Heating elements
The heating element with a secure wicking element configuration and capillary features addresses vaporizer inefficiencies, ensuring complete vaporization and reducing material waste by maintaining reservoir pressure and enhancing heating efficiency.
Patent Information
- Application Number
- JP2024223626
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-10-09
- Filing Date
- 2024-12-18
- Publication Date
- 2026-02-24
- Estimated Expiration
- 2039-10-15
AI Technical Summary
Vaporizers face inefficiencies in vaporizing vaporizable materials due to vacuum formation in the reservoir, leading to incomplete vaporization and waste of material, especially when using liquid vaporizable materials.
A heating element with a heating portion and legs configured to secure a wicking element, allowing efficient vaporization by contacting multiple surfaces and incorporating features like capillary structures to prevent material flow beyond the capillary feature, along with a heat shield for insulation and plating to enhance heating efficiency.
The solution ensures complete vaporization of vaporizable materials, reducing waste and improving vaporizer efficiency by maintaining consistent pressure in the reservoir and enhancing heating performance.
Smart Images

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Abstract
Description
[Technical Field]
[0001] Related Applications This application claims priority to U.S. Provisional Application No. 62 / 913,135, entitled "Heating Element," filed October 9, 2019; U.S. Provisional Application No. 62 / 745,589, entitled "Heating Element," filed October 15, 2018; U.S. Provisional Application No. 62 / 812,161, entitled "Cartridge for Vaporizer," filed February 28, 2019; and U.S. Provisional Application No. 62 / 747,099, entitled "Wick Supply Apparatus and Heating Element in Vaporizer," filed October 17, 2018, each of which is incorporated by reference in its entirety to the extent permitted by law.
[0002] Technical Field The invention described herein relates to a vaporizer including a heating element for the vaporizer. [Background technology]
[0003] Vaporizers, also known as vaporizers or electronic vaporizers, can be used to deliver an aerosol (or "vapor") containing one or more active ingredients through inhalation of the aerosol by a user of the vaporizer. For example, electronic nicotine delivery systems (ENDS) include a class of vaporizers that are battery-powered and can be used to mimic the smoking experience but do not burn tobacco or other substances.
[0004] During use of a vaporizer, a user inhales an aerosol, commonly referred to as a vapor, that is produced by a heating element that vaporizes (e.g., causes a liquid or solid to transition at least partially to the gas phase) the vaporizable material, which may be a liquid, solution, solid, wax, or any other form that may be compatible for use with a particular vaporizer. The vaporizable material used with a vaporizer may be provided in a cartridge (e.g., a separable portion of the vaporizer that contains the vaporizable material in a reservoir) that includes a mouthpiece (e.g., for inhalation by the user).
[0005] To receive the inhalable aerosol produced by the vaporizer, a user may, in certain instances, activate the vaporizer by puffing, pressing a button, or other approach. Puffing, as the term is commonly used (and is used herein), refers to a user inhaling in a manner that draws a volume of air into the vaporizer such that the combination of vaporized vaporizable material and air produces an inhalable aerosol.
[0006] A typical approach by which vaporizers generate inhalable aerosols from vaporizable materials involves heating the vaporizable material in a vaporization chamber (or heating chamber) to convert the vaporizable material to the gas (or vapor) phase. The vaporization chamber generally refers to the region or volume within a vaporizer in which a heat source (e.g., conductive, convective, and / or radiative) heats the vaporizable material, generating a mixture of air and vaporized vaporizable material, forming a vapor for inhalation by a user of the vaporizer.
[0007] Consistent with the present invention, the term vaporization device as used herein generally refers to a portable, self-contained device convenient for personal use. Typically, such devices are controlled by one or more switches, buttons, touch-sensitive devices, or other user input features (commonly referred to as controls) on the vaporization device, although many devices have recently become available that can communicate wirelessly with external controllers (such as smartphones, smartwatches, and other wearable electronic devices). Control in this context generally refers to the ability to affect one or more various operating parameters, including, but not limited to, turning a heater on or off, adjusting the minimum and / or maximum temperatures to which the heater will heat during operation, various games or other interactive features and / or other operations that a user may access on the device, etc.
[0008] A variety of vaporizable materials having different contents and different proportions of such contents can be placed in the cartridge. For example, due to regulations requiring a specific percentage of active ingredient, some vaporizable materials may have a low percentage of active ingredient per total volume of vaporizable material. As a result, a user may need to vaporize a large amount of vaporizable material (e.g., compared to the total volume of vaporizable material that can be stored in the cartridge) to achieve a desired effect.
[0009] Summary of the Invention Aspects of the present invention relate to a heating element for use in a vaporization device.
[0010] The heating element may include a heating portion and at least two legs. The heating portion may include at least two tines spaced apart from one another. The heating portion may be pre-formed to define an interior volume configured to receive the wicking element such that the heating portion secures at least a portion of the wicking element to the heating element. The heating portion may be configured to contact at least two distinct surfaces of the wicking element. The at least two legs may be coupled to the at least two tines and spaced apart from the heating portion. The at least two legs may be configured to be in electrical communication with a power source. Power is configured to be supplied from the power source to the heating portion to generate heat, thereby vaporizing a vaporizable material stored in the wicking element.
[0011] In some embodiments, the at least two legs include four legs. In some embodiments, the heating portion is configured to contact at least three distinct surfaces of the wicking element.
[0012] In some embodiments, the at least two teeth include a first side tooth portion, a second side tooth portion opposite the first side tooth portion, and a platform tooth portion connecting the first side tooth portion and the second side tooth portion. The platform tooth portion may be disposed substantially perpendicular to a portion of the first side tooth portion and the second side tooth portion. The first side tooth portion, the second side tooth portion, and the platform tooth portion define an interior volume in which the wicking element is disposed. In some embodiments, the at least two legs are spaced apart from the heating portion by a bridge.
[0013] In some embodiments, each of the at least two legs includes a cartridge contact disposed at an end of each of the at least two legs. The cartridge contacts can be in electrical communication with a power source. The cartridge contacts can be angled and extend away from the heating portion.
[0014] In some embodiments, the at least two tines include a first pair of tines and a second pair of tines. In some embodiments, the tines of the first pair of tines are equally spaced from one another. In some embodiments, the tines of the first pair of tines are spaced apart by a width. In some embodiments, a width of an inner region of the heating element adjacent the platform tine portion is greater than a width of an outer region of the heating element adjacent an outer edge of the first side tine portion opposite the inner region.
[0015] In some embodiments, the vaporizer is configured to measure the resistance of the heating element at each of the four legs to control the temperature of the heating element, hi some embodiments, the heating element includes a heat shield configured to insulate the heating portion from the body of the vaporizer.
[0016] In some embodiments, the vaporizer further includes a heat shield configured to surround at least a portion of the heating element and to insulate the heating portion from the wicking element and a body of the wick housing configured to surround at least a portion of the heating element.
[0017] In some embodiments, the heating section is folded between the heating section and the at least two legs to insulate the heating section from the at least two legs. In some embodiments, the heating section further includes at least one tab extending from a side of the at least two tines to facilitate access of the wicking element to the interior volume of the heating section. In some embodiments, the at least one tab extends at an angle away from the interior volume.
[0018] In some embodiments, the at least two legs include a capillary feature. The capillary feature can cause a rapid change in capillary pressure, thereby preventing the vaporizable material from flowing beyond the capillary feature. In some embodiments, the capillary feature includes one or more bends in the at least two legs. In some embodiments, the at least two legs extend at an angle toward the interior volume of the heating section, and the angled at least two legs define the capillary feature.
[0019] In some embodiments, a vaporization device includes a reservoir containing a vaporizable material, a wicking element in fluid communication with the reservoir, and a heating element. The heating element includes a heating portion and at least two legs. The heating portion may include at least two tines spaced apart from one another. The heating portion may be preformed to define an interior volume configured to receive the wicking element such that the heating portion secures at least a portion of the wicking element to the heating element. The heating portion may be configured to contact at least two distinct surfaces of the wicking element. The at least two legs may be coupled to the at least two tines and spaced apart from the heating portion. The at least two legs may be configured to be in electrical communication with a power source. Power is configured to be supplied from the power source to the heating portion to generate heat, thereby vaporizing the vaporizable material stored in the wicking element.
[0020] A method of forming an atomizer assembly for a vaporizer device may include securing a wicking element to an interior volume of a heating element. The heating element may include a heating portion including at least two tines spaced apart from one another and at least two legs spaced apart from the heating portion. The legs may be configured to be in electrical communication with a power source of the vaporizer. The heating portion is configured to contact at least two surfaces of the wicking element. The method may also include coupling the heating element to a wick housing configured to enclose the wicking element and at least a portion of the heating element. Securing may also include sliding the wicking element into the interior volume of the heating element.
[0021] In some embodiments, a vaporizer includes a heating portion including one or more integrally formed and spaced apart heater traces configured to contact at least a portion of a wicking element of the vaporizer, and the vaporizer includes a connection portion configured to receive power from a power source and conduct the power to the heating portion, and a plating layer having a plating material different from that of the heating portion. The plating layer may be configured to reduce contact resistance between the heating element and the power source, thereby localizing heating of the heating element to the heating portion.
[0022] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate certain aspects of the inventions disclosed herein and, together with the description, serve to explain some of the principles associated with the disclosed embodiments. [Brief explanation of the drawings]
[0023] [Figure 1A] 1 shows a block diagram of a vaporization device consistent with an embodiment of the present invention. [Figure 1B] 1B illustrates a top view of the vaporizer embodiment of FIG. 1A, showing the cartridge separated from the vaporizer body. [Figure 1C] 1B illustrates a top view of the vaporizer embodiment of FIG. 1A, showing the cartridge coupled to the vaporizer body. [Figure 1D]1 illustrates an exploded perspective view of an embodiment of a cartridge, consistent with an embodiment of the present invention. [Figure 1E] 1 illustrates a top perspective view of an embodiment of a cartridge consistent with embodiments of the present invention. [Figure 1F] 1 illustrates a bottom perspective view of an embodiment of a cartridge consistent with embodiments of the present invention. [Figure 2] 1 shows a schematic diagram of a heating element for use in a vaporization device consistent with an embodiment of the present invention. [Figure 3] 1 shows a schematic diagram of a heating element for use in a vaporization device consistent with an embodiment of the present invention. [Figure 4] 1 shows a schematic diagram of a heating element for use in a vaporization device consistent with an embodiment of the present invention. [Figure 5] 1 shows a schematic diagram of a heating element disposed in a vaporizer cartridge for use in a vaporizer consistent with embodiments of the present invention. [Figure 6] 1 illustrates a heating element and a wicking element consistent with an embodiment of the present invention. [Figure 7] 1 illustrates a heating element and a wicking element consistent with an embodiment of the present invention. [Figure 8] 1 illustrates a heating element and a wicking element disposed within a vaporizer cartridge consistent with an embodiment of the present invention. [Figure 9] 1 illustrates a heating element and a wicking element disposed within a vaporizer cartridge consistent with an embodiment of the present invention. [Figure 10] 1 illustrates a heating element disposed within a vaporizer cartridge consistent with an embodiment of the present invention. [Figure 11] 1 illustrates a heating element in an unbent state consistent with an embodiment of the present invention. [Figure 12] 1 illustrates a heating element in a bent state consistent with an embodiment of the present invention. [Figure 13] 1 illustrates a heating element in a bent state consistent with an embodiment of the present invention. [Figure 14] 1 illustrates a heating element in an unbent state consistent with an embodiment of the present invention. [Figure 15]1 illustrates a heating element in a partially bent state consistent with an embodiment of the present invention. [Figure 16] 1 illustrates a heating element in a partially bent state consistent with an embodiment of the present invention. [Figure 17] 1 illustrates a heating element in a partially bent state consistent with an embodiment of the present invention. [Figure 18] 1 illustrates a heating element in a partially bent state consistent with an embodiment of the present invention. [Figure 19] 1 illustrates a heating element in a partially bent state consistent with an embodiment of the present invention. [Figure 20] 1 illustrates a heating element in an unbent state consistent with an embodiment of the present invention. [Figure 21] 1 illustrates a heating element in a bent state consistent with an embodiment of the present invention. [Figure 22] 1 illustrates a heating element in a partially bent state consistent with an embodiment of the present invention. [Figure 23] 1 illustrates a heating element in a partially bent state consistent with an embodiment of the present invention. [Figure 24] 1 illustrates a heating element in a partially bent state consistent with an embodiment of the present invention. [Figure 25] 1 illustrates a heating element and a wicking element in a partially bent state consistent with an embodiment of the present invention. [Figure 26] 1 illustrates a heating element and a wicking element in a flexed state consistent with an embodiment of the present invention. [Figure 27] 1 illustrates a heating element and a wicking element in a flexed state consistent with an embodiment of the present invention. [Figure 28] 1 illustrates a heating element in an unbent state consistent with an embodiment of the present invention. [Figure 29] 1 illustrates a heating element in an unbent state consistent with an embodiment of the present invention. [Figure 30] 1 illustrates a heating element in an unbent state consistent with an embodiment of the present invention. [Figure 31] 1 illustrates a heating element in an unbent state consistent with an embodiment of the present invention. [Figure 32]1 illustrates a heating element coupled with a portion of a vaporizer cartridge consistent with an embodiment of the present invention. [Figure 33] 1 illustrates a heating element and a wicking element disposed within a vaporizer cartridge consistent with an embodiment of the present invention. [Figure 34] 1 illustrates a heating element in a partially bent state consistent with an embodiment of the present invention. [Figure 35] 1 illustrates a heating element and a wicking element in a partially bent state consistent with an embodiment of the present invention. [Figure 36] 1 illustrates a heating element in an unbent state and having plating consistent with an embodiment of the present invention. [Figure 37] 1 illustrates a heating element in a bent state and having plating consistent with an embodiment of the present invention. [Figure 38] 1 illustrates a heating element having plated portions disposed within a vaporizer cartridge consistent with an embodiment of the present invention. [Figure 39] FIG. 1 illustrates a perspective view of a heating element in a bent state consistent with an embodiment of the present invention. [Figure 40] FIG. 1 illustrates a side view