Electronic aerosol supply system

JP7846147B2Active Publication Date: 2026-04-14NICOVENTURES TRADING LTD
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2024-01-11
Publication Date
2026-04-14

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Abstract

To provide a method of reducing the quantity of a first constituent in an aerosol generating material using an aerosol generating device configured to deliver inhalable aerosol to a user.SOLUTION: A method of reducing the quantity of a first constituent in an aerosol generating material comprises a step of performing a first aerosolization process on one portion of the aerosol generating material comprising the first constituent so as to generate aerosol for user inhalation, and a step of performing a second aerosolization process on at least the one portion of the aerosol generating material until the at least one portion of the aerosol generating material is substantially free of the first constituent.SELECTED DRAWING: Figure 5
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Description

Field

[0001] The present disclosure relates to a non-combustion aerosol supply system. Background

[0002] Electronic aerosol supply systems such as electronic cigarettes (e-cigarettes) generally include a reservoir of a raw material liquid that typically contains a formulation including nicotine, and an aerosol is generated therefrom, for example by thermal vaporization. Thus, an aerosol source for an aerosol supply system can include a heater having a heating element arranged to receive the raw material liquid from the reservoir, for example by suction action / capillary action. When a user inhales through the device, power is supplied to the heating element to vaporize the raw material liquid near the heating element, thereby generating an aerosol for inhalation by the user. Such devices typically have one or more air inlet holes located away from the mouthpiece end of the system. When the user inhales through a mouthpiece connected to the mouthpiece end of the system, air is drawn through the inlet holes through the aerosol source. There is a flow path connecting between the aerosol source and the opening in the mouthpiece, so that the air drawn through the aerosol source continues along the flow path to the mouthpiece opening and carries a portion of the aerosol from the aerosol source with the air. The air carrying the aerosol exits the aerosol supply system through the mouthpiece opening for inhalation by the user.

[0003] Some aerosol supply devices generate an aerosol from a solid material such as tobacco or a tobacco derivative. Such devices operate in generally the same manner as the liquid-based systems described above in that the solid tobacco material is heated to its vaporization temperature to generate an aerosol, which is then inhaled by the user.

[0004] Many aerosol supply systems are modular in that they include reusable and consumable parts, with consumable parts containing or consisting of aerosol-generating material. When the aerosol-generating material in such consumable parts decreases, meaning that the consumable parts can no longer generate sufficient aerosols from the aerosol-generating material, users generally dispose of the consumable parts. However, trace amounts of certain components may be present in the consumables. In some cases, it may be necessary to dispose of the consumable parts at a specialized disposal facility to ensure that certain components do not harm the environment. This can be inconvenient for users, especially if they are not necessarily located near a specialized disposal facility.

[0005] This document outlines various methods that are expected to help address some of these problems.

[0006] According to a first aspect of a particular embodiment, a method is provided for reducing the amount of a first component in an aerosol-generating material using an aerosol-generating device configured to deliver an inhalable aerosol to a user, the method comprising: performing a first aerosolization process on one portion of the aerosol-generating material containing the first component to generate an aerosol for user inhalation; and performing a second aerosolization process on at least the portion of the aerosol-generating material until the first component is substantially removed from at least that portion of the aerosol-generating material.

[0007] In some embodiments, the first component is nicotine.

[0008] In some embodiments, after performing the second aerosolization process on at least the portion of the aerosol-generating material until the first component is substantially removed from at least the portion of the aerosol-generating material, the concentration of nicotine in at least one portion of the aerosol-generating material is less than 0.05 mg / ml when dissolved in 100 ml of solvent.

[0009] In some embodiments, after performing the second aerosolization process on at least the portion of the aerosol-generating material until the first component is substantially removed from at least the portion of the aerosol-generating material, the concentration of nicotine in at least one portion of the aerosol-generating material is less than 0.02 mg / ml when dissolved in 100 ml of solvent.

[0010] In some embodiments, the aerosol-generating material is an amorphous solid. In some embodiments, the amorphous solid comprises 0.5 to 60 wt% of a gelling agent, 5 to 80 wt% of an aerosol-generating agent, and 5 to 60 wt% of at least one active substance, such as nicotine, the weights of which are calculated on a dry weight basis.

[0011] In some embodiments, the step of performing a first aerosolization process on the portion of the aerosol-generating material containing the first component to generate an aerosol for user inhalation includes aerosolizing the portion of the aerosol-generating material for a first period of time, until the first component is substantially removed from at least that portion of the aerosol-generating material, and the step of performing a second aerosolization process on at least that portion of the aerosol-generating material includes aerosolizing at least that portion of the aerosol-generating material for a second period of time, the second period being longer than the first period.

[0012] In some embodiments, the second time period exceeds one minute.

[0013] In some embodiments, the first time period described above does not exceed 10 seconds.

[0014] In some embodiments, the first aerosolization process and the second aerosolization process are carried out by heating.

[0015] In some embodiments, the temperature at which the aerosol-generating material is heated does not exceed 350°C.

[0016] In some embodiments, the step of heating the portion of the aerosol-generating material containing the first component to generate an aerosol for user inhalation includes heating the portion of the aerosol-generating material to a first maximum temperature, and heating at least the portion of the aerosol-generating material until the first component is substantially gone from at least the portion of the aerosol-generating material includes heating at least the portion of the aerosol-generating material to a second maximum temperature, the second maximum temperature being higher than the first maximum temperature.

[0017] In some embodiments, the step of heating the portion of the aerosol-generating material containing the first component to generate an aerosol for user inhalation includes heating the portion of the aerosol-generating material to a first maximum temperature, and heating at least the portion of the aerosol-generating material until the first component is substantially gone from at least that portion includes heating at least the portion of the aerosol-generating material to a second maximum temperature, the second maximum temperature being substantially the same as the first maximum temperature.

[0018] In some embodiments, the control circuit is configured to monitor activation parameters for each of a plurality of parts of the aerosol-generating material, the activation parameters being one or a combination of the following, based on the temperature at which each part is heated: the individual number of times the part is heated, the cumulative heating time the part is heated, and the weighted cumulative heating time the part is heated.

[0019] In some embodiments, the method includes the step of calculating a heating period for heating each of the aerosol-generating material until the first component is substantially removed from the aerosol-generating material, the calculation taking into account the monitored initiation parameter.

[0020] In some embodiments, the method further includes a step of providing a warning when performing the second aerosolization process on at least the portion of the aerosol-generating material until the first component is substantially removed from at least the portion of the aerosol-generating material, the warning indicating to the user not to inhale with the device.

[0021] In some embodiments, the method further includes the step of blocking an air outlet in the device when performing the first aerosolization process on at least the portion of the aerosol-generating material until the first component is substantially removed from at least the portion of the aerosol-generating material.

[0022] According to a second aspect of a particular embodiment, an aerosol generating device is provided for use with an aerosol product comprising an aerosol generating material, wherein the aerosol generating material comprises a first component, the device comprising an aerosol generating component that performs an aerosolization process on one portion of the aerosol generating material, and a control circuit configured to activate the aerosol generating component, the control circuit configured to perform a first aerosolization process on the portion of the aerosol generating material comprising the first component to generate an aerosol for user inhalation, and to perform a second aerosolization process on the portion of the aerosol generating material until the first component is substantially removed from the portion.

[0023] In some embodiments, the aerosol generating device further comprises a warning unit configured to output a warning when at least the portion of the aerosol generating material is aerosolized until the portion of the first component is substantially removed, the warning indicating to the user not to inhale the device.

[0024] In some embodiments, the aerosol generation device further comprises an air flow blocking member configured to block an air outlet in the device when at least a portion of the aerosol generation material is aerosolized until the first component is substantially absent in the portion.

[0025] According to a third aspect of a particular embodiment, there is provided an aerosol supply system comprising an aerosol supply device according to the second aspect of the particular embodiment and an aerosol generation article comprising an aerosol generation material having the first component.

[0026] In some embodiments, the aerosol generation article includes a plurality of portions of the aerosol generation material, and at least one portion includes the first component.

[0027] According to a fourth aspect of a particular embodiment, there is provided an aerosol generation device for use with an aerosol generation article comprising an aerosol generation material, the aerosol generation material comprising a first component, the device comprising aerosolization means for performing an aerosolization process on one portion of the aerosol generation material, and control means configured to activate the aerosolization means, the control means being configured to perform a first aerosolization process on the portion of the aerosol generation material comprising the first component to generate an aerosol for user inhalation, and to perform a second aerosolization process on the portion of the aerosol generation material until the first component is substantially absent in the portion.

[0028] It will be understood that the features and aspects of the present invention described above in connection with the first and other aspects of the present invention are equally applicable to embodiments of the present invention according to other aspects of the present invention, not only in the specific combinations described above, but also in combination with them as required.

[0029] Here, embodiments of the present invention will be described by way of example only with reference to the accompanying drawings.

Brief Description of Drawings

[0030] [Figure 1] A cross-sectional view of a schematic diagram of an aerosol supply system including an aerosol supply device and an aerosol supply article (e.g., an aerosol generating article), wherein the device includes a plurality of heating elements and the article includes a plurality of portions of an aerosol generating material. [Figure 2A] One of various views of the aerosol supply article of FIG. 1 from various different angles. [Figure 2B] One of various views of the aerosol supply article of FIG. 1 from various different angles. [Figure 2C] One of various views of the aerosol supply article of FIG. 1 from various different angles. [Figure 3] A cross-sectional view of the heating element of the aerosol supply device of FIG. 1 as viewed from above. [Figure 4] A view of an exemplary touch-sensitive panel for operating various functions of the aerosol supply system as viewed from above. [Figure 5] A diagram showing a first method of substantially removing a first component from an aerosol generating material. [Figure 6] A diagram showing a second method of substantially removing a first component from an aerosol generating material. [Figure 7] An example of a cross-sectional view of a schematic diagram of an aerosol supply system including an aerosol supply device and an aerosol supply article (e.g., an aerosol generating article), wherein the device includes a plurality of induction work coils and the article includes a plurality of portions of an aerosol generating material and corresponding susceptor portions. [Figure 8A] One of various views of the aerosol supply article of FIG. 7 from various different angles. [Figure 8B] One of various views of the aerosol supply article of FIG. 7 from various different angles. [Figure 8C]This is one of several views of the aerosol supply article shown in Figure 7 from various different angles. Detailed explanation

[0031] Specific examples and embodiments, aspects and features are described herein. Some aspects and features of specific examples and embodiments can be carried out conventionally and are not described in detail for the sake of brevity. Therefore, it will be understood that aspects and features of apparatus and methods described herein that are not described in detail can be carried out according to any conventional techniques to carry out such aspects and features.

[0032] This disclosure relates to a “non-combustible” aerosol delivery system. A “non-combustible” aerosol delivery system is one in which the aerosolizable materials comprising the aerosol delivery system (or its components) are not burned or incinerated in order to facilitate the delivery of aerosols to the user. Furthermore, as is common in the art, the terms “vapor” and “aerosol,” as well as related terms such as “vaporization,” “volatilization,” and “aerosolization,” may generally be used interchangeably.

[0033] In some embodiments, the non-combustion aerosol delivery system is an e-cigarette, also known as a vaping device or electronic nicotine delivery system (END), but it should be noted that the presence of nicotine in the aerosolizable material is not a requirement. Throughout the following description, the terms “e-cigarette” or “electronic cigarette” may be used interchangeably with “aerosol (vapor) delivery system.”

[0034] Typically, a non-combustible aerosol supply system can comprise a non-combustible aerosol supply device and articles (sometimes called consumables) for use with the non-combustible aerosol supply device. However, it is also possible that an article itself, which includes means for powering an aerosol generating component, can itself form a non-combustible aerosol supply system.

[0035] The article, or part or all of the article, is intended to be consumed by the user at the time of use. The article may contain or consist of an aerosolizable material (also called an aerosol-generating material). The article may also contain one or more other elements, such as a filter or an aerosol modifier (for example, a component that adds fragrance to an aerosol passing through or over the aerosol modifier, or otherwise alters the properties of the aerosol).

[0036] Non-combustible aerosol supply systems often, though not always, comprise a modular assembly that includes both reusable aerosol supply devices and replaceable articles. In some embodiments, the non-combustible aerosol supply device may include a power source and a controller (or control circuit). The power source may be, for example, a battery or a rechargeable battery. In some embodiments, the non-combustible aerosol supply device may also include an aerosol generating component. However, in other embodiments, an article may comprise the aerosol generating component partially or entirely.

