Electrically-heating non-burning smoking appliance

The aerosol delivery device addresses performance inconsistencies and battery capacity issues in electrically heated smoking devices by using a flexible heating element and efficient power management, ensuring consistent smoking sensations and reduced battery needs.

JP2026004517APending Publication Date: 2026-01-14RAI STRATEGIC HOLDINGS INC
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Patent Information

Application Number
JP2025168066
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2018-03-09
Filing Date
2025-10-06
Publication Date
2026-01-14

AI Technical Summary

Technical Problem

Existing electrically heated smoking devices suffer from inconsistent performance characteristics and require large battery capacities.

Method used

An aerosol delivery device with a tubular control body, heating member, control component, and removable aerosol source member that uses a flexible heating element to generate an inhalable substance, optimizing power efficiency and temperature control.

Benefits of technology

The device provides consistent smoking sensations without combustion, with improved performance characteristics and efficient power usage, allowing for rapid temperature adjustment and reduced battery requirements.

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Abstract

An aerosol delivery device configured to produce an inhalable substance is disclosed.SOLUTION: The aerosol delivery device may comprise a control body, a heating member, a control component, a power source, and a removable aerosol source member comprising an inhalable substance medium, the aerosol source member being configured for insertion into the control body and defining a heated end and a mouth end, the heated end being configured to be positioned proximate the heating member when the heated end is inserted into the control body. In some implementations, the heating member may comprise a base heating member and a substrate heating member, wherein the base heating member is disposed in the control body and the substrate heating member is disposed in the aerosol source member. In some implementations the heating member may comprise a flexible heating member surrounding a heating cylinder disposed within a portion of the engaging end of the control body.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present disclosure relates to aerosol delivery articles and their use for producing tobacco components or other materials in inhalable form. More specifically, the present disclosure relates to aerosol delivery devices and systems, such as smoking devices, that utilize electrical heating to heat tobacco or tobacco-derived materials, preferably without significant combustion, to provide an inhalable substance in the form of an aerosol for human consumption. [Background technology]

[0002] Many smoking devices have been proposed over the years as improvements or replacements for smoking products based on tobacco combustion. Exemplary replacements include devices in which a solid or liquid fuel is burned to transfer heat to the tobacco, or a chemical reaction is used to provide such a heat source. Examples include the smoking devices described in U.S. Patent No. 9,078,473 to Worm et al., which is incorporated herein by reference.

[0003] The main focus of the improvement or replacement of smoking implements has typically been to provide the sensation associated with smoking cigarettes, cigars or pipes without delivering a significant amount of incomplete combustion and pyrolysis products.For this purpose, many smoking products, flavor generators and medicinal inhalers have been proposed, which utilize electrical energy to vaporize or heat volatile materials, or to provide the sensation of smoking cigarettes, cigars or pipes without significantly burning tobacco.For example, see U.S. Patent No. 7,726,320 to Robinson et al., and U.S. Patent Application Publication No. 2013 / 0255702 to Griffith, Jr. et al. and U.S. Patent Application Publication No. 2014 / 0096781 to Sears et al., which are incorporated herein by reference, in the background art, for example, various alternative smoking implements, aerosol delivery devices and heat sources. See also, for example, U.S. Patent Application Publication No. 2015 / 0220232 to Bless et al., which is incorporated herein by reference, for various types of smoking devices, aerosol delivery devices, and electrical heating sources referenced by trade name and commercial source. U.S. Patent Application Publication No. 2015 / 0245659 to DePiano et al., which is also incorporated herein by reference in its entirety, lists additional types of smoking devices, aerosol delivery devices, and electrical heating sources referenced by trade name and commercial source.Other representative cigarettes or smoking devices that have been described, and in some cases are commercially available, include U.S. Pat. No. 4,735,217 to Gerth et al., U.S. Pat. Nos. 4,922,901, 4,947,874, and 4,947,875 to Brooks et al., U.S. Pat. No. 5,060,671 to Counts et al., U.S. Pat. No. 5,249,586 to Morgan et al., U.S. Pat. No. 5,249,586 to Count ...249,586 to Morgan et al., U.S. Pat No. 5,388,594, 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. 6,196,218 to Voges, U.S. Pat. No. 6,810,883 to Felter et al., U.S. Pat. No. 6,854,461 to Nichols, U.S. Pat. No. 7,832,410 to Hon, U.S. Pat. No. 7,513, No. 253 to Robinson et al., U.S. Pat. No. 7,726,320 to Hamano, U.S. Pat. No. 7,896,006 to Shayan, U.S. Pat. No. 6,772,756 to Shayan, U.S. Pat. App. Pub. Nos. 2009 / 0095311 to Hon, U.S. Pat. App. Pub. Nos. 2006 / 0196518 to Hon, U.S. Pat. App. Pub. Nos. 2009 / 0126745 and 2009 / 0188490 to Thorens et al. U.S. Patent Application Publication No. 2009 / 0272379, U.S. Patent Application Publication Nos. 2009 / 0260641 and 2009 / 0260642 to Monsees et al., U.S. Patent Application Publication Nos. 2008 / 0149118 and 2010 / 0024834 to Oglesby et al., U.S. Patent Application Publication No. 2010 / 0307518 to Wang, and WO 2010 / 091593 to Hon.

