Electronic Aerosol Delivery System

By using heating elements with temperature-controlled surfaces and amorphous solids, the aerosol delivery system addresses inefficiencies in aerosol generation, enhancing delivery efficiency and reducing device power requirements while minimizing material leakage.

JP7756740B2Active Publication Date: 2025-10-20NICOVENTURES TRADING LTD
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Patent Information

Application Number
JP2024039815
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-11-29
Filing Date
2024-03-14
Publication Date
2025-10-20
Estimated Expiration
2040-11-27

AI Technical Summary

Technical Problem

Existing aerosol delivery systems face inefficiencies in heating and delivering aerosols to users, particularly when using solid or liquid aerosol-generating materials, which can affect the quality and consistency of the aerosol production.

Method used

The system employs heating elements with surfaces configured to increase in temperature when supplied with energy, positioned adjacent to the aerosol-generating material, and can include multiple heating elements to optimize aerosol generation, using amorphous solids as the aerosolizable material to enhance efficiency and reduce power requirements.

Benefits of technology

This configuration improves the efficiency and consistency of aerosol delivery, allowing for smaller, less power-intensive devices to produce comparable aerosol amounts, with amorphous solids reducing leakage risks and enabling cost-effective manufacturing.

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Abstract

To provide an aerosol provision device for generating aerosol from an aerosol-generating material.SOLUTION: An aerosol provision device 2 comprises at least one heating element 24 arranged to be adjacent to an aerosol generating material when the aerosol-generating material is present in the aerosol provision device. The heating element has a surface arranged to increase the temperature when supplied with energy, and the surface defines an area of 145 mm2 or less.SELECTED DRAWING: Figure 1
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Description

Field

[0001] The present disclosure relates to a non-combustible aerosol delivery system.

[0002] Electronic aerosol delivery systems, such as electronic cigarettes (e-cigarettes), generally include a reservoir of liquid feedstock, typically containing a nicotine-containing formulation, from which an aerosol is generated, for example, by thermal vaporization. Accordingly, an aerosol source for an aerosol delivery system may include a heater having a heating element positioned to receive the liquid feedstock from the reservoir, for example, by wicking / capillary action. While a user draws on the device, power is supplied to the heating element to vaporize the liquid feedstock proximate the heating element and generate an aerosol for inhalation by the user. Such devices typically include one or more air inlet holes positioned away from the mouthpiece end of the system. When a user draws on a mouthpiece connected to the mouthpiece end of the system, air is drawn through the inlet holes and passes through the aerosol source. A flow path connects the aerosol source and the mouthpiece opening, such that air passing through the aerosol source continues to be drawn along the flow path into the mouthpiece opening, carrying a portion of the aerosol from the aerosol source. The aerosol-carrying air exits the aerosol delivery system through the mouthpiece opening for inhalation by the user.

[0003] Other aerosol delivery devices generate aerosols from solid materials, such as tobacco or tobacco derivatives. Such devices operate in much the same manner as the liquid-based systems described above, in that the solid tobacco material is heated to vaporization temperatures to generate an aerosol, which is then inhaled by the user.

[0004] When a material is heated to generate an aerosol, several factors can determine the efficiency of heating and delivery of the aerosol to the user.

[0005] Various approaches that attempt to help address some of these challenges are described.

[0006] According to a first aspect of certain embodiments, there is provided an aerosol delivery device for generating an aerosol from an aerosol-generating material, the device comprising at least one heating element positioned adjacent to the aerosol-generating material when the aerosol-generating material is present in the aerosol delivery device, the heating element having a surface configured to increase in temperature when supplied with energy, the surface being 130 mm 2 or 145mm 2 The following regions are defined:

[0007] According to a second aspect of certain embodiments, there is provided an aerosol delivery system for generating an aerosol from an aerosol-generating material, the system comprising: the aerosol-generating material; and at least one heating element disposed adjacent to the aerosol-generating material, the heating element having a surface configured to increase in temperature when supplied with energy, the surface being 130 mm. 2 or 145mm 2 The following regions are defined:

[0008] According to a third aspect of certain embodiments, there is provided a method of generating an aerosol from an aerosol-generating material, the method comprising the steps of: placing the aerosol-generating material proximate a heating element; and heating the heating element to generate an aerosol from the aerosol-generating material, the heating element having a surface configured to increase in temperature when supplied with energy, the surface being 130 mm 2 or 145mm 2 The following regions are defined:

[0009] According to a fourth aspect of certain embodiments, there is provided an aerosol delivery device for generating an aerosol from an aerosol-generating material, the device comprising at least one heating means disposed adjacent to the aerosol-generating material when the aerosol-generating material is present in the aerosol delivery device, the heating means having a surface configured to increase in temperature when supplied with energy, the surface being 130 mm 2 or 145mm2 The following regions are defined:

[0010] According to a fifth aspect of certain embodiments, there is provided an aerosol delivery device for generating an aerosol from an aerosol-generating material, the device comprising: at least one first heating element positioned adjacent to the aerosol-generating material when the aerosol-generating material is present in the aerosol delivery device; and at least one second heating element positioned adjacent to the at least one first heating element, the first heating element having a first surface configured to increase in temperature when supplied with energy, the second heating element having a second surface, and at least one of the first surface and the second surface being 130 mm 2 or 145mm 2 The following regions are defined:

[0011] It will be appreciated that the features and aspects of the invention described above in relation to the first and other aspects of the invention are equally applicable to embodiments of the invention according to other aspects of the invention and may be combined therewith as appropriate, not just in the specific combinations set out above.

[0012] Embodiments of the present invention will now be described, by way of example only, with reference to the accompanying drawings, in which: [Brief explanation of the drawings]

[0013] [Figure 1] 1 is a schematic cross-sectional view of an aerosol delivery system including an aerosol delivery device and an aerosol-generating article, the device including multiple heating elements and the article including multiple portions of aerosol-generating material. [Figure 2A] 2A and 2B are views of the aerosol product of FIG. 1 from different angles. [Figure 2B] 2A and 2B are views of the aerosol product of FIG. 1 from different angles. [Figure 2C] 2A and 2B are views of the aerosol product of FIG. 1 from different angles. [Figure 3] 2 is a cross-sectional top view of a heating element of the aerosol delivery device of FIG. 1. [Figure 4] FIG. 1 is a top view of an exemplary touch-sensitive panel for operating various functions of the aerosol delivery system. [Figure 5] FIG. 1 is a schematic cross-sectional example of an aerosol delivery system including an aerosol delivery device and an aerosol generating article, the device including multiple inductive action coils, and the article including multiple portions of aerosol-generating material and corresponding susceptor portions. [Figure 6A] 6A and 6B are views of the aerosol supply of FIG. 5 from different angles. [Figure 6B] 6A and 6B are views of the aerosol supply of FIG. 5 from different angles. [Figure 6C] 6A and 6B are views of the aerosol supply of FIG. 5 from different angles. Detailed Description

[0014] Aspects and features of particular examples and embodiments are discussed / described herein. Some aspects and features in particular examples and embodiments may be conventionally implemented, and for the sake of brevity, they will not be discussed / described in detail. Thus, it will be recognized that aspects and features of the devices and methods discussed herein that are not described in detail can be implemented in accordance with any conventional techniques for implementing such aspects and features.

[0015] The present disclosure relates to "non-combustible" aerosol delivery systems. A "non-combustible" aerosol delivery system is one that does not burn or combust the aerosolizable material constituents (or components thereof) of the aerosol delivery system to facilitate delivery of the aerosol to a user. Furthermore, as is common in the art, the terms "vapor" and "aerosol," as well as related terms such as "vaporize," "volatilize," and "aerosolize," can be used generally interchangeably.

[0016] In some embodiments, the non-combustible aerosol delivery system is an electronic cigarette, also known as a vaping device or electronic nicotine delivery system (END), although 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, and these terms can be used interchangeably with aerosol (vapor) delivery system.

[0017] Typically, a non-combustion aerosol delivery system may comprise a non-combustion aerosol delivery device and articles (sometimes referred to as consumables) for use with the non-combustion aerosol delivery device. However, it is contemplated that an article that itself comprises a means for powering an aerosol generating component can itself form a non-combustion aerosol delivery system.

[0018] The article is intended to be consumed, in part or in whole, by a user during use. The article may include or consist solely of an aerosolizable material, also referred to as an aerosol-generating material. The article may also include one or more other elements, such as a filter or an aerosol-modifying substance (e.g., an ingredient for adding flavor or otherwise altering the properties of the aerosol that passes through or over the aerosol-modifying substance).

[0019] Non-combustible aerosol delivery systems often, but not always, comprise modular assemblies that include both reusable aerosol delivery devices and replaceable articles. In some embodiments, the non-combustible aerosol delivery device may comprise a power source and a controller (or control circuitry). The power source may be, for example, a power source such as a battery or a rechargeable battery. In some embodiments, the non-combustible aerosol delivery device may also comprise an aerosol generating component. However, in other embodiments, an article may partially or completely comprise the aerosol generating component.

[0020] In some embodiments, the aerosol-generating component is a heater capable of interacting with the aerosolizable material to release one or more volatile components from the aerosolizable material to form an aerosol. The heater (or heating element) may comprise one or more electrical resistance heaters, including, for example, one or more nichrome resistance heater(s) and / or one or more ceramic heater(s). The one or more heaters may comprise one or more induction heaters, including a configuration comprising one or more susceptors that, in use, can form a chamber into which an article comprising the aerosolizable material is inserted or otherwise disposed. Alternatively, or in addition, the one or more susceptors may be provided with the aerosolizable material. Other heater configurations may also be used.

[0021] Articles for use with non-combustible aerosol delivery devices generally comprise an aerosolizable material. An aerosolizable material, sometimes referred to herein as an aerosol-generating material, is a material that can generate an aerosol when, for example, heated, irradiated, or in any other way energized. The aerosolizable material may be in the form of, for example, a solid, liquid, or gel, and may or may not contain nicotine and / or flavorings.

[0022] 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). In some embodiments, the amorphous solid may be a dry gel. An amorphous solid is a solid material that can hold some fluid, such as a liquid, within it. In some embodiments, the aerosolizable material may include, for example, from about 50%, 60%, or 70% to about 90%, 95%, or 100% amorphous solid by weight. However, it should be recognized that the principles of the present disclosure can be applied to other aerosolizable materials, such as tobacco, reconstituted tobacco, and liquids, such as e-liquids.