[0037] In some embodiments, the aerosol-generating component is a heater capable of interacting with an aerosolizable material to form an aerosol by releasing one or more volatile substances from the aerosolizable material. In some embodiments, the aerosol-generating component is capable of generating an aerosol from an aerosolizable material without heating. For example, the aerosol-generating component may generate an aerosol from an aerosolizable material without applying heat to the aerosolizable material, for example, by one or more means of vibration, mechanical means, pressurizing means or electrostatic means. The heater (or heating element) may include one or more electric resistance heaters, for example, one or more nichrome resistance heaters and / or one or more ceramic heaters. The one or more heaters may include one or more induction heaters having a configuration that includes one or more susceptors into which an article containing the aerosolizable material is inserted or otherwise placed during use.

[0038] Alternatively or additionally, one or more susceptors may be provided in an aerosolizable material. Other heating configurations may also be used.

[0039] Articles for use with non-combustible aerosol supply devices generally include aerosolizable materials. Aerosolizable materials, sometimes referred to herein as aerosol-generating materials, are materials capable of generating aerosols when excited, for example, by heating, radiation, or any other method. Aerosolizable materials may be in the form of solids, liquids, or gels, which may or may not contain nicotine and / or flavorings. In the following disclosure, aerosolizable materials are described as including "amorphous solids," which may alternatively be referred to as "monolithic solids" (i.e., non-fibrous materials). In some embodiments, the amorphous solid may be a dry gel. An amorphous solid is a solid material capable of holding some fluid, such as a liquid, internally. In some embodiments, the aerosolizable material may include, for example, about 50 wt%, 60 wt%, or 70 wt% amorphous solid, or about 90 wt%, 95 wt%, or 100 wt% amorphous solid. However, it should be understood that the principles of this disclosure can be applied to other aerosolizable materials such as tobacco, reusable tobacco, and liquids like e-liquids.

[0040] If necessary, the aerosolizable material or amorphous solid may contain one or more of the following: an active ingredient, a carrier ingredient, a fragrance, and one or more other functional ingredients. As used herein, the active ingredient may be a physiologically active material, which is a material intended to achieve or enhance a physiological response. The active ingredient may be selected from, for example, dietary supplements, nootropics, or psychoactive substances. The active ingredient may be naturally occurring or synthetically obtained. The active ingredient may include, for example, nicotine, caffeine, taurine, theine, vitamins such as B6, B12, or C, melatonin, cannabinoids, or components, derivatives, or combinations thereof. The active ingredient may include one or more components, derivatives, or extracts of tobacco, cannabis, or another plant substance. As stated herein, the active ingredient may include one or more components, derivatives, or extracts of cannabis, such as one or more cannabinoids or terpenes.

[0041] In some embodiments, the active ingredient includes nicotine. In some embodiments, the active ingredient includes caffeine, melatonin, or vitamin B12.

[0042] In some embodiments, the aerosol-generating material comprises one or more cannabinoid compounds selected from the group consisting of cannabidiol (CBD), tetrahydrocannabinol (THC), tetrahydrocannabinolic acid (THCA), cannabidiolic acid (CBDA), cannabinol (CBN), cannabigerol (CBG), cannabichromene (CBC), cannabicyclol (CBL), cannabivarin (CBV), tetrahydrocannabivarin (THCV), cannabidivarin (CBDV), cannabiclomevalin (CBCV), cannabigerovarin (CBGV), cannabigerol monomethyl ether (CBGM), and cannabiersoin (CBE) and cannabicitran (CBT). The aerosol-generating material may also comprise one or more cannabinoid compounds selected from the group consisting of cannabidiol (CBD) and THC (tetrahydrocannabinol). The aerosol-generating material may also comprise cannabidiol (CBD). The aerosol-generating material may contain nicotine and cannabidiol (CBD).

[0043] As described herein, the active ingredient may include or be derived from one or more plant substances, or components thereof, derivatives or extracts thereof. As used herein, the term “plant substance” includes, but is not limited to, extracts, leaves, bark, fibers, stems, roots, seeds, flowers, fruits, pollen, exoskeletons, shells, etc., and any material derived from plant substances. Alternatively, the material may include naturally occurring active compounds in plant substances obtained by synthesis. The material may be in the form of a liquid, gas, solid, powder, dust, crushed particles, granules, pellets, fragments, shards, sheets, etc. Examples of plant-based substances include tobacco, eucalyptus, star anise, hemp, cocoa, cannabis, fennel, lemongrass, peppermint, spearmint, rooibos, chamomile, flax, ginger, ginkgo, hazelnut, hibiscus, bay leaf, licorice, matcha, mate tea, orange peel, papaya, rose, sage, tea such as green or black tea, thyme, clove, cinnamon, coffee, aniseed, basil, bay leaf, cardamom, coriander, cumin, nutmeg, oregano, paprika, rosemary, saffron, Lavender, lemon peel, mint, juniper, elderflower, vanilla, dwarf spicebush, perilla, curcuma, turmeric, sandalwood, cilantro, bergamot, orange blossom, myrtle, blackcurrant, valerian, pimento, mace, damien, oresitia, olive, lemon balm, lemon basil, chives, fennel, verbena, tarragon, geranium, mulberry, ginseng, theanine, theacrine, maca, ashwagandha, damiana, guarana, chlorophyll, baobab, or any combination thereof. Mint may be selected from the following mint varieties, namely, corn mint, Moroccan mint, Egyptian mint, peppermint, eau de cologne mint, candy mint, curly mint, Kentucky colonel mint, horsemint, pineapple mint, pennyroyal mint, English spearmint, and apple mint.

[0044] In some embodiments, the active ingredient comprises or is derived from one or more plant substances or components, derivatives, or extracts thereof, where the plant substance is tobacco.

[0045] In some embodiments, the active ingredient comprises or is derived from one or more plant substances or components, derivatives, or extracts thereof, the plant substances being selected from eucalyptus, star anise, cocoa, and hemp.

[0046] In some embodiments, the active ingredient comprises or is derived from one or more plant substances or components, derivatives, or extracts thereof, the plant substances being selected from rooibos and fennel.

[0047] In some embodiments, the aerosolizable material includes a fragrance (or flavoring). As used herein, the terms “flavoring” and “flavoring” refer to materials that, where permitted by local regulations, can be used in products intended for adult consumers to produce a desired taste, aroma, or other somatic sensation.These are 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, Japanese mint, aniseed, cinnamon, turmeric, Indian spices, Asian spices, herbs, Ardisia crenata, cherry, berries, red berries, cranberries, peaches, apples, oranges, mangoes, clementines, lemons, limes, toro). Fruits, papaya, rhubarb, grapes, durian, dragon fruit, cucumber, blueberry, mulberry, citrus fruits, Drambuie, bourbon, scotch, whiskey, gin, tequila, rum, spearmint, peppermint, lavender, aloe vera, 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, konjac, jasmine, illa Ilex crenata, sage, fennel, wasabi, pimento, ginger, coriander, coffee, hemp, peppermint oil from any of the Mentha species, eucalyptus, star anise, cocoa, lemongrass, rooibos, flax, ginkgo, hazelnut, hibiscus, bay leaf, mate tea, orange peel, rose, tea like green or black tea, thyme, juniper, elderflower, basil, bay leaf, cumin, oregano, paprika, rosemary, saffron, lemon peel, mint, shiso, curcuma, cilantro, myrtle, blackcurrant, valerian, pimento, melon It may also contain other additives such as sesame, damien, oriental 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, sucrose, glucose, fructose, sorbitol, or mannitol), as well as charcoal, chlorophyll, minerals, plant matter, or breath fresheners.These may be imitations, synthetic or natural ingredients, or blends thereof. They may be in any preferred form, such as a liquid like an oil, a solid like a powder, or a gas.

[0048] In some embodiments, the flavoring includes menthol, spearmint, and / or peppermint. In some embodiments, the flavoring includes cucumber, blueberry, citrus, and / or red berry flavoring components. In some embodiments, the flavoring includes eugenol. In some embodiments, the flavoring includes flavoring components extracted from tobacco. In some embodiments, the flavoring includes flavoring components extracted from cannabis.

[0049] In some embodiments, the fragrance may include a sensory stimulant, which is intended to achieve somatosensations that are usually chemically induced and perceived by stimulation of the fifth cranial nerve (trigeminal nerve) in addition to or instead of the aroma or taste nerves, and these may include agents that produce warming, cooling, tingling, or numbing effects. A preferred thermal agent may be, but is not limited to, vanillyl ethyl ether, and a preferred coolant may be, but is not limited to, eucalyptol or WS-3.

[0050] The carrier component may contain one or more components (e.g., aerosol-forming agents) capable of forming an aerosol. In some embodiments, the carrier component may contain 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, trybutin, lauryl acetate, lauric acid, myristic acid, and propylene carbonate. The aerosol-generating material or amorphous solid may contain an aerosol-forming agent. In some embodiments, the aerosol-forming agent includes one or more polyhydric alcohols such as propylene glycol, triethylene glycol, 1,3-butanediol, and glycerin; esters of polyhydric alcohols such as glycerol monoacetate, glycerol diacetate, or glycerol triacetate; and / or aliphatic esters of monocarboxylic acids, dicarboxylic acids, or polycarboxylic acids such as dimethyl dodecanediate and dimethyl tetradecanediate.

[0051] One or more other functional ingredients may include one or more of the following: pH adjusters, colorants, preservatives, binders, fillers, stabilizers, and / or antioxidants.

[0052] The aerosolizable material may be present on or within a carrier support (or carrier component) that forms the substrate. The carrier support may be, for example, paper, cardboard, thick paper, recycled aerosolizable material, plastic material, ceramic material, composite material, glass, metal, or metal alloy.

[0053] In some embodiments, an article for use with a non-combustible aerosol supply device may comprise an aerosolizable material or an area for receiving the aerosolizable material. In some embodiments, the article for use with a non-combustible aerosol supply device may comprise a mouthpiece, or alternatively, the non-combustible aerosol supply device may comprise a mouthpiece communicating with the article. The area for receiving the aerosolizable material may be a storage area for storing the aerosolizable material. For example, the storage area may be a reservoir.

[0054] Figure 1 is a schematic cross-sectional view of an aerosol supply system 1 according to a particular embodiment of the present disclosure. The aerosol supply system 1 comprises two main components: an aerosol supply device 2 and an aerosol supply article 4 (also called an aerosol product).

[0055] The aerosol supply device 2 comprises an outer housing 21, a power source 22, a control circuit 23, a plurality of aerosol generating components 24, a receiving section 25, an inhalation or mouthpiece end 26, an air inlet 27, an air outlet 28, a touch-sensitive panel 29, an inhalation sensor 30, and an indicator, such as an end-of-use indicator 31.

[0056] The outer housing 21 can be formed from any suitable material, such as plastic. The outer housing 21 is arranged such that the power source 22, control circuit 23, aerosol generation component 24, receiving section 25, and inhalation sensor 30 are located inside the outer housing 21. The outer housing 21 also defines an air inlet 27 and an air outlet 28, which are described in more detail below. The touch-sensitive panel 29 and end-of-use indicator are located outside the outer housing 21.

[0057] The outer housing 21 may further comprise an inhalation or mouthpiece end 26. The outer housing 21 and the mouthpiece end 26 may be formed as a single component (i.e., the mouthpiece end 26 may form part of the outer housing 21). The inhalation or mouthpiece end 26 is defined as a region of the outer housing 21 including the air outlet 28 and can be shaped to allow the user to comfortably place their lips around the mouthpiece end 26 and make contact with the air outlet 28. In Figure 1, the thickness of the outer housing 21 gradually decreases toward the air outlet 28 to provide a relatively thin portion of the device 2, which allows the user's lips to be placed more easily. However, in other embodiments, the mouthpiece end 26 may be a removable component separate from the outer housing 21 but connectable to the outer housing, and may be removed for cleaning and / or for replacement with another mouthpiece end 26. The mouthpiece end 26 may be formed, for example, as part of the aerosol supply article 4.

[0058] The power source 22 is configured to supply operating force to the aerosol supply device 2. The power source 22 can be any suitable power source, such as a battery. For example, the power source 22 may include a rechargeable battery such as a lithium-ion battery. The power source 22 may be removable or may form an integral part of the aerosol supply device 2. In some embodiments, the power source 22 can be charged by connecting the device 2 to an external power source (such as a main power supply) via an associated connection port such as a USB port (not shown) or via a suitable wireless receiver (not shown).