[0004] Representative products that mimic many of the attributes of a traditional cigarette, cigar or pipe include ACCORD® by Philip Morris Incorporated, ALPHA™, JOYE 510™ and M4™ by InnoVapor LLC, CIRRUS™ and FLING™ by White Cloud Cigarettes, BLU™ by Fontem Ventures BV, COHITA™, COLIBRI™, ELITE CLASSIC™, MAGNUM™, PHANTOM™ and SENSE™ by EPUFFER® International Inc., DUOPRO™, STORM™ and VAPORKING® by Electronic Cigarettes, Inc., EGAR™ by Egar Australia, eGo-C™ and eGo-T™ by Joyetech, ELUSION™ by Elusion UK Ltd, and Eonsmoke. EONSMOKE® by FIN Branding Group, LLC, FIN™ by FIN Branding Group, LLC, SMOKE® by Green Smoke Inc. USA, GREENARETTE™ by Greenarette LLC, HALLIGAN™, HENDU™, JET™, MAXXQ™, PINK™ and PITBULL™ by SMOKE STIK®, HEATBAR™ by Philip Morris International, Inc., HYDRO IMPERIAL™ and LXE™ by Crown7, LOGIC™ and THE CUBAN™ by LOGIC Technology, LUCI® by Luciano Smokes Inc., METRO® by Nicotek, LLC, NJOY® and ONEJOY™ by Sottera, Inc., NO.7™ by SS Choice LLC, PREMIUM ELECTRONIC by PremiumEstore LLC CIGARETTE(TM), Ruyan America, Inc.and Vype products by CN Creative Ltd.; RAPP E-MYSTICK™ by Red Dragon Products, LLC; RED DRAGON™ by Red Dragon Products, LLC; RUYAN® by Ruyan Group (Holdings) Ltd.; SF® by Smoker Friendly International, LLC; GREEN SMART SMOKER® by The Smart Smoking Electronic Cigarette Company Ltd.; SMOKE ASSIST® by Coastline Products LLC; SMOKING EVERYWHERE® by Smoking Everywhere, Inc.; V2CIGS™ by VMR Products LLC; VAPOR NINE™ by VaporNine LLC; VAPOR4LIFE® by Vapor 4 Life, Inc.; VEPPO™ by E-CigaretteDirect, LLC; VUSE® by RJ Reynolds Vapor Company; Mistic Menthol products by Mistic Ecigs; and Vype products by CN Creative Ltd. Still other electrical aerosol delivery devices, particularly those characterized as so-called e-cigarettes, are marketed under the trade names COOLER VISIONS™, DIRECT E-CIG™, DRAGONFLY™, EMIST™, EVERSMOKE™, GAMUCCI®, HYBRID FLAME™, KNIGHT STICKS™, ROYAL BLUES™, SMOKETIP®, SOUTH BEACH SMOKE™, and IQOS™ by Philip Morris International, and GLO™ by British American Tobacco. [Prior art documents] [Patent documents]

[0005] [Patent Document 1] U.S. Patent No. 9,078,473 [Patent Document 2] U.S. Patent No. 7,726,320 [Patent Document 3] US Patent Application Publication No. 2013 / 0255702 [Patent Document 4] US Patent Application Publication No. 2014 / 0096781 [Patent Document 5] US Patent Application Publication No. 2015 / 0220232 [Patent Document 6] US Patent Application Publication No. 2015 / 0245659 [Patent Document 7] U.S. Patent No. 4,735,217 [Patent Document 8] U.S. Patent No. 4,922,901 [Patent Document 9] U.S. Patent No. 4,947,874 [Patent Document 10] U.S. Patent No. 4,947,875 [Patent Document 11] U.S. Patent No. 5,060,671 [Patent Document 12] U.S. Patent No. 5,249,586 [Patent Document 13] U.S. Patent No. 5,388,594 [Patent Document 14] U.S. Patent No. 5,666,977 [Patent Document 15] U.S. Patent No. 6,053,176 [Patent Document 16] U.S. Patent No. 6,164,287 [Patent Document 17] U.S. Patent No. 6,196,218 [Patent Document 18] U.S. Patent No. 6,810,883 [Patent Document 19] U.S. Patent No. 6,854,461 [Patent Document 20] U.S. Patent No. 7,832,410 [Patent Document 21] U.S. Patent No. 7,513,253 [Patent Document 22] U.S. Patent No. 7,896,006 [Patent Document 23] U.S. Patent No. 6,772,756 [Patent Document 24] US Patent Application Publication No. 2009 / 0095311 [Patent Document 25] US Patent Application Publication No. 2006 / 0196518 [Patent Document 26] US Patent Application Publication No. 2009 / 0126745 [Patent Document 27] US Patent Application Publication No. 2009 / 0188490 [Patent Document 28] US Patent Application Publication No. 2009 / 0272379 [Patent Document 29] US Patent Application Publication No. 2009 / 0260641 [Patent Document 30] US Patent Application Publication No. 2009 / 0260642 [Patent Document 31] US Patent Application Publication No. 2008 / 0149118 [Patent Document 32] US Patent Application Publication No. 2010 / 0024834 [Patent Document 33] US Patent Application Publication No. 2010 / 0307518 [Patent Document 34] International Publication No. 2010 / 091593 Summary of the Invention [Problem to be solved by the invention]

