Aerosol generation with amorphous solids containing alginate and pectin as gelling agents

The use of alginate and pectin in a specific ratio as a gelling agent addresses processing challenges and enables controlled release of active agents in aerosol-generating devices, enhancing manufacturing efficiency and temperature control.

JP7726880B2Active Publication Date: 2025-08-20NICOVENTURES TRADING LTD
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Patent Information

Application Number
JP2022531383
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2019-11-29
Filing Date
2020-11-27
Publication Date
2025-08-20
Estimated Expiration
2040-11-27

AI Technical Summary

Technical Problem

Existing aerosol-generating devices face challenges in processing gelling agents with high viscosity, which complicates the manufacture of substrates, and there is a need for improved control over the release temperature and timing of active agents in non-combustion smoking articles.

Method used

A combination of alginate and pectin in a specific ratio (1:1 to 10:1) is used as a gelling agent in an amorphous solid aerosol-forming material, which enhances processability and allows for controlled release of active agents at desired temperatures.

Benefits of technology

The alginate-pectin combination improves manufacturing efficiency and enables precise control over the release of active substances, offering a cost-effective and controlled aerosol generation process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides an aerosol-generating material comprising an amorphous solid, the amorphous solid comprising 1 to 60% by weight of a gelling agent, 5 to 80% by weight of an aerosol-forming material, and 10 to 60% by weight of an active agent, the weights being calculated on a dry weight basis, the gelling agent comprising alginate and pectin, and the ratio of alginate to pectin being 1:1 to 10:1.
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Description

Detailed Description of the Invention

[0001] [Technical field] The present invention relates to the generation of aerosols.

[0002] [background] Smoking articles, such as cigarettes and cigars, burn tobacco to produce tobacco smoke during use. Alternatives to these types of articles emit inhalable aerosols or vapors by releasing compounds from a substrate material through heating without combustion. These are sometimes referred to as non-combustion smoking articles or aerosol-generating assemblies.

[0003] One example of such a product is a heating device that releases a compound by heating, but not burning, a solid aerosol-forming material. The solid aerosol-forming material may, in some instances, include tobacco material. The heating volatilizes at least one component of the material, typically forming an inhalable aerosol. These products are sometimes referred to as heat not burn devices, tobacco heating devices, or tobacco heating products. A variety of different configurations are known for volatilizing at least one component of a solid aerosol-forming material.

[0004] Another example is an e-cigarette / tobacco heating product hybrid device, also known as an e-cigarette hybrid device. These hybrid devices include a liquid source (which may or may not contain nicotine) that is vaporized upon heating to produce an inhalable vapor or aerosol. The device further includes a solid aerosol-forming material (which may or may not contain tobacco material), the components of which are entrained in the inhalable vapor or aerosol to produce an inhalation vehicle.

[0005] [overview] According to a first aspect of the present invention, there is provided an aerosol-forming material comprising an amorphous solid, the amorphous solid comprising: 1 to 60 wt. % of a gelling agent; 5 to 80 weight percent of an aerosol-forming material; 10 to 60% by weight of an active substance; wherein these weights are calculated on a dry weight basis; The gelling agent comprises alginate and pectin, with the ratio of alginate to pectin being 1:1 to 10:1.

[0006] According to a second aspect of the present invention, there is provided a substrate comprising an aerosol-forming material as described herein and a support on which the aerosol-forming material is disposed.

[0007] According to a third aspect of the present invention, there is provided an article for use in a non-combustion aerosol delivery device, the article comprising an aerosol-generating material as described herein and / or a substrate as described herein.

[0008] According to a further aspect of the present invention, there is provided a non-combustion aerosol delivery system comprising an article as described herein and a non-combustion aerosol delivery device configured to generate an aerosol from the article when the article is used with the non-combustion aerosol delivery device.

[0009] According to a further aspect of the present invention, there is provided a method of making the aerosol-forming materials described herein.

[0010] According to a further aspect of the present invention, there is provided a method of generating an aerosol using the non-combustion aerosol delivery system described herein. The method includes heating an aerosol-generating material. In some embodiments, the method includes heating the aerosol-generating material to a temperature of 350°C or less. In some embodiments, the method includes heating the aerosol-generating material to a temperature of about 220°C to about 280°C.

[0011] According to a further aspect of the present invention, there is provided a use of the non-combustion aerosol delivery system described herein.

[0012] Further features and advantages of the present invention will become apparent from the following description of preferred embodiments of the invention, which description is given by way of example only with reference to the accompanying drawings, in which: [Brief explanation of the drawings]

[0013] [Figure 1] 1 is a cross-sectional view of an example of an aerosol product. [Figure 2] FIG. 2 is a perspective view of the article of FIG. 1. [Figure 3] 1 is a cross-sectional elevation view of an example aerosol product. FIG. [Figure 4] FIG. 4 is a perspective view of the article of FIG. 3. [Figure 5] FIG. 1 is a perspective view of an example of an aerosol generation assembly. [Figure 6] FIG. 1 is a cross-sectional view of an example of an aerosol generation assembly. [Figure 7] FIG. 1 is a perspective view of an example of an aerosol generation assembly. [Figure 8] FIG. 1 shows a thermogravimetric analysis-mass spectrum of an example aerosol-forming material. [Figure 9] FIG. 1 illustrates sensory data for an example aerosol-forming material.

[0014] [Detailed explanation] The aerosol-generating materials described herein are materials capable of generating an aerosol when energized, for example, by heating, irradiation, or any other method. The aerosol-generating material may be, for example, in the form of a solid, liquid, or gel, and may or may not contain nicotine and / or flavorings. The aerosol-generating material comprises an "amorphous solid." An amorphous solid may also be referred to as a "monolithic solid" (i.e., non-fibrous). In some embodiments, the amorphous solid may be a dry gel. An amorphous solid is a solid material that can retain some fluid, e.g., a liquid, within it. In some embodiments, the aerosol-generating material may comprise, for example, about 50%, 60%, or 70% by weight of an amorphous solid to about 90%, 95%, or 100% by weight of an amorphous solid. In some examples, the aerosol-generating material consists of an amorphous solid.

[0015] As described hereinabove, the present invention provides an aerosol-forming material comprising an amorphous solid, the amorphous solid comprising: 1 to 60 wt. % of a gelling agent; 5 to 80 weight percent of an aerosol-forming material; 10 to 60% by weight of an active substance; wherein these weights are calculated on a dry weight basis; The gelling agent comprises alginate and pectin, the ratio of alginate to pectin being 1:1 to 10:1, the ratio of alginate to pectin being expressed as a dry weight ratio (w / w).

[0016] The inventors have found that providing a gelling agent comprising alginate and pectin in such a ratio can provide an improved substrate. Without wishing to be bound by theory, it is believed that the combination of alginate and pectin can have a synergistic effect on binding in the amorphous solid. Furthermore, combining alginate and pectin in a specific ratio can affect the temperature at which the active agent is released from the amorphous solid when heated and / or the point in time during a use session at which the active agent is released.

[0017] Providing a gelling agent that comprises more alginate than pectin can be advantageous due to lower material costs. However, a gelling agent that comprises only alginate can have a high viscosity, which means that the gelling agent is difficult to process during the manufacture of a substrate. The inventors have discovered that by combining alginate with pectin, and particularly by combining alginate with pectin in which the alginate is present as a minority portion, the viscosity of the gelling agent can be made easier to process during the manufacture of a substrate.

[0018] The ratio of alginate to pectin is 1:1 to 10:1. In some embodiments, the ratio of alginate to pectin is greater than 1:1. That is, in some embodiments, alginate is present in an amount greater than the amount of pectin. In some embodiments, the ratio of alginate to pectin is 2:1 to 8:1, or 3:1 to 8:1, or 3:1 to 6:1, or approximately 4:1. In some embodiments, the ratio of alginate to pectin is 5:1 to 7:1.

[0019] In some embodiments, the alginate is included in the gelling agent in an amount of 15-40% by weight of the amorphous solid. That is, the amorphous solid comprises alginate in an amount of 15-40% by weight based on the dry weight of the amorphous solid. In some embodiments, the amorphous solid comprises alginate in an amount of 10-35% by weight, or 15-30% by weight.

[0020] In some embodiments, the pectin is included in the gelling agent in an amount of 3-10% by weight of the amorphous solids, i.e., the amorphous solids comprise 3-10% pectin by weight of the dry weight of the amorphous solids. In some embodiments, the amorphous solids comprise pectin in an amount of 3-8% or 4%-6% by weight.

[0021] Suitably, the amorphous solid may comprise from about 1%, 5%, 10%, 15%, 20%, or 25% to about 60%, 50%, 45%, 40%, 35%, 30%, or 27% by weight of gelling agent (all calculated on a dry weight basis). For example, the amorphous solid may comprise 1-50%, 5-40%, or 25-35% by weight of gelling agent.

[0022] In some embodiments, the gelling agent further comprises a hydrocolloid other than those mentioned above. In some embodiments, the gelling agent further comprises one or more compounds selected from the group including starch (and derivatives), cellulose (and derivatives, e.g., methylcellulose, hydroxypropylcellulose, and carboxymethylcellulose (CMC)), gums, silica or silicone compounds, clays, polyvinyl alcohol, and combinations thereof. For example, in some embodiments, the gelling agent further comprises one or more of hydroxyethyl cellulose, hydroxypropyl cellulose, carboxymethyl cellulose, pullulan, xanthan gum, guar gum, carrageenan, agarose, acacia gum, fumed silica, PDMS, sodium silicate, kaolin, and polyvinyl alcohol.

