Hot wire anemometer airflow measurement, smoke puff detection, and ambient temperature tracking
The dual PID controller system with a hot wire anemometer in nicotine e-vapor devices improves airflow measurement and ambient temperature detection, resulting in consistent nicotine vapor production.
Patent Information
- Application Number
- JP2022544422
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-01-22
- Filing Date
- 2021-01-22
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2041-01-22
AI Technical Summary
Existing nicotine e-vapor devices lack precise control over airflow measurement and ambient temperature detection, which affects the quality and consistency of nicotine vapor production.
Implementing a hot wire anemometer (HWA) with a dual PID controller system to regulate power to the heater based on temperature and ambient temperature changes, using pulse width modulation (PWM) to control airflow and temperature set points for accurate puff detection and airflow measurement.
Enhances the precision of nicotine vapor production by accurately measuring airflow and adjusting temperature settings, ensuring consistent nicotine vapor quality and user experience.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to nicotine e-vapor devices, including self-contained articles that include nicotine pre-vapor formulations. Summary of the Invention
[0002] Nicotine electronic vaporizing devices are used to vaporize nicotine pre-vapor formulation materials into a nicotine vapor. These nicotine electronic vaporizing devices are sometimes referred to as nicotine e-vapor devices. The nicotine e-vaporizing device includes a heater that vaporizes the nicotine pre-vapor formulation materials to produce a nicotine vapor. The nicotine e-vaporizing device may include several e-vaporizing elements, including a power source, an e-vaporizing tank including a cartridge or heater, and a reservoir capable of holding the nicotine pre-vapor formulation material.
[0003] According to at least some example embodiments, a method for controlling a hot wire anemometer (HWA) of a nicotine e-vaporizing device includes controlling, by a first PID controller, a level of power applied by the nicotine e-vaporizing device to the HWA based on a temperature of a heating element of the HWA and a temperature set point; generating a puff detection signal indicating whether a puff is currently being generated for the nicotine e-vaporizing device; and detecting, by a second PID controller, a change in an ambient temperature of the HWA while the puff detection signal indicates that a puff is not currently being generated for the nicotine e-vaporizing device, and controlling, by the second PID controller, the temperature set point such that the temperature set point changes in response to the detected change in ambient temperature of the HWA.
[0004] Controlling the level of power applied by the nicotine e-vaping device to the HWA may include generating, by a first PID controller, a drive signal set point, wherein the level of power applied by the nicotine e-vaping device to the HWA is based on the drive signal set point.
[0005] The method may further include determining a flow rate of air flowing around the HWA based on the drive signal setpoint while the puff detection signal indicates to the nicotine e-vaping device that a puff is currently occurring.
[0006] Generating the puff detection signal may include determining a slope of the drive signal set point and generating the puff detection signal based on the determined slope of the drive signal set point.
[0007] The method may further include generating a pulse width modulated (PWM) drive signal based on the drive signal setpoint, and applying power to the HWA by applying the PWM drive signal to the HWA.
[0008] Generating the PWM drive signal may include generating the PWM drive signal such that the duty cycle of the PWM is controlled based on the drive signal setpoint.
[0009] Generating the drive signal set point may include generating, by the first PID controller, the drive signal set point based on a difference between a temperature of the heating element of the HWA and a temperature set point.
[0010] Detecting a change in the ambient temperature of the HWA may include detecting, by the second PID controller, a change in the ambient temperature of the HWA based on a difference between the drive signal set point and the drive signal set point.
[0011] Detecting a change in the ambient temperature of the HWA may include detecting, by the second PID controller, a change in the ambient temperature of the HWA based on a difference between the drive signal set point and the drive signal set point.
[0012] Controlling the temperature set point may include increasing the temperature set point by the second PID controller in response to detecting an increase in the ambient temperature of the HWA, and decreasing the temperature set point by the second PID controller in response to detecting a decrease in the ambient temperature of the HWA.
[0013] According to at least some exemplary embodiments, the nicotine e-vapor device includes a nicotine pre-vapor formulation storage portion for storing a nicotine pre-vapor formulation; a heater configured to generate a nicotine vapor by heating the nicotine pre-vapor formulation; a hot wire anemometer (HWA); a first PID controller configured to control a level of power applied by the nicotine e-vapor device to the HWA based on a temperature of a heating element of the HWA and a temperature set point; a puff detection signal generator configured to generate a puff detection signal indicating whether a puff is currently being generated to the nicotine e-vapor device; and a second PID controller configured to detect a change in ambient temperature of the HWA while the puff detection signal indicates that a puff is not currently being generated to the e-vapor device, and to control the temperature set point such that the temperature set point changes in response to the detected change in ambient temperature of the HWA.
[0014] The first PID controller may be configured to control a level of power applied by the nicotine e-vaporizing device to the HWA by generating a drive signal setpoint, wherein the level of power applied by the nicotine e-vaporizing device to the HWA is based on the drive signal setpoint.
[0015] The second PID controller may be further configured to determine a flow rate of air flowing around the HWA based on the drive signal setpoint while the puff detection signal indicates to the nicotine e-vaping device that a puff is currently occurring.
[0016] The puff detection signal generator is configured to determine a slope of the drive signal setpoint and generate a puff detection signal based on the determined slope of the drive signal setpoint.
[0017] The nicotine e-vaping device may further include a drive signal generator configured to apply power to the HWA by generating a pulse width modulated (PWM) drive signal based on the drive signal set value and applying the PWM drive signal to the HWA.
[0018] The drive signal generator may be configured to control the duty cycle of the PWM drive signal based on a drive signal setpoint.
[0019] The first PID controller may be configured to generate a drive signal set point based on the difference between the temperature of the heating element of the HWA and a temperature set point.
[0020] The second PID controller may be configured to detect a change in the ambient temperature of the HWA based on a difference between the drive signal setpoint and the drive signal setpoint.
[0021] The second PID controller may be configured to detect a change in the ambient temperature of the HWA based on a difference between the drive signal setpoint and the drive signal setpoint.
[0022] The second PID controller may be configured to control the temperature set point by increasing the temperature set point in response to detecting an increase in the ambient temperature of the HWA, and by decreasing the temperature set point in response to detecting a decrease in the ambient temperature of the HWA.
[0023] Various features and advantages of the non-limiting embodiments herein will become more apparent upon consideration of the detailed description in conjunction with the accompanying drawings. The accompanying drawings are provided for illustrative purposes only and should not be construed as limiting the scope of the claims. The accompanying drawings are not intended to be drawn to scale unless expressly noted. Various dimensions of the drawings may be exaggerated for purposes of clarity. [Brief explanation of the drawings]
[0024] [Figure 1] FIG. 1 is a front view of a nicotine e-vaping device according to an exemplary embodiment. [Figure 2] FIG. 2 is a side view of the nicotine e-vaping device of FIG. [Figure 3]FIG. 3 is a rear view of the nicotine e-vaping device of FIG. [Figure 4] FIG. 4 is a proximal end view of the nicotine e-vaping device of FIG. [Figure 5] FIG. 5 is a distal end view of the nicotine e-vaping device of FIG. [Figure 6] FIG. 6 is a perspective view of the nicotine e-vaping device of FIG. [Figure 7] FIG. 7 is an enlarged view of the pod entrance of FIG. [Figure 8] FIG. 8 is a cross-sectional view of the nicotine e-vaping device of FIG. [Figure 9] FIG. 9 is a perspective view of the device body of the nicotine e-vaping device of FIG. [Figure 10] FIG. 10 is a front view of the device main body of FIG. [Figure 11] FIG. 11 is an enlarged perspective view of the through hole of FIG. [Figure 12] 12 is an enlarged perspective view of the device electrical connector of FIG. 10. FIG. [Figure 13] 13 is a perspective view of a pod assembly of the nicotine e-vaping device of FIG. 6. FIG. [Figure 14] FIG. 14 is another perspective view of the pod assembly of FIG. [Figure 15] FIG. 15 is a partially exploded view of the pod assembly of FIG. [Figure 16] 16 is a perspective view of the connector module of FIG. 15. FIG. [Figure 17] 17 is another perspective view of the connector module of FIG. 15. FIG. [Figure 18] FIG. 18 is a perspective view of the connector module of FIG. 17 without the wick and heater. [Figure 19] FIG. 19 is an exploded view of the connector module of FIG. [Figure 20] 20 is another exploded view of the connector module of FIG. 18. FIG. [Figure 21A] FIG. 21A illustrates a device system diagram of the device body according to an exemplary embodiment. [Figure 21B] FIG. 21B illustrates an example of a microprocessor according to an exemplary embodiment. [Figure 22A] FIG. 22A illustrates a pod system diagram of a pod assembly according to an exemplary embodiment. [Figure 22B] FIG. 22B illustrates an example implementation of the pod system of FIG. 22A omitting the cryptographic coprocessor, according to an exemplary embodiment. [Figure 23] FIG. 23 illustrates a pod system connected to an appliance system according to an exemplary embodiment. [Figure 24A] FIG. 24A illustrates an example implementation of a heating element included in a hot wire anemometer (HWA) of the pod system of FIG. 22A, according to an example embodiment. [Figure 24B] FIG. 24B illustrates an example implementation of a heating element included in a hot wire anemometer (HWA) of the pod system of FIG. 22A, according to an example embodiment. [Figure 24C] FIG. 24C illustrates an example implementation of a heating element included in a hot wire anemometer (HWA) of the pod system of FIG. 22A, according to an example embodiment. [Figure 24D] FIG. 24D illustrates an example implementation of a heating element included in a hot wire anemometer (HWA) of the pod system of FIG. 22A, according to an example embodiment. [Figure 25A] FIG. 25A is a diagram of an inner PID control loop in accordance with an exemplary embodiment. [Figure 25B] FIG. 25B illustrates an example waveform of the pulse width modulated (PWM) drive signal of FIG. 25A. [Figure 25C] FIG. 25C illustrates an example waveform of the pulse width modulated (PWM) drive signal of FIG. 25A. [Figure 25D] FIG. 25D illustrates an example waveform of the pulse width modulated (PWM) drive signal of FIG. 25A. [Figure 26] FIG. 26 is a diagram of an outer PID control loop in accordance with an exemplary embodiment. [Figure 27]FIG. 27 is a flowchart illustrating a method of operation of an HWA according to an exemplary embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0025] When an element or layer is referred to as "on," "connected to," "coupled to," or "overlying" another element or layer, it should be understood that it may be directly on, directly connected to, directly coupled to, or directly overlying the other element or layer, or that intervening elements or layers may be present. In contrast, when an element is referred to as "directly on," "directly connected to," or "directly coupled to" another element or layer, there are no intervening elements or layers present. Like numbers refer to like elements throughout this specification.
[0026] Terms such as first, second, and third may be used herein to describe various elements, regions, layers, or sections, but it should be understood that these elements, regions, layers, or sections are not limited by these terms. These terms are used only to distinguish one element, region, layer, or section from another region, layer, or section. Thus, a first element, component, region, layer, or section described below could also be referred to as a second element, component, region, layer, or section without departing from the teachings of the exemplary embodiments.
[0027] Spatial relationship terms (e.g., "below," "below," "lower," "above," "above," and the like) may be used herein to facilitate describing the relationship between one element or feature and another element or feature when illustrated in the figures. It should be understood that the spatial relationship terms are intended to encompass different orientations of the device in use or operation in addition to the orientation depicted in the figures. For example, if the device in the figures is turned over, elements described as "below" or "below" other elements or features would then be oriented "above" the other elements or features. Thus, the term "below" may encompass both an orientation of above and below. The device may be oriented otherwise (rotated 90 degrees or at another orientation), and the spatial relationship descriptors used herein will be interpreted accordingly.
[0028] The terminology used herein is for the purpose of describing various embodiments only and is not intended to limit example embodiments. As used herein, the singular forms "a," "an," and "the" are intended to include the plural forms as well, unless the context clearly dictates otherwise. It will be further understood that as used herein, the terms "includes," "including," "comprises," and "comprising" specify the presence of stated features, integers, steps, operations, elements, or components, but do not exclude the presence or addition of one or more other features, integers, steps, operations, elements, components, or groups thereof.
[0029] The exemplary embodiments are described herein with reference to cross-sectional illustrations that are schematic illustrations of idealized embodiments (and intermediate structures) of the exemplary embodiments. As such, variations from the shapes of the illustrations as a result, for example, of manufacturing techniques or tolerances, are expected. Thus, the exemplary embodiments should not be construed as limiting the shapes of regions illustrated herein and include deviations in shapes that result, for example, from manufacturing. The regions illustrated in the figures are schematic in nature and their shapes are not intended to illustrate the actual shapes of regions of a device and are not intended to limit the scope of the exemplary embodiments.
[0030] Unless otherwise defined, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one of ordinary skill in the art to which the exemplary embodiments belong. It will be further understood that terms (including commonly used dictionary-defined terms) should be interpreted to have a meaning consistent with the meaning of those terms in the context of the relevant art, and not to be interpreted in an idealized or overly formal sense, except as expressly defined herein.
[0031] As used herein, "nicotine e-vaporizing device" may at times be referred to using, and may be considered synonymous with, any of the terms nicotine e-vapor device, nicotine e-vapor device, and nicotine e-vapor device.
[0032] FIG. 1 is a front view of a nicotine e-vapor device according to an exemplary embodiment. FIG. 2 is a side view of the nicotine e-vapor device of FIG. 1. FIG. 3 is a rear view of the nicotine e-vapor device of FIG. 1. Referring to FIGS. 1-3, the nicotine e-vapor device 500 includes a device body 100 configured to receive a pod assembly 300. The pod assembly 300 is a modular article configured to hold a nicotine pre-vapor formulation. A "nicotine pre-vapor formulation" is a material or combination of materials that can be transformed into a nicotine vapor. For example, the nicotine pre-vapor formulation may be at least one of a liquid formulation, a solid formulation, or a gel formulation, including, but not limited to, water, beads, a solvent, an active ingredient, ethanol, a botanical extract, a natural or artificial flavor, a vapor former such as glycerin and propylene glycol, and combinations thereof. During vaping, the nicotine e-vapor device 500 is configured to heat the nicotine pre-vapor formulation to generate a nicotine vapor. As referred to herein, a "vapor" is any substance generated or output from any nicotine e-vaping device according to any of the exemplary embodiments disclosed herein.
[0033] The device body 100 includes a front cover 104, a frame 106, and a rear cover 108. The front cover 104, the frame 106, and the rear cover 108 form a device housing that encloses mechanical components, electronic components, and circuitry related to the operation of the nicotine e-vaporizing device 500. For example, the device housing of the device body 100 may enclose a power supply configured to power the nicotine e-vaporizing device 500, which may include providing current to the pod assembly 300. Furthermore, when assembled, the front cover 104, the frame 106, and the rear cover 108 may comprise the majority of the visible portion of the device body 100.