[0023] Optionally, the aerosolizable material or amorphous solid may include any one or more of an active ingredient, a carrier ingredient, a flavoring agent, and one or more other functional ingredients.

[0024] As used herein, an 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, and psychotropic drugs. The active ingredient may be naturally occurring or synthetically derived. 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 material. As described herein, the active ingredient may include one or more components, derivatives, or extracts of cannabis, such as one or more cannabinoids or terpenes.

[0025] In some embodiments, the active ingredient comprises nicotine, hi some embodiments, the active ingredient comprises caffeine, melatonin, or vitamin B12.

[0026] In some embodiments, the aerosol-generating material is 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), cannabichromevarin (CBCV), cannabigerovarin (CBGV), cannabigerol monomethyl ether (CBGM), cannabigerol monomethyl ether (CBGM), cannabigerol monomethyl ether (CBGM), cannabigerol monomethyl ether (CBGM), cannabigerol monomethyl ether (CBGM), cannabichromene (CBC), cannabicyclol (CBL), cannabicyclol (CBV), cannabivarin (CBV), cannabichromene (THCV), cannabicyclol (CBV), cannabivarin (CBV), cannabichromevarin (CBCV), cannabigerovarin (CBGV), cannabigerol monomethyl ether (CBGM ...chromene (CBC), cannabicyclol (CBL), cannabichromene (CBC), cannabicyclol (CBL), cannabivarin (CBV), cannabichromene (CBC), cannabicyclol (CBL), cannabivarin (CBV), cannabichromene (THCV), cannabicyclol (CBL), cannabivarin ( The aerosol-generating material may comprise one or more cannabinoid compounds selected from the group consisting of cannabidiol (CBD) and THC (tetrahydrocannabinol). The aerosol-generating material may comprise cannabidiol (CBD). The aerosol-generating material may comprise nicotine and cannabidiol (CBD).

[0027] As described herein, the active ingredient may comprise or be derived from one or more plant materials, or components, derivatives, or extracts thereof. As used herein, the term "plant material" includes any material derived from a plant, including, but not limited to, extracts, leaves, bark, fiber, stems, roots, seeds, flowers, fruits, pollen, husks, peels, etc. Alternatively, the material may comprise an active compound naturally occurring in the plant material or synthetically obtained. The material may be in the form of a liquid, gas, solid, powder, dust, crushed particles, granules, pellets, fragments, shreds, sheets, etc. Examples of plant materials include tobacco, eucalyptus, star anise, hemp, cacao, cannabis, fennel, lemongrass, peppermint, spearmint, rooibos, chamomile, flax, ginger, ginkgo, hazel, hibiscus, laurel, licorice, matcha, yerba mate, orange peel, papaya, rose, sage, tea (such as green tea or black tea), thyme, cloves, cinnamon, coffee, aniseed, basil, bay leaf, cardamom, coriander, cumin, nutmeg, oregano, paprika, rosemary, saffron, lavender, Lemon peel, mint, juniper, elderflower, vanilla, wintergreen, shiso, turmeric, sandalwood, cilantro, bergamot, orange blossom, myrtle, blackcurrant, valerian, pimento, mace, damiana, marjoram, olive, lemon balm, lemon basil, chives, Calvi, verbena, tarragon, geranium, mulberry, ginseng, theanine, theacrine, maca, ashwagandha, damiana, guarana, chlorophyll, baobab, or any combination thereof.The mint may be selected from the following mint varieties: common mint (Mentha arventis), grapefruit mint (Mentha cv), Egyptian mint (Mentha niliaca), peppermint (Mentha piperita), lime mint (Mentha piperita citrata cv), chocolate mint (Mentha piperita cv), curly mint (Mentha spicata crispa), wild mint (Mentha cardifolia), horse mint (Mentha longifolia), pineapple mint (Mentha suaveolens variegata), pennyroyal mint (Mentha pulegium), English spearmint (Mentha spicata cv), and apple mint (Mentha suaveolens). In some embodiments, the active ingredient comprises or is derived from one or more plant materials, or components, derivatives, or extracts thereof, and the plant material is tobacco.

[0028] In some embodiments, the active ingredient comprises or is derived from one or more botanical materials, or components, derivatives, or extracts thereof, the botanical materials being selected from eucalyptus, star anise, cocoa, and hemp.

[0029] In some embodiments, the active ingredient comprises or is derived from one or more botanical materials, or components, derivatives, or extracts thereof, wherein the botanical materials are selected from rooibos and fennel.

[0030] In some embodiments, the aerosolizable material comprises a fragrance (or flavoring).

[0031] As used herein, the terms "flavoring agent" and "flavoring agent" refer to materials that can be used to create a desired taste, aroma, or other somatic sensation in products for adult consumers, where permitted by local regulations. They include naturally occurring flavoring materials, botanical materials, extracts of botanical materials, synthetically derived materials, or combinations thereof (e.g., tobacco, cannabis, licorice, hydrangea, eugenol, magnolia leaf, chamomile, fenugreek, clove, maple, matcha, menthol, Japanese mint, aniseed (aniseed), cinnamon, turmeric, Indian spices, Asian spices, herbs, wintergreen, cherry, berry, red berry, cranberry, peach, apple, orange, Mango, clementine, lemon, lime, tropical 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, khat, naswar, betel quid etel), shisha, pine, honey essence, rose oil, vanilla, lemon oil, orange oil, orange blossom, cherry blossom, cassia, caraway, cognac, jasmine, ylang-ylang, sage, fennel, wasabi, bell pepper, ginger, coriander, coffee, hemp, mint oil from any species of mint, eucalyptus, star anise, cacao, lemongrass, rooibos, flax, ginkgo, hazel, hibiscus, laurel, yerba mate, orange peel, basil La, tea (such as green tea or black tea), thyme, juniper, elderflower, basil, bay leaf, cumin, oregano, paprika, rosemary, saffron, lemon peel, mint, shiso, curcuma, cilantro, myrtle, black currant, valerian, pimento, mace, damien, marjoram, olive, lemon balm, lemon basil, chives, Calvi, verbena, tarragon, limonene, thymol, camphene), flavor enhancers, bitter taste receptor site blockers, sensory receptor site activators, or stimulants,They may contain sugars and / or sugar substitutes (e.g., sucralose, acesulfame potassium, aspartame, saccharin, cyclamate, lactose, sucrose, glucose, fructose, sorbitol, or mannitol), as well as other additives such as charcoal, chlorophyll, minerals, botanical materials, or breath fresheners. They may be imitation, synthetic, or natural ingredients, or blends thereof. They may be in any suitable form, for example, a liquid (such as an oil), a solid (such as a powder), or a gas.

[0032] In some embodiments, the flavoring agent comprises menthol, spearmint, and / or peppermint. In some embodiments, the flavoring agent comprises cucumber, blueberry, citrus, and / or red berry flavor components. In some embodiments, the flavoring agent comprises eugenol. In some embodiments, the flavoring agent comprises flavor components extracted from tobacco. In some embodiments, the flavoring agent comprises flavor components extracted from cannabis.

[0033] In some embodiments, the flavoring agent may include a sensory agent intended to achieve somatic sensations typically chemically induced and perceived by stimulating the fifth cranial nerve (trigeminal nerve) in addition to, or instead of, the olfactory or gustatory nerves, and these may include agents that provide a heating, cooling, tingling, or numbing effect. Suitable heating agents may be, but are not limited to, vanillyl ethyl ether, and suitable cooling agents may be, but are not limited to, eucalyptol, WS-3.

[0034] The carrier component may include one or more components capable of forming an aerosol (e.g., aerosol-forming agents). In some embodiments, the carrier component may include one or more of glycerin, glycerol, propylene glycol, diethylene glycol, triethylene glycol, tetraethylene glycol, 1,3-butylene glycol, erythritol, mesoerythritol, ethyl vanillate, ethyl laurate, diethyl suberate, triethyl citrate, triacetin, diacetin mixtures, benzyl benzoate, benzyl phenylacetate, tributyrin, lauryl acetate, lauric acid, myristic acid, and propylene carbonate. In some embodiments, the aerosol-forming agent comprises 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, dicarboxylic, or polycarboxylic acids (such as dimethyl dodecanedioate and dimethyl tetradecanedioate).

[0035] The one or more other functional ingredients may include one or more of a pH adjuster, a colorant, a preservative, a binder, a filler, a stabilizer, and / or an antioxidant.

[0036] The aerosolizable material may be present on or in a carrier support (or carrier component) to form a substrate, which may be or include, for example, paper, card, corrugated board, cardboard, recycled aerosolizable material, plastic material, ceramic material, composite material, glass, metal, or alloy.

[0037] In some embodiments, an article for use with a non-combustible aerosol delivery device may comprise an aerosolizable material or a region for receiving an aerosolizable material. In some embodiments, an article for use with a non-combustible aerosol delivery device may comprise a mouthpiece, or alternatively, the non-combustible aerosol delivery device may comprise a mouthpiece in communication with the article. The region for receiving an aerosolizable material may be a storage region for storing the aerosolizable material. For example, the storage region may be a reservoir.

[0038] 1 is a schematic cross-sectional view of an aerosol delivery system 1 according to a particular embodiment of the present disclosure. The aerosol delivery system 1 comprises two main components: an aerosol delivery device 2 and an aerosol generator 4.

[0039] The aerosol delivery device 2 comprises an outer housing 21, a power source 22, a control circuit 23, a plurality of aerosol generating components 24, a receptacle 25, a suction or mouth end 26, an air inlet 27, an air outlet 28, a touch-sensitive panel 29, a suction sensor 30, and an indicator, e.g., an end-of-use indicator 31.

[0040] The outer housing 21 may be formed from any suitable material, such as a plastic material. The outer housing 21 is configured so that the power source 22, control circuitry 23, aerosol generating component 24, receptacle 25, and suction sensor 30 are disposed within 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. A touch-sensitive panel 29 and an end-of-use indicator are disposed on the exterior of the outer housing 21.