[0023] The gelling agent may further comprise one or more compounds selected from cellulosic gelling agents, non-cellulosic gelling agents, guar gum, acacia gum, and combinations thereof.

[0024] In some embodiments, the cellulosic gelling agent is selected from the group consisting of hydroxymethyl cellulose, hydroxyethyl cellulose, hydroxypropyl cellulose, carboxymethyl cellulose (CMC), hydroxypropyl methyl cellulose (HPMC), methyl cellulose, ethyl cellulose, cellulose acetate (CA), cellulose acetate butyrate (CAB), cellulose acetate propionate (CAP), and combinations thereof.

[0025] In some embodiments, the gelling agent further comprises one or more of hydroxyethyl cellulose, hydroxypropyl cellulose, hydroxypropyl methylcellulose (HPMC), carboxymethyl cellulose, guar gum, or acacia gum.

[0026] In some embodiments, the gelling agent further comprises one or more non-cellulosic gelling agents, including, but not limited to, agar, xanthan gum, gum arabic, guar gum, locust bean gum, carrageenan, starch, and combinations thereof. In a preferred embodiment, the non-cellulosic gelling agent further comprises agar.

[0027] The aerosol-generating material may comprise one or more active agents, one or more aerosol-forming materials, and optionally one or more other functional ingredients. In some examples, the amorphous solid may comprise from about 1%, 5%, 10%, 15%, 20%, or 25% to about 70%, 50%, 45%, or 40% by weight (calculated on a dry weight basis) of the active agent.

[0028] In certain embodiments, the amorphous solid comprises 10-60%, 40-60%, or 45-55% by weight of the active material. In those embodiments, the active material may consist essentially of menthol, or may comprise menthol in an amount of at least 90% by weight of the active material, or at least 95% by weight of the active material.

[0029] The active substance may comprise a physiologically and / or olfactorily active substance that is included in the aerosol-generating material to achieve a physiological and / or olfactory response. The active substance may be selected from, for example, functional foods, nootropics, and psychoactive substances. The active substance may be naturally occurring or synthetically derived. The active substance may comprise, for example, nicotine, caffeine, taurine, theine, vitamins such as B6, B12, or C, melatonin, cannabinoids, or components, derivatives, or combinations thereof. In some embodiments, the active substance comprises nicotine. In some embodiments, the active substance comprises caffeine, melatonin, or vitamin B12. The active substance may comprise a component, derivative, or extract of another botanical substance, such as tobacco or cannabis, such as a cannabinoid or terpene. In some embodiments, the active substance is a physiologically active substance and may be selected from nicotine, nicotine salts (e.g., nicotine ditartrate / nicotine bitartrate), nicotine-free tobacco substitutes, other alkaloids such as caffeine, cannabinoids, or mixtures thereof. Cannabinoids are a class of natural or synthetic compounds that act on intracellular cannabinoid receptors (i.e., CB1 and CB2) that inhibit neurotransmitter release in the brain. Two of the most important cannabinoids are tetrahydrocannabinol (THC) and cannabidiol (CBD). Cannabinoids can be found naturally in plants such as cannabis (phytocannabinoids), from animals (endocannabinoids), or artificially produced (synthetic cannabinoids). Cannabinoids are cyclic molecules that exhibit certain properties, such as the ability to easily cross the blood-brain barrier, low toxicity, and few side effects. Cannabis species exhibit at least 85 different phytocannabinoids, which are divided into several subcategories. These subclasses include cannabigerol, cannabichromene, cannabidiol, tetrahydrocannabinol, cannabinol and cannabinodiol, and other cannabinoids.Cannabinoids found in cannabis include, but are not limited to, cannabigerol (CBG), cannabichromene (CBC), cannabidiol (CBD), tetrahydrocannabinol (THC), cannabinol (CBN), and cannabinodiol (CBDL), cannabicyclol (CBL), cannabivarin (CBV), tetrahydrocannabivarin (THCV), cannabidivarin (CBDV), cannabichromevarin (CBCV), cannabigerovarin (CBGV), cannabigerol monomethyl ether (CBGM), cannabinerolic acid, cannabidiolic acid (CBDA), cannabinol propyl variant (CBNV), cannabiditriol (CBO), tetrahydrocannabinolic acid (THCA), and tetrahydrocannabivarinic acid (THCV A).

[0030] In some embodiments, the active is an olfactory active and may be selected from "flavors" and / or "flavorings" that can be used to create a desired taste, aroma, or other somatic sensation in products intended for adult consumers, where local regulations permit. In some instances, such ingredients may be referred to as flavors, flavorings, cooling agents, heating agents, or sweetening agents. They may be 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, cinnamon, turmeric, Indian spices, Asian spices, herbs, wintergreen, cherry, berry, red berry, cranberry, peach, apple, orange, mango, clementine, lemon, lime, tropical fruit, papaya, rhubarb, grape, durian, dragon fruit, cucumber, blueberry, mulberry, citrus fruit, Drambuie, bourbon, Scotch, whiskey, gin, tequila, rum, spearmint, peppermint, lavender, aloe vera, cardamom, celery, cascarilla, nutmeg, sandalwood, bergamot, geranium, kat (k) hat, naswar, betel nut, shisha, pineapple, 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, cocoa, lemongrass, rooibos, flax , ginkgo, hazel, hibiscus, laurel, yerba mate, orange peel, rose, tea (green tea, black tea, etc.), thyme, juniper, elderflower, basil, bay leaf, cumin, oregano, paprika, rosemary, saffron, lemon peel, mint, shiso, curcuma, cilantro, myrtle, black currant, valerian, pimento, mace, Damian, 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, sugars and / or sugar substitutes (e.g., sucralose, acesulfame potassium, aspartame, saccharin, cyclamate, lactose, sucrose, glucose, fructose, sorbitol, or mannitol), and 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.

[0031] In some embodiments, the flavoring agent comprises menthol, spearmint, and / or peppermint. In some embodiments, the flavoring agent comprises cucumber, blueberry, citrus fruit, and / or red berry flavoring ingredients. In some embodiments, the flavoring agent comprises eugenol. In some embodiments, the flavoring agent comprises flavoring ingredients extracted from tobacco. In some embodiments, the flavoring agent comprises flavoring ingredients extracted from cannabis. In some embodiments, the flavoring agent may comprise 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. A suitable heating agent may be, but is not limited to, vanillyl ethyl ether, and a suitable cooling agent may be, but is not limited to, eucalyptol or WS-3.

[0032] The term botanical material includes any material derived from a plant, including, but not limited to, extracts, leaves, bark, fiber, stems, roots, seeds, flowers, fruit, pollen, husks, peels, etc. Alternatively, the material may comprise active compounds that are naturally present in the plant material or that are 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 botanical ingredients include tobacco, eucalyptus, star anise, hemp, cacao, cannabis, fennel, lemongrass, peppermint, spearmint, rooibos, chamomile, flax, ginger, ginkgo biloba extract, hazel, hibiscus, bay leaf, licorice, matcha, yerba mate, orange peel, papaya, rose, sage, tea (green tea, black tea, etc.), thyme, cloves, cinnamon, coffee, aniseed, basil, bay leaf, cardamom, coriander, cumin, nutmeg, oregano, paprika, rosemary, saffron, and 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: Mentha arvensis, 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 cordifolia), 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 botanical material is selected from eucalyptus, star anise, cacao, and hemp. In some embodiments, the plant material is selected from rooibos and fennel.

[0033] In some embodiments, the active agent comprises one or more cannabinoid compounds selected from the group consisting of cannabidiol (CBD), tetrahydrocannabinol (THC), tetrahydrocannabinolic acid (THCA), cannabidiolic acid (CBDA), cannabinol (CBN), cannabigerol (CBG), cannabichromene (CBC), cannabicyclol (CBL), cannabivarin (CBV), tetrahydrocannabivarin (THCV), cannabidivarin (CBDV), cannabichromevarin (CBCV), cannabigerovarin (CBGV), cannabigerol monomethyl ether (CBGM), and cannabielsoin (CBE), cannabicitran (CBT).

[0034] The active substance may comprise one or more cannabinoid compounds selected from the group consisting of cannabidiol (CBD) and THC (tetrahydrocannabinol).

[0035] The active substance may comprise cannabidiol (CBD).

[0036] The active substances may comprise nicotine and cannabidiol (CBD).

[0037] The active substances may comprise nicotine, cannabidiol (CBD), and THC (tetrahydrocannabinol).

[0038] The aerosol-generating material or the amorphous solid may comprise 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 alpha-hydroxy acid, a carboxylic acid, a dicarboxylic acid, a tricarboxylic acid, and a keto acid. In some such embodiments, the acid may be an alpha-keto acid.

[0039] 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.

[0040] 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.

[0041] The inclusion of an acid is particularly preferred in embodiments in which the aerosol-forming material or amorphous solid comprises nicotine. In such embodiments, the presence of an acid can stabilize dissolved species in the slurry from which the aerosol-forming material or amorphous solid 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.

[0042] In certain embodiments, the aerosol-forming material or amorphous solid comprises a gelling agent, including a cellulosic and / or non-cellulosic gelling agent, an active agent, and an acid.

