Aerosol generation

The aerosol-generating article with a non-uniform amorphous solid distribution and controlled heating addresses the issue of volatile component depletion in conventional devices, ensuring consistent or increasing delivery rates and enhancing the smoking experience.

JP7736662B2Active Publication Date: 2025-09-09NICOVENTURES TRADING LTD
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Patent Information

Application Number
JP2022208512
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-07-31
Filing Date
2023-10-31
Publication Date
2025-09-09
Estimated Expiration
2039-07-31

AI Technical Summary

Technical Problem

Conventional aerosol generating assemblies experience a decrease in the delivery rate of volatile components over time due to heat transfer between heating zones, leading to uneven distribution and reduced availability of volatiles during the product's life cycle.

Method used

An aerosol-generating article with a wrapper comprising an amorphous solid that is non-uniformly distributed, allowing for selective tailoring of volatile material content in different sections, and a heater configuration that heats these sections at varying rates to maintain consistent or increasing volatile delivery throughout use.

Benefits of technology

The solution provides a sustained release of aerosol components, enhancing the smoking experience by mimicking traditional smoking articles and improving user acceptance through consistent or increasing nicotine and flavor sensation throughout the smoking period.

✦ Generated by Eureka AI based on patent content.

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Abstract

An aerosol-generating article for use in an aerosol-generating assembly is provided. The aerosol-generating article (101) includes a rod (103) of aerosolizable material surrounded by a wrapper, the wrapper containing an amorphous solid that forms the aerosol.
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Description

[Technical Field]

[0001] The present invention relates to the generation of aerosols. [Background technology]

[0002] Smoking articles, such as cigarettes and cigars, burn tobacco to produce smoke during use. Alternatives to these types of smoking articles include those that emit inhalable aerosols or vapors by heating rather than burning the tobacco to release compounds from a substrate. These may be 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, without burning, a solid aerosolizable material. The solid aerosolizable material may include tobacco material. Heating typically volatilizes at least one component of the material, which forms an inhalable aerosol. These products are sometimes referred to as non-combustion heating devices, tobacco heating devices, or tobacco heating products. A variety of different configurations for volatilizing at least one component of a solid aerosolizable material are known.

[0004] Another example is an e-cigarette / tobacco heating product hybrid device, also known as an e-cigarette hybrid device. These hybrid devices contain a liquid feedstock (with or without nicotine) that is vaporized by heating to produce an inhalable vapor or aerosol. The device additionally contains a solid aerosolizable material (which may or may not contain tobacco), the components of which are entrained in the inhalable vapor or aerosol to produce the inhalable medium.

[0005] Some conventional aerosol generators include two or more heaters, each configured to heat a different portion of the smokable material during use, such that those different portions of the smokable material heat at different times, thereby allowing for extended aerosol formation during use. Summary of the Invention

[0006] In a first aspect of the present invention, there is provided an aerosol-generating article for use in an aerosol-generating assembly, the aerosol-generating article comprising a rod of aerosolizable material surrounded by a wrapper, the wrapper comprising an amorphous solid that forms an aerosol.

[0007] In some embodiments, the wrapper comprises a carrier and the aerosol-forming amorphous solid is disposed on the carrier.

[0008] A second aspect of the present invention provides an aerosol-generating assembly comprising an aerosol-generating article according to the first aspect of the invention and a heater configured to heat but not burn the aerosolizable material and / or amorphous solid forming the aerosol.

[0009] Another aspect of the present invention provides a method for producing an aerosol-generating article, comprising: (a) forming a slurry containing an amorphous solid or precursor component; (b) applying the slurry to a carrier; (c) curing the slurry to form a gel; (d) drying to form an amorphous solid; and (e) placing a wrapper such that the wrapper surrounds an aerosolizable material.

[0010] A further aspect of the invention described herein provides for the use of an aerosol-generating article or aerosol-generating assembly in the generation of an inhalable medium.

[0011] Further features and advantages of the invention will become more apparent from the following description, given by way of example only, with reference to the accompanying drawings, in which: [Brief explanation of the drawings]

[0012] [Figure 1] FIG. 2 is a schematic exploded view of the wrapper. [Figure 2] FIG. 1 is a cross-sectional view of an example of an aerosol-generating product. [Figure 2a] FIG. 3 is a side view of the example of FIG. 2. [Figure 3] FIG. 3 is a perspective view of the generated product of FIG. 2. [Figure 3a] FIG. 3 is a perspective view of the generated product of FIG. 2. [Figure 4] FIG. 1 is a cross-sectional elevation view of an example of an aerosol-generating article. [Figure 5] FIG. 5 is a perspective view of the generated product of FIG. 4. [Figure 6] FIG. 1 is a perspective view of an example aerosol-generating assembly. [Figure 7] FIG. 1 is a cross-sectional view of an example aerosol-generating assembly. [Figure 8] FIG. 1 is a perspective view of an example aerosol-generating assembly. DETAILED DESCRIPTION OF THE INVENTION

[0013] Aerosol-forming "amorphous solids" may alternatively be referred to as "monolithic solids" (i.e., non-fibrous) or "dry gels." Amorphous solids are solid materials that retain a fluid, such as a liquid, within them. The amorphous solid may form part of an aerosol-forming material that includes 50 wt%, 60 wt%, or 70 wt% to about 90 wt%, 95 wt%, or 100 wt% of the amorphous solid. In some cases, the aerosol-forming material consists of the amorphous solid.

[0014] In a first aspect of the present invention, there is provided an aerosol-generating article for use in an aerosol-generating assembly, the aerosol-generating article comprising a rod of aerosolizable material surrounded by a wrapper, the wrapper comprising an aerosol-forming amorphous solid, hi some embodiments the wrapper comprises a carrier, and the aerosol-forming amorphous solid is disposed on the carrier.

[0015] The aerosolizable material is heated during use to generate an inhalable aerosol or vapor. The present invention provides an amorphous solid as a component of the wrapper, which may include volatile components such as nicotine and nicotine derivatives, flavorings, and aerosol-generating agents. These volatile materials in the amorphous solid are volatilized and inhaled during use, and providing the amorphous solid can alter and / or enhance the composition of the aerosol or vapor.

[0016] Optionally, the aerosol-generating article of the first aspect of the invention comprises two sections, and the amount of amorphous solid volatile material in the wrapper portion surrounding the first section is greater than the amount of amorphous solid volatile material in the wrapper portion surrounding the second section.

[0017] In use, the two sections may be heated at different times / rates. Using two or more sections containing different amounts of volatile material derived from the amorphous solid allows for selective tailoring of the composition of the inhaled aerosol.

[0018] This non-uniform distribution of volatile materials derived from the amorphous solids can be achieved in several ways: for example, the amorphous solid composition may be different in the first and second sections.

[0019] In some cases, such as when a wrapper includes a carrier, the amount of amorphous solid per unit area of ​​the carrier in the portion of the wrapper surrounding the first section is greater than the amount of amorphous solid per unit area of ​​the carrier in the portion of the wrapper surrounding the second section. In such cases, the amorphous solid composition may be substantially homogeneous in each section. In particular, in some cases, the amorphous solid may be disposed on the carrier in a substantially triangular configuration. Such an embodiment is illustrated in FIG. 1. The wrapper illustrated in FIG. 1 has a triangular amorphous solid 2 on a carrier layer 4 (the wavy line indicates that the schematic is an exploded view; the two layers are attached). It can be seen that the section of the wrapper adjacent the first end 8 has a greater amount of amorphous solid per unit area of ​​the carrier than the section of the wrapper adjacent the second end 6.

[0020] The inventors have determined that in conventional aerosol generating assemblies in which a uniform aerosol generating product is used, the delivery rate of the aerosol's components decreases with use. When only one heater is used in such conventional devices, most of the volatile components of the aerosolizable material are quickly consumed, and the delivery rate of that component generally decreases with each puff.

[0021] Some conventional devices use two or more heaters, positioned to heat different portions of the aerosolizable material with the intention of initially not heating a portion of the aerosolizable material, thereby preserving that portion's volatiles for consumption later in the product's useful life. However, the inventors believe that such devices allow heat to be transferred between different heating zones, causing a reduction in volatiles in areas where direct heating has not yet begun. This increases the amount of such volatiles delivered early in the consumption period, reducing the amount of volatiles available for later consumption. Thus, the delivery of such volatiles generally decreases with each puff.

[0022] The inventors have determined that an aerosol-generating article comprising two sections, in which the amount of volatile material derived from an amorphous solid in the wrapper portion surrounding the first section is greater than the amount of volatile material derived from an amorphous solid in the wrapper portion surrounding the second section, can be used to improve the puff profile and, in particular, to provide a sustained release of an aerosolizable component during use.