[0041] The outer housing 21 may further include a suction or mouth end 26. The outer housing 21 and mouth end 26 may be formed as a single component (i.e., the mouth end 26 may form part of the outer housing 21). The suction or mouth end 26 is defined as the area of ​​the outer housing 21 that includes the air outlet 28 and may be shaped to allow a user to comfortably place their lips around the mouth end 26 to engage the air outlet 28. In FIG. 1 , the thickness of the outer housing 21 tapers toward the air outlet 28 to provide a relatively thin portion of the device 2 that can be more easily accommodated by the user's lips. However, in other embodiments, the mouth end 26 may be a removable component that is separate from but can be coupled to the outer housing 21, and that can be removed for cleaning and / or replacement with another mouth end 26. The mouth end 26 may be formed, for example, as part of the aerosol supply 4.

[0042] Power source 22 is configured to provide operating power to aerosol delivery device 2. Power source 22 may be any suitable power source, such as a battery. For example, power source 22 may comprise a rechargeable battery, such as a lithium-ion battery. Power source 22 may be removable or may form an integral part of aerosol delivery device 2. In some embodiments, power source 22 may be recharged by connecting device 2 to an external power source (such as a mains power supply) via an associated connection port, such as a USB port (not shown), or via a suitable wireless receiver (not shown).

[0043] Control circuitry 23 is suitably configured / programmed to control the operation of the aerosol delivery device 2 to provide specific operational functions of the aerosol delivery device 2. Control circuitry 23 may be considered to logically comprise various subunits / circuit elements associated with various aspects of the operation of the aerosol delivery device. For example, control circuitry 23 may comprise a logical subunit for controlling the recharging of power source 22. Additionally, control circuitry 23 may comprise a communications logical subunit, for example, to facilitate data transfer to or from device 2. However, the primary function of control circuitry 23 is to control the aerosolization of the aerosol-generating material, as described in more detail below. It will be appreciated that the functionality of control circuitry 23 can be provided in a variety of different ways, for example, using one or more appropriately programmed programmable computer(s) and / or one or more appropriately configured application-specific integrated circuit(s) / circuit(s) / chip(s) / chipset(s) configured to provide the desired functionality. Control circuitry 23 may be connected to power source 22, receive power from power source 22, and distribute or control the power supply to other components of the aerosol delivery device 2.

[0044] In the illustrated embodiment, the aerosol delivery device 2 further comprises a receptacle 25 arranged to receive the aerosol generating product 4 .

[0045] The aerosol-generating article 4 comprises a carrier component 42 and an aerosol-forming material 44. The aerosol-generating article 4 is shown in more detail in Figures 2A-2C. Figure 2A is a top view of the article 4, Figure 2B is an end view along the longitudinal (length) axis of the article 4, and Figure 2C is a side view along the width axis of the article 4.

[0046] Article 4 includes a carrier component 42, which in this embodiment is formed from card. Carrier component 42 forms the bulk of article 4 and serves as a base on which aerosol-forming material 44 is disposed.

[0047] The carrier component 42 has a length l, a width w, and a thickness t as shown in FIGS. 2A-2C. c 4. As a specific example, the carrier component 42 may have a length of 30 to 80 mm, a width of 7 to 25 mm, and a thickness of 0.2 to 1 mm. However, it should be recognized that the above are exemplary dimensions of the carrier component 42, and that in other embodiments, the carrier component 42 may have different dimensions, as desired. In some embodiments, the carrier component 42 may include one or more protrusions extending along the length and / or width of the carrier component 42 to help facilitate handling of the article 4 by a user.

[0048] In the example shown in FIGS. 1 and 2 , the article 4 comprises a plurality of individual portions of aerosol-generating material 44 disposed on the surface of the carrier component 42. More specifically, the article 4 comprises six individual portions of aerosol-generating material 44, labeled 44a through 44f, arranged in a 2×3 array. However, it should be appreciated that in other embodiments, a greater or lesser number of individual portions may be provided and / or the portions may be arranged in a different array (e.g., a 1×6 array). In the illustrated example, the aerosol-generating material 44 is disposed at discrete, separate locations on a single surface of the component carrier 42. While the individual portions of aerosol-generating material 44 are shown as having circular footprints, it should be appreciated that the individual portions of aerosol-generating material 44 may have any other footprint, such as a square, triangular, hexagonal, or rectangular, as desired. The individual portions of aerosol-generating material 44 have a diameter d and a thickness t, as shown in FIGS. 2A-2C . a The thickness t a may take any suitable value, for example, the thickness t a In some embodiments, the thickness t a is about 50 μm to about 200 μm, or about 50 μm to about 100 μm, or about 60 μm to about 90 μm, and is suitably about 77 μm. aThe thickness may be greater than 200 μm, for example, about 50 μm to about 400 μm, or up to about 1 mm, or up to about 1.5 mm.

[0049] The individual portions of aerosol-generating material 44 are separated from one another so that each individual portion can be individually / selectively energized (e.g., heated) to generate an aerosol. In some embodiments, these portions of aerosol-generating material 44 may have a mass of 20 mg or less, such that the amount of material aerosolized at any one time by a given aerosol-generating article 24 is relatively small. For example, the mass of a single portion may be 20 mg or less, or 10 mg or less, or 5 mg or less. Of course, it should be recognized that the total mass of article 4 may be greater than 20 mg.

[0050] In the illustrated embodiment, the aerosol-forming material 44 is an amorphous solid. Generally, the aerosol-forming material or amorphous solid may include a gelling agent (sometimes referred to as a binder) and an aerosol-generating agent (which may include, for example, glycerol). The gelling agent may include 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 hydroxyethyl cellulose, hydroxypropyl cellulose, hydroxypropylmethyl cellulose (HPMC), carboxymethyl cellulose, guar gum, or acacia gum. In some embodiments, the gelling agent comprises (or is) one or more non-cellulosic 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 non-cellulosic gelling agent is alginate or agar.

[0051] The gelling agent may further comprise a hardening agent (e.g., a calcium source). In certain embodiments, the hardening 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 hardening agent comprises or consists of calcium formate and / or calcium lactate. In certain examples, the hardening agent comprises or consists of calcium formate. The inventors have observed that the use of calcium formate as a hardening agent typically results in amorphous solids with higher tensile strength and greater resistance to elongation. The aerosol-forming material or amorphous solid may include one or more of an active agent (which may include tobacco extract), a flavoring agent, an acid, and a filler. Other ingredients may also be present as desired. In certain embodiments, the aerosol-forming material or amorphous solid includes a gelling agent, including a cellulosic and / or non-cellulosic gelling agent, an active agent, and an acid. 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 include at least one carboxyl functional group. In some such embodiments, the acid may be at least one of an α-hydroxy acid, a carboxylic acid, a dicarboxylic acid, a tricarboxylic acid, and a keto acid. In some such embodiments, the acid may be an α-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. Preferably, the acid is lactic acid. 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-forming material includes nicotine. In such embodiments, the presence of an acid can stabilize dissolved species in the slurry from which the aerosol-forming material is formed. The presence of an acid can reduce or substantially prevent evaporation of nicotine during drying of the slurry, thereby reducing nicotine loss during manufacturing.

[0052] The amorphous solid may include a colorant. The addition of a colorant can change the appearance of the amorphous solid. The presence of a colorant in the amorphous solid can enhance the appearance of the amorphous solid and the aerosol-forming material. By adding a colorant to the amorphous solid, the amorphous solid can be matched to the color of other components of the aerosol-forming material or other components of the article containing the amorphous solid.

[0053] Various coloring agents may 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 contemplated. Natural or synthetic coloring agents, such as natural or synthetic dyes, food coloring agents, and pharmaceutical coloring agents, may be used. In certain embodiments, the coloring agent is caramel, which may impart a brown appearance to the amorphous solid. In such embodiments, the color of the amorphous solid may resemble the color of other components (e.g., tobacco material) in the aerosol-forming material that includes the amorphous solid. In some embodiments, the addition of a coloring agent to the amorphous solid makes it visually indistinguishable from other components in the aerosol-forming material.

[0054] The colorant may be incorporated into the amorphous solid during its formation (e.g., when forming a slurry containing the materials that form the amorphous solid) or may be applied to the amorphous solid after its formation (e.g., by spraying it onto the amorphous solid).

[0055] Amorphous solid aerosolizable materials offer several advantages over other types of aerosolizable materials commonly found in some electronic aerosol delivery devices. For example, compared to electronic aerosol delivery devices that aerosolize liquid aerosolizable materials, the likelihood of the amorphous solid leaking or otherwise flowing from where it is contained is greatly reduced. This means that the aerosol delivery device or article can be manufactured more cheaply, as these components do not necessarily need to use the same liquid-tight seals, etc.

[0056] Compared to electronic aerosol delivery devices that aerosolize solid aerosolizable materials, such as tobacco, relatively smaller masses of amorphous solid material can be aerosolized to generate comparable amounts of aerosol (or provide comparable amounts of components, such as nicotine, in the aerosol). This is due in part to the fact that the amorphous solid can be tailored to be free of undesirable components that may be found in other solid aerosolizable materials (e.g., the cellulosic materials in tobacco). For example, in some embodiments, the mass of the amorphous solid per portion is 20 mg or less, or 10 mg or less, or 5 mg or less. Thus, the aerosol delivery device can provide relatively less power to the aerosol generating components, and / or the aerosol generating components can be relatively smaller to generate a similar aerosol, which therefore means that the energy requirements for the aerosol delivery device can be lowered.

[0057] In some embodiments, the amorphous solid comprises a tobacco extract. In these embodiments, the amorphous solid may have the following components (on a dry weight basis (DWB)): a gelling agent (preferably comprising an alginate) in an amount of about 1% to about 60%, or about 10% to about 30%, or about 15% to about 25% by weight; a tobacco extract in an amount of about 10% to about 60%, or about 40% to about 55%, or about 45% to about 50% by weight; and an aerosol-forming agent (preferably comprising glycerol) in an amount of about 5% to about 60%, or about 20% to about 40%, or about 25% to about 35% by weight (DWB). The tobacco extract may be from a single variety of tobacco or a blend of extracts from different varieties of tobacco. Such amorphous solids may be referred to as "tobacco amorphous solids" and may be designed to provide a tobacco-like experience when aerosolized.