[0059] The control circuit 23 is preferably configured / programmed to control the operation of the aerosol supply device to bring about specific operational functions of the aerosol supply device 2. The control circuit 23 may be thought to logically include various subunits / circuit elements associated with various different aspects of the operation of the aerosol supply device. For example, the control circuit 23 may include a logical subunit to control the charging of the power source 22. Furthermore, the control circuit 23 may include a logical subunit for communication to facilitate, for example, data transfer from or to device 2. However, the primary function of the control circuit 23 is to control the aerosolization of the aerosol-generating material, as will be described in more detail below. It will be understood that the functionality of the control circuit 23 can be provided in various different ways, for example, using one or more appropriately programmed programmable computers and / or one or more preferably configured application-specific integrated circuits / circuits / chips / chipsets configured to provide the desired functionality. The control circuit 23 is connected to the power supply 23 and can be configured to receive power from the power source 22 and distribute or control that power to other components of the aerosol supply device 2.

[0060] In the embodiment described, the aerosol supply device 2 further comprises a receiving portion 25 arranged to receive an aerosol supply article 4.

[0061] The aerosol supply article 4 comprises a carrier component 42 and an aerosol generating material 44. The aerosol supply article 4 is shown in more detail in Figures 2A to 2C. Figure 2A is a top view of the article 4, Figure 2B is an end view of the article 4 along its longitudinal (length) axis, and Figure 2C is a side view of the article 4 along its width axis.

[0062] Article 4 includes a carrier component 42 which in this embodiment takes the shape of a card. The carrier component 42 forms the majority of Article 4 and acts as a base on which the aerosol-generating material 44 is placed.

[0063] The shape of the carrier component 42 is as shown in Figures 2A to 2C, with length l, width w, and thickness t. c It is generally cubic in shape. As a specific example, the length of the carrier component 42 can be 30 to 80 mm, the width can be 7 to 25 mm, and the thickness can be 0.2 to 1 mm. However, it should be understood that the above are exemplary dimensions of the carrier component 42, and in other embodiments, the carrier component 42 may have various different dimensions as needed. In some embodiments, the carrier component 42 may include one or more protrusions extending in the longitudinal and / or width directions of the carrier component 42 to help the user handle the article 4 more easily.

[0064] In the example shown in Figures 1 and 2, article 4 comprises a plurality of individual parts of aerosol-generating material 44 arranged on the surface of carrier component 42. More specifically, article 4 comprises six individual parts of aerosol-generating material 44, denoted 44a to 44f, arranged in a 2x3 array. However, it should be understood that in other embodiments, more or fewer individual parts may be provided, and / or these parts may be arranged in different arrays (e.g., a 1x6 array). In the illustrated example, the aerosol-generating material 44 is arranged in individual, separate positions on one side of carrier component 42. Although the individual parts of the aerosol-generating material 44 are shown having a circular footprint, it should be understood that the individual parts of the aerosol-generating material 44 may have any other footprint, such as a square, triangle, hexagon, or rectangle, as needed. The individual parts of the aerosol-generating material 44 have a diameter d and a thickness t as shown in Figures 2A to 2C. a It has a thickness t. a The thickness ta can take any suitable value, and for example, the thickness ta can be in the range of 50 μm to 1.5 mm. In some embodiments, the thickness t aThe thickness is approximately 50 μm to approximately 200 μm, or approximately 50 μm to approximately 100 μm, or approximately 60 μm to approximately 90 μm, preferably approximately 77 μm. In other embodiments, the thickness t a For example, the thickness can range from approximately 50 μm to approximately 400 μm, or up to approximately 1 mm, or up to approximately 1.5 mm, or exceeding 200 μm.

[0065] The individual parts of the aerosol-generating material 44 are separated from each other so that each of the individual parts can be individually / selectively excited (e.g., heated) to generate an aerosol. In some embodiments, these parts of the aerosol-generating material 44 may have a mass not exceeding 20 mg, and therefore, at any given time, the amount of material aerosolized by a given aerosol-generating component 24 is relatively low. For example, the mass per part may be 20 mg or less, or 10 mg or less, or 5 mg or less. Naturally, it should be understood that the total mass of article 4 may exceed 20 mg.

[0066] In the embodiments described, the aerosol-generating material 44 is an amorphous solid. Generally, an aerosol-generating material or amorphous solid may comprise a gelling agent (sometimes called a binder) and an aerosol-generating agent (which may include, for example, glycerol). The gelling agent may comprise one or more compounds selected from cellulosic gelling agents, non-cellulosic gelling agents, guar gum, acacia gum, and mixtures thereof. In some embodiments, the cellulosic gelling agent is selected from the group consisting of hydroxymethylcellulose, hydroxyethylcellulose, hydroxypropylcellulose, carboxymethylcellulose (CMC), hydroxypropylmethylcellulose (HPMC), methylcellulose, ethylcellulose, cellulose acetate (CA), cellulose acetate butyrate (CAB), cellulose acetate propionate (CAP), and combinations thereof. In some embodiments, the gelling agent comprises (or is one or more of) one or more of hydroxyethylcellulose, hydroxypropylcellulose, hydroxypropylmethylcellulose (HPMC), carboxymethylcellulose, guar gum, or acacia gum. In some embodiments, the gelling agent includes (or is one or more such noncellulose gelling agents) one or more noncellulose gelling agents, including but not limited to agar, xanthan gum, gum arabic, guar gum, locust bean gum, pectin, carrageenan, starch, alginate, and combinations thereof. In preferred embodiments, the noncellulose gelling agent is alginate or agar.

[0067] The gelling agent may further contain a curing agent (e.g., a calcium source). In certain embodiments, the curing agent comprises or consists of calcium acetate, calcium formate, calcium carbonate, calcium bicarbonate, calcium chloride, calcium lactate, or a combination thereof. In certain embodiments, the curing agent comprises or consists of calcium formate and / or calcium lactate. In certain examples, the curing agent comprises or consists of calcium formate. The inventors recognize that, generally, using calcium formate as a curing agent results in amorphous solids with higher tensile strength and higher elongation resistance.

[0068] The aerosol-generating material or amorphous solid may contain one or more of the following: an active substance (which may include tobacco extract), a flavoring agent, an acid, and a filler. Other components may be present as needed. In certain embodiments, the aerosol-generating material or amorphous solid contains a gelling agent including a cellulose-based gelling agent and / or a non-cellulose-based gelling agent, an active substance, and an acid.

[0069] The acid may be an organic acid. In some of these embodiments, the acid may be at least one of a monobasic acid, a dibasic acid, and a tribasic acid. In some such embodiments, the acid may contain at least one carboxyl functional group. In some such embodiments, the acid may be at least one of an alpha hydroxy acid, a carboxylic acid, a dicarboxylic acid, a tricarboxylic acid, and a keto acid. In some such embodiments, the acid may be an alpha keto acid. In some such embodiments, the acid may be at least one of succinic acid, lactic acid, benzoic acid, citric acid, tartaric acid, fumaric acid, levulinic acid, acetic acid, malic acid, formic acid, sorbic acid, benzoic acid, propanoic acid, and pyruvic acid. Lactic acid is preferred. In other embodiments, the acid is benzoic acid. In other embodiments, the acid may be an inorganic acid. In some of these embodiments, the acid may be a mineral acid. In some such embodiments, the acid may be at least one of sulfuric acid, hydrochloric acid, boric acid, and phosphoric acid. In some embodiments, the acid is levulinic acid. The inclusion of an acid is particularly preferred in embodiments in which the aerosol-generating material contains nicotine. In such embodiments, the presence of an acid can stabilize dissolved species in the slurry in which the aerosol-generating material is formed. The presence of an acid can reduce nicotine loss during production by reducing or substantially preventing the evaporation of nicotine when the slurry dries. The amorphous solid may contain a colorant. The addition of a colorant can alter the visual appearance of the amorphous solid. The presence of a colorant in the amorphous solid can enhance the visual appearance of the amorphous solid and the aerosol-generating material. By adding a colorant to the amorphous solid, the amorphous solid can be color-matched to other components of the aerosol-generating material or to other components of an article containing the amorphous solid.

[0070] Various colorants can be used depending on the desired color of the amorphous solid. The color of the amorphous solid may be, for example, white, green, red, purple, blue, brown, or black. Other colors are also conceivable. Natural or synthetic colorants, such as natural or synthetic dyes, food colorants, and pharmaceutical colorants may be used. In certain embodiments, the colorant is caramel-colored, which can give the amorphous solid a brown appearance. In such embodiments, the color of the amorphous solid may be the same as the color of other components (such as tobacco material) in the aerosol-generating material containing the amorphous solid. In some embodiments, the addition of a colorant to the amorphous solid makes it visually indistinguishable from other components in the aerosol-generating material.

[0071] The colorant may be incorporated during the formation of the amorphous solid (for example, when forming a slurry containing the material that forms the amorphous solid), or it may be applied to the amorphous solid after its formation (for example, by spraying the colorant onto the amorphous solid).

[0072] Amorphous solid aerosolizable materials offer several advantages over other types of aerosolizable materials commonly found in some electronic aerosol supply devices. For example, compared to electronic aerosol supply devices that aerosolize liquid aerosolizable materials, the likelihood of the amorphous solid leaking or otherwise flowing from where it is stored is significantly reduced. This means that aerosol supply devices or articles can be manufactured at a lower cost, as the components do not necessarily require the same liquid-tight seals, etc., that would otherwise be used.

[0073] Compared to electronic aerosol supply devices that aerosolize solid aerosolizable materials, such as tobacco, a relatively low mass of amorphous solid material can be aerosolized to produce an equivalent amount of aerosol (or to supply an equivalent amount of a component, such as nicotine, into the aerosol). This is partly because the amorphous solid can be adapted so as not to contain unsuitable components that may be found in other solid aerosolizable materials (e.g., cellulosic materials in tobacco). For example, in some embodiments, the mass per portion of the amorphous solid does not exceed 20 mg, or 10 mg, or 5 mg. This means that the aerosol supply device can supply relatively little power to the aerosol generating components, and / or the aerosol generating components can be relatively small to produce a similar aerosol, thus reducing the energy requirements for the aerosol supply device.

[0074] In some embodiments, the amorphous solid contains a tobacco extract. In these embodiments, the amorphous solid may have the following composition (on a dry weight basis, DWB): namely, about 1 wt% to about 60 wt%, or about 10 wt% to 30 wt%, or about 15 wt% to about 25 wt%, of a gelling agent (preferably containing alginate); about 10 wt% to about 60 wt%, or about 40 wt% to 55 wt%, or about 45 wt% to about 50 wt%, of a tobacco extract; and about 5 wt% to about 60 wt%, or about 20 wt% to about 40 wt%, or about 25 wt% to about 35 wt%, of an aerosol-generating agent (preferably containing glycerol) (DWB). The tobacco extract may be derived from a single tobacco species or from a blend of extracts from various different tobacco species. Such amorphous solids are sometimes called "amorphous tobacco solids" and may be intended to deliver a smoking-like experience when aerosolized.

[0075] In one embodiment, the amorphous solid comprises about 20 wt% alginate gelling agent, about 48 wt% Virginia tobacco extract, and about 32 wt% glycerol (DWB).

[0076] The amorphous solids of these embodiments may have any preferred water content. For example, the amorphous solid may have a water content of about 5 wt% to about 15 wt%, or about 7 wt% to about 13 wt%, or about 10 wt%.

[0077] In any of these embodiments, the amorphous solid has a thickness t of approximately 50 μm to approximately 200 μm, or approximately 50 μm to approximately 100 μm, or approximately 60 μm to approximately 90 μm, preferably approximately 77 μm. a It is preferable to have this feature.

[0078] In some embodiments, the amorphous solid may contain 0.5–60 wt% of a gelling agent and 5–80 wt% of an aerosol-generating agent, the weights of which are calculated on a dry weight basis. Such amorphous solids may contain no fragrances, acids, or active substances at all. Such amorphous solids are sometimes referred to as "aerosol-generating agent rich" or "aerosol-generating amorphous solid." More broadly, this is an example of an aerosol-generating agent rich aerosol-generating material, which, as the name suggests, is the portion of an aerosol-generating material that, when aerosolized, is intended to deliver an aerosol-generating agent.

[0079] In these embodiments, the amorphous solid may have the following composition (DWB): a gelling agent in an amount of about 5 wt% to about 40 wt%, or about 10 wt% to 30 wt%, or about 15 wt% to about 25 wt%, and an aerosol-generating agent in an amount of about 10 wt% to about 50 wt%, or about 20 wt% to about 40 wt%, or about 25 wt% to about 35 wt% (DWB).

[0080] In some other embodiments, the amorphous solid may contain 0.5–60 wt% of a gelling agent, 5–80 wt% of an aerosol-generating agent, and 1–60 wt% of a flavoring agent, the weights of which are calculated on a dry weight basis. Such amorphous solids may contain a flavoring agent but may not contain any active substances or acids at all. Such amorphous solids are sometimes referred to as "flavoring-rich" or "flavoring amorphous solids." More broadly, this is an example of a flavoring-rich aerosol-generating material, which, as the name suggests, is the portion of an aerosol-generating material that is intended to deliver a flavoring agent when aerosolized.