[0043] The amorphous solid comprises 5 to 80% by weight of the aerosol-forming material, hi some embodiments, the amorphous solid comprises 10 to 30% by weight of the aerosol-forming material, or 15 to 25% by weight of the aerosol-forming material.

[0044] In some embodiments, the aerosol-forming material may comprise one or more of glycerin, glycerol, propylene glycol, diethylene glycol, triethylene glycol, tetraethylene glycol, 1,3-butylene glycol, erythritol, meso-erythritol, ethyl vanillate, ethyl laurate, diethyl suberate, triethyl citrate, triacetin, diacetin mixtures, benzyl benzoate, benzyl phenylacetate, tributyrin, lauryl acetate, lauric acid, myristic acid, and propylene carbonate.

[0045] In some embodiments, aerosol formation material comprises one or more polyhydric alcohols, such as propylene glycol, triethylene glycol, 1,3-butanediol, and glycerin, esters of polyhydric alcohols, such as glycerol mono-, di-, or triacetate, and / or aliphatic esters of mono-, di-, or polycarboxylic acids, such as dimethyl dodecanedioate and dimethyl tetradecanedioate.

[0046] The amorphous solid may have any suitable water content, for example, from 1% to 15% by weight. Preferably, the water content of the amorphous solid may be from about 5%, 7%, or 9% by weight to about 15%, 13%, or 11% by weight (WWB). The water content of the amorphous solid may be determined, for example, by Karl-Fischer titration or gas chromatography with a thermal conductivity detector (GC-TCD).

[0047] In some instances, the amorphous solid is 20 to 35 wt. % of a gelling agent; 15 to 25 weight percent of an aerosol-forming material; 45-55% by weight of an active material, the active material consisting essentially of menthol; wherein these weights are calculated on a dry weight basis; The ratio of alginate to pectin in the gelling agent is 5:1 to 7:1.

[0048] The amorphous solid may comprise a colorant. The addition of a colorant can change the visual appearance of the amorphous solid. The presence of a colorant in the amorphous solid can enhance the visual appearance of the amorphous solid and the aerosol-forming material. By adding a colorant to the amorphous solid, the amorphous solid can match the color of other components of the aerosol-forming material or other components of an article comprising the amorphous solid.

[0049] Various colorants 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 colorants may be used, such as natural or synthetic dyes, food-grade colorants, and pharmaceutical-grade colorants. In certain embodiments, the colorant is caramel, which may impart a brown appearance to the amorphous solid. In such embodiments, the color of the amorphous solid may be similar to the color of other components (e.g., tobacco material) in the aerosol-forming material comprising the amorphous solid. In some embodiments, the addition of a colorant to the amorphous solid renders the amorphous solid visually indistinguishable from other components in the aerosol-forming material.

[0050] The colorant may be incorporated during the formation of the amorphous solid (e.g., when forming a slurry with the materials that will form the amorphous solid), or the colorant may be applied to the amorphous solid after its formation (e.g., by spraying the colorant onto the amorphous solid).

[0051] The aerosolizable or non-aerosol-forming material may be present on or in a support to form a substrate. The support functions as a support onto which the amorphous solid layer is formed, facilitating manufacturing. The support may also provide rigidity to the amorphous solid layer, facilitating handling.

[0052] The support may be any suitable material that can be used to support an amorphous solid. In some examples, the support may be formed from a material selected from metal foil, paper, carbon paper, greaseproof paper, ceramic, carbon allotropes (e.g., graphite and graphene), plastic, cardboard, wood, or a combination thereof. In some examples, the support may comprise or consist of tobacco material (such as a sheet of reconstituted tobacco). In some examples, the support may be formed from a material selected from metal foil, paper, cardboard, wood, or a combination thereof. In some examples, the support comprises paper. In some examples, the support itself is a laminated structure comprising multiple layers of materials selected from the foregoing list. In some examples, the support may also function as a flavor support. For example, the support may be impregnated with flavors or tobacco extract.

[0053] Suitably, the thickness of the support layer may range from about 10 μm, 15 μm, 17 μm, 20 μm, 23 μm, 25 μm, 50 μm, 75 μm or 0.1 mm to about 2.5 mm, 2.0 mm, 1.5 mm, 1.0 mm or 0.5 mm. The support may comprise two or more layers, and the thicknesses referred to herein refer to the combined thickness of these layers.

[0054] In some instances, the support may be magnetic. This feature may be used to secure the support to an assembly during use or to generate a particular amorphous solid form. In some instances, the aerosol-generating substrate may include one or more magnets that can be used to secure the substrate to an induction heater during use.

[0055] In some instances, the support may be substantially or completely impermeable to gases and / or aerosols. This prevents the aerosol or gas from passing through the support layer, thereby controlling the flow and ensuring delivery of the aerosol or gas to the user. This may also be utilized to prevent condensation or other deposition of the gas / aerosol during use, for example, on the surface of a heater provided within the aerosol generation assembly. In this way, consumption efficiency and hygiene may be improved in some instances.

[0056] In some instances, the surface of the support that abuts the amorphous solid may be porous. For example, in one instance, the support comprises paper. The inventors have found that porous supports, such as paper, are particularly suited to the present invention, with the porous (e.g., paper) layer abutting the amorphous solid layer and forming a strong bond. The amorphous solid is formed by drying the gel, and, without being limited by theory, it is believed that the gel-forming slurry partially impregnates the porous support (e.g., paper), such that the support is partially bonded to the gel as the gel cures and forms crosslinks. This results in a strong bond between the gel and the support (and between the dried gel and the support).

[0057] In addition, surface roughness can contribute to the strength of the bond between the amorphous material and the support. The inventors have found that the roughness of the paper (the surface that abuts the support) can preferably be in the range of 50 to 1000 Bekk seconds, preferably 50 to 150 Bekk seconds, preferably 100 Bekk seconds (measured over an air pressure range of 50.66 to 48.00 kPa). (The Bekk smoothness tester is an instrument used to measure the smoothness of a paper surface. In this tester, air at a specific pressure is forced between a smooth glass surface and a paper sample. The time (in seconds) for a fixed volume of air to penetrate between these surfaces is the "Bekk smoothness.")

[0058] Conversely, the surface of the support that does not face the amorphous solid may be placed in contact with the heater, and the smoother surface may provide more efficient heat transfer. Thus, in some instances, the support is positioned to have a rougher side that abuts the amorphous material and a smoother side that does not face the amorphous material.

[0059] In one particular example, the support may be a paper-backed foil, where the paper layer abuts the amorphous solid layer, providing the properties discussed in the previous paragraphs. The foil backing is substantially impermeable and provides aerosol flow path control. The metal foil backing may also act to transfer heat to the amorphous solid.

[0060] In another example, a foil layer of a paper-backed foil abuts the amorphous solid, and the foil is substantially impermeable to prevent moisture provided in the amorphous solid from being absorbed into the paper, which could weaken the structural integrity of the paper.

[0061] In some examples, the support is formed from or comprises a metal foil (e.g., aluminum foil). A metal support may allow for better transfer of thermal energy to the amorphous solid. Additionally, or alternatively, the metal foil may function as a susceptor in an induction heating system. In certain embodiments, the support comprises a metal foil layer and a support layer (e.g., cardboard). In these embodiments, the metal foil layer may have a thickness of less than 20 μm, for example, from about 1 μm to about 10 μm, preferably about 5 μm.

[0062] In some examples, the support may have a thickness of from about 0.017 mm to about 2.0 mm, preferably from about 0.02 mm, 0.05 mm, or 0.1 mm to about 1.5 mm, 1.0 mm, or 0.5 mm.

[0063] In some instances, the aerosol-generating substrate may comprise an embedded heating means, such as a resistive or inductive heating element. For example, the heating means may be embedded in the amorphous solid.

[0064] The amorphous solid may be made from a gel, and the gel may further comprise a solvent contained in an amount of 0.1 to 50 wt %. However, the present inventors have found that the inclusion of a solvent in which the fragrance can dissolve reduces gel stability, and the fragrance may leave the gel and crystallize. Therefore, in some examples, the gel does not contain a solvent in which the fragrance can dissolve.

[0065] In some embodiments, the amorphous solid comprises less than 60% by weight of filler, for example, between 1% and 60% by weight, or between 5% and 50% by weight, or between 5% and 30% by weight, or between 10% and 20% by weight of filler.

[0066] In other embodiments, the amorphous solid comprises less than 20% by weight of filler, preferably less than 10% by weight or less than 5% by weight, hi some instances, the amorphous solid comprises less than 1% by weight of filler, and in some instances, no filler.

[0067] Aspects of the present invention relate to articles. A consumable is an article intended to be consumed, in part or in whole, during use by a user. The consumable may comprise or consist of an aerosol-forming material. The consumable may also comprise one or more other elements, such as a filter or an aerosol-modifying substance. The consumable may also comprise a heating element that generates heat during use to cause aerosol generation from the aerosol-forming material. The heating element may, for example, comprise a combustible material or a susceptor that can be heated by passing it through a varying magnetic field.

[0068] The article of the present invention may be provided in any suitable shape. In some examples, the article is provided as a rod (e.g., substantially cylindrical). An article provided as a rod may include the aerosol-generating material as a shredded sheet, optionally blended with cut tobacco. Alternatively, or in addition, an article provided as a rod may include the aerosol-generating material as a sheet, e.g., a sheet surrounding a rod of aerosol-generating material (e.g., tobacco). In some embodiments, the article comprises a layer portion of aerosol-generating material disposed on a carrier. In examples, the article may have at least one substantially flat surface.

