Aerosol supply system

Customizable user-operable parts in aerosol supply systems address the inefficiencies of fixed functionality by allowing users to tailor the system's operation to their preferences, enhancing user experience and efficiency.

JP7850803B2Active Publication Date: 2026-04-23NICOVENTURES TRADING LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
NICOVENTURES TRADING LTD
Filing Date
2022-09-13
Publication Date
2026-04-23

AI Technical Summary

Technical Problem

Existing aerosol supply systems lack customization options to accommodate different user preferences and operating habits, leading to inefficient operation.

Method used

Incorporation of user-operable parts in aerosol supply systems that can be customized to select from multiple predetermined functions, allowing users to tailor the system's operation to their preferences.

Benefits of technology

Enhances user experience by enabling personalized functionality and efficient operation of the aerosol supply system.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

A customizable system 300 includes an aerosol delivery system 1 for generating an aerosol, and one or more user-actuatable portions 200 operable to trigger a respective function. Each user-actuatable portion 200 is configured to be customizable such that the function of that user-actuatable portion 200 may be selected from a plurality of different predefined functions. Any particular user-actuatable portion 200 may include an actuator 201, such as a button 202 on the aerosol delivery system 1, or a portion of a user interface, such as an icon 256, configured to be displayed on a touch-sensitive display 254 from the customizable system 300.
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Description

Technical Field

[0001] The present disclosure relates to aerosol supply systems, such as but not limited to nicotine delivery systems (e.g., electronic cigarettes, etc.).

Background Art

[0002] Electronic aerosol supply systems often employ electronic cigarettes (e-cigarettes), or more generally, aerosol supply devices. Such aerosol supply systems typically include an aerosolizable material (also called an aerosol generating material), such as a fluid or liquid reservoir that contains a formulation but generally does not necessarily contain nicotine, or a solid such as a tobacco-based product, and from these aerosolizable materials or solids, vapor / aerosol for inhalation by the user is generated, for example, by thermal vaporization. Thus, an aerosol supply system typically includes a vaporizer (also called an aerosol generator) arranged to aerosolize a portion of the aerosolizable material to generate vapor, and usually includes a heating element.

[0003] After the vapor is generated, the vapor may be passed through a flavoring material to add flavor to the vapor (if the aerosolizable material itself is not flavored), and then the (flavored) vapor can be delivered from the aerosol supply system to the user via a mouthpiece.

[0004] A potential drawback of existing aerosol supply systems and related aerosol supply devices is that their functions may be fixed without any form of ability to customize the functionality of the aerosol supply system for different users. This drawback can therefore make the operation of these aerosol supply systems inefficient, as certain users may not be able to operate them in other ways they may prefer. Accordingly, this specification describes various techniques that attempt to address or mitigate some of these problems by introducing user-actuatable portions with functions that can be modified by the user to better suit the operating habits associated with the aerosol supply system. This specification also describes techniques for efficiently operating multiple functions associated with an aerosol supply system from a single location. [Overview of the Initiative]

[0005] According to a first aspect of a particular embodiment, an aerosol supply system for generating aerosols, A customizable system is provided comprising one or more user-operable parts that can be operated to trigger their own functions, each user-operable part being customizable so that its function can be selected from several different predetermined functions.

[0006] According to a second aspect of a particular embodiment, an aerosol supply device for an aerosol supply system comprising a cartridge and an aerosol supply device is provided, the aerosol supply device is It comprises one or more user-operable parts that can be operated to trigger their own functions, and each user-operable part is configured to be customizable so that the function of that user-operable part can be selected from several different predetermined functions.

[0007] According to a third aspect of a particular embodiment, a method is provided for customizing the operation of a customizable system comprising an aerosol supply system for generating an aerosol, the method being: The system is customizable, and includes customizing the operation of user-operable parts, which are configured to trigger functions when operated by selecting a function from a set of different predetermined functions.

[0008] According to a fourth aspect of a particular embodiment, a method is provided for operating a customizable system comprising an aerosol supply system for generating an aerosol, the method being: This involves operating at least one user-operable part from a customizable system to trigger its own function, each user-operable part being configured to be customizable such that its own function can be selected from a variety of predetermined functions.

[0009] It will be understood that the features and embodiments of the present invention described above with respect to various aspects of the present invention are similarly applicable to embodiments of the present invention, as necessary, according to other aspects of the present invention, and may be combined with embodiments of the present invention, not only in the specific combinations described herein.

[0010] Herein, embodiments of the present invention will be described with reference to the attached drawings, which are merely examples. [Brief explanation of the drawing]

[0011] [Figure 1] This figure schematically represents, in perspective view, an aerosol supply system comprising a cartridge and an aerosol supply device (shown separately) according to a particular embodiment of the present disclosure. [Figure 2] Figure 1 shows a schematic diagram of the components of the cartridge of the aerosol supply system in an exploded perspective view. [Figure 3A]Figure 1 schematically shows various cross-sectional views of the cartridge housing of the aerosol supply system. [Figure 3B] Figure 1 schematically shows various cross-sectional views of the cartridge housing of the aerosol supply system. [Figure 3C] Figure 1 schematically shows various cross-sectional views of the cartridge housing of the aerosol supply system. [Figure 4A] Figure 1 schematically shows the perspective and plan views of the partition elements of the cartridge in the aerosol supply system. [Figure 4B] Figure 1 schematically shows the perspective and plan views of the partition elements of the cartridge in the aerosol supply system. [Figure 5A] Figure 1 schematically shows two perspective and plan views of the elastic plug of the cartridge in the aerosol supply system. [Figure 5B] Figure 1 schematically shows two perspective and plan views of the elastic plug of the cartridge in the aerosol supply system. [Figure 5C] Figure 1 schematically shows two perspective and plan views of the elastic plug of the cartridge in the aerosol supply system. [Figure 6A] Figure 1 schematically shows a perspective view and a plan view of the lower cap of the cartridge of the aerosol supply system. [Figure 6B] Figure 1 schematically shows a perspective view and a plan view of the lower cap of the cartridge of the aerosol supply system. [Figure 7] This figure schematically illustrates an embodiment of a customizable system that, according to a particular embodiment of the present disclosure, includes a user-operable part that can be operated to trigger functions related to an aerosol supply system, such as the aerosol supply system shown in Figures 1-6B, and can be used with an aerosol supply system. [Figure 8A]This figure schematically represents at least one user-operable part located in the user interface from a display, relating to a first aerosol supply system, according to a particular embodiment of the present disclosure. [Figure 8B] This figure schematically represents at least one user-operable part located in the user interface from a display, relating to a first aerosol supply system, according to a particular embodiment of the present disclosure. [Figure 8C] This figure schematically represents at least one user-operable part located in the user interface from a display, relating to a second aerosol supply system, according to a particular embodiment of the present disclosure. [Figure 9] This figure schematically represents a portion of the user interface for customizing the functions of the user-operable part from any of Figures 8A to 8C, according to a particular embodiment of the present disclosure. [Modes for carrying out the invention]

[0012] This specification describes aspects and features of specific embodiments and models. Some aspects and features of specific embodiments and models may be implemented in the prior art, and for the sake of brevity, these aspects and features are not described in detail. Therefore, it will be understood that aspects and features of apparatus and methods described herein that are not described in detail may be implemented according to any prior art to implement such aspects and features.

[0013] The present disclosure relates to a non-combustible aerosol supply system (such as an e-cigarette) for use as part of a wider aerosol supply system. According to the present disclosure, a "non-combustible" aerosol supply system is a system in which an aerosolizable material, which is a constituent material of the aerosol supply system (or a component thereof), is not burned and not charred in order to facilitate delivery to the user. An aerosolizable material, which may also be referred to herein as an aerosol generating material or an aerosol precursor material, is a material that can generate an aerosol when heated, irradiated, or otherwise energized. In some embodiments, the aerosolizable material may be flavored.

[0014] Throughout the following description, the terms "e-cigarette" or "electronic cigarette" may be used, but it will be understood that this term may be used interchangeably with an aerosol supply system. Although an electronic cigarette is sometimes known as a vaping device or an electronic nicotine delivery system, note that the presence of nicotine in the aerosolizable material is not an essential requirement.

[0015] In some embodiments, the aerosol supply system is a hybrid device configured to generate an aerosol using a combination of aerosolizable materials, and one or more of the aerosolizable materials may be heated. In some embodiments, the hybrid device includes a liquid or gel aerosolizable material and a solid aerosolizable material. The solid aerosolizable material may include, for example, a tobacco product or a non-tobacco product.

[0016] Typically, a (non-combustible) aerosol supply system may comprise a cartridge / consumable part, and a body / reusable part / aerosol supply device configured to engage removably with the cartridge / consumable part.

[0017] The aerosol supply system may include means for supplying power to a vaporizer and may include an aerosolizable material transport element for receiving the aerosolizable material to be vaporized. The aerosol supply system may include a reservoir for containing the aerosolizable material and, in some embodiments, a further reservoir for containing a flavoring material to be added to the vapor produced from the aerosol supply system.

[0018] In some embodiments, the vaporizer may be a heater / heating element that can interact with the aerosolizable material to release one or more volatile substances from the aerosolizable material to form a vapor / aerosol. In some embodiments, the vaporizer may be able to generate an aerosol from the aerosolizable material without heating. For example, the vaporizer may be able to generate a vapor / aerosol from the aerosolizable material without heat by one or more means, such as vibration, mechanical, pressurizing, or electrostatic means.

