., which is incorporated herein by reference in its entirety. In some implementations, the liquid transport element may be partially or completely formed from a porous monolith, such as a porous ceramic or porous glass.Exemplary ceramic materials suitable for use in accordance with embodiments of the present disclosure are described, for example, in U.S. Patent Application No. 14 / 988,109, filed January 5, 2016, and U.S. Patent Application Publication No. 2014 / 0123989 to LaMothe, the disclosures of which are incorporated herein by reference in their entireties.
[0150] As shown, the heating element 518 of the illustrated implementation is also configured to be disposed within the base member 514. Notably, the heating element 518 of the illustrated implementation comprises a heating element having a substantially flat profile. While in some implementations, the heating element can maintain a substantially flat profile when attached to the cartridge, the heating element 518 of the illustrated implementation has a curved or arcuate shape corresponding to the curved shape of the liquid transport element 516 when attached to the cartridge 500 (see also FIG. 20 ). As such, the heating element 518 in the installed position contacts the bottom surface of the liquid transport element 516. In the illustrated implementation, the curved configuration of the flat heating element 518 can provide a large ratio of cross-sectional flow area to flow path length through the liquid transport element 516. This can provide improved performance for delivery of the liquid composition to the liquid transport element 516. When installed, the edges of the heating element 518 are configured to engage with the base member 514 so that the heating element 518 maintains its curved shape. In that way, the curvature of the heating member 518 can also provide a compressive force against the liquid transport element 516. Furthermore, the spring restoring force of the heating member 518 allows the edges of the heating member 518 to position or lock within the base member 514, which can reduce or eliminate the need for additional features configured to hold the heating member 518 within the base member 514 from the other side. The installed curvature of the heating member 518 also biases deflection of the heating member 518 that may occur with thermal expansion toward the liquid transport element 516, thus helping to maintain thermal contact between the heating member 518 and the liquid transport element 516. In the illustrated implementation, the liquid transport element 516 and the heating member 518 comprise a heating assembly 534 that, together with the base member 514 and the bottom cap 526, defines a vaporization chamber 532.
[0151] It should be noted that some implementations need not include a heating assembly, but rather may include an atomization assembly configured to generate the aerosol in another manner. Some examples of atomization assemblies that generate the aerosol in another manner can be found, for example, in U.S. Patent Application No. 16 / 544,326, filed August 19, 2019, entitled "Detachable Atomization Assembly for Aerosol Delivery Device," which is incorporated herein by reference in its entirety.
[0152] In the illustrated implementation, the heating element 518 can be made from a metallic material, such as a stainless steel material, including, but not limited to, 316L, 316, 304, or 304L stainless steel. In other implementations, the heating element can be made from different materials, such as Kanthal (FeCrAl), nichrome, molybdenum disilicide (MoSi), molybdenum silicide (MoSi), aluminum-doped molybdenum disilicide (Mo(Si,Al)), titanium, platinum, silver, palladium, alloys of silver and palladium, graphite, and graphite-based materials (e.g., carbon-based foams and threads). In further implementations, the heating element can be formed from conductive ink, boron-doped silica, and / or ceramic (e.g., positive or negative temperature coefficient ceramic). Other types of heaters, such as laser diodes or microheaters, can also be utilized. The laser diode can be configured to deliver electromagnetic radiation of a specific wavelength or wavelength band, which can be tuned for vaporizing the aerosol precursor composition and / or for heating a liquid transport element to which the aerosol precursor composition can be provided for vaporization. The laser diode can be specifically positioned to deliver electromagnetic radiation into a chamber, and the chamber can be configured to be a radiation trap (e.g., a black body or a white body). Suitable microheaters are described in U.S. Pat. No. 8,881,737 to Collett et al., incorporated herein by reference in its entirety. The microheater can include, for example, a substrate (e.g., quartz, silica) having a heater trace thereon (e.g., a resistive element such as Ag, Pd, Ti, Pt, Pt / Ti, boron-doped silicon, or other metal or metal alloy), which can be printed or otherwise applied to the substrate. A passivation layer (e.g., aluminum oxide or silica) can be provided on the heater trace. Other heaters are described in US Patent Application Publication No. 2016 / 0345633 to DePiano et al., which is incorporated herein by reference in its entirety.
[0153] Although other implementations may provide additional and / or different contact mechanisms, the heating element 518 in the illustrated implementation includes a pair of contact holes 531A, 531B configured to connect the heating element 518 to the heater connectors 520A, 520B of the cartridge 500. In the illustrated implementation, the heater connectors 520A, 520B are made of a conductive material and are plated with nickel and / or gold. Examples of conductive materials include, but are not limited to, copper, aluminum, platinum, gold, silver, iron, steel, brass, bronze, graphite, conductive ceramic materials, and / or any combination thereof. In the illustrated implementation, the contact holes 531A, 531B are configured to have an inner diameter that is smaller than the outer diameter of the mating portions of the heater connectors 520A, 520B. In some implementations, the contact holes may include one or more features (e.g., one or more fingers or extensions) that form an effective inner diameter that is smaller than the outer diameter of the mating portions of the heater connectors 520A, 520B. In that way, the contact holes 531A, 531B of the heating element 518 can form an interference fit with the upper ends of the heater connectors 520A, 520B such that the heating element 518 can maintain electrical contact with the heater connectors 520A, 520B. In the illustrated implementation, the heater connectors 520A, 520B are insert molded into the bottom cap 526.
[0154] The bottom cap 526 in the illustrated implementation is configured to be secured to the distal end of the tank 510 via an ultrasonic welding process. However, other attachment methods are possible (e.g., via adhesive, heat staking / welding, snap fit, etc.). In the illustrated implementation, the bottom cap 526 of the cartridge 500 includes a cartridge air inlet channel 530 located approximately in the center of the bottom surface of the bottom cap 526. While other configurations are possible, in the illustrated implementation, the cartridge air inlet channel 530 has a nozzle-like shape. In particular, the cartridge air inlet channel 530 in the illustrated implementation includes a first portion (proximate the bottom surface of the bottom cap 526) having a substantially cylindrical shape and a second portion having a substantially conical shape and leading to the vaporization chamber 532. In that manner, the inner diameter of the cartridge air inlet channel 530 decreases before leading to the vaporization chamber 532. This configuration can help keep liquid accumulation leading to the vaporization chamber 532 relatively far from the air inlet channel 530.
[0155] Although other configurations are possible, the cartridge 500 in the illustrated implementation also includes a pair of metal inserts 524A, 524B configured to be disposed within and exposed through a bottom surface of the bottom cap 526. In the illustrated implementation, the metal inserts 524A, 524B are insert molded into the bottom cap 526. In some implementations, the metal inserts 524A, 524B may be configured for a press-fit or snap-fit connection with the bottom cap 526. In the illustrated implementation, the metal inserts 524A, 524B are made from stainless steel plated with nickel. However, in other implementations, the metal inserts may be made from any material configured to be attracted by a magnet, such as various ferromagnetic materials, including, but not limited to, alloys such as iron, nickel, cobalt, steel, and / or any combination thereof.
[0156] As described above, when the cartridge 500 is mated with the cartridge receiving chamber 430 of the controller 400, a mechanical and electrical connection is formed between the cartridge 500 and the controller 400. In particular, when the cartridge 500 in the illustrated implementation is mated with the upper frame 406 of the controller 400, a magnetic connection is formed between the magnets 446A, 446B located on the upper frame 406 and the metal inserts 524A, 524B located on the bottom cap 526 of the cartridge 500. Furthermore, when the cartridge 500 in the illustrated implementation is mated with the inner frame 406, an electrical connection is formed between the pair of conductive pins 436A, 436B of the controller 400 and the heater connectors 520A, 520B of the cartridge 500. Thus, when the cartridge 500 in the illustrated implementation is mated with the controller 400, the cartridge 500 is mechanically biased into connection with the controller 400 such that an electrical connection is maintained between the cartridge 500 (particularly the heating assembly 534) and the controller (particularly the control component 414 and the battery 416).
[0157] When the cartridge 500 of the illustrated implementation is coupled with the control unit 400, an electrical connection between the control unit 400 and the heating element 518 of the cartridge 500 (via the conductive pins 436A, 436B of the control unit 400 and the heater connectors 520A, 520B of the cartridge) allows the control body 400 to direct current to the heating element 518. In the illustrated implementation, this can occur when a puff in the aerosol delivery device is detected (or, in other implementations, via user activation, such as via a push button). When a user of the aerosol device of the illustrated implementation inhales on the mouthpiece 502, inlet airflow is directed into the device through a gap between the cartridge 500 and the control unit 400. In the illustrated implementation, the gap comprises a peripheral gap extending substantially around the entire circumference of the cartridge 500. It should be understood that in other implementations, the gap need not extend around the entire circumference of the cartridge; for example, in some implementations, the gap may comprise one or more gaps that extend around a portion of the circumference of the cartridge rather than the entire circumference, and in some implementations, the gap may comprise one or more individual holes. In the illustrated implementation, the gap begins at the interface between the outer surface of the cartridge 500 and the inner surface of the control device 400. In particular, the gap begins at the interface between the outer surface of the mouthpiece 502 of the cartridge 500 and the upper edge of the outer wall 404 of the housing 402 of the control device 400.
[0158] In the illustrated implementation, the gap between the cartridge 500 and the control device 400 is established and maintained by features of the cartridge 500 and the control device 400. Although other configurations are possible, the upper frame 406 of the illustrated implementation includes a plurality of protrusions spaced around the inner surface of the upper frame 406 and configured to laterally position the cartridge 400. In the illustrated implementation, the plurality of protrusions comprise a plurality of raised, elongated bosses extending from approximately the top of the upper frame 406 to its concave surface. When the cartridge 500 of the illustrated implementation is coupled to the control device 400, the plurality of protrusions of the upper frame 406 contact the outer surface of the cartridge 500 (particularly the outer surface of the mouthpiece 502 and / or the outer surface of the reservoir 510 and / or the outer surface of the bottom cap 526). In this manner, the protrusions laterally position the cartridge 500 relative to the upper frame 406, thus establishing and maintaining the gap. It should be understood that in other implementations, the protrusions may take other forms (e.g., including one or more bumps) and may be located on one or more components of the cartridge rather than (or in addition to) the control device.
[0159] When a user inhales on the device, air entering the gap between the cartridge 500 and the control device 400 travels downward around the outside of the cartridge 500 and beneath its bottom cap 526. In the illustrated implementation, the inlet air is able to travel beneath the bottom cap 526 due to the vertical position of the cartridge 500 relative to the bottom of the cartridge-receiving chamber 430. Notably, the vertical position of the cartridge 500 in the illustrated implementation is established using one or more positioning features extending upward from the concave surface of the upper frame 406, at least one of which is configured to contact the bottom surface of the bottom cap 526 when the cartridge 500 is coupled with the control device 400. In that way, when the cartridge 500 is received within the control device 400, the gap between the cartridge 500 and the control device 400 is also established between the bottom of the bottom cap 526 and the concave surface of the upper frame 406.
[0160] As noted above, although other configurations are possible, the bottom cap 526 in the illustrated implementation includes an inlet channel 530 located approximately in the center of the bottom surface of the bottom cap 526. Due to the gap established between the bottom of the bottom cap 526 and the concave surface of the top frame 406, inlet air moving around the outside of the cartridge 500 and below the bottom cap 526 enters the cartridge 500 through the inlet channel 530 in the bottom cap 526. The air entering through the inlet channel 530 then enters the vaporization chamber 532 of the cartridge. As air is drawn into the cartridge 500 through the inlet channel 530, the pressure sensor 440 of the controller 400 detects the suction. When the suction is detected by the pressure sensor 440, the control component 414 applies an electric current to the heating element 518 to heat it. As the heating element 518 heats, at least a portion of the liquid composition contained in the liquid transport element 516 is vaporized within the vaporization chamber 532. Thus, the aerosol generated within the vaporization chamber 532 can then be directed toward the user. Specifically, when air enters the cartridge 500 via the air inlet channel 530, it travels through the vaporization chamber 532 and mixes with the vaporized liquid composition to form an aerosol. Due to the geometry of the vaporization chamber 532 and the bottom cap 526, the aerosol splits into two separate paths that extend through the interior of the bottom cap 526 and then through aerosol flow tubes defined on either side of the reservoir cavity 528 of the tank 510. This relatively tortuous configuration can increase the effective flow path length and area for heat sinking, thus increasing cooling of the aerosol stream before it reaches the user. The two aerosol paths converge at the proximal end of the tank 510 and below the upper aerosol channel insert 506. The recombined aerosol then flows through the upper aerosol channel insert 506 and out the outlet portal 515 of the mouthpiece 500 to the user. It should be appreciated that the aerosol passages downstream from the entrance of the air inlet channel 530 are configured to be oversized to minimize any additional system pressure drop created by these passages.
[0161] Although other configurations are possible, in the illustrated implementation, the upper aerosol channel insert 506 is configured to absorb liquid formed by deposition and / or condensation from the aerosol formed in the vaporization chamber 532 and is configured to have rigid or semi-rigid properties. Accordingly, the upper aerosol channel insert 506 in the illustrated implementation may be made from fiber, sintered beads, or an open-cell foam material. For example, in some implementations, the upper aerosol channel insert may be made from a fiber-bonded polyethylene (PE) or polyethylene terephthalate (PET) material. As such, the upper aerosol channel insert 506 may be configured for press-fit or snap-fit attachment with the mouthpiece 502. The upper aerosol channel insert 506 is also configured to help prevent liquid accumulation from exiting the cartridge 500 through the mouthpiece 502. Furthermore, the upper aerosol channel insert 506 is positioned such that the aerosol generated in the vaporization chamber 532 passes through the insert 506 just before exiting the cartridge 500. In the illustrated implementation, the inner cavity of the upper aerosol channel insert 506 can also function as a cooling chamber in which the formed aerosol can expand and / or cool before passing through the exit portal 515. In some implementations, the vaporization chamber 532 and the cooling chamber can be configured to have a defined relative volume ratio.
[0162] 21A and 21B show subassemblies of the cartridge of FIG. 18 according to an exemplary implementation of the present disclosure. In particular, FIG. 21A shows a bottom cap subassembly 545 and a tank subassembly 547, and FIG. 21B shows a lower subassembly 551 and a mouthpiece subassembly 549. In the illustrated implementation, the bottom cap subassembly 545 includes a bottom cap 526, metal inserts 524A, 524B, heater connectors 520A, 520B, a heating member 518, a liquid transport element 516, a base member 514, and a lower cartridge seal 512. In the illustrated implementation, the metal inserts 524A, 524B and the heater connectors 520A, 520B are insert molded into the bottom cap 526. Furthermore, the lower cartridge seal 512 is stretched around the base member 514 so as to be disposed within a groove therein. The liquid transport element 516 is inserted into the base member 514 and the heating element is press-fit into the base member 514 such that the contact holes 531A, 531B press against respective portions of the heater connectors 520A, 520B, causing the heating element 518 to bend into a curved shape, trapping the liquid transport element 516 therein as well. The tank subassembly 547 in the illustrated implementation includes a tank 510 filled with a liquid composition through an open end of the tank 510.