[0069] The susceptor is a material that can be heated by passing it through a varying magnetic field, such as an alternating magnetic field. The heating material can be an electrically conductive material, in which case passing it through a varying magnetic field causes induction heating of the heating material. The heating material can be a magnetic material, in which case passing it through a varying magnetic field causes magnetic hysteresis heating of the heating material. The heating material can be both electrically conductive and magnetic, in which case the heating material can be heated by both heating mechanisms.

[0070] Induction heating is a process in which an electrically conductive object is heated by passing the object through a varying magnetic field. This process is described by Faraday's law of electromagnetic induction and Ohm's law. An induction heater may include an electromagnet and a device for passing a varying current, such as an alternating current, through the electromagnet. When the electromagnet and the object to be heated are appropriately positioned relative to each other so that the resulting varying magnetic field generated by the electromagnet passes through 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 in the object, their flow against the object's electrical resistance causes the object to heat. This process is called Joule, Ohmic, or resistive heating.

[0071] In some embodiments, the susceptor is in the form of a closed circuit. When the susceptor is in the form of a closed circuit, the magnetic coupling between the susceptor and the electromagnet during use is strengthened, resulting in stronger or improved Joule heating.

[0072] Magnetic hysteresis heating is a process in which an object made of a magnetic material is heated by passing the object through a varying magnetic field. Magnetic materials can be thought of as comprising many atomic-scale magnets, or magnetic dipoles. When a magnetic field passes through such a material, the magnetic dipoles align along the field. Thus, when a varying magnetic field, such as an alternating magnetic field generated by an electromagnet, passes through a magnetic material, the orientation of the magnetic dipoles changes with the variation in the applied field. This reorientation of the magnetic dipoles causes the generation of heat in the magnetic material.

[0073] When an object is both electrically conductive and magnetic, passing the object through a varying magnetic field can cause both Joule heating and magnetic hysteresis heating in the object. Furthermore, the use of magnetic materials can strengthen the magnetic field, which can intensify Joule heating.

[0074] In each of the above processes, when heat is generated within the object itself rather than by an external heat source via thermal conduction, rapid temperature rise and more uniform heat distribution in the object can be achieved, particularly by selecting the appropriate object material and geometry, and the appropriate varying magnetic field strength and orientation relative to the object. Furthermore, induction heating and magnetic hysteresis heating do not require physical contact between the source of the varying magnetic field and the object, which can allow for greater design freedom and control over the heating profile and reduce costs.

[0075] When present, the filler may comprise one or more inorganic filler materials, such as calcium carbonate, perlite, vermiculite, diatomaceous earth, colloidal silica, magnesium oxide, magnesium sulfate, magnesium carbonate, and suitable inorganic adsorbents (such as molecular sieves). The filler may comprise one or more organic filler materials, such as wood pulp, cellulose, and cellulose derivatives. In some instances, the amorphous solid does not comprise an inorganic filler material. In certain instances, the amorphous solid does not comprise calcium carbonate, such as chalk.

[0076] In some instances, the aerosol-forming material does not comprise an inorganic filler material, hi particular instances, the aerosol-forming material does not comprise calcium carbonate, such as chalk.

[0077] In certain embodiments that include a filler, the filler is fibrous. For example, the filler may be a fibrous organic filler material, such as wood pulp, hemp fiber, cellulose, or a cellulose derivative. Without wishing to be bound by theory, it is believed that including a fibrous filler in an amorphous solid may increase the tensile strength of the material. This may be particularly advantageous in instances where the amorphous solid is provided as a sheet, e.g., when the amorphous solid sheet surrounds a rod of aerosol-forming material.

[0078] In some embodiments, the amorphous solid does not comprise tobacco fiber. In certain embodiments, the amorphous solid does not comprise fibrous material.

[0079] In some embodiments, the aerosol-forming material does not comprise tobacco fiber. In certain embodiments, the aerosol-forming material does not comprise fibrous material.

[0080] In some embodiments, the aerosol-generating substrate does not comprise tobacco fibers. In certain embodiments, the aerosol-generating substrate does not comprise fibrous material.

[0081] In some embodiments, the aerosol product does not comprise tobacco fiber. In certain embodiments, the aerosol product does not comprise fibrous material.

[0082] In some instances, the amorphous solid may consist essentially of or consist of a gelling agent, an aerosol-forming agent, a tobacco material and / or a nicotine source, water, and optionally a flavoring agent.

[0083] The aerosol-forming material comprising an amorphous solid may have any suitable areal density, for example, 30 g / m 2 ~120g / m 2 In some embodiments, the aerosol-forming material may have a density of about 30 to 70 g / m 2 , or about 40 to 60 g / m 2 In some embodiments, the amorphous solid may have an areal density of about 80-120 g / m 2 , or approximately 70 to 110 g / m 2 , or in particular about 90 to 110 g / m 2 Such areal densities may be particularly suitable when the aerosol-forming material is included in the aerosol product article / assembly in sheet form or as chopped sheets (discussed further below).

[0084] Aspects of the present invention provide a non-combustion aerosol delivery system comprising an article according to those described herein and a non-combustion aerosol delivery device comprising a heater configured to heat but not combust the aerosol product article. The non-combustion aerosol delivery system may also be referred to as an aerosol generation assembly. The non-combustion aerosol delivery device may also be referred to as an aerosol generation apparatus.

[0085] The heater 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 structure comprising one or more susceptors, which, in use, may form a chamber into which an article comprising the aerosol-generating material is inserted or otherwise disposed. Alternatively, or in addition, the one or more susceptors may be disposed within the aerosol-generating material. Other heating structures may be used.

[0086] In some cases, during use, the heater may heat the aerosol-forming material to temperatures up to 350°C, e.g., 120°C to 350°C, without burning the aerosol-forming material. In some cases, the heater may heat the aerosol-forming material to temperatures between 140°C and 250°C, or between 220°C and 280°C, without burning the aerosol-forming material. In some cases, during use, substantially the entire amorphous solid is less than about 4 mm, 3 mm, 2 mm, or 1 mm from the heater. In some cases, the solid is positioned between about 0.010 mm and 2.0 mm, preferably between about 0.02 mm and 1.0 mm, and preferably between 0.1 mm and 0.5 mm, from the heater. These minimum distances may, in some cases, reflect the thickness of the support supporting the amorphous solid. In some cases, the surface of the amorphous solid may be in direct contact with the heater.

[0087] The heater is configured to heat but not burn the aerosol product, and thus the aerosol-generating material. In some examples, the heater may be a thin-film electrical resistance heater. In other examples, the heater may comprise an induction heater or other heater. The heater may be a combustible heat source or a chemical heat source that undergoes an exothermic reaction to generate heat during use. The aerosol generating assembly may include multiple heaters. These heaters may be powered by a battery.

[0088] The aerosol product may further comprise a cooling element and / or a filter. If a cooling element is present, the cooling element may act or function to cool the gaseous or aerosol components. In some instances, the cooling element may act to cool the gaseous components so that they condense to form the aerosol. The cooling element may also act to keep hot portions of the non-combustion aerosol delivery device away from the user. If a filter is present, the filter may comprise any suitable filter known in the art, such as a cellulose acetate plug.

[0089] In some examples, the aerosol generating assembly may be a heat-not-burn device. That is, the aerosol generating assembly may include a solid tobacco-containing material (and not a liquid aerosol-forming material). In some examples, the amorphous solid may comprise a tobacco material. A heat-not-burn device is disclosed in WO 2015 / 062983 A2, the entirety of which is incorporated herein by reference.

[0090] In some examples, the aerosol generating assembly may be an e-cigarette hybrid device. That is, the aerosol generating assembly may include a solid aerosol-generating material and a liquid aerosol-generating material. In some examples, the amorphous solid may comprise nicotine. In some examples, the amorphous solid may comprise a tobacco material. In some examples, the amorphous solid may comprise the tobacco material and a separate nicotine source. These separate aerosol-generating materials may be heated by separate heaters or the same heater, and in some examples, the downstream aerosol-generating material may be heated by the hot aerosol generated from the upstream aerosol-generating material. An e-cigarette hybrid device is disclosed in WO 2016 / 135331 A1, the entirety of which is incorporated herein by reference.

[0091] The aerosol product article (sometimes referred to herein as an article, cartridge, or consumable) may be adapted for use in a THP, an e-cigarette hybrid device, or another aerosol-generating device. In some examples, the article may further comprise a filter and / or a cooling element (as described above). In some examples, the aerosol product article may be surrounded by a packaging material, such as paper.

[0092] The aerosol product may further include vent holes. These may be located in the sidewalls of the product. In some instances, the vent holes may be located in the filter and / or cooling element. These holes allow cool air to be drawn into the product during use, where it can mix with the heated volatile components, thereby cooling the aerosol.

[0093] Ventilation promotes the production of visible heated volatiles from the article when the article is heated during use. The heated volatiles are made visible by cooling the heated volatiles such that supersaturation of the heated volatiles occurs. The heated volatiles then undergo droplet formation (also known as nucleation), and ultimately, the size of the aerosol particles of the heated volatiles increases due to further condensation of the heated volatiles and coalescence of newly formed droplets from the heated volatiles.