[0034] The front cover 104 (e.g., the first cover) defines a primary opening configured to accommodate the bezel structure 112. The bezel structure 112 defines a through-hole 150 configured to receive the pod assembly 300. The through-hole 150 is described in more detail herein, for example, in connection with FIG.
[0035] Front cover 104 also defines a secondary opening configured to accommodate a light guide arrangement. The secondary opening may resemble a slot (e.g., a segmented slot), although other shapes are possible depending on the shape of the light guide arrangement. In an exemplary embodiment, the light guide arrangement includes a light guide lens 116. Front cover 104 further defines a tertiary opening and a quaternary opening configured to accommodate first button 118 and second button 120. Each of the tertiary opening and the quaternary opening may resemble a rounded rectangle, although other shapes are possible depending on the shape of the buttons. First button housing 122 is configured to expose first button lens 124, and second button housing 123 is configured to expose second button lens 126.
[0036] Operation of the nicotine e-vaping device 500 may be controlled by a first button 118 and a second button 120. For example, the first button 118 may be a power button and the second button 120 may be an intensity button. Two buttons are shown in the drawings in relation to the light guide arrangement, although it will be appreciated that more (or fewer) buttons may be provided depending on the available features and desired user interface.
[0037] The frame 106 (e.g., a base frame) is the central support structure of the device body 100 (and the entire nicotine e-vaping device 500). The frame 106 may be referred to as a chassis. The frame 106 includes a proximal end, a distal end, and a pair of side sections between the proximal and distal ends. The proximal and distal ends may also be referred to as the downstream and upstream ends, respectively. As used herein, "proximal" (and conversely, "distal") refers to the adult e-vaping device user during vaping, and the term "downstream" (and conversely, "upstream") refers to the flow of nicotine vapor. Bridge sections may be provided between opposing inner surfaces of the side sections (e.g., approximately midway along the length of the frame 106) for additional strength and stability. The frame 106 may be integrally formed to be a monolithic structure.
[0038] With regard to materials of construction, the frame 106 may be formed of an alloy or plastic. The alloy (e.g., die-cast grade, machinable grade) may be an aluminum (Al) alloy or a zinc (Zn) alloy. The plastic may be polycarbonate (PC), acrylonitrile butadiene styrene (ABS), or a combination thereof (PC / ABS). For example, the polycarbonate may be LUPOY SC1004A. Furthermore, the frame 106 may be provided with a surface finish for at least one of functional and aesthetic reasons (e.g., to provide a premium appearance). In an exemplary embodiment, the frame 106 (e.g., when formed of an aluminum alloy) may be anodized. In another embodiment, the frame 106 (e.g., when formed of a zinc alloy) may be coated with hard enamel or painted. In another embodiment, the frame 106 (e.g., when formed of a polycarbonate) may be metallized. In yet another embodiment, the frame 106 (e.g., when formed of an acrylonitrile butadiene styrene) may be electroplated. It will be appreciated that the materials of construction for the frame 106 may also apply to the front cover 104, the rear cover 108, and / or other suitable components of the nicotine e-vaping device 500.
[0039] The rear cover 108 (e.g., the second cover) also defines an opening configured to accommodate the bezel structure 112. The front cover 104 and the rear cover 108 may be configured to engage with the frame 106 via a snap-fit arrangement.
[0040] The device body 100 also includes a mouthpiece 102. The mouthpiece 102 may be secured to the proximal end of a frame 106.
[0041] Figure 4 is a proximal end view of the nicotine e-vaping device of Figure 1. Referring to Figure 4, the exit surface of the mouthpiece 102 defines a plurality of vapor exits. In a non-limiting embodiment, the exit surface of the mouthpiece 102 may be oval-shaped.
[0042] FIG. 5 is a distal end view of the nicotine e-vaporizing device of FIG. 1. Referring to FIG. 5, the distal end of the nicotine e-vaporizing device 500 includes a port 110. The port 110 is configured to receive current from an external power source (e.g., via a USB cable) to charge an internal power source within the nicotine e-vaporizing device 500. Additionally, the port 110 may also be configured to send and receive data (e.g., via a US cable) to and from another nicotine e-vaporizing device or other electronic device (e.g., a phone, tablet, computer). Additionally, the nicotine e-vaporizing device 500 may be configured for wireless communication with another electronic device, such as a phone, via application software (app) installed on the electronic device. In such an example, an adult e-vaporizing device user may control or otherwise interface with the nicotine e-vaporizing device 500 (e.g., locating the nicotine e-vaporizing device 500, checking usage information, changing operating parameters) through the app.
[0043] FIG. 6 is a perspective view of the nicotine e-vaporizing device of FIG. 1. FIG. 7 is an enlarged view of the pod inlet of FIG. 6. Referring to FIGS. 6-7, and as briefly mentioned above, the nicotine e-vaporizing device 500 includes a pod assembly 300 configured to hold a nicotine pre-vapor formulation. The pod assembly 300 has an upstream end (facing the light guide arrangement) and a downstream end (facing the mouthpiece 102). In a non-limiting embodiment, the upstream end is the surface opposite the downstream end of the pod assembly 300. The upstream end of the pod assembly 300 defines a pod inlet 322. The device body 100 defines a through-hole (e.g., through-hole 150 in FIG. 9) configured to receive the pod assembly 300. In an exemplary embodiment, the bezel structure 112 of the device body 100 defines the through-hole and includes an upstream edge. As shown particularly in FIG. 7, the upstream edge of the bezel structure 112 is angled (e.g., inwardly recessed) to expose the pod inlet 322 when the pod assembly 300 is placed within the through-hole of the device body 100.
[0044] For example, rather than following the contours of the front cover 104 (so as to be relatively flush with the front surface of the pod assembly 300 and thus overshadow the pod inlet 322), the upstream edge of the bezel structure 112 is in the form of a scoop configured to direct ambient air into the pod inlet 322. This angled / scoop configuration may help reduce or prevent blockage of the air inlet (e.g., the pod inlet 322) of the nicotine e-vaping device 500. The depth of the scoop may be such that less than half (e.g., less than a quarter) of the upstream end face of the pod assembly 300 is exposed. Furthermore, in a non-limiting embodiment, the pod inlet 322 is in the form of a slot. Furthermore, when the device body 100 is considered to extend in a first direction, the slot may be considered to extend in a second direction that is transverse to the first direction.
[0045] FIG. 8 is a cross-sectional view of the nicotine e-vapor device of FIG. 6. In FIG. 8, the cross-section is taken along the longitudinal axis of the nicotine e-vapor device 500. As shown, the device body 100 and the pod assembly 300 include mechanical components, electronic components, and circuitry associated with the operation of the nicotine e-vapor device 500, which are described in more detail herein and incorporated by reference. For example, the pod assembly 300 may include mechanical components configured to release a nicotine pre-vapor formulation from a reservoir sealed therein upon actuation. The pod assembly 300 may also have mechanical aspects configured to engage with the device body 100 to facilitate insertion and seating of the pod assembly 300.
[0046] Additionally, the pod assembly 300 may be a "smart pod" that includes at least one of electronic components and circuitry configured to store, receive, or transmit information to, from, or to the device body 100. Such information may be used to authenticate the pod assembly 300 for use with the device body 100 (e.g., to prevent the use of unauthorized / counterfeit pod assemblies). Furthermore, the information may be used to identify the type of pod assembly 300, which is then correlated with a vaping profile based on the identified type. The vaping profile may be designed to define general parameters for heating the nicotine pre-vapor formulation and may be subject to adjustment, refinement, or other adjustment by an adult e-vapor device user before, during, or before and during vaping.
[0047] The pod assembly 300 may also communicate other information with the device body 100 that may be relevant to the operation of the nicotine e-vapor device 500. Examples of relevant information may include at least one of the level of the nicotine pre-vapor formulation in the pod assembly 300 and the amount of time that has elapsed since the pod assembly 300 was inserted into the device body 100 and activated.
[0048] The device body 100 may include mechanical components (e.g., complementary structures) configured to at least one of engage, retain, and activate the pod assembly 300. Additionally, the device body 100 may include at least one of electronic components and circuitry configured to receive electrical current to charge an internal power source (e.g., a battery), which in turn is configured to power the pod assembly 300 during vaping. Additionally, the device body 100 may include at least one of electronic components and circuitry configured to communicate with at least one of the pod assembly 300, a different nicotine e-vaping device, other electronic devices (e.g., a phone, tablet, computer), and adult e-vaping device users.
[0049] Figure 9 is a perspective view of the device body of the nicotine e-vaping device of Figure 6. Referring to Figure 9, the bezel structure 112 of the device body 100 defines a through-hole 150. The through-hole 150 is configured to receive the pod assembly 300. To facilitate insertion and seating of the pod assembly 300 into the through-hole 150, the upstream edge of the bezel structure 112 includes a first upstream protrusion 128a and a second upstream protrusion 128b.
[0050] The downstream wall of the bezel structure 112 can define a first downstream opening, a second downstream opening, and a third downstream opening. The retention structure including the first downstream protrusion 130 a and the second downstream protrusion 130 b engages the bezel structure 112 such that the first downstream protrusion 130 a and the second downstream protrusion 130 b protrude into the through-hole 150 through the first downstream opening and the second downstream opening, respectively, of the bezel structure 112.
[0051] 10 is a front view of the device body of FIG. 9. Referring to FIG. 10, the device body 100 includes a device electrical connector 132 disposed upstream of the through-hole 150. The device electrical connector 132 of the device body 100 is configured to electrically engage with the pod assembly 300 placed in the through-hole 150. As a result, during vaping, power can be supplied from the device body 100 to the pod assembly 300 via the device electrical connector 132. Furthermore, data can be transmitted and received between the device body 100 and the pod assembly 300 via the device electrical connector 132.
[0052] Figure 11 is an enlarged perspective view of the through-hole of Figure 10. Referring to Figure 11, the first upstream protrusion 128a, the second upstream protrusion 128b, the first downstream protrusion 130a, the second downstream protrusion 130b, and the distal end of the mouthpiece 102 protrude into the through-hole 150. In an exemplary embodiment, the first upstream protrusion 128a and the second upstream protrusion 128b are fixed structures (e.g., fixed pivots), and the first downstream protrusion 130a and the second downstream protrusion 130b are retractable structures (e.g., retractable members). For example, the first downstream protrusion 130a and the second downstream protrusion 130b may be configured (e.g., spring-loaded) to be in an extended state by default and may be configured to be temporarily retracted (and reversibly return to the extended state) to facilitate insertion of the pod assembly 300.
[0053] FIG. 12 is an enlarged perspective view of the device electrical contacts of FIG. 10 . The device electrical contacts of the device body 100 are configured to engage with the pod electrical contacts of the pod assembly 300 when the pod assembly 300 is placed in the through-hole 150 of the device body 100. Referring to FIG. 12 , the device electrical contacts of the device body 100 include a device electrical connector 132. The device electrical connector 132 includes power contacts and data contacts. The power contacts of the device electrical connector 132 are configured to supply power from the device body 100 to the pod assembly 300. As shown, the power contacts of the device electrical connector 132 include a first pair of power contacts and a second pair of power contacts (positioned closer to the front cover 104 than to the rear cover 108). The first pair of power contacts (e.g., the pair adjacent the first upstream protrusion 128 a) may be a single, integral structure separate from the second pair of power contacts and include two protrusions that extend into the through-hole 150 when assembled. Similarly, the second pair of power contacts (e.g., the pair adjacent the second upstream protrusion 128b) may be a single, integral structure separate from the first pair of power contacts and include two protrusions that, when assembled, extend into the through-hole 150. The first and second pairs of power contacts of the device electrical connector 132 may be retractably mounted and biased to extend into the through-hole 150 by default and to retract (e.g., independently) from the through-hole 150 when subjected to an overcoming force.
[0054] Figure 13 is a perspective view of the pod assembly of the nicotine e-vaping device of Figure 6. Figure 14 is another perspective view of the pod assembly of Figure 13.
[0055] FIG. 13 is a perspective view of the pod assembly of the nicotine e-vaporizing device of FIG. 6 . FIG. 14 is another perspective view of the pod assembly of FIG. 13 . Referring to FIGS. 13 and 14 , a pod assembly 300 for a nicotine e-vaporizing device 500 includes a pod body configured to hold a nicotine pre-vapor formulation. Thus, the pod assembly 300 is an example of a nicotine pre-vapor formulation storage portion of the nicotine e-vaporizing device 500. The pod body has an upstream end and a downstream end. The upstream end of the pod body defines a pod inlet 322. The downstream end of the pod body defines a pod outlet 304 that is in fluid communication with the pod inlet 322 at the upstream end. During vaping, air enters the pod assembly 300 through the pod inlet 322, and vapor exits the pod assembly 300 through the pod outlet 304. The pod inlet 322 is shown in the drawings as being in the form of a slot. However, it should be understood that the exemplary embodiment is not so limited and other configurations are possible.
[0056] The pod assembly 300 includes a connector module 320 (e.g., FIG. 16 ) disposed within the pod body and exposed by an opening at the upstream end. The outer surface of the connector module 320 includes at least one electrical contact. The at least one electrical contact may include a plurality of power contacts. For example, the plurality of power contacts may include a first power contact 324 a and a second power contact 324 b. The first power contact 324 a of the pod assembly 300 is configured to electrically connect with a first power contact of the device electrical connector 132 of the device body 100 (e.g., the power contact adjacent to the first upstream protrusion 128 a in FIG. 12 ). Similarly, the second power contact 324 b of the pod assembly 300 is configured to electrically connect with a second power contact of the device electrical connector 132 of the device body 100 (e.g., the power contact adjacent to the second upstream protrusion 128 b in FIG. 12 ). Furthermore, the at least one electrical contact of the pod assembly 300 includes a plurality of data contacts 326. The plurality of data contacts 326 of the pod assembly 300 are configured to electrically connect with the data contacts (e.g., the five rows of protrusions in FIG. 12 ) of the device electrical connector 132. While two power contacts and five data contacts are shown in connection with the pod assembly 300, it should be understood that other variations are possible depending on the design of the device body 100.
