Smoking article cartridge

The smoking article uses a permeable enclosure in an aerosol-generating cartridge to minimize exposure to harmful combustion byproducts, offering a healthier and more enjoyable smoking experience.

JP7746465B2Active Publication Date: 2025-09-30R J REYNOLDS TOBACCO COMPANY
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Patent Information

Application Number
JP2024094915
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-10-30
Filing Date
2024-06-12
Publication Date
2025-09-30
Estimated Expiration
2039-10-29

AI Technical Summary

Technical Problem

Existing smoking articles produce significant amounts of incomplete combustion and pyrolysis products, which are undesirable for user health and satisfaction.

Method used

A smoking article design that includes an aerosol-generating cartridge with a permeable enclosure to retain aerosol precursors until heated, allowing for the release of aerosol through permeable portions, reducing exposure to incomplete combustion products.

Benefits of technology

The design provides a smoking experience with reduced incomplete combustion and pyrolysis products, enhancing user satisfaction and health safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a smoking article that demonstrates the ability to provide a user with much of enjoyment of conventional cigarette smoking, without delivering aerosol that incorporates considerable quantities of incomplete combustion products and pyrolysis products.SOLUTION: A smoking article 10 includes a mouth end portion 18 in fluid communication with an aerosol generating cartridge 68. The cartridge includes an enclosure 100 configured to receive an aerosol precursor therein, with the aerosol precursor being configured to generate aerosol in response to heat. At least a portion of the enclosure is permeable such that the aerosol precursor is retained within the enclosure while the aerosol formed from the aerosol precursor is released from the enclosure through the permeable portion upon heating of the enclosure or the aerosol precursor therein.SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] FIELD OF THE DISCLOSURE The present disclosure relates to products that incorporate tobacco and are intended for human consumption; more particularly, to smoking articles that produce a respirable aerosol with significantly reduced amounts of incomplete combustion and pyrolysis products compared to tobacco products that produce smoke through the combustion of tobacco. [Background technology]

[0002] A typical smoking article, such as a cigarette, has a substantially cylindrical rod-like structure and includes a charge, a wrapping, or a column of smokable material, such as tobacco (i.e., in the form of cut filler), surrounded by wrapping paper, thus forming a so-called "smoking rod," "tobacco rod," or "cigarette rod." Cigarettes typically have a cylindrical filter element arranged in an end-to-end relationship to the tobacco rod. Preferably, the filter element comprises plasticized cellulose acetate tow surrounded by a paper material known as "plug wrap." Preferably, the filter element is attached to one end of the tobacco rod using a surrounding wrapping material known as "tipping paper." It has also become desirable to perforate tipping material and plug wrap to dilute mainstream smoke with ambient air. A description of cigarettes and their various components is provided in Davis et al., Tobacco Production, Chemistry and Technology (Eds.) (1999). A typical type of cigarette is consumed by a consumer by lighting one end of the cigarette and burning the tobacco rod. The consumer draws on the other end of the cigarette (i.e., the filter end or mouth end) to receive mainstream smoke into his / her mouth. Over the years, efforts have been made to improve the components, structure, and performance of smoking articles. See, for example, the background art discussed in U.S. Patent No. 7,753,056 to Borschke et al.

[0003] Certain cigarettes, which use a carbonaceous fuel component as an alternative to burning tobacco, are available under the trade names "Premier," "Eclipse," and "Revo." It has been commercially marketed by RJ Reynolds Tobacco Company. See, e.g., Chemical and Biological Studies on New Cigarette Prototypes that Heat Instead of Burn Tobacco, RJ Reynolds Tobacco Company Monograph (1988), and Inhalation Toxicology, 12:5, p. 158 (2000). Additionally, a similar type of cigarette has been marketed in Japan by Japan Tobacco Inc. under the trade name "Steam Hot One."

[0004] Further, incorporating a carbonaceous fuel component for heat generation and aerosol formation, Various types of smoking products have become apparent in the patent literature in recent years, e.g., U.S. Patent Nos. 7,836,897 to Borschke et al.; 8,469,035 to Banerjee and 8,464,726 to Sebastian et al.; 8,616,217 to Tsuruizumi et al.; 8,915,255 to Poget et al.; 9,578,897 to Gladden et al.; 9,185,939 to Zuber et al.; 7,692,123 to Baba et al.; and 8,692,126 to Tsuruizumi et al., all of which are incorporated by reference in their entireties. See, for example, U.S. Patent Application Publication No. 8,616,217; U.S. Patent Application Publication No. 2012 / 0042885 to Stone et al.; U.S. Patent Application Publication No. 2013 / 0133675 to Shinozaki et al., and International Publication Nos. 2013 / 098380 to Raether et al.; 2013 / 098405 to Zuber et al.; 2013 / 098410 to Zuber et al.; 2013 / 104914 to Woodcock et al.; 2013 / 120849 to Roudier et al.; and 2013 / 120854 to Mironov et al. A historical overview of the technology relating to various types of smoking products incorporating carbonaceous fuel components for heat generation and aerosol formation can be found, for example, in the background of U.S. Patent Application Publication No. 2007 / 0215167 to Llewellyn Crooks et al., which is also incorporated by reference.

[0005] Many other smoking articles have been proposed over the years as an improvement or replacement for smoking products based on burning tobacco. Exemplary alternatives include devices that burn solid or liquid fuels to transfer heat to the tobacco, or devices that use chemical reactions to provide a heat source. Examples include U.S. Patent No. 9,078,473 to Worm et al., which is incorporated by reference in its entirety. [Prior art documents] [Patent documents]

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[0007] [Non-Patent Document 1] Tobacco Production, Chemistry and Technology,Davis et al.(Eds.)(1999) [Non-patent document 2] Chemical and Biological Studies on New Cigarette Prototypes that Heat Instead of Burn Tobacco,RJReynolds Tobacco Company Monograph(1988) [Non-patent document 3] Inhalation Toxicology,12:5,p.158(2000) Summary of the Invention [Problem to be solved by the invention]

[0008] A primary focus of improving or replacing smoking articles is typically to provide the smoking sensation of a cigarette, cigar, or pipe without delivering significant amounts of incomplete combustion and pyrolysis products. To this end, numerous smoking products, flavor generators, and pharmaceutical inhalers have been proposed that use electrical energy to vaporize or heat volatile substances, or numerous attempts have been made to provide the smoking sensation of a cigarette, cigar, or pipe without burning tobacco to a significant extent.

[0009] It would be highly desirable to provide a smoking article that demonstrates the ability to provide users with much of the enjoyment of smoking a conventional cigarette without delivering an aerosol incorporating significant amounts of incomplete combustion and pyrolysis products. [Means for solving the problem]

[0010] In various embodiments, the present disclosure provides a smoking article, the article including a mouth end and an aerosol-generating cartridge in fluid communication with the mouth end. The smoking article also includes an enclosure configured to receive an aerosol precursor therein. The aerosol precursor is configured to generate an aerosol in response to heat. At least a portion of the enclosure is permeable so that the aerosol precursor is retained within the enclosure, while upon heating of the enclosure or the aerosol precursor therein, an aerosol formed from the aerosol precursor is released from the enclosure through the permeable portion.

[0011] In various embodiments, the present disclosure provides an aerosol-generating cartridge for use in a smoking article. The cartridge includes an aerosol precursor and an enclosure configured to receive the aerosol precursor therein. The aerosol precursor is configured to generate an aerosol in response to heat. At least a portion of the enclosure is permeable so that the aerosol precursor is retained within the enclosure while, upon heating of the enclosure or the aerosol precursor therein, an aerosol formed from the aerosol precursor is released from the enclosure through the permeable portion.

[0012] In various embodiments, the present disclosure provides a method for manufacturing a smoking article. The method includes inserting an aerosol precursor into an enclosure. The aerosol precursor is configured to generate an aerosol in response to heat. At least a portion of the enclosure is permeable so that the aerosol precursor is retained within the enclosure while, upon heating of the enclosure or the aerosol precursor therein, an aerosol formed from the aerosol precursor is released from the enclosure through the permeable portion. The method also includes at least partially surrounding the aerosol-generating cartridge with a first wrapping material to form a smoking article subassembly. DETAILED DESCRIPTION OF THE INVENTION

[0013] Thus, the present disclosure includes, but is not limited to, the following embodiments.

[0014] Embodiment 1 A smoking article comprising a mouth end and an aerosol-generating cartridge in fluid communication with the mouth end, and an enclosure configured to receive an aerosol precursor therein, the aerosol precursor configured to generate an aerosol in response to heat, at least a portion of the enclosure being permeable such that the aerosol precursor is retained within the enclosure while, upon heating of the enclosure or the aerosol precursor therein, an aerosol formed from the aerosol precursor is released from the enclosure through the permeable portion.

[0015] Embodiment 2 The smoking article of any of the preceding embodiments, or any combination of the preceding embodiments, further comprising a heat-generating element comprising an ignitable heat-generating component, a carbonizable material, or a pyrolyzable material located on the opposite side of the aerosol-generating cartridge from the mouth end of the smoking article.

[0016] Embodiment 3 The smoking article of any of the preceding embodiments, or any combination of the preceding embodiments, further comprising a tobacco rod disposed between the aerosol-generating cartridge and the mouth end, or between the aerosol-generating cartridge and the heat-generating component.

[0017] Embodiment 4 The smoking article of any preceding embodiment, or any combination of the preceding embodiments, wherein the mouth end includes a filter element in fluid communication with the aerosol-generating cartridge.

[0018] Embodiment 5 The smoking article of any of the preceding embodiments, or any combination of the preceding embodiments, wherein the aerosol precursor comprises tobacco beads, tobacco pellets, extruded tobacco, cast sheet tobacco in cut filler form (the sheet being reconstituted with tobacco material in cut filler form), aerosol-forming beads, alumina beads, ceramic material, cast sheet of non-tobacco material in cut filler form, fiberglass matting material, foil sheet, gathered paper, or gel, or various combinations thereof.

[0019] Embodiment 6 The smoking article of any of the preceding embodiments, or any combination of the preceding embodiments, wherein the enclosure comprises tobacco, paper, or metal, or various combinations thereof.

[0020] Embodiment 7 The smoking article of any preceding embodiment, or any combination of the preceding embodiments, wherein the enclosure comprises a paper-foil laminate.

[0021] Embodiment 8 The smoking article of any preceding embodiment, or any combination of the preceding embodiments, wherein the enclosure includes an extensible peripheral wall defining an extensible hollow cylinder having opposed first and second longitudinal ends, the first and second end walls extending outwardly across the first and second longitudinal ends, respectively, of the peripheral wall.

[0022] Embodiment 9 The smoking article of any preceding embodiment, or any combination of the preceding embodiments, wherein one of the first end wall and the second end wall is perforated for releasing the aerosol from the enclosure.

[0023] Embodiment 10 The smoking article of any preceding embodiment, or any combination of the preceding embodiments, wherein the first end wall and the second end wall are perforated.

[0024] Embodiment 11 The smoking article of any preceding embodiment, or any combination of the preceding embodiments, wherein one of the first end wall and the second end wall is offset from the first and second longitudinal ends, respectively, of the peripheral wall.

[0025] Embodiment 12 The smoking article of any preceding embodiment, or any combination of the preceding embodiments, wherein the first end wall comprises a first portion and a second portion, and the first portion and the second portion are not coplanar.

[0026] Embodiment 13 The smoking article of any preceding embodiment, or any combination of the preceding embodiments, wherein the first portion is offset from the second portion along a longitudinal axis of the peripheral wall.

[0027] Embodiment 14 The smoking article of any preceding embodiment, or any combination of the preceding embodiments, wherein the enclosure is symmetrical about the longitudinal axis of the peripheral wall.

[0028] Embodiment 15 The smoking article of any preceding embodiment, or any combination of the preceding embodiments, wherein the enclosure is symmetrical about a plane that bisects the peripheral wall between its first and second ends.

[0029] Embodiment 16 one of the first wall surface and the second end wall is formed separately from the peripheral wall; The smoking article of any preceding embodiment, or any combination of the preceding embodiments, wherein the peripheral wall is engaged by welding, adhesive or friction fit.

[0030] Embodiment 17 The smoking article of any preceding embodiment, or any combination of the preceding embodiments, wherein one of the first wall and the second wall comprises a folded wrapper extending outwardly across the first and second longitudinal end faces of the peripheral wall and extending along the peripheral wall as one layer of the peripheral wall.

[0031] Embodiment 18 A smoking article, any of the preceding embodiments, or any combination of the preceding embodiments, further comprising a control body, the control body including at least a portion of a heating device associated with a receptacle defined by the control body, the receptacle configured to receive an end of a smoking article, the end opposite the mouth end, and having an aerosol-generating cartridge associated therewith.

[0032] Embodiment 19 The smoking article of any preceding embodiment, or any combination of the preceding embodiments, wherein the heating device is an electrical resistance heater configured to generate heat to heat the enclosure or the aerosol precursor therein.

[0033] Embodiment 20 The heating device resonance Any of the preceding embodiments, wherein the induction heater includes a transmitter; or A smoking article according to any combination of the preceding embodiments.

[0034] Embodiment 21 The aerosol generating cartridge is configured to generate an aerosol precursor in the enclosure or its interior. To heat, resonance configured to cooperate with a transmitter to generate heat resonance Including a receiver, A smoking article according to any of the preceding embodiments, or any combination of the preceding embodiments.

[0035] Embodiment 22 resonance Any of the preceding embodiments, wherein the receiver is attached to an aerosol generating cartridge. or any combination of the preceding embodiments.

[0036] Embodiment 23 The enclosure resonance Any of the preceding embodiments or any of the preceding embodiments including a receiver Smoking articles comprising any combination of:

[0037] Embodiment 24 the aerosol-generating cartridge includes a plurality of aerosol-generating cartridges; The smoking article of any preceding embodiment, or any combination of the preceding embodiments, wherein the aerosol precursor within a first one of the plurality of aerosol-generating cartridges has at least one different component relative to the aerosol precursor within a second one of the plurality of aerosol-generating cartridges.