[0006] Articles that produce the taste and sensation of smoking by electrically heating tobacco or tobacco-derived materials have suffered from inconsistent performance characteristics. Electrically heated smoking devices have often been further limited by the need for large battery capacities. Therefore, it would be desirable to provide a smoking device that can provide the smoking sensation of a cigarette, cigar, or pipe without substantial combustion, and that has improved performance characteristics. [Means for solving the problem]

[0007] The present disclosure provides an aerosol delivery device configured to generate an inhalable substance. The present disclosure includes, but is not limited to, the following exemplary embodiments.

[0008] 10. An aerosol delivery device configured to generate an inhalable substance, the aerosol delivery device comprising: a substantially tubular control body having a closed distal end and an open engaging end; a heating member; a control component disposed within the control body and configured to control the heating member; a power source disposed within the control body and configured to provide power to the control component; and a substantially cylindrical, removable aerosol source member containing an inhalable substance medium, the aerosol source member configured to be inserted into the engaging end of the control body and defining a heated end and a mouth end, the heated end configured to be disposed proximate to the heating member when inserted into the control body, the mouth end configured to extend beyond the engaging end of the control body, the heating member configured to provide heat to at least a portion of the aerosol source member to form an inhalable aerosol, the aerosol configured to be drawn through the aerosol source member in response to suction applied to the mouth end of the inhalable substance medium, and the heating member comprising a flexible heating member surrounding a heating cylinder disposed within a portion of the engaging end of the control body.

[0009] Exemplary Embodiment 2: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein at least a portion of the heating element is in direct contact with the inhalable substance medium.

[0010] Exemplary embodiment 3: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the control component is configured to provide an operating current in the range of about 2.5 amps to about 10 amps, or between the range of about 2.5 amps to about 10 amps.

[0011] Exemplary Embodiment 4: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the control component is configured to provide a power source efficiency of up to about 96%.

[0012] Exemplary Embodiment 5: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the control component is configured to establish a temperature arrival time of less than about 10 seconds.

[0013] Exemplary Embodiment 6: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the inhalable substance medium comprises tobacco or a tobacco-derived material.

[0014] Exemplary Embodiment 7: The aerosol delivery device of any preceding exemplary embodiment, or any combination of any preceding exemplary embodiment, wherein at least a portion of the inhalable substance medium comprises at least one of tobacco-containing beads, shredded tobacco, shredded tobacco, reconstituted tobacco material pieces, and cast tobacco sheets.

[0015] Exemplary Embodiment 8: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein at least a portion of the inhalable substance medium comprises an extruded structure (with or without a central opening) comprising tobacco or tobacco-derived material.

[0016] Exemplary embodiment 9: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the aerosol source member comprises an overwrap comprising a paper material that surrounds the inhalable substance medium.

[0017] Exemplary embodiment 10: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the aerosol source member includes a filter material disposed proximate the mouth end of the aerosol source member.

[0018] Exemplary embodiment 11: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the mouth end of the aerosol source member is partially occluded.

[0019] Exemplary embodiment 12: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the control body further includes one or more ventilation openings configured to allow ambient air to enter the control body.

[0020] Exemplary embodiment 13: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, further comprising a puff-activated switch that activates the flow of current from the power source to the heating element.

[0021] Exemplary embodiment 14: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, further comprising a manual push button that activates the flow of current from the power source to the heating element.

[0022] Exemplary Embodiment 15: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the power source comprises a battery.

[0023] Exemplary embodiment 16: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, further including a current adjustment component configured to adjust a previously initiated flow of current from the power source to the heating element.

[0024] Exemplary Embodiment 17: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the current regulation component includes a time reference component.

[0025] Exemplary embodiment 18: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the current regulating component is configured to stop current flow to the electric heating member when a defined temperature is achieved.

[0026] Exemplary embodiment 19: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the current regulating component is configured to cycle current to the electric heating element off and on once a specified temperature is achieved to maintain the specified temperature for a specified period of time.

[0027] Exemplary embodiment 20: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the aerosol source member defines an outer surface and the fluid passage along the length of the aerosol source member is substantially limited to passages within the aerosol source member.