[0057] In the exemplary embodiment, the pod assembly 300 includes a front surface, a rear surface opposite the front surface, a first side surface between the front surface and the rear surface, a second side surface opposite the first side surface, an upstream end surface, and a downstream end surface opposite the upstream end surface. Corners of the side surfaces and end surfaces (e.g., corners of the first side surface and the upstream end surface, corners of the upstream end surface and the second side surface, corners of the second side surface and the downstream end surface, and corners of the downstream end surface and the first side surface) may be rounded. However, in some examples, the corners may be angled. Furthermore, the peripheral edge of the front surface may be in the form of a ledge. The outer surface of the connector module 320 (exposed by the pod body) may be considered to be part of the upstream end surface of the pod assembly 300. The front surface of the pod assembly 300 may be wider and longer than the rear surface. In such examples, the first side surface and the second side surface may be angled inward toward each other. The upstream end surface and the downstream end surface may also be angled inward toward each other. The angled surface allows the pod assembly 300 to be inserted in one direction (e.g., from the front side of the device body 100 (the side associated with the front cover 104)). As a result, the possibility of the pod assembly 300 being improperly inserted into the device body 100 can be reduced or prevented.
[0058] As shown, the pod body of the pod assembly 300 includes a first housing section 302 and a second housing section 308. The first housing section 302 has a downstream end that defines a pod outlet 304. The lip of the pod outlet 304 may optionally be a recessed or sunken region. In such an example, this region may resemble a cove, and the side of the lip adjacent to the rear surface of the pod assembly 300 may be open, while the side of the lip adjacent to the front surface may be surrounded by a raised portion at the downstream end of the first housing section 302. The raised portion may function as a stop for the distal end of the mouthpiece 102. As a result, this configuration of the pod outlet 304 may facilitate receiving and aligning the distal end of the mouthpiece 102 (e.g., FIG. 11 ) via seating against the open side of the lip and the subsequent raised portion at the downstream end of the first housing section 302. In a non-limiting embodiment, the distal end of the mouthpiece 102 may also include (or be formed of) a resilient material that helps create a seal around the pod outlet 304 when the pod assembly 300 is properly inserted into the through-hole 150 of the device body 100.
[0059] The downstream end of the first housing section 302 additionally defines at least one downstream recess. In the exemplary embodiment, the at least one downstream recess is in the form of a first downstream recess 306a and a second downstream recess 306b. The pod outlet 304 may be located between the first downstream recess 306a and the second downstream recess 306b. The first downstream recess 306a and the second downstream recess 306b are configured to engage with the first downstream protrusion 130a and the second downstream protrusion 130b, respectively, of the device body 100. As shown in FIG. 11 , the first downstream protrusion 130a and the second downstream protrusion 130b of the device body 100 may be disposed at adjacent corners of the downstream wall of the through-hole 150. The first downstream recess 306a and the second downstream recess 306b may each be in the form of a V-shaped notch. In such an example, each of the first downstream protrusion 130a and the second downstream protrusion 130b of the device body 100 may be in the form of a wedge-shaped structure configured to engage with a corresponding V-shaped notch of the first downstream recess 306a and the second downstream recess 306b. The first downstream recess 306a may abut a corner of the downstream end face and the first side face, and the second downstream recess 306b may abut a corner of the downstream end face and the second side face. As a result, the edges of the first downstream recess 306a and the second downstream recess 306b adjacent to the first side face and the second side face, respectively, may be open. In such an example, as shown in FIG. 14 , each of the first downstream recess 306a and the second downstream recess 306b may be a three-sided recess.
[0060] The second housing section 308 has an upstream end that further defines (in addition to the pod entrance 322) a plurality of openings (e.g., first power contact opening 325a, second power contact opening 325b, data contact opening 327) configured to expose the connector module 320 (FIGS. 15-16) within the pod assembly 300. The upstream end of the second housing section 308 also defines at least one upstream recess. In the exemplary embodiment, the at least one upstream recess is in the form of a first upstream recess 312a and a second upstream recess 312b. The pod entrance 322 may be located between the first upstream recess 312a and the second upstream recess 312b. The first upstream recess 312a and the second upstream recess 312b are configured to engage with the first upstream protrusion 128a and the second upstream protrusion 128b, respectively, of the device body 100. 12 , the first upstream protrusion 128a and the second upstream protrusion 128b of the device body 100 may be disposed at adjacent corners of the upstream wall of the through-hole 150. The depth of each of the first upstream recess 312a and the second upstream recess 312b may be greater than the depth of each of the first downstream recess 306a and the second downstream recess 306b. The ends of each of the first upstream recess 312a and the second upstream recess 312b may also be more rounded than the ends of each of the first downstream recess 306a and the second downstream recess 306b. For example, the first upstream recess 312a and the second upstream recess 312b may each be in the form of a U-shaped depression. In such an example, each of the first upstream protrusion 128a and the second upstream protrusion 128b of the device body 100 may be in the form of a rounded knob configured to engage with a corresponding U-shaped recess of the first upstream recess 312a and the second upstream recess 312b. The first upstream recess 312a may abut a corner of the upstream end face and a first side surface, and the second upstream recess 312b may abut a corner of the upstream end face and a second side surface. As a result, the edges of the first upstream recess 312a and the second upstream recess 312b adjacent to the first side surface and the second side surface, respectively, may be open.
[0061] The first housing section 302 may define a reservoir configured to hold a nicotine pre-vapor formulation. The reservoir may be configured to seal the nicotine pre-vapor formulation until activation of the pod assembly 300 to release the nicotine pre-vapor formulation from the reservoir. As a result of the airtight seal, the nicotine pre-vapor formulation is isolated from the environment and internal elements of the pod assembly 300 that may react with the nicotine pre-vapor formulation, thereby reducing or preventing potential adverse effects on at least one of the shelf life and sensory characteristics (e.g., flavor) of the nicotine pre-vapor formulation. The second housing section 308 may contain structure configured to activate the pod assembly 300 and to receive and heat the nicotine pre-vapor formulation released from the reservoir after activation.
[0062] The pod assembly 300 may be manually activated by an adult e-vaping device user prior to inserting the pod assembly 300 into the device body 100. Alternatively, the pod assembly 300 may be activated as part of inserting the pod assembly 300 into the device body 100. In the exemplary embodiment, the second housing section 308 of the pod body includes a perforator configured to release the nicotine pre-vapor formulation from the reservoir within the first housing section 302 during activation of the pod assembly 300. The perforators may be in the form of a first activation pin 314 a and a second activation pin 314 b, which are described in more detail herein.
[0063] To manually activate the pod assembly 300, an adult e-vaping device user may first push the first activation pin 314a and the second activation pin 314b inward (e.g., simultaneously or sequentially) before inserting the pod assembly 300 into the through-hole 150 of the device body 100. For example, the first activation pin 314a and the second activation pin 314b may be manually pushed until their ends are substantially even with the upstream end surface of the pod assembly 300. In an exemplary embodiment, the inward movement of the first activation pin 314a and the second activation pin 314b pierces or otherwise compromises the seal of the reservoir so as to release the nicotine pre-vapor formulation therefrom.
[0064] Alternatively, to activate the pod assembly 300 as part of inserting the pod assembly 300 into the device body 100, the pod assembly 300 is first positioned such that the first and second upstream recesses 312 a, 312 b engage with the first and second upstream protrusions 128 a, 128 b, respectively (e.g., upstream engagement). Each of the first and second upstream protrusions 128 a, 128 b of the device body 100 may be in the form of a rounded knob configured to engage with a corresponding U-shaped recess in the first and second upstream recesses 312 a, 312 b, so that the pod assembly 300 can then be relatively easily pivoted about the first and second upstream protrusions 128 a, 128 b into the through-hole 150 of the device body 100.
[0065] With respect to the pivoting of the pod assembly 300, the axis of rotation can be considered to extend through the first upstream protrusion 128a and the second upstream protrusion 128b and to be oriented perpendicular to the longitudinal axis of the device body 100. During initial positioning and subsequent pivoting of the pod assembly 300, the first actuation pin 314a and the second actuation pin 314b contact the upstream wall of the through-hole 150 and transition from an extended state to a retracted state as the first actuation pin 314a and the second actuation pin 314b are pushed into the second housing section 308 (e.g., simultaneously) as the pod assembly 300 advances into the through-hole 150. When the downstream end of the pod assembly 300 reaches near the downstream wall of the through hole 150 and comes into contact with the first downstream protrusion 130a and the second downstream protrusion 130b, the first downstream protrusion 130a and the second downstream protrusion 130b retract and then elastically extend (e.g., downstream engagement) when the positioning of the pod assembly 300 allows the first downstream protrusion 130a and the second downstream protrusion 130b of the device body 100 to engage with the first downstream recess 306a and the second downstream recess 306b of the pod assembly 300, respectively.
[0066] As described above, according to the exemplary embodiment, the mouthpiece 102 is secured to the retention structure 140 (of which the first downstream protrusion 130a and the second downstream protrusion 130b are a part). In such an example, retraction of the first downstream protrusion 130a and the second downstream protrusion 130b from the through-hole 150 causes a simultaneous shift of the mouthpiece 102 a corresponding distance in the same direction (e.g., the downstream direction). Conversely, when the pod assembly 300 is fully inserted to facilitate downstream engagement, the mouthpiece 102 springs back simultaneously with the first downstream protrusion 130a and the second downstream protrusion 130b. In addition to the elastic engagement by the first downstream protrusion 130a and the second downstream protrusion 130b, the distal end of the mouthpiece 102 is also configured to be biased against the pod assembly 300 (and aligned with the pod outlet 304 to form a relatively vapor-tight seal) when the pod assembly 300 is properly placed within the through-hole 150 of the device body 100.
[0067] Additionally, downstream engagement may produce at least one of an audible click and tactile feedback indicating that the pod assembly 300 is properly seated within the through-hole 150 of the device body 100. Once properly seated, the pod assembly 300 is mechanically, electrically, and fluidically connected to the device body 100. While the non-limiting embodiments herein describe upstream engagement of the pod assembly 300 occurring before downstream engagement, it should be understood that the associated mating, activation, and electrical arrangements may be reversed such that downstream engagement occurs before upstream engagement.
[0068] FIG. 15 is a partially exploded view of the pod assembly of FIG. 13. Referring to FIG. 15, the first housing section 302 includes a vapor channel 316. The vapor channel 316 is configured to receive vapor generated during vaping and is in fluid communication with the pod outlet 304. In an exemplary embodiment, the vapor channel 316 may gradually increase in size (e.g., diameter) as it extends toward the pod outlet 304. Furthermore, the vapor channel 316 may be integrally formed with the first housing section 302. An insert 342 and a seal 344 are disposed at the upstream end of the first housing section 302 to define a reservoir of the pod assembly 300. For example, the insert 342 may be placed within the first housing section 302 such that the peripheral surface of the insert 342 engages (e.g., via an interference fit) with the inner surface of the first housing section 302 along a lip such that the interface between the peripheral surface of the insert 342 and the inner surface of the first housing section 302 is fluid-tight (e.g., at least one of liquid-tight and air-tight). Additionally, the seal 344 may be attached to the upstream side of the insert 342 to seal the reservoir outlet of the insert 342, providing fluid-tight (e.g., at least one of liquid-tight and air-tight) containment of the nicotine pre-vapor formulation within the reservoir.
[0069] The upstream end of the second housing section 308 defines a pod inlet 322, a first power contact opening 325a, a second power contact opening 325b, a data contact opening 327, a first upstream recess 312a, a second upstream recess 312b, a first pin opening 315a, and a second pin opening 315b. As described above, the pod inlet 322 allows air to enter the pod assembly 300 during vaping, and the first power contact opening 325a, the second power contact opening 325b, and the data contact opening 327 are configured to expose the first power contact 324a, the second power contact 324b, and the data contact 326, respectively, of the connector module 320. In the exemplary embodiment, the first power contact 324a and the second power contact 324b are mounted on a module housing 354 of the connector module 320. Additionally, the data contact 326 may be disposed on a printed circuit board (PCB) 362. Additionally, the pod entrance 322 may be located between the first upstream recess 312a and the second upstream recess 312b, and the contact openings (e.g., the first power contact opening 325a, the second power contact opening 325b, and the data contact opening 327) may be located between the first pin opening 315a and the second pin opening 315b. The first pin opening 315a and the second pin opening 315b are configured to accommodate the first activation pin 314a and the second activation pin 314b, respectively, extending therethrough.
[0070] FIG. 16 is a perspective view of the connector module of FIG. 15. FIG. 17 is another perspective view of the connector module of FIG. 16. Referring to FIGS. 16-17, the general framework of the connector module 320 includes a module housing 354. Additionally, the connector module 320 has multiple surfaces, including an exterior surface and side surfaces adjacent to the exterior surface. In the exemplary embodiment, the exterior surface of the connector module 320 is comprised of the upstream surface of the module housing 354, the first power contact 324a, the second power contact 324b, the data contact 326, and a printed circuit board (PCB) 362. The side surfaces of the connector module 320 are integral parts of the module housing 354 and may be substantially perpendicular to the exterior surface.
[0071] The pod assembly 300 defines a flow path therein from the pod inlet 322 to the pod outlet 304. The flow path through the pod assembly 300 includes a first branch portion, a second branch portion, and a confluence portion. The pod inlet 322 is upstream of the first branch portion and the second branch portion of the flow path. In particular, as shown in FIG. 16 , a side (e.g., an inlet side) of the module housing 354 (and connector module 320) above the first power contact 324a and the second power contact 324b is recessed to define a partition 329, along with initial segments of the first branch portion and the second branch portion of the flow path. In an exemplary embodiment in which the partition 329 is recessed from the outer surface of the module housing 354 (e.g., FIG. 16 ), the side of the module housing 354 above the first power contact 324a and the second power contact 324b can also be considered to define an inlet portion of the flow path downstream of the pod inlet 322 and upstream of the first and second branch portions of the flow path.
[0072] A pair of longer sides (e.g., vertical sides) of module housing 354 are also recessed to define subsequent segments of the first and second branched portions of the flow path. Herein, the pair of longer sides of module housing 354 may alternatively be referred to as lateral sides. The sector of module housing 354 covered by printed circuit board (PCB) 362 of FIG. 16 (shown in FIG. 20 ) defines, along with the converging portion of the flow path, further segments of the first and second branched portions. The further segments of the first and second branched portions include a first curved segment (e.g., first curved path 330 a) and a second curved segment (e.g., second curved path 330 b), respectively. As described in more detail herein, the first and second branched portions converge to form the converging portion of the flow path.
[0073] When the connector module 320 is placed within the receiving cavity downstream of the second housing section 308, the non-recessed side of the module housing 354 interfaces with the sidewall of the receiving cavity of the second housing section 308, and the recessed side of the module housing 354, together with the sidewall of the receiving cavity, define the first and second branch portions of the flow path. Seating of the connector module 320 within the receiving cavity of the second housing section 308 may be via a tight-fitting arrangement such that the connector module 320 remains essentially fixed within the pod assembly 300.