[0023] In use, the first section of the aerosol-generating article may be heated later than the second section. In some cases, the aerosol delivery per puff may be constant, with the delivery of volatile material during heating of the second section being greater due to heat transfer within the assembly resulting in a partial loss of volatile material from the first section. Prior to heating, the total amount of volatile material in the first section is greater than in the second section as a result of the amorphous solid structure, and therefore the partial loss of volatile material due to heat transfer from the first section is substantially equal to the delivery of volatile material during heating of the two corresponding sections.

[0024] In other cases, the increased volatile material in the first section (as a result of the amorphous solid structure) can be used to provide an aerosol with gradually increasing volatile material delivery per puff. In such cases, and when the aerosolizable material includes tobacco, the nicotine and / or tobacco flavor sensation may be enhanced toward the end of the smoking period. This may mimic the smoking sensation of a combustible smoking article (cigarette, cigar, etc.) and improve smoker acceptance of the aerosol-generating assemblage as an alternative to such combustible smoking articles.

[0025] In some cases, the aerosol-generating article includes two sections. In other cases, there may be three, four, five or more sections. The amount of volatile material derived from the amorphous solid in the wrapper portion surrounding each section may be the same or different, but the amount in the wrapper portion surrounding the first section will be greater than the amount of volatile material derived from the amorphous solid in the wrapper portion surrounding the second section.

[0026] In some cases, the sections may be arranged axially along the length of the aerosol-generating article. For example, the sections may be in the form of coaxial cylinders arranged along the length of the aerosol-generating article. In other cases, the sections may be prismatic sections which together form a cylinder. For example, if there are two sections, they may be semi-cylinders and be arranged with their corresponding flat surfaces in contact.

[0027] In some cases, the first section of the aerosol-generating product may be closer to the mouth end of the product than the second section. In some cases, the second section of the aerosol-generating product may be closer to the mouth end of the product than the first section.

[0028] The aerosolizable material in the aerosol-generating article of the first embodiment typically comprises tobacco material.

[0029] In some cases, the amorphous solid material forming the aerosol may include an embedded heating means, such as a resistive or inductive heating element.

[0030] The carrier may be any suitable material that can be used to support an amorphous solid and encase a rod of aerosolizable material. In some cases, the carrier may be formed from a material selected from metal foil, paper, carbon paper, greaseproof paper, ceramic, carbon allotropes such as graphite and graphene, plastic, or a combination thereof. In some cases, the carrier may include or consist of a tobacco material such as a sheet of reconstituted tobacco. In some cases, the carrier may be formed from a material selected from metal foil, paper, or a combination thereof. In some cases, the carrier itself may be a laminated structure containing layers of materials selected from the above examples. In some cases, the carrier may function as a flavor carrier. For example, the carrier may be impregnated with a flavorant or tobacco extract.

[0031] In some cases, the carrier for the aerosol-generating product may include or consist of a porous layer in contact with the amorphous solid. For example, the porous layer may be a paper layer. In some specific cases, the amorphous solid is placed in direct contact with the porous layer, and the porous (e.g., paper) layer contacts the amorphous solid, forming a strong bond. The amorphous solid is formed by drying a gel. Without being limited by any theory, it is believed that the porous layer (e.g., paper) is impregnated with a slurry from which the gel is formed, and as the gel hardens and forms crosslinks, the porous layer is partially bonded to the gel. This provides a strong bond between the gel and the porous layer (i.e., between the dried gel and the porous layer). A porous layer (e.g., paper) may also be used to carry flavorants. In some cases, the porous layer may preferably comprise paper having a porosity of 0 to 300 Coresta Units (CU), preferably 5 to 100 CU or 25 to 75 CU.

[0032] Additionally, surface roughness contributes to the strength of the bond between the amorphous solid and the carrier. The inventors have discovered that the roughness of the paper (on the surface that contacts the carrier) is preferably 50 to 1000 Bekk seconds, more preferably in the range of 50 to 150 Bekk seconds, and even more preferably 100 Bekk seconds (measured at air pressure intervals of 50.66 to 48.00 kPa). (The Bekk smoothness tester is an instrument used to measure the smoothness of a paper surface when air at a specified pressure leaks between a smooth glass surface and a paper sample; the time (in seconds) for a given volume of air to seep between these surfaces is the "Bekk smoothness.")

[0033] Conversely, the surface of the carrier opposite the amorphous solid is placed in contact with the heater, with the smooth side transferring heat more efficiently. Thus, in some cases, the carrier is positioned with its rough side in contact with the amorphous solid and its smooth side facing away from the amorphous material.

[0034] In particular, in some cases the carrier may be a foil supported on paper, the paper layer being an amorphous solid. The foil backing is substantially impermeable and controls the flow path of the aerosol. The foil backing also serves to transfer heat to the gel.

[0035] In other cases, the foil layer of the paper-supported foil abuts the amorphous solid. This prevents water provided in the amorphous solid from being absorbed into the paper, which could weaken the structural integrity of the paper.

[0036] In some cases, the carrier is formed from or includes a metal foil, such as aluminum foil. Metal carriers can better transfer thermal energy to amorphous solids. Additionally or alternatively, the metal foil may function as a susceptor in an induction heating system. In certain embodiments, the carrier includes a metal foil layer and a support layer, such as cardboard. In these embodiments, the metal foil layer has a thickness of less than 20 μm, e.g., from about 1 μm to about 10 μm, preferably about 5 μm.

[0037] In some cases, the carrier may be omitted and the wrapper does not include a carrier. In some cases, the wrapper consists solely of the aerosol-forming amorphous solid, provided that the aerosol-forming amorphous solid has sufficient strength (e.g., sufficient tensile strength) to be self-supporting.

[0038] In some cases, the amorphous solid may have a thickness of about 0.015 mm to about 1.0 mm. Preferably, the thickness is about 0.05 mm, 0.1 mm, or 0.15 mm to about 0.5 mm. The inventors have found that a thickness of 0.2 mm is particularly suitable. The amorphous solid may comprise two or more layers, and the thicknesses described herein refer to the combined thicknesses of these layers.

[0039] The inventors have determined that if the aerosol-forming amorphous solid is too thick, heating efficiency is compromised, which adversely affects power consumption during use. Conversely, if the aerosol-forming amorphous solid is too thin, handling, including the formation of the aerosol during manufacture and use, becomes difficult; very thin materials are difficult to cast and prone to breakage.

[0040] The inventors have determined that the thickness of the amorphous solid defined herein optimizes the material properties in light of these trade-offs.

[0041] The thicknesses specified herein are the average thickness of the material. In some cases, the thickness of the amorphous solid may vary by up to 25%, 20%, 15%, 10%, 5%, or 1%.

[0042] 30g / m for aerosol-generating materials containing amorphous solids 2 ~120g / m 2 In some embodiments, the aerosol-generating material may have any suitable areal density, such as about 30-70 g / m 2 or approximately 40-60g / m 2 In some embodiments, the amorphous solid may have an areal density of about 80-120 g / m 2 or approximately 70-110g / m 2 Or especially about 90-110 g / m 2 The surface density may be

[0043] In some examples, the sheet-like amorphous solid 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 contain 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. In some examples, such as when the amorphous solid contains 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.

[0044] The aerosol-generating article of the first aspect of the present invention may additionally include a cooling element and / or a filter. If a cooling element is included, it acts or functions to cool the gas or aerosol components. In some cases, the cooling element acts to cool the gas components so that they condense to form the aerosol. The cooling element also acts to direct extremely hot parts of the device away from the user. If a filter is included, it may include any suitable filter known in the art, such as a cellulose acetate plug.

[0045] In some cases, the cooling element and / or filter (if included) may be enveloped by a layer extending at least partially over the rod of aerosolizable material, which may be a wrapper including a carrier and an amorphous solid, surrounding the aerosolizable material.

[0046] The aerosol-generating article may further include ventilation openings. These ventilation openings may be located in the sidewalls of the generating article. Optionally, ventilation openings may be located in the filter and / or cooling element. These openings may allow cooling air to be drawn into the generating article during use, where it may mix with the heated and volatilized components, thereby cooling the aerosol.

[0047] Ventilation increases the release of visible heated and volatilized components from the generated product when the generated product is heated during use. The heated and volatilized components become visible due to the cooling process of the heated and volatilized components, which results in supersaturation of the heated and volatilized components. The heated and volatilized components then form into droplets, also known as nucleation, and ultimately the size of the heated and volatilized component aerosol increases due to further condensation of the heated and volatilized components and solidification of newly formed droplets from the heated and volatilized components.

[0048] The ratio of cooled air to the sum of heated and volatilized components and cooled air, sometimes known as the ventilation rate, is at least 15%. A 15% ventilation rate allows the heated and volatilized components to be made visible using the methods described above. Making the heated and volatilized components visible allows the user to confirm that the heated and volatilized components are being released and contributing to the sensory experience of the smoking experience.

[0049] In another example, the ventilation rate is 50% to 85% to further cool the heated and volatilized components. In some cases, the ventilation rate may be at least 60% or 65%.

