Aerosol generator case

A reconfigurable case for aerosol generating devices allows users to customize appearance and functionality, addressing limitations in existing systems by enhancing user experience without redesign.

JP7794797B2Active Publication Date: 2026-01-06RAI STRATEGIC HOLDINGS INC
View PDF 5 Cites 0 Cited by

Patent Information

Application Number
JP2023504235
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-07-20
Filing Date
2021-07-21
Publication Date
2026-01-06
Estimated Expiration
2041-07-21

AI Technical Summary

Technical Problem

Existing non-combustion aerosol delivery systems, such as e-cigarettes and tobacco heating products, have limited manufacturer-defined form factors and functionalities, restricting user customization.

Method used

A reconfigurable case for aerosol generating devices that includes a housing, power module, and cap, allowing users to customize the appearance and functionality of the device without requiring redesign or reconfiguration.

Benefits of technology

Enables users to modify and enhance the form and function of their devices, providing aesthetic and functional improvements while avoiding costly redesign processes and regulatory compliance issues.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007794797000001
    Figure 0007794797000001
  • Figure 0007794797000002
    Figure 0007794797000002
  • Figure 0007794797000003
    Figure 0007794797000003
Patent Text Reader

Abstract

A case for an aerosol generating device may include a housing, a power module, and a cap. The housing may include a sleeve portion configured to engage with a portion of the aerosol generating device to retain that portion of the aerosol generating device within the housing. The power module may be disposed within the housing and configured to directly or indirectly provide power to the aerosol generating device. The cap may be operatively coupled to the housing so as to cover a mouthpiece of the aerosol generating device in a closed position and to allow access to the mouthpiece in an open position.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] Exemplary embodiments relate generally to non-flammable aerosol delivery systems, and more particularly to reconfigurable cases for use with non-flammable aerosol delivery devices. [Background technology]

[0002] Non-combustion aerosol delivery systems (e.g., e-cigarettes / tobacco heating products or other such devices) generally contain an aerosolizable material (e.g., a reservoir of source liquid containing a formulation). The formulation typically includes a solid material, such as nicotine or a tobacco-based product, from which an aerosol is generated (e.g., by thermal vaporization) that is inhaled by the user. However, devices containing formulations with other materials (e.g., cannabinoids (e.g., tetrahydrocannabinol (THC) and / or cannabidiol (CBD)), botanicals, drugs, caffeine, and / or other active ingredients) are also possible. Thus, non-combustion aerosol delivery systems typically include an aerosol-generation chamber that contains a vaporizer (e.g., a heater) configured to vaporize a portion of the aerosolizable material within the aerosol-generation chamber to generate an aerosol. When a user inhales into the device's mouthpiece and power is applied to the heater, air is drawn into the device and enters the aerosol-generation chamber, where it mixes with the vaporized aerosolizable material to form a condensation aerosol. A flow path is provided between the aerosol-generation chamber and the opening in the mouthpiece, and the air drawn into the aerosol-generation chamber carries a portion of the condensation aerosol along the flow path to the opening in the mouthpiece, where it exits and is inhaled by the user.

[0003] Aerosol delivery systems include, for example, vapor products, e.g., those that deliver nicotine, commonly referred to as "electronic cigarettes," "e-cigarettes," or electronic nicotine delivery systems (ENDS), as well as non-combustion heating products, including tobacco heating products (THPs). Many of these products take the form of a system that includes a device and a consumable, where the consumable contains the material from which the delivered substance is generated. Typically, the device is reusable and the consumable is disposable (although in so-called "open" systems, the consumable may be refillable). Therefore, the consumable is often sold separately from the device, often in multipacks. Furthermore, subsystems and some individual components of the device or consumable may be supplied by specialized manufacturers.

[0004] Aerosol generating devices, such as those described above, may have manufacturer-defined form factors and functionality limitations when mass-produced. However, some users may desire to change the form and / or functionality of their devices. Summary of the Invention [Problem to be solved by the invention]

[0005] The present invention has been made to solve the problems in the prior art described above. [Means for solving the problem]

[0006] In one exemplary embodiment, a case for an aerosol generating device may be provided. The case may include a housing, a power module, and a cap. The housing may include a sleeve portion configured to engage with a portion of the aerosol generating device to retain that portion of the aerosol generating device within the housing. The power module may be disposed within the housing and configured to directly or indirectly provide power to the aerosol generating device. The cap may be operatively coupled to the housing to cover a mouthpiece of the aerosol generating device in a closed position and to allow access to the mouthpiece in an open position.

[0007] In another exemplary embodiment, a reconfigurable case for an aerosol generating device may be provided. The reconfigurable case may include a housing and a sleeve portion formed within the housing and configured to engage with a portion of the aerosol generating device to retain that portion of the aerosol generating device within the housing. The housing may be configured to be reconfigurable to change the aesthetic appearance of the reconfigurable case or the functionality of the aerosol generating device when the reconfigurable case is operatively coupled to the aerosol generating device.

[0008] It should be understood that this Summary is intended merely to provide a brief summary of some exemplary embodiments so as to provide a basic understanding of some aspects of the present disclosure. Accordingly, it should be understood that the exemplary embodiments described above are examples only and should not be construed as narrowing the scope or spirit of the present disclosure in any way. Other exemplary embodiments, aspects, and advantages will become apparent from the following detailed description, taken in conjunction with the accompanying drawings, which illustrate, by way of example, the principles of some exemplary embodiments described.

[0009] Having broadly described several exemplary embodiments above, reference is now made to the accompanying drawings, which are not necessarily drawn to scale. [Brief explanation of the drawings]

[0010] [Figure 1] FIG. 1 shows a schematic block diagram of a non-flammable aerosol delivery system that can be used in connection with one exemplary embodiment. [Figure 2] 1A and 1B schematically illustrate a partial cutaway view of an aerosol generating device that can be used in connection with one exemplary embodiment. [Figure 3] 3 is a schematic diagram of the device of FIG. 2 operatively coupled to a case to effectively reconfigure the functionality of the device, according to one exemplary embodiment. [Figure 4] 1 illustrates a particular form factor that can be used in accordance with one exemplary embodiment. [Figure 5] FIG. 10 illustrates a block diagram of another reconfigurable case in accordance with an exemplary embodiment. [Figure 6] 1 illustrates an example of a reconfigurable case and inserts that may be provided therefor, according to one exemplary embodiment. [Figure 7] 7A, 7B, 7C, 7D, and 7E illustrate a reconfigurable case with adjustable mountings according to one exemplary embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0011] Some exemplary embodiments will be described in more detail below with reference to the accompanying drawings, which illustrate some, but not all, exemplary embodiments. Indeed, the examples described and illustrated herein should not be construed as limiting the scope, applicability, or configuration of the present disclosure. Rather, these exemplary embodiments are presented so that the disclosure will satisfy applicable legal requirements. Like reference numerals refer to like elements throughout. Additionally, as used herein, the term "or" should be construed as a logical operator that is true if and only if one or more of its operands are true. As used herein, operative coupling should be understood to refer to direct or indirect connections that enable functional interconnection of components operatively coupled to one another, whether directly or indirectly.