[0038] Embodiment 25 A smoking article according to any preceding embodiment, or any combination of the preceding embodiments, wherein a first one of the plurality of aerosol-generating cartridges and a second one of the plurality of aerosol-generating cartridges are arranged consecutively with one another.

[0039] Embodiment 26 10. The smoking article of any of the preceding embodiments, or any combination of the preceding embodiments, further comprising a wrapping material surrounding at least a portion of the aerosol-generating cartridge, the wrapping material comprising a paper-foil sheet laminate, a paper-foil-paper sheet laminate, a paper-foil-tobacco sheet laminate, a nonwoven graphite sheet, a graphene sheet, a graphene-foil sheet laminate, a graphene-foil-paper sheet laminate, a paper-graphene sheet laminate, graphite ink embossed on a paper sheet, graphite ink embossed on a foil sheet, carbon nanotubes engaged on a paper sheet or a foil sheet, fullerenes engaged on a paper sheet or a foil sheet, or graphene engaged on a paper sheet or a foil sheet, or various combinations thereof.

[0040] Embodiment 27 1. An aerosol-generating cartridge for use in a smoking article, comprising: 1. An aerosol generating cartridge, wherein the cartridge includes an aerosol precursor and an enclosure configured to receive the aerosol precursor therein, the aerosol precursor being configured to generate an aerosol in response to heat, and at least a portion of the enclosure is permeable such that the aerosol precursor is retained within the enclosure while, upon heating of the enclosure or the aerosol precursor therein, an aerosol formed from the aerosol precursor is emitted from the enclosure through the permeable portion.

[0041] Embodiment 28 The cartridge of any of the preceding embodiments, or any combination of the preceding embodiments, wherein the aerosol precursor comprises tobacco beads, tobacco pellets, extruded tobacco, cast sheet tobacco in cut filler form (wherein the sheet is reconstituted with tobacco material in cut filler form), aerosol-forming beads, alumina beads, ceramic material, cast sheet of non-tobacco material in cut filler form, glass fiber mat material, foil sheet, gathered paper, or gel, or various combinations thereof.

[0042] Embodiment 29 The cartridge of any of the preceding embodiments, or any combination of the preceding embodiments, wherein the enclosure comprises tobacco, paper, or metal, or various combinations thereof.

[0043] Embodiment 30 The cartridge of any preceding embodiment, or any combination of the preceding embodiments, wherein the enclosure comprises a paper-foil laminate.

[0044] Embodiment 31 The cartridge of any preceding embodiment, or any combination of the preceding embodiments, wherein the enclosure includes an elongate peripheral wall defining an elongate hollow cylinder having opposed first and second longitudinal ends, the first and second end walls extending outwardly across the first and second longitudinal ends of the peripheral wall, respectively.

[0045] Embodiment 32 The cartridge of any preceding embodiment, or any combination of the preceding embodiments, wherein one of the first end wall and the second end wall is perforated for releasing the aerosol from the enclosure.

[0046] Embodiment 33 The cartridge of any preceding embodiment, or any combination of the preceding embodiments, wherein the first end wall and the second end wall are perforated.

[0047] Embodiment 34 The cartridge of any preceding embodiment, or any combination of the preceding embodiments, wherein one of the first end wall and the second end wall is offset from the first and second longitudinal ends, respectively, of the peripheral wall.

[0048] Embodiment 35 The cartridge of any preceding embodiment, or any combination of the preceding embodiments, wherein the first end wall includes a first portion and a second portion, and the first portion and the second portion are not coplanar.

[0049] Embodiment 36 The cartridge of any preceding embodiment, or any combination of the preceding embodiments, wherein the first portion is offset from the second portion along a longitudinal axis of the peripheral wall.

[0050] Embodiment 37 one of the first wall surface and the second end wall is formed separately from the peripheral wall; The cartridge of any preceding embodiment, or any combination of the preceding embodiments, wherein the peripheral wall is engaged by welding, adhesive, or friction fit.

[0051] Embodiment 38 The cartridge of any preceding embodiment, or any combination of the preceding embodiments, wherein one of the first wall and the second wall includes a folded wrapper extending outwardly across the first and second longitudinal end faces of the peripheral wall and extending along the peripheral wall as one layer of the peripheral wall.

[0052] Embodiment 39 The cartridge of any preceding embodiment, or any combination of the preceding embodiments, wherein the enclosure is symmetrical about the longitudinal axis of the peripheral wall.

[0053] Embodiment 40 The cartridge of any preceding embodiment, or any combination of the preceding embodiments, wherein the enclosure is symmetrical about a plane that bisects the peripheral wall between its first and second ends.

[0054] Embodiment 41 A method for manufacturing a smoking article, comprising inserting an aerosol precursor into an enclosure, the aerosol precursor being configured to generate an aerosol in response to heat, at least a portion of the enclosure portion being permeable so that the aerosol precursor is retained within the enclosure while an aerosol formed from the aerosol precursor is released from the enclosure through the permeable portion upon heating of the enclosure or the aerosol precursor therein, and also comprising at least partially surrounding the aerosol-generating cartridge with a first wrapping material to form a smoking article subassembly.

[0055] Embodiment 42 The method of any preceding embodiment, or any combination of the preceding embodiments, wherein inserting the aerosol precursor comprises inserting the aerosol precursor into a chamber defined by a peripheral wall of the enclosure, and the method comprises at least partially covering one end of the peripheral wall with an end wall to retain the aerosol precursor within the chamber.

[0056] Embodiment 43 The method of any of the preceding embodiments, or any combination of the preceding embodiments, wherein covering one end of the chamber with an end wall comprises wrapping a wrapping layer around the peripheral wall, the wrapping layer extending beyond the longitudinal ends of the peripheral wall, and folding an end region of the peripheral wall to extend outward across the longitudinal ends of the peripheral wall to form the end wall.

[0057] EMBODIMENT 44 The method of any of the preceding embodiments, or any combination of the preceding embodiments, wherein at least partially surrounding the aerosol-generating cartridge includes at least partially surrounding the aerosol-generating cartridge and the heat-generating element with a first wrapping material to form a subassembly of a smoking article.

[0058] Embodiment 45 The method of any preceding embodiment, or any combination of the preceding embodiments, wherein the heat-generating element comprises an ignitable heating element or an induction receiver of an induction heater.

[0059] Embodiment 46 The method of any of the preceding embodiments, or any combination of the preceding embodiments, wherein at least partially surrounding the aerosol-generating cartridge comprises at least partially surrounding the aerosol-generating cartridge and tobacco rod arranged consecutively therein with a first wrapping material to form a subassembly of a smoking article.

[0060] Embodiment 47 The method of any preceding embodiment, or any combination of the preceding embodiments, further comprising sequentially disposing a filter element with the smoking article assembly, and surrounding at least a portion of the smoking article assembly and the filter element with a second wrapping material to form a smoking article.

[0061] Embodiment 48 The method of any preceding embodiment, or any combination of the preceding embodiments, wherein sequentially disposing the filter element further comprises sequentially disposing the filter element with a smoking article assembly including an aerosol-generating cartridge disposed between the heat-generating element and the tobacco rod and surrounded by a first wrapping material.

[0062] These and other features, aspects, and advantages of the present disclosure will become apparent from the following detailed description taken in conjunction with the accompanying drawings, which are briefly described below. The present disclosure includes any combination of two, three, four, or more features or elements described in this disclosure or recited in one or more claims, regardless of whether those features or elements are explicitly combined or otherwise recited in a specific embodiment within the specification or claims. The present disclosure is intended to be read holistically, and any separable features or elements of the present disclosure should be considered to be intended to be combinable in any aspect and embodiment thereof, unless the context of the disclosure clearly dictates otherwise.

[0063] Thus, it should be understood that this Summary is provided merely for the purpose of summarizing certain exemplary embodiments in order to provide a basic understanding of some aspects of the present disclosure. Accordingly, the exemplary embodiments are merely illustrative and should not be construed as narrowing the scope or spirit of the present disclosure in any way. Other exemplary embodiments, aspects, and advantages will become apparent from the following detailed description, taken in conjunction with the accompanying drawings, which illustrate, by way of example, the principles of certain exemplary implementations.

[0064] Thus, having described the disclosure in general terms above, reference is made to the accompanying drawings, which are not necessarily drawn to scale. [Brief explanation of the drawings]

[0065] [Figure 1] 1 is a schematic illustration of a longitudinal cross-sectional view of an exemplary smoking article according to one aspect of the present disclosure. [Figure 2] 2 is a schematic illustration of a perspective view of an aerosol-generating cartridge in use within the smoking article of FIG. 1; FIG. [Figure 3] FIG. 3 is a schematic illustration of a detailed cross-sectional view of the aerosol generating cartridge of FIG. 2. [Figure 4] FIG. 2 is a schematic illustration of a longitudinal cross-sectional view of a second smoking article according to one embodiment of the present disclosure. [Figure 5] FIG. 1 is a schematic illustration of an aerosol generating cartridge incorporated into an electrically heated aerosol source member according to one aspect of the present disclosure. Detailed Description of the Invention

[0066] The present disclosure will hereinafter be described more fully with reference to exemplary embodiments thereof. These exemplary embodiments are described so that this disclosure will be thorough and complete, and will fully convey the scope of the disclosure to those skilled in the art. Indeed, the disclosure may be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that this disclosure will satisfy applicable legal requirements. As used in the specification and the appended claims, the singular forms "a," "an," "the," etc. include plural references unless the context clearly dictates otherwise. Also, unless stated otherwise, references herein may be to quantitative measures, values, geometric relationships, and the like, while any one or more, if not all, of these may be absolute or approximate, taking into account acceptable variations that may occur, such as variations due to engineering tolerances, etc.

[0067] FIG. 1 illustrates a representative smoking article 10 in the form of a cigarette according to one embodiment of the present disclosure. The smoking article 10 may have the overall size, shape, and general appearance of a cigarette with a filter. In the illustrated embodiment, the smoking article 10 has a rod-like shape and includes a heated portion 14 and a mouth end 18. A longitudinally extending, generally cylindrical heat-generation segment 35 is located in the heated portion 14 (which in some embodiments is at the end of the smoking article 10, although this is not required). The heat-generation segment 35 includes a heat source 40 surrounded by insulating material 42, most preferably coaxially surrounded by an outer wrapping material 42. In the illustrated embodiment, the heat source 40 is preferably configured to be activated by direct ignition of the heated portion 14. That is, the heat source or fuel component is designed to burn or smolder, thereby generating heat. The smoking article 10 can also include a filter segment 55 located at the opposite end (e.g., mouth end 18) from the heated portion 14. Located between the filter segment 55 and the heat-generation segment 35 is the aerosol-generation segment 65, which may include at least one aerosol-generation cartridge 68 and optionally includes a tobacco rod 70. In various embodiments, other components may be present between the aerosol-generation cartridge 68 and the mouth end 18. For example, in some embodiments, one or any combination of the following can be used: an air gap; a phase change material for cooling the air; a flavor-releasing medium; ion-exchange fibers capable of selective chemical adsorption; aerogel particles as a filter medium; and other suitable materials.

[0068] The heat-generating segment 35 most preferably includes a combustible heat source 40 having a generally cylindrical shape and incorporating a combustible carbonaceous material. Examples of combustible fuel components are discussed in U.S. Patent Application Publication No. 2017 / 0000188 to Nordskog, which is incorporated herein by reference in its entirety. Such combustible carbonaceous materials generally have a high carbon content. Preferred carbonaceous materials are composed predominantly of carbon and typically have a carbon content of greater than about 60 percent, commonly greater than about 70 percent, often greater than about 80 percent, and frequently greater than about 90 percent, on a dry weight basis. Such combustible fuel components may incorporate components other than combustible carbonaceous material (i.e., tobacco components such as powdered tobacco or tobacco extract, flavoring agents, salts such as sodium chloride, potassium chloride, sodium carbonate, thermally stable carbon fibers, iron oxide powder, glass filaments, micronized calcium carbonate, alumina granules, ammonia sources such as ammonia salts, and / or binders such as guar gum, ammonium alginate, and sodium alginate). An exemplary heat source 40 may have, for example, a length of about 12 mm and an overall outermost diameter of about 4.2 mm. An exemplary heat source 40 may be extruded or compounded with crushed or pulverized carbonaceous material and have a dry weight density of about 0.5 g / cm. 3 More than 0.7 g / cm in most cases 3 More than 1 g / cm 3 It has a density exceeding .

[0069] Other embodiments of the heat source 40 may include carbon foam formed by a foaming process. In other embodiments, the heat source 40 may be co-extruded with the insulation 42, thus reducing manufacturing time and costs. Still other embodiments of the heat source, also referred to as a fuel component, may include the type described in U.S. Pat. No. 4,819,655 to Roberts et al. or U.S. Patent Application Publication No. 2009 / 0044818 to Takeuchi et al., each of which is incorporated herein by reference.