[0050] A second aspect of the present invention provides an aerosol-generating assembly comprising an aerosol-generating article according to the first aspect of the invention and a heater configured to heat the aerosolizable material and / or aerosol-forming amorphous solid without burning it.

[0051] The heater is configured to heat the aerosolizable material without burning it. Optionally, the heater, in use, may heat the aerosolizable material to between 120°C and 350°C without burning it. Optionally, the heater, in use, may heat the aerosolizable material to between 140°C and 250°C without burning it. Optionally, in use, substantially all of the amorphous solid is less than about 4 mm, less than 3 mm, less than 2 mm, or less than 1 mm from the heater. Optionally, the solid is positioned between about 0.010 mm and 2.0 mm, preferably between about 0.1 mm and 1.0 mm, from the heater. Optionally, a surface of the amorphous solid may directly abut the heater.

[0052] In some cases, the assembly includes an aerosol-generating article having two sections, wherein the amount of volatile material derived from the amorphous solid in the wrapper portion surrounding the first section is greater than the amount of volatile material derived from the amorphous solid in the wrapper portion surrounding the second section, and the device is configured to provide a different heat profile to each of the different sections. In some cases, the assembly is configured such that heating of the first section of the aerosol-generating article begins after heating of the second section.

[0053] The aerosol-generating assembly according to the second aspect may comprise at least two heaters, each arranged to heat a different section of the aerosol-generating article. Optionally, the aerosol-generating article may comprise three or more sections, and the assembly may comprise further heaters arranged to directly heat one or more sections of the aerosol-generating article, respectively. Optionally, the number of heaters is equal to the number of sections of the aerosol-generating article, and the heaters are each arranged to heat one section.

[0054] In some cases, the assembly may be configured such that at least a portion of the aerosolizable material is exposed to heating at least 50% of the time to a temperature of at least 180° C. or 200° C. In some cases, the aerosolizable material may be exposed to different heat profiles as described in co-pending application PCT / EP2017 / 068804, the disclosure of which is incorporated herein in its entirety.

[0055] In certain instances, an assembly is provided that is configured to heat at least two sections of the aerosolizable material separately. By controlling the temperature of the first and second sections over time to provide different temperature profiles for the sections, it is possible to control the aerosol puff profile during use. Heat may be applied to the two sections of aerosolizable material for different times or rates, and such staggered heating can result in faster aerosol generation and longer service life.

[0056] In one particular example, the assembly may be configured such that at the start of the consumption experience, a first heating element corresponding to a first section of the aerosolizable material is immediately heated to a temperature of 240°C. This first heating element is maintained at 240°C for 145 seconds and then reduced to 135°C (where this temperature is maintained for the remainder of the consumption experience). 75 seconds after the start of the consumption experience, a second heating element corresponding to a second section of the aerosol-generating product is heated to a temperature of 160°C. 135 seconds after the start of the consumption experience, the temperature of the second heating element is increased to 240°C (where this temperature is maintained for the remainder of the consumption experience). The consumption experience lasts for 280 seconds, at which point both heaters cool to room temperature.

[0057] In some cases, the aerosol-generating assembly according to the second aspect may be a non-combustion heating device, also known as a tobacco heating product or tobacco heating device.

[0058] The heater provided in the assembly according to the second embodiment may in some cases be a thin film electrical resistance heater. In other cases, the heater may comprise an induction heater or the like. The heater may be a combustible heat source or a chemical heat source that reacts exothermically to produce heat during use. When two or more heaters are present, each heater may be the same or different.

[0059] Typically, the or each heater is powered by a rechargeable or non-rechargeable battery. Examples of suitable batteries include, for example, lithium ion batteries, nickel batteries (such as nickel-cadmium batteries), alkaline batteries, etc. The battery is electrically connected to the heater and provides power to heat the smoking material as needed (to volatilize the components of the aerosolizable material without burning the aerosolizable material).

[0060] In one example, the heater is in the form of a generally hollow cylindrical tube having a hollow internal heating chamber into which the aerosol-generating product is inserted for heating during use. Different heater configurations are possible. For example, the heater may be formed as a single heater or multiple heaters aligned along the heater's longitudinal axis. (For brevity, references to "heater" herein include multiple heaters unless the context requires otherwise.) The heater may be annular or tubular. The heater is dimensioned such that substantially the aerosolizable material, when inserted, is located within one or more heating elements of the heater such that the entire aerosolizable material is heated during use. The heater may be configured so that selected regions of the aerosolizable material are heated independently, e.g., sequentially (sequentially), or together (simultaneously), as desired.

[0061] The heater may be surrounded by insulation along at least a portion of its length, which helps reduce heat passing from the heater to the exterior of the aerosol-generating assembly. This generally helps reduce heat loss and therefore lower the power required for the heater. The insulation helps keep the exterior of the aerosol-generating assembly cool while the heater is operating.

[0062] 2 and 3, there are shown cutaway and perspective views of an example aerosol-generating article 101. The generating article 101 is adapted for use in an apparatus having a power source and a heater. This embodiment of the generating article 101 is particularly suited for use with the apparatus 51 shown in FIGS. 6-8, described below. In use, the generating article 101 is removably inserted into the apparatus shown in FIG. 6 at insertion point 20 of the apparatus 51.

[0063] One example generated product 101 is in the form of a substantially cylindrical rod, including a body 103 of aerosolizable material and a rod-shaped filter mass 105. As shown in Figures 2a and 3a, the aerosolizable material 103 is surrounded by a wrapper, as illustrated in Figure 1, including a carrier 4 and an amorphous solid 2 disposed on the carrier 4. In the illustrated configuration, the amorphous solid is visible on the outside of the wrapper. In other configurations (not shown), the amorphous solid is disposed on the interior surface of the wrapper. The wrapper may surround the aerosolizable material and at least a portion of the filter mass, as illustrated.

[0064] The filter assembly 105 includes three segments: a cooling segment 107, a filter segment 109, and a mouth end segment 111. The generating article 101 has a first end 113, also known as the mouth end or proximal end, and a second end 115, also known as the distal end. The body of aerosolizable material 103 is located toward the distal end 115 of the generating article 101. In one example, the cooling segment 107 is located adjacent to the body of aerosolizable material 103 between the body of aerosolizable material 103 and the filter segment 109, such that the cooling segment 107 is in abutting relationship with the body of aerosolizable material 103 and the filter segment 109. In another example, there may be a separation between the body of aerosolizable material 103 and the cooling segment 107 and between the body of aerosolizable material 103 and the filter segment 109. The filter segment 109 is located between the cooling segment 107 and the mouth end segment 111. Mouth end segment 111 is located adjacent filter segment 109 toward proximal end 113 of output 101. In one example, filter segment 109 is in abutting relationship with mouth end segment 111. In one embodiment, the overall length of filter assembly 105 is between 37 mm and 45 mm, more preferably, the overall length of filter assembly 105 is 41 mm.

[0065] In one example, the rod 103 of aerosolizable material is between 34mm and 50mm in length, preferably between 38mm and 46mm, preferably 42mm.

[0066] In one example, the overall length of the by-product 101 is 71 mm to 95 mm, preferably 79 mm to 87 mm, and more preferably 83 mm.

[0067] The axial end of the body 103 of aerosolizable material is visible at the distal end 115 of the generated article 101. However, in other embodiments, the distal end 115 of the generated article 101 may include an end member (not shown) that covers the axial end of the body 103 of aerosolizable material. In some cases, the end member may be part of a wrapper as described herein.

[0068] The body of aerosolizable material 103 is joined to the filter assembly 105 by an annular tipping paper (not shown) that is positioned substantially around the circumference of the filter assembly 105 to surround the filter assembly 105 and extends partially along the length of the body of aerosolizable material 103. In one example, the tipping paper is made from a standard tipping base paper of 58 GSM. In one example, the length of the tipping paper is 42 mm to 50 mm, preferably 46 mm.

[0069] In one example, cooling segment 107 is an annular tube that surrounds and defines a cavity therein. The cavity provides a chamber through which heated and volatilized components generated from body 103 of aerosolizable material flow. Cooling segment 107 is hollow to provide an aerosol accumulation chamber rigid enough to withstand axial compressive forces and bending moments generated during manufacturing and while generated article 101 is inserted into apparatus 51 during use. In one example, the wall thickness of cooling segment 107 is approximately 0.29 mm.

[0070] The cooling segment 107 provides a physical transfer between the aerosolizable material 103 and the filter segment 109. The physical transfer provided by the cooling segment 107 provides a temperature gradient along the length of the cooling segment 107. In one example, the cooling segment 107 is configured to provide a temperature difference of at least 40°C between the heated and volatilized components entering the first end of the cooling segment 107 and the heated and volatilized components exiting the second end of the cooling segment 107. In one example, the cooling segment 107 is configured to provide a temperature difference of at least 60°C between the heated and volatilized components entering the first end of the cooling segment 107 and the heated and volatilized components exiting the second end of the cooling segment 107. This temperature difference across the cooling segment 107 protects the temperature sensitive filter segment 109 from the high temperatures of the aerosolizable material 103 when the aerosolizable material 103 is heated by the device 51. Without physical movement between the filter segment 109, the body 103 of aerosolizable material, and the heating element of the device 51, the temperature sensitive filter segment 109 may be damaged during use and may not be able to efficiently perform its required function.

