Stable wrapper for aerosol generating article

JP2025078641A5Pending Publication Date: 2025-10-10PHILIP MORRIS PRODUCTS SA
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
JP2025021452
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2019-06-10
Filing Date
2025-02-13
Publication Date
2025-10-10

AI Technical Summary

Technical Problem

Aerosol-generating articles with aerosol-generating substrates, particularly those containing high levels of liquid or aerosol formers, face issues of visual staining and mechanical weakening due to absorption of moisture and aerosol formers, leading to wrapper swelling and breakage, especially in heated aerosol-generating articles.

Method used

The use of a paper wrapper with a negative result to Method Tappi 559cm-02, Classical Method 2002, and optionally treated with PVOH or silicone, provides a grease barrier and reduces absorption of moisture and aerosol formers, maintaining structural integrity and preventing visual staining.

Benefits of technology

The wrapper maintains the aerosol-generating article's mechanical stability and appearance by reducing swelling and staining, allowing reliable insertion and removal from heating devices without damage.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 00000000_0000_ABST
    Figure 00000000_0000_ABST
Patent Text Reader

Abstract

To provide a wrapper used in smoking articles.SOLUTION: The wrapper has a low grease penetration or visual spotting and may be utilized with an aerosol generating substrate. The aerosol generating article (10) includes an aerosol generating substrate (12) containing nicotine and a gel composition. The wrapper is disposed about and in contact with the aerosol generating substrate. The wrapper includes a paper layer (50) including a surface treatment such that the paper has a negative result for at least one kit oil sample of method Tappi 559 cm-02, classical method 2002.SELECTED DRAWING: Figure 1
Need to check novelty before this filing date? Find Prior Art

Description

[Technical field]

[0001] The present disclosure relates to wrappers for use in smoking articles, which have low grease permeability or visual staining and can be utilized with aerosol-generating substrates. [Background technology]

[0002] Aerosol-generating articles in which an aerosol-generating substrate, such as a tobacco-containing substrate, is heated rather than combusted are well known in the art. Typically, in such heated aerosol-generating articles, an aerosol is generated by transferring heat from a heat source to a physically separated aerosol-generating substrate or material, which may be located in contact with, within, around, or downstream of the heat source. During use of the aerosol-generating article, volatile compounds are released from the aerosol-generating substrate by heat transfer from the heat source and are entrained in the air drawn through the aerosol-generating article. As the released compounds cool, they condense to form an aerosol.

[0003] Paper used to wrap an aerosol-generating substrate can absorb aerosol formers, water, and other liquid compounds present in mainstream smoke or aerosol passing through the aerosol-generating article, or moisture or water in the vicinity of the paper. The absorbed liquids can stain or weaken the paper, negatively affecting the appearance and structural integrity of the aerosol-generating article. Heated aerosol-generating articles are particularly susceptible to wetting and breakage due to the high levels of aerosol formers in the aerosol-generating substrates of these heated aerosol-generating articles. Heated aerosol-generating articles are particularly prone to expansion as aerosol components are absorbed by the wrapper, making removal from the heating device difficult. Heated aerosol-generating articles are particularly susceptible to breakage when tightly packed and then removed from the heating device.

[0004] It is desirable to provide an enclosed aerosol-generating substrate that is visually and mechanically stable, particularly for aerosol-generating articles that contain high levels of liquid or aerosol formers.

[0005] It would be desirable to provide an aerosol-generating article that includes a wrapper that has not swelled due to absorption of water or compounds contained in the aerosol-generating substrate.

[0006] It is desirable to provide an aerosol-generating article that includes a wrapper that provides a grease barrier to grease compounds contained in the aerosol-generating substrate. Summary of the Invention

[0007] It is also desirable that the wrapper not affect the taste of the aerosol generated by the aerosol-generating article.

[0008] It is also desirable that the wrapper not readily burn when in close proximity to a heating element.

[0009] SUMMARY OF THE PRESENT EMBODIMENTS It may be an object of the present invention to at least partially address one or more of the desired technical advantages set forth above.

[0010] According to the present disclosure, there is provided an aerosol-generating article comprising an aerosol-generating substrate comprising nicotine and a wrapper disposed about the aerosol-generating substrate, the wrapper comprising a paper layer having a negative result to at least one kit oil sample of Method Tappi 559cm-02, Classical Method 2002.

[0011] According to the present disclosure, there is provided an aerosol-generating article comprising an aerosol-generating substrate comprising nicotine and a gel composition, and a wrapper disposed about and in contact with the aerosol-generating substrate, the wrapper comprising a paper layer including a surface treatment such that the paper has a negative result to at least one kit oil sample of Method Tappi 559cm-02, Classical Method 2002.

[0012] According to the present disclosure, there is provided an aerosol-generating article. The aerosol-generating article may comprise an aerosol-generating substrate. The aerosol-generating substrate may comprise a wrapper. The wrapper may be disposed around the aerosol-generating substrate. The wrapper comprises a paper layer having a negative result to at least one kit oil sample according to Method Tappi 559cm-02, Classical Method 2002.

[0013] The paper layer preferably has a negative result for at least five kit oil samples of Method Tappi 559cm-02, Classical Method 2002. The paper layer preferably has a negative result for at least eight kit oil samples of Method Tappi 559cm-02, Classical Method 2002. The paper layer preferably has a negative result for all ten kit oil samples of Method Tappi 559cm-02, Classical Method 2002.

[0014] The paper layer preferably has a thickness / basis weight in the range of about 1.0 micrometer / gsm to about 1.2 micrometer / gsm. The paper layer may have a thickness less than about 50 micrometers, or less than about 40 micrometers. The wrapper includes a paper layer having a basis weight in the range of about 25 gsm to about 45 gsm, or about 35 gsm to about 40 gsm. The paper layer preferably has a basis weight in the range of about 25 gsm to about 45 gsm, and a thickness in the range of about 35 micrometers to about 50 micrometers.

[0015] The paper layer preferably has a negative result to at least one kit oil sample by Method Tappi 559cm-02, Classical Method 2002, and a water contact angle of at least 30 degrees. The paper layer may have a water contact angle of at least about 40 degrees, or at least about 45 degrees.

[0016] The wrapper preferably includes a paper layer having a breaking elongation CD / MD of about 2.5 or less and having a negative result for at least one kit oil sample of Method Tappi 559cm-02, Classical Method 2002. The paper layer may have a negative result for at least five kit oil samples of Method Tappi 559cm-02, Classical Method 2002, or all ten kit oil samples.

[0017] The wrapper preferably includes two paper layers, a first paper layer having a negative result to at least one kit oil sample by Method Tappi 559cm-02, Classical Method 2002, and a second paper layer having a second ell having a negative result to at least one kit oil sample by Method Tappi 559cm-02, Classical Method 2002. The wrapper may have a total thickness of less than about 80 micrometers.

[0018] The wrapper preferably comprises PVOH (polyvinyl alcohol) or silicone. The paper layer may comprise a surface treatment comprising PVOH or silicone. The addition of PVOH (polyvinyl alcohol) or silicone may improve the grease barrier properties of the wrapper.

[0019] The term "silicone" refers to siloxane. Preferably, the silicone or siloxane comprises polydimethylsiloxane.

[0020] The aerosol-generating substrate may preferably comprise a homogenized tobacco material. The homogenized tobacco material may comprise, on a dry weight basis, from about 1% to about 5% of a binder, and from about 5% to about 30% of the tobacco material of the aerosol former.

[0021] The aerosol-generating substrate may preferably comprise a gel composition. The gel composition may comprise a majority (by weight) of glycerin. The gel composition may comprise xanthan gum.

[0022] The aerosol-generating substrate may preferably comprise a metallic induction heating element. The metallic induction heating element may comprise a plurality of metallic induction heating elements. The metallic induction heating element may comprise a single metallic induction heating element.

[0023] The wrapper may be formed from one layer of paper. The wrapper may be formed from two layers of paper. The wrapper may be formed from more than two layers of paper.