[0019] In some embodiments, the delivered substance may be an aerosolizable material containing an active ingredient, a carrier constituent, and optionally one or more other functional ingredients.

[0020] The active ingredient may comprise one or more physiological and / or olfactory active ingredients contained in an aerosolizable material to produce physiological and / or olfactory responses in the user. The active ingredient may be selected from, for example, nutritional supplements, nootropics, and psychotropic drugs. The active ingredient may be naturally occurring or obtained synthetically. The active ingredient may comprise, for example, nicotine, caffeine, taurine, theine, vitamins such as B6 or B12 or C, melatonin, cannabinoids, or components, derivatives, or combinations thereof. The active ingredient may comprise components, derivatives, or extracts of tobacco or another plant. In some embodiments, the active ingredient is a physiological active ingredient and may be selected from nicotine, nicotine salts (e.g., nicotine tartrate / nicotine acid tartrate), nicotine-free tobacco substitutes, other alkaloids such as caffeine, or mixtures thereof.

[0021] In some embodiments, the active ingredient may be an olfactory active ingredient and may be selected from "flavorings" and / or "flavoring agents" that, where permitted by local regulations, can be used to create a desired taste, aroma, or other bodily sensation in products intended for adult consumers. In some cases, such ingredients may be called flavorings, flavoring agents, fragrance materials, refrigerants, heating agents, and / or sweeteners.The ingredients include naturally occurring fragrance materials, plant substances, plant substance extracts, synthetically obtained materials, or combinations thereof (e.g., tobacco, cannabis, licorice, hydrangea, eugenol, magnolia leaf, chamomile, fenugreek, clove, maple, matcha, menthol, mint, aniseed, cinnamon, turmeric, Indian spices, Asian spices, herbs, wintergreen, cherry, berries, red berries, cranberries, peach, apple, orange, mango, clementine, lemon, lime, tropical fruit). Fruits, papaya, rhubarb, grapes, durian, dragon fruit, cucumber, blueberry, mulberry, citrus fruits, Drambuie, bourbon, scotch, whiskey, gin, tequila, rum, spearmint, peppermint, lavender, aloe, cardamom, celery, cascarilla, nutmeg, sandalwood, bergamot, geranium, chats, naswar, betel nut, shisha, pine, honey extract, rose oil, vanilla, lemon oil, orange oil, orange blossom, cherry blossom, cassia, caraway, cognac, jasmine, ylang-ylang Mint, sage, fennel, wasabi, bell pepper, ginger, coriander, coffee, Indian hemp, peppermint oil from any species of the Mentha genus, eucalyptus, star anise, cocoa, lemongrass, rooibos, flax, ginkgo, hazelnut, hibiscus, bay leaf, mate tea, orange peel, rose, tea such as green tea or black tea, thyme, juniper, elderflower, basil, bay leaf, cumin, oregano, paprika, rosemary, saffron, lemon peel, mint, peanut, curcuma, cilantro, myrtle, blackcurrant, valerian, pimento, mace, dami It may also contain other additives such as red bean, mint, olive, lemon balm, lemon basil, chives, fennel, verbena, tarragon, limonene, thymol, camphene), flavor enhancers, bitter taste receptor site blockers, sensory receptor site activators or stimulants, sugars and / or sugar substitutes (e.g., sucralose, acesulfame potassium, aspartame, saccharin, cyclamate, lactose, saccharose, glucose, fructose, sorbitol, or mannitol), as well as charcoal, chlorophyll, minerals, plant matter, or breath fresheners.These ingredients may be imitations, synthetics, natural ingredients, or mixtures thereof. The ingredients may be in any suitable form (e.g., liquids such as oils, solids such as powders, or gases) and may be one or more extracts (e.g., licorice, hydrangea, magnolia leaf, chamomile, fenugreek, clove, menthol, peppermint, aniseed, cinnamon, herbs, wintergreen, cherry, berry, peach, apple, Drambuie, bourbon, scotch, whiskey, spearmint, peppermint, lavender, cardamom, celery, cascarilla, nutmeg, sandalwood, bergamot, geranium, honey extract, rose oil, vanilla, lemon oil, orange oil, cassia, The ingredients may include caraway, cognac, jasmine, ylang-ylang, sage, fennel, bell pepper, ginger, anise, coriander, coffee, or peppermint oil from any species of the Mentha genus), flavor enhancers, bitter taste receptor site blockers, sensory receptor site activators or stimulants, sugars and / or sugar substitutes (e.g., sucralose, acesulfame potassium, aspartame, saccharin, cyclamate, lactose, saccharose, glucose, fructose, sorbitol, or mannitol), and other additives such as charcoal, chlorophyll, minerals, plant matter, or breath fresheners. These ingredients may be imitations, synthetics, natural ingredients, or mixtures thereof. The ingredients may be in any suitable form, e.g., oil, liquid, or powder.

[0022] In some embodiments, the flavoring materials (flavorings) may include menthol, spearmint, and / or peppermint. In some embodiments, the flavorings may include flavoring components of cucumber, blueberry, citrus fruit, and / or red berry. In some embodiments, the flavorings may include eugenol. In some embodiments, the flavorings may include flavoring components extracted from tobacco. In some embodiments, the flavorings may include substances that are perceived by the five senses, usually chemically induced and intended to realize bodily sensations perceived by stimulation of the fifth cranial nerve (trigeminal nerve) in addition to, or instead of, the aromatic or gustatory nerves, and may include agents that produce heating, cooling, tingling, or numbing effects. A suitable heat-reducing agent may be, but is not limited to, vanillyl ethyl ether, and a suitable coolant may be, but is not limited to, eucalyptol or WS-3.

[0023] The transport component may include one or more components capable of forming an aerosol. In some embodiments, the transport component may include one or more of the following: glycerin, glycerol, propylene glycol, diethylene glycol, triethylene glycol, tetraethylene glycol, 1,3-butylene glycol, erythritol, meso-erythritol, ethyl vanillate, ethyl laurate, diethyl suberate, triethyl citrate, triacetin, diacetin mixture, benzyl benzoate, benzyl phenylacetate, tributyline, lauryl acetate, lauric acid, myristic acid, and propylene carbonate.

[0024] One or more other functional ingredients may include one or more of the following: pH adjusters, colorants, preservatives, binders, fillers, stabilizers, and / or antioxidants.

[0025] As previously mentioned, an aerosol supply system (e-cigarette) may often comprise a modular assembly that includes both a reusable part (body - aerosol supply device) and a replaceable consumable part (cartridge). Devices that follow this type of two-part modular configuration may commonly be called two-part devices. It is also common that e-cigarettes generally have an elongated shape. To provide a concrete example, certain embodiments of the disclosure described herein may include this type of generally elongated two-part device that employs a consumable part. However, it will be understood that the underlying principles described herein may be similarly applied to other e-cigarette configurations, and may also be similarly applied to modular devices having three or more parts, such as devices that follow other overall shapes, such as so-called box-mod high-performance devices, which usually have a more rectangular shape.

[0026] Therefore, referring to Figure 1, a schematic perspective view of an exemplary aerosol delivery system (e-cigarette) 1 follows a particular embodiment of this disclosure. In this specification, terms relating to the relative positions of various aspects of the e-cigarette (e.g., terms such as top, bottom, up, down, upper, lower) are used to refer to the orientation of the e-cigarette as shown in Figure 1 (unless otherwise indicated in the context). However, it will be understood that this is merely for the sake of clarity and is not intended to indicate that there is a required orientation for the e-cigarette in use.

[0027] The e-cigarette 1 (aerosol supply system 1) comprises two main components: a cartridge 2 and an aerosol supply device 4. Although the aerosol supply device 4 and cartridge 2 are shown separately in Figure 1, they are joined together during use.

[0028] The cartridge 2 and the aerosol supply device 4 are coupled by establishing mechanical and electrical connections between them. The specific method by which the mechanical and electrical connections are established is not of critical importance to the principles described herein and may be established according to prior art, for example, by using appropriately positioned electrical contacts / electrodes to establish an electrical connection between the two parts as needed, based on mechanical fastening of screw, bayonet, latch, or friction fittings. In the case of the exemplary e-cigarette 1 shown in Figure 1, the cartridge comprises a mouthpiece 33, a mouthpiece end 52, and an interface end 54, and is coupled to the aerosol supply device by inserting the interface end portion 6 of the cartridge into the corresponding receptacle 8 / receiving section of the aerosol supply device. The interface end portion 6 of the cartridge is an interference fit to the receptacle 8 and includes a projection 56 on the inner surface of the receptacle wall 12 that defines the receptacle 8, which engages with a corresponding stopper, in order to achieve a removable mechanical engagement between the cartridge and the aerosol supply device. An electrical connection between the aerosol supply device and the cartridge is established by a pair of electrical contacts at the bottom of the cartridge (not shown in Figure 1) and the corresponding spring-loaded contact pins at the base of the receptacle 8 (not shown in Figure 1). As previously stated, the specific method by which the electrical connection is established is not important to the principles described herein, and in fact, some implementations may not have any electrical connection between the cartridge and the aerosol supply device at all, for example, because the transfer of power from the reusable part to the cartridge may be wireless (e.g., based on electromagnetic induction technology).