[0058] In one embodiment, the amorphous solid comprises about 20% by weight alginate gelling agent, about 48% by weight Virginia tobacco extract, and about 32% by weight glycerol (DWB).

[0059] The amorphous solid of these embodiments may have any suitable water content, for example, from about 5% to about 15% by weight, or from about 7% to about 13% by weight, or about 10% by weight.

[0060] In any of these embodiments, the amorphous solid has a thickness t of about 50 μm to about 200 μm, or about 50 μm to about 100 μm, or about 60 μm to about 90 μm. a and a thickness t of about 77 μm. a It is preferable that the ion exchange coefficient be 0.05 or 0.1.

[0061] In some embodiments, the amorphous solid may comprise 0.5 to 60 wt. % of a gelling agent and 5 to 80 wt. % of an aerosol-generating agent, calculated on a dry weight basis. Such amorphous solids may be free of flavors, acids, and active substances. Such amorphous solids may be referred to as "aerosol-generating agent-rich" or "aerosol-generating agent amorphous solids." More generally, this is an example of an aerosol-generating agent-rich aerosol-generating material that is a portion of the aerosol-generating material, which, as the name suggests, is designed to deliver an aerosol-generating agent upon aerosolization.

[0062] In these embodiments, the amorphous solid may have the following components (DWB): a gelling agent in an amount of about 5% to about 40%, or about 10% to about 30%, or about 15% to about 25% by weight, and an aerosol-generating agent in an amount of about 10% to about 50%, or about 20% to about 40%, or about 25% to about 35% by weight (DWB).

[0063] In some other embodiments, the amorphous solid may comprise, by weight calculated on a dry weight basis, 0.5 to 60% by weight of gelling agent, 5 to 80% by weight of aerosol-generating agent, and 1 to 60% by weight of flavoring. Such amorphous solids may contain flavoring but may not contain active substances or acids. Such amorphous solids are sometimes referred to as "flavoring-rich" or "flavoring amorphous solids." More generally, they are examples of flavoring-rich aerosol-generating materials, which, as the name suggests, are portions of the aerosol-generating material designed to deliver flavoring when aerosolized.

[0064] In these embodiments, the amorphous solid may have the following components (DWB): a gelling agent in an amount of about 5% to about 40%, or about 10% to about 30%, or about 15% to about 25% by weight, an aerosol generating agent in an amount of about 10% to about 50%, or about 20% to about 40%, or about 25% to about 35% by weight (DWB), and a fragrance in an amount of about 30% to about 60%, or about 40% to 55%, or about 45% to about 50% by weight.

[0065] In some other embodiments, the amorphous solid may comprise, by weight calculated on a dry weight basis, 0.5-60% by weight of a gelling agent, 5-80% by weight of an aerosol-generating agent, and 5-60% by weight of at least one active agent. Such amorphous solids may contain an active agent but may not contain flavorings or acids. Such amorphous solids may be referred to as "active-rich" or "active-agent amorphous solids." For example, in one embodiment, the active agent may be nicotine, and thus, such an amorphous solid containing nicotine may be referred to as a "nicotine amorphous solid." More generally, this is an example of an active-agent-rich aerosol-generating material, which, as the name suggests, is a portion of an aerosol-generating material designed to deliver an active agent upon aerosolization.

[0066] In these embodiments, the amorphous solid may have the following components (DWB): a gelling agent in an amount of about 5% to about 40%, or about 10% to about 30%, or about 15% to about 25% by weight, an aerosol generating agent in an amount of about 10% to about 50%, or about 20% to about 40%, or about 25% to about 35% by weight (DWB), and an active agent in an amount of about 30% to about 60%, or about 40% to 55%, or about 45% to about 50% by weight.

[0067] In some other embodiments, the amorphous solid may comprise, by weight calculated on a dry weight basis, 0.5 to 60% by weight of gelling agent, 5 to 80% by weight of aerosol-generating agent, and 0.1 to 10% by weight of acid. Such amorphous solids may contain acid but may not contain active substances or flavorings. Such amorphous solids are sometimes referred to as "acid-rich" or "acid amorphous solids." More generally, they are examples of acid-rich aerosol-generating materials, which, as the name suggests, are portions of the aerosol-generating material designed to deliver acid upon aerosolization.

[0068] In these embodiments, the amorphous solid may have the following components (DWB): a gelling agent in an amount of about 5% to about 40%, or about 10% to about 30%, or about 15% to about 25% by weight, an aerosol generating agent in an amount of about 10% to about 50%, or about 20% to about 40%, or about 25% to about 35% by weight (DWB), and an acid in an amount of about 0.1% to about 8%, or about 0.5% to 7%, or about 1% to about 5%, or about 1% to about 3% by weight.

[0069] Article 4 may include multiple portions of aerosol-generating material 44, all formed from the same aerosol-generating material (e.g., one of the amorphous solids described above). Alternatively, article 4 may include multiple portions of 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).

[0070] The receptacle 25 is sized to removably receive the item 4. Although not shown, the device 2 may include a hinged door or a removable portion of the outer housing 21 to provide access to the receptacle 25, allowing a user to insert and / or remove the item 4 from the receptacle 25. The hinged door or the removable portion of the outer housing 21 may also function to retain the item 4 within the receptacle 25 when closed. When the aerosol generation product 4 is used up, or when the user simply wishes to switch to a different aerosol generation product 4, the aerosol generation product 4 can be removed from the aerosol delivery device 2 and a replacement aerosol generation product 4 placed in its place in the receptacle 25. Alternatively, the device 2 may include a permanent opening in communication with the receptacle 25 through which the item 4 can be inserted into the receptacle 25. In such an embodiment, a retention mechanism may be provided to retain the item 4 within the receptacle 25 of the device 2.

[0071] As can be seen in FIG. 1 , device 2 includes several aerosol-generating components 24. In the illustrated embodiment, aerosol-generating components 24 are heating elements 24, more specifically, resistive heating elements 24. Resistive heating elements 24 receive an electric current and convert the electrical energy into heat. Resistive heating elements 24 may be formed from or include any suitable resistive heating material, such as nichrome (Ni20Cr80), that generates heat upon receiving an electric current. In one embodiment, heating elements 24 may include an electrically insulating substrate having resistive paths disposed therein.

[0072] 3 is a cross-sectional top view of the aerosol delivery device 2 showing the arrangement of the heating element 24 in more detail. In FIGS. 1 and 3, the heating element 24 is arranged so that the surface of the heating element 24 forms part of the surface of the receptacle 25. That is, the outer surface of the heating element 24 is flush with the inner surface of the receptacle. More specifically, the outer surface of the heating element 24 that is flush with the inner surface of the receptacle 25 is the surface of the heating element 24 that is heated (i.e., its temperature increases) when an electric current is passed through the heating element 24.

[0073] In this example, the heating element 24 is formed from a conductive plate, which defines a surface of the heating element configured to increase in temperature. The conductive plate may be formed from a metallic material, such as nichrome, which generates heat when an electric current is passed through the conductive plate. In other embodiments, a separate conductive pathway may run on or through a second material (e.g., a metallic or ceramic material), in which case the conductive pathway generates heat that is transferred to the second material. That is, the second material and the conductive pathway combine to form the heating element 24. In the latter example, the surface of the heating element configured to increase in temperature is defined by the perimeter of the second material.

[0074] In the illustrated embodiment, the surfaces of the heating elements 24 configured to increase in temperature are also planar and generally disposed in a plane parallel to the walls of the receptacle 25. However, in other embodiments, the surfaces may be curved, i.e., the surface on which the heating element 24 surfaces are disposed may have a radius of curvature about one axis (e.g., the surface may be approximately parabolic). The heating elements 24 are positioned such that, when the item 4 is received in the receptacle 25, each heating element 24 aligns with a corresponding individual portion of the aerosol-generating material 44. Thus, in this example, six heating elements 24 are arranged in a 2×3 array roughly corresponding to the 2×3 array arrangement of the six individual portions of the aerosol-generating material 44 shown in FIGS. 2A-2C. However, as discussed above, the number of heating elements 24 may vary in different embodiments, e.g., there may be 8, 10, 12, 14, etc. heating elements 24. In some embodiments, the number of heating elements 24 is six or more, but twenty or less.

[0075] More specifically, the heating elements 24 are labeled 24a-24f in FIG. 3, and each heating element 24 should be understood to be 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 of the heating elements 24 can be individually activated to heat a corresponding portion of the aerosol-generating material 44. It is also contemplated that the heating elements can sequentially heat different portions of the aerosol-generating material. In such an embodiment (not shown), the heating element and the portion of the aerosol-generating material may move relative to one another. For example, the aerosol-generating product may slide along the receptacle or rotate around the receptacle. Alternatively, one or more heating elements may be configured to move relative to the receptacle.

[0076] Although heating element 24 is shown flush with the interior surface of receptacle 25, in other embodiments, heating element 24 may protrude into receptacle 25. In either case, when item 4 is present in receptacle 25, it contacts the surface of heating element 24, such that heat generated by heating element 24 is conducted through carrier component 42 to aerosol-forming material 44.

[0077] In some embodiments, to improve heat transfer efficiency, the receiver may include a component that applies a force to the surface of the carrier component 42 to press the carrier component 42 against the heater element 24, thereby increasing the efficiency of heat transfer by conduction to the aerosol-forming material 44. 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 include the aerosol-forming material 44.

[0078] In use, device 2 (and more particularly control circuitry 23) is configured to provide power to heating element 24 in response to user input. Generally, control circuitry 23 is configured to selectively apply power to heating element 24 to heat corresponding portions of aerosol-forming material 44 and generate an aerosol. When a user inhales on device 2 (i.e., draws on mouth end 26), air is drawn into device 2 through air inlet 27, enters receptacle 25, where it mixes with the aerosol generated by heating aerosol-forming material 44, and is then drawn into the user's mouth via air outlet 28. That is, the aerosol is delivered to the user through mouth end 26 and air outlet 28.

[0079] 1 includes a touch-sensitive panel 29 and a suction sensor 30. Together, the touch-sensitive panel 29 and the suction sensor 30 function as mechanisms for receiving user input to trigger aerosol generation and may therefore be more broadly referred to as a user input mechanism. The received user input may indicate that the user wishes to generate aerosol.