of a heating element in a bent state consistent with an embodiment of the present invention. [Figure 41] FIG. 1 illustrates a front view of a heating element in a bent state consistent with an embodiment of the present invention. [Figure 42] FIG. 1 illustrates a perspective view of a heating element and a wicking element in a bent state consistent with an embodiment of the present invention. [Figure 43] 1 illustrates a heating element disposed within a vaporizer cartridge consistent with an embodiment of the present invention. [Figure 44] FIG. 1 illustrates a perspective view of a heating element in a bent state consistent with an embodiment of the present invention. [Figure 45] FIG. 1 illustrates a side view of a heating element in a bent state consistent with an embodiment of the present invention. [Figure 46] FIG. 10 illustrates a top view of a heating element in a bent state consistent with an embodiment of the present invention. [Figure 47] FIG. 1 illustrates a front view of a heating element in a bent state consistent with an embodiment of the present invention. [Figure 48] FIG. 1 illustrates a perspective view of a heating element in an unbent state consistent with an embodiment of the present invention. [Figure 49] FIG. 10 illustrates a top view of a heating element in an unbent state consistent with an embodiment of the present invention. [Figure 50A] FIG. 1 illustrates a perspective view of a heating element in a bent state consistent with an embodiment of the present invention. [Figure 50B] FIG. 1 illustrates a perspective view of a heating element in a bent state consistent with an embodiment of the present invention. [Figure 51] FIG. 1 illustrates a side view of a heating element in a bent state consistent with an embodiment of the present invention. [Figure 52] FIG. 10 illustrates a top view of a heating element in a bent state consistent with an embodiment of the present invention. [Figure 53] FIG. 1 illustrates a front view of a heating element in a bent state consistent with an embodiment of the present invention. [Figure 54A] FIG. 1 illustrates a perspective view of a heating element in an unbent state consistent with an embodiment of the present invention. [Figure 54B] FIG. 1 illustrates a perspective view of a heating element in an unbent state consistent with an embodiment of the present invention. [Figure 55A] FIG. 10 illustrates a top view of a heating element in an unbent state consistent with an embodiment of the present invention. [Figure 55B] FIG. 10 illustrates a top view of a heating element in an unbent state consistent with an embodiment of the present invention. [Figure 56] 1 illustrates a top perspective view of an atomizer assembly consistent with an embodiment of the present invention. [Figure 57] FIG. 1 illustrates a bottom perspective view of an atomizer assembly consistent with an embodiment of the present invention. [Figure 58] 1 shows an exploded perspective view of an atomizer assembly consistent with an embodiment of the present invention. [Figure 59] 1 illustrates a perspective view of a heat shield consistent with an embodiment of the present invention. [Figure 60A] 1 illustrates a side cross-sectional view of an atomizer assembly consistent with an embodiment of the present invention. [Figure 60B] 1 illustrates another cross-sectional side view of an atomizer assembly consistent with an embodiment of the present invention. [Figure 61] 1 illustrates a schematic diagram of a heating element consistent with an embodiment of the present invention. [Figure 62] FIG. 1 illustrates a perspective view of a heating element in a bent state consistent with an embodiment of the present invention. [Figure 63] FIG. 1 illustrates a side view of a heating element in a bent state consistent with an embodiment of the present invention. [Figure 64] FIG. 1 illustrates a perspective view of a heating element in a bent state consistent with an embodiment of the present invention. [Figure 65] FIG. 1 illustrates a side view of a heating element in a bent state consistent with an embodiment of the present invention. [Figure 66] 1 illustrates a top view of a substrate material with a heating element consistent with an embodiment of the present invention. [Figure 67] FIG. 10 illustrates a top view of a heating element in an unbent state consistent with an embodiment of the present invention. [Figure 68A] 1 illustrates a top perspective view of an atomizer assembly consistent with an embodiment of the present invention. [Figure 68B] 1 illustrates an enlarged view of a portion of a wick housing of an atomizer assembly consistent with an embodiment of the present invention. [Figure 69] FIG. 1 illustrates a bottom perspective view of an atomizer assembly consistent with an embodiment of the present invention. [Figure 70] 1 shows an exploded perspective view of an atomizer assembly consistent with an embodiment of the present invention. [Figure 71A] 1 illustrates a process for assembling an atomizer consistent with an embodiment of the present invention. [Figure 71B] 1 illustrates a process for assembling an atomizer consistent with an embodiment of the present invention. [Figure 71C] 1 illustrates a process for assembling an atomizer consistent with an embodiment of the present invention. [Figure 72A] 1 illustrates a process for assembling an atomizer consistent with an embodiment of the present invention. [Figure 72B] 1 illustrates a process for assembling an atomizer consistent with an embodiment of the present invention. [Figure 72C] 1 illustrates a process for assembling an atomizer consistent with an embodiment of the present invention. [Figure 73] 1 shows a process flow chart illustrating features of a method for forming and implementing a heating element consistent with embodiments of the present invention. DETAILED DESCRIPTION OF THE INVENTION
[0024] Embodiments of the present invention include devices related to vaporizing one or more substances for inhalation by a user. Examples of vaporization devices consistent with embodiments of the present invention include electronic vaporizers, electronic cigarettes, e-cigarettes, and the like.
[0025] The vaporizable material used in the vaporizer can optionally be provided in a cartridge (e.g., a portion of a vaporizer that contains the vaporizable material in a reservoir or other container and can be refilled when empty or disposable by selecting a new cartridge containing additional vaporizable material of the same or different type). The vaporizer can be a cartridge-based vaporizer, a cartridge-less vaporizer, or a multi-purpose vaporizer that can be used with or without a cartridge. For example, a multi-purpose vaporizer can include a heating chamber (e.g., an oven) configured to receive the vaporizable material directly into the heating chamber, as well as a cartridge or other replaceable device having a reservoir, volume, etc. that at least partially contains a usable amount of vaporizable material. In various embodiments, the vaporizer can be configured for use with liquid vaporizable material (e.g., a carrier solution in which active and / or inactive ingredients are suspended or held in solution, or the neat form of the vaporizable material itself) or solid vaporizable material. Some vaporizers consistent with the present disclosure can be used with both solid and liquid vaporizable materials. A solid vaporizable material may include plant material that releases a portion of the plant material as vaporizable material (e.g., so that a portion of the plant material remains as waste after the vaporizable material is released for inhalation by a user), or alternatively, may be a solid form of the vaporizable material itself (e.g., "wax") such that all of the solid material is ultimately vaporized for inhalation. Similarly, a liquid vaporizable material may be completely vaporized or may include a portion of the liquid material that remains after all of the inhalable material is consumed.
[0026] Referring to the block diagram of FIG. 1A, a vaporization device 10 typically includes a power source 8 (e.g., a battery, which may be a rechargeable battery) and a controller 19 (e.g., a processor capable of executing logic, circuitry, etc.) that controls the delivery of heat to an atomizer 26 (also referred to herein as an “atomizer assembly”) to convert the vaporizable material from a condensed form (e.g., a solid, liquid, solution, suspension, at least partially unprocessed portions of plant material, etc.) to the gas phase. The controller 19 may be part of one or more printed circuit boards (PCBs) consistent with certain embodiments of the present invention. After converting the vaporizable material to the gas phase, depending on the type of vaporizer, the physical and chemical properties of the vaporizable material, and / or other factors, at least a portion of the gas-phase vaporizable material may condense to form particulate matter that is at least partially in local equilibrium with the gas phase as part of an aerosol, which may form some or all of the inhalable dose provided by the vaporization device 10 for a given puff or inhalation in the vaporizer. The interaction between the gas and condensed phases of the aerosol generated by a vaporizer can be complex and dynamic, as factors such as ambient temperature, relative humidity, chemistry, flow conditions in the airflow path (both within the vaporizer and in the human or other animal's respiratory tract), and mixing of the vaporizable material in the gas or aerosol phase with other airflows can affect one or more physical parameters of the aerosol. In some vaporizers, particularly those delivering more volatile vaporizable substances, the inhalable dose may exist primarily in the gas phase (i.e., condensed-phase particle formation may be very limited). In other instances, the opposite may be true.
[0027] Vaporization devices for use with liquid vaporizable material (e.g., concentrates, suspensions, solutions, mixtures, etc.) typically include an atomizer 26 in which a wicking element (also referred to herein as a wick (not shown in FIG. 1A )—any component capable of drawing liquid from a reservoir or fluid storage component under capillary pressure (e.g., a fiber wick, a sintered material, a structure having narrow gaps or channels between surfaces wetted by the liquid vaporizable material)) conveys a quantity of liquid vaporizable material to a portion of the atomizer that includes a heating element (also not shown in FIG. 1A ). The wicking element is generally configured to draw liquid vaporizable material from a reservoir configured to contain (and may contain during use) the liquid vaporizable material so that the liquid vaporizable material can be vaporized by heat delivered from the heating element. The wicking element may also selectively admit air into the reservoir to replace the volume of removed liquid. In other words, capillary action draws liquid vaporizable material into the wick, where it is vaporized by a heating element (described below), and in some embodiments of the present invention, air can be returned to the reservoir through the wick, at least partially equalizing the pressure in the reservoir. However, as vaporizable material is drawn from the reservoir, the pressure in the reservoir decreases, thereby creating a vacuum that counteracts capillary action. This reduces the effectiveness of the wick in drawing vaporizable material into the atomizer, thereby reducing the efficiency of the vaporizer in vaporizing the desired amount of vaporizable material, such as when a user puffs on the vaporizer. Furthermore, the vacuum created in the reservoir may ultimately prevent all of the vaporizable material from being drawn into the atomizer, resulting in wasted vaporizable material. Therefore, improved vaporizers and / or vaporizer cartridges that improve or overcome these problems are desirable. Other approaches to returning air to the reservoir to equalize pressure are also within the scope of the present invention.
[0028] The heating element can be or include one or more of a conduction heater, a radiant heater, and a convection heater. One type of heating element is a resistive heating element, which can be composed of or at least include a material (e.g., a metal or alloy, such as a nickel-chromium alloy, or a non-metallic resistor) configured to dissipate power in the form of heat when an electric current passes through one or more resistive segments of the heating element. In some embodiments of the present invention, the atomizer can include a heating element including a resistive coil or other heating element, which is wrapped, disposed internally, incorporated into a bulk shape, crimped into thermal contact, or otherwise arranged to deliver heat to a wicking element, which draws liquid vaporizable material from a reservoir and vaporizes it for subsequent inhalation by a user in the form of a gas and / or condensed (e.g., aerosol particle or droplet) phase. As further described below, other wicking element, heating element, and / or atomizer assembly configurations are also possible. For example, a heating element consistent with embodiments of the present invention may desirably be shaped to receive a wicking element and / or at least partially crimped or pressed around the wicking element. The heating element may be curved such that the heating element is configured to secure the wicking element between at least two or three portions of the heating element. The heating element may be curved to conform to the shape of at least a portion of the wicking element. The heating element may be more easily manufactured than typical heating elements. Heating elements consistent with embodiments of the present invention may be made of a conductive metal suitable for resistive heating, and in some embodiments, the heating element may include selective plating of another material to enable more efficient heating of the heating element (and thus the vaporizable material).
[0029] Certain vaporizers may also or alternatively be configured to generate inhalable doses of gas and / or aerosol phase vaporizable material via heating of non-liquid vaporizable material, such as solid-phase vaporizable material (e.g., wax) or plant material containing the vaporizable material (e.g., tobacco leaves and / or tobacco leaf portions). In such vaporizers, a resistive heating element is part of, otherwise incorporated into, or in thermal contact with the wall of an oven or other heated chamber in which the non-liquid vaporizable material is placed. Alternatively, the resistive heating element may be used to heat air passing over or through the non-liquid vaporizable material, causing convective heating of the non-liquid vaporizable material. In yet other examples, the resistive heating element may be positioned in intimate contact with the plant material such that direct conductive heating of the plant material occurs from within the mass of plant material (e.g., as opposed to only internal conduction from the oven walls).
[0030] In conjunction with a user puffing (e.g., inhaling, etc.) on the vaporizer mouthpiece 21, the heating element may be activated (e.g., a controller, optionally part of the vaporizer body as described below, may pass current from a power source to a circuit including a resistive heating element, optionally part of the vaporizer cartridge as described below) to cause air to flow from the air inlet along an airflow path through the atomizer (e.g., a combination of one or more wicking elements and one or more heating elements), optionally through one or more condensation areas or chambers, to the air outlet of the mouthpiece. As the incoming air flows along the airflow path, it passes over, around, through, etc. the atomizer, causing vaporizable material in the gas phase to become entrained with the air. As described above, the entrained vaporizable material may condense as it passes through the remainder of the airflow path, such that an inhalable dose of the vaporizable material in aerosol form is delivered from the air outlet (e.g., within the mouthpiece 21 for inhalation by the user).
[0031] Activation of the heating element may be triggered by automatic detection of a puff based on one or more signals generated by one or more sensors 29, such as, for example, one or more pressure sensors positioned to detect pressure along the airflow path relative to ambient pressure (or optionally to measure changes in absolute pressure), one or more motion sensors of the vaporizer, one or more flow sensors of the vaporizer, and / or a capacitive lip sensor of the vaporizer; in response to detecting user interaction with one or more input devices 41 (e.g., buttons or other tactile controls of the vaporizer 10), receiving one or more signals from a computing device in communication with the vaporizer; and / or via other approaches to determining that a puff is occurring or imminent.
[0032] As mentioned in the previous paragraph, a vaporizer consistent with embodiments of the present invention can be configured to connect (e.g., via a wireless or wired connection) to a computing device (or, optionally, two or more devices) that communicates with the vaporizer. To this end, the controller 19 can include communications hardware 49. The controller may also include memory 43. A computing device is a component of a vaporizer system that also includes the vaporizer 10 and can include its own communications hardware capable of establishing a wireless communications channel with the communications hardware 49 of the vaporizer 10. For example, a computing device used as part of a vaporizer system can include a general-purpose computing device (e.g., a smartphone, tablet, personal computer, or other portable device such as a smartwatch) that runs software to create a user interface that allows a user of the device to interact with the vaporizer. In other embodiments of the present invention, such a device used as part of a vaporizer system can be a dedicated hardware component, such as a remote control or other wireless or wired device, having one or more physical or soft interface controls (e.g., configurable with a screen or other display device and selectable via user interaction with a touch-sensitive screen or other input device such as a mouse, pointer, trackball, cursor buttons, etc.). The vaporizer may also include one or more output 37 mechanisms or devices for providing information to the user.