[0024] The wrapper preferably covers at least 20%, at least 50%, at least 80%, at least 90%, at least 95%, at least 99%, or preferentially substantially the entire length (total length) of the aerosol-generating substrate. The wrapper preferably covers the entire aerosol-generating substrate and does not extend beyond the aerosol-generating substrate.

[0025] When the wrapper has two or more paper layers, a first paper layer may have the inherent properties described herein and a second paper layer may be considered a conventional paper layer. The second paper layer may preferably be disposed on top of the first paper layer. Alternatively, the first paper layer may be disposed on top of the second paper layer. The first paper layer having the inherent properties described herein is preferably in contact with the aerosol-forming substrate.

[0026] When the wrapper has two or more paper layers, the first paper layer may have the inherent properties described herein and the second paper layer may also have the inherent properties described herein. All paper layers forming the wrapper may have the inherent properties described herein. In particular, one or both paper layers forming the wrapper may include PVOH (polyvinyl alcohol) or silicone. One or both paper layers forming the wrapper may include a surface treatment including PVOH or silicone. Advantageously, smoking articles or aerosol-generating articles including the paper wrapper described herein may reduce wetting and absorption of water, humectants, or grease in the smoke or aerosol passing through the smoking article or aerosol-generating article. As a result, visible staining and physical weakening of the wrapper portion of the smoking article or aerosol-generating article may be reduced, even when high levels of humectants are included in the aerosol-generating substrate.

[0027] A paper wrapper having a negative result to at least one kit oil sample by Method Tappi 559cm-02, Classical Method 2002 will exhibit reduced paper swelling. A paper wrapper having a negative result to at least five kit oil samples by Method Tappi 559cm-02, Classical Method 2002 will preferably exhibit reduced paper swelling. A paper wrapper having a negative result to all ten kit oil samples by Method Tappi 559cm-02, Classical Method 2002 will preferably exhibit reduced paper swelling.

[0028] Advantageously, an aerosol-generating article including a wrapper as described herein may reduce absorption of moisture, water, aerosol formers, or grease in the smoke or aerosol passing through the aerosol-generating article, such that swelling, visual staining, and physical weakening of the wrapper portion of the aerosol-generating article may be reduced, even when high levels of aerosol formers are included in the aerosol-generating substrate.

[0029] Advantageously, the aerosol-generating article provides a visually and mechanically stable, wrapped aerosol-generating substrate that avoids expansion. This is particularly useful for heated, non-combustion aerosol-generating articles that may be inserted into a heating device. The induction heating element may be incorporated throughout the aerosol-generating substrate, since the aerosol-generating article wrapper resists combustion when in close proximity to the heating element.

[0030] The term "aerosol-generating article" is used herein to mean an article in which an aerosol-generating substrate is heated to generate an inhalable aerosol for delivery to a consumer. As used herein, the term "aerosol-generating substrate" means a substrate capable of releasing a volatile compound upon heating to generate an aerosol.

[0031] A conventional cigarette is lit when a user applies a flame to one end of the cigarette and draws air through the other end. Localized heat provided by the flame and oxygen in the air drawn through the cigarette ignites the end of the cigarette and the resulting combustion produces inhalable smoke. In contrast, in heated aerosol-generating articles, the aerosol is generated by heating a flavor-generating substrate (such as tobacco). Known heated aerosol-generating articles include, for example, electrically heated aerosol-generating articles and aerosol-generating articles in which the aerosol is generated by the transfer of heat from a combustible fuel element or heat source to a physically separated aerosol-forming substrate. For example, the aerosol-generating articles according to the present disclosure find particular application in aerosol-generating systems comprising an electrically heated aerosol generator having an internal heater blade adapted to be inserted into a rod of the aerosol-generating substrate. Aerosol-generating articles of this type are described in the prior art, for example in EP0822670.

[0032] As used herein, the term "aerosol-generating device" refers to a device that includes a heater element that interacts with an aerosol-generating substrate of an aerosol-generating article to generate an aerosol.

[0033] As used herein, the term "aerosol generating system" refers to the combination of an aerosol generating device and an aerosol generating article.

[0034] The term "aerosol-generating substrate" refers to a material capable of generating or emitting an aerosol. The aerosol-generating substrate may be a solid, a paste, a gel, a slurry, a liquid, or may comprise any combination of solid, paste, gel, slurry, and liquid compounds. The aerosol-generating substrate is preferably a solid or gel composition. The aerosol-generating substrate may preferably comprise nicotine.

[0035] The aerosol-generating article may comprise an aerosol-generating substrate and a mouthpiece. The mouthpiece may include a filter. A tipping wrapper may attach the filter to the aerosol-generating substrate.

[0036] The aerosol-generating substrate may be a solid composition. The composition may include a plant-based material. The aerosol-generating substrate may include tobacco, which preferably contains volatile tobacco flavour compounds that are released from the aerosol-generating substrate upon heating. The aerosol-generating substrate may include a homogenized tobacco material, an aerosol former and a binder.

[0037] Nicotine may be present in the aerosol-generating substrate in the range of about 0.5 to about 10% by weight nicotine, or about 0.5 to about 5% by weight nicotine. Preferably, the aerosol-generating substrate may contain about 1 to about 3% by weight nicotine, or about 1.5 to about 2.5% by weight nicotine, or about 2% by weight nicotine.

[0038] The aerosol-generating substrate may include flavoring agents. The plant material provides flavoring agents that may impart flavor to the taste of the aerosol generated by the aerosol-generating article. A flavoring agent is any natural or artificial compound that affects the sensory properties of the aerosol. Non-limiting examples of sources of flavoring agents include mint (such as peppermint and oak), coffee, tea, cinnamon, clove, cocoa, vanilla, eucalyptus, geranium, agave, and juniper, and combinations thereof.

[0039] The aerosol-generating substrate may include an essential oil. The essential oil provides a flavoring agent that may impart flavor to the taste of the aerosol generated by the aerosol-generating article. Suitable essential oils include, but are not limited to, eugenol, peppermint oil, and peppermint oil. A preferred essential oil is eugenol. The essential oil may be present in the aerosol-generating substrate in an amount of at least about 0.1% by weight, or at least about 0.5% by weight, or at least about 1% by weight. The essential oil may be present in the aerosol-generating substrate in a range of about 0.1% to about 10% by weight, or about 0.1% to about 5% by weight, or about 0.5% to about 2% by weight.

[0040] The aerosol-generating substrate may include a gel composition. The term "gel" refers to a solid at room temperature. In this context, "solid" means that the gel has a stable size and shape and does not flow. In this context, room temperature means 25 degrees Celsius. A gel may be defined as a substantially dilute crosslinked system that does not exhibit flowability at steady state. By weight, gels may be almost liquid, and they behave like a solid due to a three-dimensional crosslinked network within the liquid. It is the crosslinks within the fluid that give the gel its structure (hardness). Thus, a gel may be a dispersion of liquid molecules within a solid with liquid particles dispersed in a solid medium.

[0041] The gel composition may include a gelling agent forming a solid medium, an aerosol former such as glycerin dispersed in the solid medium, and nicotine dispersed in the glycerin. The composition forms a stable gel phase. The gel composition may include at least two gelling agents forming a solid medium, glycerin dispersed in the solid medium, and nicotine dispersed in the glycerin. The composition forms a stable gel phase. The gel composition may include a thickening agent and a gelling agent forming a solid medium, glycerin dispersed in the solid medium, and nicotine dispersed in the glycerin. The composition forms a stable gel phase. The gel composition may include nicotine, an aerosol former, a thickening agent, a hydrogen bond crosslinking gelling agent, and an ion crosslinking gelling agent. The gel composition may further include a divalent cation.