[0028] Exemplary embodiment 21: An aerosol delivery device configured to generate an inhalable substance, the aerosol delivery device comprising: a substantially tubular control body having a closed distal end and an open engagement end; a heating member; a control component disposed within the control body and configured to control the heating member; a power source disposed within the control body and configured to provide power to the control component; and a substantially cylindrical, removable aerosol source member containing an inhalable substance medium, the aerosol source member configured to be inserted into the engagement end of the control body and defining a heated end and a mouth end, the heated end being inserted into the control body. an aerosol delivery device configured to be positioned proximate to the heating member when engaged with the control body, the mouth end configured to extend beyond the engagement end of the control body, the heating member configured to provide heat to at least a portion of the aerosol source member to form an inhalable aerosol, the aerosol configured to be drawn through the aerosol source member in response to suction applied to the mouth end of the inhalable substance medium, the heating member comprising a base heating member and a substrate heating member, the base heating member disposed in the control body, the substrate heating member disposed in the aerosol source member, and the base heating member configured to transfer heat to the substrate heating member.

[0029] Exemplary embodiment 22: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein at least a portion of the heating element is in direct contact with the inhalable substance medium.

[0030] Exemplary embodiment 23: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the control component is configured to provide an operating current in the range of about 2.5 amps to about 10 amps, or between the range of about 2.5 amps to about 10 amps.

[0031] Exemplary embodiment 24: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the control component is configured to provide a power supply efficiency of up to about 96%.

[0032] Exemplary embodiment 25: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the control component is configured to establish a temperature arrival time of less than about 10 seconds.

[0033] Exemplary Embodiment 26: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the inhalable substance medium comprises tobacco or a tobacco-derived material.

[0034] Exemplary Embodiment 27: The aerosol delivery device of any preceding exemplary embodiment, or any combination of any preceding exemplary embodiment, wherein at least a portion of the inhalable substance medium comprises at least one of tobacco-containing beads, shredded tobacco, shredded tobacco, reconstituted tobacco material pieces, and cast tobacco sheets.

[0035] Exemplary embodiment 28: The aerosol delivery device of any preceding exemplary embodiment, or any combination of any preceding exemplary embodiment, wherein at least a portion of the inhalable substance medium comprises an extruded structure (with or without a central opening) comprising tobacco or tobacco-derived material.

[0036] Exemplary embodiment 29: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the aerosol source member comprises an overwrap comprising a paper material that surrounds the inhalable substance medium.

[0037] Exemplary embodiment 30: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the aerosol source member includes a filter material disposed proximate the mouth end of the aerosol source member.

[0038] Exemplary embodiment 31: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the mouth end of the aerosol source member is partially occluded.

[0039] Exemplary embodiment 32: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the control body further includes one or more ventilation openings configured to allow ambient air to enter the control body.

[0040] Exemplary embodiment 33: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, further comprising a puff-activated switch that activates the flow of current from the power source to the heating element.

[0041] Exemplary embodiment 34: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, further comprising a manual push button that activates the flow of current from the power source to the heating element.

[0042] Exemplary embodiment 35: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the power source comprises a battery.

[0043] Exemplary embodiment 36: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, further comprising a current adjustment component configured to adjust a previously initiated flow of current from the power source to the heating element.

[0044] Exemplary embodiment 37: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the current regulation component comprises a time reference component.

[0045] Exemplary embodiment 38: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the current regulating component is configured to stop current flow to the electric heating member when a defined temperature is achieved.

[0046] Exemplary embodiment 39: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the current regulating component is configured to cycle current to the electric heating element off and on once a specified temperature is achieved to maintain the specified temperature for a specified period of time.

[0047] Exemplary embodiment 40: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the aerosol source member defines an outer surface and the fluid passage along the length of the aerosol source member is substantially limited to passages within the aerosol source member.

[0048] Exemplary embodiment 41: An aerosol delivery device configured to generate an inhalable substance, the aerosol delivery device comprising: a substantially tubular control body having a closed distal end and an open engaging end; a heating member; a control component disposed within the control body and configured to control the heating member; a power source disposed within the control body and configured to provide power to the control component; and a substantially cylindrical, removable aerosol source member containing an inhalable substance medium, wherein the aerosol source member is configured to be inserted into the engaging end of the control body and defines a heated end and a mouth end, the heated end is configured to be disposed proximate to the heating member when inserted into the control body, the mouth end is configured to extend beyond the engaging end of the control body, the heating member is configured to provide heat to at least a portion of the aerosol source member to form an inhalable aerosol, the aerosol is configured to be drawn through the aerosol source member in response to suction applied to the mouth end of the inhalable substance medium, and the heating member comprises a plurality of heater protrusions extending into at least a portion of the engaging end of the control body.

[0049] Exemplary embodiment 42: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein at least a portion of the heating element is in direct contact with the inhalable substance medium.

[0050] Exemplary embodiment 43: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the control component is configured to provide an operating current in the range of about 2.5 amps to about 10 amps, or between the range of about 2.5 amps to about 10 amps.

[0051] Exemplary embodiment 44: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the control component is configured to provide a power efficiency of up to about 96%.

[0052] Exemplary embodiment 45: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the control component is configured to establish a temperature arrival time of less than about 10 seconds.

[0053] Exemplary embodiment 46: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the inhalable substance medium comprises tobacco or a tobacco-derived material.