[0070] The carbonaceous fuel component providing the heat source 40 may include components and configurations of the type incorporated into cigarettes sold commercially under the trade names "Premier," "Eclipse," "Revo," and "Steam Hot One." Additionally, representative types of heat generating segments, fuel component characteristics, and their representative components, designs, and configurations, as well as the manner and method for manufacturing such heat generating segments and fuel components, are described in U.S. Patent Nos. 4,714,082 to Banerjee et al.; 4,756,318 to Clearman et al.; 4,881,556 to Clearman et al.; and 4,881,556 to Clearman et al. No. 5,989,619 to Farrier et al.; No. 5,020,548 to Clearman et al.; No. 5,027,837 to Clearman et al.; No. 5,067,499 to Banerjee et al.; No. 5,076,297 to Farrier et al.; No. 5,099,861 to Clearman et al.; No. 5,105,831 to Banerjee et al.; White No. 5,129,409 to Best et al.; No. 5,148,821 to Best et al.; No. 5,156,170 to Clearman et al.; No. 5,178,167 to Riggs et al.; No. 5,211,684 to Shannon et al.; No. 5,247,947 to Clearman et al.; No. 5,345 to Clearman et al. ,955; 5,461,879 to Barnes et al.; 5,469,871 to Barnes et al.; 5,551,451 to Riggs; 5,560,376 to Meiring et al.; 5,706,834 to Meiring et al.; 5,727,571 to Meiring et al.; 7,836,897 to Borschke et al.; 8,617,263 to Banerjee et al., and 8,678,013 to Crooks; 9,220,301 to Banerjee;No. 9,345,268 to Stone et al.; No. 9,788,571 to Conner et al.; and U.S. Patent Application Publication No. 2005 / 0274390 to Banerjee et al.; and U.S. Patent Application Publication No. 2012 / 0042885 to Stone et al. For reference, the composition of fuel components and their component types are described in U.S. Patent Application Publication No. 4,819,655 to Roberts et al. and U.S. Patent Application Publication No. 2009 / 0044818 to Takeuchi et al.

[0071] Certain fuel components may include high-carbon carbonaceous materials obtained from carbonized or pyrolyzed cotton-containing fibers (e.g., cotton linters). See, e.g., U.S. Patent Nos. 4,219,031 to Rainer; 4,920,990 to Lawrence et al.; 5,007,440 to Robinson et al.; 5,060,673 to Lehman; 5,129,409 to White et al.; 5,211,684 to Shannon et al.; and 8,119,555 to Banerjee et al. for descriptions of carbonized or pyrolyzed cotton linter materials and the manner and methods of incorporating these materials into smoking articles, carbonized smoking materials, and fuel components.

[0072] The insulation 42 of the heat generation segment 35 may include glass filaments or glass fibers. The insulation 42 may act as a jacket to help hold the heat source 40 firmly in place within the smoking article 10 (e.g., disposed between the heat source and the wrapping material 45). In embodiments, the insulation 42 is provided in the form of a nonwoven mat of glass filaments. The insulation 42 may be provided as a multi-layered component, including, for example, an inner layer or mat 75 of nonwoven glass filaments, a middle layer of reconstituted tobacco paper 76, and an outer layer of nonwoven glass filaments 77. These layers may be concentrically opposed or may surround the heat source 40 in an overlapping and / or sequentially stacked manner. Various other insulation embodiments may be molded, extruded, foamed, or otherwise formed. Specific embodiments of insulation structures may include those described in U.S. Patent Application Publication No. 2012 / 0042885 to Stone et al., incorporated herein by reference in its entirety.

[0073] The insulation may be further configured to ensure the passage of inhaled air and aerosols. Suitable insulation assemblies are incorporated into cigarette varieties commercially sold under the trade names "Premier," "Eclipse," and "Steam Hot One." Examples of insulation materials, insulation assembly components, representative assembly configurations within heat-generating segments, insulation assembly wrappers, and modes and methods for manufacturing such components and assemblies include those described in U.S. Patent Nos. 4,807,809 to Pryor et al.; 4,893,637 to Hancock et al.; 4,938,238 to Barnes et al.; 5,027,836 to Shannon et al.; No. 5,065,776 to Lawson et al.; No. 5,105,838 to White et al.; No. 5,119,837 to Banerjee et al.; No. 5,247,947 to Clearman et al.; No. 5,303,720 to Banerjee et al.; No. 5,345,955 to Clearman et al.; Casey This is further elucidated in Nos. 5,396,911 to III et al.; 5,546,965 to White; 5,727,571 to Meiring et al.; 5,902,431 to Wilkinson et al.; 5,944,025 to Cook et al.; 8,424,538 to Thomas et al.; 8,464,726 to Sebastian et al.; and 8,678,013 to Crooks et al.

[0074] In one embodiment, both ends of the heat generation segment 35 are open and exposed to at least the heat source 40 and the insulating material 42 at the heated portion 14. The heat source 40 and the surrounding insulating material 42 may be configured so that both materials extend equally in length (e.g., the ends of the insulating material 42 are flush with the respective ends of the heat source 40, particularly at the downstream end of the heat generation segment 35). Optionally, the insulating material 42 may extend slightly beyond one or both ends of the heat source 40 (i.e., by about 0.5 mm to about 2 mm). Furthermore, during use of the smoking article 10, heat and / or heated air generated when the heated portion 14 is ignited may pass reliably through the heat generation segment 35, through the heat source 40 itself (e.g., longitudinal channels extending through the heat source 40), and / or longitudinally through the insulating material 42 as inhaled by a user at the mouth end 18.

[0075] In one embodiment, the wrapper 45 surrounds the insulating material 42 that extends longitudinally along the outermost surface of the heated portion 14 of the smoking article 10. The wrapper 45 may be a paper wrapper, such as the type of paper wrapper used to surround the insulating region of the heat source segment of cigarettes commercially sold by RJ Reynolds Tobacco Company under the trade names "Premier" and "Eclipse." Thus, the "wrapper 45" may also be referred to as the "outer wrapper 45" to illustrate this embodiment, but this does not limit the wrapper 45 to a paper wrapper.

[0076] The heat-generation segment 35 is preferably positioned so that one end is located at or very near the heated portion 14 and is coaxially aligned in an end-to-end continuous relationship with the downstream aerosol-generation segment 65. The proximity of the heat-generation segment 35 to the heated portion 14 provides for direct ignition of the heat source 40 of the heat-generation segment 35.

[0077] The cross-sectional shape and dimensions of the heat generation segment 35, prior to combustion during use, can vary. Preferably, the cross-sectional area of ​​the combustion component / heat source 40 comprises about 10 percent to about 35 percent, often about 15 percent to about 25 percent, of the total cross-sectional area of ​​the heat generation segment 35, while the cross-sectional area of ​​the exterior or peripheral region (including the insulation 42 and associated wrapper 45) comprises about 65 percent to about 90 percent, often about 75 percent to about 85 percent, of the total cross-sectional area of ​​the heat generation segment 35. For example, in a cylindrical smoking article 10 having a circumference of about 24 mm to about 26 mm, a typical fuel component / heat source 40 will generally have a circular cross-sectional shape with an outer diameter of about 2.5 mm to about 5 mm, often about 3 mm to about 4.5 mm.

[0078] The mouth end 18 of the smoking article 10 may include a suitable mouthpiece, such as a filter segment 55. The filter segment 55 may be located at one end of the aerosol-generation segment 65 such that the filter segment 55 and the aerosol-generation segment 65 are coaxially aligned in a continuous, end-to-end relationship with no barrier between them. In one embodiment, the general cross-sectional shapes and dimensions of the segments 55, 65 are essentially identical to one another when viewed transversely from the longitudinal axis of the smoking article 10. The filter segment 55 may include a filter material 85 along its longitudinally extending surface, which may be overlapped by a surrounding plug wrap material 90. In one example, the filter material 85 includes plasticized cellulose acetate tow or other suitable cigarette-type filter material. Both ends of the filter segment 55 may be open to allow aerosol passage therethrough. In some examples, the filter segment 55 may be configured to include a paper plug, a void, and conventional cigarette filter material (ie, cellulose acetate tow) as needed or desired.

[0079] The filter segment 55 may include a flavor-releasing feature. By way of example, one or more crushable flavor capsules may be included within the filter segment of the type described in U.S. Patent No. 7,479,098 to Thomas et al., U.S. Patent No. 7,793,665 to Dube et al., and U.S. Patent No. 8,186,359 to Ademe et al. Additional or alternative flavor-releasing features may include flavor threads or time-release capsules that release flavor in response to heated air drawn through the filter, with or without physical manipulation by the user.

[0080] The aerosol-generation segment 65 may be attached to the filter segment 55 using a tipping material 95. Examples of tipping materials are described, for example, in U.S. Pat. No. 7,789,089 to Dube et al. and U.S. Patent Application Publication No. 2007 / 0215167 to Crooks et al.; No. 2010 / 0108081 to Joyce et al.; No. 2010 / 0108084 to Norman et al.; No. 2013 / 0167849 to Ademe et al.; and WO 2013 / 160671 to Dittrich et al.

[0081] The smoking article 10 may include air dilution providing regions, such as a series of perforations each extending through the tipping material 95 and the plug wrap material 90 .

[0082] A typical smoking article 10 has a length between about 80 mm and about 100 mm. For example, for a smoking article 10 having a length of about 85 mm, a typical heat-generation segment 35 may have a length between about 10 mm and about 15 mm, a typical aerosol-generation segment 65 may have a length between about 5 mm and about 55 mm, and a typical filter segment 55 may have a length between about 20 mm and about 35 mm.

[0083] A longitudinally extending, generally cylindrical aerosol-generation segment 65 is located downstream from the heat-generation segment 35. The aerosol-generation segment 65 includes at least one aerosol-generating cartridge 68 and, optionally, a tobacco rod 70. In one embodiment, the at least one aerosol-generating cartridge 68 is located between the heat-generation segment 35 and the tobacco rod 70.

[0084] The aerosol-generating cartridge 68 includes an enclosure 100 configured to receive an aerosol precursor therein. At least a portion of the enclosure 100 is perforated or otherwise permeable to retain the aerosol precursor within the enclosure while allowing a portion of the aerosol formed from the aerosol precursor to escape therefrom through the perforated / permeable portion upon heating of the enclosure 100 or the aerosol precursor therein. The aerosol precursor may be substantially completely consumable into an aerosol as an aerosol-forming agent. Alternatively, the aerosol precursor may be comprised of a solid or semi-solid carrier 110 or substance combined with an aerosol-forming agent or composition.

[0085] The use of one or more aerosol-generating cartridges 68 provides a significant improvement over the aerosol-generation segment found in typical smoking articles. In particular, the aerosol-generating cartridges 68 can be created offline using a cartridge-making machine. The completed cartridges 68 can then be removed from the cartridge-making machine and loaded into a smoking article assembly machine where they can be combined with other components to form the smoking article 10. The aerosol-generating cartridges 68 are configured to provide a drop-in module capable of being produced in numerous different varieties and can be connected to the manufacturing process for the smoking article 10. Previously, the aerosol precursor would have been incorporated into the aerosol-generation segment during the online manufacturing process of the smoking article, with the smoking article assembly machine completing the step of adding the aerosol precursor. The use of the aerosol-generating cartridges 68 avoids the step of loading the material during the online manufacturing process. The use of the aerosol-generating cartridges 68 can significantly increase the production rate of the smoking article 10, especially in embodiments where the aerosol precursor includes small particles, such as beads or pellets, and the current containers included in conventional smoking articles require a slow loading process. The aerosol precursor is not limited to bead or pellet form, but may include many other suitable materials, such as cut fillers, as described in more detail below.

[0086] The enclosure 100 can be made from a number of materials. These materials include paper, tobacco, metal, and combinations thereof, such as laminate materials. An enclosure 100 made from paper may be made from a number of papers known to those skilled in the art of smoking article manufacturing. An enclosure 100 made from tobacco may be made from a number of extruded tobacco or reconstituted tobacco sheet constructions known to those skilled in the art. In one particular embodiment, the enclosure 100 may be made from metal. The metal may be a thin foil. In one embodiment, the thin foil may be laminated with a layer of paper. Thus, the enclosure 100 may be made from known packaging or wrapping materials, many of which are discussed herein. In other embodiments, a metal plate may be used to form the enclosure, having a thickness sufficient to provide self-supporting support when holding the carrier 100 therein. In one embodiment, the enclosure 100 is formed from aluminum or stainless steel. In some embodiments, the metal plate may have a thickness of about 12 μm to about 100 μm.

[0087] The enclosure 100 is shown in more detail in Figures 2 and 3. The enclosure 100 of the illustrated embodiment is cylindrical in shape and has a longitudinal axis L, as shown in perspective in Figure 2. The cylindrical shape is beneficial when the enclosure 100 is used within a smoking article 10 having the shape of a typical cigarette. The shape of the enclosure 100 may alternatively take other shapes, such as an elongated tubular shape having an oval, rectangular, square, or other polygonal cross-section. In further embodiments, the enclosure 100 may not be elongated and may be a cube or other suitable shape.

[0088] As can be better understood from the cross-sectional view of FIG. 3 , the illustrated embodiment of the enclosure 100 may include a peripheral wall 120 having opposing first and second longitudinal ends. The longitudinal ends of the peripheral wall 120 may be closed by first and second end walls 124, respectively, extending to the first and second longitudinal ends of the peripheral wall. The first and second end walls 124 may be integral with the peripheral wall 120 or may be attached thereto. The end wall 124 may have a plurality of perforations 128 or may be permeable. In instances where the end wall 124 is perforated, the number, size, and placement of the perforations 128 may be varied to regulate the flow of air through the enclosure 100 resulting from a user drawing on the smoking article 10. Such end walls 124 may have any number of perforations 128 ranging from about 4 to about 1,000. Although the perforations 128 are illustrated as being arranged in concentric circles, they may be arranged in virtually any pattern. The perforations may be arranged in a grid of rows and columns. The perforations may be arranged along radial lines extending from the center of the end wall 124 to its periphery. The perforations may be more densely spaced near the center of the end wall 124, more densely spaced near the periphery of the end wall, or anywhere in between. Alternatively, the perforations may be evenly spaced across the end face (or end wall 124) of the enclosure 100. The perforations 128 may vary in size to control airflow. By way of example, the perforations 128 may have diameters ranging from about 1 μm to about 100 μm. The perforations are not limited to circular openings and may have other shapes, such as ovals, rectangles, linear slits, curved slits, etc.