[0042] The term "thickening agent" refers to a compound that, when homogeneously added in an amount of 0.3% by weight to a 50% by weight water / 50% by weight glycerin mixture at 25° C., increases the viscosity without resulting in the formation of a gel, such that the mixture remains fluid or preserved. Preferably, the thickening agent, when homogeneously added in an amount of 0.3% by weight to a 50% by weight water / 50% by weight glycerin mixture at 25° C., increases the viscosity by 0.1 s without resulting in the formation of a gel. -1 Preferably, the thickener increases the viscosity by at least 50 cPs, preferably at least 200 cPs, preferably at least 500 cPs, preferably at least 1000 cPs, at a shear rate of 0.3 wt. % to a mixture of 50 wt. % water / 50 wt. % glycerin at 25° C. without causing the formation of a gel, and the mixture remains fluid or preserved. -1 "a compound that increases the viscosity of a mixture at a shear rate of at least 2 times, at least 5 times, at least 10 times, or at least 100 times greater than before addition and that maintains or preserves the mixture as a fluid."

[0043] The viscosity values ​​listed herein may be measured using a Brookfield RVT viscometer with a disk type RV#2 spindle rotating at 25° C. and a speed of 6 revolutions per minute (rpm).

[0044] The term "gelling agent" refers to a compound that, when homogeneously added to a 50% water / 50% glycerin mixture in an amount of about 0.3% by weight, leads to the formation of a solid medium or support matrix into a gel. Gelling agents include, but are not limited to, hydrogen bond cross-linking gelling agents and ionic cross-linking gelling agents.

[0045] The term "hydrogen bond cross-linking gelator" refers to a gelator that forms non-covalent or physical cross-links via hydrogen bonds. Hydrogen bonds are not covalent bonds to hydrogen atoms, but are a type of electrostatic dipole-dipole interaction between molecules. It results from the attraction between a hydrogen atom covalently bonded to an extremely electronegative atom, such as an N, O, or F atom, and another extremely electronegative atom.

[0046] The term "ionically cross-linking gelators" refers to gelators that form non-covalent or physical cross-links through ionic bonds. Ionic cross-linking involves the association of polymer chains through non-covalent interactions. A cross-linked network is formed when oppositely charged multivalent molecules are electrostatically attracted to each other, resulting in a cross-linked polymer network.

[0047] The gel composition includes an aerosol former. Ideally, the aerosol former is substantially resistant to thermal degradation at the operating temperature of the associated aerosol generating device. Suitable aerosol formers include, but are not limited to, polyhydric alcohols (such as triethylene glycol, 1,3-butanediol, glycerin, etc.), esters of polyhydric alcohols (such as glycerin monoacetate, diacetate, or triacetate), and aliphatic esters of mono-, di-, or polycarboxylic acids (such as dimethyl dodecanedioate, dimethyl tetradecanedioate, etc.). The polyhydric alcohol or mixtures thereof may be one or more of triethylene glycol, 1,3-butanediol, and glycerin (glycerin or propane-1,2,3-triol) or polyethylene glycol. Preferably, the aerosol former is glycerin.

[0048] The gel composition may include a majority of an aerosol former, such as glycerin. The gel composition may include a mixture of water and glycerin, with glycerin forming a majority (by weight) of the gel composition. Glycerin may form at least about 50% by weight of the gel composition. Glycerin may form at least about 60% by weight, or about 65% by weight, or about 70% by weight of the gel composition. Glycerin may form about 70% to about 80% by weight of the gel composition. Glycerin may form about 70% to about 75% by weight of the gel composition.

[0049] The gel composition preferably contains no water or only low levels of water. When the gel composition contains no water or only low levels of water, the gel composition may contain higher levels of aerosol formers, gelling agents, thickeners, and other compounds such as nicotine. Also, a gel composition containing no water or only low levels of water is easier and requires less energy to vaporize. Aerosols formed from gel compositions containing no water or only low levels of water may be perceived by users as being less hot. Preferably, the gel composition contains less than about 40% by weight, preferably less than about 30% by weight, preferably less than about 25% by weight. The gel composition may contain less than about 20% by weight, or less than about 15% by weight, or less than about 10% by weight, or less than about 5% by weight. The gel composition may preferably contain some water. If the composition contains some water, the gel composition is more stable. Preferably, the gel composition contains at least about 1% by weight, or at least about 2% by weight, or at least about 5% by weight of water. Preferably, the gel composition comprises at least about 10% by weight water, or at least about 15% by weight water. Preferably, the gel composition comprises in the range of about 15% to about 25% by weight water.

[0050] The gel composition may include a gelling agent that is a hydrogen-bond cross-linking gelling agent and an ionic cross-linking gelling agent. The gel composition may further include a thickening agent. The gelling agent may form a solid medium into which the aerosol former may be dispersed. The gelling agent may form a solid medium into which the aerosol former and water may be dispersed. The thickening agent in combination with the hydrogen-bond cross-linking gelling agent and the ionic cross-linking gelling agent surprisingly appears to support a solid medium and maintain the gel composition even when the gel composition includes a high level of glycerin.

[0051] The gel composition may contain a gelling agent in the range of about 0.4% by weight to about 10% by weight. Preferably, the gel composition may contain a gelling agent in the range of about 0.5% by weight to about 8% by weight. Preferably, the gel composition may contain a gelling agent in the range of about 1% by weight to about 6% by weight. Preferably, the gel composition may contain a gelling agent in the range of about 2% by weight to about 4% by weight. Preferably, the gel composition may contain a gelling agent in the range of about 2% by weight to about 3% by weight.

[0052] The gel composition may contain a thickening agent in the range of about 0.2% to about 5% by weight. Preferably, the thickening agent is in the range of about 0.5% to about 3% by weight. Preferably, the thickening agent is in the range of about 0.5% to about 2% by weight. Preferably, the thickening agent is in the range of about 1% to about 2% by weight.

[0053] The gel composition may include a thickener, a hydrogen-bond cross-linking gelling agent, and an ionic cross-linking gelling agent present in the gel composition in a total amount of about 1% by weight to about 8% by weight. Preferably, the gel composition may include a thickener, a hydrogen-bond cross-linking gelling agent, and an ionic cross-linking gelling agent present in the gel composition in a total amount of about 2% by weight to about 6% by weight. Preferably, the gel composition may include a thickener, a hydrogen-bond cross-linking gelling agent, and an ionic cross-linking gelling agent present in the gel composition in a total amount of about 3% by weight to about 5% by weight.

[0054] The gel composition may include a thickener, a hydrogen-bond cross-linking gelling agent, and an ionic cross-linking gelling agent, each of which is independently present in the gel composition at about 0.3% to about 3% by weight. Preferably, the gel composition may include a thickener, a hydrogen-bond cross-linking gelling agent, and an ionic cross-linking gelling agent, each of which is independently present in the gel composition at about 0.5% to about 2% by weight. Preferably, the gel composition may include a thickener, a hydrogen-bond cross-linking gelling agent, and an ionic cross-linking gelling agent, each of which is independently present in the gel composition at about 1% to about 2% by weight.

[0055] The thickening agent may comprise one or more of xanthan gum, carboxymethylcellulose, microcrystalline cellulose, methylcellulose, gum arabic, guar gum, lambda carrageenan, or starch. Preferably, the thickening agent comprises xanthan gum.

[0056] The gel composition may include a thickening agent such as xanthan gum in the range of about 0.2% to about 5% by weight. Preferably, the xanthan gum may be in the range of about 0.5% to about 3% by weight. Preferably, the xanthan gum may be in the range of about 0.5% to about 2% by weight. Preferably, the xanthan gum may be in the range of about 1% to about 2% by weight.

[0057] The hydrogen-bond cross-linking gelling agent may comprise one or more of galactomannan, gelatin, agarose, or konjac gum, or agar. It may be preferred that the hydrogen-bond cross-linking gelling agent comprises agar.

[0058] The gel composition may contain a hydrogen-bond cross-linking gelling agent such as agar in the range of about 0.3% by weight to about 5% by weight. Preferably, the gel composition may contain a hydrogen-bond cross-linking gelling agent in the range of about 0.5% by weight to about 3% by weight. Preferably, the gel composition may contain a hydrogen-bond cross-linking gelling agent in the range of about 1% by weight to about 2% by weight.

[0059] The ionic cross-linked gelling agent may include low acyl gellan, pectin, kappa carrageenan, iota carrageenan or alginate. The ionic cross-linked gelling agent may preferably include low acyl gellan.