[0012] As described above, non-flammable aerosol delivery systems, such as ENDS devices, may be manufactured with limited variations in form and / or function. To facilitate users' ability to customize their devices with respect to form and / or function, some exemplary embodiments may provide a case that may be configured to house the device and add specific functional and / or aesthetic elements that may be user-customizable. Such a case allows users the freedom to modify or customize their device without requiring any redesign or reconfiguration of the device by the manufacturer. This allows users to meet their individual desires for modifying and / or customizing the device while avoiding, for example, the costly process of evaluating design changes for marketability and / or compliance with regulatory regimes.

[0013] When using exemplary embodiments relating to upgrading and / or customizing a non-flammable aerosol delivery system, such as an ENDS device, an example device will be generally described, as some aspects of the smart case described herein may be adapted to interface with such a device. In this regard, Figure 1 depicts a schematic block diagram of a non-flammable aerosol delivery system usable in connection with one exemplary embodiment, while Figure 2 depicts a schematic partial cutaway view of an aerosol generating device usable in connection with one exemplary embodiment.

[0014] Referring first to FIG. 1 , a non-flammable aerosol delivery system 100 may include a housing 110, within which a power supply 120 and a control circuit 130 may be housed. The housing 110 may further include an aerosol generation assembly 140 and an aerosol precursor container 150, within which aerosol precursor material (e.g., aerosolizable material) may be stored or housed. The housing 110 may be of unitary construction or may be formed from two or more sections, which may be removable relative to one another. For example, in an open system, the housing 110 may be of unitary construction with a refillable aerosol precursor container 150. Alternatively, in a closed system, the housing 110 may include at least one section with the aerosol precursor container 150 therein, and once the aerosol precursor material is depleted, the section with the aerosol precursor container 150 therein may be removed and replaced with a new or full aerosol precursor container 150. In some embodiments having a removable section with the aerosol precursor container 150 therein, the removable section may be referred to as a cartridge.

[0015] The control circuitry 130 may be configured to detect or sense when a user initiates a puff event, and in response to detecting the puff event, the control circuitry 130 may actuate the aerosol generation assembly 140 to convert the aerosol precursor material into an aerosol. Accordingly, the control circuitry 130 may include a pressure sensor, a flow sensor, and / or any other suitable device configurable to detect a puff event. A mouthpiece 152 defining an opening 154 in the housing 110 may be associated with the aerosol precursor container 150 and may be used to initiate a puff event by the user inhaling at the mouthpiece 152. Accordingly, in response to detecting the puff event, an aerosol may be generated by the aerosol generation assembly 140 and orally delivered to the user via the mouthpiece 152.

[0016] The aerosol generating assembly 140 may be configured to generate an aerosol from the aerosol precursor material by any suitable means. For example, the aerosol generating assembly 140 may be implemented as a non-combustion heated device that generates an aerosol by, for example, exposing the aerosol precursor material to a heating element (e.g., an induction heater, a conduction heater, a dielectric heater, a microwave heater, a radiant heater, an arc heater, an electrical resistance heater, etc.). In such an embodiment, the aerosol precursor material may be supplied as a consumable and exposed to the aerosol generating assembly 140, whereby the heat of the aerosol generating assembly 140 generates an aerosol from the aerosol precursor material. In some cases, the aerosol precursor material may include a substrate and / or susceptor to facilitate heating and aerosol emission. Alternatively, in the case of a non-combustion non-heated device (e.g., a nebulizer), the aerosol generating assembly 140 may be implemented as or include a vibrating piezoelectric (or piezoelectric magnetic) mesh. However, compressed gas, ultrasound, surface acoustic wave, and other technologies may alternatively be used. A nebulizer may be configured to break down an aerosol precursor material into an aerosol without heating the aerosol precursor material. In other words, the operation of the aerosol-generating assembly 140 may or may not involve heat generation. Furthermore, in some cases, the aerosol-generating assembly 140 may include a combination of elements, including both a heating element and an additional element, such as a vibrating aerosol-generating component (e.g., a vibrating piezoceramic and / or other piezoelectric (or piezomagnetic) material) that cooperates in generating an aerosol from the aerosol precursor material. Hybrid products may also be used. In this case, a hybrid product uses a combination of multiple aerosol-generating materials, one or more of which may be heated. Each of the aerosol-generating materials may be, for example, in the form of a solid, semi-solid, liquid, or gel. Some hybrid products are similar to vapor products, except that the aerosol generated from a liquid crystal or gel aerosol-generating material passes through a second material (such as tobacco) to incorporate additional ingredients before reaching the user.In some exemplary embodiments, the hybrid system includes a liquid or gel aerosol-generating material and a solid aerosol-generating material, which may include, for example, a tobacco product or a non-tobacco product.

[0017] The aerosol precursor material may be a solid, semi-solid, or liquid material. Accordingly, the aerosol precursor container 150 may be configured to hold the aerosol precursor material in any form. In some cases, the aerosol precursor container 150 may be a reservoir configured to store a liquid and operatively coupled (e.g., directly or indirectly) to the aerosol generating assembly 140 to generate an aerosol, as described above. In some examples, the aerosol precursor material may be provided on a substrate (e.g., coated or absorbed onto a substrate), whereby the aerosol precursor material may be incorporated into, stored within, or deposited on a substrate before being used to generate an aerosol.

[0018] Power source 120 may be a replaceable or rechargeable battery. Rechargeable batteries may be useful to prevent or limit waste generation and promote ease of operation. To facilitate charging of power source 120, a charging interface 122 may be provided. Charging interface 122 may include a USB (Universal Serial Bus) port or other charging port into which a charger cord or other charging device may be plugged or inserted. Thus, charging interface 122 may form a receptacle or opening in housing 110.

[0019] Figure 2 is a cross-sectional view of an example non-flammable aerosol delivery device 200 that can be implemented in accordance with an exemplary embodiment. Non-flammable aerosol delivery device 200 is a more detailed example of non-flammable aerosol delivery system 100 of Figure 1, and both may be considered examples of aerosol generation devices. Non-flammable aerosol delivery device 200 of Figure 2 is a two-part device (i.e., a closed system) that includes a control unit 210 and a cartridge 220. Cartridge 220 may be referred to as the consumable part (or replaceable / disposable part), and control unit 210 may be referred to as the reusable part.