[0089] In each embodiment, the size and shape of the perforations 128 should be selected so that the aerosol precursor, which may include the solid or semi-solid carrier 110, remains retained within the enclosure 100 and does not escape from the aerosol-generating cartridge 68 before being sufficiently heated to form an aerosol. In some embodiments, the size, shape, and arrangement of the perforations 128 are predetermined and manufactured into the material of the end wall 124 using a process such as a laser-based combustion process. In other embodiments, the porosity, diffusivity, or permeability of the material of the end wall 124 is selected to provide the desired aerosol precursor retention and airflow without specifically modifying the material from which the perforations are made. The perforations 128, or other openings allowing airflow, in the end wall 124a at the first end of the enclosure 100 do not necessarily have to be the same number, size, shape, or arrangement as the perforations in the end wall 124b at the second end of the enclosure 100. In one embodiment, providing the end walls 124 of the aerosol-generating cartridge 68 with the same configuration may improve manufacturing efficiency, as the cartridge may be installed regardless of its orientation when assembled into the smoking article 10. This arrangement is described as providing the enclosure 100 with a mirror-symmetric structure about a plane that bisects the enclosure between the first and second longitudinal ends. Further manufacturing efficiency may be achieved by designing the end walls 124 and the enclosure 100 as generally rotationally symmetric about the longitudinal axis L. In other embodiments, the end walls 124 at each end of the enclosure may be distinct, with one end surface 124a configured to be positioned toward the heat generation segment 35 and the other end surface 124b configured to be positioned toward the mouth end 18. Differences between the end walls 124a, 124b may alter functionality in terms of airflow into the enclosure 100, aerosol flow out of the enclosure, and heat management.

[0090] In the illustrated embodiment of FIG. 2 , the end wall 124 of the enclosure 100 may be formed with a first end wall portion 130 and a second end wall portion 132. The first and second end wall portions 130, 132 may be substantially parallel to one another and offset from one another along the longitudinal direction L of the enclosure 100. The first end wall portion 130 may extend substantially perpendicular to the end of the perimeter wall 120. The second end wall portion 132 may be recessed relative to the end of the perimeter wall. The recessed second end wall portion 132 may form at least one pocket 140 that is recessed relative to the end face of the aerosol generation cartridge 68 (i.e., the first end wall portion 130). The pocket 140 may provide a convective air gap between the heat source of the heat generation segment 35 and the aerosol precursor 40 within the enclosure 100. The convective air gap formed by the pocket 140 may, for example, help reduce overheating of the aerosol precursor.

[0091] The enclosure 100 can be produced by any number of manufacturing methods. For example, the peripheral wall 120 can be formed first. Then, one end wall 124 can be attached to a longitudinal end of the peripheral wall 120 by adhesive, friction fit, welding, or other means of securing the arrangement. The peripheral wall 120 can be integrally formed with one of the end walls 124. The integral structure of the peripheral wall 120 and one of the end walls 124 can be created using an additional manufacturing step. After the chamber 150 (FIG. 3) of the enclosure 100 is at least partially filled with the aerosol precursor, the aerosol generating cartridge 68 can be completed by adding a second end wall 124b on the opposite side of the peripheral wall 120, substantially completely enclosing the aerosol precursor and including any carrier 100 retention features within the chamber 150.

[0092] In one embodiment, the enclosure 100 includes a preformed peripheral wall 120 (e.g., a tube). The tube can be made from a paper-foil laminate. A metal wrapper can surround the peripheral wall 120, with end regions extending beyond the end of the preformed peripheral wall 120. The end regions of the wrapper can be provided with perforations 128 before or after wrapping around the peripheral wall. Again, the wrapper can be made of other materials that do not require perforations to achieve the desired porosity or air permeability. To enclose both sides of the peripheral wall, the end regions of the wrapper can be folded, for example, into an envelope or star shape. In one embodiment, one end of the peripheral wall 128 is closed by a folded end region of the wrapper before the aerosol precursor is added. The other end of the peripheral wall is then closed by a folded end region of the wrapper after the chamber within the peripheral wall is filled with the aerosol precursor. The folded edges of the wrapper forming the end wall 124 may be unsealed or may be secured in the folded configuration by adhesive. Alternatively, after folding, the wrapper may plastically deform sufficiently to maintain its folded configuration and substantially close the edge of the peripheral wall without the need for adhesive or other fastening methods. To facilitate the folding step, crease lines, prestress score lines, perforation lines, or cut lines may be formed in the wrapper before or after the wrapper is fitted around the peripheral wall. The placement of crease lines, score lines, etc. may be selected based on the shape of the edge of the peripheral wall to be closed.

[0093] The aerosol precursor configured to be received within the chamber 150 of the enclosure 100 may include a carrier 110. The carrier 110 may be a portion of the aerosol precursor that does not melt, volatilize, or otherwise substantially escape from the enclosure 100 upon suitable heating. The carrier 110 may be selected based on factors such as its packaging factor and cost to control the strength of the aerosol generated, the cost of the product, and the duration of use of the smoking article, often measured by the number of puffs. The carrier 110 may take any of a variety of solid or semi-solid forms and may include any number of alternative aerosol-forming agents. By way of example, the carrier 110 may include a reconstituted tobacco material, including processing aids, flavorings, and / or glycerin. The carrier and / or aerosol-forming agent may be incorporated into tobacco. More particularly, if incorporated into tobacco, the carrier may include a blend of flavored and aromatic tobaccos, e.g., in cut filler form. The tobaccos may, in turn, be treated with an aerosol-forming agent and / or at least one flavoring agent. The carrier 110 may comprise processed tobacco (e.g., reconstituted tobacco produced using a cast sheet-type or papermaking-type process) in cut filler form. Some cast sheet reconstitutions may contain approximately 270 mg to 300 mg of tobacco per 10 mm of linear length of the cast sheet. In other examples, the carrier 110 may comprise a mixture of formed tobacco pellets. In certain embodiments of the present disclosure, the carrier 110 in tobacco form may, in turn, be treated or processed to incorporate at least one flavoring agent and an aerosol-forming agent, including a flame retardant (e.g., diammonium phosphate, other similar types of salts, and / or other suitable flame retardant materials). The inclusion of a flame retardant material in the carrier 110 may be configured to prevent the carrier from igniting.

[0094] As used herein, the term "tobacco pellets" is meant to include beads, pellets, or other small, dispersed units of tobacco that have been formed, molded, compressed, extruded, or otherwise processed into a desired shape. For example, tobacco pellets may be formed using a so-called malmarizing process. Tobacco pellets may have a smooth, regular shape (e.g., spherical, cylindrical, oval, etc.) and / or an irregular shape. By way of example, the diameter of each tobacco pellet may range from less than about 1 mm to about 2 mm. The tobacco pellets may at least partially fill a cavity in a substrate of a smoking article, as described herein. That is, the carrier 110 may take the form of pellets or other discrete objects that occupy a space within the enclosure 100 adjacent to and downstream of the heat generation segment 35. In one example, the volume of the enclosure 100 is about 500 mm. 3 ~about 700mm 3 (e.g., an enclosure having a cavity diameter of about 7.5 to about 7.8 mm, a cavity length of about 11 to about 15 mm, and a cavity having a generally cylindrical shape). In one example, the mass of the tobacco pellets in the enclosure 100 may range from about 200 mg to about 500 mg. For example, the tobacco pellets may have a mass of about 100 to about 400 mg / cm. 3 can be used to fill the enclosure 100 with a packing density of

[0095] In one embodiment, the carrier 110 is formed by an extrusion process and may include glycerin, ground tobacco, calcium carbonate, a binder, flavorings, and water. More specifically, on a dry weight basis, the extrudate material may include about 37.86% ground tobacco, about 39.82% calcium carbonate, about 1.00% binder such as carboxymethylcellulose (CMC) or cellulose gum, and about 21.32% glycerin and flavorings (about 20% glycerin).

[0096] In yet other embodiments, the material composition used in the extrusion rod, i.e., for example, glycerin, ground tobacco, calcium carbonate, binder, flavoring, and water, can instead be used to form a flat sheet having a thickness between about 0.3 mm and about 1.7 mm. In some examples, the sheet can be formed by an extrusion process (or molding or casting, as appropriate), after which the sheet is dried to form the carrier 110. The dried sheet can then be divided, for example, by cutting the sheet into strips or shredding the sheet. The cut / shredded portions of the formed sheet can then be stacked or collected and deposited within the enclosure 100 in a manner similar to cut filler tobacco (e.g., deposited in place of, but in a manner similar to, cut filler tobacco).

[0097] In some embodiments, the carrier 110 may include, for example, a cast sheet containing tobacco material. Such a cast sheet can be formed by a process in which a selected tobacco-containing mixture is cast, dried, and cut or shredded into strips. In some examples, the cut strips or shredded portions of the cast sheet can be mixed with other cut fillers (e.g., conventional cut filler tobacco, with or without additional aerosol-forming agents) to provide a desired taste and sensory perception to the user and to facilitate the manufacturing process. In one example, the selected tobacco-containing mixture can be characterized as a pectin-releasing mixture, for example, including (on a dry weight basis) about 66.60% ground tobacco, about 3.75% diammonium phosphate, about 4.65% ammonium hydroxide, and about 25% glycerin and flavorings. To treat the pectin-releasing mixture, the ground tobacco, diammonium phosphate, ammonium hydroxide, and water can be heated, for example, to about 160°F for about 1.5 hours to improve or enhance the sensory qualities of the resulting mixture. Glycerin and flavorings may then be added to the remainder of the mixture as it cools after the heating step. The resulting mixture can then be used to form a cast sheet.

[0098] In another example, a selected tobacco-containing mixture can be characterized as a non-ammoniacal mixture, for example, containing (on a dry weight basis) about 65.62% ground tobacco, about 4.50% sodium alginate, about 1.13% sodium hydroxide or other pH adjuster, about 25% glycerin, and about 3.75% wood pulp. To process the non-ammoniacal mixture, the ground tobacco, sodium alginate, and water can be heated, for example, to about 160°F for about 1.5 hours to improve or enhance the sensory qualities of the resulting mixture. Hydrated wood pulp, binder, glycerin, and flavorings can then be added to the remainder of the mixture upon cooling after the heating step. The resulting mixture can then be used to form a cast sheet.

[0099] In another example, the selected tobacco-containing mixture can be characterized as a tobacco-containing reconstituted material, for example, comprising (on a dry weight basis) about 51.8% tobacco pulp, about 4.2% wood pulp, about 22.0% concentrated tobacco extract, and about 22.0% glycerin and flavorings. The tobacco-containing reconstituted material can be formed into sheets in a manner similar to conventional reconstituted sheets. For example, water-soluble components are first removed from the tobacco pulp lamina, and the remaining tobacco pulp is concentrated to about 25% solids. Wood pulp can then be added to the tobacco pulp to form a base sheet with a basis weight that varies between about 120 grams per square meter (gsm) and about 240 gsm. Glycerin can then be mixed with concentrated tobacco-derived nicotine (TDN) extract (e.g., in a 1:1 ratio) and added to the base sheet. The formed base sheet can then be dried and cut or shredded into strips. Like cast sheets, cut strips or shredded reconstituted sheets can be mixed with other cut fillers (e.g., conventional cut filler tobacco, with or without additional aerosol-forming agents).

[0100] In another example, the selected tobacco-containing blend can be characterized as a conventional cut filler tobacco material with an elevated glycerin content. In such an example, the cut filler tobacco can be loaded with or interacted with between about 5% and about 30% glycerin. The elevated glycerin cut filler tobacco material can then be used as a carrier (e.g., a substrate) or mixed with a cast sheet material, with the resulting mixture forming the carrier and aerosol former. Based on the amount of glycerin needed or desired, glycerin can be applied to the cut filler tobacco, for example, as a casing for cutting (e.g., applied to individual strips of tobacco), as a top dressing, or both. Such elevated glycerin cut filler tobacco can be mixed with various cast sheets, reconstituted sheets, and / or tobacco beads, for example, as needed or desired, to form the contents of the enclosure 100.

[0101] In yet another example, the selected tobacco-containing mixture may be characterized as a non-tobacco material. For example, a cast sheet used to form a carrier, extruded carrier, or marumerized carrier may contain calcium carbonate, rice flour, a binder, diammonium phosphate, glycerin, flavorings, tobacco-derived nicotine (TDN), and water. More specifically, such a non-tobacco cast sheet may contain, for example, about 41.25% calcium carbonate, about 13.75% rice flour, about 6% ammonium alginate, about 5.5% wood pulp, about 3.5% diammonium phosphate, and about 30% glycerin. Additionally, tobacco-derived nicotine (TDN), certain acids (e.g., levulinic acid and / or citric acid), and flavorings may be incorporated into the glycerin. The extruded or marumerized carrier may contain, for example, about 51.94% calcium carbonate, about 17.15% rice flour, about 1% TDN, about 1% carboxymethylcellulose (CMC), about 0.66% levulinic acid, about 0.44% lactic acid, about 20% glycerin, and about 9.41% flavoring. In some examples, the cast sheet may be processed into cut strips, shredded, or cut into a cut filler form. In other examples, if the carrier 110 contains beads, the beads may be positioned within the enclosure 100 adjacent to or closest to the heat-generating segment 35.

[0102] In another example of a carrier formed from a non-tobacco material, tobacco-derived nicotine (TDN), glycerin (e.g., an aerosol-forming agent), and flavoring agents can be applied to a relatively highly porous extruded ceramic substrate (e.g., a highly porous extruded ceramic rod member). In such an example, the ceramic rod member(s) may be extruded to define one or more longitudinally extending channels (e.g., open channels or slots disposed along the outer surface and / or conduits extending through a central portion of the rod member).

[0103] The enclosure 100 is not limited to being filled with a single type of carrier or a single aerosol former composition. Any combination of carrier and aerosol former compositions, including flavoring agents and glycerin, may be disposed within the enclosure 100. For example, the enclosure 100 may be filled with a combination of cast and / or reconstituted sheets, each mixed with shredded or cut into strips of cut filler tobacco and treated with glycerin. The cut filler tobacco may have various levels of glycerin, ranging from about 5% to about 25%, for example. In another example, shredded or cut into strips of cast sheets may be mixed with tobacco-containing beads.