[0080] The touch-sensitive panel 29 may be a capacitive touch sensor that can be operated by a user of the device 2 by placing a finger or another suitable conductive object (e.g., a stylus) on the touch-sensitive panel. In the described embodiment, the touch-sensitive panel includes an area that the user can press to initiate aerosol generation. The control circuitry 23 may be configured to receive a signal from the touch-sensitive panel 29 and use this signal to determine whether the user is pressing (i.e., activating) this area of ​​the touch-sensitive panel 29. If the control circuitry 23 receives this signal, the control circuitry 23 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 contact is detected, or may be supplied corresponding to the length of time contact is detected. In other embodiments, the touch-sensitive panel 29 may be replaced by a user-actuable button or the like.

[0081] The suction sensor 30 may be a pressure sensor, a microphone, or the like configured to detect a drop in pressure or airflow caused by a user inhaling on the device 2. The suction sensor 30 is disposed in fluid communication with the air flow path (i.e., in fluid communication with the air flow path between the inlet 27 and the outlet 28). In a similar manner to that described above, the control circuit 23 may be configured to receive a signal from the suction sensor and use the signal to determine whether a user is inhaling on the aerosol delivery system 1. When the control circuit 23 receives the signal, the control circuit 23 is configured to provide power from the power source 22 to one or more of the heating elements 24. Power may be provided for a predetermined period of time (e.g., 3 seconds) from the moment inhalation is detected, or for a period corresponding to the length of time inhalation is detected.

[0082] In the illustrated example, both the touch-sensitive panel 29 and the suction sensor 30 detect a user's desire to begin generating aerosol for inhalation. The control circuit 23 may be configured to provide power to the heating element 24 only when signals from both the touch-sensitive panel 29 and the suction sensor 30 are detected. This can help prevent unintentional activation of the heating element 24 due to accidental activation of one of the user-input mechanisms. However, in other embodiments, the aerosol delivery system 1 may include only one of the touch-sensitive panel 29 and the suction sensor 30.

[0083] These aspects of the operation of the aerosol delivery system 1 (i.e., puff detection and contact detection) can themselves be performed in accordance with established techniques (e.g., using conventional suction sensors and suction sensor signal processing techniques, and using conventional touch sensors and touch sensor signal processing techniques).

[0084] In some embodiments, in response to detecting a signal from either or both of the touch sensitive panel 29 and the suction sensor 30, the control circuit 23 is configured to sequentially supply power to each of the individual heating elements 24.

[0085] More specifically, the control circuit 23 is configured to sequentially power each of the individual heating elements 23 in response to the order of detection of signals received from either or both of the contact-sensitive panel 29 and the suction sensor 30. For example, the control circuit 23 may be configured to power a first heating element 24 of the plurality of heating elements 24 when a signal is first detected (e.g., from when the device 2 is first turned on). When the signal ceases or a predetermined time has elapsed since the signal was detected, the control circuit 23 records that the first heating element 24 has been activated (and thus the corresponding individual portion of the aerosol-forming material 44 has been heated). In response to receiving a subsequent signal from either or both of the contact-sensitive panel 29 and the suction sensor 30, the control circuit 23 determines to activate the second heating element 24. Thus, when the control circuit 23 receives a signal from either or both of the contact-sensitive panel 29 and the suction 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 of the heating elements 24 are activated in sequence.

[0086] Effectively, this operation means that for each inhalation, a different portion of the discrete portion of aerosol-forming material 44 is heated and an aerosol is generated therefrom. In other words, a single discrete portion of aerosol-forming material is heated with each inhalation by the user.

[0087] In other embodiments, the control circuit 23 may be configured to activate the first heating element 24 multiple times (e.g., twice) before determining that the second heating element 24 should be activated in response to a next signal from either or both of the contact sensing panel 29 and the suction sensor 30, or to activate each of the multiple heating elements 24 once, and when all of the heating elements 24 have been activated once, activate the heating elements sequentially a second time when a next signal is detected.

[0088] Such sequential actuation, sometimes referred to as a "sequential actuation mode," is primarily designed to deliver a consistent aerosol per inhalation (which may be measured, for example, by total aerosol generated or total components delivered). Thus, this mode may be most effective when each portion of the aerosol-generating material 44 of the aerosol-generating article 4 is substantially identical, i.e., when portions 44a-44f are formed from the same material.

[0089] In some other embodiments, in response to detecting a signal from either or both of the touch sensitive panel 29 and the suction sensor 30, the control circuit 23 is configured to simultaneously supply power to one or more of the heating elements 24.

[0090] In such embodiments, the control circuitry 23 may be configured to provide power to selected ones of the heating elements 24 in accordance with a predetermined configuration. The predetermined configuration may be a configuration selected or determined by a user. For example, the touch sensitive panel 29 may include areas that allow the user to individually select which of the heating elements 24 to activate when the control circuitry 23 receives a signal from either or both of the touch sensitive panel 29 and the suction sensor 30. In some embodiments, the user may also set the power level for each heating element 24 to be provided to the heating element 24 in response to receiving the signal.

[0091] FIG. 4 is a top view of a touch-sensitive panel 29 according to such an embodiment. FIG. 4 schematically illustrates the outer housing 21 and touch-sensitive panel 29 as described above. The touch-sensitive panel 29 includes six regions 29a-29f corresponding to each of the six heating elements 24, and region 29g corresponding to an area for indicating a user's desire to begin inhalation or generate aerosol, as described above. Each of the six regions 29a-29f corresponds to a touch-sensitive area that a user can touch to control power to each of the six corresponding heating elements 24. In the described embodiment, each heating element 24 can have multiple states, such as an off state in which no power is applied to the heating element 24, a low-power state in which a first level of power is applied to the heating element 24, and a high-power state in which a second level of power greater than the first level of power is applied to the heating element 24. However, in other embodiments, fewer or more states may be available for the heating element 24. For example, each heating element 24 may have an off state in which no power is applied to the heating element 24 and an on state in which power is applied to the heating element 24 .

[0092] Thus, a user can configure which heating elements 24 (and subsequently which portions of the aerosol-forming material 44) to heat (and, optionally, to what extent) before generating an aerosol by interacting with the touch-sensitive panel 29. For example, a user may repeatedly tap areas 29a-29f to cycle through different states (e.g., off, low power, high power, off, etc.). Alternatively, a user may press and hold areas 29a-29f to cycle through different states, where the duration of the press determines the state.

[0093] The touch-sensitive panel 29 may include one or more indicators for each of the regions 29a-29f that indicate the current state of the heating element 24. For example, the touch-sensitive panel may include one or more LEDs or similar lighting elements, with the intensity of the LED indicating the current state of the heating element 24. Alternatively, colored LEDs or similar lighting elements may be provided, with the color indicating the current state. Alternatively, the touch-sensitive panel 29 may include an indicator element (e.g., located below the transparent touch-sensitive panel 29 or adjacent to one of the regions 29a-29f of the touch-sensitive panel 29) that indicates the current state of the heating element 24.

[0094] Once the user has set the configuration of the heating elements 24, the control circuit 23 is configured to supply power to the selected heating elements 24 in accordance with the preset configuration in response to detecting signals from either or both of the touch sensitive panel 29 (more specifically, area 29g of the touch sensitive panel 29) and the suction sensor 30.

[0095] Such simultaneous activation of heating elements 24 is therefore sometimes referred to as a "simultaneous activation mode," which is primarily designed to deliver a customizable aerosol from a given article 4 with the intention of allowing the user to customize their experience from session to session, or even puff to puff. This mode may therefore be most effective when the portions of the aerosol-generating material 44 of the aerosol-generating article 4 are different from one another. For example, portions 44a and 44b may be formed of one material, while portions 44c and 44d are formed of a different material. This mode of operation therefore allows the user to select which portions to aerosolize at any given moment, and thus which combination of aerosols to deliver.

[0096] In both the simultaneous operation mode and the sequential operation mode, the control circuit 23 may be configured to generate a warning signal indicating the end of use of the item 4, for example, when each of the heating elements 24 has been sequentially activated a predetermined number of times, or when a given heating element 24 has been activated a predetermined number of times and / or for a given cumulative activation time and / or a given cumulative activation power. In FIG. 1 , the device 2 includes an end-of-use indicator 31, which in this embodiment is an LED. However, in other embodiments, the end-of-use indicator 31 may comprise any mechanism capable of providing a warning signal to a user, i.e., the end-of-use indicator 31 may be an optical element that delivers an optical signal, a sound generator 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 (e.g., when the touch-sensitive panel includes a display element) or provided in other manners. The device 2 may prevent further activation of the device 2 when the warning signal is output. When the user replaces the item 4 and / or turns off the warning signal via manual means such as a button (not shown), the warning signal can be turned off and the control circuit 23 is reset.

[0097] More specifically, in embodiments in which a sequential mode of operation is used, control circuitry 23 may be configured to count the number of signals received from either or both of touch-sensitive panel 29 and suction sensor 30 during use and determine that article 4 has reached the end of its life when a predetermined number is reached. For example, for an article 4 comprising six individual portions of aerosol-forming material 44, the predetermined number may be 6, 12, 18, etc., depending on the embodiment at hand.

[0098] In embodiments in which the simultaneous operation mode is used, control circuitry 23 may be configured to count the number of times one or each of the individual portions of aerosol-forming material 44 is heated. For example, control circuitry 23 may count the number of times a nicotine-containing portion is heated and determine the end of life of article 4 when that portion reaches a predetermined number. Alternatively, control circuitry 23 may be configured to separately count each individual portion of aerosol-forming material 44 as that portion is heated. Each portion may have the same or a different predetermined number of times, and control circuitry 23 determines the end of life of article 4 when any one of the times for each portion of aerosol-forming material reaches the predetermined number.

[0099] In any of the embodiments, control circuitry 23 may also take into account the length of time a portion of aerosol-generating material has been heated and / or the temperature to which the portion of aerosol-generating material has been heated. In this regard, rather than counting individual actuations, control circuitry 23 may be configured to calculate a cumulative parameter indicative of the heating conditions each portion of aerosol-generating material 44 has experienced. This parameter may be, for example, cumulative time, and the temperature of the material may be used to adjust the amount of time added to the cumulative time. For example, a portion heated to 200°C for 3 seconds may contribute 3 seconds to the cumulative time, while a portion heated to 250°C for 3 seconds may contribute 4.5 seconds to the cumulative time.