[0020] In normal use, the control unit 210 and cartridge 220 may be releasably coupled at a coupling interface 230. When the cartridge 220 is depleted, or when the user simply wants to switch to another cartridge 220 (e.g., for a different flavor), the cartridge 220 may be removed from the control unit 210, and a replacement (i.e., another or new cartridge 220) may be installed in the control unit 210 in place of the original cartridge 220. The coupling interface 230 may provide a structural, electrical, and / or air path connection between the cartridge 220 and the control unit 210 and may be established according to conventional techniques, and the coupling interface 230 may include threads, a latching mechanism, or a bayonet fastener, along with appropriately positioned electrical contacts and openings as necessary to establish the electrical and air path connections between the cartridge 220 and the control unit 210. The particular manner in which cartridge 220 is mechanically mounted to control unit 210 is not critical to the principles described herein, but as a specific example, may be considered herein to include a latching mechanism, such as a portion of cartridge 220 being received in a corresponding receptacle in control unit 210 having cooperating latch-engagement elements. It should also be appreciated that coupling interface 230 may not support electrical connections between respective portions in some embodiments. For example, in some embodiments, a vaporizer may be provided in control unit 210 rather than in cartridge 220.

[0021] The cartridge 220 may include a consumable housing 222 (e.g., as an example of the aerosol precursor container 150 of FIG. 1 ). The consumable housing 222 may be molded from a plastic, composite, or metal material. The consumable housing 222 may support other components of the cartridge 220 and may support a portion of the mechanical coupling interface 230 with the control unit 210. The consumable housing 222, in this example, is generally circularly symmetric about a longitudinal axis along which the cartridge 220 couples to the control unit 210. The consumable housing 222 in this example may be approximately 4 cm in length and around 1.5 cm in diameter. However, it should be understood that the specific geometry, and more generally the overall shape and materials used, may vary in different embodiments.

[0022] A reservoir 224 may be provided within the consumable housing 222 to contain an aerosolizable liquid material (e.g., the aerosol precursor material of FIG. 1 ). The aerosolizable material may be referred to as e-liquid in some embodiments. In this embodiment, the liquid reservoir 224 is toroidal, although it should be understood that other shapes having an outer wall defined by the consumable housing 222 and an inner wall defining an air passageway 226 through the cartridge 220 are within the scope of this disclosure. The reservoir 224 is closed at each end by end walls for containing the e-liquid. The reservoir 224 may be formed according to conventional techniques, for example, from a plastic material integrally molded with the consumable housing 222. The opening of the air passageway 226 at the end of the cartridge 220 provides a mouthpiece outlet 228 for the non-combustible aerosol delivery system, through which a user inhales the aerosol generated by the non-combustible aerosol delivery device 200 during use.

[0023] The cartridge 220 in this embodiment may further include a wicking element 250 and a heating element 260 (e.g., a vaporizer) disposed proximate the end of the reservoir 224 opposite the mouthpiece outlet 228. In this embodiment, the wicking element 250 extends across the air path 226, with the end of the wicking element 250 extending into the e-liquid reservoir 224 through an opening in the interior wall of the reservoir 224. The opening in the interior wall of the reservoir 224 may be sized to roughly match the dimensions of the wicking element 250 to seal against leakage from the reservoir 224 into the air path 226 without overly compressing the wicking element 250 and preventing fluid transfer from occurring.

[0024] The wicking element 250 and the heating element 260 may be disposed within the air path 226 of the cartridge 220, such that the area of ​​the air path 226 surrounding the wicking element 250 and the heating element 260 substantially defines the vaporization region of the cartridge 220. E-liquid within the reservoir 224 penetrates the wicking element 250 from the end of the wicking element 250 that extends into the reservoir 224 and is drawn along the wicking element 250 by surface tension / capillary action (i.e., wicking). The heating element 260, in this embodiment, may be implemented as an electrical resistance wire wrapped around the wicking element 250. In this embodiment, the wicking element 250 may be a glass fiber bundle, although other configurations are possible. In use, power may be supplied to the heating element 260 to vaporize an amount of e-liquid (e.g., an aerosolizable material) drawn by the wicking element 250 to the vicinity of the heating element 260. The vaporized e-liquid is then carried along with air drawn from the vaporization region along air path 226 to form a condensed aerosol that exits the system through mouthpiece outlet 228 and is inhaled by the user. In this manner, power can be applied to heating element 260 to selectively generate aerosol from the e-liquid in cartridge 220. When the device is in use and generating aerosol, the amount of power supplied to heating element 260 can be varied (e.g., by pulse width modulation and / or frequency modulation techniques) to control the temperature and / or rate of aerosol generation as desired.

[0025] Control unit 210 may include an outer housing 212 (e.g., as part of housing 110 of FIG. 1 ), which has an opening that defines an air inlet 214 for non-combustible aerosol dispensing device 200. Non-combustible aerosol dispensing device 200 may also include a battery 270 within outer housing 212 that provides operating power to non-combustible aerosol dispensing device 200. Battery 270 may be operatively coupled to control circuitry 280, which is configured to control and monitor the operation of non-combustible aerosol dispensing device 200. Battery 270 may be an example of power source 120, and control circuitry 280 may be an example of control circuitry 130 of FIG. 1 .

[0026] Control circuitry 280 may be operatively coupled to an inhalation sensor 282 (e.g., a puff detector), which in this embodiment includes a pressure sensor located within a pressure sensor chamber 284. Control circuitry 280 may also be operatively coupled to a visual display 286 (which may be optional). Visual display 286 may include one or more lights configured to indicate various status conditions of non-combustible aerosol delivery device 200 through illumination colors, flashing sequences, or other indications. Alternatively or additionally, visual display 286 may be configured to display text, images, and / or the like via a liquid crystal display (LCD) screen, one or more light-emitting diodes (LEDs), or other display options. Thus, visual display 286 may be provided to visually indicate various characteristics associated with non-combustible aerosol delivery device 200 to a user. For example, visual display 286 may provide information representing current power and / or temperature settings, remaining battery power, and the like. As an alternative (or in addition) to the visual display 286, some exemplary embodiments may include other means (e.g., acoustic signaling or tactile feedback, etc.) for providing information to a user related to the operational characteristics of the non-flammable aerosol delivery device 200.

[0027] Control circuitry 280 may be configured to monitor output from inhalation sensor 282 to determine whether a user is inhaling through mouthpiece opening 228 of cartridge 220, thereby allowing power to be automatically applied to heating element 260 to generate aerosol in response to the user's inhalation. In another embodiment, as an alternative to automatic operation of heating element 260, button 288 may be provided in place of inhalation sensor 282, and power may be applied to heating element 260 in response to a user manually activating button 288 to trigger aerosol generation. As such, button 288 may also be entirely optional and may even be omitted in some cases.

[0028] The outer housing 212 may be formed from, for example, a plastic or metal material and may be molded to any desired contour. In some embodiments, the outer housing 212 may be substantially cylindrical, and thus may have a circular cross-section that generally matches the shape and size of the cartridge 220, thereby providing a smooth transition between the two portions at the coupling interface 230. In some embodiments, the control unit 210 may be approximately 8 cm in length, such that the overall length of the non-flammable aerosol delivery device 200 when the cartridge 220 and control unit 210 are operatively coupled is approximately 12 cm. However, as noted above, it should be understood that the overall shape and size of the components may vary between different exemplary embodiments while still maintaining the principles described herein.