[0029] The e-cigarette 1 (aerosol supply system) has a generally elongated shape that extends along a longitudinal axis L. When the cartridge is coupled to the aerosol supply device, the overall length of the e-cigarette is approximately 12.5 cm (along the longitudinal axis) in this example. The overall length of the aerosol supply device is approximately 9 cm, and the overall length of the cartridge is approximately 5 cm (i.e., there is an overlap of approximately 1.5 cm between the interface end portion 6 of the cartridge and the receptacle 8 of the aerosol supply device when they are coupled together). The e-cigarette has a generally elliptical cross-section, which is widest around the center of the e-cigarette and tapers towards the ends in a curved manner. The cross-section around the center of the e-cigarette is approximately 2.5 cm wide and approximately 1.7 cm thick. The end of the cartridge is approximately 2 cm wide and approximately 0.6 mm thick, while the other end of the e-cigarette is approximately 2 cm wide and approximately 1.2 cm thick. The outer casing of the e-cigarette is formed from plastic in this example. It will be understood that the specific size and shape of the e-cigarette, as well as the materials from which it is made, are not of significant importance to the principles described herein and may differ in different implementations. In other words, the principles described herein may be similarly applied to e-cigarettes having different sizes, shapes, and / or materials.

[0030] The aerosol supply device 4 may be broadly conventional in terms of function and general construction techniques, according to specific embodiments of the present disclosure. In the example of Figure 1, the aerosol supply device 4 comprises a plastic outer housing 10 including a receptacle wall 12 that defines a receptacle 8 for receiving the end of a cartridge, as previously described. In this example, the outer housing 10 of the aerosol supply device 4 has a generally elliptical cross-section that conforms to the shape and size of the cartridge 2 at the interface of these parts in order to allow a smooth transition between the two parts. Since the receptacle 8 and the end portion 6 of the cartridge 2 are symmetrical when rotated 180°, the cartridge can be inserted into the aerosol supply device in two different orientations. The receptacle wall 12 includes two aerosol supply device intake openings 14 (i.e., holes in the wall). These openings 14 are positioned to coincide with the intake port 50 of the cartridge when the cartridge is coupled to the aerosol supply device. One of the different openings 14 coincides with the intake port 50 of the cartridge in a different orientation. It will be understood that some implementations may not require any degree of rotational symmetry so that the cartridge can be attached to the aerosol supply device in only one orientation, while other implementations may have a higher degree of rotational symmetry so that the cartridge can be attached to the aerosol supply device in more orientations.

[0031] The aerosol supply device further comprises a battery 16 to supply operating power to the e-cigarette and control circuit 18 for controlling and monitoring the operation of the e-cigarette, user input button 20, indicator light 22, and charging port 24.

[0032] In this example, the battery 16 is rechargeable and may be conventional, for example, of the type commonly used in e-cigarettes and other applications that require a relatively high current supply over a relatively short period of time. The battery 16 may be recharged, for example, via a charging port 24 which may have a USB connector.

[0033] The input button 20 in this example is a conventional mechanical button, for example, equipped with a spring-loaded mounting component, which can be pressed by the user to establish electrical contact in the underlying circuitry. In this regard, the input button may also be considered an input device for detecting user input, for example, to trigger aerosol generation, and the specific method by which the button is implemented is not important. For example, in other implementations, other forms of mechanical buttons or touch buttons (for example, based on capacitive or optical sensing techniques) may be used, or there may be no button at all, and the device may rely on a breath detector to trigger aerosol generation.

[0034] An indicator light 22 is provided to give the user visual indications of various characteristics related to the e-cigarette, such as the operating status (e.g., on / off / standby), and other characteristics such as battery life or fault status. For example, according to common prior art, various characteristics may be indicated by different colors and / or different flashing sequences.

[0035] The control circuit 18 is appropriately configured / programmed to control the operation of the e-cigarette and realize conventional operating functions, in accordance with established techniques for controlling e-cigarettes. The control circuit (processor circuit) 18 may be thought to logically comprise various subunits / circuit elements associated with various modes of operation of the e-cigarette. For example, depending on the functions provided in various implementations, the control circuit 18 may include a power control circuit to control the supply of power from the battery / power source to the cartridge in response to functions related to other functional units / circuits, in addition to a user programming circuit for establishing user input and configuration settings (e.g., user-defined power settings) in response to user input, in accordance with the principles described herein and conventional modes of operation of e-cigarettes, such as an indicator light display drive circuit and a user input detection circuit. It will be understood that the functions of the control circuit 18 may be provided in various different ways, for example, using one or more appropriately programmed programmable computers and / or one or more appropriately configured application-specific integrated circuits / circuits / chips / chipsets configured to provide the desired functions.

[0036] Figure 2 is an exploded schematic perspective view of cartridge 2 (decomposed along the vertical axis L). Cartridge 2 comprises a housing portion 32, a wind tunnel seal 34, a partition element 36, an outlet tube 38, a vaporizer / heating element 40, an aerosolizable material transport element 42, a plug 44, and an end cap 48 with a contact electrode 46. Figures 3-6 show some of these components in more detail and schematicly.

[0037] Figure 3A is a schematic cross-section of the housing portion 32 passing along the vertical axis L, where the housing portion 32 is thinnest. Figure 3B is a schematic cross-section of the housing portion 32 passing along the vertical axis L, where the housing portion 32 is widest. Figure 3C is a schematic view of the housing portion along the vertical axis L, from the interface end 54 (i.e., viewed from below in the orientation of Figures 3A and 3B).

[0038] Figure 4A is a schematic perspective view of the partition element 36 as seen from below. Figure 4B is a schematic cross-section passing through the upper part of the partition element 36 as seen from below.

[0039] Figure 5A is a schematic perspective view of the plug 44 from above, and Figure 5B is a schematic perspective view of the plug 44 from below. Figure 5C is a schematic view of the plug 44 along the vertical axis L as seen from the mouthpiece end 52 of the cartridge (i.e., as seen from above in the orientations of Figures 1 and 2).

[0040] Figure 6A is a schematic perspective view of the end cap 48 from above. Figure 6B is a schematic view of the end cap 48 along the vertical axis L, as seen from the mouthpiece end 52 of the cartridge (i.e., from above).

[0041] In this example, the housing portion 32 comprises a housing outer wall 64 and a housing internal tube 62, which in this example are formed from a single mold of polypropylene. The housing outer wall 64 defines the appearance of the cartridge 2, and the housing internal tube 62 defines the portion of the air tunnel through which the cartridge passes. The housing portion is open at the interface end 54 of the cartridge and closed at the intake end 52 of the cartridge, except for the intake opening / aerosol outlet 60 from the intake 33, which is in fluid communication with the housing internal tube 62. The housing portion 32 includes an opening in the side wall that brings the intake port 50 into the cartridge. In this example, the intake port 50 is approximately 2 mm 2 The outer surface of the outer wall 64 of the housing portion 32 includes the aforementioned projection 56 which engages with a corresponding stopper on the inner surface of the receptacle wall 12 that defines the receptacle 8, in order to achieve a removable mechanical engagement between the cartridge and the aerosol supply device. The inner surface of the outer wall 64 of the housing portion includes further projections 66 which work to form an abutment stop for positioning the partition element 36 along the longitudinal axis L when the cartridge is assembled. The outer wall 64 of the housing portion 32 further includes a hole which forms a latch recess 68 which is positioned to receive a corresponding latch projection 70 in the end cap and secure the end cap to the housing portion when the cartridge is assembled.

[0042] The outer wall 64 of the housing portion 32 includes a double-wall section 74 that defines a gap 76 for fluid communication with the air intake 50. The gap 76 forms part of the air tunnel through which the cartridge passes. In this example, because the double-wall section 74 of the housing portion 32 is positioned, this gap is approximately 3 mm 2 A wind tunnel is defined that extends within the outer wall 64 of the housing, which is parallel to the vertical axis and has a cross-section in a plane perpendicular to the vertical axis. The gap / part of the wind tunnel 76 defined by the double wall section of the housing extends downward to the open end of the housing section 32.

[0043] The wind tunnel seal 34 is typically a silicone molded tube containing a through-hole 80. The outer wall of the wind tunnel seal 34 includes a circumferential ridge 84 and an upper collar 82. The inner wall of the wind tunnel seal 34 also includes a circumferential ridge, although these ridges are not visible in Figure 2. When the cartridge is assembled, the wind tunnel seal 34 is fitted to the housing internal tube 62, with the end of the housing internal tube 62 partially extending into the through-hole 80 of the wind tunnel seal 34. The through-hole 80 in the wind tunnel seal has a diameter of approximately 5.8 mm in its relaxed state, while the end of the housing internal tube 62 has a diameter of approximately 6.2 mm so that a seal is formed when the wind tunnel seal 34 is stretched to accommodate the housing internal tube 62. This seal is facilitated by the ridges on the inner surface of the wind tunnel seal 34.

[0044] The outlet tube 38 comprises a tubular section made of ANSI 304 stainless steel or polypropylene, for example, having an inner diameter of about 8.6 mm and a wall thickness of about 0.2 mm. The lower end of the outlet tube 38 includes a pair of diametrically opposed slots 88, the end of which includes a semicircular recess 90. When the cartridge is assembled, the outlet tube 38 is attached to the outer surface of the wind tunnel seal 34. The outer diameter of the wind tunnel seal is about 9.0 mm in a relaxed state so that a seal is formed when the wind tunnel seal 34 is compressed to fit inside the outlet tube 38. This seal is facilitated by a ridge 84 on the outer surface of the wind tunnel seal 34. A collar 80 on the wind tunnel seal 34 forms a retainer for the outlet tube 38.