[0081] In these embodiments, the amorphous solid may have the following composition (DWB): namely, a gelling agent in an amount of about 5 wt% to about 40 wt%, or about 10 wt% to 30 wt%, or about 15 wt% to about 25 wt%, an aerosol-generating agent in an amount of about 10 wt% to about 50 wt%, or about 20 wt% to about 40 wt%, or about 25 wt% to about 35 wt%, and a fragrance in an amount of about 30 wt% to about 60 wt%, or about 40 wt% to 55 wt%, or about 45 wt% to about 50 wt% (DWB).

[0082] In some other embodiments, the amorphous solid may contain 0.5–60 wt% of a gelling agent, 5–80 wt% of an aerosol-generating agent, and 5–60 wt% of at least one active substance, the weights of which are calculated on a dry weight basis. Such amorphous solids may contain an active substance but may not contain any flavoring or acid. Such amorphous solids are sometimes referred to as “active substance rich” or “active substance amorphous solid.” For example, in one embodiment, the active substance may be nicotine, and in such a case, the amorphous solid described above containing nicotine may be referred to as “nicotine amorphous solid.” More broadly, this is an example of an active substance-rich aerosol-generating material, which, as the name suggests, is the portion of an aerosol-generating material that is intended to deliver an active substance when aerosolized.

[0083] In these embodiments, the amorphous solid may have the following composition (DWB): a gelling agent in an amount of about 5 wt% to about 40 wt%, or about 10 wt% to 30 wt%, or about 15 wt% to about 25 wt%, an aerosol-generating agent in an amount of about 10 wt% to about 50 wt%, or about 20 wt% to about 40 wt%, or about 25 wt% to about 35 wt%, and an active substance in an amount of about 30 wt% to about 60 wt%, or about 40 wt% to 55 wt%, or about 45 wt% to about 50 wt% (DWB).

[0084] In some other embodiments, the amorphous solid may contain 0.5–60 wt% of a gelling agent, 5–80 wt% of an aerosol-generating agent, and 0.1–10 wt% of an acid, the weights of which are calculated on a dry weight basis. Such amorphous solids may contain an acid, but may contain no active substances or flavorings at all. Such amorphous solids are sometimes called "acid-rich" or "acid amorphous solids." More broadly, this is an example of an acid-rich aerosol-generating material, which, as the name suggests, is the portion of an aerosol-generating material that is intended to deliver an acid when aerosolized.

[0085] In these embodiments, the amorphous solid may have the following composition (DWB): namely, a gelling agent in an amount of about 5 wt% to about 40 wt%, or about 10 wt% to 30 wt%, or about 15 wt% to about 25 wt%, an aerosol-generating agent in an amount of about 10 wt% to about 50 wt%, or about 20 wt% to about 40 wt%, or about 25 wt% to about 35 wt%, and an acid in an amount of about 0.1 wt% to about 8 wt%, or about 0.5 wt% to 7 wt%, or about 1 wt% to about 5 wt%, or about 1 wt% to about 3 wt% (DWB).

[0086] The thickness of these amorphous solids may exceed the thickness mentioned above, for example, up to 2 mm or 1.5 mm, partly because the user can choose to repeatedly heat multiple sections to extract the desired aerosol from these sections.

[0087] Article 4 may include multiple parts of an aerosol-generating material, all of which are formed from the same aerosol-generating material (e.g., one of the amorphous solids described above). Alternatively, Article 4 may include multiple parts of an aerosol-generating material 44, at least two of which are formed from different aerosol-generating materials (e.g., one of the amorphous solids described above).

[0088] The receiving section 25 is suitably sized to removably receive the article 4. Although not shown, the device 2 may include a hinged door or removable component on the outer housing 21 to allow access to the receiving section 25 so that the user can insert and / or remove the article 4 into the receiving section 25. The hinged door or removable component on the outer housing 21 may also function to hold the article 4 in the receiving section 25 when closed. If the aerosol supply article 4 is depleted or the user simply wishes to replace it with another aerosol supply article 4, the aerosol supply article 4 can be removed from the aerosol supply device 2, and the replacement aerosol supply article 4 can be placed in its place within the receiving section 25. Alternatively, the device 2 may include a permanent opening communicating with the receiving section 25 through which the article 4 can be inserted into the receiving section 25. In such an embodiment, a retaining mechanism may be provided to hold the article 4 in the receiving section 25 of the device 2.

[0089] As shown in Figure 1, device 2 comprises a plurality of aerosol generating components 24. In the embodiment described, the aerosol generating component 24 is a heating element 24, more specifically a resistive heating element 24. The resistive heating element 24 receives an electric current and converts electrical energy into heat. The resistive heating element 24 may be formed from or include any suitable resistive heating material, such as nichrome (Ni20Cr80), which generates heat when it receives an electric current. In one embodiment, the heating element 24 may include an electrical insulating substrate on which a resistive track is arranged.

[0090] Figure 3 is a top-down cross-sectional view of the aerosol supply device 2, showing in more detail the arrangement of the heating element 24. In Figures 1 and 3, the heating element 24 is positioned such that its surface forms part of the surface of the receiving portion 25. That is, the outer surface of the heating element 24 is coplanar with the inner surface of the receiving portion. More specifically, the outer surface of the heating element 24, which is coplanar with the inner surface of the receiving portion 25, is the surface of the heating element 24 that is heated (i.e., its temperature rises) when an electric current passes through it.

[0091] The heating elements 24 are positioned such that, once the article 4 is received into the receiving section 25, each heating element 24 aligns with the corresponding individual part of the aerosol-generating material 44. Thus, in this example, the six heating elements 24 are arranged in a 2x3 array that roughly corresponds to the 2x3 arrangement of the six individual parts of the aerosol-generating material 44 shown in Figures 2A to 2C. However, as mentioned above, the number of heating elements 24 may vary in various different embodiments, for example, there may be 8, 10, 12, 14, etc. In some embodiments, the number of heating elements 24 is 6 or more but not exceeding 20.

[0092] More specifically, the heating elements 24 are denoted 24a to 24f in Figure 3, and it should be understood that each heating element 24 is positioned to align with a corresponding portion of the aerosol-generating material 44, as indicated by the corresponding letter following the reference numeral 24 / 44. Thus, each heating element 24 can be activated individually to heat a corresponding portion of the aerosol-generating material 44.

[0093] In this embodiment, the heating element 24 is shown to be coplanar with the inner surface of the receiving portion 25, but in other embodiments, the heating element 24 may protrude into the receiving portion 25. In either case, when the article 4 is inside the receiving portion 25, it is in contact with the surface of the heating element 24, and thus the heat generated by the heating element 24 is directed to the aerosol-generating material 44 via the carrier component 42.

[0094] In some embodiments, to improve heat transfer efficiency, the receiving portion may include a component that applies force to the surface of the carrier component 42 to increase the efficiency of heat transfer by conduction to the aerosol-generating material 44 by pressing the carrier component 42 against the heater element 24. Additionally or alternatively, the heater element 24 may be configured to move toward / away from the article 4 and may be pressed against a surface of the carrier component 42 that does not contain the aerosol-generating material 44.

[0095] During use, device 2 (more specifically, the control circuit 23) is configured to deliver power to the heating element 24 in response to user input. Roughly speaking, the control circuit 23 is configured to selectively apply power to the heating element 24, and then heat the corresponding portion of the aerosol-generating material 44 to generate an aerosol. When the user inhales into device 2 (i.e., inhales through the mouthpiece end 26), air is drawn into device 2 through the air inlet 27 and enters the receiving section 25, where it mixes with the aerosol generated by heating the aerosol-generating material 44, and is then drawn into the user's mouth through the air outlet 28. In other words, the aerosol is delivered to the user through the mouthpiece end 26 and the air outlet 28.

[0096] Device 2 in Figure 1 comprises a touch-sensitive panel 29 and an inhalation sensor 30. Collectively, the touch-sensitive panel 29 and the inhalation sensor 30 function as a mechanism for receiving user input to generate aerosols, and are therefore sometimes more broadly referred to as a user input mechanism. The received user input can be considered to indicate that the user desires to generate aerosols.

[0097] The touch-sensitive panel 29 may be a capacitive touch sensor and can be activated by the user of device 2 placing their finger or another suitable conductive object (e.g., a stylus) on the touch-sensitive panel. In the embodiment described, the touch-sensitive panel includes an area that the user can press to initiate aerosol generation. The control circuit 23 may be configured to receive a signaling from the touch-sensitive panel 29 and to use this signaling to determine whether the user is pressing (i.e., activating) an area of ​​the touch-sensitive panel 29. When the control circuit 23 receives this signaling, it is configured to supply power from the power source 22 to one or more of the heating elements 24. Power may be supplied for a predetermined period of time (e.g., 3 seconds) from the moment the touch is detected or in response to the duration of the detected touch. In other embodiments, a user-activatable button or the like may be used instead of the touch-sensitive panel 29.

[0098] The inhalation sensor 30 may be a pressure sensor or microphone, etc., configured to detect a pressure drop or airflow caused by the user inhaling through device 2. The inhalation sensor 30 is positioned in fluid communication with the air passage (i.e., in fluid communication with the air passage between inlet 27 and outlet 28). Similarly, the control circuit 23 may be configured to receive a signaling from the inhalation sensor and to use this signaling to determine whether the user is inhaling through the aerosol supply system 1. When the control circuit 23 receives this signaling, the control circuit 23 is configured to supply power from the power source 22 to one or more of the heating elements 24. Power can be supplied for a predetermined time period (e.g., 3 seconds) from the moment inhalation is detected or in response to the duration for which inhalation is detected.

[0099] In the example described, both the touch-sensitive panel 29 and the inhalation sensor 30 detect that the user desires to initiate aerosol generation for inhalation. The control circuit 23 may be configured to power the heating element 24 only when signaling is detected from both the touch-sensitive panel 29 and the inhalation sensor 30. This can help prevent accidental activation of the heating element 24 due to an unexpected activation of one of the user input mechanisms. However, in other embodiments, the aerosol supply system 1 may have only one of the touch-sensitive panel 29 and the inhalation sensor 30.

[0100] These aspects of the operation of the aerosol supply system 1 (i.e., puff detection and touch detection) can themselves be carried out according to established techniques (for example, using conventional inhalation sensors and inhalation sensor signal processing techniques, and using conventional touch sensors and touch sensor signal processing techniques).

[0101] In some embodiments, the control circuit 23 is configured to sequentially power each of the individual heating elements 24 in response to detecting signaling from either or both of the touch-sensitive panel 29 and the intake sensor 30.

[0102] More specifically, the control circuit 23 is configured to sequentially power each of the individual heating elements 23 in response to a series of signaling detections received from either or both of the touch-sensitive panel 29 and the inhalation sensor 30. For example, the control circuit 23 may be configured to power the first heating element 24 of the multiple heating elements 24 when the signaling is first detected (e.g., from when device 2 is first turned on). When the signaling stops, or in response to a predetermined time having elapsed since the signaling was detected, the control circuit 23 indicates that the first heating element 24 has been activated (and therefore the corresponding individual parts of the aerosol-generating material 44 have been heated). In response to receiving subsequent signaling from either or both of the touch-sensitive panel 29 and the inhalation sensor 30, the control circuit 23 determines that the second heating element 24 should be activated. Therefore, when the control circuit 23 receives signaling from either or both of the touch-sensitive panel 29 and the intake sensor 30, the control circuit 23 activates the second heating element 24. This process is repeated for the remaining heating elements 24 so that all heating elements 24 are activated sequentially.

[0103] In effect, this operation means that with each inhalation, a different portion of the aerosol-generating material 44 is heated, and an aerosol is generated from it. In other words, only one individual portion of the aerosol-generating material is heated by the user's inhalation.

[0104] In another embodiment, the control circuit 23 may be configured to activate the first heating element multiple times (e.g., twice) before determining that the second heating element 24 should be activated in response to subsequent signaling from either or both of the touch-sensitive panel 29 and the intake sensor 30, or it may activate each of the multiple heating elements 24 once, and then, upon detection of subsequent signaling, activate those heating elements again in sequence.

[0105] Such sequential activation may also be called “sequential activation mode,” and is primarily intended to deliver a consistent aerosol with each inhalation (which can be measured, for example, by the total aerosol produced or the total components delivered). Therefore, this mode may be most effective when each part of the aerosol-generating material 44 of the aerosol product 4 is substantially identical, that is, when parts 44a to 44f are formed from the same material.

[0106] In some other embodiments, the control circuit 23 is configured to simultaneously supply power to one or more of the heating elements 24 in response to the detection of signaling from either or both of the touch-sensitive panel 29 and the intake sensor 30.