[0029] The air inlet 216 connects to an air path 216 through the control unit 210. The air path 216 of the control unit 210 then connects across the coupling interface 230 to an air path 226 of the cartridge 220 when the control unit 210 and cartridge 220 are operatively coupled. A pressure sensor chamber 284 housing the pressure sensor 282 may be in fluid communication with the air path 216 of the control unit 210 (i.e., the pressure sensor chamber 284 branches off from the air path 216 of the control unit 210). Thus, when a user inhales through the mouthpiece opening 228, the pressure in the pressure sensor chamber 284 drops, which can be detected by the pressure sensor 282, and simultaneously air is drawn in through the air inlet 214, travels along the air path 216 of the control unit 210, across the coupling interface 230, through the aerosol-generating region near the heating element 260 (where the aerosol generated from the aerosolizable material when the heating element 260 is active is carried along with the airflow), travels along the air path 226 of the cartridge 220, and out the mouthpiece opening 228 to be inhaled by the user.

[0030] Battery 270, in this embodiment, is rechargeable and may be charged through charging connector 290. In this case, battery 270 may be charged through an opening in control unit outer housing 212 that defines charging connector 290 to which a charging plug or other charging fixture may be operatively coupled. Charging connector 290 may be of any suitable configuration, including, for example, a USB connector, other standard power connector, or even a proprietary charging connection.

[0031] Control circuitry 280 may be configured or programmed to control the operation of non-combustible aerosol dispensing apparatus 200 to implement its various functions. Control circuitry 280 may be considered to logically include various subunits or circuit elements associated with various aspects of the operation of non-combustible aerosol dispensing apparatus 200 according to the principles described herein, as well as other conventional aspects of the operation of non-combustible aerosol dispensing apparatus 200 (e.g., display driver circuitry and user input detection). It will be appreciated that the functionality of control circuitry 280 may be implemented in a variety of ways, such as using one or more appropriately programmed programmable computers and / or one or more appropriately configured application-specific integrated circuits / circuits / chips / chipsets configured to implement the desired functionality.

[0032] In some cases, non-combustible aerosol delivery device 200 may have three basic operating states. However, additional or different operating states are possible. The three basic operating states may include an “off” state, an “on” state, and a “standby” state. In the off state, non-combustible aerosol delivery device 200 may be unable to generate aerosol (i.e., control circuitry 280 may prevent power from being supplied to heating element 260 in the off state). Non-combustible aerosol delivery device 200 may be placed in the off state, for example, between use sessions, such as when non-combustible aerosol delivery device 200 is likely to be set aside or placed in a user's pocket or bag. In the on state (i.e., active state), the non-combustible aerosol delivery device 200 may be enabled to actively generate aerosol (e.g., the control circuitry 280 may provide (or enable) power to the heating element 260). Thus, typically, the non-combustible aerosol delivery device 200 is in the on state when a user is in the process of inhaling aerosol from the non-combustible aerosol delivery device 200. In the standby state, the non-combustible aerosol delivery system is ready to generate aerosol in response to activation by a user (e.g., ready to provide power to the heating element 260 in the illustrated embodiment), but may not yet generate aerosol. The non-combustible aerosol delivery device 200 is enabled when the user first exits the off state and begins a use session. The non-combustible aerosol delivery device 200 is typically in a standby state when a use session begins (e.g., when a user first turns on the non-combustible aerosol delivery device 200) or between uses during an ongoing use session (e.g., between puffs when a user is using the non-combustible aerosol delivery device 200). While examples of non-combustible aerosol delivery devices 200 that use liquid aerosolizable materials typically return to standby mode between puffs, non-combustible aerosol delivery devices 200 that use solid aerosolizable materials often remain on between puffs to maintain the aerosolizable material at a desired temperature throughout the use session, which may include a series of puffs.

[0033] To generate aerosol in non-burning aerosol delivery device 200, power is supplied to heating element 260 from battery 270 under the control of control circuit 280. When non-burning aerosol delivery device 200 is on, i.e., actively generating aerosol, power may be supplied to heating element 260 in a pulsed manner, e.g., a pulse-width modulation (PWM) scheme may be used to control the level of delivered power. Thus, the power supplied to heating element 260 during an aerosol generation period may include an alternating sequence of on periods during which a power source is connected to heating element 260 and off periods during which a power source is not connected to heating element 260. The pulse-width modulation repetition period (i.e., the duration of adjacent pairs of off and on periods) is 0.020 seconds (20 ms) in this example (i.e., the pulse-width modulation frequency is 50 Hz). The percentage of one cycle period during which power is supplied to the heater (i.e., the length of the on period) is a small fraction of the cycle period, known as the duty cycle of the pulse width modulation. According to certain embodiments of the present disclosure, the control circuitry of the non-flammable aerosol delivery system may be configured to vary the power supplied to the heater by adjusting the duty cycle of the pulse width modulation, for example, to achieve a target level of average power or to achieve a target temperature.

[0034] As noted above, to avoid having to change the design of the aerosol generating device itself, it may be possible (and perhaps even desirable) to provide a path to improving the function and / or appearance of the device in other ways. Some exemplary embodiments may address this issue by providing a case that is reconfigurable with respect to aesthetic appearance and / or functionality. The reconfigurable case may fully or partially enclose the aerosol generating device and be adapted to add or improve specific functionality of the aerosol generating device. Additionally or alternatively, the case may allow a user to change the appearance or aesthetic appearance of the aerosol generating device case. An example of a reconfigurable case is shown in FIG. 3 and will be described with reference to this.

[0035] In one exemplary embodiment, reconfigurable case 300 may be configured to connect to non-flammable aerosol dispensing device 200 in a manner that maintains a particularly sleek, appealing, and user-selectable appearance. However, reconfigurable case 300 may additionally or alternatively be configured to provide additional functionality that allows for enhanced charging and / or sanitation of non-flammable aerosol dispensing device 200. Thus, the combination of non-flammable aerosol dispensing device 200 and reconfigurable case 300, when connected together, can form an aesthetically and / or functionally improved or modified version of non-flammable aerosol dispensing device 200 without otherwise requiring design changes.

[0036] In some exemplary embodiments, reconfigurable case 300 may include cap 310 and housing 320, where housing 320 is configured to receive, mate with, or otherwise connect to non-combustible aerosol dispensing device 200, such that the devices are securely attached to one another. In this regard, in some cases, attachable accessory 300 may be constructed to include a sleeve portion 322 formed within housing 320. Sleeve portion 322 may be configured to have an inner diameter and / or shape that generally matches the outer diameter and / or shape of control unit 210 (or another portion of non-combustible aerosol dispensing device 200). Specifically, a distal end (relative to cartridge 220) of control unit 210 may be configured to slide into sleeve portion 322, as shown by arrow 324 in FIG. 3 . The diameter (or other cross-sectional dimension, in the case of a differently shaped sleeve) of sleeve portion 322 may taper slightly as it extends deeper into housing 320, allowing control unit 210 and sleeve portion 322 to remain in contact with one another due to friction created when control unit 210 is inserted into sleeve portion 322. However, in alternative embodiments, other fastening methods (including latching mechanisms, catch members, complementary ridges / grooves, magnetic coupling, and / or others) may be employed. For example, outer housing 212 of control unit 210 may be made of metal or may have metal portions or magnets on its surface, and sleeve portion 322 may include a magnet arranged to engage control unit 210 (or a magnet or magnetic portion of outer housing 212 of control unit 210).