[0104] Suitable carriers, i.e., substrates, and carriers incorporating aerosol-forming agents (including cast sheet and paper-type reconstituted tobacco materials) are disclosed in U.S. Pat. Nos. 4,793,365 to Sensabaugh et al.; 4,893,639 to White; 5,099,861 to Clearman et al.; 5,101,839 to Jakob et al.; 5,105,836 to Gentry et al.; No. 5,109,122 to Earman et al.; No. 5,159,942 to Brinkley et al.; No. 5,203,355 to Clearman et al.; No. 5,271,419 to Arzonico et al.; No. 5,327,917 to Clearman et al.; No. 5,271,419 to Arzonico et al.; No. 5,327,917 to Lekwauwa et al.; Casey No. 5,396,911 to III et al.; No. 5,533,530 to Young et al.; No. 5,588,446 to Clearman; No. 5,598,868 to Jakob et al.; No. 5,715,844 to Young et al.; No. 6,378,528 to Beeson et al.; No. 8,678,013 to Crooks et al.; No. 9,149,072 to Conner et al.; and U.S. Patent Application Publication No. 2005 / 0066986 to Nestor et al. and U.S. Patent Application Publication No. 2015 / 0157052 to Ademe et al. Additionally, the carrier can have a configuration or structure of the type described in U.S. Pat. No. 8,839,799 to Conner et al., as a gathered web or sheet using techniques generally of the type described in U.S. Pat. No. 4,807,809 to Pryor et al., or in the form of a web or sheet chopped into a plurality of longitudinally extending strands using techniques generally of the type described in U.S. Pat. No. 5,025,814 to Raker et al.

[0105] Optionally, the components of the aerosol-forming agent portion of the aerosol precursor, bound by the carrier 110 and configured to provide an aerosol upon heating, can vary. The aerosol-forming agent incorporates components that can be vaporized, aerosolized, or entrained in the air drawn through the smoking article during use. Most preferably, these components, individually or in combination, provide sensory and organoleptic effects, such as aroma, flavor, mouthfeel, and visible aerosol sensation. Examples of components of the aerosol-forming agent that are drawn into the user's mouth upon inhalation include water (e.g., as water vapor), visible aerosol-forming materials (e.g., glycerin), various volatile flavor components (e.g., vanillin or menthol), volatile components of tobacco (e.g., nicotine), and the like.

[0106] A suitable aerosol-forming agent generates a visible aerosol when sufficient heat is applied to it or through the action of other aerosol-forming conditions caused by components of a smoking article. Desirable aerosol-forming materials or agents generate a visible aerosol that is perceived as "smoke-like." Suitable aerosol-forming agents are chemically simple relative to the chemical properties of smoke produced by tobacco combustion. One visible aerosol-forming agent is a polyol, and other aerosol-forming agents include glycerin, propylene glycol, and mixtures thereof. If desired, the aerosol-forming agent can be combined with other liquid materials, such as water. For example, the aerosol-forming agent formulation can incorporate a mixture of glycerin and water or a mixture of propylene glycol and water. See, for example, U.S. Pat. Nos. 4,793,365 to Sensabaugh Jr. et al.; 5,101,839 to Jakob et al.; 6,779,531 to Biggs et al.; and 8,678,013 to Crooks et al., which describe various aerosol-forming agents.

[0107] The manner in which the aerosol-forming agent is contacted with the carrier 110 (e.g., tobacco material) can vary. The aerosol-forming agent can be applied to the formed tobacco material or incorporated into the processed tobacco material during its manufacture. The aerosol-forming agent can be dissolved or dispersed in an aqueous liquid or other suitable solvent or liquid carrier and sprayed onto the carrier. See, for example, U.S. Patent Application Publication No. 2005 / 0066986 to Nestor et al. The amount of aerosol-forming agent used relative to the dry weight of the carrier can vary.

[0108] Cast sheet-type materials incorporate relatively high levels of aerosol-forming agents. Reconstituted tobaccos produced using papermaking processes incorporate moderate levels of aerosol-forming agents. Tobacco strips and cut filler tobaccos incorporate lower amounts of aerosol-forming agents. A variety of paper and non-paper substrates can be used within the scope of the present disclosure, including spliced, laminated, laminated metal / metallic strips, beads such as alumina beads, open-cell foams, foam monoliths, air-permeable matrices, and other materials. See, for example, U.S. Patent Nos. 5,183,062; 5,203,355; and 5,588,446, each to Clearman.

[0109] Laminated paper and other packaging materials can be constructed according to the disclosure of US Pat. No. 6,849,085 to Marton et al., or according to other suitable methods and / or materials.

[0110] Additionally, various combinations and types of flavoring agents (including various materials that alter the sensory and / or organic properties or characteristics of the mainstream aerosol of the smoking article) can be incorporated into suitable smoking articles. The substrate of the smoking article and various tobacco components can be treated with tobacco additives of the type traditionally used in cigarette manufacturing, such as casing and / or top dressing components. See, for example, the types of components described in U.S. Patent No. 8,678,013 to Crooks et al.

[0111] 4 shows a second embodiment in which the aerosol-generation segment 65 may include multiple aerosol-generation cartridges 68. The contents of each enclosure 100 of each aerosol-generation cartridge 68 may be the same or different from one another. The differences may manifest themselves in different carriers and / or in one or more components of the aerosol-forming agents of the aerosol precursor. The differences in the aerosol-forming agents may include different flavorings, or different additives themselves, or different concentrations of those additives.

[0112] The aerosol precursor in each enclosure 100 may be selected to take advantage of the thermal profile of the smoking article 10, which is understood to reflect that the portion of the smoking article in the heat generation segment 35 is hottest and the portion(s) located away from the heat source 40 are relatively cooler. Thus, if two aerosol-generating cartridges 68 are present, the aerosol-forming agent in the cartridge toward the mouth end 18 of the smoking article may be selected to vaporize at a lower temperature than the aerosol-forming agent in the cartridge immediately adjacent to the heat generation segment 35.

[0113] In other embodiments, the enclosure 100 of the aerosol-generating cartridge 68 may itself be subdivided into sub-compartments. The portion of the carrier and / or aerosol-forming agent within each sub-compartment may vary. The sub-compartments may be arranged consecutively along an axis intended to extend between the heated portion 14 and the mouth-end portion 18 of the smoking article 10. In other embodiments, the sub-compartments may be arranged in parallel along the length of the enclosure 100.

[0114] The dividing walls between the sub-compartments, whether extending along the longitudinal axis or laterally of the enclosure 100, may be formed of similar materials (e.g., paper, tobacco, metal foil, or combinations and laminates thereof) as the peripheral wall 120 and end walls 124. The material forming the dividing walls may be porous, diffusive, and / or permeable to facilitate the desired flow of air through the aerosol-generating cartridge 68 upon inhalation by a user.

[0115] The aforementioned components of the aerosol-generation segment 65, including at least one aerosol-generating cartridge 68 and optional tobacco rod 70, may be disposed within and circumscribed by a wrapping material 160. The wrapping material 160 may be configured to facilitate the transfer of heat from the heated portion 14 of the smoking article 10 (e.g., from the heat generation segment 35) to the components of the aerosol-generation segment 65. That is, the aerosol-generation segment 65 and the heat generation segment 35 may be configured to be in a heat exchange relationship with each other, and such heat exchange relationship may be facilitated by the wrapping material 160, which surrounds both the heat generation segment 35 and the aerosol-generation segment 65 and forms an assembly. The heat exchange relationship is such that sufficient heat is provided from the heat source 40 to the aerosol-generation segment 65 to volatilize / aerosolize the aerosol-forming agent for aerosol formation and generation. In some examples, the wrapping material 160 may be a separate component relative to the outer wrapping material 45, or may engage with the outer wrapping material 45 in various manners. In another example, the wrapping material 160 may include an insulating material to insulate the aerosol generating cartridge 68 from the outer wrapping material 45. For example, the wrapping material 160 may include a glass fiber mat having a thickness between about 50 μm and about 500 μm.

[0116] In one embodiment of the present disclosure, the heat exchange relationship is achieved by positioning the heat-generation segment 35 and the aerosol-generation segment 65 consecutively and in close proximity to one another. In some examples, the segments may be consecutively positioned in end-to-end contact with one another. The heat exchange relationship may also be achieved by extending a thermally conductive material from the vicinity of the heat source 40 into and / or around the area occupied by the aerosol-generation segment 65. For example, in one embodiment, the exemplary packaging material 160 may include thermally conductive elements or features for conducting heat from the heat-generation segment 35 to the aerosol-generation segment 65 (and / or for interacting with and maintaining heat along its length with the aerosol-generation segment 65) to provide for at least aerosolization of the aerosol-forming agent contained within the aerosol-generation cartridge. In other embodiments, the exemplary wrapping material 160 and / or the outer wrapping material 45 may include heat-conducting properties to dissipate heat not directed toward the heat-generation segment 35 and / or to distribute heat more uniformly or consistently between the heat-generation segment 35 and the aerosol-generation segment 65 while providing aerosolization of the aerosol-forming agent contained at least in the enclosure 100 of the aerosol-generation cartridge 68. Such wrapping material 160 may be provided, for example, by a paper / foil laminate sheet, with an outer layer including a paper-based material sheet and an inner layer including a thermally conductive metal foil sheet. The metal foil sheet forming the inner layer may extend, for example, from a region downstream from the heat source 40 along at least a portion of the length of the aerosol-generation segment 65. The metal foil / inner layer laminate may be associated with the outer layer in the form of one or more discrete, longitudinally extending strips attached to the outer layer, or it may be associated with the outer layer in the form of a continuous sheet that cooperates with the outer layer to surround the area that overlaps the heat-generating and aerosol-generating segments 35, 65.

[0117] In embodiments in which the wrapper 160 is selected for heat conduction, the wrapper in the form of a paper / foil laminate sheet can have a typical length (e.g., the length along the aerosol-generation segment 65) of between about 8 mm and about 50 mm for a representative smoking article of the type described herein. The paper / foil laminate sheet can be perforated, etched, embossed, or primed, for example, to facilitate manufacturing. In some examples, the thickness of the foil used in the laminate can be varied, increased, or decreased, for example, between about 0.0001 inch and about 0.005 inch, as needed or desired to alter the performance of the paper / foil laminate sheet and / or to reduce visual scorching of the paper sheet portion of the laminate and / or the outer wrapper 45.

[0118] The paper / foil laminate sheet of the wrapping material 160 can be formed in a variety of ways. For example, a thermally conductive ink (in some instances, a thermally conductive metallic ink) may be printed on the paper portion (and / or may be at least partially absorbed into / integrated with the paper portion) such that the printed ink forms a foil layer (sheet or strip) on the paper portion. Such a thermally conductive ink may include, for example, carbon, graphite, graphene, silver, or other suitable thermally conductive material, or a combination thereof, to conduct heat along the paper portion, which can then be used to heat an aerosol-generating cartridge and generate aerosol therefrom. In one embodiment, the thermally conductive ink may be printed in a continuous or discontinuous pattern on a foil sheet or conventional cigarette paper, the cigarette paper having a basis weight ranging from about 20 gsm to about 100 gsm.

[0119] In other examples, thermal or heat-conductive materials, such as, for example, metal foil (e.g., silver), conductive carbon materials (e.g., graphene), or other suitable thermally conductive materials, or combinations thereof, may be deposited or otherwise attached to conventional cigarette paper in various configurations (e.g., dispersed strips, complete sheets, complete coatings, etc.) using, for example, "island placement" or selective deposition / engagement techniques, to facilitate manufacturing and enhance functionality. In any example, implementations of the paper / foil laminate sheet as the wrapper 160 may, in some cases, dissipate or redirect heat generated by the heat-generating segment 35, reducing charring of the outer wrapper 45 and / or other components of the smoking article 10. Eliminating charring in this manner may improve the taste and sensation of the generated aerosol to the user.

[0120] In other embodiments, the wrapping material 160 may include a three-ply laminate sheet including a tobacco paper layer, a foil layer, and a tobacco paper layer. The composition of the tobacco paper layer may vary, including, for example, burley tobacco, flue-cured tobacco, oriental tobacco, or other suitable types of tobacco, or combinations thereof, and may contain different proportions. The tobacco contained in the tobacco paper layer may be up to about 85% tobacco, and the tobacco paper layer may have a basis weight ranging from about 20 gsm to about 100 gsm. In some embodiments, the three-ply laminate configuration of the wrapping material 160 may include tobacco paper / foil / tobacco paper, as needed or desired. In other embodiments, a tobacco paper / foil two-ply laminate may be implemented, in which the tobacco sheet may be laminated to aluminum or other thermally conductive foil having a thickness ranging from about 0.0005 inches to about 0.002 inches, and such a two-ply laminate sheet may exhibit a basis weight between about 60 gsm and about 100 gsm.

[0121] According to yet another embodiment, the wrapper 160 may be comprised of any of a paper-foil sheet laminate, a paper-foil-paper sheet laminate, a paper-foil-tobacco sheet laminate, a nonwoven graphite sheet, a nonwoven graphite-graphene composite sheet, a graphene sheet, a graphene-foil sheet laminate, a paper-graphene sheet laminate, graphene ink embossed on a paper sheet, graphene ink embossed on a foil sheet, carbon nanotubes engaged with a paper or foil sheet, fullerenes engaged with a paper or foil sheet, and graphene engaged with a paper or foil sheet. In such an example, for example, if graphene comprises one of the outer layers of the laminate, it may be desirable for the graphene layer of the laminate to provide the initial layer of the laminate closest to the aerosol-generating cartridge 68. In other examples, for example, in the case of a graphene foil sheet laminate, it may be desirable for the foil sheet layer of the laminate to provide the initial layer of the laminate closest to the aerosol generation cartridge 68, while the graphene layer acts as a heat shield between the aerosol generation cartridge 68 and the outer packaging 45, or the order may be reversed, with the graphene layer of the laminate being the initial layer of the laminate closest to the aerosol generation cartridge 68, while the foil sheet layer acts as a heat shield between the aerosol generation cartridge 68 and the outer packaging 45. If the packaging 160 includes a thermally conductive layer and a paper or foil sheet, an insulating or thermal layer may be disposed therebetween.