[0107] In such embodiments, the control circuit 23 may be configured to supply power to a selected heating element among the heating elements 24, depending on a predetermined configuration. The predetermined configuration may be one selected or determined by the user. For example, the touch-sensitive panel 29 may include an area that allows the user to individually select which of the heating elements 24 should be activated when the control circuit 23 receives signaling from either or both of the touch-sensitive panel 29 and the intake sensor 30. In some embodiments, the user may also be able to set a power level to be supplied to each heating element 24 in response to the reception of the signaling.

[0108] Figure 4 is a top view of a touch-sensitive panel 29 according to such an embodiment. Figure 4 schematically shows the outer housing 21 and touch-sensitive panel 29 as described above. The touch-sensitive panel 29 includes six regions 29a to 29f corresponding to each of the six heating elements 24, and a region 29g corresponding to a region for indicating that the user desires to initiate aerosol inhalation or generation as described above. Each of the six regions 29a to 29f corresponds to a touch-sensitive region that the user can touch to control the power delivery to each of the six corresponding heating elements 24. In the embodiment described, each heating element 24 may have multiple states, for example, an off state in which no power is supplied to the heating element 24, a low-power state in which a first level of power is supplied to the heating element 24, and a high-power state in which a second level of power is supplied to the heating element 24, the second level of power being higher than the first level of power. However, in other embodiments, fewer or more states may be available to the heating element 24. For example, each heating element 24 may have an off state in which no power is supplied to the heating element 24 at all, and an on state in which power is supplied to the heating element 24.

[0109] Therefore, prior to aerosol generation, the user can interact with the touch-sensitive panel 29 to set which heating elements 24 (and subsequently which parts of the aerosol-generating material 44) should be heated (optionally, to what extent they should be heated). For example, the user can repeatedly tap areas 29a to 29f to cycle through various different states (e.g., off, low power, high power, off, etc.). Alternatively, the user may press or grasp areas 29a to 29f to cycle through various different states, in which case the duration of the press determines the state.

[0110] The touch-sensitive panel 29 may be provided with one or more indicators for each of the regions 29a to 29f to indicate the current state of the heating element 24. For example, the touch-sensitive panel may be provided with one or more LEDs or similar lighting elements, where the intensity of the LEDs indicates the current state of the heating element 24. Alternatively, a color LED or similar lighting element may be provided, where the color indicates the current state. Alternatively, the touch-sensitive panel 29 may be provided with a display element that displays the current state of the heating element 24 (for example, it may be located beneath the transparent touch-sensitive panel 29 or adjacent to regions 29a to 29f of the touch-sensitive panel 29).

[0111] When a user has set a configuration for a heating element 24 in response to detecting signaling from either or both of the touch-sensitive panel 29 (more specifically, the area 29g of the touch-sensitive panel 29) and the suction sensor 30, the control circuit 23 is configured to supply power to the selected heating element 24 according to the preset configuration.

[0112] Therefore, the simultaneous activation of such heating elements 24 may be called the "simultaneous activation mode," which is primarily intended to deliver a customizable aerosol from a given article 4, with the aim of allowing the user to customize their experience session by session or even puff by puff. Thus, this mode may be most effective when multiple parts of the aerosol-generating material 44 of the aerosol product article 4 are different from each other. For example, parts 44a and 44b may be formed from one material, and parts 44c and 44d may be formed from different materials, and so on. Thus, using this mode of operation, the user can choose which parts to aerosolize and, therefore, which combination of aerosols should be supplied at any given moment.

[0113] In both simultaneous and sequential activation modes, the control circuit 23 may be configured to generate an alert signal indicating the end of use of item 4 when, for example, each of the heating elements 24 is activated sequentially a predetermined number of times, or when a given heating element 24 is activated a predetermined number of times and / or for a given cumulative activation time and / or for a given cumulative activation power. In Figure 1, device 2 includes an end-of-use indicator 31, which is an LED in this embodiment. However, in other embodiments, the end-of-use indicator 31 may include any mechanism capable of supplying an alert signal to the user, i.e., the end-of-use indicator 31 may be an optical element that delivers a light signal, a sound source that delivers an audio signal, and / or a vibrator that delivers a tactile signal. In some embodiments, the indicator 31 may be combined with a touch-sensitive panel, or otherwise provided by the touch-sensitive panel (for example, when the touch-sensitive panel includes a display element). Device 2 may prevent subsequent activation of device 2 when an alert signal is output. If the user replaces item 4 and / or switches the alert signal off via manual means such as a button (not shown), the alert signal can be switched off and the control circuit 23 can be reset.

[0114] More specifically, in embodiments where sequential activation mode is used, the control circuit 23 may be configured to count the number of times signaling from either or both of the touch-sensitive panel 29 and the inhalation sensor 30 is received during use, and when the count reaches a predetermined number, it is determined that article 4 has reached the end of its life. The predetermined number may be equal to or different from the number of parts. For example, for article 4 containing six individual parts of aerosol-generating material 44, the predetermined number may be 6, 12, 18, etc., depending on the embodiment at hand.

[0115] In embodiments where the simultaneous activation mode is used, the control circuit 23 may be configured to count the number of times one or each of the individual parts of the aerosol-generating material 44 is heated. For example, the control circuit 23 can count how many times the nicotine-containing part has been heated, and when a predetermined number is reached, it can determine that the article 4 has reached the end of its lifespan. Alternatively, the control circuit 23 may be configured to count each individual part of the aerosol-generating material 44 separately when it is heated. Each part may be considered to have the same or different predetermined number, and when any one of the counts for each of the multiple parts of the aerosol-generating material reaches a predetermined number, the control circuit 23 determines that the article 4 has reached the end of its lifespan.

[0116] In any embodiment, the control circuit 23 may also take into account the length of time that portion of the aerosol-generating material is heated, and / or the temperature at which that portion of the aerosol-generating material is heated. In this regard, rather than counting individual activations, the control circuit 23 may be configured to calculate a cumulative parameter that indicates the heating conditions that each of the multiple portions of the aerosol-generating material 44 has experienced. The parameter may be, for example, cumulative time, thereby adjusting the length of time added to the cumulative time depending on the temperature at which the material is used. For example, a portion heated at 200°C for 3 seconds may contribute 3 seconds to the cumulative time, while a portion heated at 250°C for 3 seconds may contribute 4.5 seconds to the cumulative time. The above techniques for determining the end of life of Article 4 should not be understood as an exhaustive list of methods for determining the end of life of Article 4, and in fact, any other suitable method can be used in accordance with the principles of this disclosure.

[0117] Each of the multiple parts of the aerosol-generating material described above generally contains some component, such as nicotine, which, when heated, is to be delivered into the aerosol for user inhalation. Depending on the circumstances, during the use of article 4, each and all individual parts of the aerosol-generating material 44 may not be heated by the corresponding heating element 24 (e.g., in simultaneous activation mode), and / or each and all individual parts of the aerosol-generating material 44 may not be sufficiently heated (e.g., in sequential activation mode). In other words, when device 2 determines that article 4 has reached the end of its usable life, regardless of which of the above criteria is followed, some of the component to be delivered may remain in that part of the aerosol-generating material 44. It should be understood that even in sequential activation mode, where each part of the aerosol-generating material 44 is heated at least once before article 4 is determined to be at the end of its life, some amount of the component may remain. This is partly because the component is effectively "confined" within the aerosol-generating material 44 and requires heating to allow the component to be released from the aerosol-generating material 44. However, in order to ensure the rapid release of a sufficient amount of aerosol-generating material 44 within the duration of user inhalation, the aerosol-generating material 44 may be provided with a higher concentration of components than is actually delivered during inhalation.

[0118] Some components remaining after the initial heating of the aerosol-generating material could have adverse environmental effects if item 4 is not properly disposed of. For example, nicotine is known to be toxic, and while the nicotine concentration in the aerosol-generating material 44 can be brought to a generally safe level for human consumption, any remaining nicotine could enter the food chain of certain animals due to improper disposal of item 4 and cause harm to those animals. The same could apply to other components, such as flavorings. Efforts can be made to ensure the safe disposal of item 4 after use, but such methods may not be reliable as they rely on users properly disposing of item 4. Therefore, the inventors have devised an aerosol supply system 1 intended to reduce the level of specific components in the remaining portion of the aerosol-generating material 44 of article 4 after use.

[0119] In particular, the inventors have devised a method for reducing the amount of a first component (such as nicotine) in multiple parts of an aerosol generating material 44, the method comprising the step of heating multiple parts of the aerosol generating material 44 until the first component is substantially eliminated in those parts.

[0120] Figure 5 illustrates an exemplary method according to the above for reducing the amount of the first component until it is substantially absent from multiple parts of the aerosol-generating material. In this regard, "substantially absent from the first component" should be understood to mean that the first component is present in an amount considered acceptable from the standpoint of reliable disposal of Article 4. This amount can vary depending on what the component is. For example, if nicotine is the first component, its level can be set such that, after heating, the concentration of nicotine in at least one part of the aerosol-generating material is less than 0.05 mg / ml or less than 0.02 mg / ml when dissolved in 100 ml of solvent. To test the concentration, a sample of a certain mass, such as 1 g, of the material is taken and mixed with 100 ml of solvent (such as ethanol). This mixture is stirred for 3 hours and then passed through a gas chromatography-flame ionization detector (GC-FID) to identify the component and concentration. Other comparative techniques for analysis may also be used according to other embodiments.

[0121] Figure 5 shows, in more detail, a method for reducing the amount of the first component in one or more parts of the aerosol-generating material 44 of article 4 shown in Figures 2A-2C, when a sequential activation method is used, and more specifically, when each part of the aerosol-generating material 44 is heated once to generate an aerosol for user inhalation.

[0122] The method begins in step S1, in which device 2 receives signaling from either or both of the touch-sensitive panel 29 and the inhalation sensor 30 indicating that the user intends to inhale an aerosol, as described above. Device 2 may already be in a “standby” state before step S1, in which case the control circuit 23 is monitoring for signaling.

[0123] When the control circuit 23 receives a signal in step S1, the control circuit 23 is configured to heat the corresponding portion of the aerosol-generating material 44 in step S2 according to the sequential activation mode described above. In particular, in response to receiving a first signal in step S1, the control circuit 23 may be configured to cause heating of portion 44a. Heating is carried out according to heating profiles for multiple portions of the aerosol-generating material. The heating profiles can be selected to produce an aerosol that is suitable in terms of quantity and quality (i.e., an aerosol that has sufficient quantity and quality to satisfy the user's requirements).

[0124] The temperature at which the portion of the aerosol-generating material 44 is heated can be predetermined to produce a specific desired aerosol, but for amorphous solid aerosol-generating materials, it has been found to be in the range of 120°C to 350°C depending on the exact formulation of the amorphous solid used. The duration of heating may be predetermined or determined according to the length of the user's puff, as described above. However, generally, the duration of heating is approximately 2 to 5 seconds, and in many embodiments, not longer than 10 seconds. In some embodiments where the duration of heating is based on the user's puff duration, an interruption may be implemented in which power to the heating element 24 is stopped after 10 seconds of inhalation to prevent abuse of system 1. If a single portion of the aerosol-generating material 44 is heated according to step S2, the single portion of the aerosol-generating material 44 may be heated at a first temperature for a first duration.

[0125] Once the heating stage is performed (i.e., once the heating element 24 is started and stopped), in step S3, the control circuit 23 determines whether the end-of-life conditions for article 4 have been met.

[0126] If the end-of-life condition is not met (i.e., no in step S3), the method proceeds to step S4, in which the control circuit 23 monitors for subsequent signaling indicating that the user desires aerosol generation again. If the signaling is received (i.e., yes in step S4), the control circuit 23 causes heating of the corresponding portion of the aerosol-generating material 44 according to the activation method selected in step 2. In this example, the control circuit 23 is configured to sequentially cause heating of portions 44b, 44c, 44d, 44e, and finally 44f. If the end-of-life condition is not detected, the method loops between steps S2, S3, and S4.

[0127] In this embodiment of the example, the end-of-life condition is determined when the count of signaling instances received by the control circuit 23 exceeds a threshold. In this example, the threshold is 6, and therefore, when 6 distinct instances of the signaling are detected in the combined steps S1 and S4, the control circuit 23 determines that item 4 has reached the end of its life. In other words, when this criterion is met, the control circuit 23 determines that the end-of-life condition is met (i.e., yes in step S3). In other words, this can be considered one way of determining when a usage session is complete, assuming that one item 4 is intended to be used during one session.