[0037] The housing 320 and sleeve portion 322 may be configured to leave any desired portions of the control unit 210 and / or cartridge 220 exposed. In some cases, the housing 320 and sleeve portion 322 may leave only at least a portion of the cartridge 220 exposed. Further, in some cases, only the mouthpiece of the cartridge 220 may be exposed. Leaving the cartridge 220 (or at least a portion thereof) exposed (i.e., not enclosed by the sleeve portion 322) may allow the cartridge 220 to be replaced without removing the control unit 210 from the sleeve portion 322. Additionally or alternatively, exposing the mouthpiece portion of the cartridge 220 may allow the non-combustible aerosol delivery device 200 to be used while still in the reconfigurable case 300. Thus, for example, sleeve portion 322 may extend along control unit 210 all the way to mating interface 230 (although in alternative embodiments, sleeve portion 322 may extend all the way to mating interface 230). Furthermore, to the extent that visual display 286 and / or buttons 288 are included on control unit 210, sleeve portion 322 and housing 320 may be configured to leave both visual display 286 and / or buttons 288 exposed, or may be configured to include a window or operable member through which visual display 286 can be viewed and / or buttons 288 can be operated. Thus, reconfigurable case 300 can be attached to control unit 210 without negatively interfering in any way with the functionality of non-flammable aerosol delivery device 200.

[0038] The cap 310 may be removable or repositionable with respect to the housing 320. In one exemplary embodiment, when the cap 310 is in a closed state, the cap 310 may cover at least the mouthpiece of the cartridge 220 (and possibly all exposed portions of the cartridge 220, and possibly also a portion of the control unit 210). On the other hand, when the cap 310 is in an open state (i.e., open position), the cap 310 may be removed or repositioned to expose at least the mouthpiece of the cartridge 220. Thus, the cap 310 may include a hollow portion 312, and when the cap 310 is in a closed state (i.e., closed position), the mouthpiece of the cartridge 220 (and possibly the entire cartridge 220) can fit snugly inside the hollow portion 312.

[0039] When the cap 310 is in the closed position, the non-combustible aerosol dispensing device 200 may be completely enclosed within the reconfigurable case 300. Furthermore, when the cap 310 is in the closed position, the cap 310 may be retained on the housing 320 via a friction fit, a latching mechanism, or another retention method. For example, the cap 310 and / or the housing 320 may include complementary ridges and grooves to retain the cap 310 on the housing 320 in the closed position. Alternatively, the cap 310 may be retained on the housing 320 by a hinge structure, which will be described in more detail below. To allow a user to use the non-combustible aerosol dispensing device 200 to inhale or suction through the mouthpiece of the cartridge 220, the cap 310 may be completely removed or repositioned to expose the mouthpiece of the cartridge 220. Thus, when the cap 310 is in the closed position, the mouthpiece of the cartridge 220 is covered and can be protected from the intrusion of dust, debris, microorganisms, and the like. As such, cap 310 can help keep the mouthpiece protected and hygienic until it is shifted to the open position for use of non-flammable aerosol delivery device 200.

[0040] As described above, the battery 270 of the control unit 210 may be charged through the charging connector 290. Accordingly, in some circumstances, the housing 320 may have an opening 326 at a distal end (relative to the cap 310) of the housing 320 that is positioned to align with the charging connector 290 (although, of course, in embodiments in which the charging connector 290 is positioned elsewhere on the control unit 210, the opening 326 may also be positioned in another area of ​​the housing). The opening 326 may allow air to enter the sleeve portion 322 (e.g., to allow air to also enter the air inlet 214 of the control unit 210). The opening 326 may also allow a charger or charging fixture to interface (directly or indirectly) with the charging connector 290. While direct charging of the battery 270 may be possible through the opening 326, in some cases the opening 326 may instead directly interface with the power supply module 330. The power supply module 330 may serve as a backup, standby, or additional power source for the battery 270. Thus, for example, the power supply module 330 may be a rechargeable or replaceable battery. Additionally, in some cases, the power supply module 330 may be a lithium-ion battery or other battery capable of providing sufficient power in a relatively small form factor. By providing the power supply module 330 as a power source separate from the battery 270 of the non-flammable aerosol delivery device 200, the non-flammable aerosol delivery device 200 may be charged by the power supply module 330 or may be powered by the power supply module 330 for an extended period of time, thereby enhancing operability between charges.

[0041] Thus, for example, power supply module 330 may be separate from battery 270 (i.e., each may be two separate battery packs or cells), and power supply module 330 may provide an alternative power source for non-flammable aerosol delivery device 200 or may provide a power source for charging battery 270. In some cases, both battery 270 and power supply module 330 may be charged separately (and in some cases simultaneously), which may be done via power supply module 330 via charging connector 290 and opening 326. In such cases, opening 326 may itself be configured as a charging port.

[0042] In some embodiments, the power supply module 330 may directly or indirectly provide power to the non-flammable aerosol delivery device 200. In this case, if the power supply is direct, the power supply module 330 may provide power to the control circuitry 280 when the battery 270 is dead or below a threshold charge level. In the case of indirect power supply, the power supply module 330 may be configured to interface with the battery 270 to charge the battery 270. For example, the power supply module 330 may include a charging interface 334 configured to mate with a charging connector 290 of the control unit 210 when the control unit 210 is inserted into the sleeve portion 322. When the charging interface 334 mates with the charging connector 290, the power supply module 330 may be operatively coupled to the battery 270 to enable the battery 270 to be charged by the power supply module 330. Thus, for example, the power supply module 330 may be configured to provide a higher voltage than the battery 270 so that the battery 270 can be charged when the power supply module 330 and the battery 270 are operatively coupled to each other.

[0043] In such an embodiment, the operation of the control circuit 280 may still be unimpeded in that the control circuit 280 may still provide power to the heating element 260 only upon detecting a puff event, and that power may still be provided by the battery 270. However, the battery 270 may be charged simultaneously with the heating element 260 or separately from the heating element 260 (i.e., when the heating element 260 is not operating). Thus, in some cases, charging of the battery 270 from the power supply module 330 may only be possible when the non-combustible aerosol dispensing device 200 is not operating. In some cases, the power supply module 330 may only charge the battery 270 when the non-combustible aerosol dispensing device 200 is in an off state. Also, in some cases, charging of the battery 270 from the power supply module 330 may only be possible when the non-combustible aerosol dispensing device 200 is in an off state or in a standby state. However, as noted above, charging during an on state is also possible in some cases. In some cases, power supply module 330 may be configured to receive information representative of the state of non-combustible aerosol delivery device 200 and control charging of battery 270 (or directly powering control circuitry 280) based on the received information. Thus, for example, charging may be stopped when non-combustible aerosol delivery device 200 enters an active and / or standby state.