[0094] In some instances, the ratio of cool air to the sum of heated volatiles and cool air (known as the ventilation ratio) is at least 15%. A ventilation ratio of 15% allows the heated volatiles to be visualized by the methods described above. The visibility of the heated volatiles allows the user to discern that volatiles are being produced, enhancing the sensory experience of the smoking experience.

[0095] In another example, the ventilation ratio is between 50% and 85% to further cool the heated volatile components. In some examples, the ventilation ratio may be at least 60% or 65%.

[0096] In some examples, the aerosol-generating material may be included in the article / assembly in sheet form. In some examples, the aerosol-generating material may be included as a flat sheet. In some examples, the aerosol-generating material may be included as a flat sheet, a pleated or gathered sheet, a corrugated sheet, or a rolled sheet (i.e., in the form of a tube). In some such examples, the amorphous solid of these embodiments may be included in the aerosol product article / assembly as a sheet, for example, as a sheet surrounding a rod of aerosol-generating material (e.g., tobacco). In other examples, the aerosol-generating material may be formed as a sheet and then shredded and incorporated into the article. In some examples, the shredded sheet may be mixed with cut rag tobacco and incorporated into the article.

[0097] In some examples, the amorphous solid in sheet form may have a tensile strength of about 200 N / m to about 900 N / m. In some examples, such as when the amorphous solid does not include a filler, the amorphous solid may have a tensile strength of 200 N / m to 400 N / m, or 200 N / m to 300 N / m, or about 250 N / m. Such tensile strengths may be particularly suitable for embodiments in which the aerosol-forming material is formed as a sheet, then shredded, and incorporated into an aerosol product. In some examples, such as when the amorphous solid includes a filler, the amorphous solid may have a tensile strength of 600 N / m to 900 N / m, or 700 N / m to 900 N / m, or about 800 N / m. Such tensile strengths may be particularly suitable for embodiments in which the aerosol-forming material is included in an aerosol product / assembly as a rolled sheet, preferably in the form of a tube.

[0098] The assembly may comprise an integrated aerosol production article and heater, or may comprise a heating device into which the article is inserted during use.

[0099] 1 and 2, there is shown a partially cutaway cross-sectional view and a perspective view of an example aerosol production article 101. Article 101 is adapted for use with a device having a power source and a heater. This embodiment of article 101 is particularly suited for use with device 51, described below, and shown in FIGS. 5-7. In use, article 101 can be removably inserted into device 51 at insertion point 20, shown in FIG. 5.

[0100] The example article 101 is in the form of a generally cylindrical rod including a body of aerosol-generating material 103 and a filter assembly 105 in the form of a rod. The aerosol-generating material comprises an amorphous solid material as described herein. In some embodiments, it may be included in sheet form. In some embodiments, it may be included in chopped sheet form. In some embodiments, the aerosol-generating material as described herein may be incorporated in both sheet and chopped form.

[0101] The filter assembly 105 includes three segments: a cooling segment 107, a filter segment 109, and an oral end segment 111. The article 101 has a first end 113, also known as the oral or proximal end, and a second end 115, also known as the distal end. The body of aerosol-generating material 103 is disposed at the distal end 115 of the article 101. In one example, the cooling segment 107 is disposed adjacent to the body of aerosol-generating material 103, between the body of aerosol-generating material 103 and the filter segment 109, such that the cooling segment 107 is in abutting relationship with the aerosol-generating material 103 and the filter segment 109. In another example, there may be separations between the body of aerosol-generating material 103 and the cooling segment 107 and between the body of aerosol-generating material 103 and the filter segment 109. The filter segment 109 is disposed between the cooling segment 107 and the oral end segment 111. Oral end segment 111 is disposed at proximal end 113 of article 101 and is adjacent to filter segment 109. In one example, filter segment 109 is in an abutting relationship with oral end segment 111. In one embodiment, the overall length of filter assembly 105 is between 37 mm and 45 mm, and more preferably, the overall length of filter assembly 105 is 41 mm.

[0102] In one example, the rod of aerosol-forming material 103 has a length between 34 mm and 50 mm, preferably between 38 mm and 46 mm, and preferably 42 mm.

[0103] In one example, the overall length of the article 101 is between 71 mm and 95 mm, preferably between 79 mm and 87 mm, and preferably 83 mm.

[0104] One axial end of the body of aerosol-generating material 103 is visible at the distal end 115 of the article 101. However, in other embodiments, the distal end 115 of the article 101 may include an end member (not shown) that covers one axial end of the body of aerosol-generating material 103.

[0105] The body of aerosol-generating material 103 is joined to the filter assembly 105 by an annular tipping paper (not shown) that is positioned substantially around the filter assembly 105 to surround it and extends partially along the length of the body of aerosol-generating material 103. In one example, the tipping paper is made from 58 GSM standard tipping base paper. In one example, the tipping paper has a length of 42 mm to 50 mm, preferably 46 mm.

[0106] In one example, cooling segment 107 is an annular tube that surrounds and defines a cavity within the cooling segment. This cavity provides a chamber through which heated volatile components generated from body 103 of aerosol-generating material flow. Cooling segment 107 is hollow to provide a chamber for aerosol accumulation, yet is rigid enough to withstand axial compressive forces and bending moments that may occur during manufacturing and use of article 101 during insertion into device 51. In one example, the wall thickness of cooling segment 107 is approximately 0.29 mm.

[0107] The cooling segment 107 provides a physical displacement between the aerosol-generating material 103 and the filter segment 109. The physical displacement provided by the cooling segment 107 creates a thermal gradient across the length of the cooling segment 107. In one example, the cooling segment 107 is configured to create a temperature difference of at least 40 degrees Celsius between the heated volatile component entering the first end of the cooling segment 107 and the heated volatile component exiting the second end of the cooling segment 107. In one example, the cooling segment 107 is configured to create a temperature difference of at least 60 degrees Celsius between the heated volatile component entering the first end of the cooling segment 107 and the heated volatile component exiting the second end of the cooling segment 107. This temperature difference across the length of the cooling segment 107 protects the temperature-sensitive filter segment 109 from the high temperatures of the aerosol-generating material 103 when the aerosol-generating material 103 is heated by the device 51. If no physical displacement is provided between the filter segment 109 and the aerosol-generating material body 103 and the heating element of the device 51, the temperature-sensitive filter segment 109 may be damaged during use and may no longer be able to effectively perform its required function.

[0108] In one example, the length of the cooling segment 107 is at least 15 mm. In one example, the length of the cooling segment 107 is between 20 mm and 30 mm, more specifically between 23 mm and 27 mm, even more specifically between 25 mm and 27 mm, and preferably 25 mm.

[0109] The cooling segment 107 is made from paper, meaning that the cooling segment 107 is constructed from a material that, in use, does not produce compounds of concern (e.g., toxic compounds) when adjacent to the heater of the device 51. In one example, the cooling segment 107 is manufactured from a spirally wound paper tube that provides a hollow interior chamber but maintains mechanical rigidity. The spirally wound paper tube can meet the stringent dimensional accuracy requirements of high-speed manufacturing processes with respect to tube length, outer diameter, roundness, and straightness.

[0110] In another example, cooling segment 107 is a recess made from stiff plug wrap or tipping paper that is manufactured to be sufficiently stiff to withstand axial compressive forces and bending moments that may occur during manufacturing and use of article 101 during insertion into device 51.

[0111] The filter segment 109 may be formed from any filter material sufficient to remove one or more volatile compounds from the heated volatile components from the aerosol-generating material. In one example, the filter segment 109 is made from a monoacetate material, such as cellulose acetate. The filter segment 109 provides cooling and reduced irritation of the heated volatile components without depleting the amount of the heated volatile components to an unsatisfactory level for the user.

[0112] In some embodiments, a capsule (not shown) may be provided within filter segment 109. The capsule may be located substantially in the center of filter segment 109, both radially and longitudinally. In other examples, the capsule may be off-center in one or more dimensions. In some examples, if a capsule is present, the capsule may contain a volatile component, such as a flavoring or an aerosol-forming agent.

[0113] The density of the cellulose acetate tow material of the filter segment 109 controls the pressure drop across the filter segment 109, which in turn controls the resistance to draw of the article 101. Therefore, the selection of material for the filter segment 109 is important in controlling the resistance to draw of the article 101. Additionally, the filter segment performs a filtration function in the article 101.

[0114] In one example, filter segment 109 is made from 8Y15 grade filter tow material, which provides filtering for the heated volatilized material while reducing the size of the condensed aerosol droplets resulting from the heated volatilized material.

[0115] The presence of filter segment 109 provides an insulating effect by further cooling the heated volatile components exiting cooling segment 107. This additional cooling effect reduces the contact temperature of the user's lips against the surface of filter segment 109.

[0116] In one example, the filter segment 109 has a length of 6 mm to 10 mm, preferably 8 mm.

[0117] The mouth end segment 111 is an annular tube that surrounds and defines a cavity within the mouth end segment 111. This cavity provides a chamber for heated volatile components flowing from the filter segment 109. The mouth end segment 111 is hollow to provide a chamber for aerosol accumulation, yet is rigid enough to withstand axial compressive forces and bending moments that may occur during use of the article during manufacturing and insertion into the device 51. In one example, the wall thickness of the mouth end segment 111 is approximately 0.29 mm. In one example, the length of the mouth end segment 111 is between 6 mm and 10 mm, preferably 8 mm.