[0045] The aerosolizable material transport element 42 comprises a capillary wick, and the vaporizer (aerosol generator) 40 comprises a resistance wire heater wound around the capillary wick. In addition to the portion of resistance wire wound around the capillary wick, the vaporizer comprises a conductor 41, which extends through a hole in the plug 44 to a contact electrode 46 attached to the end cap 54, allowing power to be supplied to the vaporizer via an electrical interface established when the cartridge is connected to the aerosol supply device. The vaporizer conductor 41 may contain the same material as the resistance wire wound around the capillary wick, or it may contain a different material (e.g., a lower resistance material) connected to the resistance wire wound around the capillary wick. In this example, the heater coil 40 comprises an iron-nickel alloy wire, and the wick 42 comprises a bundle of glass fibers. The vaporizer and aerosolizable material transport element may be implemented according to any prior art and may include different forms and / or different materials. For example, in some implementations, the wick may include fibrous or solid ceramic material, and the heater may include different alloys. In other examples, the heater and wick may be combined, for example, in the form of porous and resistant materials. More generally, it will be understood that the specific properties of the aerosolizable material transport element and vaporizer are not of significant importance to the principles described herein.

[0046] When the cartridge is assembled, the wick 42 is received in the semicircular recess 90 of the outlet tube 38 such that the central part of the wick around which the heating coil is wound is inside the outlet tube, while the ends of the wick are outside the outlet tube 38.

[0047] In this example, the plug 44 comprises a single molded piece of silicone and may be elastic. The plug comprises a base 100, along with an outer wall 102 extending upward (i.e., toward the mouthpiece end of the cartridge). The plug further comprises an inner wall 104 extending upward from the base 100 and surrounding a through-hole 106 passing through the base 100.

[0048] The outer wall 102 of the plug 44 coincides with the inner surface of the housing portion 32 so that when the cartridge is assembled, the plug 44 forms a seal with the housing portion 32. The inner wall 104 of the plug 44 coincides with the inner surface of the outlet tube 38 so that when the cartridge is assembled, the plug 44 also forms a seal with the outlet tube 38. The inner wall 104 includes a pair of diametrically opposed slots 108, the end of which includes a semicircular recess 110. A cradle section 112, molded to receive a section of the aerosolizable material transport element 42 when the cartridge is assembled, extends outward from the bottom of each slot in the inner wall 104 (i.e., away from the longitudinal axis of the cartridge). The semicircular recesses in the outlet tube and plug work together to define a hole through which the aerosolizable material transport element passes, and the slots 108 and semicircular recesses 110 formed by the inner wall of the plug 44, as well as the slots 88 and semicircular recesses 90 of the outlet tube 38, are aligned so that the slots 88 in the outlet tube 38 accommodate each of the cradles 112. The size of the hole formed by the semicircular recesses through which the aerosolizable material transport element passes corresponds precisely to the size and shape of the aerosolizable material transport element, but is slightly smaller, so that the elasticity of the plug 44 provides some compression. This allows the aerosolizable material to be transported along the aerosolizable material transport element by capillary action, while limiting the range through which the aerosolizable material that is not transported by capillary action can pass through the opening. As described above, the plug 44 further includes an opening 114 in the base 100 through which the vaporizer contact wires 41 pass when the cartridge is assembled. The lower part of the plug base includes spacers 116 that maintain an offset between the remaining surface of the lower part of the base and the end cap 48. These spacers 116 include openings 114 through which the carburetor contact wires 41 pass.

[0049] The end cap 48 includes a polypropylene molded part to which a pair of gold-plated copper electrode posts 46 are attached.

[0050] The ends of the electrode posts 46 on the bottom surface of the end cap are substantially coplanar with the interface end 54 of the cartridge formed by the end cap 48. These ends of the electrode posts 44 are the electrode portions to which spring-loaded contacts in the aerosol supply device 4 connect when the cartridge 2 is assembled and connected to the aerosol supply device 4. The ends of the electrode posts on the inside of the cartridge extend away from the end cap 48 into holes 114 in the plug 44, through which the contact wires 41 pass. The electrode posts are slightly larger in size relative to the holes 114 and include chamfered faces at their upper ends to facilitate insertion into the holes 114 in the plug, and these electrode posts are held in contact with the vaporizer contact wires by the plug.

[0051] The end cap includes a base section 124 and an upright wall 120 that matches the inner surface of the housing portion 32. When the cartridge is assembled, the upright wall 120 of the end cap 48 is inserted into the housing portion 32, so that the latch projection 70 engages with a latch recess 68 in the housing portion 32, snapping the end cap 48 into place on the housing portion. The upper part of the upright wall 120 of the end cap 48 is adjacent to the periphery of the plug 44, and the lower surface of the spacer 116 on the plug is also adjacent to the base section 124 of the end cap, so as to compress the elastic portion 44 and maintain that portion in a slightly compressed state when the end cap 48 is attached to the housing portion.

[0052] The base 124 of the end cap 48 includes a peripheral edge 126 that extends beyond the base of the upright wall 112, having a thickness that matches the thickness of the outer wall of the housing portion at the interface end of the cartridge. The end cap also includes an upright positioning pin 122 that matches a corresponding positioning hole 128 in the plug, which helps to establish the relative position during assembly.

[0053] The partition element 36 comprises a single molded polypropylene and includes a partition 130 and a collar 132 formed by projections from the partition 130 toward the interface end of the cartridge. The partition element 36 includes a central opening 134 through which the outlet tube 38 passes (i.e., the partition is positioned around the outlet tube 38). In some embodiments, the partition element 36 may be formed integrally with the outlet tube 38. When the cartridge is assembled, the upper surface of the outer wall 102 of the plug 44 engages with the lower surface of the partition 130, and then the upper surface of the partition 130 engages with projections 66 on the inner surface of the outer wall 64 of the housing portion 32. In this way, the partition 130 prevents the plug from being pushed too far into the housing portion 32, i.e., the partition 130 is fixedly positioned along the longitudinal axis of the cartridge by projections 66 within the housing portion, thus providing a plug with a fixed surface for pushing. The collar 132, formed by projections from the partition wall, includes a first pair of opposing projections / protrusions 134 that engage with corresponding recesses on the inner surface of the outer wall 102 of the plug 44. The projections from the partition wall 130 further form a pair of cradle sections 136 configured to engage with corresponding cradle sections of cradle sections 112 within the component 44 when the cartridge is assembled, in order to further define an opening through which the aerosolizable material transport element passes.

[0054] When cartridge 2 is assembled, a wind tunnel is formed that extends through the cartridge from the intake port 50 to the aerosol outlet 60. The first section of the wind tunnel, starting from the intake port 50 in the side wall of housing portion 32, is formed by a gap 76 formed by a double-wall section 74 in the outer wall 64 of housing portion 32, and extends from the intake port 50 through the plug 44 toward the interface end 54 of the cartridge. The second section of the wind tunnel is formed by the gap between the base of the plug 44 and the end cap 48. The third section of the wind tunnel is formed by the hole 106 through the plug 44. The fourth section of the wind tunnel is formed by the inner wall 104 of the plug and the region in the outlet tube around the vaporizer 40. This fourth section of the wind tunnel may also be called the aerosol region / aerosol generation region, and is the main region where aerosols are generated during use. The wind tunnel from the intake port 50 to the aerosol generation region may also be called the intake section of the wind tunnel. A fifth section of the wind tunnel is formed by the remainder of the outlet tube 38. A sixth section of the wind tunnel is formed by the internal tube 62 of the outer housing, which connects the wind tunnel to the aerosol outlet 60 located at the end of the intake port 33. The section of the wind tunnel from the aerosol generation region to the aerosol outlet may be called the aerosol outlet section of the wind tunnel.

[0055] Furthermore, when the cartridge is assembled, a reservoir 31 of the aerosolizable material is formed by the space outside the air tunnel and inside the housing portion 32. The reservoir 31 may be filled during manufacturing, for example, through a filling hole that is later sealed, or by other means. The specific properties of the aerosolizable material, for example with respect to composition, are not of importance to the principles described herein, and generally any conventional aerosolizable material of the type commonly used in e-cigarettes may be used. This disclosure may refer to a liquid as the aerosolizable material, and this liquid may be a conventional e-liquid, as described above. However, the principles of this disclosure apply to any aerosolizable material, which may include a liquid, gel, or solid that has the ability to flow, and in the case of a solid, a number of solid particles may be considered to have the ability to flow when considered in large quantities.

[0056] The reservoir is closed at the interface end of the cartridge by a plug 44. The reservoir includes a first region above a partition wall 130 and a second region below the partition wall 130 in the space formed between the air tunnel and the outer wall of the plug. The aerosolizable material transport element (capillary wick) 42 passes through openings in the wall of the air tunnel formed by semicircular recesses 108, 90 in the plug 44 and outlet tube 38, and cradle sections 112, 136 in the plug 44 and partition wall element 36, which interlock with each other as described above. Thus, the end of the aerosolizable material transport element extends into the second region of the reservoir, and the end of the aerosolizable material transport element takes the aerosolizable material from the second region of the reservoir through the opening of the air tunnel to the vaporizer 40 for subsequent vaporization.