[0163] 21B is assembled by joining a bottom cap subassembly 545 to a reservoir subassembly 547. In particular, the bottom cap subassembly 545 of the illustrated implementation is joined to the reservoir subassembly 547 via a substantially continuous ultrasonic weld. In the illustrated implementation, a mouthpiece subassembly 549 includes a mouthpiece 502, a mouthpiece insert 504, an aerosol channel insert 506, and a cartridge seal 508. The mouthpiece subassembly 549 of the illustrated implementation is assembled by pressing the mouthpiece insert 504 into the mouthpiece 502, pressing the cartridge seal 508 into the mouthpiece 502, and pressing the aerosol channel insert 506 into the cartridge seal 508. In the illustrated implementation, final assembly of the cartridge 500 is achieved by snapping the mouthpiece subassembly 549 onto the bottom subassembly 551 via the groove feature 541 on the outer surface of the reservoir 510 and the ridge feature on the inner surface of the mouthpiece 502.
[0164] 22 shows an exploded perspective view of a control device of an aerosol delivery device according to another exemplary implementation of the present disclosure. As shown, the control device 600 of the illustrated implementation generally includes a housing 602 defining an outer wall 604, an upper frame 606, an upper frame seal 608, a pressure sensor seal 610, a lower frame 612, a control component 614, a battery 616, a vibration motor 618, a motor housing 620, a pin seal 622, an end cap 624, a light diffuser 626, and a vent 645. The control device 600 of the illustrated implementation also includes a front foam pad 631, a plurality of side foam pads 637, and an insulator 639. In the illustrated implementation, the front foam pad 631 is configured to be disposed between the battery 616 and the control component 614, and the side foam pads 637 are configured to be disposed on either side of the battery 616. In some implementations, the control device may include one or more other seals, which may include, for example, an upper chassis seal and / or a lower chassis seal.
[0165] The arrangement of the components of the control device 600 is shown in FIG. 23 , which illustrates a cross-sectional view of a control device according to an exemplary implementation of the present disclosure. In particular, FIG. 23 illustrates a front cross-sectional view of the control device 600. As shown, the upper frame 606 of the control device 600 defines a cartridge-receiving chamber 630 within which a cartridge can be coupled. The control device 600 also includes a pair of opposing viewing windows 632 defined through the outer wall 404 of the housing 602 as well as the upper frame 606. However, it should be noted that in some implementations, the presence of viewing windows is not required. In implementations that include viewing windows, such viewing windows may provide a user with the ability to view one or more components (and / or their status) of an installed cartridge. However, it should be understood that the illustrated viewing window 632 is provided by way of example and not limitation. For example, alternative implementations may include viewing windows having different shapes than those illustrated. As another example, some implementations may include only a single viewing window. In the illustrated implementation, the upper frame 606 and the housing 602 represent different components. However, in other implementations, the upper frame and the housing may be formed continuously such that they comprise the same part.
[0166] In the illustrated implementation, the housing 602 comprises a metal material such as, for example, aluminum. However, in other implementations, the housing may comprise a metal alloy material, and in still other implementations, the housing may comprise a molded polymer material. In the illustrated implementation, one or more of the upper frame 606, the lower frame 612, and the end cap 624 may be made from a molded polymer material, such as, for example, a molded plastic material (e.g., polybutylene terephthalate (PBT), acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high-impact polystyrene, polypropylene, and combinations thereof). In other implementations, one or more of these components may be made from other materials, including, for example, a metal material (e.g., aluminum, stainless steel, metal alloy, etc.), a glass material, a ceramic material (e.g., alumina, silica, mullite, silicon carbide, silicon nitride, aluminum nitride, etc.), a composite material, and / or any combination thereof.
[0167] In the illustrated implementation, the lower frame 612 is configured to house a battery 616 in its interior region. In the illustrated implementation, the battery may include a lithium polymer (LiPo) battery. However, various other batteries may be suitable. Some other examples of batteries that may be used in accordance with the present disclosure are described in U.S. Patent Application Publication No. 2010 / 0028766 to Peckerar et al., the disclosure of which is incorporated herein by reference in its entirety. In some implementations, other types of power sources may be utilized. For example, in various implementations, the power source can comprise a replaceable or rechargeable battery, a solid-state battery, a thin-film solid-state battery, a rechargeable supercapacitor, etc., and thus can be combined with any type of charging technology, including connection to a wall charger, connection to an automobile charger (e.g., a cigarette lighter socket, a USB port, etc.), connection to a USB connector (e.g., USB 2.0, 3.0, 3.1, USB Type-C, which can be implemented in wall outlets, electronic devices, vehicles, etc.), connection to a photovoltaic cell (sometimes called a solar cell) or solar panel, chargers using inductive wireless charging (e.g., including wireless charging according to the Qi wireless charging standard from the Wireless Power Consortium (WPC)) or wireless chargers such as radio frequency (RF)-based chargers, and connection to an array of external cells such as a power bank for charging the device via a USB connector or wireless charger. An example of an inductive wireless charging system is described in U.S. Patent Application Publication No. 2017 / 0112196 by Sur et al., which is incorporated herein by reference in its entirety. In further implementations, the power source can also include a capacitor. Because capacitors can discharge faster than batteries and can be charged between puffs, the battery can be discharged into the capacitor at a slower rate than if it were used to directly power the heating element. For example, a supercapacitor, such as an electric double layer capacitor (EDLC), can be used separately from or in combination with a battery. When used alone, the supercapacitor can be recharged each time the article is used.Thus, the device may also include a charger component that can be attached to the smoking article during use to replenish the supercapacitor. Examples of power sources that include supercapacitors are described in U.S. Patent Application Publication No. 2017 / 0112191 to Sur et al., which is incorporated herein by reference in its entirety.
[0168] The controller 600 of the illustrated implementation includes a control mechanism in the form of a control component 614 configured, in part, to control the amount of power supplied to the heating element of the cartridge. Although other configurations are possible, the control component 614 of the illustrated implementation comprises a circuit board 634 (e.g., a printed circuit board (PCB)) that includes both rigid and flexible portions. In particular, the circuit board 634 of the illustrated implementation includes a rigid central section 615 and two rigid end sections, including a proximal end section 617 and a distal end section 619, with each end section 617, 619 connected to the central section 615 by a respective flexible connection. As such, when the lower frame 612, battery 616, and circuit board 634 are assembled into the controller 600, the central section 615 of the circuit board 634 is configured to be positioned proximate a major surface of the battery 616, and the two end sections 617, 619 are configured to be positioned substantially perpendicular to the central section 615. In particular, a proximal end section 617 of the circuit board 634 is configured to extend across the top of the lower frame 612, and a distal end section 619 is configured to extend across the bottom of the lower frame 612. The lower frame 612 of the control device 600 is also configured to house a motor housing 620 in which a vibration motor 618 is received. In various implementations, the vibration motor 618 can provide tactile feedback regarding various operations of the device.
[0169] The central section 615 of the illustrated implementation also includes an indicator in the form of a light source 621. In some implementations, the light source may comprise, for example, at least one light emitting diode (LED) capable of providing light of one or more colors. In other implementations, the light source may be configured to emit light of only one color, while in other implementations, the light source may be configured to emit light of a variety of different colors. In still other implementations, the light source may be configured to provide white light. In the illustrated implementation, the light source 621 comprises an RGB (red, green, blue) LED configured to provide light of various colors, including white light. The central section 615 of the illustrated circuit board 634 also includes electrical contacts 623 configured to operably connect the circuit board 634 to the vibration motor 618. Other types of electronic components, their structure and configuration, their features, and their general method of operation are described in U.S. Pat. No. 4,735,217 to Gerth et al.; U.S. Pat. No. 4,947,874 to Brooks et al.; U.S. Pat. No. 5,372,148 to McCafferty et al.; U.S. Pat. No. 6,040,560 to Fleischhauer et al.; U.S. Pat. No. 7,040,314 to Nguyen et al. and U.S. Pat. No. 8,205,622 to Pan; U.S. Pat. App. Pub. Nos. 2009 / 0230117 to Fernando et al., 2014 / 0060554 to Collet et al., and 2014 / 0270727 to Ampolini et al.; and U.S. Pat. App. Pub. No. 2015 / 0257445 to Henry et al., which are incorporated herein by reference.Still other features, controls, or components that may be incorporated into the aerosol delivery devices of the present disclosure include those disclosed in U.S. Pat. No. 5,967,148 to Harris et al.; U.S. Pat. No. 5,934,289 to Watkins et al.; U.S. Pat. No. 5,954,979 to Counts et al.; U.S. Pat. No. 6,040,560 to Fleischhauer et al.; U.S. Pat. No. 8,365,742 to Hon; U.S. Pat. No. 8,402,976 to Fernando et al. ..., all of which are incorporated herein by reference in their entireties. U.S. Patent Application Publication No. 2010 / 0163063 to Tucker et al.; U.S. Patent Application Publication No. 2013 / 0192623 to Leven et al.; U.S. Patent Application Publication No. 2013 / 0298905 to Leven et al.; U.S. Patent Application Publication No. 2013 / 0180553 to Kim et al., U.S. Patent Application Publication No. 2014 / 0000638 to Sebastian et al., U.S. Patent Application Publication No. 2014 / 0261495 to Novak et al., and U.S. Patent Application Publication No. 2014 / 0261408 to DePiano et al.
[0170] In the illustrated implementation, the vent 645 is configured to be positioned inside the housing 602 to cover the opening 625. Accordingly, in the illustrated implementation, one side of the vent 645 may include a pressure-sensitive adhesive. In the illustrated implementation, the vent 645 includes a breathable membrane material, such as a Gore-Tex® material. However, other suitable materials are possible. In the illustrated implementation, the light source 621 is covered by a light diffuser 626, a portion of which is configured to be received by the end cap 624. Thus, when assembled, the light diffuser 626 is positioned within or adjacent to the distal end of the opening 625 defined in the outer wall 604 of the housing 602. In the illustrated implementation, the opening 625 includes a narrow, elongated opening. However, in other implementations, the opening may be provided in any desired shape and located at any location on the control device 600. In some implementations, the light diffuser 626 can comprise a transparent or translucent member configured to allow a user to view the light source 621 from outside the housing 602. In the illustrated implementation, the light diffuser 626 can be made from a molded polymeric material such as, for example, a molded plastic material (e.g., polybutylene terephthalate (PBT), acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high impact polystyrene, polypropylene, and combinations thereof), although other materials are possible, including glass. In various implementations, additional indicators (e.g., other tactile feedback components, audio feedback components, etc.) can be included in addition to or in place of the indicators included in the illustrated implementation.Additional exemplary types of components that generate visual cues or indicators, such as LED components, and their construction and use are described in U.S. Pat. No. 5,154,192 to Sprinkel et al.; U.S. Pat. No. 8,499,766 to Newton and U.S. Pat. No. 8,539,959 to Scatterday; U.S. Patent Application Publication No. 2015 / 0020825 to Galloway et al.; and U.S. Patent Application Publication No. 2015 / 0216233 to Sears et al., which are incorporated by reference in their entireties.
[0171] Although other configurations are possible, the proximal end section 617 of the circuit board 634 in the illustrated implementation includes a pair of conductive pins 636A, 636B, as well as a pressure sensor 640. In the illustrated implementation, the conductive pins 636A, 636B comprise spring-loaded pins (e.g., electrical pogo pins) that extend through the upper frame 606 such that a portion of the end of the pins 636A, 636B extends into the cartridge-receiving chamber 630 and is biased to that position by the force of the internal springs of the conductive pins 636A, 636B. In that way, when a cartridge is coupled to the control device 600, the conductive pins 636A, 636B are configured to contact corresponding features on the cartridge and deflect downward (e.g., toward the lower frame 612) against the force of the springs, thus operably connecting the installed cartridge to the control component 614 and the battery 616. In the illustrated implementation, the conductive pins 636A, 636B comprise gold-plated metal pins. However, other materials or combinations of materials are possible, which may also include coatings and / or platings of conductive materials. Examples of conductive materials include, but are not limited to, copper, aluminum, platinum, gold, silver, iron, steel, brass, bronze, graphite, conductive ceramic materials, and / or any combination thereof. Although other contours are possible, the ends of the conductive pins 636A, 636B in the illustrated implementation have a rounded contour to facilitate deflection of the conductive pins 636A, 636B when a cartridge is inserted into the cartridge-receiving chamber 630. In other implementations, the conductive pins may be positioned at other locations in the cartridge-receiving chamber 630, such as near the top of the cartridge-receiving chamber 630. In other implementations, the conductive pins may be positioned at a point on the side of the upper frame between the proximal end of the outer housing and the bottom wall of the upper frame. Furthermore, in still other implementations, the conductive pins may be positioned between the midpoint of the side wall and the proximal end of the outer housing (i.e., in the upper half of the side wall). Alternatively, the conductive pins may be located between the midpoint of the side wall and the bottom wall of the inner frame wall (e.g., in the lower half of the side wall). Additionally, in still other implementations, the conductive pins may be located anywhere on the upper frame.
[0172] In various implementations, the aerosol delivery device may include an airflow sensor, a pressure sensor, etc. As mentioned above, the control component 614 of the illustrated implementation includes a pressure sensor 640 positioned proximate to and below the cartridge-receiving chamber 630. The location and function of the pressure sensor 640 in the illustrated implementation are described below. However, in other implementations, the airflow or pressure sensor may be located anywhere within the control device 600 so as to receive airflow and / or pressure changes that can signal inhalation of the device and therefore cause the battery 616 to power the heating element of the cartridge. Various configurations of printed circuit boards and pressure sensors are described, for example, in U.S. Patent Application Publication No. 2015 / 0245658 to Worm et al., the disclosure of which is incorporated herein by reference in its entirety. In the absence of an airflow sensor, a pressure sensor, etc., the aerosol delivery device may be manually activated via a push button, etc., that may be located on the control device and / or cartridge. For example, one or more push buttons can be used, as described in U.S. Patent Application Publication No. 2015 / 0245658 to Worm et al., which is incorporated herein by reference in its entirety. Similarly, a touch screen can be used, as described in U.S. Patent Application No. 14 / 643,626 to Sears et al., filed March 10, 2015, which is incorporated herein by reference in its entirety. As a further example, a component adapted for gesture recognition based on designated movements of the aerosol delivery device may be used as input. See U.S. Patent Application Publication No. 2016 / 0158782 to Henry et al., which is incorporated herein by reference in its entirety.