[0071] 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 20 mm to 30 mm, particularly 23 mm to 27 mm, especially 25 mm to 27 mm, preferably 25 mm.

[0072] The cooling segment 107 is made of paper, meaning that it is constructed from a material that does not emit problematic compounds, e.g., toxic compounds, when used adjacent to the heater of the apparatus 51. In one example, the cooling segment 107 is manufactured from a spirally wound paper tube that provides a hollow interior chamber while maintaining mechanical rigidity. The spirally wound paper tube can meet the strict dimensional accuracy requirements for tube length, outer diameter, roundness, and straightness during high speed manufacturing processes.

[0073] In another example, cooling segment 107 is a recess formed from a stiff plug wrapper or tipping paper that is manufactured to be sufficiently rigid to withstand the axial compressive forces and bending moments that occur during manufacture and while output 101 is inserted into apparatus 51 in use.

[0074] Filter segment 109 may be formed from any filter material sufficient to remove one or more volatilized compounds from the heated and volatilized components of the aerosolizable material. In one example, filter segment 109 is made from a monoacetate material, such as cellulose acetate. Filter segment 109 reduces the cold irritation from the heated and volatilized components without reducing the quality of the heated and volatilized components to a level that is unsatisfactory for the user.

[0075] In some embodiments, a capsule (not shown) may be provided within filter segment 109. The capsule may be substantially centrally located within filter segment 109 across the diameter and along the length of filter segment 109. In other cases, the capsule may be offset in one or more dimensions. The capsule, if included, may contain a volatile component such as a flavorant or aerosol generating agent.

[0076] 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 output 101. Therefore, the selection of material for the filter segment 109 is important in controlling the resistance to draw of the output 101. Additionally, the filter segment performs a filtration function in the output 101.

[0077] In one example, filter segment 109 is made of 8Y15 grade filter material, which provides filtering of heated and volatilized components and reduces the size of condensed aerosol droplets resulting from heated and volatilized components.

[0078] The presence of filter segment 109 provides an insulating effect by further cooling the heated and volatilized components that exit cooling segment 107. This additional cooling effect reduces the temperature of the surface of filter segment 109 when it comes into contact with the user's lips.

[0079] In one example, the length of the filter segment 109 is 6 mm to 10 mm, preferably 8 mm.

[0080] The mouth end segment 111 is an annular tube that surrounds and defines a cavity within the mouth end segment 111. The cavity provides a chamber for heated and volatilized components to flow from the filter segment. The mouth end segment 111 is hollow to provide an aerosol accumulation chamber that is rigid enough to withstand the axial compressive forces and bending moments that occur during manufacturing and while the generated product is inserted into the device 51 in use. In one example, the mouth end segment 111 has a wall thickness of about 0.29 mm. In one example, the mouth end segment 111 has a length of 6 mm to 10 mm, preferably 8 mm.

[0081] The mouth end segment 111 is manufactured from a spirally wound paper tube that provides a hollow interior chamber while maintaining critical mechanical rigidity. Spiral wound paper tubes are capable of meeting strict dimensional accuracy requirements for tube length, outer diameter, roundness, and straightness during high speed manufacturing processes.

[0082] Mouth end segment 111 serves the function of preventing any liquid condensation that accumulates at the outlet of filter segment 109 from coming into direct contact with the user.

[0083] It will be appreciated that in one example, mouth end segment 111 and cooling segment 107 may be formed from a single tube, with filter segment 109 located within the tube separating mouth end segment 111 and cooling segment 107 .

[0084] 4 and 5, there are shown a cutaway cross-sectional view and a perspective view of an example of the generated product 301. The reference numbers shown in Figures 4 and 5 are the same as the reference numbers shown in Figures 2 and 3, but with the increment 200.

[0085] In the example of the generated product 301 shown in Figures 4 and 5, a ventilation region 317 is provided within the generated product to allow air to flow from the exterior of the generated product 301 to the interior of the generated product 301. In one example, the ventilation region 317 is in the form of one or more ventilation holes formed through the outer layer of the generated product 301. The ventilation holes are located in the cooling segment 107 and aid in cooling the generated product 301. In one example, the ventilation holes 317 include one or more rows of holes, preferably the rows of holes are circumferentially arranged around the generated product in a cross section substantially perpendicular to the longitudinal axis of the generated product 301.

[0086] As noted above, the wrapper illustrated in Figure 1 may enclose some or all of the aerosolizable material and, if desired, the filter assembly. Although not shown, it should be understood that ventilation regions 317 may be provided in some embodiments in the wrapper illustrated in Figure 1. In some other cases, such as when the wrapper of Figure 1 does not extend the entire length of the aerosol-generating article, ventilation holes may be provided in the outer layer of the generating article at locations where the wrapper of Figure 1 is not located.

[0087] In one example, there are 1 to 4 rows of ventilation holes for ventilating the waste product 301. Each row of ventilation holes has 12 to 36 ventilation holes 317. The ventilation holes 317 have a diameter of, for example, 100 to 500 μm. In one example, the axial spacing between rows of ventilation holes 317 is 0.25 mm to 0.7 mm. 5 mm, preferably 0.5 mm.

[0088] In one example, the ventilation holes 317 are uniform in size. In another example, the ventilation holes 317 vary in size. The ventilation holes can be provided 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 emerging product 301. The ventilation holes 317 are positioned to effectively cool the emerging product 301.

[0089] In one example, the row of ventilation holes 317 is located at least 11 mm from the proximal end 313 of the generating product, and preferably 17 mm to 20 mm from the proximal end 313 of the generating product 301. The ventilation holes 317 are positioned so that the user cannot block the ventilation holes 317 while the generating product 301 is in use.

[0090] Providing a row of ventilation holes 17 mm to 20 mm away from the proximal end 313 of the generated product 301 allows the ventilation holes 317 to be located on the outside of the device 51 when the generated product 301 is fully inserted into the device 51, as is apparent from Figures 7 and 8. Locating the ventilation holes on the outside of the device allows unheated air to enter the generated product 301 from outside the device 51 through the ventilation holes, helping to cool the generated product 301.

[0091] The cooling segment 307 is long enough that a portion of the cooling segment 307 is inserted into the apparatus 51 when the generated product 301 is fully inserted therein. The length of the cooling segment 307 serves two functions: first, to provide a physical gap between the heater device and the heat-sensitive filter device 309 of the apparatus 51 when the generated product 301 is inserted therein, and second, to be located outside the apparatus 51 and to allow for the placement of ventilation holes 317 within the cooling segment. As can be seen in Figures 7 and 8, the majority of the cooling element 307 is located within the apparatus 51. However, there is a portion of the cooling element 307 that extends outward from the apparatus 51. The ventilation holes 317 are located in this portion of the cooling element 307 that extends outward from the apparatus 51.

[0092] 6-8, an example of a device 51 configured to heat an aerosolizable material and volatilize at least one component thereof, typically to form an inhalable aerosol, is shown. Device 51 is a heating device that heats the aerosolizable material without burning it to release the compound.

[0093] First end 53 is sometimes referred to herein as the mouthpiece or proximal end 53 of device 51, and second end 55 is sometimes referred to herein as the distal end of device 51. Device 51 has an on / off button 57 that allows device 51 as a whole to be turned on and off as desired by the user.

[0094] The device 51 includes a housing 59 for positioning and protecting various internal components of the device 51. In the illustrated example, the housing 59 surrounds the periphery of the device 51 and includes an integral sleeve 11 closed at the top by a top panel 17, which generally defines the "top" of the device 51, and at the bottom by a bottom panel 19, which generally defines the "bottom" of the device 51. In another example, the housing includes a front panel, a back panel, and a pair of opposing side panels in addition to the top panel 17 and bottom panel 19.

[0095] The top panel 17 and / or bottom panel 19 may be removably secured to the integral sleeve 11 to allow easy access to the interior of the device 51, or may be "permanently" secured to the integral sleeve 11 to prevent, for example, a user from accessing the interior of the device 51. In one example, panels 17 and 19 are made from a plastic material, including, for example, glass-filled nylon formed by injection molding, and integral sleeve 11 is made from aluminum, although other materials and manufacturing methods may be used.

[0096] The top panel 17 of the device 51 has an opening 20 at the mouth end 53 of the device 51 through which a generating product 101, 301 containing an aerosolizable material is inserted into and removed from the device 51 by a user during use.

[0097] Housing 59 has positioned or secured therein heater device 23, control circuit 25, and power supply 27. In this example, heater device 23, control circuit 25, and power supply 27 are laterally adjacent (i.e., adjacent when viewed from the end), with control circuit 25 located between heater device 23 and power supply 27, although other arrangements are possible.