[0118] The mouth end segment 111 may be manufactured from a spiral wound paper tube that provides a hollow interior chamber but maintains significant mechanical rigidity. A spiral wound paper tube can meet the stringent dimensional accuracy requirements of high speed manufacturing processes with respect to tube length, outer diameter, roundness, and straightness.

[0119] The mouth end segment 111 serves the function of preventing liquid condensate that accumulates at the outlet of the filter segment 109 from coming into direct contact with the user.

[0120] It should be understood that in one example, the mouth end segment 111 and the cooling segment 107 may be formed from a single tube, with the filter segment 109 positioned within the tube to separate the mouth end segment 111 and the cooling segment 107.

[0121] 3 and 4, there are shown a partial cutaway cross-sectional view and a perspective view of an example of an article 301. The reference numbers shown in Figures 3 and 4 correspond to the reference numbers shown in Figures 1 and 2, but are increased by 200.

[0122] 3 and 4, a ventilation region 317 is provided in the article 301 to allow air to flow from the exterior of the article 301 to the interior of the article 301. In one example, the ventilation region 317 takes the form of one or more vent holes 317 formed through an outer layer of the article 301. The vent holes may be located in the cooling segment 307 to aid in cooling the article 301. In one example, the ventilation region 317 comprises one or more rows of holes, preferably each row of holes located along the periphery of the article 301 in a cross section substantially perpendicular to the longitudinal axis of the article 301.

[0123] In one example, there are 1 to 4 rows of vent holes to provide ventilation to article 301. Each row of vent holes may have 12 to 36 vent holes 317. The diameter of vent holes 317 may be, for example, 100 to 500 μm. In one example, the axial spacing between rows of vent holes 317 is 0.25 mm to 0.75 mm, preferably 0.5 mm.

[0124] In one example, the vent holes 317 have a uniform size. In another example, the vent holes 317 have a variety of sizes. The vent holes can be created using any suitable technique, such as one or more of laser techniques, mechanical drilling of the cooling segment 307, or pre-drilling of the cooling segment 307 before it is formed in the article 301. The vent holes 317 are positioned to effectively cool the article 301.

[0125] In one example, the row of vent holes 317 is located at least 11 mm from the proximal end 313 of the article, and preferably 17 mm to 20 mm from the proximal end 313 of the article 301. The vent holes 317 are located such that the user will not block the vent holes 317 when the article 301 is in use.

[0126] By providing a row of vent holes 17-20 mm from the proximal end 313 of the article 301, the vent holes 317 can be positioned on the outside of the device 51 when the article 301 is fully inserted into the device 51, as seen in Figures 6 and 7. By positioning the vent holes on the outside of the device, unheated air can enter the article 301 from outside the device 51 through the vent holes to help cool the article 301.

[0127] The length of the cooling segment 307 is such that when the item 301 is fully inserted into the device 51, the cooling segment 307 is partially inserted into the device 51. This length of the cooling segment 307 serves two functions: first, to provide a physical gap between the heating apparatus and the heat-sensitive filter apparatus 309 of the device 51; and second, to allow the vent hole 317 to be positioned within the cooling segment while also being positioned outside the device 51 when the item 301 is fully inserted into the device 51. As can be seen in FIGS. 6 and 7 , the majority of the cooling element 307 is positioned within the device 51. However, there is a portion of the cooling element 307 that extends outside the device 51. The vent hole 317 is located in this portion of the cooling element 307 that extends outside the device 51.

[0128] 5-7, an example of a device 51 is shown that is configured to heat an aerosol-forming material to volatilize at least one component of the aerosol-forming material, typically to form an inhalable aerosol. Device 51 is a heating device that releases compounds by heating, but not burning, the aerosol-forming material.

[0129] The first end 53 may be referred to herein as the oral or proximal end 53 of the device 51, and the second end 55 may be referred to herein as the distal end 55 of the device 51. The device 51 has an on / off button 57 that allows the entire device 51 to be activated and deactivated as desired by the user.

[0130] The device 51 includes a housing 59 for arranging and protecting the various internal components of the device 51. In the illustrated example, the housing 59 includes a unitary sleeve 11 that surrounds the outer edge of the device 51, the sleeve 11 being capped by a top panel 17 that generally forms the "top" of the device 51 and a bottom panel 19 that generally forms the "bottom" of the device 51. In another example, the housing includes a front panel, a rear panel, and a pair of opposing side panels in addition to the top panel 17 and bottom panel 19.

[0131] Top panel 17 and / or bottom panel 19 may be removably secured to unitary sleeve 11 to allow easy access to the interior of device 51, or may be "permanently" secured to unitary sleeve 11, for example, to prevent a user from accessing the interior of device 51. In one example, panels 17 and 19 are made of a plastic material (including, for example, glass-filled nylon formed by injection molding) and unitary sleeve 11 is made of aluminum, although other materials and manufacturing processes may be used.

[0132] The top panel 17 of the device 51 has an opening 20 at the mouth end 53 of the device 51, through which a user can insert and remove an item 101, 301 containing an aerosol-generating material into and from the device 51 during use.

[0133] Housing 59 has disposed therein or secured thereto heating device 23, control circuitry 25, and power supply 27. In this example, heating device 23, control circuitry 25, and power supply 27 are laterally adjacent (i.e., adjacent when viewed from one end), with control circuitry 25 generally located between heating device 23 and power supply 27, although other arrangements are possible.

[0134] The control circuitry 25 may include a controller, such as a microprocessor device, constructed and arranged to control the heating of the aerosol-forming material within the article 101, 301, as discussed further below.

[0135] Power source 27 may be, for example, a battery, which may be rechargeable or non-rechargeable. Suitable examples of batteries include, for example, lithium-ion batteries, nickel batteries (e.g., nickel-cadmium batteries), alkaline batteries, etc. Battery 27 is electrically coupled to heating device 23 and, under the control of control circuitry 25, provides power when needed to heat the aerosol-forming material within the article (to volatilize the aerosol-forming material without burning it, as described above).

[0136] An advantage of locating power supply 27 laterally adjacent to heating apparatus 23 is that a physically larger power supply 25 can be used without excessively lengthening the overall length of device 51. Of course, a physically larger power supply 25 generally has a higher capacity (i.e., the total electrical energy it can deliver, often measured in ampere-hours or the like) and therefore can provide a longer battery life for device 51.

[0137] In one example, the heating device 23 is generally in the form of a hollow cylindrical tube having a hollow internal heating chamber 29 into which the article 101, 301 comprising the aerosol-generating material is inserted for heating during use. Various configurations of the heating device 23 are possible. For example, the heating device 23 may comprise a single heating element or may be formed from multiple heating elements aligned along the longitudinal axis of the heating device 23. The or each heating element may be annular or tubular, or may be at least partially annular or at least partially tubular around its circumference. In one example, the or each heating element may be a thin-film heater. In another example, the or each heating element may be made from a ceramic material. Examples of suitable ceramic materials include alumina ceramic and aluminum nitride ceramic, as well as silicon nitride ceramic, which may be layered and sintered. Other heating configurations are also possible, including, for example, induction heating, infrared heating elements (which heat by radiating infrared radiation), and resistive heating elements formed by resistive electrical windings, etc.

[0138] In one particular example, the heating device 23 is supported by a stainless steel support tube and includes a polyimide heating element. The heating device 23 is dimensioned so that when the article 101, 301 is inserted into the device 51, substantially the entire body of the article 101, 301, which is made of aerosol-forming material 103, 303, is inserted into the heating device 23.

[0139] The or each heating element may be arranged to heat selected zones (areas) of aerosol-forming material independently, for example sequentially (over time as described above) or together (simultaneously), as desired.

[0140] The heating device 23 in this example is surrounded by insulation 31 along at least a portion of its length. The insulation 31 helps reduce heat passing from the heating device 23 to the exterior of the device 51. This generally reduces heat loss, and therefore helps keep the power requirements of the heating device 23 low. The insulation 31 also helps keep the exterior of the device 51 cool during operation of the heating device 23. In one example, the insulation 31 may be a double-walled sleeve that provides a low-pressure region between the two walls of the sleeve. That is, the insulation 31 may be, for example, a "vacuum" tube, i.e., a tube that is at least partially evacuated to minimize heat transfer by conduction and / or convection. Other configurations for the insulation 31 are possible, including the use of insulating materials (e.g., including suitable foam-type materials) in addition to or in place of the double-walled sleeve.

[0141] The housing 59 may further include various internal support structures 37 for supporting all internal components as well as the heating device 23 .

[0142] The device 51 further includes a collar 33 extending around the opening 20 and projecting from the opening 20 into the interior of the housing 59, and a generally tubular chamber 35 disposed between the collar 33 and one end of the vacuum sleeve 31. The chamber 35 further includes a cooling structure 35f, which in this example includes a plurality of cooling fins 35f spaced along the exterior surface of the chamber 35, each fin circumferentially disposed about the exterior surface of the chamber 35. When the item 101, 301 is inserted into the device 51 over at least a portion of the length of the hollow chamber 35, a gap 36 exists between the hollow chamber 35 and the item 101, 301. The gap 36 surrounds the entire periphery of the item 101, 301 over at least a portion of the cooling segment 307.