[0128] In response to the fulfillment of the end-of-life condition, the control circuit 23 is configured to activate a "purge" or "burnout" mode in step S5. This involves the control circuit 23 causing each of the multiple parts of the aerosol-generating material 44 to heat at a second temperature for a second duration. The second duration and second temperature are selected so that, after the aerosol-generating material has undergone this heating step, there is substantially no first component in the aerosol-generating material, such as nicotine.

[0129] In the case of a nicotine-containing amorphous solid containing 4.68 mg of nicotine (an 8 x 8 mm square patch of gel, weighing a total of 0.1 g), after heating at 170°C for 3 minutes, the nicotine concentration was found to be less than 0.02 mg / ml when dissolved in 100 ml of solvent, and was analyzed using a mixed analysis method. In other words, after heating over a long period of time, nicotine is substantially removed from the aerosol-generating material.

[0130] However, it should be understood that different heating times (i.e., second durations) and different maximum temperatures can be implemented depending on the composition of the aerosol-generating material 44 and the components to be removed. Generally speaking, however, a higher maximum temperature requires less heating time to substantially remove the first component from multiple parts of the aerosol-generating material. Similarly, the volatility of the first component may also play a role in determining the maximum temperature and heating duration. Various heating times and maximum heating temperatures can be determined empirically or by computer simulation.

[0131] In some embodiments, the heating time period / second duration may exceed 60 seconds (1 minute), 90 seconds (1.5 minutes), 120 seconds (2 minutes), 150 seconds (2.5 minutes), or 180 seconds (3 minutes). In other words, this heating time period may be substantially longer than the heating time period that generates an aerosol for a single user inhalation, which can be less than 10 seconds long, and may be, for example, between 5 and 30 times longer. Setting the heating time period too short may result in the first component not being substantially removed from all of the aerosol-generating material after the heating period, while setting the heating period too long will heat the aerosol-generating material beyond the point where the first component is removed from the aerosol-generating portion, and therefore energy from the power source 22 will be used unnecessarily. The length of the heating period may depend on the thickness of the aerosol-generating material to be heated during the heating period (for example, thicker materials may require a longer heating period). The above duration may be particularly suitable for aerosol-generating portions having a thickness between 400 μm and 1 mm.

[0132] In some embodiments, the maximum temperature does not exceed 350°C, 300°C, or 250°C. In some embodiments, the maximum temperature may be selected from the range of 150°C to 220°C. Setting the maximum temperature too low may result in the first component not being substantially removed from all of the aerosol-generating material after the heating period, while setting the maximum temperature too high may result in charring or combustion of the aerosol-generating material, which may produce undesirable components that would be difficult to dispose of in an environmentally friendly manner. In some embodiments, the maximum temperature used in step S5 may be the same as the maximum temperature used in step S3. That is, the maximum temperature used to heat the portion of the aerosol-generating material containing the first component to generate an aerosol for user inhalation is approximately the same as the maximum temperature used to heat at least that portion of the aerosol-generating material until the first component is substantially removed from at least that portion of the aerosol-generating material. In other embodiments, the maximum temperature used in step S5 may be higher than the maximum temperature used in step S3.

[0133] Although not shown in the diagram, the device 2 may optionally be configured to output a signal using the indicator 31 during step S5 to indicate to the user that the burnout mode is in progress. For example, the indicator may be an LED and may be configured to output a flashing or blinking light during the heating period. Any other form of indicator unit capable of outputting a signal to the user as described above may also be used. During the burnout mode, the user should stop inhaling from the device 2, and the indicator 31 can help guide the user in this regard.

[0134] In step S6, once the heating time has elapsed, the indicator 31 may output a different signal to the user indicating that the burnout mode is complete. For example, the indicator 31 may light up to indicate that the burnout mode is complete and that the user can remove the item 4 and dispose of it using conventional means (e.g., a waste disposal container). Similarly, the indicator 31 may be any type of indicator and may output any type of signal as appropriate.

[0135] In the example shown in Figure 5, the control circuit 23 is configured to sequentially activate multiple heating elements 24 to heat the corresponding parts of the aerosol-generating material 44 so that each part of the aerosol-generating material is heated once. However, the same method can be applied if each part is heated multiple times, for example, twice. In these examples, the control circuit 23 may be configured to sequentially heat each heating element 24, for example, twice, before determining in step S3 that the life-end condition is met. The heating elements 24 can be activated in the sequence 24a, 24b...24f, 24a, 24b...24f, or they can be heated in the sequence 24a, 24a, 24b, 24b...24f, 24f. However, other preferred heating sequences may be used depending on the situation.

[0136] Similarly, in step S5, the duration for which the multiple heating elements 24 are heated until the first component is substantially removed from multiple parts of the aerosol-generating material can be determined taking into account the number of times the heating elements 24 are activated. For example, if each heating element 24 is activated for 10 seconds, and it is found that an unused portion of the aerosol-generating material 44 should be heated at 250°C for 90 seconds to substantially remove the first component from that portion, the control circuit 23 can be programmed to heat the used portion of the aerosol-generating material 44 for the duration (e.g., 90 seconds) for which it is found that the unused portion of the aerosol-generating material is substantially removed from the first component, minus the total heater activation duration (e.g., 10 seconds if each portion is heated once, 20 seconds if each portion is heated twice, etc.). In some embodiments, where the maximum temperature used in step S3 is not the same as the maximum temperature used in step S5, the total heater activation duration may be modified by the maximum temperature used. For example, if multiple parts of the aerosol-generating material 44 are heated at a maximum temperature of 170°C for 10 seconds during step S3, this can be considered equivalent to a corresponding heating period of approximately 5 seconds at the maximum temperature (e.g., 250°C) in step S5, in terms of the amount of nicotine released. In this way, the power supplied by the power source 22 can be used more efficiently.

[0137] In another embodiment, the heating duration used in step S5 to make multiple parts of the aerosol-generating material substantially free of the first component is set independently of the number of heating element activations. This ensures that, for example, if multiple parts of the aerosol-generating material are not heated at all to generate an aerosol for user inhalation, then when heated according to step S5, these parts will be substantially free of the first component.

[0138] In other embodiments, the control circuit 23 may be configured to track which portion of the aerosol-generating material 44 is heated (optionally for how long), and may also be configured to provide a customized heating profile for each of the multiple portions of the aerosol-generating material 44 to ensure that the first component is substantially absent from each portion of the aerosol-generating material. This method can be particularly suited to the simultaneous activation method described above, in particular when at least some of the multiple portions of the aerosol-generating material 44 of article 4 are different from one another. Figure 6 shows an example method illustrating such a process.

[0139] The method begins with step S11, which is essentially the same as step S1 described above, and will not be repeated for brevity.

[0140] When the control circuit 23 receives a signal in step 11, the control circuit 23 is configured in step S12 to heat the corresponding portion of the aerosol-generating material 44 according to the simultaneous activation mode (as described above). As described, in the simultaneous activation mode, one or more of the multiple portions of the aerosol-generating material 44, for example, portions 44a and 44b, are selected to be heated to generate an aerosol for user inhalation. Each of these portions 44a, 44b can be heated to a specific temperature for a specific duration to deliver the desired aerosol according to a preset heating configuration. For example, portion 44a can be heated to 200°C for 2 seconds, while portion 44b can be heated to 170°C for 3 seconds.

[0141] Either during or after step S12 (for example, in step 12.5), the control circuit 23 is configured to track activation parameters for each of the multiple parts of the aerosol-generating material 44. In practice, the control circuit 23 can maintain an operation log for each heating element 24 (or part of the aerosol-generating material 44), and the control circuit 23 updates the operation log of activation parameters for the heating element(s) 24 or part(s) of the aerosol-generating material 44 that were heated during step S12.

[0142] The activation parameter may be any preferred parameter that monitors the activation of multiple parts of the aerosol-generating material. In one embodiment, the activation parameter may be a measurement of the individual number of times a part of the aerosol-generating material is heated. In these embodiments, the control circuit 23 may store the activation count for each of the heating elements 24 or each of the aerosol-generating parts 44, and each time a heating element or part is heated in step S12, the control circuit increments the number by one. In other embodiments, the activation parameter may be the cumulative heating time over which the part is heated. For example, in these embodiments, the control circuit 23 may store the time for each of the heating elements 24 or each of the aerosol-generating parts 44. During or after step S12, the control circuit 23 is configured to increment the time value associated with the corresponding heating element or part based on the length of time each part is heated during step S12. In yet another embodiment, the activation parameter may be a weighted cumulative heating time over which the part is heated. For example, in these embodiments, the control circuit 23 may store the time for each of the heating elements 24 or each of the aerosol-generating parts 44. During or after step S12, the control circuit 23 is configured to increment the time value associated with the corresponding heating element or part in a manner similar to that described in relation to Figure 5, based on the length of time each part is heated during step S12, and also based on the temperature at which the heating element or part is heated. It should be understood that other methods for characterizing the activation of individual heating elements 24 and / or aerosol generating parts 44 may be used in accordance with the principles of this disclosure.

[0143] Once the heating stage is performed (i.e., each heating element(s) 24 is started and stopped once), in step S13, the control circuit 23 determines whether the end-of-life conditions for article 4 have been met. However, unlike step S3 in Figure 5, in step S13, each part of the aerosol-generating material may be associated with a corresponding end-of-life condition due to the fact that in the simultaneous start mode, certain parts of the aerosol-generating material may be heated more than other parts. The end-of-life conditions may be substantially the same or different for each composition of the aerosol-generating material.

[0144] If the end-of-life condition is not met for any one of the multiple parts of the aerosol-generating material (i.e., no in step S13), the method proceeds to step S14, in which the control circuit 23 monitors for subsequent signaling indicating that the user desires aerosol generation again. If the signaling is received (i.e., yes in step S14), the control circuit 23 causes heating of the corresponding part of the aerosol-generating material 44 according to the selected heating configuration (which can be changed per puff as described above). If the end-of-life condition is not detected, the method loops between steps S12, S13 and S14.

[0145] In this embodiment of the example, the life termination condition may be determined according to the characteristics of the monitored activation parameter. For example, the life termination condition may be a count value (e.g., six counts indicating six distinct heating events in that portion of the aerosol-generating material) or a time period.

[0146] In this example, if it is determined that the end-of-life condition is met for any one of several parts of the aerosol-generating material (i.e., yes in step S13), the method proceeds to step S15 to activate the "purge" or "burnout" mode. However, it should be understood that in some embodiments, yes in step S13 can only be done if it is determined that a particular part of the aerosol-generating material (e.g., the part containing nicotine) has reached the end of its lifespan, or if it is determined that all parts have reached the end of their lifespan. In these embodiments, device 2 may be configured to indicate (e.g., by touch-sensitive panel 29 or indicator 31) that a particular part of the aerosol-generating material is no longer available and cannot be heated, and therefore allows the user to have the opportunity to change the heating configuration of the simultaneous activation mode for subsequent puffs.

[0147] In response to the fulfillment of one (or all) end-of-life conditions, the control circuit 23 is configured to activate a "purge" or "burnout" mode in step S15. This is substantially the same as step S5 shown in Figure 5 above. The duration and temperature at which multiple parts of the aerosol-generating material are heated in burnout mode can be predetermined and can be applied regardless of the activation history of the heating element or part of the aerosol-generating material. However, in the embodiment described, the duration and temperature for each heating element or part can be determined based on monitored activation parameters (for example, by considering the total time required to heat the unused parts of the aerosol-generating material and by subtracting the monitored activation parameters or possible time values ​​from that total time) substantially in accordance with the principle described in relation to Figure 5.

[0148] In some embodiments, the control circuit may be configured to set the temperature at which each of the heating elements 24 is heated so that the heating period for all parts of the aerosol-generating material is substantially the same. For example, a part having half the nicotine of another part may be heated at 150°C for 60 seconds, while a part having twice the nicotine may be heated at 200°C for 60 seconds, so that the burnout mode for each part is completed in substantially the same amount of time.

[0149] In step S16, once the heating time has elapsed, the indicator 31 may output a different signal to the user indicating that the burnout mode is complete. For example, the indicator 31 may light up to indicate that the burnout mode is complete and that the user can remove the item 4 and dispose of it using conventional means (e.g., a waste disposal container). Similarly, the indicator 31 may be any type of indicator and may output any type of signal as appropriate.

[0150] Regardless of the method used, providing a burnout mode allows the user to remove undesirable components from the aerosol-generating material, so that the article 4 containing the material can be safely disposed of. Although not shown, device 2 may include a storage section for storing the aerosol generated during the burnout process, so that the aerosol can be properly disposed of at an appropriate time. In other embodiments, the aerosol may accumulate on the wall of the receiving section, requiring the user to clean the receiving section with the appropriate cleaning supplies. In any case, the user can dispose of the article 4 by any suitable or conventional method (for example, when away from suitable processing equipment), and then clean device 2 when it is more appropriate and possible to use suitable processing equipment.