[0054] Exemplary Embodiment 47: The aerosol delivery device of any preceding exemplary embodiment, or any combination of any preceding exemplary embodiment, wherein at least a portion of the inhalable substance medium comprises at least one of tobacco-containing beads, shredded tobacco, shredded tobacco, reconstituted tobacco material pieces, and cast tobacco sheets.

[0055] Exemplary embodiment 48: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein at least a portion of the inhalable substance medium comprises an extruded structure (with or without a central opening) comprising tobacco or tobacco-derived material.

[0056] Exemplary embodiment 49: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the aerosol source member comprises an overwrap comprising a paper material that surrounds the inhalable substance medium.

[0057] Exemplary embodiment 50: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the aerosol source member includes a filter material disposed proximate the mouth end of the aerosol source member.

[0058] Exemplary embodiment 51: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the mouth end of the aerosol source member is partially occluded.

[0059] Exemplary embodiment 52: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the control body further includes one or more ventilation openings configured to allow ambient air to flow into the control body.

[0060] Exemplary embodiment 53: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, further comprising a puff-activated switch that activates the flow of current from the power source to the heating element.

[0061] Exemplary embodiment 54: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, further comprising a manual push button that activates the flow of current from the power source to the heating element.

[0062] Exemplary embodiment 55: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the power source comprises a battery.

[0063] Exemplary embodiment 56: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, further comprising a current adjustment component configured to adjust a pre-initiated flow of current from the power source to the heating element.

[0064] Exemplary embodiment 57: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the current regulation component comprises a time reference component.

[0065] Exemplary embodiment 58: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the current regulating component is configured to stop current flow to the electric heating member when a defined temperature is achieved.

[0066] Exemplary embodiment 59: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the current regulating component is configured to cycle current to the electric heating element off and on once a specified temperature is achieved to maintain the specified temperature for a specified period of time.

[0067] Exemplary embodiment 60: The aerosol delivery device of any preceding exemplary embodiment or any combination of any preceding exemplary embodiment, wherein the aerosol source member defines an outer surface and the fluid passage along the length of the aerosol source member is substantially limited to passages within the aerosol source member.

[0068] 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.

[0069] The present disclosure having been described in general terms above, reference will now be made to the accompanying drawings, which are not necessarily drawn to scale. [Brief explanation of the drawings]

[0070] [Figure 1] 1 shows a perspective view of an aerosol delivery device comprising a control body and an aerosol source member, wherein the aerosol source member and the control body are coupled to one another, according to an exemplary embodiment of the present disclosure. [Figure 2] 2 shows a perspective view of the aerosol delivery device of FIG. 1 in which the aerosol source member and the control body are separated from each other, according to an exemplary embodiment of the present disclosure. [Figure 3]1 shows a schematic front view of an aerosol delivery device according to an exemplary embodiment of the present disclosure. [Figure 4] 4 shows a cross-sectional view of the aerosol delivery device of FIG. 3. [Figure 5] 1 shows a perspective view of an aerosol delivery device comprising a control body and an aerosol source member, wherein the aerosol source member and the control body are coupled to one another, according to another exemplary embodiment of the present disclosure. [Figure 6] 6 shows a perspective view of the aerosol delivery device of FIG. 5, in which the aerosol source member and the control body are separated from each other, according to an exemplary embodiment of the present disclosure. [Figure 7] 1 shows a schematic front view of an aerosol delivery device according to an exemplary embodiment of the present disclosure. [Figure 8] 8 shows a cross-sectional view of the aerosol delivery device of FIG. 7. [Figure 9] 1 shows a perspective view of an aerosol delivery device comprising a control body and an aerosol source member, wherein the aerosol source member and the control body are coupled to one another, according to another exemplary embodiment of the present disclosure. [Figure 10] 10 shows a perspective view of the aerosol delivery device of FIG. 9, in which the aerosol source member and the control body are separated from each other, according to an exemplary embodiment of the present disclosure. [Figure 11] FIG. 1 illustrates a schematic front view of a support cylinder according to an exemplary embodiment of the present disclosure. [Figure 12] 12 shows a cross-sectional view of the support cylinder of FIG. 11. [Figure 13] 1 illustrates a top view of an exemplary embodiment of a heating element of the present disclosure. [Figure 14] 14 shows a perspective view of a heating assembly incorporating the heating element of FIG. 13 according to an exemplary embodiment of the present disclosure. [Figure 15] 1 shows a circuit diagram of an aerosol delivery device according to various exemplary embodiments of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0071] The present disclosure will now be described in more detail with reference to exemplary embodiments thereof. These exemplary embodiments are provided 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 present 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 this specification and the appended claims, the singular forms "a," "an," "the," and the like, include plural referents unless the context clearly dictates otherwise. Also, while the specification may refer to quantitative measures, values, geometric relationships, and the like, unless otherwise stated, any one or more, if not all, of these may be absolute or approximate, to account for possible permissible variations, such as those due to technical tolerances.