[0033] A computing device that is part of the vaporizer system defined above may be used for one or more of the following functions: dose control (e.g., dose monitoring, dose setting, dose limiting, user tracking, etc.), session control (e.g., session monitoring, session setting, session limiting, user tracking, etc.), nicotine delivery control (e.g., switching between nicotine and non-nicotine vaporizable materials, adjusting the amount of nicotine delivered, etc.), location information acquisition (e.g., location of other users, location of retail / commercial establishment, location of inhalation, relative or absolute location of the vaporizer itself, etc.), vaporizer personalization (e.g., naming the vaporizer, locking / password protecting the vaporizer, adjusting one or more parental controls, associating the vaporizer with a user group, registering the vaporizer with the manufacturer or warranty / maintenance provider, etc.), and participation in social activities with other users (e.g., gaming, social media communication, interacting with one or more groups, etc.). The terms "sessionization," "session," "vaporizer session," or "vapor session" are generally used to refer to a period of time spent using a vaporizer. The period of time may include a time period, number of doses, amount of vaporizable material, etc.
[0034] In examples where a computing device provides signals related to activation of the resistive heating element, or in other examples where the computing device couples with the vaporizer for implementing various control or other functions, the computing device executes one or more sets of computer instructions to provide a user interface and basic data processing. In one example, detection of user interaction with one or more user interface elements by the computing device can cause the computing device to send a signal to the vaporizer 10 to activate the heating element to a full operating temperature for generating an inhalable dose of vapor / aerosol or to a lower temperature to begin heating the heating element. Other functions of the vaporizer may be controlled by user interaction with a user interface on a computing device that communicates with the vaporizer.
[0035] The temperature of a resistive heating element in a vaporizer may depend on many factors, including the material of the heating element, the amount of power supplied to the resistive heating element and / or the duty cycle at which the power is supplied, conductive heat transfer to other parts of the electronic vaporizer and / or the environment, latent heat loss due to the evaporation of the vaporizable material from the wicking element and / or the atomizer as a whole, and convective heat loss due to airflow (e.g., air moving across the heating element or atomizer when a user inhales with an electronic vaporizer). As noted above, to ensure activation of the heating element or to heat the heating element to a desired temperature, in some embodiments of the present invention, the vaporizer utilizes a signal from a pressure sensor to determine when a user is inhaling. The pressure sensor can be positioned in the airflow path and / or connected (e.g., by a passageway or other path) to the airflow path connecting the inlet for air entering the device and the outlet through which the user inhales the resulting vapor and / or aerosol, such that the sensor can experience pressure changes simultaneously with the air passing through the vaporizer from the air inlet to the air outlet. In some embodiments of the present invention, the heating element may be activated in conjunction with a user's puff, for example, by automatic detection of the puff, such as by a pressure sensor that detects pressure changes in the airflow path. As noted above, the heating element may be fully and / or selectively plated with one or more other materials to enhance the heating performance of the heating element.
[0036] Typically, the pressure sensor (and / or other sensors 29) may be disposed on or coupled (e.g., electrically or electronically connected, either physically or via a wireless connection) to the controller 19 (e.g., a printed circuit board assembly or other type of circuit board). To ensure accurate measurements and maintain the durability of the vaporizer, it may be beneficial to provide a resilient seal 60 that isolates the airflow path from other portions of the vaporizer. The seal 60, which may be a gasket, may be configured to at least partially surround the pressure sensor such that the connection of the pressure sensor to the vaporizer's internal circuitry is isolated from the portion of the pressure sensor exposed to the airflow path.
[0037] In the example of a cartridge-based vaporizer, the seal or gasket 60 may separate portions of one or more electrical connections between the vaporizer body 50 and the vaporizer cartridge 52. Such placement of the gasket or seal 60 within the vaporizer 10 helps to mitigate potentially destructive effects on vaporizer components resulting from interactions with environmental factors, such as water in the vapor or liquid phase, vaporizable materials, or other fluids, and / or to reduce air leakage from the designed airflow path within the vaporizer. Unwanted air, liquid, or other fluids passing over or contacting the vaporizer circuitry can cause various undesirable effects, such as altered pressure measurements, and / or can cause the accumulation of undesirable materials, such as moisture, vaporizable materials, in portions of the vaporizer, resulting in a reduced pressure signal, degradation of pressure sensors or other components, and / or a shortened vaporizer lifespan. A leak at the seal or gasket 60 could also result in a user inhaling air that has passed through portions of the vaporizer containing or constructed with materials that may be undesirable to inhale.
[0038] A common class of vaporizers that has recently gained popularity includes a vaporizer body 50 that includes a controller 19, a power source 8 (e.g., a battery), one or more sensors, charging contacts, a gasket or seal 60, and a cartridge receptacle 69 configured to accept a vaporizer cartridge 52 for coupling with the vaporizer body 50 via one or more of a variety of attachment structures. In some examples, the vaporizer cartridge 52 includes a reservoir 55 for containing a liquid vaporizable material and a mouthpiece 21 for delivering an inhalable dose to a user. The vaporizer cartridge can include an atomizer 26 having a wicking element and a heating element, or one or both of the wicking element and the heating element can be part of the vaporizer body 50. In embodiments in which any portion of the atomizer 26 (e.g., the heating element and / or wicking element) is part of the vaporizer body 50, the vaporizer can be configured to deliver liquid vaporizable material from the reservoir of the vaporizer cartridge to the atomizer portion included in the vaporizer body.
[0039] Cartridge-based configurations of vaporizers that generate inhalable doses of non-liquid vaporizable material by heating the non-liquid vaporizable material are also within the scope of the present invention. For example, a vaporizer cartridge may include a mass of plant material that has been processed and formed to directly contact a portion of one or more resistive heating elements, and such a vaporizer cartridge may be configured to be mechanically and electrically coupled to a vaporizer body that includes a processor, a power source, and electrical contacts for connecting to corresponding cartridge contacts to complete a circuit with the one or more resistive heating elements.
[0040] In vaporizers in which the power supply 8 is part of the vaporizer body 50 and the heating element is disposed in a vaporizer cartridge 52 configured to mate with the vaporizer body 50, the vaporizer 10 may include electrical connection mechanisms (e.g., means for completing a circuit) for completing a circuit including the controller (e.g., printed circuit board, microcontroller, etc.), the power supply, and the heating element. These mechanisms may include at least two, four, or more contacts (referred to herein as cartridge contacts 65) on the bottom, side, interior, exterior, or other surface of the vaporizer cartridge 52, with the at least two, four, or more contacts located near the base of the cartridge receptacle (referred to herein as receptacle contacts 62) of the vaporizer 10, such that the cartridge contacts 65 and the receptacle contacts 62 electrically connect when the vaporizer cartridge 52 is inserted into and mated with the cartridge receptacle 69.
[0041] In some embodiments, at least some of the cartridge contacts 65 may face in a direction generally perpendicular to the bottom surface of the vaporizer cartridge. For example, at least some of the cartridge contacts 65 may be generally parallel to the side of the vaporizer cartridge and / or may face outward toward the side of the vaporizer cartridge. In such a configuration, the cartridge contacts 65 may be exposed and accessible outside the outer shell of the vaporizer cartridge and / or may be located within a portion of the vaporizer cartridge, such as within the outer shell of the vaporizer cartridge. For example, the cartridge contacts 65 may face the inner wall of the outer shell of the vaporizer cartridge or another portion of the vaporizer cartridge. When the vaporizer cartridge 52 is inserted into and mated with the cartridge receptacle 69, the receptacle contacts 62 of the vaporizer 10 enter a portion of the vaporizer cartridge, such as the outer shell of the vaporizer cartridge, and electrically connect with the cartridge contacts 65. In some embodiments, when the vaporizer cartridge 52 is inserted into and coupled to the cartridge receptacle 69, the receptacle contacts 65 may be disposed between a portion of the vaporizer cartridge 52 (e.g., the outer shell of the vaporizer cartridge) and the cartridge contacts 65. Thus, at least a portion of the vaporizer cartridge 52, such as near the base of the vaporizer cartridge 52, may include a female portion that receives at least a portion of the cartridge receptacle 69, including the receptacle contacts 62, such that the cartridge contacts 65 and the receptacle contacts 62 mate within at least a portion of the vaporizer cartridge 52.
[0042] The cartridge contacts 65 and / or receptacle contacts 62 may include one or more wiping or brush-type contacts configured to clean the connection between the contacts 65, 62 and other contacts or the power source. For example, the wiping and / or brush-type contacts may include two parallel but offset protrusions that frictionally engage and slide against each other in a direction parallel or perpendicular to the insertion direction. As described below, the cartridge contacts 65 may form part of a heating element of the vaporizer cartridge. The circuit completed by these electrical connections between the cartridge contacts 65 and the receptacle contacts 62 enables delivery of electrical current to the resistive heating element and may further be used for additional functions, such as measuring the resistance of the resistive heating element for use in determining and / or controlling the temperature of the resistive heating element based on the thermal coefficient of resistivity of the resistive heating element, identifying the cartridge based on one or more electrical characteristics of the resistive heating element or other circuitry of the vaporizer cartridge.
[0043] In some examples of the present invention, the cartridge contacts and receptacle contacts can be configured to electrically connect in either of at least two directions. In other words, one or more circuits required for vaporizer operation can be completed by inserting vaporizer cartridge 52 into cartridge receptacle 69 in a first rotational direction (about an axis where the end of vaporizer cartridge 52 having cartridge contacts 65 is inserted into cartridge receptacle 69 of vaporizer body 50 and / or where at least a portion of cartridge receptacle 69 having receptacle contacts 62 is inserted into at least a portion of vaporizer cartridge 52 having cartridge contacts 65), whereby a first cartridge contact of cartridge contacts 65 is electrically connected to a first receptacle contact of receptacle contacts 62, a second cartridge contact opposite the first cartridge contact of cartridge contacts 65 is electrically connected to a second receptacle contact of receptacle contacts 62, and so on. Additionally, one or more circuits required for vaporizer operation can be completed by inserting the vaporizer cartridge 52 into the cartridge receptacle 69 in a second rotational orientation, whereby the first cartridge contacts are electrically connected to the second receptacle contacts and the second cartridge contacts are electrically connected to the first receptacle contacts. This feature of the vaporizer cartridge 52 being reversibly insertable into the cartridge receptacle 69 of the vaporizer body 50 is described further below. For example, the cartridge contacts 65 and the receptacle contacts 62 can face each other or be mated to one another in an interdigitated manner. In some embodiments, one or more of the cartridge contacts 65 and / or receptacle contacts 62 can include symmetrical ramped or shaped surfaces such that they can interdigitate in either of two reversible orientations.
[0044] In one example of an attachment structure for coupling the vaporizer cartridge 52 to the vaporizer body 50, the vaporizer body 50 includes detents (e.g., indentations, protrusions, springs, etc.) that protrude inwardly from the interior surface of the cartridge receptacle 69. One or more exterior surfaces of the vaporizer cartridge 52 (e.g., a surface disposed along the exterior surface of the vaporizer cartridge or an externally accessible surface disposed within the vaporizer cartridge) may include corresponding recesses (not shown in FIG. 1A ) that can fit, receive, and / or otherwise mate with such detents when an end of the vaporizer cartridge 52 is inserted into the cartridge receptacle 69 of the vaporizer body 50. When the vaporizer cartridge 52 and vaporizer body 50 are coupled (e.g., by inserting an end of the vaporizer cartridge 52 into the cartridge receptacle 69 of the vaporizer body 50), detents on the vaporizer body 50 fit and / or otherwise fit within recesses in the vaporizer cartridge 52 to hold the vaporizer cartridge 52 in place when assembled. Such a detent-recess assembly can provide sufficient support to hold the vaporizer cartridge 52 in place and ensure good contact between the at least two cartridge contacts 65 and the at least two receptacle contacts 62, while still allowing a user to release the vaporizer cartridge 52 from the vaporizer body 50 by pulling on the vaporizer cartridge 52 with a reasonable amount of force to disengage the vaporizer cartridge 52 from the cartridge receptacle 69.
[0045] In addition to the above discussion regarding the electrical connection between a reversible vaporizer cartridge and vaporizer body 50, in which at least two rotational orientations of the vaporizer cartridge 52 within the cartridge receptacle 69 are possible, depending on the vaporizer, the shape of the vaporizer cartridge 52, or at least the shape of the end of the vaporizer cartridge configured for insertion into the cartridge receptacle 69, may have at least two-fold rotational symmetry. In other words, the vaporizer cartridge 52, or at least the insertable end of the vaporizer cartridge 52, may have 180° rotational symmetry about the axis along which the vaporizer cartridge 52 is inserted into the cartridge receptacle 69. In such a configuration, the vaporizer circuitry may support identical operation regardless of which symmetrical orientation of the vaporizer cartridge 52 occurs.
[0046] In some examples, the vaporizer cartridge 52, or at least the end of the vaporizer cartridge 52 configured for insertion into the cartridge receptacle 69, may have a non-circular cross-section transverse to the axis along which the vaporizer cartridge 52 is inserted into the cartridge receptacle 69. For example, the non-circular cross-section may be approximately rectangular, approximately elliptical (e.g., approximately oval), a shape that is non-rectangular but has two sets of parallel or nearly parallel opposing sides (e.g., has a parallelogram shape), or another shape with at least two-fold rotational symmetry. In this context, having an approximate (near, approximately) shape indicates that a basic similarity to the described shape is apparent, but the sides of the shape in question need not be perfectly straight and the apex need not be perfectly sharp. Rounding of the edges and / or apex of the cross-sectional shape is considered in the description of any non-circular cross-section referred to herein.
[0047] The at least two cartridge contacts 65 and the at least two receptacle contacts 62 can take a variety of forms. For example, one or both sets of contacts may include conductive pins, tabs, posts, receiving holes for the pins or posts, etc. Some types of contacts may include springs or other biasing mechanisms that improve physical and electrical contact between the vaporizer cartridge and vaporizer body contacts. The electrical contacts may be selectively gold plated and / or include other materials.