[0173] Although not included in the illustrated implementation, some implementations may include other types of input elements that can replace or supplement the airflow or pressure sensors. Inputs may be included to allow a user to control device functions and / or for outputting information to the user. Any component or combination of components may be utilized as an input for controlling device functions. In some implementations, the input may comprise a computer or computing device, such as a smartphone or tablet. In particular, the aerosol delivery device may be hardwired to a computer or other device, such as via a USB cord or similar protocol. The aerosol delivery device may also communicate with a computer or other device that serves as an input via wireless communication. See, for example, the systems and methods for controlling a device via a read request described in U.S. Patent Application Publication No. 2016 / 0007561 to Ampolini et al., the disclosure of which is incorporated herein by reference in its entirety. In such embodiments, an app or other computer program may be used in conjunction with a computer or other computing device to input control instructions to the aerosol delivery device, including, for example, the ability to form an aerosol of a specific composition by selecting the nicotine content and / or additional flavoring content to be included. Further exemplary types of sensing or detection mechanisms, their structure and configuration, their components, and their general methods of operation are described in U.S. Pat. No. 5,261,424 to Sprinkel, Jr.; U.S. Pat. No. 5,372,148 to McCafferty et al.; and WO 2010 / 003480 to Flick, which are incorporated by reference in their entireties.
[0174] In the illustrated implementation, the pressure sensor seal 610 is configured to cover the pressure sensor 640 and protect it from liquids and / or aerosols from the installed cartridge. As such, the pressure sensor seal 610 of the illustrated implementation (as well as other sealing members including the motor housing 620, pin seal 622, and / or end cap seal 643) can be made from silicone rubber, boron nitride (BN) rubber, natural rubber, thermoplastic polyurethane, or another resilient material. In some implementations, the upper portion of the end cap pin is configured to engage with the lower frame. For example, in some implementations, the upper portion of the end cap pin is configured to form an interference or press-fit engagement with a corresponding slotted opening in the lower frame. In various implementations, the interface between the end cap and the housing (e.g., via the interface between the end cap seal and the inner surface of the outer housing wall and / or the end cap pin and the upper portion of the lower frame) can form a press-fit engagement with the housing that is releasably configured so that the end cap (or end cap assembly) can be removable. In some implementations, the control device can include one or more components configured to meet battery gassing requirements under UL 8139. For example, the control device can include an end cap configured to vent in the event of a sudden pressurization within the control device enclosure. In one implementation, the end cap can include a retaining pin extending substantially perpendicularly from a wall of the end cap. The retaining pin can be configured to mate with a receiving feature (e.g., a hole) in the frame of the control device to establish a friction fit or press fit that can be released if the internal pressure within the control device housing exceeds a specified internal pressure.
[0175] The distal end section 619 of the circuit board 634 includes an external connection element 638, although other configurations are possible. In various implementations, the external connection element 638 may be configured to connect to an external connector and / or a docking station or other power or data source. For example, in some implementations, the external connector may include first and second connector ends that can be interconnected by a union, which may be, for example, a cord of variable length. In some implementations, the first connector end may be configured for electrical and, optionally, mechanical connection with a device, and the second connector end may be configured for connection to a computer or similar electronic device or for connection to a power source. An adapter including a USB connector on one end and a power unit connector on the opposite end is disclosed in U.S. Patent Application Publication No. 2014 / 0261495 to Novak et al., which is incorporated herein by reference in its entirety. In the illustrated implementation, a pin seal 622 is configured to seal the interface between the external connection element 638 and the end cap 624. In the illustrated implementation, one or more pins of the external connection element 638 can extend through the end cap 624 of the controller, as described above. In the illustrated implementation, the end cap 624 also includes a pair of end cap pins 641A, 641B that can be secured to the end cap 624. For example, in some implementations, the end cap pins 641A, 641B can be insert molded into the end cap 624. In some implementations, the bottom surfaces of the end cap pins 641A, 641B (which in some implementations can be flat) can be configured to provide an attractive force to a magnet included in the external charger assembly. As such, the end cap pins 641A, 641B can be made from any material configured to be attracted by a magnet, such as various ferromagnetic materials, including, but not limited to, steel, iron, nickel, cobalt, other alloys, and / or any combination thereof.
[0176] The upper frame 606 of the illustrated implementation includes a pair of magnets 646A, 646B exposed within the cartridge-receiving chamber 630. In various implementations, the magnets 646A, 646B can comprise any type of magnet, including rare earth magnets. For example, in some implementations, one or more of the magnets can include neodymium magnets (also known as NdFeB, NIB, or Neo magnets). In various implementations, different grades of neodymium magnets can be used, including, for example, N35, N38, N40, N42, N45, N48, N50, and / or N52 grades. In other implementations, one or more of the magnets can include samarium-cobalt magnets (also known as SmCo magnets). In yet other implementations, one or more of the magnets can include ceramic / ferrite magnets. In other implementations, one or more of the magnets can include aluminum-nickel-cobalt (AlNiCo) magnets. In any of the foregoing implementations, one or more of the magnets can be plated and / or coated. For example, in some implementations, one or more of the magnets may be coated with nickel. In other implementations, one or more of the magnets may be coated with one or more of zinc, tin, copper, epoxy, silver, and / or gold. In some implementations, one or more of the magnets may be coated with a combination of these materials. For example, in one implementation, one or more of the magnets may again be coated with nickel, copper, and nickel. In another implementation, one or more of the magnets may be coated with an overcoat of nickel, copper, nickel, and gold.
[0177] Figure 24 shows an exploded perspective view of a cartridge 700 according to another exemplary implementation of the present disclosure. Figure 25 shows a front cross-sectional view of the cartridge 700, and Figure 26 shows a side cross-sectional view of the cartridge 700. Although other configurations are possible, the cartridge 700 of the illustrated implementation generally includes a mouthpiece 702, a mouthpiece insert 704, an upper aerosol channel insert 706, an upper cartridge seal 708, a reservoir 710 defining a reservoir wall 711, a lower cartridge seal 712, a base member 714, a liquid transport element (e.g., a wick) 716, a heating member 718, a pair of heater connectors 720A, 720B, a pair of metal inserts 724A, 724B, and a bottom cap 726.
[0178] As shown, the mouthpiece 702 of the illustrated implementation defines a proximal end and a distal end, the proximal end of the mouthpiece 702 defining an exit portal 715 therein. In the illustrated implementation, the mouthpiece insert 704 is configured to be positioned adjacent the proximal end of the mouthpiece so as to extend through the exit portal 715 of the mouthpiece 702. In the illustrated implementation, the mouthpiece 702 can be made from a moldable plastic material such as polypropylene, although other materials are possible, including, but not limited to, Tritan™ copolyester, acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high-impact polystyrene, and combinations thereof. In the illustrated implementation, the mouthpiece insert 704 can be made from a molded polymeric material such as Tritan™ copolyester, although other materials are possible, including, but not limited to, polypropylene, acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high-impact polystyrene, and combinations thereof. In the illustrated implementation, the upper cartridge seal 708 is overmolded onto / with the mouthpiece insert 704, although in other implementations, these components may represent separate parts. In the illustrated implementation, the upper cartridge seal 708 is configured to form a substantially airtight and liquid-tight seal between the reservoir 710 and the mouthpiece 702. Thus, the upper cartridge seal 708 can be made from a thermoplastic elastomer. In other implementations, the upper cartridge seal can be made from other materials, including, but not limited to, silicone rubber, boron nitride (BN) rubber, natural rubber, thermoplastic polyurethane, or another elastomeric material. In the illustrated implementation, the mouthpiece insert 704 is configured to receive and seal with the upper aerosol channel insert 706 (see also Figures 25 and 26).
[0179] In the illustrated implementation, the mouthpiece insert 704 and upper cartridge seal 708 assembly includes a flange feature such that the mouthpiece insert 704 and upper cartridge seal 708 can be installed from inside the mouthpiece 702 and configured for a press-fit or snap-fit connection with the exit portal 715 and / or another portion of the mouthpiece 702. In other implementations, other attachment methods are possible (e.g., via adhesive, heat staking / welding, ultrasonic welding, etc.). In the illustrated implementation, the mouthpiece 702 is configured to be secured to the reservoir 710 via a snap feature. For example, the mouthpiece 702 in the illustrated implementation includes a ridge feature 743 (see FIG. 26 ) extending around at least a portion of its inner surface, and the reservoir 710 includes a corresponding groove feature 741 extending around at least a portion of its outer surface. In other implementations, these features may be reversed (e.g., the mouthpiece can include a groove and the reservoir can include a ridge feature). In still other implementations, other attachment methods are possible (eg, via adhesive, heat staking / welding, ultrasonic welding, etc.).
[0180] In some implementations, the mouthpiece insert may exhibit a color associated with a distinctive characteristic of the cartridge. For example, in some implementations, the cartridge of the present disclosure may contain a liquid composition including a distinctive characteristic, such as a particular flavor (described below) or a particular strength of nicotine, although any characteristic of the cartridge may be considered a distinctive characteristic. For purposes of the current description, the term "color" should be interpreted broadly to cover, for example, any color or any shade of the same color. It should also be noted that in some implementations, a particular color may be generally associated with a particular distinctive characteristic (e.g., green may be associated with mint flavor, and red may be associated with apple flavor). However, in other implementations, a particular color may be associated with a particular distinctive characteristic according to an index or guide that may be provided or made available to the user. Examples of distinctive characteristics are described in U.S. Patent Application No. 16 / 171,920, entitled "Aerosol Delivery Device with Flavor Indicator," which is incorporated herein by reference in its entirety.
[0181] The reservoir 710 in the illustrated implementation defines a proximal end and a distal end, the mouthpiece 702 is configured to engage the proximal end of the reservoir 710, and the bottom cap 726 is configured to engage the distal end of the reservoir 710. In the illustrated implementation, the reservoir 710 also defines a reservoir cavity 728 including a closed proximal end and an open distal end. Thus, the reservoir cavity 728 of the reservoir 710 is configured to contain a liquid composition (e.g., an e-liquid or an aerosol precursor composition) therein. The closed proximal end of the reservoir cavity 728 allows the cavity to form a reliable seal with the top surface of the liquid composition column. This can prevent air from seeping / entering the reservoir cavity from the top when the cartridge is held upright. This can also prevent air from entering the top of the liquid composition column, which can create a vacuum and reduce the likelihood of the liquid composition leaking out the bottom of the reservoir through a liquid transport element or other passageway.
[0182] Although other configurations are possible, in the illustrated implementation, a pair of internal aerosol flow conduits 733A, 733B are defined on either side of the reservoir cavity 728 of the tank 710. In the case of an injection-molded tank 710, the internal aerosol flow conduits are configured to be molded therein. As described in more detail below, aerosol generated in the vaporization chamber of the cartridge 700 is configured to travel through the aerosol flow conduits for delivery to a user.
[0183] In the illustrated implementation, the tank wall 711 is configured to be transparent or translucent so that the liquid composition contained therein is visible from the outside. Thus, in the illustrated implementation, the entire tank wall 711 is configured to be transparent or translucent. Alternatively, in some implementations, only a portion of the tank wall or only one side of the tank wall may be transparent or translucent, while the remaining portion of the tank wall may be substantially opaque. In other implementations, the tank wall may be substantially opaque, with a strip extending from the proximal end of the tank to the distal end of the tank being transparent or translucent. In further implementations, the tank wall may be colored. In some implementations, the color can be configured so that the liquid composition within the tank is still visible, such as by using a transparent or translucent outer tank wall. In other implementations, the tank wall can be configured so that the outer tank wall has a substantially opaque color. In the illustrated implementation, the tank 710 is made from Tritan™ copolyester, but in other implementations, the tank may be made from other materials, including, but not limited to, acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high impact polystyrene, polypropylene, and combinations thereof. Still other materials are possible, including, for example, glass.
[0184] In those implementations that include a viewing window in the control device, at least a portion of the reservoir and / or at least a portion of the bottom cap can be visible when the cartridge is engaged with the control device. As described above, in some implementations, at least a portion of the reservoir wall 711 can be configured to be at least partially transparent or translucent so that the liquid composition contained therein is visible from the outside. Thus, in some implementations, the relative amount of any liquid composition present in the reservoir can be visible through the viewing window when the cartridge is engaged with the control device. In some implementations, the viewing window can be located near the proximal end of the control device and configured as an elongated oval cutout in the outer wall of the housing and the top frame of the control device. In still other implementations, the viewing window can have any other shape and / or location, as described above with respect to the other illustrated implementations, and it should be understood that some implementations need not include a viewing window, as described above.
[0185] In the illustrated implementation, the tank 710, and particularly the reservoir cavity 728, contains a liquid composition that may include an aerosol precursor composition and / or a flavoring. See the above description of these materials and variations thereof. As shown, the cartridge 700 of the illustrated implementation also includes a base member 714 configured to engage and cover the open distal end of the reservoir cavity 728 of the tank 710. The lower seal 712 of the illustrated implementation is configured to form a substantially airtight and liquid-tight seal between the lower portion of the tank 710 and the bottom cap 726 (see also FIGS. 25 and 26 ); particularly, the lower seal 712 is configured to be disposed within a groove in the outer surface of the base member 714 to facilitate a substantially airtight and liquid-tight seal between the base member 714 and the tank 710. In the illustrated implementation, the lower seal 712 is made from silicone rubber. In other implementations, the lower seal may be made from other materials, including, but not limited to, boron nitride (BN) rubber, natural rubber, thermoplastic polyurethane, or another elastomeric material. In the illustrated implementation, the base member 714 is made from Tritan™ copolyester. In other implementations, the base member can be made from another material, including, but not limited to, acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high-impact polystyrene, polypropylene, and combinations thereof. The base member 714 of the illustrated implementation also includes a plurality of slots 735 configured to provide a liquid flow path for the liquid composition contained in the reservoir cavity 728 of the tank 710 to facilitate transfer of the liquid to the liquid transport element 716. In some implementations, the slots can also provide some liquid retention even when the bulk liquid composition in the reservoir cavity 728 is not in contact with the base member 714 (e.g., when the aerosol delivery device is turned upside down).