[0100] The above techniques for determining the end of life of item 4 should not be understood as an exhaustive list of ways to determine the end of life of item 4, and in fact any other suitable method may be used in accordance with the principles of the present disclosure.

[0101] The described embodiments are configured to heat individual portions of the aerosol-generating material 44 to generate an aerosol suitable for inhalation. An advantage of these systems is that different portions of the aerosol-generating material can be heated at different times during a use session. For example, in a sequential mode of operation, portion 44a can be heated at a first time to deliver an aerosol, and portion 44b can be heated at a second time to deliver the same or a different aerosol.

[0102] However, because these systems are flexible in terms of which portion of the aerosol can be heated for any given inhalation, these systems should ideally be able to begin generating aerosol quickly in response to receiving a user command to begin generating aerosol. In part, this depends on the rate at which energy can be transferred from the heating element to the portion of the aerosol-generating material being heated, but it also depends on the properties of the aerosol-generating material being heated, such as the amount, density, thickness, and composition of the aerosol-generating material, to name a few. For example, the thickness of the aerosol-generating material can be a significant factor in how quickly it can be heated and, subsequently, how long it takes for the aerosol-generating material to begin generating an inhalable aerosol. Generally, (all other things being equal), the thicker the aerosol-generating material, the longer it will take to generate an inhalable aerosol.

[0103] Additionally, for example, if different individual portions are heated for each puff, each portion of the aerosol-generating material can be designed to deliver a specific amount of aerosol when heated. In other words, the aerosol-generating material may have a specific mass so that it can generate a desired amount of aerosol when heated. Assuming the thickness and density of the aerosol-generating material are fixed, the areal extent of the aerosol-generating material is considered to deliver the desired amount. Simply put, assuming fixed thickness and density, the greater the areal extent of the aerosol-generating material (and the corresponding areal extent of the heating element), the greater the expected amount of aerosol generated from the aerosol-generating material.

[0104] The above two factors suggest a fairly large area coverage of the heating element and / or aerosol-generating material portion, and a relatively thin thickness of the aerosolizable material, to achieve a rapid aerosol generation time and deliver a sufficient amount of aerosol. However, aerosol delivery systems tend to be miniaturized and portable, and as a result, these systems are portable. Devices with footprints significantly larger than the size of a human palm (e.g., 9 cm x 7 cm) tend to be difficult for users to hold (especially with one hand) and cumbersome and inconvenient to use during an aerosol inhalation session. In the aerosol delivery system 1 of Figures 1-3, multiple portions of aerosol-generating material (e.g., six portions as shown) are vaporized, which means there is a practical limit to how large the area coverage of the aerosol-generating material portion can be (from the device's perspective, this translates to a limit on the area coverage of the heating element). A balance can be struck between these parameters to achieve a system that rapidly delivers sufficient aerosol per portion without having a large footprint.

[0105] The inventors have determined that the surface of the heating element, which is configured to increase in temperature during use, is 130 mm 2 It has been found that a good compromise exists when defining the following area (e.g., surface area):2 A heating element 24 having a surface defining an area of ​​130 mm results in a device capable of aerosolizing multiple distinct portions of aerosol-generating material while remaining relatively small in overall footprint. 2 The footprint of heating elements and devices with larger surfaces tends to become ergonomically unfavorable (especially when considering the presence of outer housing 21, power source 22, and any insulation (not shown) to prevent outer housing 21 from reaching uncomfortable temperatures), especially when there are multiple heating elements, such as six or more.

[0106] In some embodiments, the surface of the heating element is 10 mm 2 As previously mentioned, several factors can affect the aerosol generated from a portion of the aerosol-generating material. If the amount of aerosol delivered is considered significant, a 10 mm 2 A heating element 24 having a surface area of ​​less than 10 mm requires a relatively thicker portion of the heated material to generate the same amount of aerosol. However, as previously mentioned, a thicker portion of the aerosolizable material requires a longer time to heat and generate aerosol, and therefore, the system is less responsive. While the responsiveness can be adjusted by increasing the energy transfer rate (e.g., by heating the heating element 24 to a higher temperature), this increases the likelihood of carbonizing the aerosol-generating material. For example, the operating temperature (the temperature at which aerosol is generated from the portion of the aerosol-generating material) may range from 160°C to 350°C. Heating the portion of the aerosol-generating material above 350°C significantly increases the likelihood of carbonization, which can cause the subsequently generated aerosol to have an unpleasant taste. Therefore, a heating element 24 with an area area of ​​10 mm or less is recommended. 2 Less than this has been found to result in poorer aerosol output.

[0107] In some embodiments, the surface of the heating element 24 is 30 mm 2 ~130mm 2 area, i.e., 30 mm 2 Over 130mm2 In another embodiment, the surface of the heating element 24 defines an area between 80 and 130 mm 2 , 35~80mm 2 , or 40 to 75 mm 2 Define the area.

[0108] The inventors used an amorphous solid aerosol-forming material containing about 20% by weight of alginate gelling agent, about 48% by weight of Virginia tobacco extract, and about 32% by weight of glycerol (DWB), and generated a 40-75 mm 2 It has been found that when heated to a temperature of about 290°C using a heating element 24 having an area of ​​0.05 to 2 mm, the thickness should be in the range of 0.05 to 2 mm in order to be able to generate a sufficient amount of aerosol fairly quickly.

[0109] Referring back to FIG. 3 , FIG. 3 is a cross-sectional top view of the aerosol delivery device 2 showing in more detail the arrangement of heating elements 24 according to the present disclosure. In FIG. 3 , six heating elements 24 are shown in an array, with each heating element 24 depicted as having a circular cross-section. The bodies of the heating elements 24 themselves may have any shape required by the particular design of the heating element 24 used, and the bodies of the heating elements 24 may be disposed below the inner surface of the receptacle. However, each heating element 24 at least includes a surface (in this example, a circular surface) configured to increase its temperature in response to receiving power from the power source 22, for example, and facing into the receptacle 25. It should be appreciated that in other embodiments, the area defined by the heating elements 24 need not be circular, but may have any other desired shape (e.g., rectangular, triangular, hexagonal, or square).

[0110] The surface (e.g., the outward-facing surface) of heating element 24 has a diameter d. As previously discussed, each portion of aerosol-forming material 44 is disposed to have substantially similar area coverage as the surface of the corresponding heating element 24, such that heating element 24 substantially overlaps the corresponding portion of aerosol-forming material. This prevents heating element 24 from heating areas of article 4 that do not contain aerosol-feed material 44 (which would otherwise waste energy). Thus, diameter d is substantially the same as diameter d in FIG. 2, although it should be recognized that in some embodiments, the diameters may be different.

[0111] In the embodiment described herein, the surface of each of the heating elements 24 has substantially the same area. That is, each of the heating elements 24 has substantially the same area extent. In the described embodiment, each of the elements 24a-24f has the same diameter d. In this manner, each heating element can be operated in a substantially similar manner under the same heating conditions to generate a consistent aerosol from each portion of aerosol-generating material. However, it should be recognized that in other embodiments, this may not be the case, and the diameters of at least some of the heating elements 24 may vary.

[0112] In the illustrated exemplary embodiment, the diameter d of the heating element 24 is between 3.6 mm and 12.9 mm (30 to 130 mm). 2 However, in some embodiments, the diameter d may be between 7.1 and 9.8 mm (equivalent to an area of ​​about 40 mm 2 ~about 75mm 2 Additionally, heating elements of other shapes (e.g., rectangular, triangular, hexagonal, or square) and / or other sizes may be used, up to 145 or up to 170 mm 2 It is contemplated that a similar size (diameter, width, and / or height) equivalent to the area of ​​the above may be used.

[0113] As shown in FIG. 3 , the heating elements 24 are separated from one another by a separation distance S2 in the length direction and a separation distance S1 in the width direction. The separation distances S1 and S2 are set so that when one portion of the aerosol-generating material is heated by one heating element (e.g., heating element 24a and corresponding portion 44a), the heat from the heating element 24a does not substantially increase the temperature of adjacent portions of the aerosol-generating material, such as portions 44b and 44c. In other words, the separation distances S1 and S2 are positioned so that adjacent portions of the aerosol-generating material are not unintentionally heated to a degree that would cause them to begin generating aerosol. The separation distances S1 and S2 may be affected by the expected operating temperature at which the heating elements 24 are expected to operate. Generally, the higher the operating temperature, the longer the separation distances S1 and S2. The separation distances S1 and S2 may be the same or different, although for any given system, the separation distances S1 and S2 may share a minimum distance. In this case, the minimum separation distance may be 1.5 mm to 5 mm.

[0114] Figure 3 also shows the length l r and width w r As should be appreciated from the above, the receptacle should be large enough to accommodate multiple heating elements, yet small enough so as not to increase the overall size of the outer housing 21. The length l of the receptacle 25 is r and the width w of the receiving portion 25 r may vary depending on the application at hand, but these dimensions should be set to ensure that the overall dimensions of device 2 are not significantly larger than the palm of a user's hand, as discussed above.

[0115] With respect to the parameters d, S1 and S2, the length l of the receiving portion 25 r can be expressed as N×d+(N−1)×S2+B, while the width w of the receiving portion 25 r can be expressed as M×d+(M−1)×S1+B, where N is the number of heating elements in the length direction, M is the number of heating elements in the width direction, and B is the edge length of the receiving portion 25 (the distance surrounding the outside of the heating element 24).

[0116] Example 1 Several 0.1 mm thick amorphous solid sections, each containing approximately 20 wt% alginate gelling agent, approximately 48 wt% Virginia tobacco extract, and approximately 32 wt% glycerol (DWB), were heated for 3 seconds to two different temperatures (230°C and 290°C) using circular heating elements with different diameters. The heater configuration used was a ceramic-core cartridge heater encased in an aluminum heater block. The heater was supplied with a voltage of 24 V to generate 80 W of power. The ceramic-core cartridge had an overall diameter of 6 mm, a length of 20 mm, and a wire length of 100 cm. The aerosol generated was collected during a 3-second heating period. The total collected aerosol per puff (aerosol collected matter ACM), nicotine per puff, and glycerol per puff were obtained at two different temperatures, as shown in the table below. The collection method was performed using Cambridge filter pads and related equipment, which are well known in the art.