[0048] FIG. 1B illustrates an embodiment of a vaporizer body 50 having a cartridge receptacle 69 into which a vaporizer cartridge 52 can be releasably inserted. FIG. 1B illustrates a top view of the vaporizer 10 showing the cartridge positioned for insertion into the vaporizer body 50. When a user puffs on the vaporizer 10, air can pass between the exterior surface of the vaporizer cartridge 52 and the interior surface of the cartridge receptacle 69 of the vaporizer body 50. Air can then be drawn into the insertable end 3 of the cartridge, through a vaporization chamber that includes or houses a heating element and a wick, and out the outlet of the mouthpiece 21 to deliver an inhalable aerosol to the user. The reservoir 55 of the vaporizer cartridge 52 may be formed in whole or in part from a translucent material so that the level of vaporizable material 2 is visible along the vaporizer cartridge 52. FIG. 1C illustrates exemplary features that may be included in embodiments of a vaporizer 10 consistent with embodiments of the present invention. For example, Figure 1C shows a top view of an example vaporizer 10 after connecting the vaporizer cartridge 52 to the vaporizer body 50. Figure 1D shows an exploded view of one embodiment of the vaporizer cartridge 52. Figure 1E shows a perspective view of one embodiment of the vaporizer cartridge 52. Figure 1F shows a bottom perspective view of one embodiment of the vaporizer cartridge 52. As shown in Figures 1D-1F, the vaporizer cartridge 52 includes a housing 7 and an atomizer assembly (or atomizer) 26.
[0049] The atomizer assembly 26 (see FIGS. 56-58 ) may include a wicking element 70, a heating element 100, and a wick housing 98. As described in more detail below, at least a portion of the heating element 100 is disposed between the housing 7 and the wick housing 98 and is exposed to couple with a portion of the vaporizer body 50 (e.g., electrically couple with the receptacle contacts 62). The wick housing 98 may include four sides. For example, the wick housing 98 may include two opposing short sides and two opposing long sides. Each of the two opposing long sides may include at least one (or more) recess 87 (see FIGS. 56 and 68A ). The recess 87 may be disposed along the long sides of the wick housing 98 adjacent to each intersection between the long and short sides of the wick housing 98. The recess 87 may be shaped to releasably mate with a corresponding feature (e.g., a spring) on the vaporizer body 50 to secure the vaporizer cartridge 52 to the vaporizer body 50 within the cartridge receptacle 69. The recess 87 provides a mechanically stable securing means for coupling the vaporizer cartridge 52 to the vaporizer body 50.
[0050] In some embodiments, the wick housing 98 also includes an identification chip 95, which may be configured to communicate with a corresponding chip reader disposed on the vaporizer. The identification chip 95 may be glued and / or otherwise attached to the wick housing 98, such as on a short side of the wick housing 98. The wick housing 98 may additionally or alternatively include a chip recess 83 (see FIG. 57 ) configured to receive the identification chip 95. The chip recess 83 may be surrounded by two, four, or more walls. The chip recess 83 may be shaped to secure the identification chip 95 to the wick housing 98.
[0051] As described above, the vaporizer cartridge 52 may generally include a reservoir, an air path, and an atomizer 26. In some configurations, the heating element and / or atomizer described by embodiments of the present invention may be mounted directly to the vaporizer body and / or may not be removable from the vaporizer body. In some embodiments, the vaporizer body may not include a removable cartridge.
[0052] Various advantages and benefits of the present invention may relate to improvements related to the configuration, manufacturing method, etc. of the present vaporizer. For example, a heating element of a vaporizer consistent with embodiments of the present invention is desirably made from a sheet of material (e.g., punched) and crimped or bent around at least a portion of a wicking element to provide a preformed element configured to receive the wicking element (e.g., the wicking element is pressed into the heating element and / or the heating element is held in tension and pulled over the wicking element). The heating element may be bent to secure the wicking element between at least two or three portions of the heating element. The heating element may be bent to conform to the shape of at least a portion of the wicking element. The configuration of the heating element allows for more consistent, high-quality manufacturing of the heating element. Consistency in manufacturing quality of the heating element is particularly important during scaled and / or automated manufacturing processes. For example, a heating element consistent with embodiments of the present invention helps reduce tolerance issues that may arise during the manufacturing process when assembling a heating element having multiple components.
[0053] In some embodiments, the accuracy of heating element measurements (e.g., resistance, current, temperature) may be improved, at least in part, due to reduced tolerance issues and improved consistency in the manufacturability of the heating element. Improved measurement accuracy improves the user experience when using the vaporizer. For example, as described above, the vaporizer 10 can receive a signal to activate the heating element to its full operating temperature to generate an inhalable dose of vapor / aerosol or to a lower temperature to begin heating the heating element. The temperature of a vaporizer heating element can depend on many factors, as described above, some of which become predictable by eliminating potential variations in the manufacturing and assembly of atomizer components. A heating element made from a sheet of material (e.g., die-cut) and crimped or bent around at least a portion of the wicking element to provide a preformed element desirably minimizes heat loss and helps ensure that the heating element operates predictably and heats to the appropriate temperature.
[0054] Additionally, as described above, the heating element may be fully and / or selectively plated with one or more materials to enhance the heating performance of the heating element. Plating all or part of the heating element can minimize heat loss. Plating also helps concentrate the heating portion of the heating element in the appropriate location, providing a more efficiently heated heating element and further reducing heat loss. Selective plating helps direct the current supplied to the heating element to the appropriate location. Selective plating also helps reduce the amount of plating material and / or costs associated with manufacturing the heating element.
[0055] Once the heating element is formed into the appropriate shape via one or more processes described below, the heating element is crimped around the wicking element and / or bent into position to receive the wicking element. The wicking element, in some embodiments, may be a fibrous wick formed as an at least generally flat pad or in other cross-sectional shapes, such as a circle, oval, etc. A flat pad allows for more precise and / or accurate control of the rate at which vaporizable material is drawn into the wicking element. For example, the length, width, and / or thickness can be adjusted for optimal performance. A wicking element forming a flat pad can provide a larger transfer surface area, thereby increasing the flow of vaporizable material from the reservoir to the wicking element for vaporization by the heating element (i.e., transfer of a greater mass of vaporizable material) and from the wicking element to the air passing through the wicking element. In such a configuration, the heating element may contact the wicking element in multiple directions (e.g., on at least two sides of the wicking element) to increase the efficiency of the process of drawing the vaporizable material into the wicking element and vaporizing the vaporizable material. Also, a flat pad can be more easily shaped and / or cut and therefore more easily assembled to the heating element. In some embodiments, as described in more detail below, the heating element may be configured to contact the wicking element on only one side of the wicking element.
[0056] The wicking element may include one or more rigid or compressible materials, such as cotton, silica, ceramic, etc. Compared to some other materials, a cotton wicking element may increase and / or provide more control over the flow rate of vaporizable material from the vaporizer cartridge reservoir to the wicking element to be vaporized. In some embodiments, the wicking element forms an at least generally flat pad configured to contact the heating element and / or be secured between at least two portions of the heating element. For example, the at least generally flat pad may have at least a first pair of opposing sides that are generally parallel to each other. In some embodiments, the at least generally flat pad may have at least a second pair of opposing sides that are generally parallel to each other and generally perpendicular to the first pair of opposing sides.
[0057] 2-5 show schematic diagrams of a heating element 100 consistent with embodiments of the present invention. For example, FIG. 2 shows a schematic diagram of the heating element 100 in a deployed position. As shown, in the deployed position, the heating element 100 forms a planar heating element. The heating element 100 may first be formed from a substrate material. The substrate material is then cut and / or stamped into the appropriate shape via various mechanical processes, including, but not limited to, punching, laser cutting, photoetching, chemical etching, etc.
[0058] The substrate material may be made of a conductive metal suitable for resistive heating. In some embodiments, the heating element 100 comprises a nickel-chromium alloy, a nickel alloy, a stainless steel, etc. As described below, the heating element 100 may be plated with a coating at one or more locations on the surface of the substrate material (which may be all or a portion of the heating element 100) to enhance, limit, or modify the resistivity of the heating element at one or more locations on the substrate material.
[0059] The heating element 100 includes one or more teeth 102 (e.g., heating segments) located in the heating portion 104, one or more legs or (e.g., one, two, or more) connectors 106 located in the transition region 108, and cartridge contacts 65 located in the electrical contact region 110 and formed at the end of each of the one or more legs 106. The teeth 102, legs 106, and cartridge contacts 65 may be integrally formed. For example, the teeth 102, legs 106, and cartridge contacts 65 form portions of the heating element 100 that are stamped and / or cut from a substrate material. In some embodiments, the heating element 100 also includes a heat shield 118 extending from one or more of the legs 106, and may be integrally formed with the teeth 102, legs 106, and cartridge contacts 65.
[0060] In some embodiments, at least a portion of the heating portion 104 of the heating element 100 is configured to engage vaporizable material drawn from the reservoir 55 of the vaporizer cartridge 52 into the wicking element. The heating portion 104 of the heating element 100 can be shaped, sized, and / or otherwise treated to create a desired resistance. For example, the tines 102 located on the heating portion 104 are designed so that the resistance of the tines 102 corresponds to an appropriate resistance value to affect localized heating in the heating portion 104 and more efficiently and effectively heat the vaporizable material from the wicking element. The tines 102 form thin, serially and / or parallelly arranged heating segments or traces to provide the desired amount of resistance.
[0061] The tines 102 (e.g., traces) may include a variety of shapes, sizes, and configurations. In some configurations, one or more tines 102 may be spaced apart to allow vaporizable material to exit the wicking element and vaporize from the side edges of each tine 102. The shape, length, width, composition, etc., of the tines 102, among other characteristics, may be optimized to maximize the efficiency of generating aerosol by vaporizing vaporizable material from within the heating portion of the heating element 100 and to maximize electrical efficiency. The shape, length, width, composition, etc., of the tines 102, among other characteristics, may additionally or alternatively be optimized to distribute heat evenly across the entire length of the tines 102 (or a portion of the tines 102, such as the heating portion 104). For example, the width of the tines 102 may be uniform or variable along the length of the tines 102 to control the temperature profile across at least the heating portion 104 of the heating element 100. In some examples, the length of the tines 102 can be controlled to achieve a desired resistance along at least a portion of the heating element 100, such as the heating portion 104. As shown in FIGS. 2-5, the tines 102 each have the same size and shape. For example, the tines 102 can be substantially aligned and include outer edges 103 having a generally rectangular shape, have flat or square outer edges 103 (see also FIGS. 6-10), or have rounded outer edges 103 (see FIGS. 11 and 12). In some embodiments, one or more tines 102 can be misaligned and / or include outer edges 103 of different sizes or shapes (see FIGS. 14-19). In some embodiments, the tines 102 can be evenly spaced or have variable spacing between adjacent tines 102 (see FIGS. 44-49). The particular geometry of the tines 102 is desirably selected to create a particular local resistance for heating the heating portion 104 and maximize the performance of the heating element 100 in heating the vaporizable material to generate an aerosol.
[0062] The heating element 100 may include wider and / or thicker geometries and / or sections of different composition relative to the tines 102. These sections may form electrical contact areas and / or more conductive portions and / or may include features for mounting the heating element 100 within the vaporizer cartridge. The legs 106 of the heating element 100 extend from the end of each outermost tine 102A. The legs 106 typically form a portion of the heating element 100 that has a width and / or thickness greater than the width of each of the tines 102. However, in some embodiments, the legs 106 have a width and / or thickness that is equal to or less than the width of each of the tines 102. The legs 106 couple the heating element 100 to the wick housing 98 or another portion of the vaporizer cartridge 52, such that the heating element 100 is at least partially or completely surrounded by the housing 7. The legs 106 provide rigidity that promotes mechanical stability of the heating element 100 during and after manufacturing. The legs 106 also connect the cartridge contacts 65 with the tines 102 located on the heating portion 104. The legs 106 are shaped and sized to enable the heating element 100 to maintain the electrical requirements of the heating portion 104. As shown in FIG. 5 , when the heating element 100 is assembled with the vaporizer cartridge 52, the legs 106 space the heating portion 104 from the end of the vaporizer cartridge 52. As described in more detail below, with respect to at least FIGS. 39-55 and 60-61 , the legs 106 can also include a capillary feature 198. The capillary feature 198 limits or prevents fluid from flowing from the heating portion 104 to other portions of the heating element 100.
[0063] In some embodiments, one or more of the legs 106 include one or more positioning features 116. The positioning features 116 may be used to mate with other (e.g., adjacent) components of the vaporizer cartridge 52 to relatively position the heating element 100 or portions thereof during and / or after assembly. In some embodiments, the positioning features 116 may be used during or after manufacturing to properly position the substrate material to cut and / or punch the substrate material to form the heating element 100 or for post-processing of the heating element 100. The positioning features 116 may be sheared and / or cut prior to crimping or otherwise bending the heating element 100.
[0064] In some embodiments, the heating element 100 includes one or more heat shields 118. The heat shields 118 form a portion of the heating element 100 extending laterally from the legs 106. When folded and / or crimped, the heat shields 118 are positioned coplanar and offset from the tines 102 in a first direction and / or a second direction opposite the first direction. When the heating element 100 is assembled to the vaporizer cartridge 52, the heat shields 118 are configured to be positioned between the tines 102 (and heating portion 104) and the body (e.g., a plastic body) of the vaporizer cartridge 52. The heat shields 118 can help to insulate the heating portion 104 from the body of the vaporizer cartridge 52. The heat shields 118 help minimize the effects of heat emanating from the heating portion 104 on the body of the vaporizer cartridge 52, protect the structural integrity of the body of the vaporizer cartridge 52, and prevent melting or other deformation of the vaporizer cartridge 52. The heat shield 118 also helps maintain a constant temperature in the heating section 104 by retaining heat within the heating section 104, thereby preventing or limiting heat loss while vaporization is occurring. In some embodiments, the vaporizer cartridge 52 may additionally or alternatively include a heat shield 118A that is separate from the heating element 100 (see FIG. 59).
[0065] As described above, the heating element 100 includes at least two cartridge contacts 65 forming the end of each leg 106. For example, as shown in FIGS. 2-5 , the cartridge contacts 65 may form the portion of the leg 106 that is folded along fold line 107. The cartridge contacts 65 may be folded at an angle of approximately 90 degrees relative to the leg 106. In some embodiments, the cartridge contacts 65 may be folded at other angles relative to the leg 106, such as approximately 15 degrees, 25 degrees, 35 degrees, 45 degrees, 55 degrees, 65 degrees, 75 degrees, or other ranges therebetween. The cartridge contacts 65 may be folded toward or away from the heating portion 104, depending on the embodiment. The cartridge contacts 65 may also be formed on another portion of the heating element 100, such as along the length of at least one of the legs 106. The cartridge contacts 65 are configured to be exposed to the environment when assembled into the vaporizer cartridge 52 (see FIG. 10 ).