[0186] As shown, the liquid transport element 716 is disposed within the base member 714 and extends between the liquid composition in the reservoir cavity 728 and the heating member 718 (see also FIGS. 25 and 26). In the illustrated implementation, the liquid transport element 716 is made from 100% cotton and has a curved shape when installed in the cartridge 700. However, in other implementations, the liquid transport element may have other shapes and may be formed from various materials configured to transport liquids by capillary action or the like. For example, in some implementations, the liquid transport element can be formed from fibrous materials (e.g., organic cotton, cellulose acetate, regenerated cellulose fabric, glass fiber), porous ceramic, porous carbon, graphite, porous glass, sintered glass beads, sintered ceramic beads, capillaries, etc. In other implementations, the liquid transport element may be any material that includes an open pore network (i.e., multiple pores interconnected so that fluid can flow from one pore to another in multiple directions through the element). As further described herein, some implementations of the present disclosure may specifically relate to the use of non-fibrous transport elements. Thus, fibrous transport elements may be explicitly excluded. Alternatively, a combination of fibrous and non-fibrous transport elements may be utilized. Representative types of substrates, reservoirs, or other components for supporting aerosol precursors are described in U.S. Patent No. 8,528,569 to Newton; U.S. Patent Application Publication Nos. 2014 / 0261487 to Chapman et al. and 2014 / 0059780 to Davis et al.; and U.S. Patent Application Publication No. 2015 / 0216232 to Bless et al., which are incorporated herein by reference in their entireties. Additionally, various wicking materials and the configuration and operation of these wicking materials within specific types of electronic cigarettes are described in U.S. Patent No. 8,910,640 to Sears et al., which are incorporated herein by reference in their entireties. In some implementations, the liquid transport element may be partially or completely formed from a porous monolith, such as a porous ceramic, porous glass, or the like.Exemplary ceramic materials suitable for use in accordance with embodiments of the present disclosure are described, for example, in U.S. Patent Application No. 14 / 988,109, filed January 5, 2016, and U.S. Patent Application Publication No. 2014 / 0123989 to LaMothe, the disclosures of which are incorporated herein by reference in their entireties.
[0187] As shown, the heating member 718 of the illustrated implementation is also configured to be disposed within the base member 714. Notably, the heating member 718 of the illustrated implementation comprises a heating element having a substantially flat profile. In some implementations, the heating member can maintain a substantially flat profile when attached to the cartridge, but when the heating member 718 of the illustrated implementation is attached to the cartridge 700, it has a curved or arcuate shape that corresponds to the curved shape of the liquid transport element 716 (see also FIG. 26 ). Although other implementations may vary, in the illustrated implementation, the heating member 718 includes a first end, a second end, and a heater loop connecting the first and second ends. Notably, the heater loop of the illustrated implementation includes a serpentine pattern of heater traces connected to their respective ends and extending substantially transverse to the longitudinal axis of the heating element to connect the first end to the second end. While in some implementations the heater traces may be solid, the heater traces of the illustrated implementation comprise multiple segmented traces. In the illustrated implementation, the edges of the heating element are substantially solid and the plurality of split traces are disposed in a central region of the heating element. In that way, the heater loop of the illustrated implementation may be configured to concentrate heat in the region of the heating element configured to contact the liquid transport element 716.
[0188] In the illustrated implementation, the heating element 718 in the installed position contacts the bottom surface of the liquid transport element 716. In the illustrated implementation, the curved form of the flat heating element 718 can provide a large ratio of cross-sectional flow area to flow path length through the liquid transport element 716. This can provide improved performance for delivering liquid compositions to the liquid transport element 716. When installed, the edges of the heating element 718 are configured to engage with the base member 714 so that the heating element 718 maintains its curved shape. In that way, the curvature of the heating element 718 can also provide a compressive force against the liquid transport element 716. Furthermore, the spring restoring force of the heating element 718 allows the edges of the heating element 718 to be positioned or locked within the base member 714, which can reduce or eliminate the need for additional features configured to hold the heating element 718 within the base member 714 from the other side. The installed curvature of the heating member 718 also biases the deflection of the heating member 718 toward the liquid transport element 716 that may occur with thermal expansion, thus helping to maintain thermal contact between the heating member 718 and the liquid transport element 716. In the illustrated implementation, the liquid transport element 716 and the heating member 718 comprise a heating assembly 734 that, together with the base member 714 and the nozzle member 755, defines the vaporization chamber 732. In the illustrated implementation, the nozzle member 755 includes a central opening and is positioned below the heating member 718, proximate to the base member 726. In the illustrated implementation, the nozzle member 755 is made of silicone rubber, although other materials are possible, including, but not limited to, boron nitride (BN) rubber, natural rubber, thermoplastic polyurethane, or another elastic material. In other implementations, the nozzle member may be made of other materials, including, but not limited to, a moldable plastic material.
[0189] It should be noted that some implementations need not include a heating assembly, but rather may include an atomization assembly configured to generate the aerosol in another manner. Some examples of atomization assemblies that generate the aerosol in another manner can be found, for example, in U.S. Patent Application No. 16 / 544,326, filed August 19, 2019, entitled "Detachable Atomization Assembly for Aerosol Delivery Device," which is incorporated herein by reference in its entirety.
[0190] In the illustrated implementation, the heating element 718 is made from 316L stainless steel, although other materials may be used, including, but not limited to, 316, 304, or 304L stainless steel. In other implementations, the heating element may be made from different materials, such as, for example, Kanthal (FeCrAl), nichrome, molybdenum disilicide (MoSi), molybdenum silicide (MoSi), aluminum-doped molybdenum disilicide (Mo(Si,Al)), titanium, platinum, silver, palladium, alloys of silver and palladium, graphite, and graphite-based materials (e.g., carbon-based foams and threads). In further implementations, the heating element may be formed from conductive ink, boron-doped silica, and / or ceramic (e.g., positive or negative temperature coefficient ceramic). Other types of heaters, such as laser diodes or microheaters, may also be utilized. The laser diode can be configured to deliver electromagnetic radiation of a specific wavelength or wavelength band that can be tuned for vaporizing the aerosol precursor composition and / or for heating a liquid transport element to which the aerosol precursor composition can be provided for vaporization. The laser diode can be specifically positioned to deliver electromagnetic radiation into a chamber, and the chamber can be configured to be a radiation trap (e.g., a black body or a white body). Suitable microheaters are described in U.S. Pat. No. 8,881,737 to Collett et al., incorporated herein by reference in its entirety. The microheater can include, for example, a substrate (e.g., quartz, silica) having a heater trace thereon (e.g., a resistive element such as Ag, Pd, Ti, Pt, Pt / Ti, boron-doped silicon, or other metal or metal alloy), which can be printed or otherwise applied to the substrate. A passivation layer (e.g., aluminum oxide or silica) can be provided on the heater trace. Other heaters are described in US Patent Application Publication No. 2016 / 0345633 to DePiano et al., which is incorporated herein by reference in its entirety.
[0191] Although other implementations may provide additional and / or different contact mechanisms, the heating element 718 in the illustrated implementation includes a pair of contact holes 731A, 731B configured to connect the heating element 718 to the heater connectors 720A, 720B of the cartridge 700. In the illustrated implementation, the heater connectors 720A, 720B are made of brass with gold over nickel plating. In other implementations, the heater connectors may be made of another conductive material, which may or may not be plated. Examples of other possible conductive materials include, but are not limited to, copper, aluminum, platinum, gold, silver, iron, steel, bronze, graphite, conductive ceramic materials, and / or any combination thereof. In the illustrated implementation, the contact holes 731A, 731B are configured to have an inner diameter that is smaller than the outer diameter of the mating portions of the heater connectors 720A, 720B. In some implementations, the contact holes may include one or more features (e.g., one or more fingers or extensions) that form an effective inner diameter that is smaller than the outer diameter of the mating portions of the heater connectors 720A, 720B. In that way, the contact holes 731A, 731B of the heating element 718 may form an interference fit with the upper ends of the heater connectors 720A, 720B such that the heating element 518 can maintain electrical contact with the heater connectors 720A, 720B. In the illustrated implementation, the heater connectors 720A, 720B are insert molded into the bottom cap 726.
[0192] The bottom cap 726 in the illustrated implementation is configured to be secured to the distal end of the tank 710 via an ultrasonic welding process. However, other attachment methods are possible (e.g., via adhesive, heat staking / welding, snap fit, etc.). In the illustrated implementation, the bottom cap 726 of the cartridge 700 includes a cartridge air inlet channel 730 located approximately in the center of the bottom surface of the bottom cap 726. Although other configurations are possible, in the illustrated implementation, the cartridge air inlet channel 730 has an oval shape and includes a crossbar feature that extends across the inlet between the opening of the air inlet channel 730 and the vaporization chamber 732.
[0193] Although other configurations are possible, the cartridge 700 in the illustrated implementation also includes a pair of metal inserts 724A, 724B configured to be disposed within and exposed through a bottom surface of a bottom cap 726. In the illustrated implementation, the metal inserts 724A, 724B are insert molded into the bottom cap 726. In some implementations, the metal inserts may be configured for a press-fit or snap-fit connection with the bottom cap. In the illustrated implementation, the metal inserts 724A, 724B are made from stainless steel plated with nickel. However, in other implementations, the metal inserts may be made from any material configured to be attracted by a magnet, such as various ferromagnetic materials, including, but not limited to, alloys such as iron, nickel, cobalt, steel, and / or any combination thereof.
[0194] As described above, when the cartridge is mated with the cartridge receiving chamber of the control device, a mechanical and electrical connection is formed between the cartridge and the control device. Figure 27 shows a front cross-sectional view of an aerosol delivery device according to an exemplary implementation of the present invention. In particular, Figure 27 shows a cartridge 700 mated with the control device 600. When the cartridge 700 of the illustrated implementation is mated with the upper frame 606 of the control device 600, a magnetic connection is formed between the magnets 646A, 646B located on the upper frame 606 and the metal inserts 724A, 724B located on the bottom cap 726 of the cartridge 700. Additionally, an electrical connection is formed between the pair of conductive pins 636A, 636B of the control device 600 and the heater connectors 720A, 720B of the cartridge 700. Thus, when the cartridge 700 of the illustrated implementation is coupled to the control device 600, the cartridge 700 is mechanically biased into connection with the control device 600 so that an electrical connection is maintained between the cartridge 700 (particularly the heating assembly 734) and the control device (particularly the control component 614 and the battery 616).
[0195] When the cartridge 700 of the illustrated implementation is coupled with the control unit 600, an electrical connection between the control unit 600 and the heating element 718 of the cartridge 700 (via the conductive pins 636A, 636B of the control unit 600 and the heater connectors 720A, 720B of the cartridge) allows the control body 600 to direct current to the heating element 718. In the illustrated implementation, this can occur when a puff in the aerosol delivery device is detected (or, in other implementations, via user activation, such as via a push button). When a user of the aerosol device of the illustrated implementation inhales on the mouthpiece 702, inlet airflow is directed into the device through a gap between the cartridge 700 and the control unit 600. In the illustrated implementation, the gap comprises a peripheral gap extending substantially around the entire circumference of the cartridge 700. It should be understood that in other implementations, the gap need not extend around the entire circumference of the cartridge; for example, in some implementations, the gap may comprise one or more gaps that extend around a portion of the circumference of the cartridge rather than the entire circumference, and in some implementations, the gap may comprise one or more individual holes. In the illustrated implementation, the gap begins at the interface between the outer surface of the cartridge 700 and the inner surface of the control device 600. In particular, the gap begins at the interface between the outer surface of the mouthpiece 702 of the cartridge 700 and the upper edge of the outer wall 604 of the housing 602 of the control device 600.
[0196] In the illustrated implementation, the gap between the cartridge 700 and the control device 600 is established and maintained by features of the cartridge 700 and / or the control device 600. Although other configurations are possible, the upper frame 606 in the illustrated implementation includes a pair of spaced-apart protrusions located on one side of the cartridge-receiving chamber 630 and a pair of spaced-apart channels located on the opposite side of the cartridge-receiving chamber 630. In the illustrated implementation, the protrusions comprise raised, elongated bosses extending from approximately the top of the upper frame 606 to its concave surface. Similarly, the channels extend from approximately the top of the upper frame 606 to its concave surface. When the cartridge 700 in the illustrated implementation is coupled with the control device 600, the protrusions located on the inner surface of the cartridge-receiving chamber 630, the area of the upper frame between the channels (which may alternatively be considered relatively wide or large protrusions), and / or the area between the protrusions and the channels contact the outer surface of the cartridge 700 (particularly, the outer surface of the mouthpiece 702 and / or the outer surface of the reservoir 710 and / or the outer surface of the bottom cap 726). As such, these features laterally position cartridge 700 relative to upper frame 606, thus establishing and maintaining a gap. It should be understood that in other implementations, the positioning features can take other forms (e.g., including one or more bumps) and may be located on one or more components of the cartridge rather than (or in addition to) the controller.
[0197] When a user draws on the device, air entering the gap between the cartridge 700 and the control device 600 travels downward around the outside of the cartridge 700 and beneath its bottom cap 726. In the illustrated implementation, the inlet air can travel beneath the bottom cap 726 due to the vertical position of the cartridge 700 relative to the bottom of the cartridge-receiving chamber 730. Notably, the vertical position of the cartridge 700 in the illustrated implementation is established using one or more positioning features extending upward from the concave surface of the upper frame 606, at least one of which is configured to contact the bottom surface of the bottom cap 726 when the cartridge 700 is coupled with the control device 600. In the illustrated implementation, the positioning features include at least a pair of bosses, each of which extends around a respective magnet 646. In that manner, when the cartridge 700 is received within the control device 600, the gap between the cartridge 700 and the control device 600 is also established between the bottom of the bottom cap 726 and the concave surface of the upper frame 606.
[0198] As noted above, although other configurations are possible, the bottom cap 726 of the illustrated implementation includes an inlet channel 730 located approximately in the center of the bottom surface of the bottom cap 726. In the illustrated implementation, the concave surface of the receiving chamber 630 includes an opening therethrough, and the top frame seal 608 of the illustrated implementation includes a ridge configured to abut the bottom of the bottom cap 726 and substantially surround the inlet channel 730 when the cartridge 700 is installed in the receiving chamber 630. Thus, air entering the gap between the cartridge 700 and the controller 600 travels through the opening in the concave surface of the receiving chamber 630 (and in proximity to the pressure sensor), through the ridge in the top frame seal, and into the inlet channel 730 of the cartridge 700. The air entering through the inlet channel 730 then enters the vaporization chamber 732 of the cartridge. As air is drawn into the cartridge 700 through the inlet channel 730, the pressure sensor 640 of the controller 600 detects the suction. When suction is detected by the pressure sensor 640, the control component 614 applies current to the heating element 718 to heat it. As the heating element 718 heats, at least a portion of the liquid composition contained in the liquid transport element 716 is vaporized within the vaporization chamber 732. The aerosol generated within the vaporization chamber 732 can then be directed toward the user. In particular, as air enters the cartridge 700 via the air inlet channel 730, it travels through the vaporization chamber 732 and mixes with the vaporized liquid composition to become an aerosol. Due to the geometry of the vaporization chamber 732 and the bottom cap 726, the aerosol splits into two separate paths that extend through the interior of the bottom cap 726 and then through aerosol flow tubes defined on either side of the reservoir cavity 728 of the tank 710. This relatively tortuous configuration can increase the effective flow path length and area for heat sinking, thus increasing cooling of the aerosol stream before reaching the user. The two aerosol paths converge at the proximal end of the tank 710 and below the upper aerosol channel insert 706 .The recombined aerosol then flows through the upper aerosol channel insert 706 and out the exit portal 715 of the mouthpiece 700 to the user.