[0060] The gel composition may contain an ionic cross-linking gelling agent such as low acyl gellan in the range of about 0.3% to about 5% by weight. Preferably, the gel composition may contain an ionic cross-linking gelling agent in the range of about 0.5% to about 3% by weight. Preferably, the composition may contain an ionic cross-linking gelling agent in the range of about 1% to about 2% by weight.

[0061] The gel composition may further comprise a divalent cation. The divalent cation may preferably comprise calcium ions, such as calcium lactate in solution. The divalent cation (such as calcium ions) may aid in gel formation in compositions that include a gelling agent, such as an ionically cross-linking gelling agent. Ionic effects may aid in gel formation. The divalent cation may be present in the gel composition in the range of about 0.1 to about 1% by weight, or about 0.5% by weight.

[0062] The gel composition may further include an acid. The acid may include a carboxylic acid. The carboxylic acid may include a ketone group. Preferably, the carboxylic acid may include a ketone group having less than about 10 carbon atoms, such as levulinic acid or lactic acid, or less than about 6 carbon atoms or less than about 4 carbon atoms. Preferably, the carboxylic acid has three carbon atoms (such as lactic acid). Lactic acid surprisingly improves the stability of the gel composition over similar carboxylic acids. The carboxylic acid may aid in gel formation. The carboxylic acid may reduce the change in nicotine concentration in the gel composition during storage.

[0063] The gel composition may contain a carboxylic acid such as lactic acid in the range of about 0.1% to about 5% by weight. Preferably, the carboxylic acid may be in the range of about 0.5% to about 3% by weight. Preferably, the carboxylic acid may be in the range of about 0.5% to about 2% by weight. Preferably, the carboxylic acid may be in the range of about 1% to about 2% by weight.

[0064] Nicotine is included in the gel composition. Nicotine may be added to the composition in free base form or salt form. The gel composition may include about 0.5 to about 10% by weight nicotine, or about 0.5 to about 5% by weight nicotine. Preferably, the gel composition may include about 1 to about 3% by weight nicotine, or about 1.5 to about 2.5% by weight nicotine, or about 2% by weight nicotine. The nicotine component of the gel formulation may be the most volatile component of the gel formulation. In some embodiments, water may be the most volatile component of the gel formulation, and the nicotine component of the gel formulation may be the second most volatile component of the gel formulation.

[0065] The aerosol-generating system may comprise a heat source, an aerosol-generating substrate, at least one air inlet downstream of the aerosol-generating substrate, and an airflow path extending between the at least one air inlet and the mouth end of the article. The heat source is preferably upstream of the aerosol-generating substrate. The heat source may be integral with the aerosol-generating device, and the consumable aerosol-generating article may be releasably received within the aerosol-generating device.

[0066] The heat source may be a combustible heat source, a chemical heat source, an electrical heat source, a heat sink or any combination thereof. The heat source may be an electrical heat source, preferably in the form of a blade that can be inserted into the aerosol-generating substrate. Alternatively, the heat source may be configured to surround the aerosol-generating substrate, and as such may be in the form of a hollow cylinder, or any other suitable form. Alternatively, the heat source is a combustible heat source. As used herein, a combustible heat source is a heat source that, in use, burns itself to generate heat, but unlike cigarettes, cigars or cigarillos, does not involve the combustion of the aerosol-generating substrate. The combustible heat source may comprise carbon and an ignition aid, such as a metal peroxide, superoxide, or nitrate, where the metal is an alkali metal or an alkaline earth metal.

[0067] The aerosol-generating substrate may include an induction heating element or susceptor, or a plurality of induction heating elements or susceptors. The induction heating element or susceptor heats up in the presence of an alternating or fluctuating electromagnetic field. When heating is by induction heating, the fluctuating electromagnetic field is transmitted through the aerosol-generating article to the induction heating element or susceptor, such that the susceptor or induction heating element converts the fluctuating field into thermal energy to heat the aerosol-generating substrate.

[0068] The induction heating element or susceptor may be formed from any material that can be inductively heated to a temperature sufficient to generate an aerosol from the aerosol-generating substrate. The induction heating element or susceptor may comprise metal or carbon. A preferred induction heating element or susceptor may comprise a ferromagnetic material (e.g., ferritic iron), or a ferromagnetic steel or stainless steel. The induction heating element or susceptor may comprise aluminum. The induction heating element or susceptor may be formed from 400 series stainless steel, such as grade 410, or grade 420, or grade 430 stainless 20 steel. Different materials dissipate different amounts of energy when positioned in an electromagnetic field having similar values ​​of frequency and field strength. The induction heating element or susceptor is preferably heated to a temperature above 250 degrees Celsius. However, the induction heating element or susceptor is preferably heated below 350 degrees Celsius to prevent burning of materials in contact with the susceptor.

[0069] An induction heating element or susceptor may be placed in close proximity to the wrapper of the aerosol-generating substrate because the wrappers described herein advantageously resist combustion.

[0070] The term "mouthpiece" as used herein refers to the portion of the aerosol-generating article that is designed to contact the mouth of the consumer. The mouthpiece may be the portion of the aerosol-generating article that may include a filter, or in some cases, the mouthpiece may be defined by the extent of the tipping wrapper. In other cases, the mouthpiece may be defined as a portion of the aerosol-generating article that extends about 40 mm from the mouth end of the aerosol-generating article, or that extends about 30 mm from the mouth end of the aerosol-generating article.

[0071] The terms "upstream" and "downstream" refer to the relative positions between elements of the aerosol-generating article described with reference to the direction of the aerosol as it is drawn from the aerosol-generating substrate and passes through the mouthpiece.

[0072] The terms "wrapper" or "paper wrapper" are used interchangeably and refer to one or more layers of packaging material formed of paper that surrounds the aerosol-generating substrate to contain the aerosol-generating substrate or to maintain the shape of the aerosol-generating article. The wrapper reduces staining on the exterior surface of the aerosol-generating article. The wrapper is preferably in contact with the aerosol-generating substrate.

[0073] The term "hydrophobicity" refers to a surface that exhibits the property of repelling water. One useful way to determine this is to measure the water contact angle. The "water contact angle" is the angle, traditionally measured through a liquid, where a liquid / vapor interface meets a solid surface. It quantifies the wettability of a solid surface by a liquid via Young's equation. Hydrophobicity or water contact angle is determined utilizing the TAPPI T558 test method, and results are presented as interfacial contact angles, reported in "degrees", which can range from nearly 0 to nearly 180 degrees.

[0074] Grease permeability is reported according to test method Tappi 559cm-02, classical method 2002. This test method determines the grease permeability of a paper or wrapper. This test method measures the level of permeability by dropping a mixture of castor oil and solvent onto it. These mixtures are a set of 10 kits prepared with castor oil, n-heptane, and toluene as listed in the table below. The total volume of one kit is 10ml. [Table 1]

[0075] The sample is placed, test side up, on a black surface. Starting with kit 1, a 25 μL drop is deposited on the paper with a micropipette fixed at a height of 13 mm above the sample. After 15 seconds, clean off the excess and immediately afterwards visually inspect the surface of the paper to check whether any dark spots appear. Then, remove the paper and carefully check whether there are any drops on the black surface. The results are reported as follows: If staining occurs only on the paper surface, the kit tests positive and the result is "visible through." If there is a stain on the black side, the kit tests positive and the result is a "pass-through." If there is no stain, the kit gives a negative result.

[0076] The test is repeated with the next kit until a result is "pass-through" or the last test kit (kit 10) is reached. Once a suitable test kit has been identified, measurements must be performed at least three times to confirm a "positive" stain.

[0077] The present disclosure relates to a wrapper for use in an aerosol-generating article, the wrapper comprising a paper layer having low grease permeability or grease staining and can be utilized with an aerosol-generating substrate. According to the present disclosure, an aerosol-generating article is provided, the aerosol-generating substrate comprising an aerosol-generating substrate containing nicotine and a wrapper disposed about the aerosol-generating substrate. The wrapper comprises a paper layer having low grease permeability and having a negative result for at least one kit oil sample of Method Tappi 559cm-02, Classical Method 2002, preferably having a negative result for at least five kit oil samples of Method Tappi 559cm-02, Classical Method 2002, preferably having a negative result for all ten kit oil samples of Method Tappi 559cm-02, Classical Method 2002.