[0066] The cartridge contacts 65 may form conductive pins, tabs, posts, receiving holes, or surfaces of pins or posts, or other contact configurations. Some types of cartridge contacts 65 include springs or other biasing mechanisms that improve physical and electrical contact between the cartridge contacts 65 on the vaporizer cartridge and the receptacle contacts 62 on the vaporizer body 50. In some embodiments, the cartridge contacts 65 include wiping contacts configured to clean connections between the cartridge contacts 65 and other contacts or a power source. For example, the wiping contacts may include two parallel but offset protrusions that frictionally engage and slide against each other in a direction parallel or perpendicular to the insertion direction.
[0067] Cartridge contacts 65 are configured to mate with receptacle contacts 62 located near the base of the cartridge receptacle of vaporizer 10, such that when vaporizer cartridge 52 is inserted into and mated with cartridge receptacle 69, cartridge contacts 65 and receptacle contacts 62 form an electrical connection. Cartridge contacts 65 can be in electrical communication with vaporizer power supply 8 (e.g., via receptacle contacts 62, etc.). These electrical connections complete a circuit that can deliver current to resistive heating element 100 to heat at least a portion of heating element 100 and can be further used for additional functions, such as measuring the resistance of the resistive heating element for use in determining and / or controlling the temperature of the resistive heating element based on the thermal coefficient of resistivity of the resistive heating element, identifying a cartridge based on one or more electrical characteristics of the resistive heating element or other circuitry of the vaporizer cartridge, etc. Cartridge contacts 65 can be treated to provide improved electrical properties (e.g., contact resistance) using, for example, conductive plating, surface treatments, and / or deposited materials, as described in more detail below.
[0068] In some embodiments, the heating element 100 may be processed through a series of crimping and / or bending operations to form the heating element 100 into a desired three-dimensional shape. For example, the heating element 100 may be pre-formed to accept or crimped around the wicking element 70 (such as between opposing portions of the heating section 104) to secure the wicking element between at least two portions (e.g., substantially parallel portions) of the heating element 100. To crimp the heating element 100, the heating element 100 may be bent toward each other along fold lines 120. Folding the heating element 100 along the fold lines 120 forms platform tine portions 124 defined by the area between the fold lines 120 and side tine portions 126 defined by the area between the fold lines 120 and the outer edges 103 of the tines 102. The platform tine portions 124 are configured to contact one end of the wicking element 70. The side teeth portion 126 is configured to contact both sides of the wicking element 70. The platform teeth portion 124 and the side teeth portion 126 form a pocket shaped to receive the wicking element 70 and / or conform to the shape of at least a portion of the wicking element 70. The pocket allows the wicking element 70 to be secured and held by the heating element 100 within the pocket. The platform teeth portion 124 and the side teeth portion 126 contact the wicking element 70 to provide multi-dimensional contact between the heating element 100 and the wicking element 70. The multi-dimensional contact between the heating element 100 and the wicking element 70 provides more efficient and / or faster transfer of vaporizable material to be vaporized (via the wicking element 70) from the reservoir 55 of the vaporizer cartridge 52 to the heating portion 104.
[0069] In some embodiments, portions of the legs 106 of the heating element 100 may be bent away from one another along fold lines 122. By folding the portions of the legs 106 of the heating element 100 away from one another along fold lines 122, the legs 106 are positioned away from the heating portion 104 (and tines 102) of the heating element 100 in a first direction (e.g., in the same plane) and / or in a second direction opposite the first direction. Thus, by folding the portions of the legs 106 of the heating element 100 away from one another along fold lines 122, the heating portion 104 is spaced away from the body of the vaporizer cartridge 52. FIG. 3 shows a schematic diagram of the heating element 100 folded along fold lines 120 and 122 relative to the wicking element 70. As shown in FIG. 3, the wicking element is positioned within a pocket formed by folding the heating element 100 along fold lines 120 and 122.
[0070] In some embodiments, heating element 100 may be folded along fold line 123. For example, cartridge contacts 65 may be bent toward each other (toward the front and back of the page shown in FIG. 4) along fold line 123. Cartridge contacts 65 are exposed to the environment and contact the receptacle contacts, with the remainder of heating element 100 disposed within vaporizer cartridge 52 (see FIGS. 5 and 10).
[0071] In use, when the heating element 100 is incorporated into the vaporizer cartridge 52, a user puffs on the mouthpiece 21 of the vaporizer cartridge 52, causing air to enter the vaporizer cartridge and flow along the airpath. In connection with a user's puff, the heating element 100 can be activated, for example, by automatic detection of the puff via a pressure sensor, detection of a button press by the user, detection of a signal generated from a motion sensor, a flow sensor, a capacitive lip sensor, and / or another approach capable of detecting air entering the vaporizer 10 and moving at least along the airpath as the user puffs or attempts to puff or otherwise inhale. When the heating element 100 is activated, power can be supplied to the heating element 100 from the vaporizer at cartridge contacts 65.
[0072] When the heating element 100 is activated, an electric current flows through the heating element 100, causing it to generate heat and increase in temperature. The heat is transferred to a quantity of vaporizable material via conduction, convection, and / or radiation, resulting in at least a portion of the vaporizable material vaporizing. Heat transfer can occur to vaporizable material in the reservoir and / or to vaporizable material drawn into the wicking element 70 held by the heating element 100. In some embodiments, as described above, the vaporizable material can vaporize along one or more edges of the tines 102. Air entering the vaporizer flows along an air path across the heating element 100, removing the vaporized vaporizable material from the heating element 100. The vaporized vaporizable material condenses due to cooling, pressure changes, etc., and exits the mouthpiece 21 as an aerosol for the user to inhale.
[0073] As mentioned above, the heating element 100 may be made from a variety of materials, such as nichrome, stainless steel, or other resistive heating materials. Combinations of two or more materials can be included in the heating element 100, and such combinations can include both a uniform distribution of the two or more materials throughout the heating element or other configurations in which the relative amounts of the two or more materials are spatially non-uniform. For example, the tines 102 can have more resistive portions, thereby designed to be hotter than the tines or other portions of the heating element 100. In some embodiments, at least the tines 102 (e.g., in the heating portion 104) can include a material with high conductivity and heat resistance.
[0074] The heating element 100 may be fully or selectively plated with one or more materials. Because the heating element 100 is made of a thermally and / or electrically conductive material, such as stainless steel, nichrome, or other thermally and / or electrically conductive alloy, the heating element 100 may experience electrical or heating losses in the path between the cartridge contacts 65 and the tines 102 of the heating portion 104 of the heating element 100. To help reduce heating and / or electrical losses, at least a portion of the heating element 100 may be plated with one or more materials to reduce the resistance of the electrical path to the heating portion 104. In some embodiments consistent with the present invention, it is beneficial for the heating portion 104 (e.g., the tines 102) to remain unplated, while at least a portion of the legs 106 and / or cartridge contacts 65 are plated with a plating material that reduces the resistance of those portions (e.g., one or both of the bulk resistance and the contact resistance).
[0075] For example, the heating element 100 can include various portions plated with different materials. In another example, the heating element 100 can be plated with layered materials. Plating at least a portion of the heating element 100 helps concentrate the current flowing through the heating portion 104, reducing electrical and / or thermal losses in other portions of the heating element 100. In some embodiments, it is desirable to maintain a low resistance electrical path between the cartridge contacts 65 and the tines 102 of the heating element 100 to reduce electrical and / or thermal losses in the electrical path and to compensate for voltage drops concentrated across the heating portion 104.
[0076] In some embodiments, the cartridge contacts 65 may be selectively plated. Selectively plating the cartridge contacts 65 with certain materials can minimize or eliminate contact resistance at the point where measurements are taken and electrical contact is made between the cartridge contacts 65 and the receptacle contacts. Providing low resistance at the cartridge contacts 65 can provide more accurate voltage, current, and / or resistance measurements and readings, which can be beneficial in accurately determining the actual current temperature of the heating portion 104 of the heating element 100.
[0077] In some embodiments, at least a portion of the cartridge contacts 65 and / or at least a portion of the legs 106 may be plated with one or more outer plating materials 150. For example, at least a portion of the cartridge contacts 65 and / or at least a portion of the legs 106 may be plated with at least gold or another material that provides low contact resistance, such as platinum, palladium, silver, copper, or the like.
[0078] In some embodiments, the surface of the heating element 100 can be plated with an adhesion plating material to secure the low-resistivity outer plating material to the heating element 100. In such configurations, the adhesion plating material can be attached to the surface of the heating element 100, and the outer plating material can be attached to the adhesion plating material to define first and second plating layers, respectively. The adhesion plating material includes a material that has adhesive properties when the outer plating material adheres onto the adhesion plating material. For example, the adhesion plating material can include nickel, zinc, aluminum, iron, alloys thereof, and the like. Figures 36-38 show an example of a heating element 100 in which the cartridge contacts 65 are selectively plated with the adhesion plating material and / or the outer plating material.
[0079] In some embodiments, rather than plating the surface of the heating element 100 with an adhesion plating material, the surface of the heating element 100 may be primed using a non-plating primer to adhere the outer plating material onto the heating element 100. For example, the surface of the heating element 100 may be primed using etching rather than applying an adhesion plating material.
[0080] In some embodiments, all or a portion of the legs 106 and cartridge contacts 65 may be plated with an adhesion plating material and / or an outer plating material. In some examples, the cartridge contacts 65 may include at least a portion having an outer plating material that has a greater thickness than the remainder of the cartridge contacts 65 and / or the legs 106 of the heating element 100. In some embodiments, the cartridge contacts 65 and / or the legs 106 may have a greater thickness than the tines 102 and / or the heating portion 104.
[0081] In some embodiments, rather than forming the heating element 100 from a single substrate material and plating the substrate material, the heating element 100 may be formed from various materials that are bonded together (e.g., via laser welding, a diffusion process, etc.) The materials of each portion of the heating element 100 that are bonded together can be selected to provide a high resistance at the tines 102 or heating portion 104, with low or no resistance at the cartridge contacts 65, relative to other portions of the heating element 100.
[0082] In some embodiments, the heating element 100 may be electroplated with silver ink and / or spray coated with one or more plating materials, such as an adhesion plating material and an exterior plating material.
[0083] As discussed above, the heating element 100 can include a variety of shapes, sizes, and geometries to more efficiently heat the heating portion 104 of the heating element 100 and more efficiently vaporize the vaporizable material.
[0084] 6-10 illustrate an example of a heating element 100 consistent with embodiments of the present invention. As shown, the heating element 100 includes one or more tines 102 located on a heating portion 104, one or more legs 106 extending from the tines 102, cartridge contacts 65 formed at the end of each of the one or more legs 106, and a heat shield 118 extending from the one or more legs 106. In this example, each of the tines 102 has the same or similar shape and size. The tines 102 have square and / or flat outer edges 103. In FIGS. 6-9, the tines 102 are crimped around a wicking element 70 (e.g., a flat pad) to secure the wicking element 70 within the pocket of the tines 102.
[0085] 11-12 show another example of a heating element 100 consistent with embodiments of the present invention in an unbent position (FIG. 11) and a bent position (FIG. 12). As shown, the heating element 100 includes one or more tines 102 located on a heating portion 104, one or more legs 106 extending from the tines 102, cartridge contacts 65 formed at each end of the one or more legs 106, and a heat shield 118 extending from the one or more legs 106. In this example, each of the tines 102 has the same or similar shape and size, and the tines 102 have rounded and / or semicircular outer edges 103.
[0086] FIG. 13 shows another example of a heating element 100 in a bent position consistent with an embodiment of the present invention that is similar to the exemplary heating element 100 shown in FIGS. 11-12, but in this example, each of the tines 102 has the same or similar shape and size, and the tines 102 have square and / or flat outer edges 103.
[0087] 14-19 illustrate other examples of heating elements 100 in which at least one tooth 102 has a different size, shape, or position than the remaining teeth 102. For example, as shown in FIGS. 14-15, the heating element 100 includes one or more teeth 102 located on a heating portion 104, one or more legs 106 extending from the teeth 102, and cartridge contacts 65 formed on the respective ends of the one or more legs 106. In this example, the teeth 102 include a first set of teeth 105A and a second set of teeth 105B. The first and second sets of teeth 105A, 105B are offset from one another. For example, the outer edges 103 of the first and second sets of teeth 105A, 105B are not aligned with one another. As shown in FIG. 15, when the heating portion 104 is in a bent position, the first set of teeth 105A appears shorter than the second set of teeth 105B in a first portion of the heating element 100, and the first set of teeth 105A appears longer than the second set of teeth 105B in a second portion of the heating element 100.
[0088] As shown in FIGS. 16-17, the heating element 100 includes one or more teeth 102 located on the heating portion 104, one or more legs 106 extending from the teeth 102, and cartridge contacts 65 formed at the respective ends of the one or more legs 106. In this example, the teeth 102 include a first set of teeth 109A and a second set of teeth 109B. The first and second sets of teeth 109A, 109B are offset from one another. For example, the outer edges 103 of the first and second sets of teeth 109A, 109B are not aligned with one another. Here, the second set of teeth 109B includes a single outermost tooth 102A. As shown in FIGS. 16-17, when the heating portion 104 is in a bent position, the first set of teeth 109A appears longer than the second set of teeth 109B. Furthermore, in FIGS. 16-17, the teeth 102 are not bent. Rather, the tines 102 are disposed on a first portion of the heating element 100 and on a second portion disposed generally parallel to and opposite the first portion. The first set of tines disposed on the first portion of the heating element 100 is separated from the second set of tines disposed on the second portion of the heating element 100 by a platform portion 130 that is disposed between and spaced apart from both the first and second sets of tines. The platform portion 130 is configured to contact an end of the wicking element 70. The platform portion 130 includes a cutout portion 132. The cutout portion 132 can provide an additional edge along which the vaporizable material can vaporize when the heating element 100 is activated.