[0143] The collar 33 includes a plurality of ridges 60 arranged around the periphery of the opening 20, which protrude into the opening 20. The ridges 60 occupy space within the opening 20 such that the opening distance of the opening 20 at the location of the ridges 60 is less than the opening distance of the opening 20 without the ridges 60. The ridges 60 are configured to engage with and help secure an item 101, 301 inserted within the device 51. Open spaces (not shown) defined by adjacent pairs of the ridges 60 and the items 101, 301 form ventilation paths around the outer surfaces of the items 101, 301. These ventilation paths allow hot steam escaping from the items 101, 301 to exit the device 51 and allow cooling air to flow into the device 51 around the items 101, 301 within the gap 36.

[0144] In operation, the article 101, 301 is removably inserted into the insertion site 20 of the device 51, as shown in Figures 5-7. Referring specifically to Figure 6, in one example, the body of aerosol-generating material 103, 303 (which is located at the distal end 115, 315 of the article 101, 301) is completely contained within the heating assembly 23 of the device 51. The proximal end 113, 313 of the article 101, 301 extends from the device 51 and serves as a mouthpiece assembly for the user.

[0145] During operation, the heating device 23 heats the article 101, 301 to volatilize at least one component of the aerosol-forming material from the body 103, 303 of aerosol-forming material.

[0146] The primary flow path for heated volatiles from the body of aerosol-generating material 103, 303 is axially through the article 101, 301, through the inner chamber of the cooling segment 107, 307, through the filter segment 109, 309, and through the mouth-end segment 111, 313 to the user. In one example, the temperature of heated volatiles generated from the body of aerosol-generating material ranges from 60°C to 250°C, which may exceed acceptable inhalation temperatures for a user. As the heated volatiles travel through the cooling segment 107, 307, they cool, causing some volatiles to condense on the interior surface of the cooling segment 107, 307.

[0147] In the example of article 301 shown in Figures 3 and 4, cool air can enter cooling segment 307 through vents 317 formed in cooling segment 307. This cool air mixes with the heated volatile components to further cool the heated volatile components.

[0148] Another aspect of the present invention provides a method of making the aerosol-forming material according to the first aspect.

[0149] The method comprises the steps of (a) forming a slurry comprising components of an amorphous solid or precursors thereof, (b) casting a layer of the slurry, (c) curing the slurry to form a gel, and (d) drying to form an amorphous solid.

[0150] Step (b) of forming the layer of slurry may include, for example, spraying, casting, or extruding the slurry. In some examples, the slurry layer is formed by electrostatically spraying the slurry. In some examples, the slurry layer is formed by casting the slurry.

[0151] In some instances, (b) and / or (c) and / or (d) may occur at least partially simultaneously (e.g., during electrostatic spraying). In some instances, (b), (c) and (d) may occur sequentially.

[0152] In some instances, the slurry is applied to a substrate, and a layer of the slurry may be formed on the substrate.

[0153] In examples, the slurry comprises a gelling agent, an aerosol-forming material, and an active agent. The slurry may comprise these components in any of the proportions set forth herein for the composition of the aerosol-forming material. For example, the slurry may comprise: 1 to 60 wt. % of a gelling agent / gelling agent precursor; 5 to 80 weight percent of an aerosol-forming material; 10 to 60% by weight of an active substance; wherein these weights are calculated on a dry weight basis; The gelling agent comprises alginate and pectin, with the ratio of alginate to pectin being 1:1 to 10:1.

[0154] As described hereinabove, the ratio of alginate to pectin can affect the temperature range within which the active agent is released as part of the aerosol (the "release temperature range").

[0155] The ratio of alginate to pectin in the gelling agent may be selected as part of the method of making the aerosol-forming material to result in an aerosol-forming material having a predetermined release temperature range, which may be selected to correspond to the temperature reached by the heater of the non-combustion aerosol delivery system, thereby achieving efficient / desired release of the active agent.

[0156] Other parameters can also affect the temperature at which an aerosol-forming material releases an active agent. For example, parameters of the active agent can affect the temperature release range, such as the volatility of the active agent.

[0157] In an example, the method for producing an aerosol-generating material includes, prior to a), identifying an active substance to be contained in the slurry, specifying a predetermined temperature to which the aerosol-generating material will be heated in use in a non-combustion aerosol delivery device, determining a ratio of alginate to pectin contained in a gelling agent based on the identified active substance and the specified predetermined temperature, and obtaining a gelling agent comprising the determined ratio of alginate to pectin. In this way, the release temperature range of the aerosol-generating material may be predetermined.

[0158] In some examples, the predetermined temperature is equal to or less than 350°C. In some examples, the predetermined temperature is between 220°C and 280°C.

[0159] In some examples, the slurry has a viscosity of about 10 to about 20 Pa·s at 46.5°C, such as a viscosity of about 14 to about 16 Pa·s at 46.5°C.

[0160] The step (c) of hardening the gel may include adding a hardening agent to the slurry. For example, the slurry may comprise sodium alginate, potassium alginate, or ammonium alginate as a gel precursor, and a hardening agent comprising a calcium source (e.g., calcium chloride) may be added to the slurry to form a calcium alginate gel.

[0161] In examples, the hardening agent comprises or consists of calcium acetate, calcium formate, calcium carbonate, calcium bicarbonate, calcium chloride, calcium lactate, or a combination thereof. In some examples, the hardening agent comprises or consists of calcium formate and / or calcium lactate. In particular examples, the hardening agent comprises or consists of calcium formate. The inventors have determined that the use of calcium formate as a hardening agent typically results in an amorphous solid having higher tensile strength and higher elongation resistance.

[0162] The total amount of hardening agent, e.g., calcium source, may be 0.5 to 5 wt. % (calculated on a dry weight basis). Preferably, the total amount may be about 1 wt. %, 2.5 wt. %, or 4 wt. % to about 4.8 wt. %, or 4.5 wt. The inventors have found that adding too little hardening agent may result in an amorphous solid that does not stabilize the amorphous solid components, causing these components to fall off the amorphous solid. The inventors have found that adding too much hardening agent results in an amorphous solid that is very sticky and therefore difficult to handle.

[0163] When the amorphous solid does not contain tobacco, a larger amount of curing agent may need to be applied. In some instances, therefore, the total amount of curing agent may be 0.5 to 12% by weight, e.g., 5 to 10% by weight, calculated on a dry weight basis. Suitably, the total amount may be about 5%, 6%, or 7% by weight to about 12% by weight or 10% by weight. In this instance, the amorphous solid generally does not contain tobacco.

[0164] Alginate is a derivative of alginic acid and is typically a high molecular weight polymer (10-600 kDa). Alginic acid is a copolymer of β-D-mannuronic acid (M) and α-L-guluronic acid (G) units (blocks) linked by (1,4)-glycosidic bonds to form a polysaccharide. Upon addition of calcium cations, alginate crosslinks to form a gel. The inventors have determined that alginate with a high G monomer content more readily forms a gel upon addition of a calcium source. Thus, in some examples, the gel precursor may comprise an alginate in which at least about 40%, 45%, 50%, 55%, 60%, or 70% of the monomer units in the alginate copolymer are α-L-guluronic acid (G) units.

[0165] The drying step (d) may, in some instances, remove from about 50%, 60%, 70%, 80%, or 90% by weight to about 80%, 90%, or 95% by weight of the water in the slurry (WWB).

[0166] The drying step (d) may in some instances reduce the thickness of the cast material by at least 80%, preferably 85% or 87%. For example, the slurry may be cast to a thickness of 2 mm and the resulting dry amorphous solid material may have a thickness of 0.2 mm.

[0167] The slurry itself may also form part of the present invention. In some instances, the slurry solvent may consist essentially of or consist of water. In some instances, the slurry may comprise about 50%, 60%, 70%, 80%, or 90% or more by weight (WWB) of solvent.

[0168] In instances where the solvent comprises water, the dry weight content of the slurry may match the dry weight content of the amorphous solids. Thus, discussion herein of the composition of solids is expressly disclosed in conjunction with the slurry aspect of the invention.

[0169] According to aspects of the present invention, there is provided a method of generating an aerosol using the non-combustion aerosol delivery system described herein. In some embodiments, the method comprises heating the aerosol-generating material to a temperature of 350°C or less. In some embodiments, the method comprises heating the aerosol-generating material to a temperature of about 220°C to about 280°C. In some embodiments, the method comprises heating at least a portion of the aerosol-generating material to a temperature of about 220°C to about 280°C over a use session.

[0170] As used herein, a "use session" refers to a single period of use of a non-combustion aerosol delivery system by a user. A use session begins when power is first applied to at least one heating unit present in the heating assembly. The device is ready for use after a period of time has elapsed since the start of the use session. A use session ends when power is no longer applied to any of the heating elements of the aerosol delivery device. The end of a use session may coincide with the point at which the smoking article is depleted (the point at which the user considers the total particulate matter yield (mg) per puff to be unacceptably low). A session has a duration of multiple puffs. The session may have a duration of 7 minutes, 6 minutes, 5 minutes, 4 minutes 30 seconds, 4 minutes, or less than 3 minutes 30 seconds. In some embodiments, a use session may have a duration of 2 to 5 minutes, 3 to 4.5 minutes, 3.5 to 4.5 minutes, or preferably 4 minutes. A session may be initiated by the user activating a button or switch on the device, which initiates an increase in temperature of at least one heating element.