[0057] In normal use, cartridge 2 is coupled to aerosol supply device 4, which is activated to supply power to the cartridge via contact electrodes 46 in the end cap 48. The power then flows through connecting wires 41 to the vaporizer 40. In this way, the vaporizer is electrically heated, causing it to vaporize a portion of the aerosolizable material from the aerosolizable material transport element near the vaporizer. This generates an aerosol within the aerosol-generating region of the air path. The aerosolizable material vaporized from the aerosolizable material transport element is replaced by further aerosolizable material drawn from the reservoir by capillary action. While the vaporizer is operating, the user inhales through the inlet end 52 of the cartridge. This causes air to be drawn through any aerosol supply device, where the inlet 14 coincides with the inlet 50 of the cartridge (this coincidence depends on the orientation in which the cartridge is inserted into the receptacle 8 of the aerosol supply device). Next, air enters the cartridge through the intake port 50, passes along the gap 76 in the double-wall section 74 of the housing portion 32, passes between the plug 44 and the end cap 48, and then enters the aerosol generation area surrounding the vaporizer 40 through the hole 106 in the base 100 of the plug 44. The incoming air mixes with the aerosol generated from the vaporizer to produce a concentrated aerosol, which is then extracted along the outlet tube 38 and the inside 62 of the housing portion, and then exits through the inhalation outlet / aerosol outlet 60 for user inhalation.

[0058] From Figures 1-6B above, it can be seen that the structures of possible embodiments of the aerosol supply system 1 configured for generating aerosols are suitable for use in the context of this disclosure (and possibly other forms of the aerosol supply system).

[0059] Referring here to Figures 7-9, the Disclosure also provides a customizable system 300 comprising one or more user-operable parts 200 that are operable to produce their own functions, each user-operable part 200 being configured to be customizable, according to some embodiments, so that the function of the user-operable part may be selected from a number of different predetermined functions and / or the function may be changed from a first predetermined function to a second predetermined function.

[0060] Therefore, in some embodiments, each user-operable unit 200 can thus function as a customizable part of a customizable system 300, and thus can help enable a user to adjust the functionality to suit the functions that that particular user frequently uses.

[0061] Therefore, with the above in mind, it can be understood that the function of each user-operable part 200 may be a function of the aerosol supply system 1 or the customizable system 300, and / or a function related to the aerosol supply system 1 or the customizable system 300.

[0062] With regard to the location of each user-operable part 200, according to some embodiments, such as the embodiment shown in one of the embodiments of Figure 7, any particular user-operable part 200 may be located on the aerosol supply system 1 itself, or in other words, the aerosol supply system 1 may be arranged to include the user-operable parts 200.

[0063] However, according to some embodiments, as further shown in one of the embodiments from Figure 7, any particular user-operable part 200 may be located on an electrical device 250 that can be operated to communicate wirelessly with the aerosol supply system 1, for example, via a wireless connection protocol 270. In this way, the user can operate to trigger functions such as the functions of the aerosol supply system 1, even if the user is not necessarily touching or holding the aerosol supply system 1.

[0064] With regard to what such electrical device 250 can be, it is expected that electrical device 250 may include any form of electrical device that can operately communicate with the aerosol supply system 1, such as (certainly not limited to) a portable device such as a tablet computer, smartphone, or portable computer, or a desktop computer, server, or other multipurpose computing device. It will be understood that, if necessary, electrical device 250 may be operable to communicate with the aerosol supply system 1 wirelessly, for example, via the wireless connection protocol 270. In this case, obviously electrical device 250 may also include a wireless transmitter / receiver / transceiver 252, if necessary, to facilitate any such wireless communication with the aerosol supply system 1 (which may also include a wireless transmitter / receiver / transceiver 97 that communicates with the control circuit 18). Regarding what this wireless connection protocol can be, it can be understood that in some more limited embodiments, the wireless connection protocol may include a wireless local area network (WLAN) connection protocol, a wireless telecommunications connection protocol, and / or more simply, the Bluetooth protocol (which may include both Bluetooth® or Bluetooth Low Energy (BTLE), also known as Bluetooth Smart).

[0065] However, regardless of the location of any particular user-operable part 200, each user-operable part 200 may take on a wide variety of forms. In this regard, for example, according to some embodiments, a particular user-operable part 200 may include an actuator 201, such as a mechanical actuator or an electrically operated actuator, which can be operated to operate a function. According to some particular embodiments, such an actuator 201 may include, for example, a button 202 or a switch (e.g., a capacitive switch). In that case, any such actuator 201 may, according to some very particular embodiments, be an actuator located on a surface of the aerosol supply system 1, such as the outer surface of the aerosol supply system 1. In some particular embodiments, the actuator 201 may be located on an aerosol supply device 4 from the aerosol supply system 1 (if the aerosol supply system 1 includes such a cartridge 2 / aerosol supply device 4 type arrangement as shown in the embodiment of Figure 7).

[0066] Similarly, the customizable system 300 may include a touch-sensitive display 254, such that, according to some additional / alternative embodiments, including those shown in Figures 8A-9, any particular user-operable unit 200 may have at least a portion of a user interface 255 configured to be displayed on the touch-sensitive display 254, which may, according to some particular embodiments, be located in the aerosol supply system 1 (e.g., on any aerosol supply device 4 from the aerosol supply system 1) or on an electrical device 250. Examples of such user interfaces 255 are shown in the embodiments of Figures 8A-9. Thus, for example, according to some particular embodiments, each portion of the user interface 255 may include an icon 256 (e.g., one icon 256 on a particular user-operable unit 200).

[0067] Accordingly, with regard to the above disclosure, an optional user-operable unit 200 may be configured to be customizable, according to some embodiments, to allow the function to be changed from a first predetermined function 258 to a second predetermined function 262. This is best illustrated with reference to the disclosure from Figure 9. Accordingly, in this regard, according to some embodiments, the customizable system 300 may be configured to allow a user to select a function of any particular user-operable unit 200 from a list of various predetermined functions 260.

[0068] Regarding what each of these various functions can be, it will be understood that these functions may include a wide variety of functions to cause either the operation of the aerosol supply system 1 and / or the customizable system 300, or operations related to the aerosol supply system 1 and / or the customizable system 300. Similarly, according to some embodiments, each of such functions may include a function for outputting a feedback signal.

[0069] Therefore, it is clear that, for example according to some embodiments, the functionality of any particular user-operable unit 200 may include any of the following functions, which should not be considered exhaustive: i) Operation of the aerosol supply system 1. According to certain specific embodiments, this operation may be the operation of the vaporizer 40 from the aerosol supply system 1, or any other operation of the aerosol supply system 1. ii) Operation 265 for switching the operating mode of the aerosol supply system 1 from a first operating mode to a second operating mode different from the first operating mode, or between the first operating mode and the second operating mode. Such operation can help enable the user to switch between these two operating modes more quickly, according to some embodiments. iii) Operation 266 of the aerosol supply system to change (such as increasing or decreasing) the power supplied to the vaporizer 40. In this way, the user-operable unit 200 may conveniently and quickly change the power supplied to the vaporizer 40 (for example, between one or more predetermined levels, according to certain specific embodiments). In these embodiments, if the power supplied to the vaporizer 40 is changed, according to certain embodiments, this change may be for a predetermined amount of time or for a predetermined number of operations of the vaporizer (i.e., so that the change is temporary), or it may be permanent (for example, until the user instructs the aerosol supply system to change the power supplied to the vaporizer 40 again). iv) Operations to change (such as increasing or decreasing) the amount or proportion of aerosolizable material vaporized by the aerosol supply system 1. Thus, the user-operable unit 200 may also be operable to allow the user to quickly change the amount of aerosolizable material supplied by the aerosol supply system 1 (for example, between one or more predetermined levels, according to some particular embodiment). Again, any such change may be temporary or permanent, according to such embodiment. v) Operation 268 to turn on and / or turn off the aerosol supply system 1. vi) An operation configured to generate a signal containing usage information of the aerosol supply system 1. Obviously, if such usage information is generated, this usage information may be configured by the customizable system 300 to output to an electrical device 250 (e.g., its memory), or to another predetermined location (such as a server, or the manufacturer / supplier of the aerosol supply system 1), and / or to another electrical device (such as any other form of electrical device described herein), or to a remote location. vii) Operation 269 configured to change the appearance of the aerosol supply system. For example, according to some embodiments, the aerosol supply system 1 may include a portion having an appearance configured to be customized. Thus, in response to an operation configured to change the appearance of the aerosol supply system 1, the aerosol supply system 1 may be configured to change the appearance of the portion having an appearance configured to be customized. viii) An operation configured to output an audio signal from the aerosol supply system 1. According to some embodiments, this operation can be useful if the aerosol supply system 1 is considered lost by the user, and the audio signal can help the user determine where the aerosol supply system 1 may be found. ix) An operation to disable the aerosol supply system 1. According to certain embodiments, this operation may be to disable the aerosol supply system 1 for a predetermined period of time (e.g., to allow a user to request control over the amount of device usage and / or to prevent use if the device falls into the hands of a minor / child), and / or to permanently disable the aerosol supply system 1 (e.g., to allow a user to request permanent disablement of the aerosol supply system 1 when the aerosol supply system 1 is deemed lost by the user and / or when the user intends to dispose of the aerosol supply system 1). Such an operation to disable the aerosol supply system 1 may, in some embodiments, include an operation to lock and / or unlock the aerosol supply system. In this way, the operation may allow the user to disable any control and / or prevent the aerosol supply system from generating aerosols during times when it may be necessary to disable the aerosol supply system, such as while on an airplane or inside a building (such as a hospital or theater) where generating aerosols using the aerosol supply system may be prohibited. x) Function 272 for outputting a feedback signal. According to certain specific embodiments, the feedback signal may include any form of feedback data relating to the operation of the aerosol supply system 1. For example, according to certain embodiments, the feedback signal may include feedback data indicating that the aerosolizable material supplied from the aerosol supply system is too hot or too cold. Similarly, according to certain additional or alternative embodiments, the feedback signal may include feedback data indicating that the aerosolizable material has been supplied for a duration that is too short or too long.