[0089] As shown in FIGS. 18-19, the heating element 100 includes one or more teeth 102 located on the heating portion 104, one or more legs 106 extending from the teeth 102, and cartridge contacts 65 formed on the respective ends of the one or more legs 106. In this example, the teeth 102 include a first set of teeth 109A and a second set of teeth 109B. The first and second sets of teeth 109A, 109B are offset from one another. For example, the outer edges 103 of the first and second sets of teeth 109A, 109B are not aligned with one another. Here, each of the first and second sets of teeth 109A, 109B includes two teeth 102. As shown in FIGS. 18-19, when the heating portion 104 is in a bent position, the first set of teeth 109A appears shorter than the second set of teeth 109B. 18-19, the tines 102 are not curved. Rather, the tines 102 are disposed on a first portion and a second portion (opposite and parallel to the first portion) of the heating element 100. The first set of tines disposed on the first portion is separated from the second set of tines disposed on the second portion by a platform portion disposed between and spaced apart from both the first and second sets of tines. The platform portion is configured to contact the end of the wicking element 70. The platform portion includes a cutout portion. The cutout portion can provide an additional edge along which the vaporizable material can vaporize when the heating element 100 is activated.
[0090] 20-25 show another example of a heating element 100 consistent with embodiments of the present invention in an unbent position (FIG. 20) and a bent position (FIGS. 21-25). As shown, the heating element 100 includes one or more tines 102 located on a heating portion 104, one or more legs 106 extending from the tines 102, cartridge contacts 65 formed at the end of each of the one or more legs 106, and a heat shield 118 extending from the one or more legs 106. In this example, the heating element 100 is configured to be crimped and / or bent to accept a cylindrical wicking element 70 or a wicking element 70 having a circular cross-section. Each of the tines 102 includes an opening 140. The opening 140 can provide an additional edge through which vaporizable material can vaporize when the heating element 100 is activated. The openings 140 also reduce the amount of material used to form the heating element 100, reducing the weight of the heating element 100 and the amount of material used in the heating element 100, thereby reducing material costs.
[0091] 26-35 illustrate a heating element 100 consistent with an embodiment of the present invention in which the heating element 100 is pressed against one side of the wicking element 70. As shown, the heating element 100 includes one or more tines 102 located on the heating portion 104, one or more legs 106 extending from the tines 102, and cartridge contacts 65 formed at the respective ends of the one or more legs 106. In these examples, the legs 106 and cartridge contacts 65 are configured to bend in a third direction rather than in a first or second direction perpendicular to the third direction. In such a configuration, the tines 102 of the heating portion 104 form a planar platform facing outward from the heating element 100 and are configured to be pressed against (e.g., to one side of) the wicking element 70.
[0092] 28-31 show several examples of heating elements 100 consistent with embodiments of the present invention that include tines 102 configured in various shapes. As discussed above, the tines 102 form a planar platform that presses against one side of the wicking element 70 during use. The legs 106, rather than the tines 102, bend in the bent position.
[0093] Figure 32 illustrates an example of the heating element 100 shown in Figure 28 assembled to components of a vaporizer cartridge 52, such as a wicking element 70 and a wick housing (e.g., wick housing 98) that houses the heating element 100, and Figure 33 illustrates the heating element 100 assembled to an exemplary vaporizer cartridge 52 consistent with embodiments of the present invention. As shown, the cartridge contacts 65 are bent laterally toward each other.
[0094] 34 and 35 show another example of a heating element 100 in which the tines 102 form a platform configured to press against the wicking element 70. Here, the legs 106 can form a spring-like structure that presses the tines 102 against the wicking element 70 when a lateral inward force is applied to each of the legs 106. For example, FIG. 35 shows an example in which the tines 102 are pressed against the wicking element 70 when power (e.g., current) is supplied to the heating element 100, such as via cartridge contacts 65.
[0095] 39-43 illustrate another example of a heating element 100 consistent with embodiments of the present invention. As shown, the heating element 100 includes one or more tines 102 located on a heating portion 104, one or more legs 106 extending from the tines 102, and cartridge contacts 65 formed at and / or as part of the ends of the one or more legs 106. In this example, each of the tines 102 has the same or similar shape and size and is spaced apart an equal distance from one another. The tines 102 have rounded outer edges 103.
[0096] As shown in FIG. 42 , the tines 102 are crimped around the wicking element 70 (e.g., a flat pad) to secure the wicking element 70 within the pocket formed by the tines 102. For example, the tines 102 may be folded and / or crimped to define a pocket in which the wicking element 70 resides. The tines 102 include a platform tine portion 124 and a side tine portion 126. The platform tine portion 124 is configured to contact one side of the wicking element 70, and the side tine portion 126 is configured to contact the other, opposing side of the wicking element 70. The platform tine portion 124 and the side tine portion 126 form a pocket shaped to receive the wicking element 70 and / or conform to the shape of at least a portion of the wicking element 70. The pocket allows the wicking element 70 to be secured and held by the heating element 100 within the pocket.
[0097] In some embodiments, the side tooth portions 126 and the platform tooth portions 124 hold the wicking element 70 by compression (e.g., at least a portion of the wicking element 70 is compressed between the opposing side tooth portions 126 and / or platform tooth portions 124). The platform tooth portions 124 and the side tooth portions 126 contact the wicking element 70 to provide multi-dimensional contact between the heating element 100 and the wicking element 70. The multi-dimensional contact between the heating element 100 and the wicking element 70 provides more efficient and / or faster transfer of vaporizable material to be vaporized (via the wicking element 70) from the reservoir 55 of the vaporizer cartridge 52 to the heating portion 104.
[0098] The one or more legs 106 of the exemplary heating element 100 shown in FIGS. 39-43 include four legs 106. Each of the legs 106 can include and / or define a cartridge contact 65 configured to contact a corresponding receptacle contact 62 on the vaporizer 10. In some embodiments, each pair of legs 106 (and cartridge contact 65) can contact a single receptacle contact 62. The legs 106 can be spring-loaded to enable the legs 106 to maintain contact with the receptacle contacts 62. The legs 106 can include a portion extending along their length that is curved to help maintain contact with the receptacle contact 62. The spring-loaded legs 106 and / or the curvature of the legs 106 can help increase and / or maintain consistent pressure between the legs 106 and the receptacle contacts 62. In some embodiments, the legs 106 are coupled with supports 97 that help increase and / or maintain consistent pressure between the legs 106 and the receptacle contacts 62. The supports 97 may comprise plastic, rubber, or other materials to help maintain contact between the legs 106 and the receptacle contacts 62. In some embodiments, the supports 97 are formed as part of the legs 106.
[0099] The legs 106 may contact one or more wiping contacts configured to clean the connection between the cartridge contacts 65 and other contacts or a power source. For example, the wiping contacts may include at least two parallel but offset protrusions that frictionally engage and slide against each other in a direction parallel or perpendicular to the insertion direction.
[0100] As shown in FIGS. 39-55, one or more legs 106 of the heating element 100 include four legs 106. FIGS. 48-49, 54A-55B, and 66-67 show examples of the heating element 100 in an unbent position. As shown, the heating element 100 has an H-shape defined by the four legs 106 and the tines 102. This configuration allows for more accurate measurement of the resistance across the heater and reduces variability in resistance measurements, thereby improving the efficiency and quality of aerosol generation. The heating element 100 includes two pairs of opposing legs 106. The tines 102 join (e.g., intersect) each pair of opposing legs 106 at or near the center of each pair. The heating section 104 is positioned between the pairs of opposing legs 106.
[0101] FIG. 66 shows an example of a heating element 100 before the heating element 100 is stamped and / or otherwise formed from a substrate material 177. Excess substrate material 177A may be bonded to the heating element 100 at one, two, or more bond locations 177B. For example, as shown, the excess substrate material 177A may be bonded to the heating element 100 at two bond locations 177B near the platform portion of the heating element and / or opposing lateral ends 173 of the heating portion 104 of the heating element 100. In some embodiments, the heating element 100 may first be stamped from the substrate material 177 and then removed from the excess substrate material 177A at the bond locations 177B (e.g., by twisting, pulling, punching, cutting the heating element 100, etc.).
[0102] As described above, to crimp the heating element 100, the heating element 100 may be bent or otherwise folded toward or away from one another along fold lines 123, 122A, 122B, 120 (see, for example, FIG. 55A ). While the fold lines are shown in FIG. 55A , the exemplary heating element 100 described and shown in FIGS. 1D-72C may be crimped, folded, or otherwise bent along the fold lines. Folding the heating element 100 along fold lines 120 forms platform tine portions 124 defined by the areas between the fold lines 120 and / or side tine portions 126 defined by the areas between the fold lines 120 and the outer edges 103 of the tines 102. The platform tine portions 124 may contact and / or support one end of the wicking element 70. The side tine portions 126 may contact both sides of the wicking element 70. The platform teeth portion 124 and the side teeth portion 126 define an interior volume of the heating element that receives the wicking element 70 and / or forms a pocket shaped to conform to the shape of at least a portion of the wicking element 70. The interior volume allows the wicking element 70 to be secured and held by the heating element 100 within the pocket. The platform teeth portion 124 and the side teeth portion 126 contact the wicking element 70, providing multi-dimensional contact between the heating element 100 and the wicking element 70. The multi-dimensional contact between the heating element 100 and the wicking element 70 provides more efficient and / or faster transfer of vaporizable material to be vaporized from the reservoir 55 of the vaporizer cartridge 52 to the heating portion 104 (via the wicking element 70).
[0103] In some embodiments, portions of legs 106 of heating element 100 may be bent along fold lines 122A, 122B. By folding portions of legs 106 of heating element 100 away from each other along fold lines 122, legs 106 are positioned away from heating portion 104 (and tines 102) of heating element 100 in a first direction (e.g., in the same plane) and / or in a second direction opposite the first direction. Thus, by folding portions of legs 106 of heating element 100 away from each other along fold lines 122, heating portion 104 is spaced away from the body of vaporizer cartridge 52. Folding portions of legs 106 along fold lines 122A, 122B forms bridges 185. In some embodiments, bridges 185 help reduce or eliminate overflow of vaporizable material from heating portion 104, such as by capillary action. The bridges 185 also help to insulate the heating section 104 from the legs 106 so that heat generated in the heating section 104 does not reach the legs 106. This also helps to localize the heating of the heating element 100 within the heating section 104.
[0104] In some embodiments, heating element 100 may be bent along fold lines 123 to define cartridge contacts 65. Cartridge contacts 65 may be exposed to the environment or otherwise accessible (and may be located within a portion of the cartridge, such as the outer shell) for contacting the receptacle contacts, while other portions of heating element 100, such as heating portion 104, are located in inaccessible portions of vaporizer cartridge 52, such as the wick housing.
[0105] In some embodiments, the legs 106 include retaining portions 99 configured to be bent around at least a portion of the wick housing 98 that surrounds at least a portion of the wicking element 70 and the heating element 100 (such as the heating portion 104). The retaining portions 99 form the ends of the legs 106. The retaining portions 99 help secure the heating element 100 and the wicking element 70 to the wick housing 98 (and the vaporizer cartridge 52). Alternatively, the retaining portions 99 may be bent away from at least a portion of the wick housing 98.
[0106] 44-49 illustrate another example of a heating element 100 consistent with embodiments of the present invention. As shown, the heating element 100 includes one or more tines 102 located on a heating portion 104, one or more legs 106 extending from the tines 102, and cartridge contacts 65 formed at and / or as part of each of the ends of the one or more legs 106.
[0107] The tines 102 may be folded and / or crimped to define a pocket in which the wicking element 70 (e.g., a flat pad) resides. The tines 102 include a platform tine portion 124 and a side tine portion 126. The platform tine portion 124 is configured to contact one side of the wicking element 70, and the side tine portion 126 is configured to contact the other, opposing side of the wicking element 70. The platform tine portion 124 and the side tine portion 126 form a pocket shaped to receive the wicking element 70 and / or conform to the shape of at least a portion of the wicking element 70. The pocket allows the wicking element 70 to be secured and held by the heating element 100 within the pocket.
[0108] In this example, the tines 102 have various shapes and sizes and are spaced apart from one another by the same or varying distances. For example, as shown, each of the side tine portions 126 includes at least four tines 102. In a first pair 170 of adjacent tines 102, each adjacent tine 102 is spaced apart by an equal distance from an inner region 176 located near the platform tine portion 124 to an outer region 178 located near the outer edge 103. In a second pair 172 of adjacent tines 102, the adjacent tines 102 are spaced apart by varying distances from the inner region 176 to the outer region 178. For example, adjacent tines 102 in the second pair 172 are spaced apart by a greater distance in the inner region 176 than in the outer region 178. These configurations can help maintain a constant and uniform temperature along the length of the tines 102 of the heating section 104. By maintaining a constant temperature along the length of the tines 102, the maximum temperature can be maintained more uniformly throughout the heated section 104, which may provide a higher quality aerosol.
[0109] As described above, each of the legs 106 can include and / or define a cartridge contact 65 configured to contact a corresponding receptacle contact 62 of the vaporizer 10. In some embodiments, each pair of legs 106 (and cartridge contacts 65) may contact a single receptacle contact 62. In some embodiments, the legs 106 include a retaining portion 99 that is configured to be bent and extends generally away from the heating portion 104. The retaining portion 99 is configured to be positioned within a corresponding recess in the wick housing 98. The retaining portion 99 forms the end of the legs 106. The retaining portion 99 helps secure the heating element 100 and wicking element 70 to the wick housing 98 (and vaporizer cartridge 52). The retaining portion 99 may have a tip portion 99A that extends from the end of the retaining portion 99 toward the heating portion 104 of the heating element 100. This configuration reduces the possibility of the retaining portion coming into contact with another portion of the vaporizer cartridge 52 or with a cleaning device for cleaning the vaporizer cartridge 52 .
[0110] The outer edge 103 of the tines 102 of the heating portion 104 may include tabs 180. The tabs 180 may include one, two, three, four, or more tabs 180. The tabs 180 may extend outward from the outer edge 103 and away from the center of the heating element 100. For example, the tabs 180 can be disposed along an edge of the heating element 100 that surrounds an interior volume defined by at least the side tine portions 126 for receiving the wicking element 70. The tabs 180 may extend outward away from the interior volume of the wicking element 70. The tabs 180 may also extend away in a direction opposite the platform tine portions 124. In some embodiments, tabs 180 disposed on opposite sides of the interior volume of the wicking element 70 may extend away from each other. This configuration helps to widen the opening to the interior volume of the wicking element 70, thereby helping to reduce the likelihood of the wicking element 70 getting caught, torn, and / or damaged when assembled to the heating element 100. Depending on the material of the wicking element 70, the wicking element 70 can easily get caught, torn, and / or otherwise damaged when assembled to (e.g., placed within or inserted into) the heating element 100. Contact between the wicking element 70 and the outer edges 103 of the tines 102 can also cause damage to the heating element. The shape and / or positioning of the tabs 180 allows the wicking element 70 to be more easily positioned within or toward the pocket (e.g., the interior volume of the heating element 100) formed by the tines 102, thereby preventing or reducing the likelihood of damage to the wicking element 70 and / or the heating element. Thus, tabs 180 help reduce or prevent damage caused to heating element 100 and / or wicking element 70 when wicking element 70 comes into thermal contact with heating element 100. The shape of tabs 180 also helps minimize its effect on the resistance of heating portion 104.