[0074] As shown in FIG. 17 , the connector module 320 includes a wick 338 configured to transfer the nicotine pre-vapor formulation to a heater 336. The heater 336 is configured to heat the nicotine pre-vapor formulation to generate a nicotine vapor during vaping. The heater 336 is electrically connected to at least one electrical contact of the connector module 320. For example, one end (e.g., a first end) of the heater 336 may be connected to the first power contact 324a, and the other end (e.g., a second end) of the heater 336 may be connected to the second power contact 324b. In an exemplary embodiment, the heater 336 includes a folded heating element. In such an example, the wick 338 may have a planar configuration configured to be held by the folded heating element. When the pod assembly 300 is assembled, the wick 338 is configured to be in fluid communication with the absorbent material such that the nicotine pre-vapor formulation contained within the absorbent material is transferred to the wick 338 via capillary action (when the pod assembly 300 is activated). Herein, the heater may also be referred to as a heating engine.
[0075] In the exemplary embodiment, the airflow entering the pod assembly 300 through the pod inlet 322 is directed by a divider 329 into a first branch portion and a second branch portion of the flow path. The divider 329 may be wedge-shaped and configured to split the incoming airflow (e.g., at least initially) in opposite directions. The split airflow may include a first airflow (traveling through the first branch portion of the flow path) and a second airflow (traveling through the second branch portion of the flow path). After being split by the divider 329, the first airflow travels along the inlet side, around the corner, and along the first lateral surface to a first curved path 330a. Similarly, the second airflow travels along the inlet side, around the corner, and along the second lateral surface to a first curved path 330b (e.g., FIG. 20 ). The converging portions of the flow path are downstream of the first branch portion and the second branch portion. The heater 336 and wick 338 are downstream of the converging portion of the flow paths. Thus, the first air stream joins with the second air stream at the converging portion of the flow paths (e.g., converging path 330c in FIG. 20) to form a combined flow before passing through module outlet 368 of module housing 354 (e.g., as labeled in FIG. 18) to the heater 336 and wick 338.
[0076] According to at least some exemplary embodiments, the wick 338 may be a fibrous pad or other structure with pores / gaps designed for capillary action. Furthermore, the wick 338 may have a rectangular shape, although exemplary embodiments are not limited thereto. For example, the wick 338 may have an alternative shape of an irregular hexagon, with two of the sides angled inward toward the heater 336. The wick 338 may be fabricated into the desired shape or cut into such a shape from a larger sheet of material. If the lower section of the wick 338 tapers toward the wound section of the heater 336 (e.g., a hexagonal shape), the likelihood of the nicotine pre-vapor formulation becoming part of the wick 338 (due to its distance from the heater 336) and subsequently avoiding vaporization is reduced or eliminated. Furthermore, as described above, the heater 336 may include a folded heating element configured to grip the wick 338. The folded heating element may also include at least one prong configured to protrude into the wick 338.
[0077] In an exemplary embodiment, the heater 336 may be configured to undergo Joule heating (also known as ohmic / resistive heating) as an electric current is applied to it. More specifically, the heater 336 may be formed of one or more conductors and configured to generate heat when an electric current is passed through it. The electric current may be supplied from a power source (e.g., a battery) within the device body 100 and conveyed to the heater 336 via the first power contact 324 a or the second power contact 324 b.
[0078] Suitable conductors for the heater 336 include iron-based alloys (e.g., stainless steel) and nickel-based alloys (e.g., nichrome). The heater 336 may be fabricated from a conductive sheet (e.g., metal, alloy) stamped to cut a winding pattern therefrom. The winding pattern may have curved segments alternating with horizontal segments such that the horizontal segments run parallel to one another while zigzagging back and forth. Furthermore, the width of each horizontal segment of the winding pattern may be substantially equal to the spacing between adjacent horizontal segments of the winding pattern, although exemplary embodiments are not limited thereto. To obtain the configuration of the heater 336 shown in the drawings, the winding pattern may be folded to grip the core 338. Furthermore, if prongs are part of the heater 336, the protrusions corresponding to the prongs are bent (e.g., at least one of inward and perpendicular) before the winding pattern is folded. As a result of the prongs, the possibility of the core 338 slipping out of the heater 336 is reduced or prevented. Heaters and related structures are described in more detail in U.S. Patent Application No. 15 / 729,909, filed October 11, 2017, entitled "Folded Heater For Electronic Vaping Device," which is hereby incorporated by reference in its entirety.
[0079] 15 , the first housing section 302 includes a vapor channel 316. The vapor channel 316 is configured to receive nicotine vapor generated by the heater 336 and is in fluid communication with the pod outlet 304. In an exemplary embodiment, the vapor channel 316 may gradually increase in size (e.g., diameter) as it extends toward the pod outlet 304. Furthermore, the vapor channel 316 may be integrally formed with the first housing section 302. An insert 342 and a seal 344 are disposed at the upstream end of the first housing section 302 to define a reservoir for the pod assembly 300. For example, the insert 342 may be positioned within the first housing section 302 such that the peripheral surface of the insert 342 engages (e.g., via an interference fit) with the inner surface of the first housing section 302 along a lip such that the interface between the peripheral surface of the insert 342 and the inner surface of the first housing section 302 is fluid-tight (e.g., at least one of liquid-tight and air-tight). Additionally, the seal 344 may be attached to the upstream side of the insert 342 to seal the reservoir outlet of the insert 342, providing fluid-tight (e.g., at least one of liquid-tight and air-tight) containment of the nicotine pre-vapor formulation within the reservoir. Herein, the first housing section 302, the insert 342, and the seal 344 may be collectively referred to as a first section. As described in more detail herein, the first section is configured to seal the nicotine pre-vapor formulation until activation of the pod assembly 300.
[0080] In at least some exemplary embodiments, the insert 342 includes a holder portion protruding from the upstream side and a connector portion protruding from the downstream side. In at least some exemplary embodiments, the holder portion of the insert 342 is configured to hold an absorbent material, and the connector portion of the insert 342 is configured to engage with the vapor channel 316 of the first housing section 302. The connector portion of the insert 342 may be configured to be positioned within the vapor channel 316 and thus engage with the interior of the vapor channel 316. Alternatively, the connector portion of the insert 342 may be configured to receive the vapor channel 316 and thus engage with the exterior of the vapor channel 316. The insert 342 also defines a reservoir outlet through which the nicotine pre-vapor formulation flows when the seal 344 is pierced during activation of the pod assembly 300. The holder portion and connector portion of the insert 342 may be between the reservoir outlets (e.g., the first reservoir outlet and the second reservoir outlet), although exemplary embodiments are not limited thereto. Additionally, the insert 342 defines a vapor conduit that extends through the holder portion and the connector portion. As a result, when the insert 342 is placed within the first housing section 302, the vapor conduit of the insert 342 is aligned with and in fluid communication with the vapor channel 316 such that a continuous pathway is formed through the reservoir and to the pod outlet 304 for nicotine vapor generated by the heater 336 during vaping.
[0081] The seal 344 is attached to the upstream side of the insert 342 to cover the reservoir outlet of the insert 342. In the exemplary embodiment, the seal 344 defines an opening (e.g., a central opening) configured to provide adequate clearance to accommodate the holder portion (protruding from the upstream side of the insert 342) when the seal 344 is attached to the insert 342. When the seal 344 is pierced by the first actuation pin 314a and the second actuation pin 314b of the pod assembly 300, the two perforated sections of the seal 344 are pressed into the reservoir as flaps, thus creating two pierced openings in the seal 344 (e.g., one on each side of the central opening). The size and shape of the perforated openings in the seal 344 may correspond to the size and shape of the reservoir outlet of the insert 342. In contrast, when in an unperforated state, the seal 344 may have a planar configuration and only one opening (e.g., a central opening). The seal 344 is designed to be strong enough to remain intact to avoid premature or inadvertent rupture during normal movement and handling of the pod assembly 300. For example, the seal 344 may be a coated foil (e.g., aluminum-backed Tritan).
[0082] The second housing section 308 can be structured to contain various components configured to release, receive, and heat the nicotine pre-vapor formulation. For example, the first and second activation pins 314a, 314b are configured to pierce a reservoir in the first housing section 302 to release the nicotine pre-vapor formulation. The first and second activation pins 314a, 314b each have a distal end that extends through a corresponding one of the first and second pin openings 315a, 315b in the second housing section 308. In an exemplary embodiment, the distal end of the first and second activation pins 314a, 314b are visible after assembly (e.g., FIG. 13 ), while the remainder of the first and second activation pins 314a, 314b are hidden from view within the pod assembly 300. Furthermore, each of the first and second actuation pins 314a, 314b has a proximal end positioned adjacent to and upstream of the seal 344 prior to actuation of the pod assembly 300. When the first and second actuation pins 314a, 314b are pressed into the second housing section 308 to actuate the pod assembly 300, the proximal end of each of the first and second actuation pins 314a, 314b advances through the insert 342, thereby piercing the seal 344 and releasing the nicotine pre-vapor formulation from the reservoir. Movement of the first actuation pin 314a may be independent of movement of the second actuation pin 314b (or vice versa).
[0083] The absorbent material may be downstream of and in fluid communication with the wick 338. Additionally, as described above, the absorbent material may be configured to engage with the holder portion of the insert 342 (which may protrude from the upstream side of the insert 342). The absorbent material may have an annular shape, although exemplary embodiments are not limited thereto. For example, the absorbent material may resemble a hollow cylinder. In such an example, the outer diameter of the absorbent material may be substantially equal to (or slightly greater than) the length of the wick 338. The inner diameter of the absorbent material may be smaller than the average outer diameter of the holder portion of the insert 342 to provide an interference fit. The tip of the holder portion of the insert 342 may be tapered to facilitate engagement with the absorbent material. The absorbent material may be configured to receive and retain an amount of nicotine pre-vapor formulation released from the reservoir when the pod assembly 300 is activated. A wick 338 may be positioned within the pod assembly 300 so as to be in fluid communication with the absorbent material such that the nicotine pre-vapor formulation may be drawn from the absorbent material to the heater 336 via capillary action. The wick 338 may be in physical contact with the upstream side of the absorbent material. Additionally, the wick 338 may be aligned with the diameter of the absorbent material, although exemplary embodiments are not limited thereto.
[0084] As shown in FIG. 17 , the heater 336 may have a folded configuration to grip opposing surfaces of the wick 338 and establish thermal contact with the wick 338. The heater 336 is configured to heat the wick 338 to generate a nicotine vapor during vaping. To facilitate such heating, a first end of the heater 336 may be electrically connected to the first power contact 324a ( FIGS. 16 and 18 ), and a second end of the heater 336 may be electrically connected to the second power contact 324b ( FIGS. 16 and 18 ). As a result, electrical current may be supplied from a power source (e.g., a battery) within the device body 100 and conveyed to the heater 336 via the first power contact 324a or the second power contact 324b. Relevant details of other aspects of the connector module 320 already described above (e.g., in connection with FIGS. 16-17 ) will not be repeated in this section for the sake of brevity. In the exemplary embodiment, the second housing section 308 includes a receiving cavity for the connector module 320. The second housing section 308 and the above-described internal components may be collectively referred to as the second section. During vaping, nicotine vapor generated by the heater 336 is drawn through the vapor conduit of the insert 342, through the vapor channel 316 of the first housing section 302, out the pod outlet 304 of the pod assembly 300, and through the vapor passage 136 of the mouthpiece 102 to the vapor outlet.
[0085] Figure 18 is a perspective view of the connector module of Figure 17 without the wick and heater. Figure 19 is an exploded view of the connector module of Figure 18. Figure 20 is another exploded view of the connector module of Figure 18. With reference to Figures 18-20, module housing 354 forms the framework of connector module 320. Module housing 354 defines a flow path for air drawn into partition 329 and pod assembly 300. A heating chamber is in fluid communication with the flow path upstream of module housing 354 via module outlet 368.
[0086] As described above, the flow path for air drawn into the pod assembly 300 includes a first branching portion, a second branching portion, and a converging portion defined by the module housing 354. In an exemplary embodiment, the first branching portion and the second branching portion are symmetrical portions bisected by an axis corresponding to the converging portion of the flow path. For example, as shown in FIG. 20 , the first branching portion, the second branching portion, and the converging portion may include a first curved path 330a, a second curved path 330b, and a converging path 330c, respectively. The first curved path 330a and the second curved path 330b may be substantially U-shaped paths, and the converging path 330c may be a substantially straight path. Based on the axis corresponding to the converging path 330c and aligned with the top of the partition 329, the first branching portion of the flow path may be a mirror image of the second branching portion of the flow path. During vaping, air drawn through the pod inlet 322 is divided by the divider 329, first flowing in opposite directions away from the divider 329, then flowing in parallel before each airflow makes a U-turn (via first curved path 330a and second curved path 330b) and merges (via merged path 330c) for a combined flow traveling back toward the divider 329 before passing through the module outlet 368 and into the heating chamber. The heater 336 and wick 338 may be positioned so that both sides are substantially equally exposed to the combined flow of air passing through the module outlet 368. During vaping, the generated nicotine vapor is entrained in the combined flow of air traveling through the heating chamber and into the vapor channel 316.
[0087] As shown in FIGS. 19-20 , each of the first power contact 324a and the second power contact 324b may include a contact surface and contact legs. The contact legs (which may have an elongated configuration) may be oriented perpendicular to the contact surface (which may be square), although example embodiments are not limited thereto. The module housing 354 may define a pair of shallow recesses and a pair of openings to facilitate installation of the first power contact 324a and the second power contact 324b. During assembly, the contact surface of each of the first power contact 324a and the second power contact 324b may be positioned within a corresponding one of the pair of shallow recesses so as to be substantially flush with the outer surface of the module housing 354 (e.g., FIG. 16 ). Furthermore, the contact legs of each of the first power contact 324a and the second power contact 324b may extend through a corresponding one of the pair of openings to protrude from the downstream side of the module housing 354 (e.g., FIG. 18 ). The heater 336 may then be connected to the contact legs of each of the first and second power contacts 324a, 324b.