[0044] In some embodiments, the position of the cap 310 may inhibit charging of the battery 270. For example, when the cap 310 is closed (indicating that the non-flammable aerosol dispensing device 200 is off), the battery 270 may be charged by the power module 330. On the other hand, when the cap is open (indicating that the non-flammable aerosol dispensing device 200 is idle or in operation), the battery 270 may not be charged by the power module 330. To facilitate controlling charging according to the position of the cap 310, the reconfigurable case 300 may include a position sensor 340 configured to detect the state of the cap 310. The position sensor 340 may be an example of a position detection circuit that can be used to detect the state of the cap 310. Such a circuit may include a sensor (e.g., a Hall effect sensor, a magnetic sensor, or a light sensor (e.g., that measures changes in light levels based on the cap position)), although the position detection circuit may additionally or alternatively include other devices (e.g., a switch, contact, or electrical circuit that makes or breaks when the cap 310 is closed). The position sensor 340 in this embodiment may communicate the detected state of the cap 310 (i.e., closed or open) to the power supply module 330 (or control circuit 280), and charging contacts that enable charging of the battery 270 from the power supply module 330 may be closed when the cap 310 is closed and may be open when the cap 310 is open.

[0045] Charging may additionally or alternatively be controlled based on the detection of a user puff. For example, a puff sensor or other pressure / airflow sensor may be used instead of position sensor 340, or position sensor 340 may further include a puff sensor or other pressure / airflow sensor configured to detect airflow, pressure changes, etc. that may correspond to a puff event (e.g., based on a pressure drop and / or airflow within cap 310 and / or housing 320) and inhibit charging during a puff event. As such, position sensor 340 may be referred to as a puff sensor if a puff sensor is used instead of position sensor 340, or position sensor 340 may alternatively include a puff sensor. Interrupting charging based on the detection of a puff may provide another way for reconfigurable case 300 to detect use conditions, in addition to or as an alternative to position sensor 340 sensing the position of cap 310.

[0046] Thus, as can be seen from the embodiment of FIG. 3 , reconfigurable case 300 may be reconfigurable to provide charging or boosting of battery 270, as well as to provide protective or otherwise clean functionality for the mouthpiece of cartridge 220. FIG. 4 illustrates one exemplary embodiment of reconfigurable case 300 of FIG. 3 , in which reconfigurable case 300 is illustrated in a closed state 400, a transitional state 410, and an open state 420. In closed state 400, housing 320 and cap 310 are in contact with each other, and cap positioning assembly 430 of reconfigurable case 300 is also in a closed state, in which cap 310 completely obscures mouthpiece 440 of cartridge 220.

[0047] With reference to transitional state 410, it will be appreciated that cap positioning assembly 430 may include a guide bar 450, a guide slot 460, and a hinge 470. Guide bar 450 may be configured to slidably engage and slide within guide slot 460, thereby allowing cap 310 to be removed from housing 320 by guide bar 450 moving within guide slot 460 in a direction away from housing 320. As guide bar 450 slides within guide slot 460 and away from housing 320, cap 310 is also carried away from housing 320, exposing mouthpiece 440. Hinge 470 may be configured to be inoperative (i.e., not fold) until cap 310 is removed from housing 320 as shown in transitional state 410.

[0048] In the transient state 410, the cap 310 may separate from the housing 320 a sufficient distance to allow operation of the hinge 470 to rotate or tilt the cap 310 to the open state 420. In some cases, when the hinge 470 is manipulated to rotate the cap 310, the cap 310 may move out of the way of the cartridge 220, thereby allowing removal of the cartridge 220, as shown in the open state 420 of FIG. 4 . One or more switches, contacts, sensors, position detection circuits, etc. may be disposed in one or more locations on the housing 320, the cap 310, and / or the cap positioning assembly 430 to act as the position sensor 340 of FIG. 3 . For example, one or more sensors may detect the position of the hinge 470 to determine when the cap 310 has rotated to the open state. Alternatively, one or more sensors may detect the position of the guide bar 450 within the guide slot 460. As an example, position sensor 340 may detect any movement of guide bar 450 within guide slot 460 away from housing 320 as a transient or open state, which may terminate case charging of battery 270. Similarly, any movement of cap 310 away from housing 320 or any rotation of cap 310 may be detected, which may terminate charging of battery 270, as described above. Thus, for example, charging of battery 270 (e.g., from power module 330 or any other power source) may be terminated unless cap 310 is determined to be in closed state 400.

[0049] As noted above, reconfigurability may be provided for aesthetic purposes rather than functionality. FIG. 5 shows a block diagram of a reconfigurable case 500 that includes such reconfigurability, rather than the functional reconfigurability described above. The reconfigurable case of FIG. 5 also includes a cap 510 and a housing 520, which may be identical or similar in operation and purpose to the cap 310 and housing 320 described above. However, cap 510 may include a receptacle 512, and / or housing 520 may include a receptacle 522. Receptacles 512 and 522 may be recesses formed in or relative to a surface 513 of cap 510 and a surface 523 of housing 520, respectively, that are configured to receive inserts 514 and 524, respectively.

[0050] Inserts 514 and 524 may include colors, designs, logos, words / phrases, etc. that can personalize or otherwise modify the aesthetic appearance of reconfigurable case 500. In some cases, receptacles 512 and 522 (and corresponding inserts 514 and 524) may be located on only one side of reconfigurable case 500. In such cases, receptacles 512 and 522 may be provided on the exterior sides of cap 510 and housing 520 that have the largest surface area. However, in other embodiments, multiple instances of receptacles 512 and 522 may be provided on opposing sides of cap 510 and housing 520 (i.e., opposing exterior sides of cap 510 and housing 520 that have the largest surface area). In yet other embodiments, narrower receptacles and correspondingly shaped inserts may be provided on the smaller surface area sides.

[0051] While FIG. 5 shows only one instance of each of inserts 514 and 524, it should be understood that in some embodiments, multiple instances of one or both may be provided. FIG. 6 shows an example illustrating a physical representation of reconfigurable case 600 according to one exemplary embodiment using multiple instances of inserts. In this case, reconfigurable case 600 is an example of reconfigurable case 500, characterized in that reconfigurable case 600 has multiple different, optional, interchangeable inserts. In this regard, inserts 614 and 624 are each illustrated along with other optional inserts 614′, 614″, 624′, and 624″, which represent different instances of the inserts, such as different colors or designs. Inserts 614 and 624 may snap into their respective receptacles 612 and 622. However, other retention means (e.g., magnetic, adhesive, etc.) may be employed in other embodiments. Thus, inserts 614 and 624 (along with other optional inserts 614', 614", 624', 624") may act as reconfigurable skins or changeable design elements that users can change as their moods or desires change. Additionally or alternatively, sports teams, quotes, names, and other representations may be included on the inserts.