[0171] In some embodiments, at least 20%, or at least 30%, 40%, or 50% by weight of the active agent present in the amorphous solid is aerosolized during a use session. In some embodiments, the amorphous solid comprises menthol, and at least 20%, or at least 30%, 40%, or 50% by weight of the menthol present in the amorphous solid is aerosolized during a use session. That is, after a use session, the amount of menthol in the amorphous solid is depleted by 20%, 30%, 40%, or 50% by weight. The ratio of alginate to pectin in the amorphous solid described herein may enable more efficient delivery of the active agent to the user (e.g., a higher proportion of the active agent is aerosolized from the amorphous solid).

[0172] According to aspects of the present invention, there is provided a use of the non-combustion aerosol delivery system described herein, which may comprise interacting with the non-combustion aerosol delivery device (e.g., actuating an actuator) to initiate a smoking session.

[0173] Example 1 Three aerosol-forming materials were prepared according to the methods described herein. Each composition was formed from a slurry comprising a gelling agent, an aerosol-forming material, and an active agent (menthol). The slurries used to form each composition differed only in the composition of the gelling agent.

[0174] The first composition comprised alginate and no pectin, the second composition comprised pectin and no alginate, and the third composition comprised a combination of pectin and alginate.

[0175] FIG. 8 shows thermogravimetric analysis-mass spectra (obtained from a thermogravimetric analyzer coupled to a mass analyzer (TGA-MS system)) showing the effect of gelling agent composition on the release temperature range of menthol from an aerosol-forming material. The TGA was set to equilibrate at 40° C., and then the temperature was increased from 40 to 400° C. at a rate of 10° C. / min. The MS was set to scan ion fragments 71, 81, and 95 M / z (fragments of menthol with high intensity). The MS began sampling when the TGA reached 40° C.

[0176] The first aerosol-generating material had an emission temperature range of approximately 200° C. to 230° C. The second aerosol-generating material had an emission temperature range of approximately 80° C. to 150° C. The third aerosol-generating material included two distinct emission temperature ranges: one approximately 270° C. to 300° C. and the second approximately 330° C. to 345° C.

[0177] Example 2 Two aerosol-forming materials were prepared according to the methods described herein. The slurries used to prepare the aerosol-forming materials differed only in the composition of the gelling agent. The gelling agent of the first material comprised alginate with no pectin present, and the gelling agent of the second material comprised 80% alginate and 20% pectin by dry weight.

[0178] It was found that the viscosity of the slurry used to prepare the second material was lower than that of the slurry of the first material, and therefore easier to process (less water was required to prepare the aerosol-generating material, thereby reducing evaporation during drying). It was therefore found that production of the second material was faster and less energy intensive than production of the first material.

[0179] Figure 9 shows the sensory data obtained for the two aerosol-generating materials. The materials were heated at a constant temperature for 5.5 minutes and the intensity of the active ingredient (menthol) was monitored. As can be seen from Figure 9, the materials have very similar sensory profiles. That is, the use of a gelling agent comprising alginate and pectin rather than one comprising alginate alone (especially when alginate is the primary ingredient) does not adversely affect sensory performance.

[0180] The above-described embodiments should be understood as illustrative of the present invention. Further embodiments of the present invention are contemplated. It should be understood that any feature described in connection with any one embodiment may be used alone or in combination with other features described, and may also be used in combination with one or more features of any other embodiment or any combination of any other embodiments. Furthermore, equivalents and modifications not described above may also be employed without departing from the scope of the present invention, as defined in the appended claims.

Claims

1. 1. An aerosol-forming material comprising an amorphous solid, the amorphous solid comprising: 1 to 60 wt. % of a gelling agent; 5 to 80% by weight of an aerosol-forming material; 10 to 60% by weight of an active substance; wherein these weights are calculated on a dry weight basis; 1. The aerosol-forming material, wherein the gelling agent comprises alginate and pectin, and the ratio of the alginate to the pectin is greater than 1:1 and not greater than 10:

1.

2. 10. The aerosol-forming material of claim 1, wherein the active substance comprises menthol.

3. 3. The aerosol-forming material of claim 2, wherein the active substance comprises menthol in an amount of at least 95% by weight of the dry weight of the active substance.

4. 4. The aerosol-forming material of claim 1, wherein the ratio of alginate to pectin is from 3:1 to 8:

1.

5. 5. The aerosol-forming material of claim 1, wherein the ratio of alginate to pectin is from 3:1 to 6:

1.

6. 6. The aerosol-forming material according to claim 1, wherein the amorphous solid comprises 10 to 30% by weight of the aerosol-forming material.

7. 7. The aerosol-forming material of claim 1, wherein the amorphous solid comprises the active substance in an amount of 40 to 60% by weight.

8. The amorphous solid is 20 to 35 wt. % of the gelling agent; 15 to 25% by weight of the aerosol-forming material; 45-55% by weight of the active material, the active material consisting essentially of menthol; wherein these weights are calculated on a dry weight basis; 8. The aerosol-forming material of claim 1, wherein the ratio of alginate to pectin in the gelling agent is from 5:1 to 7:

1.

9. 9. The aerosol-forming material according to claim 1, wherein the alginate contained in the gelling agent is present in the amorphous solid in an amount of about 15 to 40% by weight of the amorphous solid on a dry weight basis.

10. 10. The aerosol-forming material of claim 1, wherein the pectin contained in the gelling agent is present in the amorphous solid in an amount of about 3 to 10% by weight of the amorphous solid on a dry weight basis.

11. 11. The aerosol-forming material of claim 1, comprising from about 1% to about 15% by weight (wet weight basis) of water.

12. 12. The aerosol-forming material of claim 1, wherein the aerosol-forming material is selected from one or more of glycerin, glycerol, propylene glycol, diethylene glycol, triethylene glycol, tetraethylene glycol, 1,3-butylene glycol, erythritol, meso-erythritol, ethyl vanillate, ethyl laurate, diethyl suberate, triethyl citrate, triacetin, diacetin mixtures, benzyl benzoate, benzyl phenylacetate, tributyrin, lauryl acetate, lauric acid, myristic acid, and propylene carbonate.

13. 12. The aerosol-forming material of any one of claims 1 to 11, wherein the aerosol-forming material comprises one or more polyhydric alcohols, esters of polyhydric alcohols, and / or aliphatic esters of mono-, di-, or polycarboxylic acids.

14. The aerosol-forming material according to any one of claims 1 to 11, wherein the aerosol-forming material is selected from the group consisting of erythritol, propylene glycol, glycerol, and mixtures thereof.

15. 15. The aerosol-forming material of any one of claims 1 to 14, wherein the amorphous solid does not comprise calcium carbonate.

16. 16. The aerosol-forming material of any one of claims 1 to 15, wherein the amorphous solid is free of inorganic filler material.

17. A substrate comprising the aerosol-forming material of any one of claims 1 to 16 and a support on which the aerosol-forming material is disposed.

18. An article for use with a non-combustion aerosol delivery device, the article comprising an aerosol-forming material according to any one of claims 1 to 16 and / or a substrate according to claim 17.

19. 20. A non-combustion aerosol delivery system comprising the article of claim 18 and a non-combustion aerosol delivery device, the non-combustion aerosol delivery device configured to generate an aerosol from the article when the article is used with the non-combustion aerosol delivery device.

20. 20. The system of claim 19, wherein the non-combustion aerosol delivery device comprises a heater configured to heat but not combust the item.

21. 21. The system of claim 20, wherein the heater is configured, in use, to heat the article to a temperature of less than 350°C.

22. 22. The system of claim 21, wherein the heater is configured, in use, to heat the article to a temperature of from about 220°C to about 280°C.

23. The system of any one of claims 19 to 22, wherein the non-combustion aerosol delivery device is a non-combustion heated device.

24. The system of any one of claims 19 to 23, wherein the article is provided as a rod.

25. A method of making the aerosol-forming material of any one of claims 1 to 16.

26. providing a slurry comprising a gelling agent, an aerosol-forming material, and an active agent; forming a layer of the slurry; curing the slurry to form a gel; drying the gel to form the amorphous solid; 26. The method of claim 25, comprising:

27. Prior to forming the slurry, identifying the active material contained in the slurry; identifying a predetermined temperature to which the aerosol-forming material will be heated by the non-combustion aerosol delivery device during use; determining the ratio of alginate to pectin in the gelling agent based on the identified active substance and the specified predetermined temperature; obtaining said gelling agent comprising alginate and pectin in said determined ratio; 27. The method of claim 26, comprising:

28. 28. The method of claim 27, wherein the predetermined temperature is between 220°C and 280°C.

29. 29. The method of any one of claims 26 to 28, wherein the step of drying the gel removes 50 to 95% by weight (wet weight basis) of the water in the slurry.

30. 30. The method of any one of claims 26 to 29, wherein the step of hardening the slurry comprises adding a hardening agent to the slurry.

31. 25. A method of generating an aerosol using the non-combustion aerosol delivery system of any one of claims 19 to 24, comprising heating the aerosol-forming material to a temperature of less than 350°C.

32. 32. The method of claim 31, wherein the temperature is from about 220°C to about 280°C.

33. 33. The method of claim 31 or 32, wherein at least 20% by weight of the active agent present in the amorphous solid is aerosolized during a session of use.

34. Use of the non-combustion aerosol delivery system according to any one of claims 19 to 24.

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