[0088] Printed circuit board (PCB) 362 includes a plurality of data contacts 326 (e.g., FIG. 20 ) on its upstream side and various electronic components (e.g., FIG. 19 ), including a sensor 364, on its downstream side. Sensor 364 may be positioned on printed circuit board (PCB) 362 such that sensor 364 is within merged path 330 c defined by module housing 354. In an exemplary embodiment, printed circuit board (PCB) 362 (and associated components affixed thereto) is a free-standing structure that is initially inserted into a downstream receiving cavity of second housing section 308 such that data contacts 326 are exposed by data contact opening 327 in second housing section 308. Thereafter, the module housing 354 (with the first power contacts 324a, the second power contacts 324b, the heater 336, and the wick 338 attached thereto) may be inserted into the receiving cavity such that the first power contacts 324a and the second power contacts 324b are exposed by the first power contact openings 325a and the second power contact openings 325b, respectively, in the second housing section 308. Alternatively, to simplify the above two-step insertion process into a one-step insertion process, it should be understood that a printed circuit board (PCB) 362 (and associated components affixed thereto) may be affixed to the module housing 354 (e.g., to form a single, integrated structure) so as to cover the first curved path 330a, the second curved path 330b, the merging path 330c, and the module outlet 368.
[0089] The module outlet 368 may be a resistance to withdrawal (RTD) port. In such a configuration, the withdrawal resistance of the nicotine e-vaping device 500 may be adjusted by changing the size of the module outlet 368 (rather than changing the size of the pod inlet 322). In an exemplary embodiment, the size of the module outlet 368 may be selected to provide a withdrawal resistance of 25 to 100 millimeters of water column (e.g., 30 to 50 millimeters of water column). For example, a 1.0 mm diameter of the module outlet 368 may provide a withdrawal resistance of 88.3 millimeters of water column. In another example, a 1.1 mm diameter of the module outlet 368 may provide a withdrawal resistance of 73.6 millimeters of water column. In another example, a 1.2 mm diameter of the module outlet 368 may provide a withdrawal resistance of 58.7 millimeters of water column. In yet another example, a 1.3 mm diameter of the module outlet 368 may provide a withdrawal resistance of 40 to 43 millimeters of water column. In particular, the size of the module outlet 368 may be adjusted for its internal arrangement without affecting the external aesthetics of the pod assembly 300, thereby allowing for a more standardized product design of pod assemblies having various resistance to withdrawal (RTD), while also reducing the possibility of inadvertent blockage of the incoming air.
[0090] 21A illustrates a device system of the device body 100 according to an exemplary embodiment. The device system 2100 may be a system within the device body 100 of the nicotine e-vaping device 500.
[0091] The device system 2100 includes a controller 2105, a power supply 2110, an actuator control 2115, a pod electrical / data interface 2120, a device sensor 2125, an input / output (I / O) interface 2130, a vapor indicator 2135, at least one antenna 2140, and a storage medium 2145. The device system 2100 is not limited to the features shown in FIG. 21A . For example, the device system 2100 may include additional elements. However, for the sake of brevity, the additional elements are not described. In other exemplary embodiments, the device system 2100 may not include an antenna.
[0092] The controller 2105 may be hardware, firmware, hardware executing software, or any combination thereof. If the controller 2105 is hardware, such existing hardware may include one or more central processing units (CPUs), microprocessors, processor cores, multiprocessors, digital signal processors (DSPs), application specific integrated circuits (ASICs), field programmable gate array (FPGA) computers, etc. configured as special-purpose machines to perform the functions of the controller 2105. CPUs, microprocessors, processor cores, multiprocessors, DSPs, ASICs, and FPGAs may be generally referred to as processing units.
[0093] If controller 2105 is or includes a processor that executes software, controller 2105 is configured as a special-purpose machine (e.g., processing unit) for executing software stored in memory accessible by controller 2105 (e.g., storage medium 2145 or another storage device) to perform the functions of controller 2105. The software may be embodied as program code including instructions for performing or controlling any or all of the operations described herein as being performed by controller 2105 or controller 2105A (FIG. 21B).
[0094] The terms "storage medium," "computer-readable storage medium," or "non-transitory computer-readable storage medium" disclosed herein may refer to one or more devices for storing data, including read-only memory (ROM), random-access memory (RAM), magnetic RAM, core memory, magnetic disk storage media, optical storage media, flash memory devices, and other tangible machine-readable media for storing information. The term "computer-readable medium" may include, but is not limited to, portable or non-removable storage devices, optical storage devices, and various other media capable of storing, containing, or retaining at least one of instructions and data.
[0095] FIG. 21B illustrates an example of a controller 2105A according to an exemplary embodiment. According to an exemplary embodiment, the controller 2105A illustrated in FIG. 21B is an exemplary implementation of the controller 2105 shown in FIG. 21A. The controller 2105A may be or include a microprocessor. Additionally, as shown in FIG. 21B, the controller 2105A may provide general purpose input / output (GPIO), inter-integrated circuit communication (ICCI), and other functions. 2 C) interface, an input / output interface such as a Real Peripheral Interface (SPI) interface, a multi-channel analog-to-digital converter (ADC), and a clock input terminal. However, exemplary embodiments should not be limited to this example. For example, the controller 2105A may further include a digital-to-analog converter and an arithmetic circuit or circuits.
[0096] 21A , the controller 2105 is in communication with a power source 2110, actuator controls 2115, a pod electrical / data interface 2120, a device sensor 2125, an input / output (I / O) interface 2130, a vapor indicator 2135, on-product controls 2150, and at least one antenna 2140. According to at least some exemplary embodiments, the on-product controls 2150 may include any device or devices capable of being manually operated by an adult e-vaping device user to indicate a value selection. Exemplary implementations include, but are not limited to, one or more buttons, dials, capacitance sensors, and sliders.
[0097] The controller 2105 communicates with a cryptographic co-processor with non-volatile memory (CC-NVM) or non-volatile memory (NVM) within the pod assembly 300 through the pod electrical / data interface 2120. The term CC-NVM may refer to one or more hardware modules including a processor and NVM for cryptographic and related processing. More specifically, the controller 2105 may utilize cryptography to authenticate the pod assembly 300. As described, the controller 2105 communicates with the CC-NVM package or NVM to authenticate the pod assembly 300. More specifically, the non-volatile memory may be coded with product and other information during manufacturing for authentication.
[0098] The memory device may be coded with an electronic identification to enable at least one of authentication of the pod assembly 300 and pairing of operational parameters specific to the type (or physical configuration, such as a heating engine type) of the pod assembly 300 when the pod assembly 300 is inserted into the device body 100. In addition to authentication based on the electronic identification of the pod assembly 300, the controller 2105 may authorize use of the pod assembly 300 based on an expiration date of the stored nicotine pre-vapor formulation coded in the non-volatile memory of the NVM or CC-NVM. If the controller determines that the expiration date coded in the non-volatile memory has passed, the controller may not authorize use of the pod assembly 300 and disable the nicotine e-vapor device 500.
[0099] The controller 2105 (or storage medium 2145) stores key material and proprietary algorithm software for encryption. For example, encryption algorithms rely on the use of random numbers. The security of these algorithms depends on how truly random these numbers are. These numbers are typically pre-generated and coded into a processor or memory device. Exemplary embodiments may increase the randomness of the numbers used for encryption by using vapor withdrawal parameters, such as the duration of an instance of a vapor withdrawal, the time interval between instances of a vapor withdrawal, or a combination thereof, to generate numbers that are more random and more variable between individuals than pre-generated random numbers. All communications between the controller 2105 and the pod assembly 300 may be encrypted.
[0100] Additionally, the pod assembly 300 can be used as a general payload carrier for other information, such as software patches for the nicotine e-vaping device 500. Because encryption is used in all communications between the pod assembly 300 and the controller 2105, such information is more secure and the nicotine e-vaping device 500 is less susceptible to malware or viruses being installed. Using the CC-NVM as an information carrier for data and software updates, etc., allows the nicotine e-vaping device 500 to be updated with software without connecting to the Internet, and allows adult e-vaping device users to go through a download process, as with most other general electronic devices that require periodic software updates.
[0101] The controller 2105 may also include a cryptographic accelerator that allows resources of the controller 2105 to perform functions other than encoding and decoding involved in authentication. The controller 2105 may also include other security features, such as preventing unauthorized use of the communication channel and preventing unauthorized access to data if the pod or adult e-vaping device user is not authenticated.
[0102] In addition to the encryption accelerator, the controller 2105 may include other hardware accelerators. For example, the controller 2105 may include a floating-point unit (FPU), a separate DSP core, a digital filter, and a fast Fourier transform (FFT) module.
[0103] The controller 2105 is configured to run a real-time operating system (RTOS) and control the device system 2100, which can be updated via communication with the NVM or CC-NVM or when the device system 2100 is connected to another device (e.g., a smartphone) via at least one of the I / O interface 2130 and the antenna 2140. The I / O interface 2130 and the antenna 2140 enable the device system 2100 to connect to various external devices, such as smartphones, tablets, and PCs. For example, the I / O interface 2130 can include a micro-USB connector. The micro-USB connector can be used by the device system 2100 to charge the power supply 2110b.
[0104] The controller 2105 may include on-board RAM and flash memory for storing and executing code, including analysis, diagnostics, and software upgrades. Alternatively, the storage medium 2145 may store the code. Furthermore, in another exemplary embodiment, the storage medium 2145 may be mounted on the controller 2105.
[0105] The controller 2105 may further include an on-board clock, reset and power management module to reduce the area covered by the PCB of the device body 100.
[0106] The device sensors 2125 may include a number of sensor transducers that provide measurement information to the controller 2105. The device sensors 2125 may include a power supply temperature sensor, an external pod temperature sensor, a current sensor for the heater, a power supply current sensor, an airflow sensor, and an accelerometer for monitoring movement and orientation. The power supply temperature sensor and the external pod temperature sensor may be thermistors or thermocouples, and the current sensor for the heater and the power supply current sensor may be resistance-based sensors or another type of sensor configured to measure current. The airflow sensor may be a microelectromechanical system (MEMS) flow sensor or another type of sensor configured to measure airflow, such as a hot wire anemometer. Furthermore, as described in more detail below with reference to FIGS. 22A-26 , instead of or in addition to measuring airflow using a flow sensor included in the device sensor 2125 of the device system 2100 of the device body 100, airflow may be measured using a hot wire anemometer 2220A located within the pod system 2200 of the pod assembly 300.
[0107] Data generated from one or more device sensors 2125 may be sampled at a sample rate appropriate for the parameter being measured using a separate multi-channel analog-to-digital converter (ADC).
[0108] The controller 2105 may adapt heater profiles and other profiles for the nicotine pre-vapor formulation based on the measurement information received from the controller 2105. For convenience, these are commonly referred to as vaping profiles or vapor profiles. The heater profile identifies the power profile provided to the heater during the few seconds that vapor evacuation occurs. For example, the heater profile may deliver full power to the heater when an instance of vapor evacuation begins, but then immediately reduce the power by half or a quarter a second or so later. According to at least some exemplary embodiments, modulation of the power provided to the heater may be performed using pulse width modulation.
[0109] Additionally, the heater profile may be altered based on the negative pressure applied to the nicotine e-vaping device 500. The use of a MEMS flow sensor allows the vapor draw intensity to be measured and used as feedback to the controller 2105 to adjust the power delivered to the heater of the pod, which may be referred to as heat delivery or energy delivery.
[0110] According to at least some exemplary embodiments, if the controller 2105 recognizes that a pod is currently installed (e.g., via the SKU), the controller 2105 matches the associated heating profile designed for that particular pod. The controller 2105 and storage medium 2145 store data and algorithms that enable the generation of heating profiles for all SKUs. In another exemplary embodiment, the controller 2105 may read the heating profile from the pod. Adult e-vaping device users may also adjust the heating profile to suit their preferences.
[0111] 21A, the controller 2105 transmits data to and receives data from the power source 2110. The power source 2110 includes a power source 2110b and a power controller 2110a to manage the power output by the power source 2110b.
[0112] The power source 2110b may be a lithium-ion battery or one of its variants, such as a lithium-ion polymer battery. Alternatively, the power source 2110b may be a nickel-metal hydride battery, a nickel-cadmium battery, a lithium-manganese battery, a lithium-cobalt battery, or a fuel cell. Alternatively, the power source 2110b may be rechargeable and may include circuitry that allows the battery to be charged by an external charging device. In this case, the circuitry, when charged, provides power for a desired (or alternatively, predetermined) number of instances of vapor withdrawal, after which the circuitry must be reconnected to the external charging device.
[0113] The power controller 2110a provides commands to the power source 2110b based on instructions from the controller 2105. For example, the power source 2110 may receive a command from the controller 2105 to provide power to the pod (through the pod's electrical / data interface 2120) when the pod is authenticated and the adult e-vaping device user activates the device system 2100 (e.g., by activating a switch such as a toggle button, capacitance sensor, IR sensor, etc.). If the pod is not authenticated, the controller 2105 may either not send a command to the power source 2110 or send an instruction to the power source 2110 not to provide power. In another exemplary embodiment, the controller 2105 may disable all operation of the device system 2100 if the pod is not authenticated.
[0114] In addition to supplying power to the pod, the power supply 2110 also supplies power to the controller 2105. Additionally, the power controller 2110a may provide feedback to the controller 2105 indicative of the performance of the power supply 2110b.
[0115] The controller 2105 transmits data to and receives data from at least one antenna 2140. The at least one antenna 2140 may include at least one of a Near Field Communication (NFC) modem, a Bluetooth Low Energy (LE) modem, and other modems for other wireless technologies (e.g., Wi-Fi). In an exemplary embodiment, the communication stack resides within the modem, but the modem is controlled by the controller 2105. The Bluetooth LE modem is used for data and control communication with an application on an external device (e.g., a smartphone, etc.). The NFC modem may be used to pair the nicotine e-vaping device 500 to an application and obtain diagnostic information. Additionally, the Bluetooth LE modem may be used to provide location information (for adult e-vaping device users to locate the nicotine e-vaping device 500) or authentication during purchase.
[0116] As described above, the device system 2100 can generate and adjust various profiles for vaping. The controller 2105 uses the power supply 2110 and actuator control 2115 to adjust the profile for an adult e-vaping device user.
[0117] The actuator control 2115 includes passive and active actuators for adjusting the desired vapor profile. For example, the device body 100 may include an inlet channel in the mouthpiece. The actuator control 2115 may control the inlet channel based on commands from the controller 2105 associated with the desired vapor profile.
[0118] Additionally, the actuator control 2115 is used in conjunction with the power supply 2110 to energize the heater. More specifically, the actuator control 2115 is configured to generate a drive waveform associated with a desired vaping profile. As described above, each possible profile is associated with a drive waveform. Upon receiving a command from the controller 2105 indicating the desired vaping profile, the actuator control 2115 can generate an associated modulation waveform for the power supply 2110.