[0151] While the embodiments described above have focused on removing a first component from an aerosol-generating material, it should be understood that multiple components can be removed from the same portion or from various different portions. For example, a burnout mode for removing flavorings may also be used. In these embodiments, multiple burnout modes may be executed in parallel. For multiple portions of the aerosol-generating material having both components, the control circuit 23 may be configured to select a longer and / or higher temperature burnout mode to be applied to that portion to ensure that both components are substantially removed from the aerosol-generating material.

[0152] While it has been described that the burnout mode (e.g., steps S5 and S15) is performed automatically, in other embodiments the user may be given the option to manually initiate the burnout mode (i.e., the user may manually choose to heat at least that portion of the aerosol-generating material until the first component is substantially gone from at least that portion of the aerosol-generating material). In these embodiments the user may be given an alarm / warning, for example using indicator 31, that article 4 is approaching its end-of-life condition. The user may activate the burnout mode by interacting, for example, with the touch-sensitive panel 29.

[0153] It should be understood that in some embodiments, the burnout mode may be applied only to the portion of the aerosol-generating material containing the first component (and any other selected components to be removed). In other words, the control circuit 23 may be configured to selectively apply the burnout mode to selected portions of the aerosol-generating material.

[0154] In some embodiments, device 2 may optionally include a shut-off or flow-limiting member 32. The flow-limiting member 32 may be any suitable component that selectively seals the air passage in device 2. In Figure 1, the flow-limiting member 32 is a flap that can be moved from an accommodation position that allows airflow to a shut-off position that substantially seals the air passage. However, in other embodiments, the flow-limiting member may be, for example, a butterfly valve or an iris structure. Although the flow-limiting member 32 is shown in Figure 1 as being located on the air outlet 28 side, it can be located at any suitable position along the flow passage downstream of the receiving portion 25. In steps S5 and S15 of the method shown in Figures 5 and 6, the control circuit 23 may be configured to seal the air passage by activating the flow-limiting member 32. In this case, when the user inhales through the mouthpiece end 26 of device 2, the user cannot inhale air upstream of the flow-limiting member 32. Thus, safety can be enhanced because the user cannot inhale when burnout mode is activated.

[0155] Figure 7 is a schematic cross-sectional view of an aerosol supply system 200 according to another embodiment of the present disclosure. The aerosol supply system 200 comprises components that are substantially the same as those described with respect to Figure 1, except that the reference numerals are increased by 200. For efficiency, components with similar reference numerals should be understood to be substantially the same as their correspondings in Figures 1 and 2A to 2C unless otherwise specified. The aerosol supply device 202 comprises an outer housing 221, a power source 222, a control circuit 223, an induction work coil 224a, a receiving section 225, an inhalation or mouthpiece end 226, an air inlet 227, an air outlet 228, a touch-sensitive panel 229, an inhalation sensor 230, and an end-of-use indicator 231.

[0156] The aerosol supply article 204 comprises a carrier component 242, an aerosol generating material 244, and a susceptor element 244b, as shown in more detail in Figures 8A to 8C. Figure 8A is a top view of the article 4, Figure 8B is an end view of the article 4 along its longitudinal (length) axis, and Figure 8C is a side view of the article 4 along its width axis.

[0157] Figures 7 and 8 show an aerosol supply system 200 that generates an aerosol for inhalation by heating an aerosol-generating material 244 using induction.

[0158] In the embodiment described, the aerosol generation component 224 is formed from two parts: an induction work coil 224a located within the aerosol supply device 202 and a susceptor 224b located within the aerosol supply article 204. Thus, in this embodiment, each aerosol generation component 224 includes an element positioned between the aerosol supply article 204 and the aerosol supply device 202.

[0159] Induction heating is the process by which a conductive object called a susceptor is heated by the penetration of a fluctuating magnetic field into the object. The process is described by Faraday's law of induction and Ohm's law. An induction heater may comprise an electromagnet and a device through which a fluctuating current, such as an alternating current, passes. When the electromagnet and the object to be heated are suitably positioned relative to each other so that the resulting fluctuating magnetic field generated by the electromagnet penetrates the object, one or more eddy currents are generated within the object. Objects have resistance to the flow of current. Therefore, once such eddy currents are generated within an object, the object is heated by the flow of current against its electrical resistance. This process is called Joule heating, Ohm heating, or resistance heating.

[0160] A susceptor is a material that can be heated by the penetration of a fluctuating magnetic field, such as an alternating magnetic field. The heating material may be a conductive material so that induction heating occurs when a fluctuating magnetic field penetrates it. The heating material may be a magnetic material so that magnetic hysteresis heating occurs when a fluctuating magnetic field penetrates it. The heating material may be both conductive and magnetic so that it can be heated by both heating mechanisms.

[0161] Magnetic hysteresis heating is a process in which an object made from a magnetic material is heated by the penetration of a fluctuating magnetic field into the object. A magnetic material can be thought of as containing many atomic-scale magnets or magnetic dipoles. When a magnetic field penetrates such a material, the magnetic dipoles align with the field. Therefore, when a fluctuating magnetic field, such as an alternating magnetic field generated by an electromagnet, penetrates a magnetic material, the orientation of the magnetic dipoles changes along with the applied fluctuating magnetic field. This reorientation of magnetic dipoles generates heat in the magnetic material.

[0162] When an object is both conductive and magnetic, the penetration of a fluctuating magnetic field into the object can induce both Joule heating and magnetic hysteresis heating. Furthermore, the use of magnetic materials can strengthen the magnetic field, thereby increasing the Joule heating.

[0163] In the embodiments described, the susceptor 224b is formed from aluminum foil, but it should be understood that in other embodiments, other metals and / or conductive materials may be used. As seen in Figure 8, the carrier component 242 comprises a plurality of susceptors 224b whose size and position correspond to individual parts of the aerosol-generating material 244 arranged on the surface of the carrier component 242. That is, the susceptors 224b have similar widths and lengths to the individual parts of the aerosol-generating material 244.

[0164] The susceptor is shown embedded in the carrier component 242. However, in other embodiments, the susceptor 224b may be located on the surface of the carrier component 242.

[0165] The aerosol supply device 202 comprises a plurality of induction work coils 224a, schematically shown in Figure 7. The work coils 224a are shown adjacent to the receiving portion 225 and are generally flat coils positioned such that the axis of rotation around which a given coil is wound extends toward the receiving portion 225 and is roughly perpendicular to the plane of the carrier component 242 of the article 204. Although the exact winding is not shown in Figure 7, it should be understood that any suitable induction coil can be used.

[0166] The control circuit 223 includes a mechanism for generating an alternating current that is passed through one or more of the induction coils 224a. The alternating current generates an alternating magnetic field as described above, which then heats the corresponding susceptor(s) 224b. The heat generated by the susceptor(s) 224b is transferred accordingly to the portion of the aerosol-generating material 244.

[0167] As described above in relation to Figures 1 and 2A to 2C, the control circuit 223 is configured to supply current to the work coil 224a in response to receiving signaling from the touch-sensitive panel 229 and / or the inhalation sensor 230. Any of the techniques described above for selecting which heating element 24 is heated by the control circuit 23 may similarly be applied to selecting which work coil 224a is excited (and thus which part of the aerosol-generating material 244 is subsequently heated) in response to receiving signaling from the touch-sensitive panel 229 and / or the inhalation sensor 230 in order to generate an aerosol for user inhalation.

[0168] While the above describes an induction heating aerosol supply system in which the work coil 224a and susceptor 224b are positioned between the article 204 and the device 202, an induction heating aerosol supply system may be provided in which the work coil 224a and susceptor 224b are positioned only within the device 202. For example, referring to Figure 7, the susceptor 224b may be positioned above the induction work coil 224a, and (in a manner similar to the aerosol supply system 1 shown in Figure 1) the susceptor 224b may be positioned in contact with the lower surface of the carrier component 242.

[0169] Therefore, Figure 7 illustrates a more specific embodiment in which induction heating is used in the aerosol supply device 202 to generate an aerosol for user inhalation, to which the techniques described herein can be applied.

[0170] In the embodiments of the aerosol supply systems 1 and 201 described above, there are multiple (individual) parts of aerosol-generating material 44 and 244 that can be selectively aerosolized using aerosol-generating components 24 and 224. Such aerosol supply systems 1 and 201 offer advantages over other systems intended to heat larger quantities of material. In particular, for a given inhalation, the aerosolization of only selected parts (or parts) of the aerosol-generating material results in a more energy-efficient system overall.

[0171] In a heating system, several parameters affect the overall effectiveness of the system in delivering a sufficient amount of aerosol to the user with each puff. On the one hand, the thickness of the aerosol-generating material is important because it affects how quickly the aerosol-generating material reaches its operating temperature (and subsequently generates aerosol). This can be important for several reasons, but it can lead to more efficient use of energy from power sources 22, 222 because the heating element does not need to be active for as long as heating thicker parts of the material. On the other hand, the total mass of the aerosol-generating material being heated affects the total amount of aerosol that can be generated and subsequently delivered to the user. Furthermore, the temperature at which the aerosol-generating material is heated can affect both how quickly the aerosol-generating material reaches its operating temperature and the amount of aerosol that can be generated. The target temperature (sometimes called the operating temperature) is the temperature at which the control circuit 23 causes the heating element to reach in order to generate aerosol. Therefore, the operating temperature can be one or more constant values.

[0172] Amorphous solids (such as those mentioned above) are particularly well-suited to the above applications, partly because they can be formed from selected raw materials / components and thus designed so that a relatively high proportion of their mass is a useful (or deliverable) component (e.g., nicotine and glycerol). As such, amorphous solids can produce a relatively high proportion of aerosol from a given mass compared to some other aerosol-generating materials (e.g., tobacco), meaning that a relatively small portion of amorphous solid can produce an equivalent amount of aerosol. Furthermore, amorphous solids are not easily flowable (even if they do flow), which means that leakage-based problems are significantly reduced, for example, when using liquid aerosol-generating materials.

[0173] While the above describes a system in which a certain arrangement of aerosol-generating components 24 (e.g., heater elements) is provided to excite individual parts of the aerosol-generating material, in other embodiments, the article 4 and / or the aerosol-generating components 24 may be configured to move relative to one another. That is, there may be fewer aerosol-generating components 24 than the individual parts of the aerosol-generating material 44 provided on the carrier component 42 of the article 4, and therefore relative movement between the article 4 and the aerosol-generating components 24 is required so that each individual part of the aerosol-generating material 44 can be excited individually. For example, a movable heating element 24 may be provided in the receiving portion 25 so that the heating element 24 can move relative to the receiving portion 25. Thus, the movable heating element 24 can be translated (e.g., in the widthwise and lengthwise directions of the carrier component 42) so that the heating element 24 can be aligned with each individual part of the aerosol-generating material 44. This method can reduce the number of aerosol-generating components 42 required while still providing a similar user experience.

[0174] While embodiments have been described above in which individual spatially distinct portions of the aerosol-generating material 44 are arranged on the carrier component 42, it should be understood that in other embodiments, the aerosol-generating material may not be provided in individual spatially distinct portions, but rather as a continuous sheet of aerosol-generating material 44. In these embodiments, certain regions of the sheet of aerosol-generating material 44 may be selectively heated to generate aerosols in substantially the same manner as described above. However, regardless of whether the portions are spatially distinct, this disclosure describes heating (or, in other cases, aerosolizing) multiple portions of the aerosol-generating material 44. In particular, a region (corresponding to one portion of the aerosol-generating material) may be defined on a continuous sheet of the aerosol-generating material (or more specifically, the surface of the heating element 24 intended to be heated) based on the dimensions of the heating element 24. In this regard, a corresponding area of ​​the heating element 24, when protruding from the aerosol-generating material sheet, may be considered to define one region or one portion of the aerosol-generating material. In accordance with this disclosure, each region or portion of the aerosol-generating material may have a mass not exceeding 20 mg, but the entire continuous sheet may have a mass exceeding 20 mg.

[0175] While the above describes a "burnout mode" in which multiple parts of the aerosol-generating material are heated to reduce the concentration of a component to a relatively low level, it should be understood that in some embodiments, different forms of aerosolization, such as a vibrating mesh, may be used. Therefore, the principle described above can be applied to a method for reducing the amount of a first component in an aerosol-generating material using an aerosol-generating device configured to deliver an inhalable aerosol to a user, the method comprising the steps of: performing a first aerosolization process on one part of the aerosol-generating material containing the first component to generate an aerosol for user inhalation; and performing a second aerosolization process on at least that part of the aerosol-generating material until the first component is substantially eliminated from at least that part of the aerosol-generating material. The aerosolization process should be understood as any suitable process that can generate an aerosol from the aerosol-generating material.