[0072] As described below, exemplary embodiments of the present disclosure relate to aerosol delivery devices. Aerosol delivery devices according to the present disclosure use electrical energy to heat a material (preferably without significantly burning the material) to form an inhalable substance. Components of such systems most preferably have the form of an item small enough to be considered a handheld device. That is, preferred aerosol delivery device components do not produce smoke, in the sense that the aerosol is primarily generated from by-products of tobacco combustion or pyrolysis; rather, these preferred systems produce vapor resulting from the volatilization or vaporization of certain components incorporated therein. In some exemplary embodiments, aerosol delivery device components may be characterized as electronic cigarettes, which most preferably incorporate tobacco and / or tobacco-derived components and thus deliver the tobacco-derived components in aerosol form.

[0073] The aerosol-generating components of certain preferred aerosol delivery devices can provide many of the sensations (e.g., inhalation and exhalation patterns, types of tastes or flavors, organoleptic effects, physical sensations, modes of use, visual cues such as those provided by a visible aerosol, etc.) of smoking a cigarette, cigar, or pipe used by lighting and burning tobacco (and thus inhaling tobacco smoke) without substantially burning any of its components. For example, a user of an aerosol-generating component of the present disclosure can hold and use the component, draw on one end of the component to inhale the aerosol generated by the component, take puffs at selected time intervals, etc., in the same way that a smoker would use a conventional type of smoking device.

[0074] Although the systems are generally described herein with respect to embodiments relating to aerosol delivery devices, such as so-called "electronic cigarettes" or "tobacco heating products," it should be understood that the features, components, features, and methods may be embodied in many different forms and associated with a variety of items. For example, the descriptions provided herein may be used in conjunction with traditional smoking devices (e.g., cigarettes, cigars, pipes, etc.), non-combustible heated tobacco products, and related packaging embodiments for any of the products disclosed herein. Accordingly, it should be understood that the descriptions of the features, components, features, and methods disclosed herein are discussed by way of example only with respect to embodiments relating to aerosol delivery devices, and may be embodied in and used in a variety of other products and methods.

[0075] The aerosol delivery device of the present disclosure may also be characterized as a vapor product or drug delivery article. Accordingly, such an article or device may be configured to provide one or more substances (e.g., flavors and / or active pharmaceutical ingredients) in an inhalable form or state. For example, the inhalable substance may be substantially in vapor form (i.e., a substance in the gas phase at a temperature below its critical point). Alternatively, the inhalable substance may be in aerosol form (i.e., a suspension of fine solid particles or liquid droplets in a gas). For clarity, the term "aerosol" as used herein is meant to include vapors, gases, and aerosols in any form or type suitable for human inhalation, regardless of whether they are visible or in a form that can be considered smoky. The physical form of the inhalable substance is not necessarily limited by the nature of the device of the present invention, but may depend on the nature of the medium and the inhalable substance itself, with respect to whether the inhalable substance exists in a vapor or aerosol state. In some embodiments, terms may be interchangeable. Therefore, for simplicity, terms used to describe the present disclosure are understood to be interchangeable unless otherwise specified.

[0076] The aerosol delivery device of the present disclosure generally includes multiple components disposed within an outer body or shell, which may be referred to as a housing. The overall design of the outer body or shell can vary, and the type or configuration of the outer body can vary, which can define the overall size and shape of the aerosol delivery device. Typically, an elongated body resembling the shape of a cigarette or cigar can be formed from a single, integral housing, or the elongated housing can be formed from two or more separable bodies. For example, the aerosol delivery device can include an elongated shell or body that is substantially tubular in shape and can resemble the shape of a traditional cigarette or cigar. In one example, all components of the aerosol delivery device are contained within a single housing. Alternatively, the aerosol delivery device can include two or more housings that can be joined and separated. For example, an aerosol delivery device may have a control body at one end comprising a housing containing one or more reusable components (e.g., a storage battery, such as a rechargeable battery and / or a rechargeable supercapacitor, and various electronics for controlling the operation of the item), and an outer body or shell at the other end that contains a disposable portion (e.g., a disposable flavor-containing aerosol source member) that can be removably connected. More specific formats, configurations, and arrangements of components within a single-housing type unit or a multi-part separable-housing type unit will become apparent in light of the further disclosure provided herein. Additionally, various aerosol delivery device designs and component arrangements may be understood in light of commercially available electronic aerosol delivery devices.

[0077] As described in further detail below, the aerosol delivery device of the present disclosure includes some combination of a driving source (i.e., a power source), at least one control component (e.g., a means for activating, controlling, regulating, and terminating power for heat generation, such as by controlling the flow of current from the power source to other components of the article, e.g., a microprocessor, either separately or as part of a microcontroller), a heater or heat-generating member (e.g., an electrical resistance heating element or other component), and an aerosol source member including an inhalable substance medium capable of generating an aerosol upon application of sufficient heat. In various embodiments, the aerosol source member can include a mouth end or tip configured to allow inhalation of the aerosol delivery device for aerosol inhalation (e.g., a defined air flow path through the article so that the generated aerosol can be drawn therefrom upon inhalation).