[0052] It should also be understood that some embodiments may combine the features of FIG. 3 and FIG. 5 to provide a reconfigurable case with both functional and aesthetic improvements. Thus, for example, reconfigurable case 500 may include any or all of opening 326, power module 330, charging interface 334, and position sensor 340 that interface with housing 520 and cap 510 in the same manner as described above with respect to interfacing with housing 320 and cap 310 of FIG. 3 . In this manner, the reconfigurable case (cap and / or housing) of example embodiments may be user-customizable with fashionable inserts that change the texture, finish, pattern, color, branding, etc., of the reconfigurable case's exterior. Meanwhile, the reconfigurable case may also have a cap to extend battery life and keep the mouthpiece clean. Other functional and / or aesthetic improvements are possible in addition to or in place of the functional and / or aesthetic improvements described above. For example, as shown in FIG. 7 , a mounting clip may be added to the reconfigurable case.

[0053] FIG. 7, consisting of FIGS. 7A, 7B, 7C, 7D, and 7E, shows various illustrations of another exemplary instance of a reconfigurable case 700. In this case, the reconfigurable case 700 includes a mounting clip 710 disposed on its outer surface 712. Notably, the reconfigurable case 700 of FIG. 7 lacks a cap altogether, although, of course, a cap may be included as described above. Without the cap, the reconfigurable case 700 of this example may be functionally (and structurally) identical to the reconfigurable case 300 of FIG. 3 , excluding the cap and cap-related components / functions (for this example only). Accordingly, the reconfigurable case 700 may include a housing 720, which may include a sleeve portion configured to hold the non-flammable aerosol delivery device 200, as described above with respect to FIG. 3. Reconfigurable case 700 may also include a power module (e.g., similar to power module 330) and therefore may also include opening 726 similar in form and function to opening 326 of Figure 3. Opening 726 may allow a charger or charging device (e.g., stand, plug, cord, etc.) to interface (directly or indirectly) with charging connector 290 of non-combustible aerosol delivery device 200, thereby providing power for charging battery 270 of non-combustible aerosol delivery device 200 directly or via the power module.

[0054] As shown in Figures 7A and 7B, the reconfigurable case 700 may include a mounting clip 710, which may be operatively coupled to an exterior surface 712 of the housing 720. In Figure 7A, the mounting clip 710 is shown aligned with the longitudinal centerlines of the reconfigurable case 700 and the non-combustible aerosol dispenser 200, respectively. However, as shown in Figure 7B, the mounting clip 710 can be rotated (as indicated by arrow 740) to various alignments or positions relative to the longitudinal centerlines of the reconfigurable case 700 and the non-combustible aerosol dispenser 200, respectively. In this regard, Figure 7B shows the mounting clip 710 rotated to be approximately perpendicular to the longitudinal centerlines of the reconfigurable case 700 and the non-combustible aerosol dispenser 200, respectively. However, it should be appreciated that mounting clip 710 may be rotated to any other position between parallel (i.e., aligned) and perpendicular to the respective longitudinal centerlines of reconfigurable case 700 and non-flammable aerosol delivery device 200. Thus, mounting clip 710 may be infinitely adjustable to positions suitable for attaching reconfigurable case 700 to various appliances, structures, clothing, accessories, and the like.

[0055] 7C, 7D, and 7E illustrate how reconfigurable case 700 can be attached in a variety of situations, demonstrating the flexibility provided by attachment clip 710, allowing a user to conveniently store reconfigurable case 700 temporarily. As described above, depending on how reconfigurable case 700 is attached to an object using attachment clip 710, a user can not only charge battery 270 of non-flammable aerosol delivery device 200, but also make non-flammable aerosol delivery device 200 easily accessible for use. In this regard, FIG. 7C illustrates reconfigurable case 700 attached to clothing pocket 750, while FIG. 7D illustrates reconfigurable case 700 attached to shoulder strap 760 of accessory 770 (e.g., a shoulder bag), and FIG. 7E illustrates reconfigurable case 700 attached to the pocket of accessory 780 (e.g., a handbag). In either case, and in other embodiments not shown, the rotational and reorientation flexibility of mounting clip 710 allows reconfigurable case 700 to be positioned in the most desirable orientation for user accessibility.

[0056] Thus, as can be seen from the above examples, a reconfigurable (e.g., aesthetically and / or functionally) case for an aerosol generating device may be provided according to one exemplary embodiment. The case may include a housing, a power module, and a cap. The housing may include a sleeve portion configured to receive a portion of the aerosol generating device and retain that portion of the aerosol generating device within the housing. The power module may be disposed within the housing and configured to directly or indirectly provide power to the aerosol generating device. The cap may be operatively coupled to the housing such that it covers the mouthpiece of the aerosol generating device in a closed position and allows access to the mouthpiece in an open position.

[0057] The case may include numerous modifications, enhancements, or optional additions, some of which are described herein. The modifications, enhancements, or optional additions listed below may be added in any desired combination. In this context, the above-described case may be considered a first embodiment, and other embodiments may be defined by each combination of the modifications, enhancements, or optional additions. For example, a second embodiment may be defined, in which the power module may be configured to enable power supply to the aerosol generation device when the cap is in a closed position and to stop power supply to the aerosol generation device when the cap is in an open position. In one exemplary embodiment, a third embodiment may be defined, in which the case may include a position sensor (e.g., a position detection circuit) disposed in the housing, and the position sensor may be configured to detect open and closed positions and open charging contacts between the power module and the aerosol generation device if the cap is in an open position. The third embodiment may be combined with any or all of the first and second embodiments. In some examples, a fourth embodiment may be defined, in which the cap may be operatively coupled to the housing by a cap positioning assembly. The fourth embodiment may be combined with any or all of the first to third embodiments. In one exemplary embodiment, a fifth embodiment may be defined, in which the cap positioning assembly may include a guide slot formed in the housing, a guide bar configured to be slidably retained in the guide slot and to allow movement of the cap toward and away from the housing, and a hinge operatively connecting the cap to the guide bar. The cap may be configured to rotate approximately 90 degrees about the hinge to expose the mouthpiece for operation of the aerosol generating device. The fifth embodiment may be combined with any or all of the first to fourth embodiments. In some examples, a sixth embodiment may be defined, in which the housing may further include a charging port, and the power module may be rechargeable from an external power source via the charging port. The sixth embodiment may be combined with any or all of the first to fifth embodiments.An exemplary embodiment may define a seventh embodiment, in which the aerosol generating device may be completely enclosed in the case when the cap is in a closed position. The seventh embodiment may be combined with any or all of the first to sixth embodiments. In some examples, an eighth embodiment may be defined, in which at least one of the housing and the cap (and possibly both) may include a receptacle defined by a recess formed in the outer surface of the housing or cap, respectively, and a selected one of a plurality of inserts may be insertable into the receptacle by a user. The eighth embodiment may be combined with any or all of the first to seventh embodiments. In an exemplary embodiment, a ninth embodiment may be defined, in which the multiple inserts may include different colors, patterns, logos, or textures, each of which defines a different aesthetic modification to the case. The ninth embodiment may be combined with any or all of the first to eighth embodiments. In one exemplary embodiment, a tenth embodiment may be defined, in which the power module may be configured to enable power supply to the aerosol generation device when the cap is in a closed position and to stop power supply to the aerosol generation device when the cap is in an open position. The tenth embodiment may be combined with any or all of the first through ninth embodiments. In some examples, an eleventh embodiment may be defined, in which the case may further include a mounting clip operatively coupled to the housing. The mounting clip may be rotatable relative to the housing to a user-selectable position between a first position in which the mounting clip is substantially aligned with a longitudinal centerline of the case and a second position in which the mounting clip is substantially perpendicular to the longitudinal centerline of the case. The eleventh embodiment may be combined with any or all of the first through tenth embodiments.