[0098] The control circuitry 25 may include a controller, such as a microprocessor device, constructed and arranged to control the heating of the aerosolizable material within the generating article 101, 301 as further described below.

[0099] Power source 27 may be, for example, a battery, which may be rechargeable or non-rechargeable. Examples of suitable batteries include, for example, lithium ion batteries, nickel batteries (such as nickel-cadmium batteries), alkaline batteries, etc. Battery 27 is electrically connected to heater device 23 to provide power when needed and under the control of control circuit 25 to heat the aerosolizable material of the generated product (to volatilize the aerosolizable material without burning it, as described).

[0100] An advantage of locating the power supply 27 adjacent to the side of the heater device 23 is that a physically larger power supply 25 can be used without making the overall device 51 excessively long. Of course, a physically larger power supply 25 generally has a larger capacity (i.e., total electrical energy that can be delivered, often measured in ampere-hours or the like), which can extend the battery life of the device 51.

[0101] In one example, the heater device 23 is in the shape of a generally hollow cylindrical tube having a hollow internal heating chamber 29 into which the generated product 101, 301 containing the aerosolizable material is inserted for heating during use. Different configurations of the heater device 23 are possible. For example, the heater device 23 may include a single heating element or may be formed of multiple heating elements aligned along the longitudinal axis of the heater device 23. The or each heating element may be annular or tubular, or may be at least partially annular or 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 of a ceramic material. Examples of suitable ceramic materials include alumina, aluminum nitride, and silicon nitride ceramics, which may be layered and sintered. Other heating devices are also possible, including, for example, induction heating, infrared heating elements heated by infrared radiation, or resistive heating elements formed, for example, by resistive electrical windings.

[0102] In one particular example, the heater device 23 is supported by a stainless steel support tube and includes a polyimide heating element. The heater device 23 is sized so that when the generated article 101, 301 is inserted into the device 51, substantially the entire aerosolizable material 103, 303 of the generated article 101, 301 is inserted within the heater device 23.

[0103] The or each heating element may be configured so that selected regions of the aerosolizable material are heated independently, e.g., sequentially (over time as described above), or together (simultaneously), as needed.

[0104] In this example, the heater device 23 is surrounded by insulation 31 along at least a portion of its length. The insulation 31 serves to reduce heat passing from the heater device 23 to the exterior of the device 51. This generally serves to reduce the power required by the heater device 23 due to reduced heat loss. The insulation 31 also serves to keep the exterior of the device 51 cooler while the heater device 23 is in operation. In one example, the insulation 31 may be a double-walled sleeve, which 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 of the insulation 31 are possible, including, for example, using insulation materials including any suitable foam-type material in addition to or instead of a double-walled sleeve.

[0105] The housing 59 may further include various internal support structures 37 for supporting not only the heating device 23 but all internal components.

[0106] The apparatus 51 further includes a collar 33 extending around the opening 20 and projecting therefrom into the interior of the housing 59, and a generally tubular chamber 35 located 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 of the chamber 35, each circumferentially disposed about the exterior of the chamber 35. When the generated product 101, 301 is inserted into the apparatus 51 over at least a portion of the length of the hollow chamber 35, a gap is formed between the hollow chamber 35 and the generated product 101, 301. The gap 36 is present around the entire circumference of the generated product 101, 301, covering at least a portion of the cooling segment 307.

[0107] The collar 33 includes a plurality of protrusions 60 arranged circumferentially around the opening 20 and projecting into the opening 20. The protrusions 60 space the opening 20 so that the opening width of the opening at the protrusions 60 is smaller than the opening width of the opening 20 without the opening 60. The protrusions 60 are configured to engage with the generated product 101, 301 inserted into the apparatus to assist in securing the generated product within the apparatus 51. The open spaces (not shown) defined by adjacent pairs of protrusions 60 and the generated products 101, 301 form ventilation paths around the exterior of the generated products 101, 301. These ventilation paths allow hot steam escaping from the generated product to exit the apparatus 51 and allow cool air to flow within the apparatus 51 around the generated products 101, 301 in the gap 36.

[0108] During operation, the generating product 101, 301 is removably inserted into the insertion point 20 of the device 51, as shown in Figures 6-8. Referring specifically to Figure 7, in one example, the body 103, 303 of aerosolizable material located towards the distal end 115, 315 of the generating product 101, 301 is entirely contained within the heater assembly 23 of the device 51. The proximal end 113, 313 of the generating product 101, 301 extends from the device 51 and serves as a mouthpiece assembly for the user.

[0109] During operation, the heater device 23 heats the generated product 101, 301 to volatilize at least one component of the aerosol-forming composition from the body 103, 303 of aerosolizable material.

[0110] The primary flow path for the heated and volatilized components from the body of aerosolizable material 103, 303 extends axially through the generating article 101, 301, the chamber filter segment 109, 309 inside the cooling segment 107, 307, and the mouth end segment 111, 313 to the user. In one example, the temperature of the heated and volatilized components emerging from the body of aerosolizable material may be between 60°C and 250°C, which may be higher than an acceptable inhalation temperature for a user. As the heated and volatilized components travel through the cooling segment 107, 307, they cool and some of the volatilized components condense on the inner surface of the cooling segment 107, 307.

[0111] 4 and 5, cool air can enter cooling segment 307 through ventilation holes 317 formed in cooling segment 307. This cool air mixes with the heated and volatilized components, further cooling the heated and volatilized components.

[0112] Aerosol-forming composition

[0113] Optionally, the amorphous solid may contain 1 to 60 wt % of a gelling agent, these weights being calculated on a dry weight basis.

[0114] Suitably, the amorphous solid may comprise from about 1 wt%, 5 wt%, 10 wt%, 15 wt%, 20 wt%, or 25 wt% to about 60 wt%, 50 wt%, 45 wt%, 40 wt%, 35 wt%, 30 wt%, or 27 wt% of the gelling agent (all calculated on a dry weight basis). For example, the amorphous solid may comprise 1-50 wt%, 5-40 wt%, 10-30 wt%, or 15-27 wt% of the gelling agent.

[0115] In some embodiments, the gelling agent comprises a hydrocolloid. In some embodiments, the gelling agent comprises one or more compounds selected from alginates, pectins, starches (and derivatives), celluloses (and derivatives), gums, silica or silicone compounds, clays, polyvinyl alcohol, and combinations thereof. For example, in some embodiments, the gelling agent comprises one or more of alginates, pectins, hydroxyethyl cellulose, hydroxypropyl cellulose, carboxymethyl cellulose, pullulan, xanthan gum, guar gum, carrageenan, agarose, acacia gum, fumed silica, PDMS, sodium silicate, kaolin, and polyvinyl alcohol. In some embodiments, the gelling agent comprises alginate and / or pectin, which may be combined with a hardening agent (e.g., a calcium source) to form the amorphous solid. In some embodiments, the amorphous solid may comprise calcium-crosslinked alginate and / or calcium-crosslinked pectin.

[0116] In some embodiments, the gelling agent comprises alginate, and the alginate is present in the amorphous solid in an amount of 10-30 wt% (calculated on a dry weight basis) of the amorphous solid. In some embodiments, the alginate is the only gelling agent present in the amorphous solid. In other embodiments, the gelling agent comprises alginate and at least one additional gelling agent, such as pectin.

[0117] In some embodiments, the amorphous solid may include a gelling agent, including carrageenan.

[0118] Preferably, the amorphous solid may comprise from about 5 wt%, 10 wt%, 15 wt%, or 20 wt% to about 80 wt%, 70 wt%, 60 wt%, 55 wt%, 50 wt%, 45 wt%, 40 wt%, or 35 wt% of an aerosol-generating agent (all calculated on a dry weight basis). The aerosol-generating agent may act as a plasticizer. For example, the amorphous solid may comprise 5-60 wt%, 10-50 wt%, or 20-40 wt% of an aerosol-generating agent. Optionally, the aerosol-generating agent comprises one or more compounds selected from erythritol, propylene glycol, glycerin, triacetin, sorbitol, and xylitol. Optionally, the aerosol-generating agent comprises, consists essentially of, or consists of glycerin. The inventors have determined that if the plasticizer content is too high, the amorphous solid will absorb water, resulting in a material that does not provide a satisfactory consumer experience upon use. The inventors have determined that if the plasticizer content is too low, the amorphous solid will be brittle and prone to breaking. The amount of plasticizer specified herein provides flexibility to the amorphous solid, allowing sheets of the amorphous solid to be wound onto bobbins useful in the manufacture of aerosol-generating articles.