[0122] For example, in embodiments involving embossing of graphene ink, the ink can be applied using a variety of printing processes, such as, for example, gravure printing, flexography, offset printing, screen printing, inkjet printing, or other suitable printing methods, to provide gradations of various thicknesses, patterns, surface coverage, and compositions.

[0123] The outer wrapping paper 45 is generally configured to surround and extend longitudinally (downstream) around the heat-generation segment 35, and also surround the aerosol-generation segment 65 along at least a portion of its length. Because of its surrounding engagement with the smoking article 10, the outer wrapping paper 45 also extends over the interface between the heat-generation segment 35 and the aerosol-generation segment 65. In some embodiments, the outer wrapping paper 45 may be treated with, interact with, or otherwise exposed to, for example, calcium carbonate (CaCO), aluminum hydroxide, magnesium hydroxide, and / or combinations thereof, at least as an anti-stick agent and as a filler within the paper matrix of the outer wrapping paper 45.

[0124] Those skilled in the art will also appreciate that the wrapping material 160 and / or the outer wrapping material 45, when encircled about an appropriate part of a smoking article, may have their opposing edges (e.g., angularly overlapping edges forming a seam extending longitudinally along the smoking article) sealed together, for example, by an adhesive. Accordingly, in some embodiments of the present disclosure, the adhesive may also include a filler, such as, for example, calcium carbonate (CaCO), aluminum hydroxide, magnesium hydroxide, and / or combinations thereof, to reduce, minimize, or eliminate scorching or charring of the adhesive and / or outer wrapping material 45 along a longitudinally extending seam of the outer wrapping material 45 encircled about a part of a smoking article.

[0125] Further aspects and methods for assembling representative types of smoking articles are described in U.S. Pat. Nos. 5,469,871 to Barnes and 8,678,013 to Crooks; 9,149,072 to Conner et al. and U.S. Patent Application Publication No. 2012 / 0042885 to Stone et al.; 2014 / 0261470 to Amiss et al. and 2015 / 0157052 to Ademe et al.

[0126] In some embodiments, both ends of the aerosol-generation segment 65 are open to expose at least one of the aerosol-generation cartridges. Together, the heat-generation segment 35 and the aerosol-generation segment 65 form an aerosol-generation assembly 170. The aerosol-generation segment 65 is located adjacent the downstream end of the heat-generation segment 35 so that the segments are axially aligned in an end-to-end relationship. The segments may be adjacent to each other or may be slightly spaced apart, and may include an optional buffer region formed by a pocket 140 in the end wall 124 of the enclosure 100. The outer cross-sectional shapes and dimensions of the segments, when viewed transversely to the longitudinal axis of the smoking article 10, may be essentially identical to one another. The physical arrangement of the components is preferably such that heat is transferred from the heat source 40 to the aerosol precursor (e.g., by mechanisms including conductive and convective heat transfer) throughout the duration of operation (e.g., ignition) of the heat source during use of the smoking article 10.

[0127] As discussed above, one or more pockets 140 can reduce potential scorching or other thermal degradation of portions of the aerosol-generation segment 65. Other thermal buffers may also be provided, for example, as a result of a region partially or substantially completely filled with a non-combustible material, such as a metal, organic material, inorganic material, ceramic material, or polymeric material, or any combination thereof. The buffer may be about 1 mm to about 10 mm or more in thickness (length), but is often about 2 mm to about 5 mm in thickness (length). If desired, the buffer can incorporate catalytic materials, such as materials incorporating cerium or copper ions, or oxides and / or salts of cerium or copper ions. See, for example, U.S. Pat. Nos. 8,469,035 to Banerjee et al.; 8,617,263 to Banerjee et al.; and 9,220,301 to Banerjee et al.

[0128] The smoking article 10 described with reference to Figures 1-4 can be used in much the same manner as cigarettes commercially sold by RJ Reynolds Tobacco Company under the trade names "Premier," "Revo," and "Eclipse," and cigarettes commercially sold by Japan Tobacco Inc. under the trade name "Steam Hot One." That is, the fuel component or heat source 40 is ignited using a match or cigarette lighter. The resulting combustion of the fuel component / heat source generates heat that is transferred to the aerosol-generating cartridge 68 within the aerosol-generation segment 65. Aerosol precursors, including aerosol-forming agents, and tobacco flavorings and ingredients, are heated within the enclosure 100 and volatilized / aerosolized to form an aerosol. The aerosol is then entrained in inhaled air and drawn through the filter segment 55 into the user's mouth.

[0129] FIG. 5 schematically illustrates another embodiment of the present disclosure. While FIGS. 1-4 depict embodiments of smoking articles 10 configured to generate heat upon ignition of a heat source 40, the smoking article 300 of FIG. 5 is configured to generate heat using electrical energy to promote the formation of an inhalable substance. An exemplary device is described in U.S. Patent Application No. SN15 / 799,365, assigned to Sebastian et al., filed October 31, 2017, and incorporated herein by reference in its entirety. The smoking article 300 may also be characterized as a vapor product or drug delivery article. Accordingly, such articles or devices may be adapted to provide one or more substances (e.g., flavoring ingredients and / or pharmaceutically active ingredients) in an inhalable form or state. For example, the inhalable substance may be substantially in the form of a vapor (e.g., a substance in the gas phase at a temperature below its critical point). Alternatively, the inhalable substance may be in the form of an aerosol (a suspension of fine solid particles or liquid droplets in a gas). For simplicity, the term "aerosol" as used herein is meant to include any form or type of vapor, gas, or aerosol suitable for human inhalation, whether or not visible, and whether or not in a form that can be considered smoke-like.

[0130] In some embodiments, the smoking article 300 may include a control body 310 and an aerosol source member 320. The control body 310 may be reusable, while the aerosol source member 320 may be configured for a limited number of uses and / or may be configured to be disposable. In various embodiments, the aerosol source member 320 includes an aerosol precursor contained within an enclosure, forming an aerosol generating cartridge 368. To heat the aerosol source member 320, and particularly the aerosol precursor therein, at least a portion of a heating device may be located within a receptacle provided within the control body 310. The heating device may generate heat using electrical current supplied from one or more rechargeable or replaceable power sources. The heating device may be a resistive heater or an inductive heater. When an inductive heater is utilized, both the resonant transmitter and the resonant receiver may be The resonant receiver may be housed substantially fixedly within the control body 310. In other embodiments, the resonant receiver may be provided as part of the aerosol source member 320. The resonant receiver may be a dedicated part of the aerosol source member 320, or the function of the resonant receiver may be performed by the aerosol generation cartridge 368 of the aerosol source member.

[0131] FIG. 5 illustrates a smoking article device 300 according to an exemplary implementation of the present disclosure. The smoking article 300 can include a control body 310 and an aerosol source member 320. In various embodiments, the aerosol source member and control body can be arranged in a fixed or detachable operable relationship. In this regard, FIG. 5 illustrates the smoking article 300 in a coupled configuration. Various mechanisms can couple the aerosol source member 320 to the control body 310, such as a threaded engagement, a press-fit engagement, an interference engagement, a sliding engagement, a magnetic engagement, etc. In various embodiments, the control body 310 of the smoking article 300 can be substantially rod-shaped, substantially tubular-shaped, or substantially cylindrical-shaped, or the control body can take on another handheld shape, such as a small box-like shape.

[0132] In certain embodiments, one or both of the controller 310 and the aerosol source member 320 may be referred to as disposable or reusable. For example, the controller 310 may have a replaceable battery, or a rechargeable battery, a solid-state battery, a thin-film solid-state battery, a rechargeable super-layer capacitor, or the like, and thus may be combined with any type of charging technology, such as connection to a wall charger, connection to an in-car charger (e.g., a cigarette lighter connector), connection to a computer via a universal serial bus (USB) cable or connector (e.g., USB 2.0, 3.0, 3.1, USB Type-C), or the like, connection to a photovoltaic cell (sometimes called a solar cell) or solar panel, or connection to a radio frequency (RF)-based charger. Furthermore, in some embodiments, the aerosol source member 320 may comprise a single-use device.

[0133] In various embodiments of the present disclosure, the aerosol source member may include a heated portion 314 configured for insertion into the control body 310 and a mouth-end portion 318 through which a user inhales to generate an aerosol. The heated portion 314 may designate any portion of the aerosol source member that is inserted into the control body 310. The heated portion is not limited to the distal tip or end of the aerosol source member. Part or all of the heated portion 314 may receive heat from the control body 310. Alternatively, part or all of the heated portion 314 may be configured to generate heat in the presence of eddy currents. In various embodiments, the heated portion 314 may include an aerosol precursor contained within an aerosol-generating cartridge 368. In other embodiments, the aerosol-generating cartridge 368 may be located wholly or partially outside the control body 310 when the aerosol source member is engaged with the control body. The aerosol-generating cartridge 368 may include an enclosure and an aerosol precursor consistent with any of the embodiments of the aerosol-generating cartridge 68 for use in the smoking article 10 described above and shown in Figures 1-4.

[0134] In various embodiments, the mouth end 318 of the aerosol source member 320 can include a filter segment 355, which may be made of a cellulose acetate or polypropylene material. In various embodiments, the filter segment 355 can increase the structural integrity of the mouth end of the aerosol source member 320 and / or provide filtration and / or resistance to suction, as desired. For example, articles according to embodiments of the present disclosure can exhibit a water pressure drop of about 50 mm to about 250 mm at an airflow of 17.5 cc / sec. In further embodiments, the pressure drop can be about 60 mm to about 180 mm, or about 70 mm to about 150 mm. Pressure drop values ​​can be measured using a Filtrona Filter Test Station (CTS Series), available from Filtrona Instruments and Automation Ltd., or a Quality Test Module (QTM), available from the Cerulean Division of Molins, PLC. The thickness of the filter segment along the length of the mouth end 318 of the aerosol source member 320 can vary, for example, from about 2 mm to about 20 mm, from about 5 mm to about 20 mm, or from about 10 mm to about 15 mm. In some embodiments, the filter segment 355 can be held in place by an overwrap material. The overwrap material can be consistent with the overwrap materials 45, 95, and 160 described above for coupling at least one aerosol-generating cartridge 368 to the filter segment 355.

[0135] Exemplary types of overwrap materials, packaging material components, and treated packaging materials that can be used in overwrapping in this disclosure are described in U.S. Pat. Nos. 5,105,838 to White et al.; 5,271,419 to Arzonico et al.; 5,220,930 to Gentry; 6,817,365 to Hancock et al.; and 6,817,365 to Woodhead et al. Nos. 6,908,874 to Ashcraft et al.; 6,929,013 to Ashcraft et al.; 7,195,019 to Hancock et al.; 7,216,652 to Fournier et al.; 7,276,120 to Holmes; and 7,275,548 to Hancock et al., which are incorporated herein by reference in their entireties. Exemplary packaging materials are commercially available from Schweitzer Maudit International as R.J. Reynolds Tobacco Company Grades 119, 170, 419, 453, 454, 456, 465, 466, 490, 525, 535, 557, 652, 664, 672, 676, and 680. The porosity of the packaging material varies, often between about 5 CORESTA units and about 30,000 CORESTA units, frequently between about 10 CORESTA units and about 90 CORESTA units, and frequently between about 8 CORESTA units and about 80 CORESTA units.

[0136] To maximize delivery of the aerosol and flavor, which may otherwise be diluted by air infiltration from the radial (e.g., external) direction through the overwrap, one or more layers of non-porous cigarette paper can be used to seal the aerosol source member (whether or not an overwrap is present). Examples of suitable non-porous cigarette paper include those commercially available from Kimberly Clark Corp. as KC 63 5, P878 5, P878 16 2, and 780 63 5. Preferably, the overwrap is a material that is substantially impermeable to vapors formed during use of the smoking article 300. If desired, the overwrap can include a resilient paperboard material, foil-backed paperboard, metal, polymeric material, or the like, and can be surrounded by a cigarette paper wrap. The overwrap can also include tipping paper surrounding the components and, optionally, can be used to attach a filter material to the aerosol source member, as described elsewhere herein.

[0137] In one example, the control body 310 facilitates the generation of heat by an induction heater 340. The induction heater 340 includes a resonant transformer including a resonant transmitter and a resonant receiver. In particular, the control body 310 may include a housing 342 including an opening 344 defined at its engagement end, an end cap including a flow sensor (e.g., a puff sensor or pressure switch), control components 346 (e.g., a microprocessor (separately or as part of a microcontroller), a printed circuit board (PCB) including the microprocessor and / or microcontroller, etc.), a power source 348 (e.g., a rechargeable battery and / or a rechargeable double-layer electrolytic capacitor), and an indicator 350 (e.g., a light-emitting diode (LED)).

[0138] Examples of power sources are described in U.S. Pat. No. 9,484,155 to Peckerar et al. and U.S. Patent Application Publication No. 2017 / 0112191 to Sur et al., filed October 21, 2015, the disclosures of which are each incorporated by reference in their entirety. With respect to flow sensors, representative current regulation components and other current control components, including various microcontrollers, sensors, and switches for aerosol delivery devices, are described in U.S. Patent No. 4,735,217 to Gerth et al.; U.S. Patent Nos. 4,922,901, 4,947,874, and 4,947,875, all to Brooks et al.; U.S. Patent No. 5,372,148 to McCafferty et al.; U.S. Patent No. 6,040,560 to Fleischhauer et al.; U.S. Patent No. 7,040,314 to Nguyen et al.; and U.S. Patent No. 8,205,622 to Pan et al., all of which are incorporated herein by reference in their entireties. Also reference is made to the control scheme described in U.S. Patent No. 9,423,152 to Ampolini et al., which is incorporated herein by reference in its entirety.