[0119] The controller 2105 provides information to the vapor indicator 2135 to indicate the status and actions occurring to the adult e-vaping device user. The vapor indicator 2135 includes a power indicator (e.g., an LED) that can be activated when the controller 2105 senses a button being pressed by the adult e-vaping device user. The vapor indicator 2135 can also include a vibrator, a speaker, an indicator for the current state of a vaping parameter (e.g., nicotine vapor amount) controlled by the adult e-vaping device user, and other feedback mechanisms.
[0120] Once the pod assembly 300 is authenticated, the controller 2105 operates the power supply 2110, actuator control 2115, vapor indicator 2135, and antenna 2140 according to information stored by the NVM or CC-NVM on the pod and the adult e-vapor device user using the nicotine e-vapor device 500. Additionally, the controller 2105 may include a logging function and can implement algorithms to calibrate the nicotine e-vapor device 500. The logging function is executed by the controller 2105 to record usage data as well as unexpected events or faults. The recorded usage data can be used for diagnostics and analysis. The controller 2105 can calibrate the nicotine e-vapor device 500 using information stored in the CC-NVM or NVM, including buttonless vaping (i.e., vaping without pressing a button, such as generating a nicotine vapor when negative pressure is applied to the mouthpiece), adult e-vapor device user configuration, and vapor withdrawal detection, nicotine pre-vapor formulation level, and nicotine pre-vapor formulation composition. For example, the controller 2105 may instruct the power source 2110 to power a heater in the pod based on a vaping profile associated with the nicotine pre-vapor formulation composition in the pod. Alternatively, the vaping profile may be coded into the CC-NVM or NVM and utilized by the controller 2105.
[0121] 22A illustrates a pod system diagram according to an exemplary embodiment. The pod system 2200 may be a system within the pod assembly 300.
[0122] 22A , the pod system 2200 includes a CC-NVM 2205, a main body electrical / data interface 2210, a heater 2215, and a pod sensor 2220. The pod system 2200 communicates with the device system 2100 through the main body electrical / data interface 2210 and the pod electrical / data interface 2120. The CC-NVM 2205 includes a cryptographic coprocessor 2205 a and a non-volatile memory 2205 b. The controller 2105 can access information stored in the non-volatile memory 2205 b for authentication purposes and operate the pod assembly 300 by communicating with the cryptographic coprocessor 2205 a.
[0123] In another exemplary embodiment, the pod assembly 300 may not have a cryptographic coprocessor. For example, Figure 22B illustrates an example of the pod system of Figure 22A in which the cryptographic coprocessor 2205a is omitted, and Figure 23 illustrates an example of the pod system 22B connected to the device system of Figure 21A, in accordance with an exemplary embodiment.
[0124] 22B, the pod system 2200 may include a non-volatile memory 2205b instead of the CC-NVM 2205, and the cryptographic co-processor 2205a is omitted. If the cryptographic co-processor is not present in the pod system 2200, the controller 2105 may read data from the non-volatile memory 2205b without using the cryptographic co-processor to control / define the heating profile.
[0125] The non-volatile memory 2205b may be coded with an electronic identification to allow at least one of authentication of the pod and pairing of operating parameters specific to the type of pod when the pod assembly is inserted into the through-hole in the device body 100. In addition to authentication based on the pod's electronic identification, the controller 2105 may authorize use of the pod based on an expiration date of the stored nicotine pre-vapor formulation coded in the non-volatile memory 2205b. If the controller determines that the expiration date coded in the non-volatile memory 2205b has passed, the controller may not authorize use of the pod and disable the nicotine e-vapor device 500.
[0126] Additionally, the non-volatile memory 2205b may store information such as the stock keeping unit (SKU) of the nicotine pre-vapor formulation (including the nicotine pre-vapor formulation composition) in the nicotine pre-vapor formulation compartment, software patches for the device system 2100, product usage information such as vapor withdrawal instance count, vapor withdrawal instance duration, and nicotine pre-vapor formulation level. The non-volatile memory 2205b may store operating parameters specific to the pod type and nicotine pre-vapor formulation composition. For example, the non-volatile memory 2205b may store the electrical and mechanical design of the pod for use by the controller 2105 to determine commands corresponding to the desired vaping profile.
[0127] The level of the nicotine pre-vapor formulation in the pod may be determined, for example, in one of two ways: In one exemplary embodiment, one of the pod sensors 2220 directly measures the level of the nicotine pre-vapor formulation in the pod.
[0128] In another exemplary embodiment, the non-volatile memory 2205b stores a count of instances of vapor withdrawal from the pod, and the controller 2105 uses the count of instances of vapor withdrawal as a proxy for the amount of vaporized nicotine pre-vapor formulation.
[0129] At least one of the controller 2105 and the storage medium 2145 may store nicotine pre-vapor formulation calibration data that identifies an operating point for the nicotine pre-vapor formulation composition. The nicotine pre-vapor formulation calibration data may include data describing how the nicotine pre-vapor formulation flow rate changes with remaining nicotine pre-vapor formulation level or how volatility changes with the life of the nicotine pre-vapor formulation and may be used for calibration by the controller 2105. The nicotine pre-vapor formulation calibration data may be stored in tabular form by at least one of the controller 2105 and the storage medium 2145. The nicotine pre-vapor formulation calibration data enables the controller 2105 to equate a vapor draw instance count to the amount of nicotine pre-vapor formulation vaporized.
[0130] The controller 2105 writes the nicotine pre-vapor formulation level and vapor withdrawal instance count back into the non-volatile memory 2205b in the pod so that if the pod is removed from the device body 100 and then re-attached, the pod's exact nicotine pre-vapor formulation level may still be known to the controller 2105.
[0131] The operating parameters (e.g., power source, power duration, air channel control) are referred to as a vaping profile. Additionally, the non-volatile memory 2205b may record information communicated by the controller 2105. The non-volatile memory 2205b may retain the recorded information even when the device body 100 is disconnected from the pod.
[0132] In an exemplary embodiment, the non-volatile memory 2205b may be a programmable read-only memory.
[0133] The heater 2215 is actuated by the controller 2105 and transfers heat to at least a portion of the nicotine pre-vapor formulation within the pod assembly 300 according to, for example, a commanded profile (volume, temperature (based on power profile) and flavor) from the controller 2105.
[0134] The heater 2215 may be, for example, a planar body, a ceramic body, a single wire, a cage of resistance wire, a coil of wire surrounding a core, a mesh, or any other suitable form. Examples of suitable electrically resistive materials include titanium, zirconium, tantalum, and metals from the platinum group. Examples of suitable alloys include stainless steel, nickel-, cobalt-, chromium-, aluminum-, titanium-, zirconium-, hafnium-, niobium-, molybdenum-, tantalum-, tungsten-, tin-, gallium-, manganese-, and iron-containing alloys, as well as nickel-, iron-, cobalt-, and stainless steel-based superalloys. For example, the heater may be formed of nickel aluminide, a material with an alumina layer on its surface, iron aluminide, and other composite materials, and the electrically resistive material may optionally be embedded in, encapsulated in, or coated with an insulating material, or vice versa, depending on the required energy transfer kinetics and external physicochemical properties. In one embodiment, heater 2215 comprises at least one material selected from the group consisting of stainless steel, copper, copper alloy, nickel-chromium alloy, superalloy, and combinations thereof. In one embodiment, heater 2215 is formed of a nickel-chromium alloy or an iron-chromium alloy. In one embodiment, heater 2215 can be a ceramic heater having an electrically resistive layer on its outer surface.
[0135] In another embodiment, the heater 2215 may be constructed of an iron aluminide (e.g., FeAl or FeAl), such as that described in U.S. Pat. No. 5,595,706 (Sikka et al.), filed Dec. 29, 1994, assigned to the assignee of the present invention, which is incorporated herein by reference in its entirety.
[0136] The heater 2215 may determine the amount of nicotine pre-vapor formulation to heat based on feedback from a pod sensor or the controller 2105. The flow of the nicotine pre-vapor formulation may be regulated by microcapillary or capillary action. Additionally, the controller 2105 may send commands to the heater 2215 to adjust the air intake to the heater 2215.
[0137] Data generated from the pod sensors 2220 may be sampled at a sample rate appropriate for the parameter being measured using a separate multi-channel analog-to-digital converter (ADC). The pod sensors 2220 may include, for example, a heater temperature sensor, a nicotine pre-vapor formulation flow monitor, an airflow sensor, and a puff detector. According to at least one exemplary embodiment, the heater temperature sensor may be a thermistor or thermocouple, and nicotine pre-vapor formulation flow sensing may be performed by the pod system 2200 using electrostatic interference or a nicotine pre-vapor formulation internal rotation device.
[0138] The pod sensor 2220 may also include a hot wire anemometer (HWA) 2220A. The HWA 2220A provides airflow sensing functionality and may also be referred to herein as a flow sensor 2220A. Additionally, as described in more detail below in FIGS. 24A-27 , according to at least some exemplary embodiments, the hot wire anemometer (HWA) 2220A may use a single heating element in conjunction with a dual control loop architecture to facilitate any or all of: (i) airflow sensing, (ii) puff detection, and (iii) ambient temperature tracking. For example, in at least some conventional systems including an HWA, the HWA is intended to measure continuous flow, and therefore two or more sensing elements are used: one to measure ambient temperature and another to measure heat transfer rate from some heating element. As a result, using a single heating element to perform airflow sensing and ambient temperature tracking may advantageously reduce the complexity of the hardware (e.g., circuitry) required to perform both airflow sensing and ambient temperature tracking. Additionally, the ability to track the ambient temperature of the HWA2220A is also useful, as it allows the influence of nearby heating engines to be taken into account when estimating the temperature of the HWA2220A's heating element.
[0139] As used herein, the term "ambient temperature" when used with respect to an HWA or flow sensor may refer to the temperature of the air in the immediate vicinity of the HWA or flow sensor. For example, when at least the heating element of the HWA (or flow sensor) 2220A is internal to the pod assembly 300, the ambient temperature of the HWA (or flow sensor) 2220A may refer to the temperature of the air within the pod assembly 300 surrounding the heating element of the HWA (or flow sensor 2220A). According to at least some exemplary embodiments, when the temperature of the air within the pod assembly 300 is substantially uniform (e.g., when nicotine vapor is not currently being drawn through the outlet of the nicotine e-vaping device 500 or when the heater 2215 is not currently activated), references herein to the "ambient temperature" of the HWA (or flow sensor) 2220A may generally refer to the temperature of the air within the pod assembly 300.
[0140] As described in more detail below with reference to FIGS. 24A-26, the HWA 2220A includes a heating element that heats as a result of applying power to the heating element. Furthermore, the temperature of the heating element affects the resistance (Ω) of the heating element. As a result, the voltage across the heating element can be used to estimate the temperature of the heating element. Furthermore, in the presence of flowing air, heat is carried away from the heating element of the HWA 2220A by the flowing air; therefore, the power level required to cause the heating element of the HWA 2220A to maintain a particular temperature can be used to estimate the airflow rate of the air flowing around the heating element of the HWA 2220A. As used herein, air flowing through the space immediately adjacent the heating element of the HWA (or flow sensor) 2220A may simply be referred to as air flowing around the HWA (or flow sensor) 2220A or air flowing around the heating element of the HWA (or flow sensor) 2220A. Examples of heating elements of the HWA 2220A are described in more detail below with reference to FIGS. 24A-24D.
[0141] According to at least some exemplary embodiments, HWA 2220A may be (or may be included within) sensor 364 of FIG. 19. Consequently, as described above with reference to sensor 364 and FIGS. 19 and 20, HWA 2220A may be located within merged path 330c. Furthermore, as described above with reference to FIGS. 19 and 20, merged path 330c is part of the flow path of air that is drawn into pod assembly 300 through pod inlet 322 and exits module outlet 368 at the top (FIG. 17) where heater 336 is located. Thus, according to at least some exemplary embodiments, the air that flows around HWA 2220A is the air that flows from pod inlet 322 to module outlet 368 via merged path 330c (e.g., during a puff).
[0142] 24A-24D illustrate exemplary implementations of the heating element included in the HWA 2220A. Referring to FIG. 24A, the heating element of the HWA 2220A can be implemented by a first etched serpentine element 2402A or a second etched serpentine element 2402B. As shown in FIG. 24A, the first etched serpentine element 2402A includes a first serpentine wire 2408A suspended between a first support 2404A and a second support 2406A, and the second etched serpentine element 2402B includes a second serpentine wire 2408B suspended between a third support 2404B and a fourth support 2406B. Referring to FIG. 24B, the heating element of the HWA 2220A can be implemented by a single-wire element 2402C. As shown in FIG. 24B, the single wire element includes a single wire 2408C suspended vertically between fifth support 2404C and sixth support 2406C. With reference to FIG. 24C, the heating element of HWA2220A may be implemented by a wire winding element 2410. For example, wire winding element 2410 may be a Coilcraft wire wound surface mount (SMT) inductor. With reference to FIG. 24D, the heating element of HWA2220A may be implemented by a thin film resistance temperature detector (RTD) 2412. Dual control loop architectures according to at least some example embodiments are described below with reference to FIGS. 25A-25D and 26.
[0143] FIG. 25A is a diagram of an inner PID control loop 2500, FIGS. 25B-25D illustrate first to third exemplary waveforms 2526-1 to 2526-3 of the pulse width modulated (PWM) drive signal 2526 of FIG. 25A, and FIG. 26 is a diagram of an outer PID control loop 2600.
[0144] As shown in FIG. 25A , the internal PID control loop 2500 calculates an internal error Error_I based on the difference between the internal setpoint SP_I and the internal process variable PV_I output from the internal process 2520. For example, the controller 2105 or a controller included in the pod system 2200 of the pod assembly 300 may determine the difference between the internal setpoint SP_I and the internal process variable PV_I by performing a summation operation 2518. In the example shown in FIG. 25A , the summation operation 2518 includes calculating the sum of the inverted (i.e., negative (−)) versions of the internal setpoint SP_I and the internal process variable PV_I as the internal error Error_I. Based on the internal error Error_I, the internal PID controller 2510 applies a correction to the internal control variable CV_I, which is then applied as an input to the internal process 2520 such that the internal error Error_I is reduced or minimized. The internal PID controller 2510 is configured to generate the control variable CV_I by using the internal error Error_I to determine the proportional (P), integral (I), and derivative (D) terms according to known methods. According to at least some example embodiments, the internal PID controller 2510 may be embodied by the controller 2105 in the machine system 2100 of the machine body 100 or as a separate controller in the pod system 2200 of the pod assembly 300. The internal process 2520 is described in more detail below.