[0070] Insofar as a function for outputting a feedback signal is provided, according to some embodiments, the customizable system 300 may be configured to output a feedback signal to the aerosol supply system 1. In this way, the aerosol supply system (or, according to some embodiments, any control circuit 18 from the aerosol supply system) may be configured to use the feedback data contained in the feedback signal to change the operating parameters of the aerosol supply system 1 (such as the duration of operation of the vaporizer 40, and / or the amount of power supplied to the vaporizer, and / or the temperature of the vaporizer 40). If necessary, the aerosol supply system 1 may be configured to store the feedback data in a memory of the aerosol supply system 1 (which can communicate with the control circuit 18).

[0071] Similarly, insofar as a function for outputting a feedback signal is provided, according to some embodiments, the customizable system 300 may be configured to output a feedback signal to an electrical device such as an electrical device 250. In this way, according to some embodiments, the customizable system 300 may be configured to store feedback data in the memory of the electrical device (for example, for data logging purposes).

[0072] Furthermore, for completeness, insofar as any user-operable unit 200 may be configured to display on a display 254 of an electrical device 250, such as a touch-sensitive display, according to some specific embodiments, the electrical device 250 may be configured to output an instruction 278 for each aerosol supply system 1 to the display 254, according to some specific embodiments, in order to make it more convenient for the user to identify which aerosol supply system 1 each user-operable unit 200 is configured to operate with. Such instructions may obviously take several different forms, according to some specific embodiments, etc., and may include a portion of text 280 indicating identification information of the aerosol supply system 1 on the display 254 (for example, “Jim’s Device” according to the embodiments shown in Figures 8A and 8B, or “Amy’s Device” according to the disclosure from Figure 8C). Similarly, according to some additional or alternative embodiments, the instruction 278 may include a graphic representation 282 of the aerosol supply system. Such graphic representations 282 may, in some embodiments, include the shape of the aerosol supply system, the model of the aerosol supply system (such as a model that is an "ePen3" and "ePod2+" or "Glo" aerosol supply system), and / or the color(s) of the aerosol supply system.

[0073] It should also be understood that, according to some embodiments, the electrical device 250 may be configured to allow the user of the electrical device 250 to switch between a first part 284 of the user interface 255 (e.g., as shown in the embodiment of Figure 8A) configured to allow each operable part 250, 256 to be operable to trigger its own function in the (first) aerosol supply system 1 (e.g., Jim's device), and a second part 286 of the user interface 255 (e.g., as shown in the embodiment of Figure 8C) configured to allow each operable part 250, 256 to be operable to trigger its own function in the second aerosol supply system 1' (e.g., Amy's device), which may differ from the first aerosol supply system 1. Such switching may be achieved by a user interface that includes at least one toggle portion 288 (such as a list of aerosol supply systems 1, 1', or a graphic indicator that allows the user to cycle between aerosol supply systems) to enable the user to switch the user interface 255 between the first portion 284 and the second portion 286.

[0074] For the sake of pure integrity, it will be understood that, with respect to the location of predetermined functions, depending on the application of the user-operable unit 200, these functions may be stored in any required location and / or retrieved from any required location. For example, according to some embodiments, predetermined functions may be located in the memory of the electrical device 250, or, according to some embodiments in which the user-operable unit 200 is located in the aerosol supply system 1, they may be located in the memory of the aerosol supply system 1.

[0075] Furthermore, with respect to the location of any of the multiple operable parts 256, in embodiments in which these operable parts 256 are displayed from the electrical device 250 to the graphical user interface 255 (such as in the embodiments shown in Figures 8A-8C), it will be understood that in some of these embodiments, the multiple operable parts 256 may be configured to be located on the same half / side of the graphical user interface 255, such as the same half / side of the first part 284 of the graphical user interface 255 (in the case of Jim's device, as shown in the embodiment of Figure 8A, where all of the multiple operable parts 256 are located on the lower half / side of the first part 284), and / or on the same half / side of the second part 286 of the graphical user interface 255 (in the case of Amy's device, as shown in the embodiment of Figure 8C, where all of the multiple operable parts 256 are located on the lower half / side of the first part 286). In this way, by having all the operable parts 256 located on the same half / side of the graphical user interface 255, it was found that it facilitates the user's understanding of where each of the operable parts 256 is located, and therefore makes it easier for the user to identify and operate the operable parts 256 in the medium to long term.

[0076] Similarly, continuing the description of the location of any of the multiple operateable parts 256, in embodiments in which these operateable parts 256 are displayed from the electrical device 250 to a graphical user interface 255 (such as in the embodiments shown in Figures 8A-8C), it will be understood that in some of these embodiments, the graphical user interface may be configured to display any additionally existing graphical representations of the aerosol supply system next to each such user operateable part, for example, as shown in the embodiments shown in Figures 8A-8C. In this way, the presence of a graphical representation of the aerosol supply system next to each such user operateable part may allow the user to easily visually confirm that they are about to operate a particular user operateable part that is associated with an aerosol supply system having a graphical representation displayed next to the user operateable part, before operating that particular user operateable part. In this way, the user may easily prevent any unintended operation of one aerosol supply system (for example, associated with Jim's device, as shown in Figure 8A) in contrast to another aerosol supply system (for example, associated with Amy's device, as shown in Figure 8C).

[0077] Therefore, understanding the foregoing, it may be understood that the customizable system 300 may include at least one user-operable part 200 that is operable to produce a function, and each such user-operable part 200 may be configured to be customizable to allow the function to be modified as required by the user.

[0078] Therefore, for the sake of completeness, it should be understood that the customizable system 300 may comprise one or more such user-operable units 200. If multiple user-operable units are provided in this manner, each user-operable unit may be individually customizable to allow the functionality relating to that user-operable unit to be modified as required by the user.

[0079] Accordingly, it will be understood that, according to the above embodiment in which two or more user-operable parts 200 are provided, two or more actuators 201 may be provided on the aerosol supply system 1, and / or two or more icons 256 may be provided on any provided display 254 as part of the user interface 255. Similarly, as part of a customizable system 300, even combinations of such actuators 201 and icons 256 may be provided on the display 254. Therefore, understanding the above, an aerosol supply system for generating aerosols, A customizable system is described comprising one or more user-operable parts that can be operated to produce their own functions, each user-operable part being customizable such that the function of the user-operable part can be selected from several different predetermined functions. Aerosol supply devices for aerosol supply systems comprising cartridges and aerosol supply devices are also described, and the aerosol supply devices are The system comprises one or more user-operable parts, each capable of operating to trigger its own function, and each user-operable part is configured to be customizable such that its function can be selected from a set of different, predetermined functions. The document also describes how to customize the operation of a customizable system equipped with an aerosol supply system for generating aerosols, and this method is described as follows: The system is customizable, and includes customizing the operation of user-operable parts, which are configured to trigger functions when operated by selecting a function from a set of different predetermined functions. The method for operating a customizable system equipped with an aerosol supply system for generating aerosols is also described, and this method is This involves operating at least one user-operable part from a customizable system to trigger its own function, each user-operable part being configured to be customizable such that its own function can be selected from a set of different predetermined functions. Electrical devices for use with aerosol supply systems for generating aerosols are also described, and these electrical devices are The display and The system comprises at least one operable part, each user operable part being operable to trigger its own function, each user operable part being configured to be displayed on a screen, and being customizable so that the function of the aerosol supply system of that user operable part can be selected from a number of different predetermined functions. A method is also described that uses an electrical device configured for use with an aerosol supply device system for generating aerosols, and this method is This includes customizing the operation of at least one user-operable part, which is displayed on a display of an electrical device and is configured to trigger a function when the user-operable part is operated by selecting a function from a set of different predetermined functions.

[0080] Also described is a customizable system 300 comprising an aerosol supply system 1 for generating aerosols and one or more user-operable parts 200, each operable to trigger its own function. Each user-operable part 200 is configured to be customizable such that the function of the user-operable part 200 can be selected from several different predetermined functions. Any particular user-operable part 200 may include an actuator 201 such as a button 202 on the aerosol supply system 1, or a user interface part such as an icon 256 configured to be displayed on a touch-sensitive display 254 from the customizable system 300.

[0081] The following embodiments, as presented in the numbered sections below, are also described.

[0082] Section 1 An electrical device for use with an aerosol supply system for generating aerosols, wherein the electrical device is The display and An electrical device comprising at least one operable part, each user operable part being operable to trigger its own function, each user operable part being configured to be displayed on a screen, and the function of the aerosol supply system of the user operable part being customizable so that it can be selected from a plurality of different predetermined functions.

[0083] Section 2 The electrical device according to paragraph 1, wherein each user-operable part is further operable to trigger its own function of the second aerosol supply system, and each user-operable part is configured to be customizable such that the function of the second aerosol supply system of that user-operable part can be selected from a plurality of different predetermined functions.

[0084] Section 3 The electrical device according to paragraph 1 or 2, wherein the electrical device is configured to output instructions for each aerosol supply system to a display.