[0199] Although other configurations are possible, in the illustrated implementation, the upper aerosol channel insert 706 is configured to absorb liquid formed by deposition and / or condensation from the aerosol formed in the vaporization chamber 732 and is configured to have rigid or semi-rigid properties. Accordingly, the upper aerosol channel insert 706 in the illustrated implementation may be made from fiber, sintered beads, or an open-cell foam material. For example, in some implementations, the upper aerosol channel insert may be made from a fiber-bonded polyethylene (PE) or polyethylene terephthalate (PET) material. As such, the upper aerosol channel insert 706 may be configured for press-fit or snap-fit attachment with the mouthpiece 702 (particularly the mouthpiece insert 704). The upper aerosol channel insert 706 is also configured to help prevent liquid accumulation from exiting the cartridge 700 through the mouthpiece 702. Furthermore, the upper aerosol channel insert 706 is positioned such that the aerosol generated in the vaporization chamber 732 passes through the insert 706 just before exiting the cartridge 700. In the illustrated implementation, the inner cavity of the upper aerosol channel insert 706 can also function as a cooling chamber in which the formed aerosol can expand and / or cool before passing through the exit portal 715. In some implementations, the vaporization chamber 732 and the cooling chamber can be configured to have a defined relative volume ratio.
[0200] 28 shows an exploded perspective view of a control device of an aerosol delivery device according to another exemplary implementation of the present disclosure. As shown, the control device 800 of the illustrated implementation generally includes a housing 802 defining an outer wall 804, an upper frame 806, an upper frame seal 808, a pressure sensor seal 810, a lower frame 812, control components 814, a battery 816, a vibration motor 818, a motor housing 820, a pin seal 822, an end cap 824, a light diffuser 826, and a vent 839. The control device 800 of the illustrated implementation also includes a front foam pad 831, a plurality of side foam pads 837 (which may allow room for the battery to expand during use), a battery insulator 839, and an electrical insulator 847. In the illustrated implementation, battery insulator 839 is configured to be disposed between battery 816 and control component 814, side foam pads 837 are configured to be disposed on either side of battery 816, front foam pad 831 is configured to be disposed between control component 841 and housing 804, and electrical insulator 847 is configured to act as insulators for solder points when the motor and control component intersect. In various implementations, any one or any combination of these components need not be included. Furthermore, in various implementations, one or more of these components may be replaced by a curing sealant, potting, tape, or the like. In some implementations, the control device may include one or more other seals, which may include, for example, an upper chassis seal and / or a lower chassis seal.
[0201] The arrangement of the components of the control device 800 is shown in FIG. 29, which illustrates a cross-sectional view of a control device according to an exemplary implementation of the present disclosure. In particular, FIG. 29 illustrates a front cross-sectional view of the control device 800. As shown, the upper frame 806 of the control device 800 defines a cartridge-receiving chamber 830 within which a cartridge can be coupled. In the illustrated implementation, the upper frame 806 and the housing 802 represent different components. However, in other implementations, the upper frame and the housing may be formed continuously such that they comprise the same component.
[0202] In the illustrated implementation, the housing 802 comprises a metal material such as, for example, aluminum. However, in other implementations, the housing may comprise a metal alloy material, and in still other implementations, the housing may comprise a molded polymer material. In the illustrated implementation, one or more of the upper frame 806, the lower frame 812, and the end cap 824 can be made from a molded polymer material, such as, for example, a molded plastic material (e.g., polybutylene terephthalate (PBT), acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high-impact polystyrene, polypropylene, and combinations thereof). In other implementations, one or more of these components may be made from other materials, including, for example, a metal material (e.g., aluminum, stainless steel, metal alloy, etc.), a glass material, a ceramic material (e.g., alumina, silica, mullite, silicon carbide, silicon nitride, aluminum nitride, etc.), a composite material, and / or any combination thereof.
[0203] In the illustrated implementation, the lower frame 812 is configured to house a battery 816 in its interior region. In the illustrated implementation, the battery may include a lithium polymer (LiPo) battery. However, various other batteries may be suitable. Some other examples of batteries that may be used in accordance with the present disclosure are described in U.S. Patent Application Publication No. 2010 / 0028766 to Peckerar et al., the disclosure of which is incorporated herein by reference in its entirety. In some implementations, other types of power sources may be utilized. For example, in various implementations, the power source can comprise a replaceable or rechargeable battery, a solid-state battery, a thin-film solid-state battery, a rechargeable supercapacitor, etc., and thus can be combined with any type of charging technology, including connection to a wall charger, connection to an automobile charger (e.g., a cigarette lighter socket, a USB port, etc.), connection to a USB connector (e.g., USB 2.0, 3.0, 3.1, USB Type-C, which can be implemented in wall outlets, electronic devices, vehicles, etc.), connection to a photovoltaic cell (sometimes called a solar cell) or solar panel, chargers using inductive wireless charging (e.g., including wireless charging according to the Qi wireless charging standard from the Wireless Power Consortium (WPC)) or wireless chargers such as radio frequency (RF)-based chargers, and connection to an array of external cells such as a power bank for charging the device via a USB connector or wireless charger. An example of an inductive wireless charging system is described in U.S. Patent Application Publication No. 2017 / 0112196 by Sur et al., which is incorporated herein by reference in its entirety. In further implementations, the power source can also include a capacitor. Because capacitors can discharge faster than batteries and can be charged between puffs, the battery can be discharged into the capacitor at a slower rate than if it were used to directly power the heating element. For example, a supercapacitor, such as an electric double layer capacitor (EDLC), can be used separately from or in combination with a battery. When used alone, the supercapacitor can be recharged each time the article is used.Thus, the device may also include a charger component that can be attached to the smoking article during use to replenish the supercapacitor. Examples of power sources that include supercapacitors are described in U.S. Patent Application Publication No. 2017 / 0112191 to Sur et al., which is incorporated herein by reference in its entirety.
[0204] The controller 800 of the illustrated implementation includes a control mechanism in the form of a control component 814 configured, in part, to control the amount of power supplied to the heating element of the cartridge. Although other configurations are possible, the control component 814 of the illustrated implementation comprises a circuit board 834 (e.g., a printed circuit board (PCB)) that includes both rigid and flexible portions. In particular, the circuit board 834 of the illustrated implementation includes a rigid central section 815 and two rigid end sections, including a proximal end section 817 and a distal end section 819, with each end section 817, 819 connected to the central section 815 by a respective flexible connection. As such, when the lower frame 812, battery 816, and circuit board 834 are assembled into the controller 800, the central section 815 of the circuit board 834 is configured to be positioned proximate a major surface of the battery 816, and the two end sections 817, 819 are configured to be positioned substantially perpendicular to the central section 815. In particular, a proximal end section 817 of the circuit board 834 is configured to extend across the top of the lower frame 812, and a distal end section 819 is configured to extend across the bottom of the lower frame 812. The lower frame 812 of the control device 800 is also configured to house a motor housing 820 in which a vibration motor 818 is received. In various implementations, the vibration motor 818 can provide tactile feedback regarding various operations of the device.
[0205] The central section 815 of the illustrated implementation also includes an indicator in the form of a light source 821. In some implementations, the light source may comprise, for example, at least one light emitting diode (LED) capable of providing light of one or more colors. In other implementations, the light source may be configured to emit light of only one color, while in other implementations, the light source may be configured to emit light of a variety of different colors. In still other implementations, the light source may be configured to provide white light. In the illustrated implementation, the light source 821 comprises an RGB (red, green, blue) LED configured to provide light of various colors, including white light. The central section 815 of the illustrated circuit board 834 also includes electrical contacts 823 configured to operably connect the circuit board 834 to the vibration motor 818. Other types of electronic components, their structure and configuration, their features, and their general method of operation are described in U.S. Pat. No. 4,735,217 to Gerth et al.; U.S. Pat. No. 4,947,874 to Brooks et al.; U.S. Pat. No. 5,372,148 to McCafferty et al.; U.S. Pat. No. 6,040,560 to Fleischhauer et al.; U.S. Pat. No. 7,040,314 to Nguyen et al. and U.S. Pat. No. 8,205,622 to Pan; U.S. Pat. App. Pub. Nos. 2009 / 0230117 to Fernando et al., 2014 / 0060554 to Collet et al., and 2014 / 0270727 to Ampolini et al.; and U.S. Pat. App. Pub. No. 2015 / 0257445 to Henry et al., which are incorporated herein by reference.Still other features, controls, or components that may be incorporated into the aerosol delivery devices of the present disclosure include those disclosed in U.S. Pat. No. 5,967,148 to Harris et al.; U.S. Pat. No. 5,934,289 to Watkins et al.; U.S. Pat. No. 5,954,979 to Counts et al.; U.S. Pat. No. 6,040,560 to Fleischhauer et al.; U.S. Pat. No. 8,365,742 to Hon; U.S. Pat. No. 8,402,976 to Fernando et al. ..., all of which are incorporated herein by reference in their entireties. U.S. Patent Application Publication No. 2010 / 0163063 to Tucker et al.; U.S. Patent Application Publication No. 2013 / 0192623 to Leven et al.; U.S. Patent Application Publication No. 2013 / 0298905 to Leven et al.; U.S. Patent Application Publication No. 2013 / 0180553 to Kim et al., U.S. Patent Application Publication No. 2014 / 0000638 to Sebastian et al., U.S. Patent Application Publication No. 2014 / 0261495 to Novak et al., and U.S. Patent Application Publication No. 2014 / 0261408 to DePiano et al.
[0206] In the illustrated implementation, the vent 845 is configured to be installed inside the housing 802 so as to cover the opening 825. Thus, in the illustrated implementation, one side of the vent 845 may include a pressure-sensitive adhesive. In the illustrated implementation, the vent 845 includes a breathable membrane material, such as a Gore-Tex® material. However, other suitable materials are possible. In the illustrated implementation, the light source 821 is covered by a light diffuser 826, a portion of which is configured to be received by the end cap 824. In the illustrated implementation, the light diffuser forms a press-fit connection with the end cap 824. However, in other implementations, the light diffuser may be secured to the end cap in another manner. When assembled, the light diffuser 826 is positioned within or adjacent to the distal end of the opening 825 defined in the outer wall 804 of the housing 802. In the illustrated implementation, the opening 825 includes a narrow, elongated opening. However, in other implementations, the opening may be provided in any desired shape and may be located at any position on the control device 800. In some implementations, the light diffuser 826 may comprise a transparent or translucent member configured to allow a user to view the light source 821 from outside the housing 802. In the illustrated implementation, the light diffuser 826 may be made from a molded polymeric material such as, for example, a molded plastic material (e.g., polybutylene terephthalate (PBT), acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high-impact polystyrene, polypropylene, and combinations thereof), although other materials, including glass, are possible. In various implementations, additional indicators (e.g., other tactile feedback components, audio feedback components, etc.) may be included in addition to or in place of the indicators included in the illustrated implementation.Additional exemplary types of components that generate visual cues or indicators, such as LED components, and their construction and use are described in U.S. Pat. No. 5,154,192 to Sprinkel et al.; U.S. Pat. No. 8,499,766 to Newton and U.S. Pat. No. 8,539,959 to Scatterday; U.S. Patent Application Publication No. 2015 / 0020825 to Galloway et al.; and U.S. Patent Application Publication No. 2015 / 0216233 to Sears et al., which are incorporated by reference in their entireties.
[0207] Although other configurations are possible, the proximal end section 817 of the circuit board 834 in the illustrated implementation includes a pair of conductive pins 836A, 836B, as well as a pressure sensor 840. In the illustrated implementation, the conductive pins 836A, 836B comprise spring-loaded pins (e.g., electrical pogo pins) that extend through the upper frame 806 such that a portion of the end of the pins 836A, 836B extends into the cartridge-receiving chamber 830 and is biased into that position by the force of the internal springs of the conductive pins 836A, 836B. In that way, when a cartridge is coupled to the control device 800, the conductive pins 836A, 836B are configured to contact corresponding features on the cartridge and deflect downward (e.g., toward the lower frame 812) against the force of the springs, thus operably connecting the installed cartridge to the control component 814 and the battery 816. In the illustrated implementation, the conductive pins 836A, 836B comprise gold-plated metal pins. However, other materials or combinations of materials are possible, which may also include coatings and / or platings of conductive materials. Examples of conductive materials include, but are not limited to, copper, aluminum, platinum, gold, silver, iron, steel, brass, bronze, graphite, conductive ceramic materials, and / or any combination thereof. Although other profiles are possible, the ends of the conductive pins 836A, 836B in the illustrated implementation have a rounded profile to facilitate deflection of the conductive pins 836A, 836B when a cartridge is inserted into the cartridge receiving chamber 830. In other implementations, the conductive pins may be positioned at other locations in the cartridge receiving chamber 830, such as near the top of the cartridge receiving chamber 830. In other implementations, the conductive pins may be positioned at a point on the side of the upper frame between the proximal end of the outer housing and the bottom wall of the upper frame. Furthermore, in still other implementations, the conductive pins may be positioned between the midpoint of the side wall and the proximal end of the outer housing (i.e., in the upper half of the side wall). Alternatively, the conductive pins may be located between the midpoint of the side wall and the bottom wall of the inner frame wall (e.g., in the lower half of the side wall). Additionally, in still other implementations, the conductive pins may be located anywhere on the upper frame.