[0145] 25A , internal process 2520 is a process for driving flow sensor 2220A. According to at least some exemplary embodiments, internal process 2520 includes a drive signal generation function 2522, a flow sensor 2220A, and a voltage-to-temperature conversion function 2524. According to at least some exemplary embodiments, drive signal generation function 2522 and voltage-to-temperature conversion function 2524 may be embodied by a controller. For example, the operations described herein as being performed by drive signal generation function 2522 or voltage-to-temperature conversion function 2524 may be performed or controlled by controller 2105. As another example, the operations described herein as being performed by drive signal generation function 2522 or voltage-to-temperature conversion function 2524 may be performed or controlled by a separate controller included in pod system 2200 of pod assembly 300.
[0146] The flow sensor 2220A is driven by a pulse-width modulated (PWM) drive signal 2526 generated by a drive signal generation function 2522. According to at least some exemplary embodiments, the drive signal generation function 2522 generates the PWM drive signal 2526 and applies the PWM drive signal 2526 to the flow sensor 2220A by controlling the power supply 2110 to generate and apply the PWM drive signal 2526 to the flow sensor 2220A (e.g., via the pod's electrical / data interface 2120). Application of the PWM drive signal 2526 to the flow sensor 2220A causes a heating element of the flow sensor 2220A to accumulate heat, thus increasing the temperature of the heating element. For example, FIGS. 25B-25D show first exemplary waveforms 2526-1 through third exemplary waveforms 2526-3 of the PWM drive signal 2526. First exemplary waveform 2526-1 through third exemplary waveform 2526-3 illustrate how the magnitude of the current of PWM drive signal 2526 varies over time. In the examples shown in FIGS. 25B through 25D, the vertical axis of first exemplary waveform 2526-1 through third exemplary waveform 2526-3 indicates the magnitude of the current of PWM drive signal 2526, which may be expressed in amperes (A) or milliamperes (mA), for example. In the examples shown in FIGS. 25B through 25D, the horizontal axis of first exemplary waveform 2526-1 through third exemplary waveform 2526-3 indicates time, which may be expressed in seconds (s) or milliseconds (ms), for example. As illustrated in FIGS. 25B through 25D, according to at least some exemplary embodiments, PWM drive signal 2526 is a periodic signal that oscillates between a high value (H) and a low value (L). In the example shown in FIGS. 25B-25D, first through third exemplary waveforms 2526-1 through 2526-3 share the same period, common period 2540, while first through third exemplary waveforms 2526-1 through 2526-3 have different first through third duty cycles 2550-1 through 2550-3, respectively.
[0147] 25A , the drive signal setpoint 2514 controls the level of power applied to the heating element of the flow sensor 2220A (and therefore the amount of heat generated by the heating element) by controlling the duty cycle of the PWM drive signal 2526 generated by the drive signal generation function 2522. For example, according to at least some exemplary embodiments, the drive signal generation function 2522 generates the PWM drive signal 2526 such that the duty cycle of the PWM drive signal 2526 increases as the drive signal setpoint 2514 output from the internal PID controller 2510 to the drive signal generation function 2522 increases, and the duty cycle of the PWM drive signal 2526 decreases as the drive signal setpoint 2514 output from the internal PID controller 2510 to the drive signal generation function 2522 decreases.
[0148] For example, according to at least some exemplary embodiments, the internal PID controller 2510 may generate the drive signal set point 2514 to be within the upper and lower limits, and the drive signal generation function 2522 may generate the PWM drive signal 2526 such that the duty cycle of the PWM drive signal 2526 is proportional to the drive signal set point 2514. For example, as illustrated in Figures 25B-25D, the first duty cycle 2550-1 of the first exemplary waveform 2526-1 of Figure 25B corresponds to approximately 50 percent of the common period 2540, the second duty cycle 2550-2 of the second exemplary waveform 2526-2 of Figure 25C corresponds to approximately 25 percent of the common period 2540, and the third duty cycle 2550-3 of the third exemplary waveform 2526-3 of Figure 25C corresponds to approximately 75 percent of the common period 2540. Thus, the upper and lower limits of the drive signal setpoint 2514 are 10.0 and 0.0, respectively, and the drive signal generation function 2522 may generate a first duty cycle 2550-1 of the first exemplary waveform 2526-1 of FIG. 25B in response to the drive signal setpoint 2514 being 5.0, generate a second duty cycle 2550-2 of the second exemplary waveform 2526-2 of FIG. 25C in response to the drive signal setpoint 2514 being 2.5, and generate a third duty cycle 2550-3 of the third exemplary waveform 2526-3 of FIG. 25C in response to the drive signal setpoint 2514 being 7.5. Although 10.0 and 0.0 are provided as examples of the upper and lower limits of the drive signal setpoint 2514, respectively, the upper and lower limits of the drive signal setpoint 2514 are not limited to the values 10.0 and 0.0 and may be set to any values.
[0149] Referring to FIG. 25A , when the PWM drive signal 2526 is at a high level, a flow sensor voltage 2528, which is the voltage of the flow sensor 2220A, may be measured. For example, FIGS. 25B-25D each show a sample 2530. According to at least some exemplary embodiments, the samples 2530 each show exemplary timing for sampling the flow sensor voltage 2528. According to at least some exemplary embodiments, the sampling of the flow sensor voltage 2528 may be performed or controlled by the controller 2105 or a controller included in the pod system 2200 of the pod assembly 300. According to at least some exemplary embodiments, as shown in FIGS. 25B-25D , the samples 2530 may occur periodically while the PWM drive signal 2526 is at a high (H) level, and the samples 2530 may not occur while the PWM drive signal 2526 is at a low (L) level. According to at least some example embodiments, the current of the PWM drive signal 2526 when high (H) is known, and the relationship between the temperature and resistance of the heating element of the flow sensor 2220A is also known. Thus, according to known methods (e.g., utilizing Ohm's Law), a voltage-to-temperature conversion function 2524 converts the flow sensor voltage 2528 to the flow sensor temperature 2516.
[0150] Thus, the process controlled by the inner PID control loop 2500 is the inner process 2520, the internal setpoint SP_I is the temperature setpoint 2512, the internal control variable CV_I is the drive signal setpoint 2514, and the internal process variable PV_I is the flow sensor temperature 2516.
[0151] 25A operates to continuously correct the drive signal setpoint 2514 (thereby varying the duty cycle of the PWM drive signal 2526, and therefore the amount of heat generated by the heating element of the flow sensor 2220A) to reduce or minimize the difference between the flow sensor temperature 2516 and the temperature setpoint 2512. As the flow rate of air passing through or across the heating element of the flow sensor 2220A increases, the rate at which heat is extracted from the heating element by the flowing air increases. As the rate at which heat is extracted from the heating element by the flowing air increases, the level of power that must be applied to the heating element also increases in order to maintain the temperature of the heating element at the temperature setpoint 2512. As a result, by measuring or estimating the level of power applied to the heating element of the flow sensor 2220A, the nicotine e-vaporizing device 500 (e.g., the controller 2105 and / or the controller of the pod system 2200) can measure or estimate the flow rate of air passing around the heating element of the flow sensor 2220A, thereby measuring or estimating the flow rate of air passing through at least one of the nicotine e-vaporizing device 500 and the pod assembly 300.
[0152] However, the performance of the flow sensor 2220A may be adversely affected if the ambient temperature of the flow sensor 2220A changes while the temperature setpoint 2512 remains fixed. For example, in a scenario where the ambient temperature of the flow sensor 2220A increases, the temperature of the heating element of the flow sensor 2220A may also increase due to, for example, the heating element receiving heat from the air in its immediate vicinity. As the temperature of the heating element increases, the resistance (Ω) of the heating element also increases. Therefore, the values of both the flow sensor voltage 2528 measured from the flow sensor 2220A and the flow sensor temperature 2516 generated by the voltage-to-temperature transfer function 2524 also increase. Further, for example, if the flow sensor temperature 2516 exceeds the temperature setpoint 2512, the resulting value of the internal error Error_I will cause the internal PID controller 2510 to attempt to lower the flow sensor temperature 2516 by reducing the level of power applied to the heating element of the flow sensor 2220A (i.e., by reducing the drive signal setpoint 2514, which reduces the duty cycle of the PWM drive signal 2556). Thus, if the internal error Error_I is large enough that the internal PID controller 2510 attempts to reduce the power level applied to the heating element below the level necessary for the flow sensor 2220A to function reliably, the flow sensor 2220A may become unresponsive due to lack of power and therefore cease to perform its flow sensing function. For example, if the internal PID controller 2510 reduces the drive signal set point 2514 to a point where the duty cycle of the resulting PWM drive signal 2556 is too low to provide a sufficient amount of power to the flow sensor 2220A, the flow sensor 2220A may become unresponsive due to the lack of power and therefore cease to perform its flow sensing function.
[0153] As a result, to avoid the above-mentioned scenario in which the flow sensor 2220A fails to function properly, it may be beneficial to vary the temperature setpoint 2512 of the inner PID control loop 2500 in Figure 25A according to changes in the ambient temperature of the flow sensor 2220A. One solution is to employ a separate temperature sensor dedicated to detecting the ambient temperature of the flow sensor 2220A.
[0154] However, according to at least some example embodiments, a dual control loop architecture including the outer PID control loop 2600 of Figure 26 in conjunction with the inner PID control loop 2500 of Figure 25A described above has the ability to track changes in the ambient temperature of the flow sensor 2220A and adjust the temperature set point 2512 accordingly. The outer PID control loop 2600 of Figure 26 is described in more detail below.
[0155] 26, the outer PID control loop 2600 calculates an external error Error_O based on the difference between the external setpoint SP_O and an external process variable PV_O output from an external process 2620. For example, the controller 2105 or a controller included in the pod system 2200 of the pod assembly 300 may determine the difference between the external setpoint SP_O and the external process variable PV_O by performing a summation operation 2618. In the example shown in FIG. 26, the summation operation 2618 includes calculating the sum of an inverted (i.e., negative (−)) version of the internal setpoint SP_I and the external process variable PV_O as the external error Error_O. Based on the external error Error_O, the external PID controller 2610 applies a correction to the external control variable CV_O, which is then applied as an input to the external process 2620 such that the external error Error_O is reduced or minimized. 25A , the external PID controller 2610 is configured to generate the external control variable CV_O by using the external error Error_O and to determine the proportional (P), integral (I), and derivative (D) terms according to known methods. According to at least some example embodiments, the external PID controller 2610 may be embodied by the controller 2105 in the device system 2100 of the device body 100 or as a separate controller in the pod system 2200 of the pod assembly 300. According to at least some exemplary embodiments, the internal PID controller 2510 and the external PID controller 2610 may both be embodied by the controller 2105 in the device system 2100 of the device body 100, may both be embodied in the same single controller in the pod system 2200 of the pod assembly 300, or each may be embodied as separate controllers, for example, as two controllers in the pod system 2200 of the pod assembly 300.
[0156] 26, according to at least some example embodiments, the process controlled by outer PID control loop 2600, external process 2620, is inner PID control loop 2500 of FIG. 25A. For example, as shown in FIG. 26, the outer setpoint SP_O of outer PID control loop 2600 is drive signal setpoint setpoint 2612, the outer control variable CV_O of outer PID control loop 2600 is temperature setpoint 2512 of inner PID control loop 2500, and the external process variable PV_O of outer PID control loop 2600 is drive signal setpoint 2514 of inner PID control loop 2500.
[0157] As a result, the outer PID control loop 2600 of FIG. 26 operates to continuously correct the temperature setpoint 2512 input to the inner PID control loop 2500 to reduce or minimize the difference between the drive signal setpoint 2514 output by the inner PID control loop 2500 and the drive signal setpoint 2612. Furthermore, according to at least some exemplary embodiments, the outer PID control loop 2600 does not adjust the temperature setpoint 2512 input to the inner PID control loop 2500 during a puff. For example, as shown in FIG. 26 , the outer PID control loop 2600 may include a multiplexer 2650. According to at least some exemplary embodiments, the functionality of the multiplexer 2650 may be performed by the controller 2105 or a controller included in the pod system 2200 of the pod assembly 300. Further, as shown in FIG. 26, when the puff detection signal 2640 has a first logic value (e.g., high logic) indicating that a puff is occurring (i.e., indicating that nicotine vapor is currently being drawn through the outlet of the nicotine e-vaporizing device 500 or pod assembly 300, or that negative pressure is currently being applied to the outlet of the nicotine e-vaporizing device 500 or pod assembly 300), the current value of the temperature set point 2512 input to the multiplexer 2650 may be fixed as the value provided to the inner PID control loop 2500 until the puff detection signal 2640 transitions to a second logic value (e.g., low logic) indicating that a puff is not currently occurring (i.e., indicating that nicotine vapor is not currently being drawn through the outlet of the nicotine e-vaporizing device 500 or pod assembly 300, or that negative pressure is not currently being applied to the outlet of the nicotine e-vaporizing device 500 or pod assembly 300). When the puff detection signal 2640 transitions to a second logic value (e.g., a logic low) indicating that a puff is not currently occurring, the multiplexer 2650 simply outputs the temperature set point 2512 output by the outer PID controller 2610 as an input to the inner PID control loop 2500.Thus, the inner setpoint SP_I (i.e., temperature setpoint 2512) of the inner PID control loop 2500 has a fixed value while a puff is occurring and a variable value while no puff is occurring. The manner in which the temperature setpoint 2512 changes when no puff is occurring is described in more detail below. As described in more detail below with reference to FIG. 27, the puff detection signal 2640 may be generated by a puff detection signal generator. According to at least some example embodiments, the puff detection signal generator is a controller (e.g., controller 2105 or a controller in the pod system 2200 of the pod assembly 300).
[0158] As described above with reference to FIG. 25A , as the ambient temperature of the flow sensor 2220A increases, the drive signal set point 2514 may decrease. However, the external PID controller 2610 may prevent the drive signal set point 2514 from decreasing to the point where the flow sensor 2220A becomes unresponsive. For example, with reference to FIG. 26 , as the drive signal set point 2514 decreases relative to the drive signal set point 2612, the magnitude of the external error Error_O increases. In response, the external PID controller 2610 operates to reduce the external error Error_O, thereby increasing the drive signal set point 2514, by increasing the temperature set point 2512 in accordance with changes in the ambient temperature of the flow sensor 2220A. For example, the internal PID controller 2510 increases the drive signal setpoint 2514 in response to the increased temperature setpoint 2512 because additional power must be applied to the heating element of the flow sensor 2220A to raise the temperature of the heating element to the newly increased temperature setpoint 2512.