[0078] The paper layer may have a thickness / basis weight in the range of about 0.8 micrometers / gsm to about 1.2 micrometers / gsm. The paper layer may have a thickness / basis weight in the range of about 1.0 micrometers / gsm to about 1.2 micrometers / gsm. The paper layer may have a thickness / basis weight of about 1.0 micrometers / gsm. The paper layer may have a thickness / basis weight of about 0.9 micrometers / gsm. The paper layer may have a thickness / basis weight of about 1.0 micrometers / gsm. The paper layer may have a thickness / basis weight of about 1.1 micrometers / gsm. The paper layer may have a thickness / basis weight of about 1.2 micrometers / gsm.

[0079] The paper layer may have a thickness of less than about 50 micrometers, or less than about 40 micrometers. The paper layer may have a thickness in the range of about 10 micrometers to about 50 micrometers. The paper layer may have a thickness in the range of about 20 micrometers to about 50 micrometers. The paper layer may have a thickness in the range of about 30 micrometers to about 50 micrometers. The paper layer may have a thickness in the range of about 35 micrometers to about 50 micrometers. The paper layer may have a thickness in the range of about 35 micrometers to about 40 micrometers. The paper layer may have a thickness in the range of about 40 micrometers to about 50 micrometers.

[0080] The paper layer may have a basis weight in the range of about 25 gsm to about 45 gsm. The paper layer may have a basis weight in the range of about 30 gsm to about 45 gsm. The paper layer may have a basis weight in the range of about 35 gsm to about 45 gsm. The paper layer may have a basis weight in the range of about 35 gsm to about 40 gsm.

[0081] In one embodiment, the paper layer has a negative result for all ten kit oil samples of Method Tappi 559cm-02, Classical Method 2002.

[0082] In one embodiment, the paper layer has a negative result to all ten kit oil samples of Method Tappi 559cm-02, Classical Method 2002. The paper layer has a basis weight of about 35 gsm to about 40 gsm and a thickness of about 35 micrometers to about 45 micrometers.

[0083] In one embodiment, the paper layer has a negative result to all ten kit oil samples of Method Tappi 559cm-02, Classical Method 2002. The paper layer has a basis weight of about 35 gsm to about 40 gsm and a thickness of about 35 micrometers to about 45 micrometers. The paper layer has a water contact angle of about 35 degrees to about 50 degrees.

[0084] The paper layer preferably comprises PVOH (polyvinyl alcohol) or silicone. In one embodiment, the paper layer comprises PVOH (polyvinyl alcohol). The PVOH may be applied to the paper layer as a surface coating. The PVOH may be disposed on an outer surface of the paper layer of the aerosol-generating article. The PVOH may be disposed on an outer surface of the paper layer of the aerosol-generating article to form a layer. The PVOH may be disposed on an inner surface of the paper layer of the aerosol-generating article. The PVOH may be disposed on an inner surface of the paper layer of the aerosol-generating article to form a layer. The PVOH may be disposed on both the inner and outer surfaces of the paper layer of the aerosol-generating article. The PVOH may be disposed on both the inner and outer surfaces of the paper layer of the aerosol-generating article to form a layer.

[0085] The paper layer may include a surface treatment comprising PVOH or a silicone. The paper layer may include a surface treatment comprising PVOH. The paper layer may include a surface treatment comprising silicone. The surface treatment may be applied to an outer surface of the paper layer. The surface treatment may be applied to an inner surface of the paper layer. The surface treatment may be applied to both the outer and inner surfaces of the paper layer. The addition of PVOH or silicone may improve the grease barrier properties of the paper layer.

[0086] The aerosol-generating substrate may include a gel composition. The gel composition may include a majority of an aerosol former, such as glycerin. The gel composition may include nicotine, at least about 50% by weight glycerin or at least 70% by weight glycerin, at least about 0.2% by weight hydrogen bond crosslinking gelling agent, at least about 0.2% by weight ionic crosslinking gelling agent, and at least about 0.2% by weight thickening agent. The gel composition may include xanthan gum.

[0087] The aerosol-generating substrate may comprise a homogenized tobacco material. The homogenized tobacco material may comprise, on a dry weight basis, from about 1% to about 5% of a binder, and from about 5% to about 30% of the tobacco material of the aerosol former.

[0088] The aerosol-generating substrate may comprise a metallic induction heating element. The metallic induction heating element may comprise a plurality of metallic induction heating elements. The metallic induction heating element may comprise a single metallic induction heating element.

[0089] It is contemplated that the wrappers described herein can reduce and prevent the formation of stains on the aerosol-generating article that are visible to the consumer. It has been observed that stains can appear on the aerosol-generating article when stored in a humid environment or during consumption. The stains can be due to the absorption of water or aerosol formers (including any suspended or dissolved colored substances) into the web of cellulosic fibers that make up the wrapper. Without being bound by any theory, it is believed that the water or aerosol formers interact with the cellulosic fibers of the paper, changing the fiber texture and thus locally changing optical attributes such as brightness, color, and opacity, and mechanical attributes such as tensile strength, permeability, etc. of the wrapper.

[0090] It is contemplated that the wrappers described herein may reduce or prevent expansion of the aerosol-generating article, thereby improving the usability of the aerosol-generating article and allowing the aerosol-generating article to be reliably inserted and removed from a heating device without damaging the aerosol-generating article.

[0091] The wrapper is a portion of the aerosol-generating article that is disposed around the aerosol-generating substrate to help maintain the cylindrical form of the aerosol-generating article. The wrapper may contain the aerosol-generating substrate over at least about 50% of the length of the plug of the aerosol-generating substrate. Preferably, the wrapper contains the aerosol-generating substrate over at least about 90% of the length of the plug of the aerosol-generating substrate. More preferably, the wrapper contains the aerosol-generating substrate over at least about 100% of the length of the plug of the aerosol-generating substrate.

[0092] The wrapper may exhibit a range of permeability, including none. The permeability of cigarette papers is determined utilizing the international standard test method ISO 2965:2009, and the results are presented in cubic centimeters per minute per square centimeter, referred to as "Colesta units." The permeability of the wrappers described herein ranges from about 1 to about 10 Coresta units, from about 5 to about 20 Coresta units, or from about 1 to about 5 Coresta units.

[0093] The wrapper may be formed from any cellulosic material, such as paper, wood, fabric, natural and man-made fibers. The wrapper is preferably free of fillers, such as calcium carbonate. The wrapper is preferably formed from at least 90% by weight cellulosic material. The wrapper is preferably formed from at least 95% by weight cellulosic material.

[0094] The paper layer may be formed from any cellulosic material, such as paper, wood, fabric, natural and man-made fibers. The paper layer is preferably free of fillers, such as calcium carbonate. The paper layer is preferably formed from at least 90% by weight of cellulosic material. The paper layer is preferably formed from at least 95% by weight of cellulosic material.

[0095] The surface of the paper layer may have a water contact angle of at least about 30 degrees, at least about 35 degrees, at least about 40 degrees, or at least about 45 degrees. Hydrophobicity or water contact angle is determined utilizing the TAPPI T558 test, with the results presented as interfacial contact angle, reported in "degrees", which can range from approximately 0 degrees to approximately 180 degrees.

[0096] The paper layer may have a negative result (no visible stains) to at least one kit oil sample of Method Tappi 559cm-02 Classical Method 2002. The paper layer may have a negative result to at least five kit oil samples of Method Tappi 559cm-02 Classical Method 2002, or all ten kit oil samples.

[0097] The wrapper can include two paper layers, a first layer having a negative result to at least one kit oil sample of Method Tappi 559cm-02 Classical Method 2002, and a second layer having a negative result to at least one kit oil sample of Method Tappi 559cm-02 Classical Method 2002. The wrapper has a total thickness of less than about 80 micrometers.