[0078] The alignment of components within the aerosol delivery device of the present disclosure may vary across various embodiments. In some embodiments, the inhalable substance medium may be positioned in close proximity to the heating element to maximize aerosol delivery to the user. However, other configurations are not excluded. In general, the heating element may be positioned sufficiently close to the inhalable substance medium so that heat from the heating element can volatilize the inhalable substance medium (and, in some embodiments, one or more flavorings, medications, etc., that may also be provided for delivery to the user) and form an aerosol for delivery to the user. When the heating element heats the inhalable substance medium, an aerosol is formed, released, or generated in a physical form suitable for inhalation by the consumer. It should be noted that the foregoing terms mean that references to release, releasing, releases, or released can be interpreted to include form or generate, forming or generating, forms or generates, and formed or generated. Specifically, inhalable substances are released in the form of vapors or aerosols or mixtures thereof, and such terms are used interchangeably herein unless otherwise specified.

[0079] As noted above, various embodiments of the aerosol delivery device may incorporate a battery or other power source to provide a sufficient current flow to provide various functions for the aerosol delivery device, such as powering a heating element, powering a control system, powering an indicator, etc. As described in further detail below, the power source may take various embodiments. Preferably, the power source provides sufficient power to rapidly activate the heat source to form the aerosol and power the aerosol delivery device throughout use for a desired duration. The power source is preferably sized to fit conveniently within the aerosol delivery device so that the aerosol delivery device can be easily handled. Additionally, preferred power sources are lightweight enough so as not to detract from the desired smoking experience.

[0080] As described above, the aerosol delivery device may include at least one control component. A suitable control component may include several electronic components and, in some examples, may be formed from a printed circuit board (PCB). In some examples, the electronic components include a processing circuit configured to perform data processing, application execution, or other processing, control, or management services according to one or more exemplary embodiments. The processing circuit may include a processor embodied in various forms, such as at least one processor core, a microprocessor, a coprocessor, a controller, a microcontroller, or various other computing or processing devices, including one or more integrated circuits, such as an ASIC (application-specific integrated circuit), an FPGA (field-programmable gate array), some combination thereof, etc. In some examples, the processing circuit may include memory coupled to or integrated with the processor, which may store data, computer program instructions executable by the processor, some combination thereof, etc. Additionally or alternatively, the control component may include one or more input / output peripherals that may be coupled to or integrated with the processing circuit, such as a communication interface that enables wireless communication with one or more networks, computing devices, or other appropriately enabled devices.

[0081] More specific forms, configurations, and arrangements of components within the aerosol delivery devices of the present disclosure will become apparent in light of the further disclosure provided below. Additionally, the selection of various aerosol delivery device components can be understood in light of commercially available electronic aerosol delivery devices. Additionally, the arrangement of components within the aerosol delivery device may be understood in light of commercially available electronic aerosol delivery devices.

[0082] In this regard, FIG. 1 illustrates an aerosol delivery device 100 according to an exemplary embodiment of the present disclosure. The aerosol delivery device 100 may include a control body 102 and an aerosol source member 104. In various embodiments, the aerosol source member 104 and the control body 102 may be permanently or removably aligned in a functional relationship. In this regard, FIG. 1 illustrates the aerosol delivery device 100 in a coupled configuration, while FIG. 2 illustrates the aerosol delivery device 100 in a separated configuration. Various mechanisms may connect the aerosol source member 104 to the control body 102, providing a threaded engagement, a press-fit engagement, an interference fit, a sliding fit, a magnetic engagement, etc.

[0083] In various embodiments, the aerosol delivery device 100 according to the present disclosure can have a variety of overall shapes, including, but not limited to, an overall shape that can be defined as substantially rod-shaped, substantially tubular, or substantially cylindrical. In the embodiment of FIGS. 1-4, the device 100 has a substantially circular cross-section. However, other cross-sectional shapes (e.g., oval, square, triangular, etc.) are also encompassed by the present disclosure. Such language describing the physical shape of an article can also apply to its individual components, including the control body 102 and the aerosol source member 104. In other embodiments, the control body may take on another handheld shape, such as a small box.

[0084] In certain embodiments, one or both of the control body 102 and the aerosol source member 104 may be referred to as disposable or reusable. For example, the control body 102 may have a replaceable or rechargeable battery, a solid-state battery, a thin-film solid-state battery, a rechargeable supercapacitor, or the like, and thus may be combined with any type of recharging technology, including connection to a wall charger, a connection to an automobile charger (i.e., a cigarette lighter socket), a 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, a connection to a photovoltaic cell (sometimes called a solar cell) or solar panel, or a wireless charger, such as a charger using inductive wireless charging (e.g., including wireless charging compliant with the Qi wireless charging standard by the Wireless Power Consortium (WPC)), or a radio frequency (RF)-based charger. An example of an inductive wireless charging system is described in U.S. Patent Application Publication No. 2017 / 0112196 to Sur et al., which is incorporated herein by reference in its entirety. Additionally, in some embodiments, the aerosol source member 104 may comprise a disposable device. Similar disposable components for use with a control body are disclosed in U.S. Patent No. 8,910,639 to Chang et al., which is incorporated herein by reference in its entirety.