[0119] In some cases, the amorphous solid includes an active substance. For example, in some cases, the amorphous solid additionally includes tobacco material and / or nicotine. For example, the amorphous solid may additionally include powdered tobacco and / or nicotine and / or tobacco extract. In some cases, the amorphous solid may include from about 1 wt%, 5 wt%, 10 wt%, 15 wt%, 20 wt%, or 25 wt% to about 70 wt%, 50 wt%, 45 wt%, or 40 wt% (calculated on a dry weight basis) of the active substance. In some cases, the amorphous solid may include from about 1 wt%, 5 wt%, 10 wt%, 15 wt%, 20 wt%, or 25 wt% to about 70 wt%, 60 wt%, 50 wt%, 45 wt%, or 40 wt% (calculated on a dry weight basis) of tobacco material and / or nicotine.

[0120] In some cases, the amorphous solid comprises one or more active agents and flavoring agents. In some cases, the amorphous solid comprises one or more of nicotine, tobacco extract, and flavoring agents.

[0121] In some cases, the amorphous solid includes an active substance such as tobacco extract. In some cases, the amorphous solid may include 5-60 wt% (calculated on a dry weight basis) of tobacco extract. In some cases, the amorphous solid may include about 5 wt%, 10 wt%, 15 wt%, 20 wt%, or 25 wt% to about 55 wt%, 50 wt%, 45 wt%, or 40 wt% (calculated on a dry weight basis) of tobacco extract. For example, the amorphous solid may include 5-60 wt%, 10-55 wt%, or 25-55 wt% of tobacco extract. The tobacco extract may include nicotine in a concentration such that the amorphous solid includes 1 wt%, 1.5 wt%, 2 wt%, or 2.5 wt% to about 6 wt%, 5 wt%, 4.5 wt%, or 4 wt% of nicotine (calculated on a dry weight basis). In some cases, there is no amorphous solid nicotine other than that obtained from tobacco extract.

[0122] In some embodiments, the amorphous solid does not contain tobacco material but does contain nicotine. In some such cases, the amorphous solid may contain from about 1 wt%, 2 wt%, 3 wt%, or 4 wt% to about 20 wt%, 15 wt%, 10 wt%, or 5 wt% nicotine (calculated on a dry weight basis). For example, the amorphous solid may contain from 1 to 20 wt%, or from 2 to 5 wt% nicotine.

[0123] Optionally, the amorphous solid may include a flavorant. Preferably, the amorphous solid may include about 60 wt% or less, 50 wt% or less, 40 wt% or less, 30 wt% or less, 20 wt% or less, 10 wt% or less, or 5 wt% or less of a flavorant. Optionally, the amorphous solid may include at least 0.1 wt%, about 0.5 wt%, 1 wt%, 2 wt%, 5 wt%, 10 wt%, 20 wt%, or 30 wt% of a flavorant (all calculated on a dry weight basis). For example, the amorphous solid may include 0.1-60 wt%, 1-60 wt%, 5-60 wt%, 10-60 wt%, 20-50 wt%, or 30-40 wt% of a flavorant. Optionally, the flavorant (if included) may include, consist essentially of, or consist of menthol. In some cases, the amorphous solid is flavor-free.

[0124] In some cases, the total active and / or flavorant content may be at least about 0.1 wt%, 1 wt%, 5 wt%, 10 wt%, 20 wt%, 25 wt%, or 30 wt%. In some cases, the total active (e.g., tobacco material and / or nicotine) and flavorant content may be less than about 80 wt%, 70 wt%, 60 wt%, 50 wt%, or 40 wt% (all calculated on a dry weight basis).

[0125] In some embodiments, the amorphous solid is a hydrogel and contains less than about 20 wt% water, calculated on a wet weight basis. In some cases, the hydrogel may contain less than about 15 wt%, less than 12 wt%, or less than 10 wt% water, calculated on a wet weight basis (WWB). In some cases, the hydrogel may contain at least about 1 wt%, 2 wt%, or at least about 5 wt% water. In some cases, the amorphous solid contains from about 1 wt% to about 15 wt%, or from about 5 wt% to about 15 wt%, calculated on a wet weight basis. Preferably, the water content of the amorphous solid is from about 5 wt%, 7 wt%, or 9 wt% to about 15 wt%, 13 wt%, or 11 wt% (WWB), most preferably about 10 wt%.

[0126] The amorphous solid may be formed from a gel, which may additionally contain a solvent present at 0.1 to 50 wt %. However, the inventors have determined that the inclusion of a solvent in which the flavoring agent is soluble reduces the stability of the gel, causing the flavoring agent to crystallize out of the gel. Therefore, in some cases, the gel does not contain a solvent in which the flavoring agent is soluble.

[0127] In some embodiments, the amorphous solid comprises less than 60 wt% of the filler, such as between 1 wt% and 60 wt%, or between 5 wt% and 50 wt%, or between 5 wt% and 30 wt%, or between 10 wt% and 20 wt%.

[0128] In other embodiments, the amorphous solid contains less than 20 wt%, preferably less than 10 wt% or less than 5 wt% filler. In some embodiments, the amorphous solid contains less than 1 wt% filler, and in some cases no filler.

[0129] If a filler is included, it may comprise one or more suitable inorganic adsorbents such as calcium carbonate, perlite, vermiculite, diatomaceous earth, colloidal silica, magnesium oxide, magnesium sulfate, magnesium carbonate, and molecular sieves. The amorphous solid may contain one or more organic fillers such as silica, cellulose and cellulose derivatives, and in certain particular cases the amorphous solid may contain calcium carbonate such as chalk.

[0130] In certain embodiments that include a filler, the filler is fibrous. For example, the filler may be a fibrous filler such as wood pulp, hemp fiber, cellulose, or a cellulose derivative. While not wishing to be bound by any theory, it has been determined that the inclusion of a fibrous filler in an amorphous solid increases the tensile strength of the material. This is particularly advantageous in instances where the amorphous solid is provided as a sheet, such as when the amorphous solid sheet surrounds a rod of aerosolizable material.

[0131] In some embodiments, the amorphous solid is free of tobacco fiber, hi certain embodiments, the amorphous solid is free of fiber.

[0132] In some embodiments, the aerosol-generating material does not contain tobacco fibers. In certain embodiments, the aerosol-generating material does not contain fibers.

[0133] In some embodiments, the aerosol-forming substrate does not contain tobacco fibers. In certain embodiments, the aerosol-forming substrate does not contain fibers.

[0134] In some embodiments, the aerosol-generating article is tobacco fiber-free, hi certain embodiments, the aerosol-generating article is fiber-free.

[0135] In some cases, the amorphous solid consists essentially of or consists of a gelling agent, an aerosol generating agent, one or more active agents (such as tobacco material and / or a nicotine source), water, and optionally flavorants.

[0136] How the wrapper is made

[0137] The wrapper may be made by a process including (a) forming a slurry containing the amorphous solid or precursor components, (b) applying the slurry to a carrier, (c) curing the slurry to form a gel, and (d) drying to form the amorphous solid.

[0138] Forming the layer of slurry in step (b) may include, for example, spraying, casting, or extruding the slurry. In some cases, the layer is formed by electrospraying the slurry. In some cases, the layer is formed by casting a sleeve.

[0139] In some cases, steps (b) and / or (c) and / or (d) may be performed at least partially simultaneously (e.g., while electrospraying). In some cases, these steps may be performed sequentially.

[0140] In some examples, the slurry has a viscosity of about 10 to about 20 Pa·s at 46.5°C, such as about 14 to 16 Pa·s at 46.5°C.

[0141] Step (c) of hardening the gel may include adding a hardening agent to the slurry. For example, the slurry may include sodium alginate, potassium alginate, or ammonium alginate as gel precursors and a calcium source (such as calcium chloride), with a hardening agent added to the slurry to form a calcium alginate gel.

[0142] The total amount of hardening agent, such as a calcium source, may be 0.5 to 5 wt % (calculated on a dry weight basis). The inventors have found that if too little hardening agent is added, the resulting gel will not stabilize the gel components, resulting in these components spilling out of the gel. The inventors have found that if too much hardening agent is added, the resulting gel will be sticky and difficult to handle.

[0143] Alginate is a derivative of alginic acid, 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. The addition of calcium crosslinks alginate to form a gel. The inventors have discovered that alginate with a high G monomer content readily forms a gel upon the addition of a calcium source. In some cases, therefore, the gel precursor may comprise alginate in which at least 40%, 45%, 50%, 55%, 60%, or 70% of the monomer units in the alginate copolymer are α-L-guluronic acid (G) units.

[0144] The slurry itself may also form part of the present invention. In some cases, the slurry solvent may consist essentially of or consist of water. In some cases, the slurry may contain about 50 wt%, 60 wt%, 70 wt%, 80 wt%, or 90 wt% solvent (WWB).

[0145] When the solvent comprises water, the dry weight content of the slurry corresponds to the dry weight content of the amorphous solids, and therefore, any discussion herein of solid compositions is expressly intended to be disclosed in conjunction with the slurry aspects of the invention.

[0146] Exemplary Embodiments

[0147] In some embodiments, the amorphous solid comprises menthol.