[0058] Various modifications and other embodiments of the inventions described herein will come to mind to one skilled in the art to which the inventions pertain having the benefit of the teachings presented in the foregoing description and the associated drawings. Accordingly, it is to be understood that the inventions are not limited to the particular embodiments disclosed, and that modifications and other embodiments are intended to be included within the scope of the appended claims. Furthermore, while the foregoing description and associated drawings describe exemplary embodiments in the context of particular example combinations of elements and / or functions, it will be understood that other combinations of elements and / or functions may be provided by alternative embodiments without departing from the scope of the appended claims. In this regard, for example, combinations of elements and / or functions other than those expressly described above are also contemplated as being recited in some of the appended claims. Where advantages, benefits, and / or solutions to a problem are described herein, it will be understood that such advantages, benefits, and / or solutions may be applicable to some example embodiments, but not necessarily to all example embodiments. Therefore, no advantage, benefit, or solution described herein should be considered critical, essential, or indispensable to every embodiment or embodiment claimed herein. Although specific terms are used herein, they are used in a generic and descriptive sense only and not for purposes of limitation.

Claims

1. A case for an aerosol generating device, a housing including a sleeve portion configured to engage a portion of the aerosol generation device to retain the portion of the aerosol generation device within the housing; a power supply module disposed within the housing and configured to provide power to the aerosol generation device; a cap operatively coupled to the housing so as to cover a mouthpiece of the aerosol generating device in a closed position and to allow access to the mouthpiece in an open position; an opening that allows air to enter the sleeve portion and exit through the mouthpiece; Cases including.

2. The case of claim 1, wherein the power supply module is configured to enable power supply to the aerosol generating device when the cap is in the closed position and to stop power supply to the aerosol generating device when the cap is in the open position.

3. the case includes a position detection circuit disposed in the housing; the position detection circuit is configured to detect the open and closed states and, if the cap is in the open state, open a charging contact between the power supply module and the aerosol generating device. The case according to claim 2.

4. 3. The case of claim 2, wherein the cap is operatively coupled to the housing by a cap positioning assembly.

5. the cap positioning assembly includes a guide slot formed in the housing, a guide bar configured to be slidably retained within the guide slot to permit movement of the cap toward and away from the housing, and a hinge operatively coupling the cap to the guide bar; The cap is configured to rotate approximately 90 degrees about the hinge to expose the mouthpiece for operation of the aerosol generating device. The case according to claim 4.

6. The case of claim 1 , wherein the housing further includes a charging port, and the power module is rechargeable from an external power source via the charging port.

7. The case of claim 1 , wherein the aerosol generating device is completely enclosed by the case when the cap is in the closed position.

8. at least one of the housing and the cap includes a receptacle defined by a recess formed in an outer surface of the housing or the cap, respectively; a selected one of a plurality of inserts is insertable into the receptacle by a user; The case according to claim 1.

9. The case of claim 8 , wherein the plurality of inserts include different colors, patterns, logos, textures, or combinations thereof, each of which defines a different aesthetic modification to the case.

10. the housing and the cap each include a receptacle defined by a recess formed in an outer surface of the housing and the cap, respectively; a selected one of a plurality of inserts is insertable into the receptacle by a user; The case according to claim 1.

11. The case of claim 10, wherein the power supply module is configured to enable power supply to the aerosol generating device when the cap is in the closed position and to stop power supply to the aerosol generating device when the cap is in the open position.

12. a mounting clip operatively coupled to the housing; the mounting clip is rotatable relative to the housing to user-selectable positions between a first position in which the mounting clip is generally aligned with a longitudinal centerline of the case and a second position in which the mounting clip is generally perpendicular to the longitudinal centerline of the case; The case according to claim 1.

13. 1. A reconfigurable case for an aerosol generating device, comprising: Housing and a sleeve portion formed within the housing and configured to engage a portion of the aerosol generation device to retain the portion of the aerosol generation device within the housing; an opening that allows air to enter the sleeve portion and exit through a mouthpiece of the aerosol generating device; Including, the housing is configured to be reconfigurable to change the aesthetic appearance of the reconfigurable case or the functionality of the aerosol generation device when the reconfigurable case is operatively coupled with the aerosol generation device. Reconfigurable case.

14. The reconfigurable case of claim 13 , wherein the housing is configured to change both the aesthetic appearance of the reconfigurable case and the functionality of the aerosol generating device.

15. the housing includes a power module configured to provide power to the aerosol generating device; a cap operatively coupled to the housing so as to cover a mouthpiece of the aerosol generating device in a closed position and to allow access to the mouthpiece in an open position; Including, The reconfigurable case of claim 13.

16. 16. The reconfigurable case of claim 15, wherein the power supply module is configured to enable power supply to the aerosol generation device when the cap is in the closed position and to stop power supply to the aerosol generation device when the cap is in the open position.

17. The reconfigurable case of claim 15 , wherein the aerosol generating device is completely enclosed by the reconfigurable case when the cap is in the closed state.

18. the housing and the cap each include a receptacle defined by a recess formed in an outer surface of the housing and the cap, respectively; a selected one of a plurality of inserts can be inserted into the receptacle by a user to change the aesthetic appearance of the reconfigurable case; 16. The reconfigurable case of claim 15.

19. 20. The reconfigurable case of claim 18, wherein the plurality of inserts include different colors, patterns, logos, textures, or combinations thereof, each of which defines a different aesthetic modification to the reconfigurable case.

20. a mounting clip operatively coupled to the housing; the mounting clip is rotatable relative to the housing to a user-selectable position between a first position in which the mounting clip is generally aligned with a longitudinal centerline of the reconfigurable case and a second position in which the mounting clip is generally perpendicular to the longitudinal centerline of the reconfigurable case; The reconfigurable case of claim 13.

Citation Information

Patent Citations

  • Electronic cigarette

    CN204157645U

  • Smoking article

    JP2012034666A

  • Personal charging case for electronic vaping devices

    JP2019513016A

  • Electronic cigarette box and support mechanism

    US20150164138A1

  • Vaporizing device with power component

    US20170367406A1