[0176] While the above describes embodiments in which device 2 can be configured or operated using a touch-sensitive panel 29 attached to device 2, device 2 may instead be configured or controlled remotely. For example, the control circuit 23 may be provided with a corresponding communication circuit (e.g., Bluetooth) that enables the control circuit 23 to communicate with a remote device such as a smartphone. Thus, the touch-sensitive panel 29 may actually be implemented using an app running on a smartphone. In that case, the smartphone can send user input or configuration to the control circuit 23, and the control circuit 23 can be configured to operate based on the received input or configuration.

[0177] While embodiments have been described above in which an aerosol subsequently inhaled by the user is generated by exciting (or heating) an aerosol-generating material 44, it should be understood that in some embodiments, the generated aerosol may be passed through or over an aerosol-modifying component to modify one or more properties of the aerosol before it is inhaled by the user. For example, the aerosol supply device 2, 202 may include an air-permeable insert (not shown) inserted into an air channel downstream of the aerosol-generating material 44 (for example, the insert may be located within the outlet 28). The insert may include a material that alters one or more of the aerosol's properties, such as flavor, temperature, particle size, or nicotine concentration, as the aerosol passes through the insert before entering the user's mouth. For example, the insert may include tobacco or processed tobacco. Such a system may be called a hybrid system. The insert may include any suitable aerosol-modifying material that can contain the aerosol-generating material described above.

[0178] As described above, the heating element 24 is configured to supply heat to a portion of the aerosol-generating material at an operating temperature at which an aerosol is generated from that portion of the aerosol-generating material. However, in some embodiments, the heating element 24 is configured to preheat multiple portions of the aerosol-generating material to a preheating temperature (lower than the operating temperature). When a portion is heated to the preheating temperature, less aerosol is generated at the preheating temperature, or no aerosol is generated at all. However, less energy is required to raise the temperature of the aerosol-generating material from the preheating temperature to the operating temperature. This can be particularly suitable for relatively thick portions of the aerosol-generating material, for example, having a thickness greater than 400 μm, which require a relatively large amount of energy to be supplied to reach the operating temperature. However, in such embodiments, energy consumption (e.g., from the power source 22) can be relatively high.

[0179] While embodiments have been described above in which the aerosol supply device 2 includes an end-of-use indicator 31, it should be understood that the end-of-use indicator 31 may be provided by another device remote to the aerosol supply device 2. For example, in some embodiments, the control circuit 23 of the aerosol supply device 2 may include a communication mechanism that enables data transfer between the aerosol supply device 2 and a remote device, such as a smartphone or smartwatch. In these embodiments, when the control circuit 23 determines that article 4 has reached the end of its use, the control circuit 23 is configured to send a signal to the remote device, which is configured to generate an alert signal (for example, using the display of a smartphone). Other remote devices and other mechanisms that generate an alert signal may be used as described above.

[0180] In some embodiments, article 4 may have an identifier such as a readable barcode or RFID tag, and the aerosol supply device 2 may have a corresponding reader. When article is inserted into the receiving portion 25 of device 2, device 2 may be configured to read the identifier on article 4. The control circuit 23 may be configured to recognize the presence of article 4 (and thus permit heating and / or reset the end-of-life indicator), or to identify the type and / or location of multiple parts of the aerosol-generating material relative to article 4. This may affect which parts the control circuit 23 aerosolizes and / or how multiple parts are aerosolized by adjusting, for example, the aerosol-generating temperature and / or heating duration. Any preferred technique for recognizing article 4 may be used.

[0181] Thus, methods have been described for reducing the amount of a first component in an aerosol-generating material using an aerosol-generating device configured to deliver an inhalable aerosol to a user. The method includes the steps of: performing a first aerosolization process on one portion of the aerosol-generating material containing the first component to generate an aerosol for user inhalation; and performing a second aerosolization process on at least that portion of the aerosol-generating material until the first component is substantially eliminated from at least that portion of the aerosol-generating material. Aerosol-supplying devices and aerosol-supplying systems are also provided.

[0182] Furthermore, if multiple portions of the aerosol-generating material are provided on the carrier component 42, these portions may, in some embodiments, include weakened regions, such as through-holes or relatively thin areas of aerosol-generating material, in a direction substantially perpendicular to the plane of the carrier component 42. This may be the case when the hottest portion of the aerosol-generating material is the area in direct contact with the carrier component (in other words, in a scenario where heat is primarily applied to the surface of the aerosol-generating material that is in contact with the carrier component 42). Thus, through-holes can provide a channel through which the generated aerosols escape and are released into the surrounding / device 2 airflow, rather than creating the possibility of aerosol accumulation between the carrier component 42 and the aerosol-generating material 44. Such aerosol accumulation may reduce the heating efficiency of the system because, in some embodiments, the accumulation of aerosols may cause a bulge of the aerosol-generating material from the carrier component 42, and therefore reduce the efficiency of heat transfer to the aerosol-generating material. Each portion of the aerosol-generating material may be provided with one or more weakened regions as needed.

[0183] While the embodiments described above have focused in some respects on a few specific examples of aerosol supply systems, it will be understood that the same principles can be applied to aerosol supply systems using other techniques. In other words, the specific ways in which various embodiments of aerosol supply systems function are not directly related to the underlying principles of the examples described herein.

[0184] To address a variety of issues and to advance the field in question, this disclosure illustrates various embodiments in which the claimed invention(s) 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. They are presented solely for the purpose of aiding understanding and teaching the claimed invention(s). It should be understood that the advantages, embodiments, examples, functions, features, structures, and / or other aspects of this disclosure should not be considered as limitations to this disclosure or to equivalents of the claims as defined by the claims, and that other embodiments may be used and modified without departing from the scope of the claims. The various embodiments may preferably comprise, consist of, or essentially 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 explicitly described in the claims. This disclosure may include other inventions that are not currently claimed but may be claimed in the future.

Claims

1. A method for reducing the amount of a first component in an aerosol generating material using an aerosol generating device configured to deliver an inhalable aerosol to a user, wherein the method is A step of performing a first aerosolization process on one portion of the aerosol generating material containing the first component to generate an aerosol for user inhalation, The steps include performing a second aerosolization process on at least the portion of the aerosol-generating material until the first component is substantially removed from at least that portion of the aerosol-generating material, Includes, After performing the second aerosolization process on at least the portion of the aerosol-generating material until the first component is substantially removed from at least that portion of the aerosol-generating material, the concentration of the first component in at least one portion of the aerosol-generating material is less than 0.05 mg / ml when dissolved in 100 ml of solvent. The first component is nicotine, method.

2. The method according to claim 1, wherein, after performing the second aerosolization process on at least the portion of the aerosol-generating material until the first component is substantially removed from at least the portion of the aerosol-generating material, the concentration of nicotine in at least one portion of the aerosol-generating material is less than 0.02 mg / ml when dissolved in 100 ml of solvent.

3. The method according to claim 1 or 2, wherein the aerosol generating material is an amorphous solid.

4. The method according to claim 3, wherein the amorphous solid comprises 0.5 to 60 wt% of a gelling agent, 5 to 80 wt% of an aerosol-generating agent, and 5 to 60 wt% of at least one active substance such as nicotine, the weights of which are calculated on a dry weight basis.

5. The method according to any one of claims 1 to 4, wherein the step of performing a first aerosolization process on one portion of the aerosol-generating material containing the first component to generate an aerosol for user inhalation comprises aerosolizing the portion of the aerosol-generating material for a first period of time, and the step of performing a second aerosolization process on at least the portion of the aerosol-generating material until the first component is substantially removed from at least the portion of the aerosol-generating material comprises aerosolizing at least the portion of the aerosol-generating material for a second period of time, wherein the second period of time is longer than the first period of time.

6. The method according to claim 5, wherein the second time period exceeds one minute.

7. The method according to claim 5 or 6, wherein the first time period does not exceed 10 seconds.

8. The method according to any one of claims 1 to 7, wherein the first aerosolization process and the second aerosolization process are carried out by heating.

9. The method according to claim 8, wherein the temperature at which the aerosol-generating material is heated does not exceed 350°C.

10. The method according to claim 8 or 9, wherein the step of heating the portion of the aerosol-generating material containing the first component to generate an aerosol for user inhalation includes heating the portion of the aerosol-generating material to a first maximum temperature, and the step of heating at least the portion of the aerosol-generating material until the first component is substantially removed from at least the portion of the aerosol-generating material includes heating at least the portion of the aerosol-generating material to a second maximum temperature, the second maximum temperature being higher than the first maximum temperature.

11. The method according to claim 8 or 9, wherein the step of heating the portion of the aerosol-generating material containing the first component to generate an aerosol for user inhalation includes heating the portion of the aerosol-generating material to a first maximum temperature, and the step of heating at least the portion of the aerosol-generating material until the first component is substantially removed from at least the portion of the aerosol-generating material includes heating at least the portion of the aerosol-generating material to a second maximum temperature, the second maximum temperature being substantially the same as the first maximum temperature.

12. The method according to any one of claims 8 to 11, wherein a control circuit is configured to monitor activation parameters for each of a plurality of parts of an aerosol-generating material, the activation parameters being one or a combination of the following, based on the temperature at which each part is heated: the number of individual times the part is heated, the cumulative heating time the part is heated, and the weighted cumulative heating time the part is heated.

13. The method according to claim 12, comprising the step of calculating a heating period for heating each of the aerosol-generating material until the first component is substantially removed from the aerosol-generating material, the calculation taking into account the monitored activation parameter.

14. The method according to any one of claims 1 to 13, further comprising the step of giving a warning when performing the second aerosolization process on at least the portion of the aerosol-generating material until the first component is substantially removed from at least the portion of the aerosol-generating material, the warning indicating to the user not to inhale with the device.

15. The method according to any one of claims 1 to 14, further comprising the step of blocking an air outlet in the device when performing the second aerosolization process on at least the portion of the aerosol-generating material until the first component is substantially removed from at least the portion of the aerosol-generating material.

16. An aerosol generating device for use with an aerosol product containing an aerosol generating material, wherein the aerosol generating material contains a first component, and the device is An aerosol generation component that performs an aerosolization process on one part of the aerosol generation material, A control circuit configured to activate the aerosol generation component, wherein the control circuit is configured The portion of the aerosol-generating material containing the first component is configured to undergo a first aerosolization process to generate an aerosol for user inhalation, and A control circuit is configured to perform a second aerosolization process on the portion of the aerosol generating material until the first component is substantially removed from that portion, and after the second aerosolization process has been performed on at least the portion of the aerosol generating material until the first component is substantially removed from at least the portion of the aerosol generating material, the concentration of the first component in at least one portion of the aerosol generating material is less than 0.05 mg / ml when dissolved in 100 ml of solvent. Equipped with, An aerosol generating device in which the first component is nicotine.

17. The aerosol generating device according to claim 16, wherein the control circuit is configured to perform a second aerosolization process on at least one portion of the aerosol generating material until the first component is substantially eliminated from at least that portion of the aerosol generating material, such that the concentration of the first component in at least one portion of the aerosol generating material is less than 0.02 mg / ml when dissolved in 100 ml of solvent.

18. The aerosol generating device according to claim 16 or 17, further comprising a warning unit configured to output a warning when at least the portion of the aerosol generating material is aerosolized until the portion of the first component is substantially removed, the warning indicating to the user not to inhale the device.

19. The aerosol generating device according to any one of claims 16 to 18, further comprising an airflow blocking member configured to block an air outlet in the device when at least the portion of the aerosol generating material is aerosolized until the portion of the first component is substantially depleted.

20. An aerosol supply system comprising an aerosol supply device according to any one of claims 16 to 19, and an aerosol product comprising an aerosol generating material having the first component.

21. The aerosol supply system according to claim 20, wherein the aerosol product comprises a plurality of parts of an aerosol generating material, and at least one part comprises the first component.

22. An aerosol generating device for use with an aerosol product containing an aerosol generating material, wherein the aerosol generating material contains a first component, and the device is The aerosolizing means includes an aerosolizing process for one portion of the aerosol-generating material, A control means configured to activate the aerosolizing means, wherein the control means is The portion of the aerosol-generating material containing the first component is configured to undergo a first aerosolization process to generate an aerosol for user inhalation, and The control means is configured to perform a second aerosolization process on the portion of the aerosol-generating material until the first component is substantially removed from that portion, and after the second aerosolization process has been performed on at least the portion of the aerosol-generating material until the first component is substantially removed from at least the portion of the aerosol-generating material, the concentration of the first component in at least one portion of the aerosol-generating material is less than 0.05 mg / ml when dissolved in 100 ml of solvent. Equipped with, An aerosol generating device in which the first component is nicotine.

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