[0208] In various implementations, the aerosol delivery device may include an airflow sensor, a pressure sensor, etc. As mentioned above, the control component 814 of the illustrated implementation includes a pressure sensor 840 positioned proximate to and below the cartridge-receiving chamber 830. The location and function of the pressure sensor 840 in the illustrated implementation are described below. However, in other implementations, the airflow or pressure sensor may be located anywhere within the control device 800 so as to receive airflow and / or pressure changes that can signal inhalation of the device and therefore cause the battery 816 to power the heating element of the cartridge. Various configurations of printed circuit boards and pressure sensors are described, for example, in U.S. Patent Application Publication No. 2015 / 0245658 to Worm et al., the disclosure of which is incorporated herein by reference in its entirety. In the absence of an airflow sensor, a pressure sensor, etc., the aerosol delivery device may be manually activated via a push button, etc., that may be located on the control device and / or cartridge. For example, one or more push buttons can be used, as described in U.S. Patent Application Publication No. 2015 / 0245658 to Worm et al., which is incorporated herein by reference in its entirety. Similarly, a touch screen can be used, as described in U.S. Patent Application No. 14 / 643,626 to Sears et al., filed March 10, 2015, which is incorporated herein by reference in its entirety. As a further example, a component adapted for gesture recognition based on designated movements of the aerosol delivery device may be used as input. See U.S. Patent Application Publication No. 2016 / 0158782 to Henry et al., which is incorporated herein by reference in its entirety.
[0209] Although not included in the illustrated implementation, some implementations may include other types of input elements that can replace or supplement the airflow or pressure sensors. Inputs may be included to allow a user to control device functions and / or for outputting information to the user. Any component or combination of components may be utilized as an input for controlling device functions. In some implementations, the input may comprise a computer or computing device, such as a smartphone or tablet. In particular, the aerosol delivery device may be hardwired to a computer or other device, such as via a USB cord or similar protocol. The aerosol delivery device may also communicate with a computer or other device that serves as an input via wireless communication. See, for example, the systems and methods for controlling a device via a read request described in U.S. Patent Application Publication No. 2016 / 0007561 to Ampolini et al., the disclosure of which is incorporated herein by reference in its entirety. In such embodiments, an app or other computer program may be used in conjunction with a computer or other computing device to input control instructions to the aerosol delivery device, including, for example, the ability to form an aerosol of a specific composition by selecting the nicotine content and / or additional flavoring content to be included. Further exemplary types of sensing or detection mechanisms, their structure and configuration, their components, and their general methods of operation are described in U.S. Pat. No. 5,261,424 to Sprinkel, Jr.; U.S. Pat. No. 5,372,148 to McCafferty et al.; and WO 2010 / 003480 to Flick, which are incorporated by reference in their entireties.
[0210] In the illustrated implementation, the pressure sensor seal 810 is configured to cover the pressure sensor 840 and protect it from liquids and / or aerosols from the installed cartridge. As such, the pressure sensor seal 810 of the illustrated implementation, as well as other sealing members including, for example, the upper frame seal 808 (and / or cartridge intake seal 850), the motor housing 820, the pin seal 822 (and / or the end cap seal 843), can be made from silicone rubber, boron nitride (BN) rubber, natural rubber, thermoplastic polyurethane, or another elastomeric material. In some implementations, the upper portion of the end cap pin is configured to engage with the lower frame. For example, in some implementations, the upper portion of the end cap pin is configured to form an interference or press-fit engagement with a corresponding slotted opening in the lower frame. In various implementations, the interface between the end cap and the housing (e.g., via the interface between the end cap seal and the inner surface of the outer housing wall and / or the end cap pin and the upper portion of the lower frame) can form a press-fit engagement with the housing that is releasably configured so that the end cap (or end cap assembly) can be removable. In some implementations, the control device can include one or more components configured to meet battery gassing requirements under UL 8139. For example, the control device can include an end cap configured to vent in the event of a sudden pressurization within the control device enclosure. In one implementation, the end cap can include a retaining pin extending substantially perpendicularly from a wall of the end cap. The retaining pin can be configured to mate with a receiving feature (e.g., a hole) in the frame of the control device to establish a friction fit or press fit that can be released if the internal pressure within the control device housing exceeds a specified internal pressure.
[0211] Although other configurations are possible, the distal end section 819 of the circuit board 834 includes an external connection element 838. In various implementations, the external connection element 838 may be configured to connect to an external connector and / or a docking station or other power or data source. For example, in some implementations, the external connector may include first and second connector ends that can be interconnected by a union, which may be, for example, a cord of variable length. In some implementations, the first connector end may be configured for electrical and, optionally, mechanical connection with a device, and the second connector end may be configured for connection to a computer or similar electronic device or for connection to a power source. An adapter including a USB connector on one end and a power unit connector on the opposite end is disclosed in U.S. Patent Application Publication No. 2014 / 0261495 to Novak et al., which is incorporated herein by reference in its entirety. In the illustrated implementation, a pin seal 822 is configured to seal the interface between the external connection element 838 and the end cap 824. In the illustrated implementation, one or more pins of the external connection element 838 can extend through the end cap 824 of the control device, as described above. In the illustrated implementation, the end cap 824 also includes a pair of end cap pins 841A, 841B that can be secured to the end cap 824. For example, in some implementations, the end cap pins 841A, 841B can be insert molded into the end cap 824. In some implementations, the bottom surfaces of the end cap pins 841A, 841B (which can be flat in some implementations) can be configured to provide an attractive force to a magnet included in the external charger assembly. As such, the end cap pins 841A, 841B can be made from any material configured to be attracted by a magnet, such as various ferromagnetic materials, including, but not limited to, steel, iron, nickel, cobalt, other alloys, and / or any combination thereof. In the illustrated implementation, both ends of the end cap pins 841A, 841B have multiple diameters.For example, each of pins 841A, 841B defines at least three sections: a first section proximate end cap 824, a second section above the first section, and an end section above end cap 824 distal from end cap 824. In the illustrated implementation, the end sections of pins 841A, 841B have tapered diameters, with the first section having an outer diameter that is larger than the outer diameter of the second section.
[0212] The upper frame 806 of the illustrated implementation includes a pair of magnets 846A, 846B exposed within the cartridge-receiving chamber 830. In various implementations, the magnets 846A, 846B can comprise any type of magnet, including rare earth magnets. For example, in some implementations, one or more of the magnets can include neodymium magnets (also known as NdFeB, NIB, or Neo magnets). In various implementations, different grades of neodymium magnets can be used, including, for example, N35, N38, N40, N42, N45, N48, N50, and / or N52 grades. In other implementations, one or more of the magnets can include samarium-cobalt magnets (also known as SmCo magnets). In yet other implementations, one or more of the magnets can include ceramic / ferrite magnets. In other implementations, one or more of the magnets can include aluminum-nickel-cobalt (AlNiCo) magnets. In any of the foregoing implementations, one or more of the magnets can be plated and / or coated. For example, in some implementations, one or more of the magnets may be coated with nickel. In other implementations, one or more of the magnets may be coated with one or more of zinc, tin, copper, epoxy, silver, and / or gold. In some implementations, one or more of the magnets may be coated with a combination of these materials. For example, in one implementation, one or more of the magnets may again be coated with nickel, copper, and nickel. In another implementation, one or more of the magnets may be coated with an overcoat of nickel, copper, nickel, and gold.
[0213] FIG. 30 shows a perspective, partial cross-sectional view of the control device of the aerosol delivery device. In particular, FIG. 30 shows a partial cross-sectional view of the housing 802, upper frame 806, upper frame seal 808, pressure sensor seal 810, pressure sensor 840, cartridge intake seal 850, and lower frame 812 of the control device 800. In the illustrated implementation, the cartridge intake seal 850 forms an outwardly extending radial contour (e.g., a suction cup-like contour) that extends above (e.g., toward / into) the concave surface 844 of the receiving chamber 830. In the illustrated implementation, the cartridge intake seal 850 is part of the same overmold (and therefore can be made from the same material) that includes the upper frame seal 808. However, in other implementations, these seals may form separate components, which may or may not be the result of an overmold process. As shown, portions of the conductive pins 836A, 836B of the control component 814 extend through a portion of the upper frame 806 and the cartridge intake seal 850. In particular, portions of the conductive pins 836A, 836B of the illustrated implementation, which include spring-loaded contacts as described above, extend through the recessed surface 844 and a portion of the cartridge intake seal 850 of the upper frame 806 into the cartridge receiving chamber 830.
[0214] As also shown, the upper frame 806 includes a pair of magnets 846A, 846B that are also exposed within the cartridge-receiving chamber 830. In various implementations, the magnets 846A, 846B can comprise any type of magnet, including rare earth magnets. For example, in some implementations, one or more of the magnets can include neodymium magnets (also known as NdFeB, NIB, or Neo magnets). In various implementations, different grades of neodymium magnets can be used, including, for example, N35, N38, N40, N42, N45, N48, N50, and / or N52 grades. In other implementations, one or more of the magnets can include samarium-cobalt magnets (also known as SmCo magnets). In yet other implementations, one or more of the magnets can include ceramic / ferrite magnets. In other implementations, one or more of the magnets can include aluminum-nickel-cobalt (AlNiCo) magnets. In any of the foregoing implementations, one or more of the magnets can be plated and / or coated. For example, in some implementations, one or more of the magnets may be coated with nickel. In other implementations, one or more of the magnets may be coated with one or more of zinc, tin, copper, epoxy, silver, and / or gold. In some implementations, one or more of the magnets may be coated with a combination of these materials. For example, in one implementation, one or more of the magnets may again be coated with nickel, copper, and nickel. In another implementation, one or more of the magnets may be coated with an overcoat of nickel, copper, nickel, and gold.
[0215] In the illustrated implementation, each magnet 846A, 846B is substantially surrounded by a respective positioning feature 848A, 848B of the upper frame 806, which also extends into the cartridge-receiving chamber 830. As described in more detail below, one or more of the positioning features 848A, 848B of the upper frame 806 are configured as stops or vertical positioning features for an installed cartridge and are therefore configured to position the cartridge relative to the recessed surface 844 of the upper frame 806 of the control device 800. In the illustrated implementation, the recessed surface 844 of the upper frame 806 also defines an intake opening 852 that extends through the upper frame 806 proximate to the pressure sensor seal 810. In the illustrated implementation, the intake opening 852 is configured to receive air drawn into the aerosol delivery device by a user (see FIG. 35 ).
[0216] As described above, a portion of the cartridge is configured to be coupled with the cartridge receiving chamber 830 of the inner frame 806 of the controller 800 so that a mechanical and electrical connection is formed between the cartridge and the controller 800. In particular, when the cartridge is coupled to the upper frame 806 of the controller 800, a magnetic connection is formed between the magnets 846A, 846B disposed on the upper frame 806 and corresponding features of the cartridge, and an electrical connection is formed between the pair of conductive pins 836A, 836B of the controller 800 and corresponding features of the cartridge. Thus, when the cartridge is received in the receiving chamber 830 of the controller 800, the cartridge can be operably connected to the control component 814 and the battery 816 of the controller 800. Furthermore, the outwardly sloping profile of the cartridge intake seal 850 flexes downward, thus forming a substantially airtight seal with the bottom of the cartridge, particularly around the cartridge's air inlet channel. Thus, when the cartridge is coupled with the controller, the cartridge is mechanically biased into connection with the controller so that an electrical connection between the cartridge and the controller is maintained and a seal is formed between the cartridge and the controller. For purposes of this disclosure, it should be understood that the term "operably connected" and other related forms should be interpreted broadly to encompass components directly connected and / or connected via one or more additional components.
[0217] FIG. 31 shows a perspective view of an end cap assembly according to an exemplary implementation of the present disclosure. In particular, FIG. 31 shows a perspective view of an end cap 824, a light diffuser 826, and end cap pins 841A, 841B. As shown, the end cap 824 also includes an end cap seal 843 that provides a sealing interface between the end cap 824 and the housing 802, particularly between the inner surface of the outer wall 804. The illustrated implementation also includes a pin seal 822 configured to seal the interface between the external connection element and the end cap. In the illustrated implementation, the pin seal 822 and the end cap seal 843 comprise a single overmolded part. However, in other implementations, these parts may be separate. In various implementations, the end cap seal 843 and / or the pin seal 822 can be made of silicone rubber, boron nitride (BN) rubber, natural rubber, thermoplastic polyurethane, or another resilient material. 29 , in various implementations, the tops of the end cap pins 841A, 841B can be configured to engage with the lower frame 812. For example, in the illustrated implementation, the tops of the end cap pins 841A, 841B are configured to form a sliding or interference or press-fit engagement with corresponding slotted openings in the lower frame 812. In various implementations, the interface between the end cap 824 and the housing 802 (e.g., via the interface between the end cap seal 843 and the inner surface of the outer housing wall 804 and / or the end cap pins 841A, 841B and the top of the lower frame 812) can form a press-fit engagement with the housing 802 that is releasably configured such that the end cap 824 (or end cap assembly) may be removable.
[0218] In various implementations, the control device can include one or more components configured to meet battery gassing requirements under UL 8139. For example, the control device can include an end cap configured to vent in the event of a sudden pressurization within the control device enclosure. In one implementation, the end cap can include a retaining pin extending substantially perpendicularly from a wall of the end cap. The retaining pin can be configured to mate with a receiving feature (e.g., a hole) in the frame of the control device to establish a friction fit or press fit that can be released if the internal pressure within the control device housing exceeds a specified internal pressure.
[0219] 32, 33, and 34 illustrate a cartridge according to another exemplary implementation of the present disclosure. In particular, FIG. 32 illustrates an exploded perspective view of cartridge 900, FIG. 33 illustrates a front cross-sectional view of cartridge 900, and FIG. 34 illustrates a side cross-sectional view of cartridge 900. Although other configurations are possible, the cartridge 900 of the illustrated implementation generally includes a mouthpiece 902, a mouthpiece insert 904, an upper aerosol channel insert 906, an upper cartridge seal 908, a reservoir 910 defining a reservoir wall 911, a lower cartridge seal 912, a base member 914, a liquid transport element (e.g., a wick) 916, a heating member 918, a pair of heater connectors 920A, 920B, a pair of metal inserts 924A, 924B, and a bottom cap 926.
[0220] As shown, the mouthpiece 902 of the illustrated implementation defines a proximal end and a distal end, the proximal end of the mouthpiece 902 defining an exit portal 915 therein. In the illustrated implementation, the mouthpiece insert 904 is configured to be positioned adjacent the proximal end of the mouthpiece so as to extend through the exit portal 915 of the mouthpiece 902. In the illustrated implementation, the mouthpiece 902 can be made from a moldable plastic material such as polypropylene, although other materials are possible, including, but not limited to, Tritan™ copolyester, acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high impact polystyrene, and combinations thereof. In the illustrated implementation, the mouthpiece insert 904 can be made from a molded polymer material such as Tritan™ copolyester, although other materials are possible, including, but not limited to, polypropylene, acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high-impact polystyrene, and combinations thereof. In the illustrated implementation, the upper cartridge seal 908 is overmolded onto / with the mouthpiece insert 904, although in other implementations, these components may represent separate parts. In the illustrated implementation, the upper cartridge seal 908 is configured to form a substantially airtight and liquid-tight seal between the reservoir 910 and the mouthpiece 902. Thus, the upper cartridge seal 908 can be made from a thermoplastic elastomer. In other implementations, the upper cartridge seal may be made from other materials, including, but not limited to, silicone rubber, boron nitride (BN) rubber, natural rubber, thermoplastic polyurethane, or another elastomeric material. In the illustrated implementation, the mouthpiece insert 904 is configured to receive and seal with the upper aerosol channel insert 906 .