[0139] In one embodiment, indicator 350 may include one or more light emitting diodes, quantum dot-based light emitting diodes, etc. Indicator 350 may be in communication with control component 346, for example, coupled to controller 310, and illuminated when a user inhales on aerosol source member 320 as detected by a flow sensor.

[0140] Still further components may be utilized in the smoking article of this embodiment of the disclosure.For example, U.S. Pat. No. 5,154,192 to Sprinkel et al. discloses an indicator for a smoking article; Sprinkel U.S. Pat. No. 5,261,424 to McCafferty Jr. discloses a piezoelectric sensor that can be associated with the mouth end of the device to detect the user's lip activity associated with inhalation and trigger heating of the heating device; U.S. Pat. No. 5,372,148 to McCafferty et al. discloses a puff sensor that responds to a pressure drop through a mouthpiece to control the flow of energy to a heating load series; U.S. Pat. No. 5,967,148 to Harris et al. discloses a receptacle in a smoking device that includes an identifier that detects non-uniformity in infrared transmittance of an inserted component and a controller that executes a detection routine when the component is inserted into the receptacle; U.S. Pat. No. 6,040,560 to Fleischhauer et al. describes defined viable power cycles with multiple differential phases; U.S. Pat. No. 5,934,289 to Watkins et al. discloses a photonic-optronic component; U.S. Pat. No. 5,954,979 to Bounds et al. discloses a means for varying the resistance to draw through a smoking device; U.S. Pat. No. 6,803,545 to Blake et al. discloses specific battery configurations for use within smoking devices; U.S. Pat. No. 7,293,565 to Griffen et al. discloses various charging systems for use with smoking devices; U.S. Pat. No. 8,402,976 to Fernando et al. discloses a computer interface means for a smoking device that facilitates charging and allows computer control of the device; U.S. Pat. No. 8,689,804 to Fernando et al. discloses an identification system for a smoking device, and International Publication No. 2010 / 003480 to Flick discloses a fluid flow detection system that indicates puffs in an aerosol generation system; all of the foregoing disclosures are incorporated herein by reference in their entireties.

[0141] Further examples of components related to electronic smoking articles and disclosing materials or components that can be used in the articles include U.S. Pat. No. 4,735,217 to Gerth et al.; U.S. Pat. No. 5,249,586 to Morgan et al.; U.S. Pat. No. 5,666,977 to Higgins et al.; U.S. Pat. No. 6,053,176 to Adams et al.; U.S. Pat. No. 6,164,287 to White; U.S. Pat. No. 6,164,287 to Vo U.S. Patent No. 6,196,218 to Ges; U.S. Patent No. 6,810,883 to Felter et al.; U.S. Patent No. 6,854,461 to Nichols; U.S. Patent No. 7,832,410 to Hon; U.S. Patent No. 7,513,253 to Kobayashi; U.S. Patent No. 7,896,006 to Hamano; U.S. Patent No. 6,772,756 to Shayan Nos. 8,156,944 and 8,375,957 to Hon; U.S. Pat. No. 8,794,231 to Thorens et al.; U.S. Pat. No. 8,851,083 to Oglesby et al.; U.S. Pat. Nos. 8,915,254 and 8,925,555 to Monsees et al.; U.S. Pat. No. 9,220,302 to DePiano et al.; U.S. Pat. No. 9,220,302 to Hon et al. Patent applications include U.S. Patent Application Publication Nos. 2006 / 0196518 and 2009 / 0188490; U.S. Patent Application Publication No. 2010 / 0024834 to Oglesby et al.; U.S. Patent Application Publication No. 2010 / 0307518 to Wang; International Publication No. WO2010 / 091593 to Hon; and International Publication No. WO2013 / 089551 to Foo, each of which is incorporated herein by reference in its entirety. Additionally, U.S. Patent Application Publication No. 2017 / 0099877 to Worm et al. discloses a capsule that can be included in a smoking article and a fob configuration for a smoking article, which is incorporated herein by reference in its entirety.The various materials disclosed by the aforementioned documents may be incorporated into the devices of the present invention in various embodiments, and all of the foregoing disclosures are incorporated herein by reference in their entirety.

[0142] The control body 310 of the embodiment depicted in Figure 5 includes a resonant transmitter and a resonant receiver, which together form a resonant transformer. The resonant transformer of various embodiments of the present disclosure can take a variety of forms, including embodiments in which one or both of the resonant transmitter and the resonant receiver are located substantially fixedly within the control body 310 of the smoking article 300.

[0143] In the particular embodiment depicted in FIG. 5 , the resonant transmitter includes a laminate including a foil material 360 surrounding a support cylinder 361, and the resonant receiver of the depicted embodiment includes multiple receiver prongs 362 extending from a receiver base member 364. In some implementations, the foil material may include electrical traces printed thereon, such as one or more electrical traces that, in some implementations, may form a spiral pattern when the foil material is positioned around the resonant receiver. In various implementations, the resonant receiver and resonant transmitter may be constructed of one or more conductive materials, and in further implementations, the resonant receiver may be constructed of a ferromagnetic material, including, but not limited to, cobalt, iron, nickel, and combinations thereof. In the illustrated implementation, the foil material 360 is constructed of a conductive material, and the receiver prongs 362 are constructed of a ferromagnetic material. In various implementations, the receiver base member 364 may be constructed of a non-conductive and / or insulating material.

[0144] As shown, the resonant transmitter 360 may extend proximate the engagement end of the housing 342 and may be configured to substantially surround a portion of the heated portion 314 of the aerosol source member 320, including the aerosol generating cartridge 368. In such an embodiment, the resonant transmitter 360 of the illustrated embodiment may define a tubular configuration. As shown in FIG. 5 , the resonant transmitter 360 may surround a support cylinder 361. The support cylinder 361 may also define a tubular configuration and may be configured to support the foil material 360 so that it does not move and contact the resonant receiver prongs 362, thereby shorting out the foil material 360 with the resonant receiver prongs 362. In such an embodiment, the support cylinder 361 may comprise a non-conductive material and may be substantially transparent to the oscillating magnetic field generated by the foil material 360. In various embodiments, the foil material may be embedded in or otherwise coupled to the support cylinder. In the illustrated embodiment, the foil material 360 engages the outer surface of the support cylinder 361, but in other embodiments the foil material may be located on the inner surface of the support cylinder or may be completely embedded in the support cylinder.

[0145] In the illustrated embodiment, the support cylinder 361 may also serve to facilitate proper positioning of the aerosol source member 320 when the aerosol source member is inserted into the housing 342. In particular, the support cylinder 361 may extend from the opening 344 in the housing 342 to the receiver base member 364. In the illustrated embodiment, the inner diameter of the support cylinder 361 may be slightly larger than or approximately equal to the outer diameter of the corresponding aerosol source member 320 (e.g., to create a snug fit) so that the support cylinder 361 guides the aerosol source member 320 into the appropriate position (e.g., lateral position) relative to the control body 310. In the illustrated embodiment, the control body 310 is configured so that the receiver prongs 362 are approximately radially centered on the heated end 314 of the aerosol source member 320 when the aerosol source member 320 is inserted into the control body.

[0146] In various embodiments, the transmitter support member 361 may engage an interior surface of the housing 342 to provide alignment of the support member relative to the housing. A fixed coupling between the support member 361 and the resonant transmitter 360 may thereby result in the longitudinal axis of the resonant transmitter extending substantially parallel to the longitudinal axis of the housing 342. In various embodiments, the resonant transmitter 360 may be positioned so as not to contact the housing 342 to avoid the transmission of current from a device coupled to the transmitter to the outside world. In some embodiments, an insulator may be positioned between the resonant transmitter 360 and the housing 342 to prevent contact therebetween. As will be appreciated, the insulator and support member may comprise any non-conductive material, such as an insulating polymer (e.g., plastic or cellulose), glass, rubber, ceramic, and porcelain. Alternatively, in embodiments in which the housing is formed from a non-conductive material, such as plastic, glass, rubber, ceramic, or porcelain, the resonant transmitter may contact the housing.

[0147] In some embodiments, the aerosol generation cartridge 368 may be constructed, at least in part, from a conductive or ferromagnetic material to function as a resonant receiver. For example, as described above, the enclosure of the aerosol generation cartridge 368 may be aluminum or another metallic material that may be suitable for functioning as a resonant receiver. Additionally or alternatively, the aerosol precursor carrier or other components within the enclosure may be made from a material suitable for use as a resonant receiver, e.g., a material that generates heat in the presence of an alternating magnetic field generated by a resonant transmitter. In other embodiments, the packaging material 45, 95 used to assemble the aerosol source member 320 may include, at least in part, a foil layer or the like suitable for functioning as a resonant receiver. In further embodiments, a dedicated resonant receiver component is affixed to the aerosol generation cartridge 368 during formation of the aerosol source member 320. Unlike the illustrated embodiment of FIG. 5, in which the resonant receiver includes a prong 362 formed as part of the control body 310, in each of the variations described above, a resonator is implemented as part of the aerosol source member 320 to remove the aerosol-forming agent from the opening 344 when the aerosol source member 320 is depleted of it.

[0148] As described above, the aerosol source member 320 of the present disclosure is configured to operate in conjunction with the control body 310 to generate an aerosol. In particular, when the aerosol source member 320 is coupled to the control body 310 (e.g., when the aerosol source member is inserted into the control body), the resonant transmitter may at least partially surround, substantially surround, or completely surround (e.g., by extending around its circumference) the resonant receiver. Furthermore, the resonant transmitter may extend along at least a portion of the longitudinal length of the resonant receiver, may extend along a majority of the longitudinal length of the resonant receiver, or may extend along substantially all or more of the longitudinal length of the resonant receiver. Furthermore, in various embodiments, when the aerosol source member is inserted into the control body, the resonant receiver may extend along at least a portion of the longitudinal length of the aerosol-generation segment 365, may extend along a majority of the longitudinal length of the aerosol-generation segment, or may extend along substantially all or more of the longitudinal length of the aerosol-generation segment.

[0149] In use, when a user inhales on the mouth end of the aerosol source member 320, the resonant transmitter may generate an oscillating magnetic field. As a result of the resonant receiver being located inside the area defined by the resonant transmitter, the resonant receiver may be exposed to the oscillating magnetic field generated by the resonant transmitter. In particular, the resonant transmitter and resonant receiver together form a resonant transformer. In some examples, the resonant transformer and associated circuitry, including the inverter, may be configured to operate in accordance with a suitable wireless power transfer standard, such as the Qi interface standard developed by the Wireless Power Consortium (WPC), the Power Matters Alliance (PMA) interface standard developed by the PMA, or the Rezence interface standard developed by the Alliance for Wireless Power (A4WP).

[0150] According to exemplary embodiments, a change in current in the resonant transmitter as commanded from the power source by the control component may generate an alternating electromagnetic field that penetrates the resonant receiver, thereby generating electrical eddy currents in the resonant receiver. The alternating electromagnetic field may be generated by directing an alternating current at the resonant transmitter. As mentioned above, in some embodiments, the control component may include an inverter or inverter circuit configured to convert direct current provided by the power source to alternating current provided to the resonant transmitter.

[0151] Eddy currents flowing in the material defining the resonant receiver may heat the resonant receiver through the Joule effect, with the amount of heat generated being proportional to the square of the current multiplied by the electrical resistance of the resonant receiver material. In resonant receiver embodiments that include ferromagnetic materials, heat may also be generated by magnetic hysteresis losses. Several factors contribute to the temperature rise of a resonant receiver, including, but not limited to, proximity to the resonant transmitter, distribution of the magnetic field, electrical resistivity of the resonant receiver material, saturation magnetic flux density, skin effect or depth, hysteresis losses, magnetic susceptibility, magnetic permeability, and dipole moment of the material.

[0152] In this regard, both the resonant receiver and the resonant transmitter may include conductive materials. By way of example, the resonant transmitter and / or receiver may be made of a metal, electrically conductive material such as copper or aluminum. alloys of materials (e.g., diamagnetic, paramagnetic, or ferromagnetic materials), or one or more conductive A variety of conductive materials, including other materials such as ceramics and glasses, with materials embedded within them In another embodiment, the resonant receiver may include conductive particles. In some embodiments, resonance The receiver is covered with a thermally conductive passivation layer (e.g., It may be coated with or otherwise contain a thin layer of glass.

[0153] Thus, in various embodiments, the resonant receiver may be heated by the resonant transmitter. Heat generated by the resonant receiver may heat the aerosol precursor while it is in the aerosol-generation cartridge 368, causing the aerosol to be generated within the cartridge. By positioning the resonant receiver near the aerosol precursor and at a substantially uniform distance therefrom, the aerosol precursor may be heated substantially uniformly.

[0154] The aerosol may be mixed with air entering through a vent / inlet defined in the control body housing. For example, in some embodiments, the vent may be defined around the periphery of the housing upstream from the heated end of the aerosol source member. Thus, the air-aerosol mixture may be directed toward the user. For example, the air-aerosol mixture may be directed toward the user through a filter located at the mouth end of the aerosol source member. However, as can be appreciated, the flow pattern through the smoking article may vary from the specific configurations described above in any of a variety of ways without departing from the scope of the present disclosure.