[0098] The wrapper may comprise two paper layers, with a first layer in contact with the aerosol-forming substrate and a second layer overlaying the first layer. The first layer may comprise PVOH (polyvinyl alcohol) or silicone, or may comprise a surface treatment comprising PVOH or silicone. The second layer may comprise PVOH (polyvinyl alcohol) or silicone, or may comprise a surface treatment comprising PVOH or silicone. Both the first and second layers may comprise PVOH (polyvinyl alcohol) or silicone, or may comprise a surface treatment comprising PVOH or silicone. Only the first layer may comprise PVOH (polyvinyl alcohol) or silicone, or may comprise a surface treatment comprising PVOH or silicone. Only the second layer may comprise PVOH (polyvinyl alcohol) or silicone, or may comprise a surface treatment comprising PVOH or silicone.

[0099] The aerosol-generating article includes an aerosol-generating substrate that may include a charge of tobacco surrounded by a wrapper as described herein. The aerosol-generating substrate may include any suitable type of tobacco material or multiple types or tobacco substitutes in any suitable form. The aerosol-generating substrate may include flue-cured tobacco, burley tobacco, Maryland tobacco, Oriental tobacco, specialty tobacco, homogenized or reconstituted tobacco, or any combination thereof. The aerosol-generating substrate may be provided in the form of tobacco cut filler, tobacco lamina, processed tobacco material such as volume expanded or puffed tobacco, processed tobacco stems such as cut rolled or cut puffed stems, homogenized tobacco, reconstituted tobacco, cast leaf tobacco, mixtures thereof, and the like. The term "tobacco cut filler" as used herein refers to tobacco material formed primarily from the lamina portion of tobacco leaves. The term "tobacco cut filler" as used herein refers to both a single tobacco genus and two or more tobacco genus forming a tobacco cut filler blend.

[0100] As used herein, the term "homogenized tobacco" refers to a material formed by agglomerating particulate tobacco. Homogenized tobacco may include reconstituted tobacco or cast leaf tobacco, or a mixture of both. The term "reconstituted tobacco" refers to a paper-like material that can be produced from tobacco by-products such as tobacco fines, tobacco dust, tobacco stems, or a mixture of the above. Reconstituted tobacco can be produced by extracting soluble chemicals in tobacco by-products, processing the remaining tobacco fibers into a sheet, and recoating the concentrated form of the extracted material on the paper. As used herein, the term "cast leaf tobacco" refers to a product resulting from a process well known in the art, which essentially involves placing a slurry containing ground tobacco particles and a binder (e.g., guar) on a support surface (such as a belt conveyor), drying the slurry, and removing the dried sheet from the support surface. Exemplary methods for producing these types of aerosol-generating substrates are described in US 5,724,998, US 5,584,306, US 4,341,228, US 5,584,306 and US 6,216,706. The homogenized tobacco may be formed into a sheet that is crimped, rolled, folded or otherwise compressed before being wrapped to form a rod. For example, homogenized tobacco material sheets for use in the present invention may be crimped using a crimping unit of the type described in CH-A-691156 that includes a pair of rotatable crimping rollers. However, it will be appreciated that homogenized tobacco material sheets for use in the present invention may also be textured using other suitable machinery and processes that deform or perforate the homogenized tobacco material sheets.

[0101] Aerosol-generating substrates used in aerosol-generating articles generally contain higher levels of aerosol formers than combustible smoking articles such as cigarettes. Humectants can also be referred to as "aerosol formers". Aerosol formers are used to describe any suitable known compound or mixture of compounds that facilitates the formation of an aerosol in use and is substantially resistant to thermal decomposition at the use temperature of the aerosol-generating substrate. Suitable aerosol formers are known in the art and include, but are not limited to, polyhydric alcohols (such as propylene glycol, triethylene glycol, 1,3-butanediol, glycerin, etc.), esters of polyhydric alcohols (such as glycerin monoacetate, diacetate, triacetate, etc.), and aliphatic esters of mono-, di- or polycarboxylic acids (such as dimethyl dodecanedioate, dimethyl tetradecanedioate, etc.). Preferred aerosol formers are polyhydric alcohols (such as propylene glycol, triethylene glycol, 1,3-butanediol, and most preferably glycerin or glycerin) or mixtures thereof. An aerosol-generating substrate may contain a single aerosol former. Alternatively, the aerosol-generating substrate may comprise a combination of two or more aerosol formers.

[0102] The aerosol-generating substrate may have a high level of aerosol formers. As used herein, a high level of aerosol formers means an aerosol former content of greater than about 10% by weight, or preferably greater than about 15% by weight, or more preferably greater than about 20% by weight. The aerosol-forming substrate may also have an aerosol former content of about 10% to about 30% by weight, about 15% to about 30% by weight, or about 20% to about 30% by weight. The aerosol-forming substrate may also have a glycerin content of about 10% to about 30% by weight, about 15% to about 30% by weight, or about 20% to about 30% by weight.

[0103] The aerosol-generating substrate may comprise at least about 1%, or at least about 2%, or at least about 5%, or at least about 7%, or at least about 10%, or at least about 12%, or at least about 15%, or at least about 18% by weight of aerosol formers. The aerosol-generating substrate may comprise in the range of about 1 to about 20%, or about 5 to about 20%, or about 10 to about 20% by weight of aerosol formers.

[0104] The aerosol-generating substrate may comprise at least about 1%, or at least about 2%, or at least about 5%, or at least about 7%, or at least about 10%, or at least about 12%, or at least about 15%, or at least about 18% glycerin by weight. The aerosol-generating substrate may comprise in the range of about 1 to about 20%, or about 5 to about 20%, or about 10 to about 20% glycerin by weight.

[0105] The aerosol-generating substrate in gel form may have a majority of an aerosol former, preferably glycerin. The gel composition may include a gelling agent forming a solid medium, an aerosol former such as glycerin dispersed in the solid medium, and nicotine dispersed in the glycerin. The composition forms a stable gel phase. The gel composition may include at least two gelling agents forming a solid medium, glycerin dispersed in the solid medium, and nicotine dispersed in the glycerin. The composition forms a stable gel phase. The gel composition may include a thickening agent and a gelling agent forming a solid medium, glycerin dispersed in the solid medium, and nicotine dispersed in the glycerin. The composition forms a stable gel phase. The gel composition may include nicotine, an aerosol former, a thickening agent, a hydrogen bond crosslinking gelling agent, and an ion crosslinking gelling agent. The gel composition may further include a divalent cation.

[0106] The gel composition may include a majority of an aerosol former, such as glycerin. The gel composition may include a mixture of water and glycerin, with glycerin forming a majority (by weight) of the gel composition. Glycerin may form at least about 50% by weight of the gel composition. Glycerin may form at least about 60% by weight, or about 65% by weight, or about 70% by weight of the gel composition. Glycerin may form about 70% to about 80% by weight of the gel composition. Glycerin may form about 70% to about 75% by weight of the gel composition.

[0107] The wrappers described herein are disposed around the aerosol-generating substrate and can reduce absorption of aerosol-forming compounds and water into the wrapper as air is drawn through the heated aerosol-generating article.

[0108] The aerosol-generating article may preferably be substantially cylindrical. This allows for a smooth flow of the aerosol. The aerosol-generating article may have an outer diameter of, for example, 4 mm to 15 mm, 5 mm to 10 mm, or 6 mm to 8 mm. The aerosol-generating article may have a length of, for example, 10 mm to 60 mm, 15 mm to 50 mm, or 20 mm to 45 mm.

[0109] The resistance to draw (RTD) of an aerosol-generating article varies depending on, among other things, the length and dimensions of the passageway, the size of the opening, the dimensions of the most reduced cross-sectional area of ​​the internal passageway, and the material used. The RTD of the aerosol-generating article can be between 50 millimeters of water (mm H2O) and 140 millimeters of water (mm H2O), between 60 millimeters of water (mm H2O) and 120 millimeters of water (mm H2O), or between 80 millimeters of water (mm H2O) and 100 millimeters of water (mm H2O). The RTD of the article refers to the static pressure difference between the opening or openings and the mouth end of the article when traversing the internal longitudinal passageway under steady state conditions with a volumetric flow rate of 17.5 milliliters / second at the mouth end. The RTD of a specimen can be measured using the method described in ISO standard 6565:2002.