[0148] In some such embodiments, the amorphous solid has a composition (DWB) of about 20 wt% to about 40 wt% or about 25 wt% to 35 wt% of gelling agent (preferably including alginate, more preferably including alginate and pectin), about 35 wt% to about 60 wt% or about 40 wt% to 55 wt% of menthol, and about 10 wt% to about 30 wt% or about 15 wt% to about 25 wt% (DWB) of aerosol-generating agent (preferably including glycerin).

[0149] In one embodiment, the amorphous solid comprises about 32-33 wt% alginate / pectin gelling agent blend, about 47-48 wt% flavoring agent, and about 19-20 wt% glycerin aerosol generating agent (DWB).

[0150] The amorphous solid of these embodiments may have any suitable water content, for example, from about 2 wt% to about 10 wt%, or from about 5 wt% to about 8 wt%, or about 6 wt%.

[0151] Suitably, the amorphous solid occurs in the form of a sheet having a thickness of about 0.015 mm to about 1 mm, preferably about 0.02 mm to about 0.07 mm.

[0152] In some further embodiments, the amorphous solid has a composition (DWB) of about 5 wt% to about 40 wt% or about 10 wt% to 30 wt% of a gelling agent (preferably comprising alginate, more preferably comprising alginate and pectin), about 10 wt% to about 50 wt% or about 15 wt% to 40 wt% of menthol, about 5 wt% to about 40 wt% or about 10 wt% to about 35 wt% of an aerosol-generating agent (preferably comprising glycerin), and up to 60 wt% of optional filler, e.g., 5 wt% to 20 wt% or about 40 wt% to 60 wt% (DWB).

[0153] In one of these embodiments, the amorphous solid comprises about 11 wt% alginate / pectin gelling agent blend, about 56 wt% wood pulp filler, about 18% menthol flavoring, and about 15 wt% glycerin (DWB).

[0154] In another example of these embodiments, the amorphous solid comprises about 22 wt% alginate / pectin gelling agent blend, about 12 wt% wood pulp filler, about 36 wt% menthol flavoring, and about 30 wt% glycerin (DWB).

[0155] In some of the above embodiments, the sheet is provided on a carrier comprising paper. In some other embodiments, the sheet is provided on a carrier comprising metal foil, preferably aluminum metal foil. In some such embodiments, the amorphous solid abuts the metal foil.

[0156] In one embodiment, the sheet forms part of a laminate material having layers (preferably comprising paper) attached to the top and bottom surfaces of the sheet. Suitably, the sheet of amorphous solid has a thickness of from about 0.015 mm to about 1 mm.

[0157] In some embodiments, the amorphous solid comprises a flavoring agent that does not include menthol. In these embodiments, the amorphous solid has a composition (DWB) of: a gelling agent (preferably comprising alginate) in an amount of about 5 wt% to about 40 wt%, or about 10 wt% to 35 wt%, or about 20 wt% to about 35 wt%; a flavoring agent in an amount of about 0.1 wt% to about 40 wt%, or about 1 wt% to about 30 wt%, or about 1 wt% to about 20 wt%, or about 5 wt% to about 20 wt%; an aerosol-generating agent (preferably comprising glycerin) in an amount of about 15 wt% to about 75 wt%, or about 30 wt% to about 70 wt%, or about 50 wt% to about 65 wt%; and an optional filler (suitably wood pulp) in an amount of less than about 60 wt%, or less than about 20 wt%, or less than about 10 wt%, or about 5 wt% (preferably the amorphous solid does not comprise a filler).

[0158] In one of these embodiments, the amorphous solid comprises about 27 wt% alginate gelling agent, about 14 wt% flavoring agent, and about 57 wt% glycerin aerosol generating agent (DWB).

[0159] In another of these embodiments, the amorphous solid comprises about 29 wt% alginate gelling agent, about 9 wt% flavoring agent, and about 60 wt% glycerin (DWB).

[0160] In some embodiments, the amorphous solid comprises tobacco extract. In these embodiments, the amorphous solid comprises a gelling agent (preferably comprising alginate) in an amount of about 5 wt% to about 40 wt%, or about 10 wt% to 30 wt%, or about 15 wt% to about 25 wt%, a tobacco extract in an amount of about 30 wt% to about 60 wt%, or about 40 wt% to 55 wt%, or about 45 wt% to about 50 wt%. The composition (DWB) comprises an aerosol generating agent (preferably containing glycerin) in an amount of about 10 wt% to about 50 wt%, about 20 wt% to about 40 wt%, or about 25 wt% to about 35 wt% (DWB).

[0161] In one embodiment, the amorphous solid comprises about 20 wt% alginate gelling agent, about 48 wt% Virginia tobacco extract, and about 32 wt% glycerin (DWB).

[0162] The amorphous solid of these embodiments may have any suitable water content, for example, from about 5 wt% to about 15 wt%, or from about 7 wt% to about 13 wt%, or about 10 wt%.

[0163] Preferably, in any of these tobacco extract-containing embodiments, the amorphous solid has a thickness of about 50 μm to about 200 μm, or about 50 μm to about 100 μm, or about 60 μm to about 90 μm, preferably about 77 μm.

[0164] The slurry forming this amorphous solid may also form part of the present invention. In some cases, the slurry may have an elastic modulus (also called storage modulus) of about 5 to 1200 Pa, and in some cases, the slurry may have a viscous modulus (also called loss modulus) of about 5 to 600 Pa.

[0165] definition

[0166] The active substance used in the present invention is a physiologically active material, which is a material intended to achieve or enhance a physiological response. The active substance may be selected from, for example, dietary supplements, nootropics, and psychotropic drugs. The active substance may be naturally occurring or synthetically obtained. The active substance may include, for example, nicotine, caffeine, taurine, theine, vitamins such as B6, B12, or C, melatonin, cannabinoids, or components, derivatives, or mixtures thereof. The active substance may also include one or more components, derivatives, or extracts of tobacco, cannabis, or other plants.

[0167] In some embodiments, the active agent comprises nicotine.

[0168] In some embodiments, the active agent comprises caffeine, melatonin, or vitamin B12.

[0169] As described herein, the active substance may include one or more components, derivatives or extracts of cannabis, such as one or more cannabinoids or terpenes.

[0170] Cannabinoids are a group of natural or synthetic compounds that act on intracellular cannabinoid receptors (i.e., CB1 and CB2) that inhibit neurotransmitter release in the brain. Cannabinoids may occur naturally in plants such as cannabis (phytocannabinoids), in animals (zoocannabinoids), or artificially produced (synthetic cannabinoids). Cannabis species exhibit at least 85 different phytocannabinoids, divided into subclasses including cannabigerols, cannabichromenes, cannabidiols, tetrahydrocannabinols, cannabinols, and cannabinodiols, as well as other cannabinoids. Cannabinoids found in Cannabis sativa include, but are not limited to, cannabigerol (CBG), cannabichromene (CBC), cannabidiol (CBD), tetrahydrocannabinol (THC), cannabinol (CBN), 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), cannabinotriol (CBO), tetrahydrocannabinolic acid (THCA), and tetrahydrocannabivarinic acid (THCV A).

[0171] As described herein, an active agent may include or be derived from a plant or its components, derivatives, or extracts. As used herein, the term "plant" includes, but is not limited to, any material derived from a plant, such as extracts, leaves, bark, fiber, stems, roots, seeds, flowers, fruit, pollen, husks, and the like. Alternatively, materials may be derived synthetically from plants. The active ingredient may be a liquid, gas, solid, powder, dust, or crushed material. Examples of plants include tobacco, eucalyptus, celery, hemp, cocoa, cannabis, fennel, lemongrass, peppermint, spearmint, rooibos, chamomile, flax, ginger, ginkgo, hazel, hibiscus, bay leaf, licorice, matcha, yerba mate, orange peel, papaya, rose, sage, tea such as green tea or black tea, thyme, clove, cinnamon, coffee, aniseed, basil, bay leaf, cardamom, coriander, cumin, nutmeg, oregano, paprika, rosemary, saffron, and laurel. Examples of the mint include benders, lemon peel, mint, juniper, elderflower, vanilla, wintergreen, sedge, curcuma, turmeric, sandalwood, cilantro, bergamot, orange blossom, myrtle, blackcurrant, valerian, pimento, mace, damiento, oregano, olive, lemon balm, lemon basil, chives, fennel, 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 species: mentha piperita, Moroccan mint, Egyptian mint, peppermint, eau de cologne mint, candy mint, curly mint, Kentucky kernel mint, horse mint, pineapple mint, pennyroyal mint, curly mint, and malva.

[0172] In some embodiments, the plant is selected from eucalyptus, calendula, cocoa, and hemp.

[0173] In some embodiments, the plant is selected from rooibos and fennel.