[0085] Section 4 An electrical device as described in paragraph 3, including instructions for a graphic representation of an aerosol supply system.

[0086] Section 5 An electrical device according to any one of paragraphs 1 to 4, wherein each user-operable part is configured to be displayed on a display in each part of a user interface configured to be displayed on a display.

[0087] Section 6 An electrical device as described in Section 5, whose user interface includes icons.

[0088] Section 7 Users of electrical devices, A first part of the user interface, configured to enable each actuarial part to operate in order to trigger its respective function in the aerosol supply system, The electrical device described in paragraph 5 or 6, as further dependent on paragraph 2, is configured to enable switching of the user interface to a second part of the user interface, where each actuat is configured to enable actuat for each of the functions of the second aerosol supply system.

[0089] Section 8 The instructions for the aerosol supply system are configured to be displayed in the first part of the user interface. The electrical device described in paragraph 7, as further dependent on paragraph 3, is configured such that instructions for the second aerosol supply system are displayed in the second part of the user interface.

[0090] Section 9 An electrical device as described in any one of paragraphs 1 to 8, wherein the display includes a touch-sensitive display.

[0091] Section 10 An electrical device as described in any one of paragraphs 1 to 9, including a portable electrical device.

[0092] Section 11 An electrical device as described in any one of paragraphs 1 to 10, wherein one of its predetermined functions includes a function for outputting a feedback signal.

[0093] Section 12 The electrical device described in paragraph 11, wherein the electrical device is configured to output a feedback signal to an aerosol supply system.

[0094] Section 13 An electrical device as described in any one of paragraphs 1 to 12, wherein one of its predetermined functions is the operation of an aerosol supply system.

[0095] Section 14 An electrical device as described in paragraph 13, wherein one of its predetermined functions includes an operation to switch the operating mode of the aerosol supply system from a first operating mode to a second operating mode different from the first operating mode.

[0096] Section 15 An electrical device as described in paragraph 13 or 14, wherein one of its predetermined functions includes an operation configured to generate a signal containing information about the use of an aerosol supply system.

[0097] Section 16 An electrical device as described in any one of paragraphs 13 to 15, wherein one of its predetermined functions includes an operation configured to change the appearance of the aerosol supply system.

[0098] Section 17 An electrical device as described in any one of the predefined functions, wherein one of the functions includes an operation to lock or unlock an aerosol supply system.

[0099] Section 18 An electrical device as described in any one of paragraphs 13 to 17, wherein one of its predetermined functions includes an operation for controlling the capacity of an aerosol supply system and / or for preventing an aerosol supply system from generating aerosols.

[0100] Section 19 An electrical device as described in any one of the paragraphs 13 to 18, wherein one of its predetermined functions includes an operation to change the power supplied to the vaporizer of an aerosol supply system.

[0101] Section 20 An electrical device as described in any one of paragraphs 13 to 19, including an operation in which one of the predetermined functions is configured to output an audio signal.

[0102] Section 21 An electrical device according to any one of paragraphs 1 to 20, wherein the electrical device is configured to display a graphical user interface on a display, and each user-operable part is configured to be displayed on the display as part of the graphical user interface.

[0103] Section 22 The electrical device according to paragraph 21, wherein each user-operable part is configured to be displayed on a first part of a graphical user interface on a display, optionally on the home part.

[0104] Section 23 The electrical device described in paragraph 22, wherein the first part of the graphical user interface is configured to display the name of the aerosol supply system.

[0105] Section 24 The first part of the graphical user interface is configured to display a graphic representation of the aerosol supply system, and the graphic representation is (i) Shape of the aerosol supply system, (ii) Model of an aerosol supply system, and / or (iii) An electrical device as described in paragraph 22 or 23, comprising at least one of the colors of an aerosol supply system.

[0106] Section 25 The electrical device described in paragraph 24, as further dependent on paragraph 23, wherein the first part of the graphical user interface is configured to display a graphic representation of the aerosol supply system under the name of the aerosol supply system.

[0107] Section 26 The electrical device according to paragraph 24 or 25, wherein a first part of the graphical user interface is configured to display a graphical representation of an aerosol supply system next to each user-operable part.

[0108] Section 27 An electrical device according to any one of paragraphs 22 to 26, wherein the first part of the graphical user interface is configured to display each user-operable part simultaneously.

[0109] Section 28 An electrical device according to any one of paragraphs 22 to 27, wherein each user-operable part is configured to be displayed on the same half / side of the first part of the graphical user interface.

[0110] Section 29 A customizable system comprising an electrical device as described in any one of paragraphs 1 to 28, and an aerosol supply system for generating an aerosol, wherein the aerosol supply system is configured to communicate with the electrical device.

[0111] Section 30 The customizable system described in paragraph 29, wherein the aerosol supply system is configured to communicate wirelessly with an electrical device.

[0112] Section 31 The customizable system described in Section 30, wherein the aerosol supply system is configured to communicate wirelessly with an electrical device via the Bluetooth protocol.

[0113] Section 32 A method for using an electrical device configured for use with an aerosol supply system for generating an aerosol, wherein the method is A method comprising customizing the operation of at least one user-operable part, wherein the user-operable part is configured to trigger a function when the user-operable part is operated by selecting a function from a set of different predetermined functions, which are displayed on a display of an electrical device.

[0114] Furthermore, understanding the above disclosure will lead to the understanding that the disclosure can also conveniently provide a mechanism for locating multiple user-operable parts in one identical first (potentially home) portion of the graphical user interface 255. As a result, the user can operate each user-operable part in this same portion of the graphical user interface 255 without having to move to different portions of the graphical user interface 255. In this way, this first (home) portion of the graphical user interface 255 (for example, as shown in any of the embodiments in Figures 8A-8C) may enable the user to conveniently control the operation of the aerosol supply system or operations related to the aerosol supply system in a more convenient and user-friendly manner. Accordingly, the disclosure can also provide the following embodiments, as presented in the first set of sections, as listed at the end of this specification.

[0115] To address a variety of issues and advance the technology, this disclosure provides examples of various embodiments in which the claimed invention may be put into practice. The advantages and features of this disclosure are merely representative samples of embodiments and are not exhaustive and / or exclusive. The advantages and features of this disclosure are presented solely to help and teach the claimed invention. It should be understood that the advantages, embodiments, examples, functions, features, structures, and / or other aspects of this disclosure are not to be considered limitations to the disclosure as defined by the claims, or limitations to the equivalent of the claims, and that other embodiments may be used and modified without departing from the scope of this disclosure. Various embodiments may appropriately include, consist of, or basically consist of various combinations of disclosed elements, components, features, parts, steps, means, etc., other than those described in detail herein, and it should be understood that the features of dependent claims may be combined with the features of independent claims in combinations other than those expressly presented in the claims. This disclosure may include other inventions that are not currently claimed but may be claimed in the future.

[0116] For example, regarding how any user-operable unit 200 can be adequately powered (as needed), it will be understood that each user-operable unit 200 may be powered using any necessary power source, such as using power source 16 (as shown in the embodiment of Figure 7 or 8) in some embodiments in which the user-operable unit 200 has an actuator 201 connected to the aerosol supply system 1, or it may be powered using the power source of the user-operable unit 200 itself (not shown in the figures).

[0117] Similarly, with respect to the placement of any such user-operable part(s) 200, it will be understood that the location(s) of the user-operable part(s) 200 may be located at any location in the customizable system 300 that may be required to enable the provision of the required functions. In this regard, for example, the user-operable part(s) 200 does not necessarily have to be located in the aerosol supply system 1 (for example, it may instead be located as part of a separate device that can be attached to the user, such as a strap or some other patch or device that can be secured to the user (for example, by an adhesive patch, so as to be removable if necessary)).

[0118] Furthermore, for the sake of integrity, it will be understood that, with respect to any user-operable unit 200, any power or signal transmitted to or from the user-operable unit 200 may be supplied to the user-operable unit 200 or from the user-operable unit 200 using a wired or wireless connection 270 between the feedback unit 200 and the aerosol supply system 1 in order to trigger the function of the user-operable unit 200.

[0119] Therefore, in the above embodiment, it can be understood that any combination or any number (e.g., one, two, three, four, or any other integer) of user-operable parts 200 may be used as needed to suit the intended function of the customizable system 300.

[0120] Finally, it should be understood that if any user-operable parts (multiple) are used, some or all of these user-operable parts do not necessarily have to be customizable in practice. However, in this way, each user-operable part 200 can still have advantages by serving as a convenient mechanism for triggering a predetermined function of or related to the aerosol supply system 1. For example, with reference to embodiments at least in Figures 8A and 8C, in some embodiments, the function of each user-operable part 200 may be fixed or not necessarily customizable. Thus, in this way, an electrical device may be provided for use with an aerosol supply system for generating aerosols, at a general level, nevertheless comprising a display and a plurality of operable parts, each user-operable part being operable to trigger its own function, and each user-operable part being configured to be displayed on the display. Insofar as such embodiments are employed, which obviously do not necessarily have to be customizable, these embodiments can still provide the user with a convenient mechanism for triggering various functions of one or more aerosol supply systems 1, 1A (for example, via any provided toggle portion 290) in a convenient and quick manner. For completeness, in this case any such embodiment may obviously include any combination of other features described herein, such as any of the features from the descriptions, sections, or claims listed above.