[0110] All scientific and technical terms used herein have meanings commonly used in the art unless otherwise specified. The definitions provided herein are intended to facilitate understanding of certain terms used frequently herein.

[0111] As used in this specification and the appended claims, the singular forms "a," "an," and "the" include embodiments having plural referents unless the content clearly dictates otherwise.

[0112] As used in this specification and the appended claims, the term "or" is generally used in its sense including "and / or," unless the content clearly dictates otherwise.

[0113] As used herein, the words "have," "having," "include," "including," "comprise," "comprising," and the like are used in an open-ended sense and generally mean "including, but not limited to." It should be understood that "consisting essentially of," "consisting of," and the like are encompassed by "comprising" and the like.

[0114] The words "preferred" and "preferably" refer to embodiments of the invention that may, under certain circumstances, offer certain advantages. However, other embodiments may also be preferred, under the same or other circumstances. Moreover, the recitation of one or more preferred embodiments does not imply that other embodiments are not useful, and is not intended to exclude other embodiments from the scope of the present disclosure, including the claims. [Brief description of the drawings]

[0115] [Figure 1] FIG. 1 is a schematic cross-sectional view of an aerosol-generating article. [Diagram 2] FIG. 2 is a schematic cross-sectional view of another aerosol-generating article. [Diagram 3] FIG. 3 is a schematic cross-sectional view of another aerosol-generating article. [Figure 4] FIG. 4 is a schematic cross-sectional view of another aerosol-generating article. [Diagram 5] 5 and 6 are schematic cross-sectional views of an aerosol generation system. [Figure 6] Same as above. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0116] The aerosol-generating articles shown in Figures 1-4 depict one or more embodiments of the aerosol-generating articles or components of aerosol-generating articles described above. The schematic diagrams are not necessarily to scale and are presented for purposes of illustration and not limitation. The drawings depict one or more aspects described in the present disclosure. However, it will be understood that other aspects not depicted in the drawings are within the scope and spirit of the present disclosure.

[0117] The aerosol-generating article 10 of Figure 1 illustrates an aerosol-generating substrate 12 including a tobacco plug, a hollow cellulose acetate tube 14, a polylactic acid filter segment 16, and a mouthpiece segment 18 formed from a cellulose acetate material. These four elements are individually wrapped with paper layers. In particular, the aerosol-generating substrate 12 is wrapped with a first paper layer 50 as described herein. These four elements are disposed in end-to-end longitudinal alignment.

[0118] The aerosol-generating substrate 12, hollow cellulose acetate tube 14, and polylactic acid filter segment 16 are bonded together and surrounded by a second paper layer 20 to form an intermediate article. The mouthpiece segment 18 is bonded to the intermediate article by tipping paper 25 to form the aerosol-generating article 10. The first paper layer 50 and the second paper layer 20 may cooperate to form a wrapper, as described herein.

[0119] The aerosol-generating article 10 has an oral end 22 and an upstream distal end 24 located at the opposite end of the article relative to the oral end 22. The aerosol-generating article 10 shown in Figure 1 is particularly suitable for use in an electrically operated aerosol generating device that includes a heater for heating the aerosol-generating substrate 12.

[0120] The aerosol-generating article 100 of Figure 2 comprises four elements arranged in coaxial alignment: a high resistance to withdrawal (RTD) end plug 600 at the distal end 103, a first paper layer 500 surrounding the aerosol-generating substrate 124, a fluid guide 400, and a mouthpiece 170 at the proximal end 101. These four elements are arranged sequentially and surrounded by a second paper layer 110 to form the aerosol-generating article 100. The aerosol-generating article 100 has a proximal or mouth end 101 and a distal end 103 located at an opposite end of the aerosol-generating article 100 from the proximal end 101. The first paper layer 500 and the second paper layer 110 may cooperate to form a wrapper, as described herein.

[0121] The aerosol-generating article 100 of FIG. 3 illustrates a cut-away view of one example of an aerosol-generating article 100 that is suitable for heating using a blade-like heating element as well as induction heating.

[0122] The aerosol-generating article 100 comprises a first paper layer 500 surrounding, in order from proximal to distal, the mouthpiece 170 at the proximal end 101, the fluid guide 400, the cavity 700, the aerosol-generating substrate 124, and the plug 600. In this example, the aerosol-generating substrate 124 comprises a gel and a susceptor (not shown). The susceptor in this embodiment is a single aluminum strip centrally located along the longitudinal axis of the aerosol-generating substrate 124. The distal end 103 of the aerosol-generating article 100 is inserted into an aerosol-generating device 200 (see FIG. 6), thereby positioning a portion of the aerosol-generating article 100 adjacent to the induction heating element 230 (see FIG. 5) of the aerosol-generating device 200 (see FIG. 6). Electromagnetic radiation generated by the induction heating element 230 is absorbed by the susceptor and assists in heating the aerosol-generating substrate 124 within the first paper layer 500, which in turn assists in the ejection of material from the aerosol-generating substrate 124, for example, the entrainment of nicotine in the passing aerosol when negative pressure is applied to the proximal end 101 of the aerosol-generating article 100. Fluid, for example air, enters the outer longitudinal passage 831 via an opening (not shown), travels to the cavity 700 and then to the aerosol-generating substrate 124, where it mixes with the aerosol-generating substrate 124 and entrains nicotine before returning to the cavity, and then exits at the proximal end 101 after passing through an inner longitudinal passage (not shown) of the fluid guide 400.

[0123] In this embodiment, the first paper layer 500 surrounds the aerosol-generating substrate 124, and the first paper layer 500 is surrounded by the second paper layer 110. The first paper layer 500 and the second paper layer 110 form a wrapper, as described herein. The aerosol-generating substrate 124 may include a gel composition.

[0124] The aerosol-generating article 100 illustrated in FIGS. 2 and 3 may be used in conjunction with an aerosol-generating device 200, as illustrated in FIGS.

[0125] The aerosol-generating article 10 of Figure 4 illustrates an aerosol-generating substrate 12, a hollow cellulose acetate tube 14, a hollow tubular segment 16, and a mouthpiece segment 18. The aerosol-generating substrate 12 is wrapped with a first paper layer 50, as described herein. These four elements are arranged end-to-end in longitudinal alignment and surrounded by a second paper layer 20 to form the aerosol-generating article 10. The first paper layer 50 and the second paper layer 20 may cooperate to form a wrapper, as described herein.

[0126] The aerosol-generating article 10 has an oral end 22 and an upstream distal end 24 located at the opposite end of the article relative to the oral end 22. The aerosol-generating article 10 shown in Figure 4 is particularly suitable for use in an electrically operated aerosol generating device that includes a heater for heating the aerosol-generating substrate 12.

[0127] The aerosol-generating substrate 12 has a length of about 12 millimeters and a diameter of about 7 millimeters. The aerosol-generating substrate 12 is cylindrical in shape and has a substantially circular cross-section. The aerosol-generating substrate 12 comprises an assembly of a sheet of homogenized tobacco material. The sheet of homogenized tobacco material comprises 10 weight percent glycerin on a dry basis. The hollow cellulose acetate tube 14 has a length of about 8 millimeters and a thickness of 1 millimeter. The mouthpiece segment 18 comprises a plug of cellulose acetate tow having 8 denier per filament and a length of about 7 millimeters.

[0128] The hollow tubular segment 14 is provided as a cylindrical tube having a length of about 18 millimeters, with a tube wall thickness of about 100 micrometers. The aerosol-generating article 10 includes a ventilation zone 26 provided about 5 millimeters from the upstream end of the mouthpiece segment 18. The ventilation zone 26 is therefore about 12 millimeters from the downstream end of the aerosol-generating article and about 13 millimeters from the upstream end of the hollow tubular segment. The ventilation zone 26 is therefore about 21 millimeters from the downstream end of the aerosol-generating substrate 12.