[0174] As used herein, the terms "flavoring agent" and "flavoring agent" refer to those permitted by local regulations and used to produce a taste, odor, or other somatosensory stimulus desired by adult consumers. They include naturally occurring flavoring materials, plants, plant extracts, synthetically derived materials, or combinations thereof (e.g., tobacco, cannabis, licorice, hydrangea, eugenol, magnolia leaf, chamomile, fenugreek, clove, maple, matcha green tea, menthol, Japanese peppermint, 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, etc.). citrus, cucumber, blueberry, mulberry, citrus fruits, Drambuie, bourbon, scotch, whiskey, gin, tequila, rum, spearmint, peppermint, lavender, aloe, cardamom, celery, cascarilla, nutmeg, sandalwood, bergamot, geranium, khat, naswar, betel nut, shisha, pine, honey extract, rose oil, vanilla, lemon oil, orange oil, orange blossom, cherry blossom, cassia, caraway, cognac, jasmine, ylang-ylang, sage, fennel, wasabi, pimento, ginger, coriander, coffee, hemp, and peppermint oil from any species of the genus Mentha.Eucalyptus, holly, cocoa, lemongrass, rooibos, flax, ginkgo, hazel, hibiscus, bay leaf, yerba mate, orange peel, rose, tea such as green or black tea, thyme, juniper, elderflower, basil, bay leaf, cumin, oregano, paprika, rosemary, saffron, lemon peel, mint, sedge, curcuma, cilantro, myrtle, black currant, valerian, pimento, mace, damiento, origanum, olive, lemon balm, lemongrass These include additives such as spices, spice blends, 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, cyclamates, lactose, sucrose, glucose, fructose, sorbitol, mannitol, etc.), and other additives such as charcoal, chlorophyll, minerals, botanicals, or breath fresheners. These materials may be imitation, synthetic, or natural ingredients, or blends thereof. They may be in any suitable form, e.g., liquids such as oils, solids such as powders, or gases.

[0175] The flavourant preferably comprises one or more mint flavourants, preferably mint oil from any species of the genus Mentha. The flavourant preferably comprises, consists essentially of or consists of menthol.

[0176] In some embodiments, the flavorings include menthol, spearmint, and / or peppermint.

[0177] In some embodiments, the flavorings include cucumber, blueberry, citrus and / or red berry flavoring ingredients.

[0178] In some embodiments, the flavoring agent comprises eugenol.

[0179] In some embodiments, the flavorant comprises flavor components extracted from tobacco.

[0180] In some embodiments, the flavorant comprises a flavor component extracted from cannabis.

[0181] In some embodiments, the flavoring agent may include a sensory agent, which is chemically induced and recognized by stimulation of the fifth cranial nerve (trigeminal nerve) in addition to or instead of aroma or taste nerves, and may include agents that produce heating, cooling, tingling, or numbing sensations. A suitable heating agent is, but is not limited to, vanillyl ethyl ether, and a suitable cooling agent is, but is not limited to, eucalyptol, WS-3.

[0182] As used herein, the term "aerosol generating agent" refers to an agent that facilitates the generation of an aerosol. An aerosol generating agent may facilitate the generation of an aerosol by promoting the initial vaporization and / or condensation of a gas into an inhalable solid and / or liquid aerosol.

[0183] Suitable aerosol generating agents include, but are not limited to, polyols such as erythritol, sorbitol, glycerin, and glycols such as propylene glycol or triethylene glycol; monohydric alcohols; high-boiling hydrocarbons; acids such as lactic acid; glycerin derivatives; esters such as diacetin, triacetin, triethylene glycol diacetate, triethyl citrate, myristate esters including ethyl myristate and isopropyl myristate; and aliphatic carboxylic acid esters such as methyl stearate, dimethyl dodecanedioate, and dimethyl tetradecanedioate. The aerosol generating agent preferably has a composition that does not dissolve menthol. The aerosol generating agent preferably comprises, consists essentially of, or consists of glycerin.

[0184] As used herein, the term "tobacco material" refers to any material containing tobacco or its derivatives. The term "tobacco material" may include one or more of tobacco, tobacco derivatives, expanded tobacco, reconstituted tobacco, or tobacco substitutes. Tobacco material may include one or more of powdered tobacco, tobacco fiber, cut tobacco, extruded tobacco, tobacco stem, reconstituted tobacco, and / or tobacco extract.

[0185] The tobacco used to make the tobacco material may be any suitable tobacco, such as single grades or blends including Virginia and / or Burley and / or Oriental, shredded trash, or whole leaf. It may also be tobacco particle "fine powder" or dust, expanded tobacco, petioles, expanded petioles, and other processed petiole materials, such as cut and rolled petioles. The tobacco material may be powdered tobacco or reconstituted tobacco material. The reconstituted tobacco material may be tobacco fiber, formed by casting, a Fourdrinier-based papermaking process with subsequent addition of tobacco extract, or extrusion.

[0186] As used herein, the term "volatile material" refers to any component of the inhaled aerosol, including, but not limited to, aerosol-generating agents, flavorants, tobacco flavors and aromas, and nicotine. "Amorphous solid-derived volatile material" and "tobacco volatile material," etc., refer to the component of the aerosol-generating article in which the volatile material / aerosolizable component is disposed or obtained.

[0187] As used herein, the term "rod" generally refers to an elongated body that is a suitable shape for use in an aerosol-generating assembly. In some cases, the rod is substantially cylindrical.

[0188] Weight percentages (expressed as wt%) reported herein are calculated on a dry weight basis unless otherwise specified. All weight ratios are also calculated on a dry weight basis. Weights expressed on a dry weight basis refer to the total extract, slurry, or material, excluding water, and may include components that are themselves liquid at room temperature and pressure, such as glycerol. Conversely, weight percentages on a wet weight basis refer to all components, including water.

[0189] To avoid any doubt, in the specification, "comprises" is used to define the invention or a feature of the invention. When used in this sense, the phrase "substantially consisting of" is used in place of "comprises." Also disclosed are embodiments that can be defined using "consists essentially of" or "consists of." When a material "comprises" certain features, it means that those features are contained in, included in, or possessed by the material.

[0190] The above-described embodiments should be understood as illustrative examples of the present invention. It should be understood that any feature described with respect to any one embodiment may be used alone or in combination with other described features, and may be used in combination with one or more features of any of the other embodiments or in any combination with any of the other embodiments. Furthermore, equivalents and modifications not described above may also be employed without departing from the scope of the present invention, which is defined in the appended claims.

Claims

1. An aerosol-generating article for use in an aerosol-generating assembly, the aerosol-generating article comprising a wrapper, the wrapper comprising an aerosol-forming amorphous solid, the aerosol-forming amorphous solid comprising 5 to 80 wt % aerosol-generating agent and 1 to 20 wt % water.

2. 2. The aerosol-generating product according to claim 1, wherein the amorphous solid that forms the aerosol contains 1 to 15 wt % of water.

3. 3. The aerosol-generating product according to claim 1, wherein the amorphous solid that forms the aerosol is a dry gel.

4. 4. An aerosol-generating product according to any one of claims 1 to 3, wherein the amorphous solid forming the aerosol comprises an active substance and / or a flavouring agent.

5. 5. The aerosol-generating product of claim 4, wherein the active substance comprises or is derived from a plant.

6. 6. The aerosol-generating article of claim 5, wherein the plant comprises a plant-derived material.

7. 7. The aerosol-generating article of claim 6, wherein the plant-derived material comprises an extract, a leaf, a bark, a fiber, a stem, a root, a seed, a flower, a fruit, a pollen, a husk, or a pod.

8. 8. An aerosol-generating article according to any one of claims 1 to 7, wherein the amorphous solid that forms the aerosol comprises nicotine and / or tobacco extract.

9. 9. An aerosol-generating article according to any one of claims 1 to 8, wherein the wrapper comprises a carrier, and the aerosol-forming amorphous solid is disposed on the carrier.

10. 10. An aerosol-generating article according to any one of claims 1 to 9, wherein the aerosol-generating article comprises an aerosolizable material surrounded by a wrapper.

11. The aerosol generator includes two sections:

11. The aerosol-generating article of claim 10, wherein the amount of amorphous solid volatile material in the first wrapper portion is greater than the amount of amorphous solid volatile material in the second wrapper portion.

12. The rapper (a) forming a slurry containing an amorphous solid or precursor thereof; (b) applying the slurry to a carrier; (c) curing the slurry to form a gel; (d) drying the gel to form an amorphous solid; 12. An aerosol-generating article according to any one of claims 1 to 11, obtained or obtainable by a process comprising:

13. 13. An aerosol-generating assembly comprising the aerosol-generating article of any one of claims 1 to 12 and a device including a heater configured to heat but not burn the amorphous solid that forms the aerosol.

Citation Information

Patent Citations

  • Flavoured liquid, preparation and uses thereof

    GB2495925A

  • Flavored cigarettes

    JP2009509524A

  • Smoking articles that contain cigarettes

    JP2010506594A

  • Smoking filters

    JP2011525368A

  • Heating of smoking materials

    JP2014518096A