[0121] [The first set of items] Section 1 An electrical device for use with an aerosol supply system for generating aerosols, wherein the electrical device is The display and It comprises multiple operable parts, each user operable part being operable to trigger its own function of the aerosol supply system and / or its own function related to the aerosol supply system, and each user operable part being configured to be displayed on a display as part of a graphical user interface. An electrical device in which multiple operable parts are configured to be displayed simultaneously in the first (home) portion of a graphical user interface on a display.

[0122] Section 2 The electrical device described in paragraph 1, wherein the first part of the graphical user interface is further configured to display the name of the aerosol supply system.

[0123] Section 3 The electrical device according to paragraph 1 or 2, wherein the first part of the graphical user interface is further configured to display a graphical representation of the aerosol supply system.

[0124] Section 4 An electrical device as described in paragraph 3, wherein the graphic representation includes the shape of the aerosol supply system.

[0125] Section 5 An electrical device as described in paragraph 3 or 4, whose graphic representation includes a model of an aerosol supply system.

[0126] Section 6 An electrical device as described in paragraph 3, whose graphic representation includes the color of the aerosol supply system.

[0127] Section 7 The electrical device described in paragraph 3, as further dependent on paragraph 2, wherein the first part of the graphical user interface is configured to display a graphic representation of the aerosol supply system under the name of the aerosol supply system.

[0128] Section 8 The electrical device according to any one of paragraphs 3 to 7, wherein the first part of the graphical user interface is configured to display a graphical representation of the aerosol supply system next to each user-operable part.

[0129] Section 9 An electrical device according to any one of paragraphs 1 to 8, wherein multiple operable parts are configured to be displayed on the same half / side of a first part of a graphical user interface.

[0130] Section 10 The electrical device according to any one of paragraphs 1 to 9, wherein the first part of the user interface further comprises at least one toggle part for enabling a user to change the user interface from the first part to the second part, and the second part is configured to relate to a second aerosol supply system different from the aerosol supply system.

[0131] Section 11 An electrical device as described in any one of paragraphs 1 to 10, wherein one of its predetermined functions includes an operation to lock or unlock an aerosol supply system.

[0132] Section 12 An electrical device as described in any one of paragraphs 1 to 11, wherein one of its predetermined functions includes an operation for controlling the capacity of an aerosol supply system and / or for preventing an aerosol supply system from generating aerosols.

[0133] Section 13 An electrical device as described in any one of paragraphs 1 to 12, wherein one of its predetermined functions includes an operation to change the power supplied to the vaporizer of an aerosol supply system.

[0134] Section 14 A system comprising an electrical device as described in any one of paragraphs 1 to 13, and an aerosol supply system for generating an aerosol, wherein the aerosol supply system is configured to communicate with the electrical device.

[0135] Section 15 The system according to paragraph 14, further comprising a second aerosol supply system for generating an aerosol, wherein the second aerosol supply system is configured to communicate with an electrical device, and further dependent on at least paragraph 10.

[0136] Section 16 The system described in paragraph 14 or 15, wherein each aerosol supply system is configured to communicate wirelessly with an electrical device.

[0137] Section 17 The system described in Section 16, wherein each aerosol supply system is configured to communicate wirelessly with an electrical device via the Bluetooth protocol.

[0138] Section 17 A method for using an electrical device configured for use with an aerosol supply system for generating an aerosol, wherein the method is This includes simultaneously displaying multiple operable parts from an electrical device to a display as part of a graphical user interface. Each user-operable part is capable of operating to trigger its own function in the aerosol supply system and / or its own function related to the aerosol supply system. A method in which multiple operable parts are simultaneously displayed in the first (home) portion of a graphical user interface on a display.

[0139] Section 18 The method is The method according to paragraph 17, further comprising operating at least one toggle portion from the graphical user interface to enable the user interface to change from a first portion of the graphical user interface to a second portion, wherein the second portion is configured to relate to a second aerosol supply system different from the aerosol supply system.

[0140] Section 19 The method is The invention further includes simultaneously displaying a second set of operable parts in a second part of a graphical user interface. The method according to paragraph 18, wherein each user-operable part from the second plurality of operable parts is operable to cause its own function of the second aerosol supply system and / or its own function related to the second aerosol supply system.

[0141] Section 20 The method is The method according to any one of paragraphs 17 to 19, further comprising displaying a plurality of operable parts in a first part and simultaneously displaying the name of the aerosol supply system in a first part of the graphical user interface.

[0142] Section 21 The method is The method according to any one of paragraphs 17 to 20, further comprising displaying a plurality of operable parts in a first part, and simultaneously displaying a graphic representation of the aerosol supply system in a first part of a graphical user interface on a display.

[0143] Section 22 The method is The method according to any one of paragraphs 17 to 21, further comprising displaying multiple operable parts on the same half / side of a first part of a graphical user interface.

[0144] Section 23 The method is Further including displaying a second set of operable parts on the same half / side of the second part of the graphical user interface, The method of paragraph 22, further dependent on paragraph 19, wherein half / side of the second part of the graphical user interface is the same as half / side of the first part of the graphical user interface.

[0145] Section 24 The method described in any one of paragraphs 17 to 23, wherein the electrical device includes a smartphone.

Claims

1. an aerosol supply system for generating aerosols, A customizable system comprising one or more user-operable parts that can be operated to trigger their respective functions, wherein each user-operable part is configured to be customizable such that the function of the user-operable part can be selected from a plurality of different predetermined functions, A customizable system configured to allow a user to select a function for each user-operable part from a list of various predetermined functions.

2. The customizable system according to claim 1, wherein one of the predetermined functions includes a function for outputting a feedback signal.

3. The customizable system is configured to output the feedback signal to the aerosol supply system, or The customizable system according to claim 2, wherein the customizable system is configured to output the feedback signal to an electrical device.

4. The customizable system according to claim 1, wherein one of the predetermined functions includes the operation of the aerosol supply system.

5. The customizable system according to claim 4, wherein one of the predetermined functions includes an operation to switch the operating mode of the aerosol supply system from a first operating mode to a second operating mode different from the first operating mode.

6. The customizable system according to claim 4, wherein one of the predetermined functions includes an operation configured to generate a signal containing usage information of the aerosol supply system.

7. The customizable system according to claim 4, wherein one of the predetermined functions includes an operation configured to change the appearance of the aerosol supply system.

8. The customizable system according to claim 4, wherein one of the predetermined functions includes an operation configured to output an audio signal.

9. The customizable system according to claim 1, wherein at least one of the user-operable parts comprises an actuator, and the actuator includes a button.

10. The customizable system according to claim 1, wherein the customizable system includes a touch-sensitive display, and each user-operable part includes a portion of a user interface configured to be displayed on the touch-sensitive display.

11. The customizable system according to claim 1, wherein at least one of the user-operable parts is located in the aerosol supply system.

12. The customizable system according to claim 1, wherein at least one of the user-operable parts is configured to be located in an electrical device that is operable to communicate wirelessly with the aerosol supply system.

13. The customizable system comprises a display, The one or more of the aforementioned operable parts are displayed in the first home portion of the graphical user interface. The customizable system includes at least one toggle portion that allows a user to change the graphical user interface from the first portion to the second portion, The customizable system according to claim 1, wherein the second part is configured to allow each operable part to be operable to trigger its own function in a second different supply system.

14. The customizable system comprises a display having a graphical user interface, The graphical user interface includes a graphical representation of the aerosol supply system. The customizable system according to claim 1, wherein a plurality of the operable parts are displayed in the lower half of the graphical user interface.

15. The list of different predetermined functions is: - An operation for switching the mode of the aerosol supply system between a first mode and a second mode, - An operation to increase or decrease the power supplied to the vaporizer of the aerosol supply system, - Operation to turn the aerosol supply system on and / or off, - An operation to generate a signal containing usage information, - Operations to change the appearance of the aerosol supply system, - Operation for outputting an audio signal from the aerosol supply system, - Operation to disable the aerosol supply system, - Operation to output a feedback signal, A customizable system according to claim 1, comprising several of the above.

16. An aerosol supply device for an aerosol supply system comprising a cartridge and an aerosol supply device, wherein the aerosol supply device is An aerosol supply device comprising one or more user-operable parts that are operable to trigger their respective functions, each user-operable part being customizable such that the function of the user-operable part can be selected from a plurality of different predetermined functions by selecting the function from a variety of predetermined functions.

17. A method for customizing the operation of a customizable system comprising an aerosol supply system for generating aerosols, wherein the method is A method comprising the step of customizing the operation of a user-operable part of the customizable system, wherein the user-operable part is configured to trigger a function when the user-operable part is operated by selecting a function from a list of several different predetermined functions.

18. The method described above is The method according to claim 17, further comprising the step of operating the user-operable part to bring about the function.

19. The method described above is The method according to claim 17, further comprising the step of customizing the operation of a second user-operable unit from the customizable system, wherein the second user-operable unit is configured to trigger the second function when the second user-operable unit is operated by selecting a second function from a plurality of different predetermined functions.

20. The method described above is The method according to claim 19, further comprising the step of operating (i) the user-operable part for causing the function, and / or (ii) at least one of the second user-operable parts for causing the second function.

21. A method for operating a customizable system comprising an aerosol supply system for generating aerosols, wherein the method is The process includes the step of operating at least one user-operable part from the customizable system to trigger its respective function, wherein each user-operable part is configured to be customizable such that its respective function can be selected from a plurality of different predetermined functions. A method wherein the customizable system is configured to allow a user to select a function from a list of various predetermined functions.

Citation Information

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