[0117] [Table 1] As can be seen from the above, the average ACM per puff, average nicotine per puff, and average glycerol per puff generally increase with increasing heater diameter and temperature. Compared to existing electronic aerosol delivery devices that heat tobacco, the desired level of nicotine per puff may be 0.04-0.08 mg / puff, and thus the above data indicates that a heater diameter of 7.4 mm-9.6 mm when operated at either 230°C or 290°C provides the desired level of nicotine per puff. Additionally, the desired level of glycerol per puff may be 0.2-0.6 mg / puff, and thus a heater diameter of 7.4 mm-9.6 mm when operated at either 230°C or 290°C, or a heater diameter of 5 mm when operated at 290°C, provides the desired level of glycerol per puff.

[0118] It should be appreciated that the data provided herein is intended merely to illustrate working embodiments of the present disclosure and is not intended to limit the present disclosure. As previously mentioned, several different parameters may also contribute to the aerosol generated for a given portion of aerosol-generating material.

[0119] It should be appreciated that although heating element 24 is shown as defining a circular cross-sectional area, in other embodiments heating element 24 may define a rectangular or other polygonal cross-sectional area. For example, in some embodiments, the surface of heating element 24 may define a rectangle having sides of 8 mm by 8 mm.

[0120] Figure 5 is a schematic cross-sectional view of an aerosol delivery system 200 according to another embodiment of the present disclosure. Aerosol delivery system 200 includes components broadly similar to those described in connection with Figure 1, but with the reference numerals increased by 200. For efficiency, components having similar reference numerals should be understood to be substantially the same as their counterparts in Figures 1 and 2A-2C, unless otherwise noted.

[0121] The aerosol delivery device 202 comprises an outer housing 221, a power source 222, a control circuit 223, an inductive action coil 224a, a receptacle 225, a suction or mouth end 226, an air inlet 227, an air outlet 228, a contact-sensitive panel 229, a suction sensor 230, and an indicator, such as an end-of-use indicator 231.

[0122] The aerosol-generating article 204 comprises a carrier component 242, an aerosol-generating material 244, and a susceptor element 244b, as shown in more detail in Figures 6A-5C. Figure 6A is a top view of the article 4, Figure 6B is an end view of the article 4 along its longitudinal (length) axis, and Figure 6C is a side view of the article 4 along its width axis.

[0123] 5 and 6 illustrate an aerosol delivery system 200 that uses induction to heat an aerosol-generating material 244 to generate an aerosol for inhalation.

[0124] In the illustrated embodiment, the aerosol-generation component 224 is formed from two parts or heating elements: an inductively-acting coil 224a located in the aerosol-delivery device 202 and a susceptor 224b located in the aerosol-generating product 204. Thus, in the illustrated embodiment, each aerosol-generation component 224 comprises an element distributed between the aerosol-generating product 204 and the aerosol-delivery device 202.

[0125] Induction heating is a process of heating an electrically conductive object, called a susceptor, by penetrating a changing magnetic field into the object. This process is explained by Faraday's law of electromagnetic induction and Ohm's law. An induction heater may include an electromagnet and a device for passing a changing current, such as an alternating current, through the electromagnet. When the electromagnet and the object to be heated are positioned relative to one another so that the changing magnetic field generated by the electromagnet penetrates the object, one or more eddy currents are generated within the object. The object has a resistance to the flow of current. Therefore, when such eddy currents are generated within the object, they flow against the object's electrical resistance, thereby heating the object. This process is called Joule heating, ohmic heating, or resistive heating.

[0126] The susceptor is a material that can be heated by the penetration of a varying magnetic field, such as an alternating magnetic field. The heating material can be an electrically conductive material, such that the penetration of the varying magnetic field causes induction heating of the heating material. The heating material can be a magnetic material, such that the penetration of the varying magnetic field causes magnetic hysteresis heating of the heating material. The heating material can be both electrically conductive and magnetic, such that the heating material can be heated by both heating mechanisms.

[0127] Magnetic hysteresis heating is the process of heating an object made of a magnetic material by penetrating it with a varying magnetic field. Magnetic materials can be thought of as containing a large number of atomic-scale magnets, or magnetic dipoles. When a magnetic field penetrates such a material, the magnetic dipoles align along the field. Thus, when a varying magnetic field, such as an alternating magnetic field (e.g., produced by an electromagnet), penetrates a magnetic material, the orientation of the magnetic dipoles changes in response to the applied varying field. This reorientation of the magnetic dipoles generates heat within the magnetic material.

[0128] When an object is both conductive and magnetic, the penetration of a varying magnetic field into the object can cause both Joule heating and magnetic hysteresis heating in the object. Furthermore, the use of magnetic materials can enhance the magnetic field, thereby enhancing Joule heating.

[0129] In this context, either or both of the inductively acting coil 224a and the susceptor 224b are 130 mm 2 An area (e.g., surface area) of less than 145 mm 2 In some further embodiments, the area is 170 mm 2 The following areas may be defined: In some embodiments (not shown), the susceptor may be shaped differently (e.g., in size and / or shape) than the inductively acting coil(s). For example, the susceptor(s) may have an areal extent greater than that of the inductively acting coil(s), and the effective heated area may be limited by the area of ​​the inductively acting coil(s). Alternatively, the inductively acting coil(s) may have an areal extent greater than that of the susceptor, and the heated area may be limited only by the area of ​​the susceptor.

[0130] It is also contemplated that the susceptor may be arranged to be heated by multiple (two or more) inductively acting coils, which may be arranged to heat the same region of the susceptor or to heat different regions of the susceptor. For example, different regions of the susceptor may be arranged adjacent to different inductively acting coils. Thus, multiple inductively acting coils may be arranged over a 130 mm 2 In some embodiments, the area below 145 mm 2 In some further embodiments, the area below 170 mm 2 Alternatively, a single susceptor may be heated that defines an area of: 2 In some embodiments, the area below 145 mm 2 In some further embodiments, the area below 170 mm 2Multiple inductively acting coils defining the following regions may be arranged to heat a single susceptor:

[0131] In the illustrated embodiment, the susceptor 224b is formed from a metal foil, e.g., aluminum foil, although it should be appreciated that other metals and / or conductive materials may be used in other embodiments. As can be seen in Figure 6, the carrier member 242 includes several susceptors 224b whose size and position correspond to the individual portions of the aerosol-forming material 244 disposed on the surface of the carrier member 242. That is, the susceptors 224b have widths and lengths similar to the individual portions of the aerosol-forming material 244. The susceptor is shown embedded in the carrier component 242. However, in other embodiments, the susceptor 224b may be disposed on the surface of the carrier component 242.

[0132] The aerosol delivery device 202 comprises a plurality of inductive influence coils 224a, shown schematically in Figure 5. The influence coils 224a are shown adjacent to the receiver 225 and are generally flat coils arranged such that the axis of rotation about which a given coil is wound extends into the receiver 225 and is generally perpendicular to the plane of the carrier component 242 of the article 204. It should be appreciated that the windings are not precisely shown in Figure 5 and any suitable inductive coil may be used.

[0133] Control circuitry 223 includes a mechanism for generating an alternating current through one or more of induction coils 224a. This alternating current generates an alternating magnetic field, as described above, which increases the temperature of the corresponding susceptor(s) 224b. The heat generated by susceptor(s) 224b is transferred accordingly to the portions of aerosol-generating material 244.

[0134] 1 and 2A-2C, control circuit 223 is configured to supply current to working coil 224a in response to receiving a signal from contact sensitive panel 229 and / or suction sensor 230. As previously described, any of the techniques for selecting which heating element 24 is heated by control circuit 23 can be similarly applied to selecting which working coil 224a is energized (and thus which portion of aerosol-generating material 244 is subsequently heated) in response to receiving a signal from contact sensitive panel 229 and / or suction sensor 230 by control circuit 223 to generate an aerosol for inhalation by a user.

[0135] While the above describes an inductively heated aerosol delivery system in which the working coil 224a and the susceptor 224b are distributed between the article 204 and the device 202, an inductively heated aerosol delivery system may also be provided in which the working coil 224a and the susceptor 224b are located solely within the device 202. For example, with reference to Figure 5, the susceptor 224b may be provided above the inductive working coil 224a and positioned such that the susceptor 224b contacts the underside of the carrier component 242 (in a manner similar to the aerosol delivery system 1 shown in Figure 1).

[0136] Accordingly, Figure 5 illustrates a more specific embodiment in which the techniques described in this disclosure can be applied and in which inductive heating can be used in the aerosol delivery device 202 to generate an aerosol for inhalation by a user.

[0137] While the above describes a system in which an array of aerosol-generating components 24 (e.g., heater elements) is provided to energize individual portions of 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 individual portions of aerosol-generating material 44 provided on the carrier component 42 of the article 4, resulting in relative movement between the article 4 and the aerosol-generating components 24 to enable each of the individual portions of aerosol-generating material 44 to be individually energized. For example, the movable heating element 24 may be provided within the receiver 25 such that the movable heating element 24 can move relative to the receiver 25. In this manner, the movable heating element 24 can be translated (e.g., across the width and length of the carrier component 42) so that the heating element 24 can be aligned with each of the individual portions of aerosol-generating material 44. This approach may reduce the number of aerosol-generating components 42 required while providing a similar user experience.

[0138] While the above describes embodiments in which discrete, spatially distinct portions of aerosol-generating material 44 are disposed on carrier component 42, it should be appreciated that in other embodiments, the aerosol-generating material may not be provided in discrete, spatially distinct portions, but may instead be provided as a continuous sheet of aerosol-generating material 44. In these embodiments, specific regions of the sheet of aerosol-generating material 44 may be selectively heated to generate an aerosol in much the same manner as described above. However, regardless of whether these portions are spatially distinct, the present disclosure describes heating (or aerosolizing) portions of aerosol-generating material 44. In particular, regions (corresponding to portions of aerosol-generating material) may be defined on the continuous sheet of aerosol-generating material based on the dimensions of heating element 24 (or, more specifically, the surface of heating element 24 that is designed to increase in temperature). In this regard, the corresponding regions of heating element 24 may be considered to define regions or portions of aerosol-generating material when projected onto the sheet of aerosol-generating material. According to the present disclosure, each region or portion of the aerosol-forming material may have a mass of 20 mg or less, although the entire continuous sheet may have a mass greater than 20 mg.