[0221] In the illustrated implementation, the mouthpiece insert 904 and upper cartridge seal 908 assembly includes a flange mechanism such that the mouthpiece insert 904 and upper cartridge seal 908 can be installed from the inside of the mouthpiece 902 and configured for a press-fit or snap-fit connection with the exit portal 915 and / or another portion of the mouthpiece 902. In other implementations, other attachment methods are possible (e.g., via adhesive, heat staking / welding, ultrasonic welding, etc.). In the illustrated implementation, the mouthpiece 902 is configured to be secured to the reservoir 910 via a snap mechanism. For example, the mouthpiece 902 in the illustrated implementation includes a ridge feature extending around at least a portion of its inner surface, and the reservoir 910 includes a corresponding groove feature extending around at least a portion of its outer surface. In other implementations, these features may be reversed (e.g., the mouthpiece can include a groove and the reservoir can include a ridge feature). In still other implementations, other attachment methods are possible (e.g., via adhesive, heat staking / welding, ultrasonic welding, etc.).
[0222] In some implementations, the mouthpiece insert may exhibit a color associated with a distinctive characteristic of the cartridge. For example, in some implementations, the cartridge of the present disclosure may contain a liquid composition including a distinctive characteristic, such as a particular flavor (described below) or a particular strength of nicotine, although any characteristic of the cartridge may be considered a distinctive characteristic. For purposes of the current description, the term "color" should be interpreted broadly to cover, for example, any color or any shade of the same color. It should also be noted that in some implementations, a particular color may be generally associated with a particular distinctive characteristic (e.g., green may be associated with mint flavor, and red may be associated with apple flavor). However, in other implementations, a particular color may be associated with a particular distinctive characteristic according to an index or guide that may be provided or made available to the user. Examples of distinctive characteristics are described in U.S. Patent Application No. 16 / 171,920, entitled "Aerosol Delivery Device with Flavor Indicator," which is incorporated herein by reference in its entirety.
[0223] The reservoir 910 in the illustrated implementation defines a proximal end and a distal end, the mouthpiece 902 is configured to engage the proximal end of the reservoir 910, and the bottom cap 926 is configured to engage the distal end of the reservoir 910. In the illustrated implementation, the reservoir 910 also defines a reservoir cavity 928 including a closed proximal end and an open distal end. Thus, the reservoir cavity 928 of the reservoir 910 is configured to contain a liquid composition (e.g., an e-liquid or an aerosol precursor composition) therein. The closed proximal end of the reservoir cavity 928 allows the cavity to form a reliable seal with the top surface of the liquid composition column. This can prevent air from seeping / entering the reservoir cavity from the top when the cartridge is held upright. This can also prevent air from entering the top of the liquid composition column, which can create a vacuum and reduce the likelihood of the liquid composition leaking out the bottom of the reservoir through a liquid transport element or other passageway.
[0224] Although other configurations are possible, in the illustrated implementation, a pair of internal aerosol flow conduits 933A, 933B are defined on either side of the reservoir cavity 928 of the tank 910. In the case of an injection-molded tank 910, the internal aerosol flow conduits are configured to be molded therein. As described in more detail below, aerosol generated in the vaporization chamber of the cartridge 900 is configured to travel through the aerosol flow conduits for delivery to a user.
[0225] In the illustrated implementation, the tank wall 911 is configured to be transparent or translucent so that the liquid composition contained therein is visible from the outside. Thus, in the illustrated implementation, the entire tank wall 911 is configured to be transparent or translucent. Alternatively, in some implementations, only a portion of the tank wall or only one side of the tank wall may be transparent or translucent, while the remaining portion of the tank wall may be substantially opaque. In other implementations, the tank wall may be substantially opaque, with a strip extending from the proximal end of the tank to the distal end of the tank being transparent or translucent. In further implementations, the tank wall may be colored. In some implementations, the color can be configured so that the liquid composition within the tank is still visible, such as by using a transparent or translucent outer tank wall. In other implementations, the tank wall can be configured so that the outer tank wall has a substantially opaque color. In the illustrated implementation, the tank 910 is made from Tritan™ copolyester, but in other implementations, the tank may be made from other materials, including, but not limited to, acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high impact polystyrene, polypropylene, and combinations thereof. Still other materials are possible, including, for example, glass.
[0226] In those implementations that include a viewing window in the control device, at least a portion of the reservoir and / or at least a portion of the bottom cap can be visible when the cartridge is engaged with the control device. As described above, in some implementations, at least a portion of the reservoir wall 911 can be configured to be at least partially transparent or translucent so that the liquid composition contained therein is visible from the outside. Thus, in some implementations, the relative amount of any liquid composition present in the reservoir can be visible through the viewing window when the cartridge is engaged with the control device. In some implementations, the viewing window can be located near the proximal end of the control device and configured as an elongated oval cutout in the outer wall of the housing and the top frame of the control device. In still other implementations, the viewing window can have any other shape and / or location, as described above with respect to the other illustrated implementations, and it should be understood that some implementations need not include a viewing window, as described above.
[0227] In the illustrated implementation, the tank 910, and in particular the reservoir cavity 928, contains a liquid composition that may include an aerosol precursor composition and / or a flavoring. See the above description of these materials and variations thereof. As shown, the cartridge 900 of the illustrated implementation also includes a base member 914 configured to engage and cover the open distal end of the reservoir cavity 928 of the tank 910. In the illustrated implementation, the lower cartridge seal 912 is overmolded onto / with the mouthpiece insert 904, although in other implementations, these components may represent separate parts. The lower cartridge seal 912 of the illustrated implementation is configured to form a substantially airtight and liquid-tight seal between the bottom of the tank 910 and the bottom cap 926. In the illustrated implementation, the lower cartridge seal 912 is made from silicone rubber. In other implementations, the lower seal may be made from other materials, including, but not limited to, boron nitride (BN) rubber, natural rubber, thermoplastic polyurethane, or another elastomeric material. In the illustrated implementation, the base member 914 is made from Tritan™ copolyester. In other implementations, the base member can be made from another material, including, but not limited to, acrylonitrile butadiene styrene (ABS), polyethylene, polycarbonate, polyamide (nylon), high-impact polystyrene, polypropylene, and combinations thereof. The base member 914 of the illustrated implementation can also include a plurality of slots configured to provide a liquid flow path for the liquid composition contained in the reservoir cavity 928 of the tank 910 to facilitate transfer of the liquid to the liquid transport element 716. In some implementations, the slots can also provide some liquid retention even when the bulk liquid composition in the reservoir cavity 928 is not in contact with the base member 914 (e.g., when the aerosol delivery device is turned upside down).
[0228] As shown, the liquid transport element 916 is disposed within the base member 914 and extends between the liquid composition in the reservoir cavity 928 and the heating member 918. In the illustrated implementation, the liquid transport element 916 is made from 100% cotton and has a curved shape when installed in the cartridge 900. However, in other implementations, the liquid transport element may have other shapes and may be formed from various materials configured to transport liquids by capillary action or the like. For example, in some implementations, the liquid transport element can be formed from fibrous materials (e.g., organic cotton, cellulose acetate, regenerated cellulose fabric, glass fiber), porous ceramic, porous carbon, graphite, porous glass, sintered glass beads, sintered ceramic beads, capillaries, etc. In other implementations, the liquid transport element may be any material that includes an open pore network (i.e., multiple pores interconnected so that fluid can flow from one pore to another in multiple directions through the element). As described further herein, some implementations of the present disclosure may specifically relate to the use of non-fibrous transport elements. Thus, fibrous transport elements can be explicitly excluded. Alternatively, a combination of fibrous and non-fibrous transport elements may be utilized. Representative types of substrates, reservoirs, or other components for supporting aerosol precursors are described in U.S. Patent No. 8,528,569 to Newton; U.S. Patent Application Publication Nos. 2014 / 0261487 to Chapman et al. and 2014 / 0059780 to Davis et al.; and U.S. Patent Application Publication No. 2015 / 0216232 to Bless et al., which are incorporated herein by reference in their entireties. Additionally, various wicking materials, and the configuration and operation of these wicking materials within specific types of electronic cigarettes, are described in U.S. Patent No. 8,910,640 to Sears et al., which is incorporated herein by reference in its entirety. In some implementations, the liquid transport element may be partially or completely formed from a porous monolith, such as a porous ceramic or porous glass.Exemplary ceramic materials suitable for use in accordance with embodiments of the present disclosure are described, for example, in U.S. Patent Application No. 14 / 988,109, filed January 5, 2016, and U.S. Patent Application Publication No. 2014 / 0123989 to LaMothe, the disclosures of which are incorporated herein by reference in their entireties.
[0229] As shown, the heating member 918 of the illustrated implementation is also configured to be disposed within the base member 914. Notably, the heating member 918 of the illustrated implementation comprises a heating element having a substantially flat profile. In some implementations, the heating member can maintain a substantially flat profile when attached to the cartridge, but when the heating member 918 of the illustrated implementation is attached to the cartridge 900, it has a curved or arcuate shape that corresponds to the curved shape of the liquid transport element 916. Although other implementations may vary, in the illustrated implementation, the heating member 918 includes a first end, a second end, and a heater loop connecting the first and second ends. Notably, the heater loop of the illustrated implementation includes a serpentine pattern of heater traces connected to their respective ends and extending substantially transverse to the longitudinal axis of the heating element to connect the first end to the second end. While in some implementations the heater traces may be solid, the heater traces of the illustrated implementation comprise a plurality of segmented traces. In the illustrated implementation, the edges of the heating element are substantially solid and the plurality of split traces are disposed in a central region of the heating element. In that way, the heater loop of the illustrated implementation may be configured to concentrate heat in the region of the heating element configured to contact the liquid transport element 916.
[0230] In the illustrated implementation, the heating element 918 in the installed position contacts the bottom surface of the liquid transport element 916. In the illustrated implementation, the curved form of the flat heating element 918 can provide a large ratio of cross-sectional flow area to flow path length through the liquid transport element 916. This can provide improved performance for delivering liquid compositions to the liquid transport element 916. When installed, the edges of the heating element 918 are configured to engage with the base member 914 so that the heating element 918 maintains its curved shape. In that way, the curvature of the heating element 918 can also provide a compressive force against the liquid transport element 916. Furthermore, the spring restoring force of the heating element 918 allows the edges of the heating element 918 to be positioned or locked within the base member 914, which can reduce or eliminate the need for additional features configured to hold the heating element 918 within the base member 914 from the other side. The installed curvature of the heating member 918 also biases the deflection of the heating member 918 toward the liquid transport element 916 that may occur with thermal expansion, thus helping to maintain thermal contact between the heating member 918 and the liquid transport element 916. In the illustrated implementation, the liquid transport element 916 and the heating member 918 comprise a heating assembly 934 that, together with the base member 914 and the nozzle member 955, defines a vaporization chamber 932. In the illustrated implementation, the nozzle member 955 includes a central opening and is positioned below the heating member 918 in proximity to the base member 926. In the illustrated implementation, the nozzle member 955 is made of silicone rubber, although other materials are possible, including, but not limited to, boron nitride (BN) rubber, natural rubber, thermoplastic polyurethane, or another elastic material. In the illustrated implementation, the nozzle member 955 is also configured to function as a heat shield to protect the base member 926 from radiant heat from the heating member 918. It may also form an indirect air inlet flow path, blocking a direct line of sight to the heating member 918 from outside the cartridge 900, and / or help prevent aerosol particles from exiting through the air inlet channel 930. In other implementations, the nozzle member may be made from other materials, including, but not limited to, moldable plastic materials.
[0231] It should be noted that some implementations need not include a heating assembly, but rather may include an atomization assembly configured to generate the aerosol in another manner. Some examples of atomization assemblies that generate the aerosol in another manner can be found, for example, in U.S. Patent Application No. 16 / 544,326, filed August 19, 2019, entitled "Detachable Atomization Assembly for Aerosol Delivery Device," which is incorporated herein by reference in its entirety.
[0232] In the illustrated implementation, the heating element 918 is made from 316L stainless steel, although other materials may be used, including, but not limited to, 316, 304, or 304L stainless steel. In other implementations, the heating element may be made from different materials, such as, for example, Kanthal (FeCrAl), nichrome, molybdenum disilicide (MoSi), molybdenum silicide (MoSi), aluminum-doped molybdenum disilicide (Mo(Si,Al)), titanium, platinum, silver, palladium, alloys of silver and palladium, graphite, and graphite-based materials (e.g., carbon-based foams and threads). In further implementations, the heating element may be formed from conductive ink, boron-doped silica, and / or ceramic (e.g., positive or negative temperature coefficient ceramic). Other types of heaters, such as laser diodes or microheaters, may also be utilized. The laser diode can be configured to deliver electromagnetic radiation of a specific wavelength or wavelength band, which can be tuned for vaporizing the aerosol precursor composition and / or for heating a liquid transport element to which the aerosol precursor composition can be provided for vaporization. The laser diode can be specifically positioned to deliver electromagnetic radiation into a chamber, and the chamber can be configured to be a radiation trap (e.g., a black body or a white body). Suitable microheaters are described in U.S. Pat. No. 8,881,737 to Collett et al., incorporated herein by reference in its entirety. The microheater can include, for example, a substrate (e.g., quartz, silica) having a heater trace thereon (e.g., a resistive element such as Ag, Pd, Ti, Pt, Pt / Ti, boron-doped silicon, or other metal or metal alloy), which can be printed or otherwise applied to the substrate. A passivation layer (e.g., aluminum oxide or silica) can be provided on the heater trace. Other heaters are described in US Patent Application Publication No. 2016 / 0345633 to DePiano et al., which is incorporated herein by reference in its entirety.