[0159] In addition to increasing the temperature set point 2512 in response to the ambient temperature of the flow sensor 2220A, as discussed in the example scenario above, the outer PID control loop 2600 may also decrease the temperature set point 2512 in response to a decrease in the ambient temperature of the flow sensor 2220A. For example, in a scenario where the ambient temperature of the flow sensor 2220A decreases, the temperature of the heating element of the flow sensor 2220A may also decrease due to, for example, the heating element losing heat to the air in the immediate vicinity of the heating element. As the temperature of the heating element decreases, the resistance of the heating element also decreases. Therefore, the values of both the flow sensor voltage 2528 measured from the flow sensor 2220A and the flow sensor temperature 2516 generated by the voltage-to-temperature transfer function 2524 also decrease. Further, for example, if the flow sensor temperature 2516 falls below the temperature setpoint 2512, the resulting value of the internal error Error_I will cause the internal PID controller 2510 to attempt to raise the flow sensor temperature 2516 by increasing the level of power applied to the heating element of the flow sensor 2220A (i.e., by increasing the drive signal setpoint 2514, which increases the duty cycle of the PWM drive signal 2556). Furthermore, as the drive signal setpoint 2514 increases relative to the drive signal setpoint 2612, the magnitude of the external error Error_O increases. In response, the external PID controller 2610 operates to reduce the magnitude of the external error Error_O, thereby lowering the drive signal setpoint 2514, by decreasing the temperature setpoint 2512 in accordance with changes in the ambient temperature of the flow sensor 2220A. For example, the internal PID controller 2510 decreases the drive signal set point 2514 in response to the decreased temperature set point 2512 because the level of power applied to the heating element of the flow sensor 2220A must be reduced to reduce the temperature of the heating element to the newly decreased temperature set point 2512.
[0160] According to at least some exemplary embodiments, the level of the drive signal setting value set point 2612 may be set according to the preference of a designer or manufacturer of at least one of the nicotine e-vaporizing device 500 and the pod assembly 300. According to at least some exemplary embodiments, the level of the drive signal setting value set point 2612 may be stored according to the preference of a designer or manufacturer of the nicotine e-vaporizing device 500 (e.g., in at least one of the device body 100 and the pod assembly 300). For example, according to at least some exemplary embodiments, the level of the drive signal setting value set point 2612 may be set according to a desired margin between the ambient temperature of the HWA 2220A and the temperature of the heating element of the HWA 2220A (i.e., when no puffs are occurring).
[0161] As a result, the outer PID control loop 2600 may advantageously use the flow sensor 2220A to control the temperature setpoint 2512 to change in response to changes in the ambient temperature of the flow sensor 2220A without having to implement a separate temperature sensor (e.g., within the pod assembly 300) to detect the ambient temperature of the flow sensor 2220A. An example of how an HWA operates according to at least some illustrative embodiments is described below with reference to FIG.
[0162] FIG. 27 is a flowchart illustrating a method of operation of an HWA in accordance with at least some example embodiments.
[0163] 27, in step S2710, the temperature of the heating element of the HWA is determined. For example, as described above with reference to FIG. 25A, a controller (e.g., controller 2105 or a controller included in pod system 2200 of pod assembly 300) may perform or control the operation of measuring flow sensor voltage 2528, and voltage-to-temperature conversion function 2424 may convert the measured flow sensor voltage 2528 to flow sensor temperature 2516, which represents the temperature of the heating element of HWA 2220A.
[0164] In step S2720, the level of power applied by the nicotine e-vaping device to the HWA is controlled based on the determined temperature of the heating element of the HWA and the temperature set point. For example, as described above with reference to FIG. 25A, the internal PID controller 2510 generates a drive signal set point 2514 (i.e., an internal control variable CV_I) based on the difference between the temperature set point 2512 (i.e., an internal set point SP_I) and the flow sensor temperature 2516 (i.e., an internal process variable PV_I). In turn, the drive signal set point 2514 controls the level of the power level applied to the heating element of the flow sensor 2220A, for example, by controlling the duty cycle of the PWM drive signal 2526.
[0165] At step S2730, a puff detection signal is generated. According to at least some exemplary embodiments, the puff detection signal 2640 may be generated by a controller (e.g., the controller 2105 or a controller included in the pod system 2200 of the pod assembly 300) by monitoring at least one of the drive signal setpoint 2514 and the slope of the drive signal setpoint 2514. For example, at step S730, while the puff detection signal 2640 has a value (e.g., a low logic value or 0) indicating that a puff is not currently occurring, the controller may change the value of the puff detection signal 2640 to a value (e.g., a high logic value or 1) indicating that a puff is currently occurring in response to at least one of determining that the current level (or average level over a sliding window of the level) of the drive signal setpoint 2514 exceeds a puff onset level threshold and determining that the current slope (or average slope over a sliding window of the slope) of the drive signal setpoint 2514 exceeds a puff onset slope threshold. Further, in step S730, while the puff detection signal has a value indicating that a puff is currently occurring (e.g., a high logical value or 1), the controller may change the value of the puff detection signal 2640 to a value indicating that a puff is not currently occurring (e.g., a low logical value or 0) in response to at least one of determining that the current level (or average level over a sliding window of level) of the drive signal set point 2514 has fallen below a puff end level threshold and determining that the current slope (or average slope over a sliding window of slope) of the drive signal set point 2514 has fallen below a puff end slope threshold.
[0166] At step S2740, a determination is made as to whether a puff is detected. For example, if the level of the puff detection signal 2640 generated at step S2730 indicates that no puff is detected (N), the method proceeds to step S2750.
[0167] At step S2750, a determination is made as to whether a change in the ambient temperature of the HWA is detected. For example, in the manner described above with respect to FIG. 26 , the external PID controller 2610 may determine that the ambient temperature of the HWA 2220A has changed based on detecting an increase in the magnitude of the external error Error_O. Furthermore, the indicator of the external error Error_O may indicate to the external PID controller 2610 the direction of the change in the ambient temperature of the HWA 2220A (e.g., increase or decrease). If no change in the ambient temperature of the HWA 2220A is detected at step S2750 (N), the method ends. If a change in the ambient temperature of the HWA 2220A is detected at step S2750 (Y), the method proceeds to step S2760.
[0168] In step S2760, the temperature set point is controlled such that the temperature set point changes in response to the detected change in the ambient temperature of the HWA. For example, as described above with respect to FIG. 26 , the external PID controller 2610 may respond to the change in the ambient temperature of the HWA 2220A detected in step S2750 by changing the value of the temperature set point 2512 according to the ambient temperature of the HWA 2220A. For example, the external PID controller 2610 may increase the temperature set point 2512 in response to detecting an increase in the ambient temperature of the HWA 2220A, and the external PID controller 2610 may decrease the temperature set point 2512 in response to detecting a decrease in the ambient temperature of the HWA 2220A. According to at least some example embodiments, after step S2760, the method ends.
[0169] Returning to step S2750, if the level of the puff detection signal 2640 generated in step S2730 indicates that a puff was detected (Y), the method proceeds to step S2770.
[0170] At step S2770, a low flow rate of air flowing around the HWA is determined based on the level of power applied to the HWA. For example, at step S2770, a controller (e.g., controller 2105 or a controller included in pod system 2200 of pod assembly 300) may determine the air flow rate of air flowing around the HWA based on the current drive signal setpoint 2514. Specifically, as described above, the heating element of HWA 2220A heats up as a result of applying power to the heating element via PWM drive signal 2526. Furthermore, the temperature of the heating element affects the resistance (Ω) of the heating element. As a result, the voltage of the heating element (e.g., flow sensor voltage 2528) may be used to estimate the temperature of the heating element (e.g., flow sensor temperature 2516). Furthermore, in the presence of flowing air, heat is carried away from the heating element of HWA2220A by the flowing air, and therefore, the power level required to cause the heating element of HWA2220A to maintain a particular temperature can be used to estimate the airflow rate of the air flowing around the heating element of HWA2220A. Furthermore, the level of power required to cause the heating element of HWA2220A to maintain a particular temperature may be determined or estimated based on the current drive signal set point 2514, thereby controlling the duty cycle of the PWM drive signal 2526 applied to HWA2220A, thereby controlling the current level of power applied to the heating element of HWA2220A. As a result, the controller 2105 or a controller included in the pod system 2200 may use the current drive signal set point 2514 to determine or estimate the airflow rate of the air flowing around the heating element of HWA2220A. Additionally, the airflow rate of air flowing around the heating element of the HWA2220A may be indicative of the airflow rate of air flowing through at least one of the pod assembly 300 and the nicotine e-vaping device 500. For example, as described above with reference to Figures 13 and 14, air enters the pod assembly 300 via the pod inlet 322 and exits the pod assembly via the pod outlet 304 during vaping.18-20, the sensor 364 may be or may include the HWA 2220A, and therefore the HWA 2220A may be located within the merging path 330c. Further, as described above with reference to Figures 18-20, the merging path 330c is part of the flow path of air that is drawn into the pod assembly 300 through the pod inlet 322, travels through the heating chamber (e.g., enters through the module outlet 368 and exits the vapor channel 316), and exits the pod assembly 300 via the pod outlet 304. As a result, according to at least some exemplary embodiments, the air flowing around the HWA2220A is the air flowing through the pod assembly 300 of the e-vaping device 500 via the pod inlet 322 and the pod outlet 304 (e.g., during a puff), and therefore the airflow rate of the air flowing around the heating element of the HWA2220A may be indicative of the airflow rate of the air flowing through at least one of the pod assembly 300 and the nicotine e-vaping device 500.
[0171] Thus, according to at least some exemplary embodiments, with a dual control loop architecture including the inner PID control loop 2500 of FIG. 25A and the outer PID control loop 2600 of FIG. 26, a single HWA (e.g., HWA2220A) may facilitate any or all of: (i) airflow sensing, (ii) puff detection, and (iii) ambient temperature tracking for the purpose of improving airflow sensing, without having to implement an additional temperature sensor to sense the ambient temperature of the HWA.
[0172] While a number of exemplary embodiments have been disclosed herein, it should be understood that other variations may be possible. Such variations are not to be considered a departure from the scope of the present disclosure, and all such modifications that would be obvious to one skilled in the art are intended to be included within the scope of the following claims.
Claims
1. 1. A method for controlling a hot wire anemometer (HWA) in a nicotine e-vaping device, said method comprising: controlling, by a first PID controller, a level of power applied by the nicotine e-vaping device to the HWA based on a temperature and a temperature set point of a heating element of the HWA; generating a puff detection signal to the nicotine e-vaporizing device indicating whether a puff is currently occurring; While the puff detection signal indicates to the nicotine e-vaping device that a puff is not currently occurring, detecting a change in the ambient temperature of the HWA with a second PID controller; controlling, with the second PID controller, the temperature setpoint such that the temperature setpoint changes in response to the detected change in the ambient temperature of the HWA.
2. controlling the level of power applied to the HWA by the nicotine e-vaporizing device; generating a drive signal set point by the first PID controller, 2. The method of claim 1, wherein the level of power applied by the nicotine e-vaping device to the HWA is based on the drive signal setting.
3. 3. The method of claim 2, further comprising determining a flow rate of air flowing around the HWA based on the drive signal setpoint while the puff detection signal indicates to the nicotine e-vaping device that a puff is currently occurring.
4. generating the puff detection signal, determining a slope of the drive signal setpoint; and generating the puff detection signal based on the determined slope of the drive signal set point.
5. generating a pulse width modulated (PWM) drive signal based on the drive signal setpoint; 5. The method of claim 2, 3, or 4, further comprising: applying the power to the HWA by applying the PWM drive signal to the HWA.
6. 6. The method of claim 5, wherein said generating said PWM drive signal comprises generating said PWM drive signal such that a duty cycle of said PWM is controlled based on said drive signal set point.
7. said generating said drive signal setpoints comprises: The method of any one of claims 2 to 6, comprising generating the drive signal set point by the first PID controller based on a difference between the temperature of the heating element of the HWA and the temperature set point.
8. The detecting of the change in the ambient temperature of the HWA comprises: The method of any one of claims 2 to 7, further comprising detecting a change in the ambient temperature of the HWA based on a difference between the drive signal setpoint and a drive signal setpoint by the second PID controller.
9. said controlling said temperature set point comprising: increasing the temperature set point by the second PID controller in response to detecting an increase in the ambient temperature of the HWA; and decreasing the temperature set point by the second PID controller in response to detecting a decrease in the ambient temperature of the HWA.
10. A nicotine e-vaping device, comprising: a nicotine prevapor formulation storage portion for storing a nicotine prevapor formulation; a heater configured to generate a nicotine vapor by heating the nicotine pre-vapor formulation; Hot wire anemometer (HWA) and a first PID controller configured to control a level of power applied by the nicotine e-vaping device to the HWA based on a temperature of a heating element of the HWA and a temperature set point; a puff detection signal generator configured to generate a puff detection signal to the nicotine e-vaping device indicating whether a puff is currently occurring; While the puff detection signal indicates to the nicotine e-vaping device that a puff is not currently occurring, a second PID controller for detecting a change in the ambient temperature of the HWA; a second PID controller configured to control the temperature set point such that the temperature set point changes in response to the detected change in the ambient temperature of the HWA.
11. 11. The nicotine e-vaporizing device of claim 10, wherein the first PID controller is configured to control the level of power applied by the nicotine e-vaporizing device to the HWA by generating a drive signal setpoint, and the level of power applied by the nicotine e-vaporizing device to the HWA is based on the drive signal setpoint.
12. 12. The nicotine e-vaporizing device of claim 11, wherein the second PID controller is further configured to determine a flow rate of air flowing around the HWA based on the drive signal setpoint, and the puff detection signal indicates to the nicotine e-vaporizing device that a puff is currently occurring.
13. The smoke detection signal generator determining a slope of the drive signal setpoint; 13. The nicotine e-vaping device of claim 11 or 12, configured to generate the puff detection signal based on the determined slope of the drive signal set point.
14. generating a pulse width modulated (PWM) drive signal based on the drive signal setting; 14. The nicotine e-vaping device of claim 11, 12 or 13, further comprising a drive signal generator configured to apply the power to the HWA by applying the PWM drive signal to the HWA.
15. 15. The nicotine e-vaping device of claim 14, wherein the drive signal generator is configured to control a duty cycle of the PWM drive signal based on the drive signal setpoint.
16. 16. The nicotine e-vaping device of any of claims 11 to 15, wherein the first PID controller is configured to generate the drive signal set point based on a difference between the temperature of the heating element of the HWA and the temperature set point.
17. 17. The nicotine e-vaping device of any of claims 11 to 16, wherein the second PID controller is configured to detect the change in the ambient temperature of the HWA based on a difference between the drive signal set point and a drive signal set point.
18. The second PID controller increasing the temperature set point in response to detecting an increase in the ambient temperature of the HWA; and in response to detecting a decrease in the ambient temperature of the HWA, decreasing the temperature set point.
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