[0139] While the above describes an embodiment 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, control circuitry 23 may include corresponding communications circuitry (e.g., Bluetooth) that enables control circuitry 23 to communicate with a remote device, such as a smartphone. Thus, touch-sensitive panel 29 may be substantially implemented using an app running on the smartphone, or the like. The smartphone may then transmit user inputs or settings to control circuitry 23, which may be configured to act based on the received inputs or settings.

[0140] While the above describes embodiments in which an aerosol is generated by applying energy to the aerosol-generating material 44 (e.g., by heating the aerosol-generating material 44) and then inhaled by a user, it should be appreciated that in some embodiments, the generated aerosol may pass through or over an aerosol-modifying component to modify one or more properties of the aerosol before being inhaled by a user. For example, the aerosol delivery device 2, 202 may include an air-permeable insert (not shown) inserted in the air flow path downstream of the aerosol-generating material 44 (e.g., the insert may be located at the outlet 28). The insert may include a material that alters any one or more of the aerosol's flavor, temperature, particle size, nicotine concentration, etc. as the aerosol passes through the insert before entering the user's mouth. For example, the insert may include tobacco or treated tobacco. Such a system may be referred to as a hybrid system. The insert may include any suitable aerosol-modifying material, which may include the aerosol-generating materials described above.

[0141] While the heating element 24 is described above as being configured to supply heat to the portions of the aerosol-generating material to bring them to an operating temperature at which aerosol is generated, in some embodiments, the heating element 24 is configured to preheat the portions of the aerosol-generating material to a preheat temperature (which is lower than the operating temperature). At the preheat temperature, a smaller amount of aerosol, or no aerosol, is generated when these portions are heated to the preheat temperature. However, a smaller amount of energy is required to raise the temperature of the aerosol-generating material from the preheat temperature to the operating temperature. This may be particularly suitable for relatively thick portions of the aerosol-generating material, e.g., portions having a thickness greater than 400 μm, which require a relatively large amount of energy to reach the operating temperature. However, in such embodiments, energy consumption (e.g., from the power source 22) may be relatively high.

[0142] While the above describes embodiments in which the aerosol delivery device 2 includes an end-of-use indicator 31, it should be appreciated that the end-of-use indicator 31 may be provided by a separate device separate from the aerosol delivery device 2. For example, in some embodiments, the control circuitry 23 of the aerosol delivery device 2 may include a communications mechanism that enables data transfer between the aerosol delivery device 2 and a remote device, such as a smartphone or smartwatch. In these embodiments, when the control circuitry 23 determines that the item 4 has reached the end of use, the control circuitry 23 is configured to send a signal to the remote device, and the remote device is configured to generate a warning signal (e.g., using a display on the smartphone). Other remote devices and other mechanisms for generating a warning signal may be used, as described above.

[0143] Additionally, when portions of aerosol-generating material are provided on the carrier component 42, these portions, in some embodiments, may include areas of weakness—e.g., through-holes or areas of relatively thin aerosol-generating material—in a direction generally perpendicular to the plane of the carrier component 42. This may be the case when the hottest portion of the aerosol-generating material is in direct contact with the carrier component (i.e., in a scenario where heat is primarily applied to the surface of the aerosol-generating material in contact with the carrier component 42). Thus, the through-holes can provide a path for generated aerosol to escape and be released into the airflow through the environment / device 2, rather than potentially accumulating between the carrier component 42 and the aerosol-generating material 44. Such accumulation of aerosol, in some embodiments, can cause the aerosol-generating material to lift off the carrier component 42, thereby reducing the efficiency of heat transfer to the aerosol-generating material and thereby reducing the heating efficiency of the system. Each portion of aerosol-generating material may include one or more areas of weakness, as needed.

[0144] Thus, an aerosol delivery device for generating an aerosol from an aerosol-generating material has been described, the device comprising at least one heating element positioned adjacent to the aerosol-generating material when the aerosol-generating material is present in the aerosol delivery device, the heating element having a surface configured to increase in temperature when supplied with energy, the surface being 130 mm 2 In some embodiments, the area below 145 mm 2 In some further embodiments, the area below 170 mm 2 The following area is defined: Thus, a device is provided that is capable of generating sufficient aerosol and is spatially efficient. An aerosol delivery system and method for generating aerosol are also described.

[0145] While the above embodiments have, in some respects, focused on some particular exemplary aerosol delivery systems, it will be appreciated that the same principles can be applied to aerosol delivery systems using other technologies, i.e., the particular manner in which various aspects of the aerosol delivery system function is not directly related to the underlying principles of the examples described herein.

[0146] To address various challenges and advance the art, this disclosure illustrates, by way of example, various embodiments in which the claimed invention(s) may be practiced. The advantages and features of the present disclosure are merely representative examples of embodiments and are not exhaustive or exclusive of all advantages or features. They are presented solely to aid in the understanding and teaching of the claimed invention(s). The advantages, embodiments, examples, functions, features, structures, and / or other aspects of the present disclosure should not be construed as limiting the disclosure as defined by the claims or the equivalents thereof, and it is to be understood that other embodiments may be utilized and modifications may be made without departing from the scope of the claims. It will be recognized that various embodiments may suitably comprise, consist of, or consist essentially of various combinations of the disclosed elements, components, features, parts, steps, means, etc., other than those specifically described herein, and thus features of the dependent claims may be combined with features of the independent claims in combinations other than those explicitly set forth in the claims. This disclosure may include other inventions that are not currently claimed but may be claimed in the future.

Claims

1. 1. An aerosol delivery device for generating an aerosol from an aerosol-generating material, comprising: at least one heating element positioned adjacent to the aerosol-forming material when the aerosol-forming material is present in the aerosol delivery device; The heating element has a surface configured to increase in temperature when energized, the surface being 145 mm 2 Define the following areas: the surface of the heating element is planar; An aerosol delivery device wherein the surface of the heating element is circular and has a diameter of 7.1 to 9.8 mm.

2. The aerosol delivery device of claim 1, wherein the surface of the heating element configured to increase in temperature when supplied with energy defines an area of ​​40 to 75 mm 2 .

3. An aerosol delivery device as described in claim 1 or 2, wherein the heating element comprises a conductive plate or an electrically insulating substrate on which a resistive path is arranged.

4. An aerosol delivery device as described in any one of claims 1 to 3, wherein the surface of the heating element forms part of the inner surface of a receiving portion for the aerosol product.

5. The aerosol delivery device of any one of claims 1 to 4, wherein the heating element comprises a coil.

6. The aerosol delivery device of any one of claims 1 to 5, wherein the heating element comprises a susceptor.

7. Each is 145 mm 2 7. The aerosol delivery device of claim 1, comprising a plurality of heating elements having surfaces defining the following regions:

8. The aerosol delivery device of claim 7 , wherein the area defined by each of the surfaces of the plurality of heating elements is the same.

9. 9. The aerosol delivery device of claim 7 or 8, comprising no more than 20 heating elements.

10. 10. The aerosol delivery device of claim 7, wherein the heating elements are spaced apart from one another, with the shortest distance between adjacent heating elements being 1.5 to 5 mm.

11. The aerosol delivery device of any one of claims 1 to 10, configured to heat the heating element to a temperature of between 160°C and 350°C.

12. 1. An aerosol delivery system for generating an aerosol from an aerosol-generating material, comprising: an aerosol-generating material; and at least one heating element disposed adjacent to the aerosol-forming material; The heating element has a surface configured to increase in temperature when energized, the surface being 145 mm 2 Define the following areas: the surface of the heating element is planar; An aerosol delivery system wherein the surface of the heating element is circular and has a diameter of 7.1 to 9.8 mm.

13. The surface of the heating element, which is configured to increase in temperature when energized, is between 40 and 75 mm 2 13. The aerosol delivery system of claim 12, defining a region of:

14. An aerosol delivery system as described in claim 12 or 13, wherein the heating element comprises a conductive plate or an electrically insulating substrate in which a resistive path is arranged.

15. An aerosol delivery system as described in any one of claims 12 to 14, wherein the surface of the heating element forms part of the inner surface of a receiving portion for the aerosol product.

16. 16. The aerosol delivery system of any one of claims 12 to 15, wherein the heating element comprises a coil.

17. The aerosol delivery system of any one of claims 12 to 16, wherein the heating element comprises a susceptor.

18. Each is 145 mm 2 18. An aerosol delivery system according to any one of claims 12 to 17, comprising a plurality of heating elements having surfaces defining the following regions:

19. 20. The aerosol delivery system of claim 18, wherein the area defined by each of the surfaces of the plurality of heating elements is the same.

20. 20. The aerosol delivery system of claim 18 or 19, comprising no more than 20 heating elements.

21. 21. The aerosol delivery system of claim 18, 19, or 20, wherein the plurality of heating elements are spaced apart from one another, with the shortest distance between adjacent heating elements being 1.5 to 5 mm.

22. 22. An aerosol delivery system according to any one of claims 12 to 21, wherein the system is configured to heat the heating element to a temperature of between 160°C and 350°C.

23. 23. An aerosol delivery system according to any one of claims 12 to 22, wherein the aerosol-generating material is configured to have a thickness of between 0.05 and 0.4 mm.

24. 24. The aerosol delivery system of any one of claims 12 to 23, wherein the aerosol-forming material is an amorphous solid.

25. 1. A method for generating an aerosol from an aerosol-forming material, comprising: placing an aerosol-generating material near a heating element; heating the heating element to generate an aerosol from the aerosol-forming material; The heating element has a surface configured to increase in temperature when energized, the surface being 145 mm 2 Define the following areas: the surface of the heating element is planar; The method wherein the surface of the heating element is circular and has a diameter of 7.1 to 9.8 mm.

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