[0111] In some embodiments, at least a portion of the cartridge contacts 65 and / or at least a portion of the legs 106 may be plated with one or more outer plating materials 150 to reduce contact resistance at the point where the heating element 100 contacts the receptacle contacts 62.
[0112] 50A-55B illustrate another example of a heating element 100 consistent with embodiments of the present invention. As shown, the heating element 100 includes one or more tines 102 located on a heating portion 104, one or more legs 106 extending from the tines 102, and cartridge contacts 65 formed at and / or as part of each of the ends of the one or more legs 106.
[0113] The tines 102 may be folded and / or crimped to define a pocket in which the wicking element 70 (e.g., a flat pad) resides. The tines 102 include a platform tine portion 124 and a side tine portion 126. The platform tine portion 124 is configured to contact one side of the wicking element 70, and the side tine portion 126 is configured to contact the other, opposing side of the wicking element 70. The platform tine portion 124 and the side tine portion 126 form a pocket shaped to receive the wicking element 70 and / or conform to the shape of at least a portion of the wicking element 70. The pocket allows the wicking element 70 to be secured and held by the heating element 100 within the pocket.
[0114] In this example, the teeth 102 have the same shape and size and are spaced apart at equal distances. Here, the teeth 102 include a first side tooth portion 126A and a second side tooth portion 126B spaced apart by a platform tooth portion 124. Each of the first and second side tooth portions 126A, 126B includes an inner region 176 located near the platform tooth portion 124 and an outer region 178 located near the outer edge 103. In the outer region 178, the first side tooth portion 126A is positioned generally parallel to the second tooth portion 126B. In the inner region 176, the first side tooth portion 126A is positioned offset from the second tooth portion 126B, and the first and second side tooth portions 126A, 126B are not parallel. This configuration can help maintain a constant and uniform temperature along the length of the teeth 102 of the heating section 104. By maintaining a constant temperature along the length of the tines 102, the maximum temperature can be maintained more uniformly throughout the heated section 104, which may provide a higher quality aerosol.
[0115] As described above, each of the legs 106 can include and / or define a cartridge contact 65 configured to contact a corresponding receptacle contact 62 of the vaporizer 10. In some embodiments, each pair of legs 106 (and cartridge contacts 65) may contact a single receptacle contact 62. In some embodiments, the legs 106 include a retaining portion 99 that is configured to be bent and extends generally away from the heating portion 104. The retaining portion 99 is configured to be positioned within a corresponding recess in the wick housing 98. The retaining portion 99 forms the end of the legs 106. The retaining portion 99 helps secure the heating element 100 and wicking element 70 to the wick housing 98 (and vaporizer cartridge 52). The retaining portion 99 may have a tip portion 99A that extends from the end of the retaining portion 99 toward the heating portion 104 of the heating element 100. This configuration reduces the possibility of the retaining portion coming into contact with another portion of the vaporizer cartridge 52 or with a cleaning device for cleaning the vaporizer cartridge 52 .
[0116] The outer edge 103 of the tines 102 of the heating portion 104 may include a tab 180. The tab 180 may extend outward from the outer edge 103 and away from the center of the heating element 100. The tab 180 may be shaped to allow the wicking element 70 to be more easily positioned within the pocket formed by the tines 102, thereby preventing or reducing the chance of the wicking element 70 getting caught on the outer edge 103. The shape of the tab 180 helps to minimize its effect on the resistance of the heating portion 104.
[0117] In some embodiments, at least a portion of the cartridge contacts 65 and / or at least a portion of the legs 106 may be plated with one or more outer plating materials 150 to reduce contact resistance at the point where the heating element 100 contacts the receptacle contacts 65.
[0118] 56-57 show an example of an atomizer assembly 26 with a heating element 100 assembled to a wick housing 98, and FIG. 58 shows an exploded view of the atomizer assembly 26 consistent with embodiments of the present invention. The wick housing 98 may be made of plastic, polypropylene, or the like. The wick housing 98 includes four recesses 192 in which at least a portion of each of the legs 106 of the heating element 100 may be positioned and secured. As shown, the wick housing 98 also includes an opening 193 that provides access to an interior volume 194 within which at least the heating portion 104 and wicking element 70 of the heating element 100 are disposed.
[0119] The wick housing 98 may also include a separate heat shield 118A, shown in FIG. 59 . The heat shield 118A is disposed within an interior volume 194 within the wick housing 98 between the wall of the wick housing 98 and the heating element 100. The heat shield 118A is shaped to at least partially surround the heating portion 104 of the heating element 100 and space the heating element 100 from the sidewalls of the wick housing 98. The heat shield 118A can help to insulate the heating portion 104 from the body of the vaporizer cartridge 52 and / or the wick housing 98. The heat shield 118A minimizes the effects of heat emanating from the heating portion 104 of the body of the vaporizer cartridge 52 and / or the wick housing 98, protects the structural integrity of the body of the vaporizer cartridge 52 and / or the wick housing 98, and helps prevent melting or other deformation of the vaporizer cartridge 52 and / or the wick housing 98. The heat shield 118A also helps maintain a constant temperature in the heated section 104 by retaining heat within the heated section 104, thereby preventing or limiting heat loss.
[0120] Heat shield 118A includes one or more slots 190 (e.g., three slots) at one end that align with one or more slots (e.g., one, two, three, four, five, six, or more slots) 196 formed in a portion of wick housing 98 opposite opening 193, such as the base of wick housing 98 (see FIGS. 57 and 69). The one or more slots 190, 196 allow for the flow of liquid vaporizable material within heated portion 104 and the relief of pressure caused by the vaporization of the vaporizable material without affecting the liquid flow of the vaporizable material.
[0121] In some embodiments, flooding may occur between the heating element 100 (e.g., legs 106) and the outer wall of the wick housing 98 (or between portions of the heating element 100). For example, as shown by liquid path 199, capillary pressure between the legs 106 of the heating element 100 and the outer wall of the wick housing 98 may cause liquid vaporizable material to accumulate. In such cases, there may be sufficient capillary pressure to draw the liquid vaporizable material from the reservoir and / or heating portion 104. To help restrict and / or prevent the liquid vaporizable material from escaping the interior volume of the wick housing 98 (or heating portion 104), the wick housing 98 and / or heating element 100 may include a capillary feature that causes a sudden change in capillary pressure, thereby forming a liquid barrier that prevents the liquid vaporizable material from passing through the feature without the use of an additional seal (e.g., a hermetic seal). The capillary feature may define a capillary break formed by a sharp point, bend, curved surface, or other surface of the wick housing 98 and / or heating element 100. The capillary feature allows the conductive element (e.g., heating element 100) to be positioned in both wet and dry regions.
[0122] A capillary feature can be disposed on and / or form part of the heating element 100 and / or wick housing 98 and cause a sudden change in capillary pressure. For example, a capillary feature can include a bend, a sharp point, a curved surface, a sloped surface, or other surface feature along the length of the heating element that causes a sudden change in capillary pressure between the heating element and the wick housing or another component of the vaporizer cartridge. A capillary feature can also include a protrusion or other portion of the heating element and / or wick housing that widens a capillary channel, such as a capillary channel formed between portions of the heating element, between the heating element and the wick housing, etc., sufficient to reduce the capillary pressure in the capillary channel so that the capillary channel does not draw liquid into the capillary channel (e.g., the capillary feature moves the heating element away from the wick housing). Thus, the capillary feature prevents or restricts liquid from flowing beyond the capillary feature and along the liquid path due, at least in part, to a sudden change and / or drop in capillary pressure. The size and / or shape (e.g., bends, sharp points, curved surfaces, angled surfaces, protrusions, etc.) of the capillary feature may be a function of the wetting angle formed between materials such as the heating element and wick housing, or other walls of the capillary channel formed between components, may be a function of the materials of the heating element and / or wick housing or other components, and / or may be a function of the size of the gap formed between two components such as the heating element and / or wick housing that define the capillary channel, among other properties.
[0123] As an example, FIGS. 60A and 60B show a wick housing 98 having a capillary feature 198 that causes a sudden change in capillary pressure. The capillary feature 198 prevents or restricts liquid from flowing past the capillary feature 198 along a liquid path 199, helping to prevent liquid from pooling between the legs 106 and the wick housing 98. The capillary feature 198 on the wick housing 98 separates the heating element 100 (e.g., a component made of metal, etc.) from the wick housing 98 (e.g., a component made of plastic, etc.), thereby reducing the capillary strength between the two components. The capillary feature 198 shown in FIGS. 60A and 60B also includes a sharp edge at the end of the sloped surface of the wick housing that restricts or prevents liquid from flowing past the capillary feature 198.
[0124] 60B, the legs 106 of the heating element 100 may be angled inward toward the interior volume of the heating element 100 and / or the wick housing 98. The angled legs 106 may form a capillary mechanism that helps restrict or prevent liquid from flowing over the outer surface of the heating element and along the legs 106 of the heating element 100.
[0125] As another example, the heating element 100 may be formed with one or more legs 106 and include a capillary feature (e.g., bridge 185) that separates the legs 106 from the heating portion 104 (see FIGS. 39-55). The bridge 185 may be formed by folding the heating element 100 along fold lines 120, 122. In some embodiments, the bridge 185 helps to reduce or eliminate overflow of vaporizable material from the heating portion 104, such as by capillary action. In some examples, such as the exemplary heating element 100 shown in FIGS. 50A-55B, the bridge 185 is angled and / or includes bends to help restrict fluid flow from the heating portion 104.
[0126] As another example, the heating element 100 may include a capillary feature 198 that defines a sharp point to create a sudden change in capillary pressure, thereby preventing liquid vaporizable material from flowing beyond the capillary feature 198. FIG. 61 illustrates an example of a heating element 100 having a capillary feature 198 consistent with embodiments of the present invention. As shown in FIG. 61, the capillary feature 198 may form the end of a bridge 185 that extends outward from the heating portion a distance greater than the distance between the legs 106 and the heating portion 104. The end of the bridge 185 may be a sharp edge that helps further prevent liquid vaporizable material from flowing into the legs 106 and / or exiting the heating portion 104, thereby reducing leakage and increasing the amount of vaporizable material remaining within the heating portion 104.
[0127] 62-63 illustrate a variation of the heating element 100 shown in FIGS. 44-49. In this variation of the heating element 100, the legs 106 of the heating element 100 include bends in the bend region 111. The bends in the legs 106 can form capillary features 198, which help prevent liquid vaporizable material from flowing past the capillary features 198. For example, the bends can create a sudden change in capillary pressure, which can help limit or prevent the liquid vaporizable material from flowing past the bend and / or pooling between the legs 106 and the wick housing 98, which can help limit or prevent the liquid vaporizable material from exiting the heating portion 104.
[0128] 64-65 illustrate a variation of the heating element 100 shown in FIGS. 50A-55B. In this variation of the heating element 100, the legs 106 of the heating element 100 include bends in the bend region 111. The bends in the legs 106 can form capillary features 198, which help prevent the liquid vaporizable material from flowing past the capillary features 198. For example, the bends can create a sudden change in capillary pressure, which can help limit or prevent the liquid vaporizable material from flowing past the bend and / or pooling between the legs 106 and the wick housing 98, which can help limit or prevent the liquid vaporizable material from exiting the heating portion 104.
[0129] FIGS. 68A-69 illustrate another example of an atomizer assembly 26 in which a heating element 100 is assembled to a wick housing 98 and a heat shield 118A, and FIG. 70 illustrates an exploded view of the atomizer assembly 26 consistent with embodiments of the present invention. The wick housing 98 may be made of plastic, polypropylene, or the like. The wick housing 98 includes four recesses 192 in which at least a portion of each of the legs 106 of the heating element 100 may be positioned and secured. Within the recesses 192, the wick housing 98 may include one or more wick housing retention mechanisms 93 (see FIG. 72A ) that help secure the heating element 100 to the wick housing 98, for example, via a snap-fit arrangement between at least a portion of the legs 106 of the heating element 100 and the wick housing retention mechanisms 93. The wick housing retention mechanisms 93 may also help space the heating element 100 from the surface of the wick housing 98, which can help prevent heat from acting on the wick housing and melting a portion of the wick housing 98.
[0130] As shown, the wick housing 98 also includes an opening 193 that provides access to an interior volume 194 within which at least the heating portion 104 of the heating element 100 and the wicking element 70 are disposed.
[0131] The wick housing 98 may also include one or more other cutouts that help space the heating element 100 from the surface of the wick housing 98 and reduce the amount of heat that comes into contact with the surface of the wick housing 98. For example, the wick housing 98 may include a cutout 91. The cutout 91 may be formed along the outer surface of the wick housing 98 proximate the opening 193. The cutout 91 may also include a capillary feature, such as capillary feature 198. The capillary feature of the cutout 91 may define a surface (e.g., a curved surface 198) that breaks contact points between adjacent (or intersecting) walls (such as walls of the wick housing). The curved surface 198 may have a radius sufficient to reduce or eliminate capillary action that forms between adjacent outer walls of the wick housing.
[0132] 68A-69 , the wick housing 98 can include tabs 89. The tabs 89 can help properly position and / or orient the wick housing relative to one or more other components of the vaporizer cartridge during assembly of the vaporizer cartridge. For example, the added material forming the tabs 89 offsets the center of mass of the wick housing 98. The offset center of mass allows the wick housing 98 to rotate or slide in a particular orientation to align with a corresponding feature of another component of the vaporizer cartridge during assembly.