[0233] Although other implementations may provide additional and / or different contact mechanisms, the heating element 918 in the illustrated implementation includes a pair of contact holes configured to connect the heating element 918 to heater connectors 920A, 920B of the cartridge 900. In the illustrated implementation, the heater connectors 920A, 920B are made of brass with gold over nickel plating. In other implementations, the heater connectors may be made of another conductive material, which may or may not be plated. Examples of other possible conductive materials include, but are not limited to, copper, aluminum, platinum, gold, silver, iron, steel, bronze, graphite, conductive ceramic materials, and / or any combination thereof. In the illustrated implementation, the heater connectors 920A, 920B are insert molded into the bottom cap 926. Although other configurations are possible, in the illustrated implementation, the bottom surfaces of the heater connectors 920A, 920B are recessed relative to the bottom surface of the bottom cap 926.
[0234] The bottom cap 926 in the illustrated implementation is configured to be secured to the distal end of the tank 910 via an ultrasonic welding process. However, other attachment methods are possible (e.g., via adhesive, heat staking / welding, snap fit, etc.). In the illustrated implementation, the bottom cap 926 of the cartridge 900 includes a cartridge air inlet channel 930 located approximately in the center of the bottom surface of the bottom cap 926. Although other configurations are possible, in the illustrated implementation, the cartridge air inlet channel 930 has an oval shape and includes a crossbar feature that extends across the inlet between the opening of the air inlet channel 930 and the vaporization chamber 932.
[0235] Although other configurations are possible, the cartridge 900 in the illustrated implementation also includes a pair of metal inserts 924A, 924B configured to be disposed within and exposed through a bottom surface of a bottom cap 926. In the illustrated implementation, the metal inserts 924A, 924B are insert molded into the bottom cap 926. In some implementations, the metal inserts may be configured for a press-fit or snap-fit connection with the bottom cap. In the illustrated implementation, the metal inserts 924A, 924B are made from stainless steel plated with nickel. However, in other implementations, the metal inserts may be made from any material configured to be attracted by a magnet, such as various ferromagnetic materials, including, but not limited to, alloys such as iron, nickel, cobalt, steel, and / or any combination thereof.
[0236] The airflow into the control device of an exemplary implementation of the present disclosure is shown in FIG. 35. In particular, FIG. 35 shows a side cross-sectional view of the control device 800. As described above, when air is drawn into the control device 800 through a gap between the installed cartridge and the control device 800 (e.g., between the cartridge and the top of the outer wall 804 of the housing 802 and / or between the cartridge and the upper frame 806), the air is drawn downward toward the bottom of the receiving chamber 830, where it enters the intake opening 852. Note that in various implementations, variations in the size and / or shape of the intake opening and / or the gap between the cartridge and the control device can affect the resistance to draw. Accordingly, one or more of the associated components may be designed to generate the desired resistance. In the illustrated implementation, air entering the intake opening 852 flows over the pressure sensor seal 810 (and pressure sensor 840), where it is directed through the upper frame 806 and its cartridge intake seal 850 into the cartridge.
[0237] The flow of air and aerosol through the cartridge of one exemplary implementation is shown in Figures 36, 37, and 38. In particular, Figure 36 shows a perspective side cross-sectional view of cartridge 900 illustrating the flow of air and aerosol, and Figure 37 shows a perspective front cross-sectional view of cartridge 900. Figure 38 shows a perspective bottom view of cartridge 900. When air is drawn into the cartridge 900 of the illustrated implementation through inlet channel 930 (and around its crossbar feature), a pressure sensor can detect the suction by sensing a pressure drop within cartridge 900. When suction is detected by the pressure sensor, a control component applies current to heating element 918 to heat it. As heating element 918 heats, at least a portion of the liquid composition contained in liquid transport element 916 is vaporized within vaporization chamber 932. Thus, the aerosol generated within vaporization chamber 932 can then be directed toward a user. In particular, as air enters cartridge 900 via air inlet channel 930, it travels through vaporization chamber 932, where it impacts heating element 918 substantially perpendicularly and mixes with the vaporized liquid composition to form an aerosol. Due to the geometry of vaporization chamber 932, bottom cap 926, and / or base element 914, the aerosol splits into two distinct paths that extend inside bottom cap 926, around heater connectors 920A, 920B, and then through aerosol flow conduits 933A, 933B defined on either side of reservoir cavity 928 of tank 910. As shown, the two aerosol paths converge at the proximal end of tank 910 and below upper aerosol channel insert 906. The recombined aerosol then flows through upper aerosol channel insert 906 and out exit portal 915 of mouthpiece 900 to the user.
[0238] In some implementations, the cartridge and controller may generally be provided together as a complete aerosol delivery device, although these components may also be provided separately. For example, the present disclosure also encompasses disposable units for use with reusable units. In certain implementations, such a disposable unit (which may be a cartridge as shown in the accompanying figures) may be configured to mate with a reusable unit (which may be a controller as shown in the accompanying figures). In yet other configurations, the cartridge may comprise the reusable unit and the controller may comprise the disposable unit.
[0239] Although some figures described herein show the cartridge and controller in an operative relationship, it is understood that the cartridge and controller may exist as separate components, and therefore any discussion provided elsewhere herein regarding combined components should also be understood as applying to the controller and cartridge as separate and distinct components.
[0240] In another aspect, the present disclosure may be directed to a kit providing various components as described herein. For example, the kit may include a control device having one or more cartridges. The kit may further include a control device having one or more charging components. The kit may further include a control device having one or more batteries. The kit may further include a control device having one or more cartridges and one or more charging components and / or one or more batteries. In further implementations, the kit may include multiple cartridges. The kit may further include multiple cartridges and one or more batteries and / or one or more charging components. In the above implementations, the cartridge or control device may be provided with a heating element therein. The kit of the present invention may further include a case (or other packaging, carrying, or storage component) for housing one or more of the additional kit components. The case may be a reusable rigid or flexible container. Furthermore, the case may simply be a box or other packaging structure.
[0241] Many modifications and other embodiments of the present disclosure will come to mind to one skilled in the art to which this disclosure pertains having the benefit of the teachings presented in the foregoing descriptions and the associated drawings. It is to be understood, therefore, that the present disclosure is not limited to the specific embodiments disclosed herein, and that modifications and other embodiments are intended to be included within the scope of the appended claims. Although specific terms are employed herein, they are used in a generic and descriptive sense only and not for purposes of limitation.
Claims
1. 1. An aerosol delivery device, comprising: a control device including an outer housing defining an outer wall and having a proximal end and a distal end, the proximal end of the control device defining a receiving chamber and further including a power source and control components; a cartridge including a mouthpiece, a reservoir, a heating assembly, and a bottom cap, wherein the mouthpiece has a proximal end and a distal end, the proximal end of the mouthpiece having an exit portal defined therethrough, the reservoir defining a proximal end and a distal end and configured to contain a liquid composition, the mouthpiece configured to engage the proximal end of the reservoir, and the bottom cap configured to engage the distal end of the reservoir; Equipped with An aerosol delivery device, wherein the cartridge is configured to be removably coupled to a receiving chamber of the control device, the heating assembly defines a vaporization chamber and is configured to heat the liquid composition to generate an aerosol, the inlet airflow is defined by a gap between the cartridge and the control device, and the aerosol path is defined through the reservoir and an outlet portal of the mouthpiece, the gap beginning at an interface between the outer circumferential surface of the mouthpiece and the control device.
2. 10. The aerosol delivery device of claim 1, wherein the interface is disposed adjacent to the outer peripheral surface of the mouthpiece and the upper edge of the outer wall of the housing.
3. 10. The aerosol delivery device of claim 1, wherein the inlet airflow enters the cartridge through a single inlet channel located approximately in the center of the bottom surface of the bottom cap.
4. 10. The aerosol delivery device of claim 1, wherein the gap between the cartridge and the control device is established by a plurality of protrusions disposed on the control device.
5. 5. The aerosol delivery device of claim 4, wherein the plurality of protrusions comprises a plurality of raised elongated bosses disposed on an upper frame of the control device.
6. 10. The aerosol delivery device of claim 1, wherein a gap between the cartridge and the control device is established between the outer housing and upper frame of the control device and the mouthpiece, reservoir, and bottom cap of the cartridge.
7. 7. The aerosol delivery device of claim 6, wherein a gap between the cartridge and the control device is further established between a concave surface of the upper frame of the control device and a bottom surface of the bottom cap of the cartridge.
8. 10. The aerosol delivery device of claim 1, wherein the tank further defines a reservoir cavity configured to hold the liquid composition.
9. 9. The aerosol delivery device of claim 8, wherein the aerosol path is defined by a pair of flow tubes disposed within the tank, at least a portion of the flow tubes being disposed on opposite sides of the reservoir cavity.
10. 10. The aerosol delivery device of claim 1, wherein the control device includes a pressure sensor, and the cartridge and the control device include a pressure path configured to transmit negative pressure to the pressure sensor.
11. 3. The aerosol delivery device of claim 2, wherein the upper edge of the outer wall of the housing defines an opening that is larger than the outer periphery of the mouthpiece so that the maximum periphery of the cartridge is completely received within the receiving chamber.
12. 3. The aerosol delivery device of claim 2, wherein when coupled to the control device, a portion of the mouthpiece extends into the receiving chamber below an upper edge of the outer wall of the housing.
13. 1. A cartridge for use with an aerosol delivery device, the cartridge comprising: a mouthpiece having a proximal end and a distal end, the proximal end having an exit portal defined therethrough; a tank having a proximal end and a distal end and configured to contain a liquid composition therein; a heating assembly defining a vaporization chamber configured to heat a liquid composition to generate an aerosol; a reservoir cavity configured to hold a liquid composition; a bottom cap; Equipped with A cartridge, wherein a mouthpiece is configured to engage the proximal end of the reservoir, a bottom cap is configured to engage the distal end of the reservoir, an inlet airflow enters the cartridge through a single inlet channel located approximately in the center of a bottom surface of the bottom cap, an aerosol path is defined through the reservoir and an outlet portal in the mouthpiece, and the aerosol path is defined by a pair of flow tubes located in the reservoir, at least a portion of the flow tubes being located on either side of the reservoir cavity.
14. 14. The aerosol delivery device of claim 1 or the cartridge of claim 13, wherein the inlet channel disposed in the bottom cap has a nozzle-like shape.
15. 14. The aerosol delivery device of claim 1 or the cartridge of claim 13, wherein the heating assembly comprises a flat heating element and a liquid transport element, the flat heating element and the liquid transport element being positioned in a curved orientation.
16. The aerosol delivery device of claim 1 or the cartridge of claim 13, wherein the cartridge further defines a vaporization chamber defined by a bottom cap and a heating assembly.
17. 17. The aerosol delivery device of claim 16 or the cartridge of claim 16, wherein the aerosol path begins in the vaporization chamber.
18. 17. The aerosol delivery device of claim 16 or the cartridge of claim 16, wherein inlet air entering the vaporization chamber impinges on the heating element substantially vertically and expands substantially horizontally.
19. The aerosol delivery device of claim 8 or the cartridge of claim 13, wherein the reservoir cavity defines a closed proximal end and an open distal end.
20. 20. The aerosol delivery device of claim 19 or the cartridge of claim 19, wherein the open distal end of the reservoir cavity is at least partially sealed by a separate base member.
21. 21. The aerosol delivery device of claim 20 or the cartridge of claim 20, wherein the base member includes a plurality of slots configured to provide liquid flow paths.
22. 14. The aerosol delivery device of claim 1 or the cartridge of claim 13, wherein the aerosol pathway is further defined via an upper aerosol channel insert disposed between the reservoir and the outlet portal of the mouthpiece.
23. 14. The aerosol delivery device of claim 1 or the cartridge of claim 13, wherein the bottom cap includes a pair of inserts comprising a ferromagnetic metallic material.
24. 24. The aerosol delivery device of claim 23, wherein the upper frame of the control device includes a pair of magnets configured to substantially align with a pair of metal inserts in the cartridge.
25. The aerosol delivery device of claim 1 or the cartridge of claim 13, wherein the pressure path is defined at least in part by an offset pressure channel defined in a bottom cap of the cartridge.
26. 26. The aerosol delivery device of claim 25, wherein the pressure path is defined at least in part by a corresponding channel in an upper frame seal of the control device.
27. 27. The aerosol delivery device of claim 26, wherein the upper frame seal includes a pair of channels configured to establish a pressure path in either of two rotational directions of the cartridge.
28. 1. An aerosol delivery device, comprising: a control device including an outer housing defining an outer wall and having a proximal end and a distal end, the proximal end of the control device defining a receiving chamber and further including a power source and control components; a cartridge including a mouthpiece, a reservoir, and a heating assembly, the reservoir configured to contain a liquid composition; 1. An aerosol delivery device comprising: An aerosol delivery device, wherein the cartridge is configured to be removably coupled to a receiving chamber of a control device, and the heating assembly is configured to heat a liquid composition to generate an aerosol, the heating assembly comprising a substantially planar heating element and a liquid transport element, and the heating element is positioned in an arcuate orientation.
29. 1. A cartridge for use with an aerosol delivery device, the cartridge comprising: A mouthpiece and a tank configured to contain a liquid composition; a heating assembly; Equipped with A cartridge in which a heating assembly is configured to heat a liquid composition to generate an aerosol, the heating assembly comprising a substantially planar heating element and a liquid transport element, the heating element being positioned in a curved orientation.
30. 30. The aerosol delivery device of claim 28 or the cartridge of claim 29, wherein the heating element comprises a first end, a second end, and a heater loop connecting the first end and the second end.
31. 31. The aerosol delivery device of claim 30 or the cartridge of claim 30, wherein the heater loop comprises a serpentine pattern of connected heater traces that extend substantially transverse to the longitudinal axis of the heating element.
32. 32. The aerosol delivery device of claim 31 or the cartridge of claim 31, wherein the serpentine pattern of heater traces comprises a plurality of segmented traces disposed in a central region of the heating element.
33. 31. The aerosol delivery device of claim 30 or the cartridge of claim 30, wherein the heater loop is configured to concentrate heat in an area of the heating element that contacts the liquid transport element.
34. 30. The aerosol delivery device of claim 28 or the cartridge of claim 29, further comprising a base member on which the heating member and liquid transport element are disposed.
35. 35. The aerosol delivery device of claim 34 or the cartridge of claim 34, wherein at least one edge of the heating member is configured to engage with the base member to facilitate arcuate orientation of the heating member.
36. 30. The aerosol delivery device of claim 28 or the cartridge of claim 29, further comprising a pair of connectors configured to electrically connect the cartridge to a controller.
37. 37. The aerosol delivery device of claim 36 or the cartridge of claim 36, wherein the heating element comprises a pair of contact holes configured to connect the heating member to the connector.
38. 37. The aerosol delivery device of claim 36 or the cartridge of claim 36, wherein each of the contact holes includes one or more extensions that form an effective inner diameter that is smaller than the outer diameter of the mating connector.
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