[0129] 5-6 show examples of an aerosol-generating article 100 and an aerosol-generating device 200. The aerosol-generating article 100 has a proximal or mouth end 101 and a distal end 103. In FIG. 5, the distal end 103 of the aerosol-generating article 100 is received within a receiving portion 220 of the aerosol-generating device 200. The aerosol-generating device 200 includes a housing 210 defining a receptacle 220 configured to receive the aerosol-generating article 100. The aerosol-generating device 200 also includes a heating element 230 forming a recess 235 configured to receive the aerosol-generating article 100, preferably by an interference fit. The heating element 230 may include an electrical resistance heating component. Additionally, the device 200 includes a power source 240 and control electronics 250 that cooperate to control the heating of the heating element 230.

[0130] The heating element 230 may heat the distal end 103 of the aerosol-generating article 100. In this embodiment, the aerosol-generating substrate 124 comprises a gel containing nicotine. Heating the aerosol-generating article 100 causes the aerosol-generating substrate 124 to generate an aerosol containing nicotine, which may travel and exit the aerosol-generating article 100 at the proximal end 101. The aerosol generating device 200 comprises a housing 210. Figures 5-6 do not show the exact heating mechanism.

[0131] In some examples, the heating mechanism may be by conductive heating, where heat is transferred from the heating element 230 of the aerosol-generating device 200 to the aerosol-generating article 100. This can be simply done when the aerosol-generating article 100 is positioned in the receptacle 220 of the aerosol-generating device 200 and the distal end 103 (preferably the end where the aerosol-generating substrate 124 is located) and therefore the aerosol-generating article 100 is in contact with the heating element 230 of the aerosol-generating device 200. In a particular embodiment, the heating element comprises a heating blade protruding from the aerosol-generating device 200 and adapted to penetrate into the aerosol-generating article 100 and directly contact the aerosol-generating substrate 124.

[0132] In this embodiment, the heating mechanism is by induction, whereby a heating element emits radiative magnetic radiation that is absorbed by the tubular element when the aerosol-generating article 100 is positioned within the container 220 of the aerosol generating device 200 .

[0133] When the aerosol-generating article 100 is releasably received within the aerosol-generating device 200 and on the heating element 230, the aerosol-generating device 200 is activated and heats the aerosol-generating substrate 124 to a temperature of approximately 375 degrees Celsius. When a user sucks on the mouth end 101 of the aerosol-generating article 100, volatile compounds released from the aerosol-generating substrate 124 are drawn downstream through the aerosol-generating article 100 and condense to form an aerosol that is drawn through the mouthpiece 101 of the aerosol-generating article 100 and into the user's mouth. The wrapper 500, 110 repels aerosol formers and moisture from the aerosol, reducing staining and weakening of the wrapper 500, 110.

[0134] The first paper layer 50, 500 has a negative result for at least one kit oil sample of Method Tappi 559cm-02 Classical Method 2002. Preferably, the first paper layer 50, 500 has a negative result for at least five kit oil samples of Method Tappi 559cm-02 Classical Method 2002. Preferably, the paper layer 50, 500 has a negative result for all ten kit oil samples of Method Tappi 559cm-02 Classical Method 2002.

[0135] The first paper layer 50, 500 preferably has a thickness / basis weight of about 1.2 micrometers / gsm or less and a water contact angle of at least about 30 degrees. The first paper layer 50, 500 may have a thickness of less than about 50 micrometers, or less than about 40 micrometers. The first paper layer 50, 500 may have a basis weight in the range of about 25 gsm to about 45 gsm, or about 35 gsm to about 40 gsm.

[0136] The first paper layer 50, 500 preferably has a water contact angle of at least about 30 degrees and a breaking elongation ratio CD / MD of about 2.5 or less. The first paper layer 50, 500 may have a breaking elongation ratio CD / MD of about 2.2 or less, or about 2 or less.

[0137] The first paper layer 50, 500 preferably has an elongation at break ratio CD / MD of about 2.5 or less, and a negative result to at least one kit oil sample of Method Tappi 559cm-02 Classical Method 2002. The first paper layer 50, 500 may have a negative result to at least five kit oil samples, or all ten kit oil samples of Method Tappi 559cm-02 Classical Method 2002.

[0138] The wrapper includes a first paper layer 50, 500 and a second paper layer 20, 110, and the first paper layer 50, 500 preferably has a negative result for at least one kit oil sample of Method Tappi 559cm-02 Classical Method 2002, or a negative result for at least five kit oil samples of Method Tappi 559cm-02 Classical Method 2002, or a negative result for all ten kit oil samples of Method Tappi 559cm-02 Classical Method 2002.

[0139] The wrapper preferably includes a first paper layer 50, 500 and a second paper layer 20, 110, the first paper layer 50, 500 having a negative result to at least one kit oil sample of Method Tappi 559cm-02 Classical Method 2002, and the wrapper may have a total thickness of less than about 80 micrometers.

[0140] The first paper layer 50, 500 preferably comprises PVOH (polyvinyl alcohol) or silicone. The first paper layer 50, 500 may also include a surface treatment that includes PVOH or silicone. The addition of PVOH (polyvinyl alcohol) or silicone may improve the grease barrier properties of the wrapper.

[0141] The second paper layer 20, 110 preferably comprises PVOH (polyvinyl alcohol) or silicone. The second paper layer 20, 110 may also comprise a surface treatment comprising PVOH or silicone. The addition of PVOH (polyvinyl alcohol) or silicone may improve the grease barrier properties of the wrapper.

[0142] The above exemplary embodiments are not limiting, and other embodiments consistent with the above exemplary embodiments will be apparent to those skilled in the art.

Claims

1. An aerosol-generating article comprising: a mouthpiece segment; A fluid guide; an aerosol-generating substrate comprising nicotine and greater than about 20% by weight of an aerosol former; a wrapper disposed around and in contact with the aerosol-generating substrate, the wrapper comprising a paper layer including a surface treatment such that the paper has a negative result to at least one kit oil sample according to Method Tappi 559cm-02, Classical Method 2002.

2. 2. The aerosol-generating article of claim 1, wherein the paper layer has a negative result with at least five kit oil samples according to Method Tappi 559cm-02, Classical Method 2002, or a negative result with all ten kit oil samples according to Method Tappi 559cm-02, Classical Method 2002.

3. The paper layer has a thickness of 25 g / m 2 ~45g / m 2 3. The aerosol-generating article of claim 1, having a basis weight in the range of 1000 to 150 ...

4. 4. The aerosol-generating article according to claim 1, wherein the paper layer comprises PVOH or siloxane.

5. 5. The aerosol-generating article according to claim 1, wherein the paper layer comprises a surface treatment comprising PVOH or siloxane.

6. The aerosol-generating article according to any one of claims 1 to 5, wherein the paper layer comprises PVOH.

7. 7. The aerosol-generating article according to claim 1, wherein the paper layer contains siloxane.

8. 8. The aerosol-generating article according to claim 1, wherein the aerosol-generating substrate comprises a gel composition.

9. 9. The aerosol-generating article according to claim 8, wherein the gel composition comprises glycerin as a primary component.

10. 10. The aerosol-generating article of claim 9, wherein the gel composition comprises xanthan gum.

11. 11. The aerosol-generating article of claim 1, wherein the aerosol-generating substrate comprises homogenized tobacco material.

12. 12. The aerosol-generating article of claim 11, wherein the homogenized tobacco material comprises, on a dry weight basis, tobacco material, 1 percent to 5 percent binder, and 5 percent to 30 percent aerosol former.

13. 13. The aerosol-generating article according to any one of claims 1 to 12, wherein the aerosol-generating substrate comprises a metal induction heating element.

14. 14. An aerosol-generating article according to any preceding claim, wherein the aerosol-generating substrate comprises a plurality of metal induction heating elements.

15. 15. The aerosol-generating article according to claim 1, wherein the paper layer is in direct contact with the aerosol-generating substrate.