[0155] In some embodiments, the aerosol source member may further include an authentication component, which may be configured to enable authentication of the aerosol source member. For example, the control component may allow current to flow through the resonant transmitter only if the aerosol source member is verified as authentic. In some embodiments, the authentication component may include a radio frequency identification (RFID) chip configured to wirelessly transmit a code or other information to the control unit. This allows the smoking article to be used without the need for an electrical connector to be engaged between the aerosol source member and the control unit. Further, various examples of control components and functions performed thereby are described in U.S. Pat. No. 9,854,835 to Ampolini et al., the entire contents of which are incorporated herein by reference.

[0156] As indicated above, in some embodiments, the control component of the controller may include an inverter or inverter circuit configured to convert direct current provided by the power source to alternating current provided to the resonant transmitter. The inverter may also include an inverter controller embodied as an integrated circuit configured to output a signal configured to drive the resonant transmitter to generate an oscillating magnetic field and induce an alternating voltage in the resonant receiver upon exposure to the oscillating magnetic field. This alternating voltage causes the resonant receiver to heat, thereby generating an aerosol from the aerosol-forming agent.

[0157] In some examples, the control component may further protect the temperature of the resonant receiver from reaching or exceeding a threshold value. In some of these examples, the control component may include a microprocessor configured to receive measurements of the alternating current induced in the resonant receiver. The microprocessor may control the operation of at least one functional element of the smoking article in response to the measurements, such as reducing the temperature of the resonant receiver if the measurements indicate a temperature equal to or greater than the threshold temperature. One manner of reducing the temperature is to reduce, modulate, and / or terminate the current supplied to the resonant transmitter. Some examples are described in U.S. Patent Application Publication No. 2017 / 0196263 to Sur, the entire contents of which are incorporated herein by reference.

[0158] Further examples of control components and associated circuitry for various induction schemes are described in U.S. Patent Application Publication Nos. 2017 / 0202266 and 2018 / 0132531 to Sur et al., each of which is incorporated herein by reference in its entirety.

[0159] In view of possible interrelationships between aspects of the disclosure in providing such related benefits and advantages, the disclosure therefore specifically and expressly includes, without limitation, embodiments representing various combinations of the disclosed aspects. Thus, the disclosure includes any combination of two, three, four, or more features or elements described in the disclosure, regardless of whether such features or elements are explicitly combined in the description of a particular embodiment herein or otherwise described. The disclosure is intended to be read holistically, such that any separable features or elements of the disclosure should be considered as intended, i.e., combinable, in any of its aspects and embodiments, unless the context of the disclosure clearly dictates otherwise.

[0160] Many modifications and other aspects of the disclosure set forth herein will come to mind to one skilled in the art to which these disclosures pertain having the benefit of the teachings presented in the foregoing descriptions and the associated drawings. For example, one skilled in the art will understand that embodiments not expressly set forth herein can be practiced within the scope of the present disclosure, including that features described herein for various embodiments can be combined with each other and / or with now-known or future-developed technology while remaining within the scope of the claims presented herein.

[0161] It is therefore to be understood that the present disclosure is not limited to the particular embodiments disclosed, and that equivalents, modifications, and other embodiments are intended to be included within the scope of the appended claims. Although specific terms are employed herein, they are used in a generic and descriptive sense only and not for purposes of limitation. Aspects of the present disclosure will be more fully described by the examples herein; however, these examples are set forth to illustrate particular aspects of the disclosure and are not to be construed as limiting its scope. Unless otherwise specified, all parts and percentages are by weight.

Claims

1. A smoking article comprising: mouth end, and an aerosol-generating cartridge in fluid communication with the mouth end; the aerosol-generating cartridge includes an enclosure configured to receive an aerosol precursor therein, the aerosol precursor configured to generate an aerosol in response to heat, at least a portion of the enclosure being permeable such that upon heating of the enclosure or the aerosol precursor therein, the aerosol precursor is retained within the enclosure while an aerosol formed from the aerosol precursor is released from the enclosure through a permeable portion; the enclosure further defines a first end wall portion and a second end wall portion, the second end wall portion being fitted against the first end wall portion to define two or more pockets recessed relative to an end face of the aerosol-generating cartridge, each pocket defining a void space forming a convective air gap, and each of the two or more recessed pockets being disposed adjacent to the first end wall portion; Smoking articles.

2. 2. The smoking article of claim 1, further comprising an ignitable heat-generating element positioned opposite the aerosol-generating cartridge from the mouth end of the smoking article, the heat-generating element comprising a carbonizable material or a pyrolytic material.

3. 3. The smoking article of claim 2, further comprising a tobacco rod disposed between the aerosol-generating cartridge and the mouth end or between the aerosol-generating cartridge and the heat-generating element.

4. The smoking article of claim 1 , wherein the mouth end includes a filter element in fluid communication with the aerosol-generating cartridge.

5. 10. The smoking article of claim 1, wherein the aerosol precursor comprises tobacco beads, tobacco pellets, extruded tobacco, cast sheet tobacco in cut filler form, a sheet of reconstituted tobacco material in cut filler form, aerosol-forming beads, alumina beads, ceramic material, cast sheet of non-tobacco material in cut filler form, glass fiber mat, foil sheet, gathered paper, or gel, or various combinations thereof.

6. The smoking article of claim 1 , wherein the enclosure comprises tobacco, paper, or metal, or various combinations thereof.

7. 7. The smoking article of claim 6, wherein the enclosure comprises a paper-foil laminate.

8. 2. The smoking article of claim 1, wherein the enclosure includes an elongated peripheral wall defining an elongated hollow cylinder having opposed first and second longitudinal ends, and first and second end walls extending across the first and second longitudinal ends, respectively, of the peripheral wall.

9. 9. The smoking article of claim 8, wherein one of the first end wall and the second end wall is perforated to allow aerosol to escape from the enclosure.

10. 10. The smoking article of claim 9, wherein the first end wall and the second end wall are perforated.

11. 9. The smoking article of claim 8, wherein one of the first end wall and the second end wall is offset from the first and second longitudinal ends, respectively, of the peripheral wall.

12. 12. The smoking article of claim 11, wherein the first end wall includes a first end wall portion and a second end wall portion, and the first end wall portion and the second end wall portion are not coplanar.

13. 13. The smoking article of claim 12, wherein the first end wall portion is offset from the second end wall portion along a longitudinal axis of the peripheral wall.

14. 9. The smoking article of claim 8, wherein the enclosure is symmetrical about the longitudinal axis of the peripheral wall.

15. 9. The smoking article of claim 8, wherein the enclosure is symmetrical about a plane that bisects the peripheral wall between the first longitudinal end and the second longitudinal end.

16. 9. The smoking article of claim 8, wherein one of the first end wall and the second end wall is formed separately from the peripheral wall and is engaged with the peripheral wall by welding, adhesive, or a friction fit.

17. 9. The smoking article of claim 8, wherein one of the first end wall and the second end wall includes a folded wrapping material extending laterally across one of the first and second longitudinal ends of the peripheral wall and extending along the peripheral wall as a layer thereof.

18. 2. The smoking article of claim 1, further comprising a control body, the control body including at least a portion of a heating device associated with a receptacle defined by the control body, the receptacle configured to receive an end of the aerosol generating cartridge, the end being opposite the mouth end.

19. 20. The smoking article of claim 18, wherein the heating device is an electrical resistance heater configured to generate heat to heat the enclosure or the aerosol precursor therein.

20. 20. The smoking article of claim 18, wherein the heating device is an induction heater including a resonant transmitter.

21. 21. The smoking article of claim 20, wherein the aerosol generating cartridge includes a resonant receiver configured to cooperate with the resonant transmitter to generate heat for heating the enclosure or the aerosol precursor therein.

22. 22. The smoking article of claim 21, wherein the resonant receiver is attached to the aerosol-generating cartridge.

23. 22. The smoking article of claim 21, wherein the enclosure contains the resonant receiver.

24. 2. The smoking article of claim 1, wherein the aerosol-generating cartridge comprises a plurality of aerosol-generating cartridges, and the aerosol precursor in a first cartridge of the plurality of aerosol-generating cartridges has at least one component that is different from the aerosol precursor in a second cartridge of the plurality of aerosol-generating cartridges.

25. 25. The smoking article of claim 24, wherein the first cartridge of the plurality of aerosol-generating cartridges and the second cartridge of the plurality of aerosol-generating cartridges are arranged consecutively relative to one another.

26. 10. The smoking article of claim 1, comprising a wrapping material surrounding at least a portion of the aerosol-generating cartridge, the wrapping material comprising a paper-foil sheet laminate, a paper-foil-paper sheet laminate, a paper-foil-tobacco sheet laminate, a nonwoven graphite sheet, a graphene sheet, a graphene-foil sheet laminate, a graphene-foil-paper sheet laminate, a paper-graphene sheet laminate, graphene ink embossed on a paper sheet, graphene ink embossed on a foil sheet, carbon nanotubes engaged with a paper or foil sheet, fullerenes engaged with a paper or foil sheet, or graphene engaged with a paper or foil sheet, or various combinations thereof.

27. 1. An aerosol-generating cartridge for use in a smoking article, comprising: an aerosol precursor; an enclosure configured to receive the aerosol precursor therein; an aerosol generating cartridge, wherein at least a portion of the enclosure is permeable so that, upon heating of the enclosure or the aerosol precursor therein, the aerosol precursor is retained within the enclosure while an aerosol formed from the aerosol precursor is released from the enclosure through a permeable portion; the enclosure further defines a first end wall portion and a second end wall portion, the second end wall portion being fitted against the first end wall portion to define two or more pockets that are recessed relative to an end face of the aerosol generating cartridge, each pocket defining an void space that forms a convective air gap, and each of the two or more recessed pockets being disposed adjacent to the first end wall portion.

28. 28. The aerosol-generating cartridge of claim 27, wherein the aerosol precursor comprises tobacco beads, tobacco pellets, extruded tobacco, cast sheet tobacco in cut filler form, a sheet of reconstituted tobacco material in cut filler form, aerosol-forming beads, alumina beads, ceramic material, cast sheet of non-tobacco material in cut filler form, glass fiber mat, foil sheet, gathered paper, or gel, or various combinations thereof.

29. 28. The aerosol generating cartridge of claim 27, wherein the enclosure comprises tobacco, paper, or metal, or various combinations thereof.

30. 30. The aerosol generating cartridge of claim 29, wherein the enclosure comprises a paper-foil laminate.

31. 28. The aerosol generating cartridge of claim 27, wherein the enclosure includes an elongated peripheral wall defining an elongated hollow cylinder having opposing first and second longitudinal ends, and first and second end walls extending across the first and second longitudinal ends of the peripheral wall, respectively.

32. 32. The aerosol generating cartridge of claim 31, wherein one of the first end wall and the second end wall is perforated to allow the aerosol to escape from the enclosure.

33. 33. The aerosol generating cartridge of claim 32, wherein the first end wall and the second end wall are perforated.

34. 32. The aerosol generating cartridge of claim 31, wherein one of the first end wall and the second end wall is offset from the first and second longitudinal ends, respectively, of the peripheral wall.

35. 35. The aerosol generating cartridge of claim 34, wherein the first end wall includes the first end wall portion and the second end wall portion, and the first end wall portion and the second end wall portion are not coplanar.

36. 36. The aerosol generating cartridge of claim 35, wherein the first end wall portion is offset from the second end wall portion along a longitudinal axis of the peripheral wall.

37. 32. The aerosol generating cartridge of claim 31, wherein one of the first end wall and the second end wall is formed separately from the peripheral wall and is engaged with the peripheral wall by welding, adhesive, or a friction fit.

38. 32. The aerosol generating cartridge of claim 31 , wherein one of the first end wall and the second end wall includes a folded wrapping material extending laterally across one of the first and second longitudinal ends of the peripheral wall and extending along the peripheral wall as a layer thereof.

39. 32. The aerosol generating cartridge of claim 31, wherein the enclosure is symmetrical about the longitudinal axis of the peripheral wall.

40. 32. The aerosol generating cartridge of claim 31, wherein the enclosure is symmetrical about a plane that bisects the peripheral wall between the first longitudinal end and the second longitudinal end.

41. A smoking article comprising: A mouthpiece end; an aerosol-generating cartridge in fluid communication with the mouth end, the aerosol-generating cartridge including an enclosure configured to receive an aerosol precursor therein, the aerosol precursor configured to generate an aerosol in response to heat; a tobacco rod disposed between the aerosol-generating cartridge and the mouth end, The aerosol-generating cartridge includes an enclosure including an elongated peripheral wall defining an elongated hollow cylinder having opposed first and second longitudinal ends, the first longitudinal end defining a first end wall extending across the first longitudinal end, and the second longitudinal end abutting the tobacco rod, the enclosure further defining a first end wall portion and a second end wall portion, the second end wall portion being fitted against the first end wall portion to define two or more pockets recessed relative to an end face of the aerosol-generating cartridge, each pocket defining a void space forming a convective air gap, and each of the two or more recessed pockets being disposed adjacent the first end wall portion. Smoking articles.

42. 42. The smoking article of claim 41, wherein the mouth end includes a filter element in fluid communication with the aerosol-generating cartridge.

43. 42. The smoking article of claim 41, further comprising a wrapping material surrounding at least a portion of the enclosure and at least a portion of the tobacco rod, the wrapping material comprising a paper-foil sheet laminate, a paper-foil-paper sheet laminate, a paper-foil-tobacco sheet laminate, a nonwoven graphite sheet, a graphene sheet, a graphene-foil sheet laminate, a graphene-foil-paper sheet laminate, a paper-graphene sheet laminate, graphene ink embossed on a paper sheet, graphene ink embossed on a foil sheet, carbon nanotubes engaged with a paper or foil sheet, fullerenes engaged with a paper or foil sheet, or graphene engaged with a paper or foil sheet, or various combinations thereof.

44. 42. The smoking article of claim 41, wherein the enclosure comprises at least one of tobacco, paper, or metal, or various combinations thereof.

45. 42. The smoking article of claim 41, wherein the enclosure is symmetrical about the longitudinal axis of the peripheral wall.

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