[0133] 71A-71C illustrate an exemplary method of forming an atomizer assembly 26 of a vaporizer cartridge 52, including a wick housing 98, a wicking element 70, and a heating element 100, consistent with embodiments of the present invention. As shown in FIG. 71A, the wicking element 70 may be inserted into a pocket formed in the heating element 100 (e.g., formed by the side tines portion 126 and the platform tines portion 124). In some embodiments, when vaporizable material is introduced into the wicking element 70, the wicking element 70 expands after being secured to the heating element 100.
[0134] FIG. 71B shows a wicking element 70 and a heating element 100 coupled to a wick housing 98, and FIG. 71C shows an example of a wicking element 70 and a heating element 100 assembled to the wick housing 98. At least a portion of the heating element 100, such as the heating portion 104, can be disposed within the interior volume of the wick housing 98. The legs 106 (e.g., the retaining portion 99) of the heating element 100 may couple with an outer wall of the wick housing 98, for example, via a snap-fit configuration. In particular, the retaining portion 99 of the legs 106 can couple with and be at least partially disposed within a recess in the wick housing 98.
[0135] 72A-72C illustrate another exemplary method of forming an atomizer assembly 26 of a vaporizer cartridge 52 including a wick housing 98, a wicking element 70, and a heating element 100, consistent with embodiments of the present invention. As shown in FIG. 72A, the heating element 100 can be coupled to the wick housing 98, for example, by inserting or otherwise disposing at least a portion of the heating element 100, such as the heating portion 104, within the interior volume of the wick housing 98. The legs 106 (e.g., the retaining portion 99) of the heating element 100 may be coupled to an outer wall of the wick housing 98, for example, via a snap-fit configuration. In particular, the retaining portion 99 or another portion of the legs 106 can be coupled to and at least partially disposed within a recess in the wick housing 98, for example, by coupling with the wick housing retention feature 93.
[0136] 72B, the wicking element 70 may be inserted into a pocket formed in the heating element 100 (e.g., formed by the side teeth portion 126 and the platform teeth portion 124). In some embodiments, when the wicking element 70 is coupled with the heating element 100, the wicking element 70 is compressed. In some embodiments, when a vaporizable material is introduced into the wicking element 70, the wicking element 70 expands after fitting within the heating element 70 and being secured to the heating element 100.
[0137] FIG. 72C shows an example of a wicking element 70 and a heating element 100 assembled with a wick housing 98 to form an atomizer assembly 26.
[0138] FIG. 73 shows an exemplary process 3600 for assembling a heating element 100 consistent with embodiments of the present invention. The process flowchart 3600 illustrates method features that may optionally include some or all of the following: At block 3610, a planar substrate having resistive heating properties is provided. At block 3612, the planar substrate may be cut and / or punched into a desired geometric shape. At block 3614, at least a portion of the heating element 100 may be plated. For example, as described above, one or more layers of plating material (e.g., adhesion plating material and / or exterior plating material) may be deposited on at least a portion of the exterior surface of the heating element 100. At block 3616, the heating portion 104 (e.g., the tines 102) may be bent and / or otherwise crimped around the wicking element to conform to the shape of the wicking element and secure the wicking element to the heating element. At block 3618, in some embodiments, the cartridge contacts 65 forming the ends of the legs 106 of the heating element 100 can be bent along a first or second direction along a plane, or along a third direction perpendicular to the first or second direction. At block 3620, the heating element 100 can be assembled to a vaporizer cartridge 52, creating fluid communication between the wicking element 70 and a reservoir of vaporizable material. At 3622, the vaporizable material can be drawn into the wicking element 70, which can be positioned to contact at least two surfaces of the heating portion 104 of the heating element 100. At block 3624, heating means can be provided to the cartridge contacts 65 of the heating element to heat the heating element 100 at least in the heating portion 104. The heating vaporizes the vaporizable material. At block 3626, the vaporized vaporizable material is entrained in an airflow to a mouthpiece of the vaporizer cartridge in which the heating element is positioned.
[0139] (term) As used herein, when a feature or element is referred to as being "on" another feature or element, it can be directly on the other feature or element, or intervening features and / or elements can be present. In contrast, when a feature or element is referred to as being "directly on" another feature or element, there are no intervening features or elements present. When a feature or element is referred to as being "connected," "attached," or "coupled" to another feature or element, it will also be understood that it can be directly connected, attached, or coupled to the other feature or element, or there may be intervening features or elements present. In contrast, when a feature or element is referred to as being "directly connected," "directly attached," or "directly coupled" to another feature or element, there are no intervening features or elements present.
[0140] Although described or illustrated with respect to one embodiment, the features and elements so described or illustrated may be applicable to other embodiments. Those skilled in the art will also understand that a reference to a structure or feature being located "adjacent" another feature may have portions that overlap or underlying the adjacent feature.
[0141] The terms used herein are for the purpose of describing particular embodiments and implementations only and are not intended to be limiting. For example, as used herein, the singular forms "a," "an," and "the" are intended to include the plural unless otherwise specified. Furthermore, it should be understood that the term "comprising," when used herein, refers to the presence of stated features, steps, operations, elements, and / or components, but does not preclude the presence or addition of one or more other features, steps, operations, elements, components, and / or groups thereof. The term "and / or," as used herein, includes any and all combinations of one or more of the associated listed items and may be abbreviated as " / ."
[0142] In the above description and in the claims, phrases such as "at least one" or "one or more" may appear followed by a concatenated list of elements or features. The term "and / or" may also appear in lists of two or more elements or features. Unless implicitly or explicitly contradicted by the context in which it is used, such phrases are intended to refer to any of the listed elements or features individually, or any of the listed elements or features in combination with any of the other listed elements or features. For example, the phrases "at least one of A and B," "one or more of A and B," and "A and / or B" mean "A alone, B alone, or A and B together," respectively. A similar interpretation applies to lists containing more than two items. For example, the phrases "at least one of A, B, and C," "one or more of A, B, and C," and "A, B, and / or C" mean "A alone, B alone, C alone, A and B together, A and C together, B and C together, or A, B, and C together," respectively. Use of the term "based on" above and in the claims is intended to mean "based at least in part on," so that unrecited features or elements are also allowed for.
[0143] Spatially relative terms such as "forward," "backward," "below," "below," "bottom," "above," "top," and the like are used herein to describe the relationship of one element or feature to another, as shown in the figures, for ease of description. It will be understood that spatially relative 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 upside down, elements described as "below" or "below" other elements or features may be oriented "above" the other elements or features. Thus, the exemplary term "below" can encompass both an orientation of above and below. The device may be otherwise oriented (rotated 90 degrees or in other directions) and the spatially relative descriptors used herein interpreted accordingly. Similarly, the terms "upward," "downward," "vertically," "horizontally," and the like are used herein for descriptive purposes only, unless otherwise noted.
[0144] Although the terms "first" and "second" may be used herein to describe various features / elements (including steps), these features / elements should not be limited by these terms unless the context indicates otherwise. These terms may be used to distinguish one feature / element from another. Thus, a first feature / element described below could be referred to as a second feature / element, and similarly, a second feature / element described below could be referred to as a first feature / element, without departing from the teachings provided herein.
[0145] As used in this specification and claims, including those used in the examples, and unless otherwise expressly specified, all numbers can be read as if preceded by the word "about" or "approximately," even if the term is not explicitly stated. The phrase "about" or "approximately" is used when describing a size and / or location to indicate that the described value and / or location is within a reasonable expected range of value and / or location. For example, a numerical value may have a value that is ±0.1% of the specified value (or range of values), ±1% of the specified value (or range of values), ±2% of the specified value (or range of values), ±5% of the specified value (or range of values), ±10% of the specified value (or range of values), etc. Numeric values given herein should also be understood to include about or approximately that value, unless the context dictates otherwise. For example, if the value "10" is disclosed, "about 10" is also disclosed. Any numerical range recited herein is intended to include all subranges contained therein. As will be appreciated by those skilled in the art, when a value is disclosed, it is understood that "less than or equal to that value," "greater than or equal to that value," and possible ranges between values are also disclosed. For example, if a value "X" is disclosed, "less than or equal to X" and "greater than or equal to X" (e.g., where X is a numerical value) are also disclosed. It is also understood that throughout this application, data is provided in several different formats, and that this data represents endpoints and starting points, and ranges for any combination of the data points. For example, when a specific data point "10" and a specific data point "15" are disclosed, it is understood that not only the range between 10 and 15, but also greater than 10 and greater than 15, greater than or equal to 10 and greater than 15, less than 10 and less than 15, less than or equal to 10 and less than 15, and equal to 10 and equal to 15 are disclosed. It is also understood that each number between two specific numbers is disclosed. For example, if 10 and 15 are disclosed, then 11, 12, 13, and 14 are also disclosed.
[0146] While various exemplary embodiments have been described above, any of several modifications may be made to the various embodiments without departing from the teachings herein. For example, the order in which the various described method steps are performed may often be changed in alternative embodiments, and in other alternative embodiments, one or more method steps may be skipped entirely. Optional features of the various apparatus and system embodiments may be included in some embodiments and not in other embodiments. Accordingly, the foregoing description has been provided primarily for illustrative purposes and should not be construed as limiting the scope of the claims.
[0147] One or more aspects or features of the invention described herein may be implemented in digital electronic circuitry, integrated circuits, specially designed application-specific integrated circuits (ASICs), field-programmable gate array (FPGA) computer hardware, firmware, software, and / or combinations thereof. These various aspects or features may include implementation in one or more computer programs executable and / or interpretable on a programmable system including at least one programmable processor, which may be special-purpose or general-purpose, coupled to transmit and receive data and instructions from a storage system, at least one input device, and at least one output device. The programmable system or computing system includes clients and servers. Clients and servers are typically remote from each other and typically interact through a communications network. The relationship of client and server arises by virtue of computer programs running on the respective computers and having a client-server relationship to each other.
[0148] These computer programs, also referred to as programs, software, software applications, applications, components, or code, contain machine instructions for a programmable processor and may be implemented in high-level procedural languages, object-oriented programming languages, functional programming languages, logic programming languages, and / or assembly / machine languages. As used herein, the term "machine-readable medium" refers to a computer program product, apparatus, and / or device, such as a magnetic disk, optical disk, memory, programmable logic device (PLD), etc., used to provide machine instructions and / or data to a programmable processor, including a machine-readable medium that receives the machine instructions as a machine-readable signal. The term "machine-readable signal" refers to a signal used to provide machine instructions and / or data to a programmable processor. A machine-readable medium may non-transitory store such machine instructions, such as, for example, a non-transitory solid-state memory or a magnetic hard drive or any equivalent storage medium. A machine-readable medium may alternatively or additionally store such machine instructions in a transient manner, such as, for example, a processor cache or other random access memory associated with one or more physical processor cores.
[0149] The examples and figures included herein illustrate, by way of illustration and not limitation, specific embodiments in which the invention may be practiced. As noted above, other embodiments may be utilized or derived therefrom, such that structural and logical substitutions and changes may be made without departing from the scope of the present disclosure. Such embodiments of the inventive subject matter may be referred to herein, individually or collectively, by the term "invention," merely for convenience and without any intention to intentionally limit the scope of this application to any single invention or inventive concept, even though in fact more than one invention or inventive concept is disclosed. Thus, although specific embodiments have been illustrated and described herein, any configurations calculated to achieve the same purpose may be substituted for the specific embodiments shown. The present disclosure is intended to cover any adaptations or variations of the various embodiments. Combinations of the above embodiments, as well as other embodiments not specifically described herein, will be apparent to those skilled in the art upon reviewing the above description.
Claims
1. 1. An atomizer assembly for a vaporizer cartridge configured to be coupled to a vaporizer body, the atomizer assembly comprising: a wick housing comprising an outer wall defining an interior volume, the outer wall including two opposing short sides and two opposing long sides, each of the two opposing long sides forming a recess therein configured to releasably couple the vaporizer cartridge to a corresponding feature of the vaporizer body; Wicking elements and a heating element comprising a heating portion and a connection portion, the heating portion configured to heat a vaporizable material stored in the wicking element to generate an aerosol, and the connection portion configured to be in electrical communication with a power source to provide power to the heating portion; The atomizer assembly, wherein the connecting portion extends from the interior volume beyond the outer wall such that the outer wall is configured to be located between the heating portion and the connecting portion.
2. 2. The atomizer assembly of claim 1, wherein the recess is located proximate to an intersection between a major side of the two opposing major sides and a minor side of the two opposing minor sides.
3. 3. The atomizer assembly of claim 1, wherein each of the two opposing long sides includes two recesses.
4. The atomizer assembly according to claim 1 , wherein the outer wall further includes a base disposed substantially perpendicular to the two opposing short sides and the two opposing long sides.
5. 5. The atomizer assembly of claim 4, wherein the base includes one or more slots, and wherein air pressure caused by a flow of the vaporizable material within the heating portion is configured to escape through the one or more slots.
6. The atomizer assembly of claim 4 or 5, wherein the wick housing further includes an opening opposite the base.
7. The atomizer assembly of claim 6 , further comprising an outer rim surrounding the opening and extending away from the opening.
8. The atomizer assembly of claim 1 , wherein at least one of the two opposing short sides includes a chip recess configured to receive an identification chip.
9. The atomizer assembly of claim 8 , wherein the chip recess includes at least two walls configured to surround and retain the identification chip.
10. The atomizer assembly of claim 9 , wherein the at least two walls include at least four walls.
11. 8. The atomizer assembly of claim 7, wherein the outer wall includes a capillary mechanism that creates a rapid change in capillary pressure between the heating element and the wick housing, thereby preventing the vaporizable material from flowing beyond the capillary mechanism.
12. 12. The atomizer assembly of claim 11, wherein the capillary feature includes a curved surface formed at an intersection between at least one of the two opposing long sides and the outer rim.
13. 13. The atomizer assembly of claim 12, wherein the curved surface has a radius sufficient to break contact points between at least one of the two long sides and the outer rim.
14. 14. The atomizer assembly of claim 11, wherein the capillary mechanism is disposed within a cutout in the outer wall, the cutout being configured to space the heating element away from the outer wall, thereby preventing the outer wall from being exposed to excessive heat.
15. 15. The atomizer assembly of claim 1, further comprising a notch in the outer wall configured to space the heating element from the outer wall, thereby preventing the outer wall from being exposed to excessive heat.
16. Vaporizer body and a vaporizer cartridge configured to be coupled to the vaporizer body; and Equipped with A vaporizer, wherein the vaporizer cartridge includes the atomizer assembly of any one of claims 1 to 15.
Citation Information
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