[0085] In the illustrated embodiment, the aerosol source member 104 includes a heated end 106 configured to be inserted into the control body 102 and a mouth end 108 at which a user draws to generate an aerosol. At least a portion of the heated end 106 may include an inhalable substance medium 110. As described in further detail below, the inhalable substance medium 110 may include tobacco-containing beads, shredded tobacco, tobacco strips, cast tobacco sheets, reconstituted tobacco materials, or combinations thereof, and / or a mixture of finely ground tobacco, tobacco extract, spray-dried tobacco extract, or other tobacco forms mixed with optional inorganic materials (such as calcium carbonate), optional flavorings, and aerosol-forming materials to form a substantially solid, semi-solid, or moldable (e.g., extruded) substrate. Representative types of solid and semi-solid inhalable substance vehicle constructions and formulations are disclosed in U.S. Pat. No. 8,424,538 to Thomas et al., U.S. Pat. No. 8,464,726 to Sebastian et al., U.S. Patent Application Publication No. 2015 / 0083150 to Conner et al., U.S. Patent Application Publication No. 2015 / 0157052 to Ademe et al., and U.S. Patent Application Publication No. 2017 / 0000188 to Nordskog et al., filed June 30, 2015, all of which are incorporated herein by reference.

[0086] In various embodiments, the aerosol source member 104, or a portion thereof, may be wrapped in an overwrap material 112 (see FIG. 2), which may be formed from any material useful for providing additional structure and / or support to the aerosol source member 104. In various embodiments, the mouth end 108 of the aerosol source member 104 may include a filter 114, which may be made from a cellulose acetate material or a polypropylene material. The filter 114 may enhance the structural integrity of the mouth end of the aerosol source member and / or provide filtration capabilities, as desired, and / or resistance to suction. The overwrap material may include a material that resists heat transfer, which may include paper or other fibrous materials, such as cellulose materials. The overwrap material may also include at least one filler material embedded or dispersed within the fibrous material. In various embodiments, the filler material may have the form of water-insoluble particles. Additionally, the filler material may incorporate inorganic components. In various embodiments, the overwrap may be formed from multiple layers, such as an underlying bulk layer and an overlying layer, such as a typical cigarette wrapper. Such materials may include, for example, lightweight "rag fibers" such as flax, hemp, sisal, rice straw, and / or esparto. The overwrap may also include materials typically used in conventional cigarette filter elements, such as cellulose acetate. Additionally, the excess length of the overwrap at the mouth end 108 of the aerosol source member may function to simply separate the inhalable substance medium 110 from the consumer's mouth, or to provide space for placement of a filter material, as described below, or to affect draw on the article, or to affect the flow characteristics of vapor or aerosol exiting the device during draw. Additional description regarding the construction of overwrap materials that may be used with the present disclosure may be found in U.S. Pat. No. 9,078,473 to Worm et al., which is incorporated herein by reference in its entirety.

[0087] In various embodiments, other components may be present between the inhalable substance medium 110 and the mouth end 108 of the aerosol source member 104, and the mouth end 108 may include a filter 114. For example, in some embodiments, one or any combination of the following may be disposed between the inhalable substance medium 110 and the mouth end 108 of the aerosol source member 104: an air gap; a phase change material for cooling air; a flavor-releasing medium; ion-exchange fibers capable of selective chemical adsorption; aerogel particles as a filter medium; and other suitable materials.

[0088] As described in further detail below, the present disclosure uses a conductive heat source to heat the inhalable substance medium. In various embodiments, the conductive heat source may comprise a heating assembly including a heating element in direct contact with or in close proximity to the aerosol source member, particularly the inhalable substance medium of the aerosol source member. As described in further detail below, the heating assembly or heating element may be disposed in the control body and / or the aerosol source member. In some cases, the inhalable substance medium may include a structure in contact with the inhalable substance medium, or a plurality of beads or particles embedded in or part of the inhalable substance medium, that may function as or facilitate the function of the heating assembly.

[0089] In some devices, the heating element may comprise a resistive heating element. The resistive heating element may be configured to generate heat when an electric current is conducted therethrough. In various embodiments, the heating element may be provided in various forms, such as in the form of a foil, foam, disk, spiral, fiber, wire, film, thread, strip, ribbon, or cylinder. Such heating elements often comprise a metallic material and are configured to generate heat as a result of electrical resistance associated with passing an electric current through them. Such a resistive heating element may be positioned in proximity to the inhalable substance medium. Alternatively, the heating element may be positioned in contact with a solid or semi-solid inhalable substance medium. Such a configuration may heat the inhalable substance medium to generate an aerosol. Various conductive substrates that may be used with the present disclosure are described in U.S. Patent Application Publication No. 2013 / 0255702 to Griffith et al., the entire disclosure of which is incorporated herein by reference. Some non-limiting examples of various heating element configurations include configurations in which the heating element or element is positioned in proximity to the aerosol source member. For example, in some examples, at least a portion of the heating element may surround at least a portion of the aerosol source member. In other examples, one or more heating elements may be positioned adjacent to the exterior of the aerosol source member when inserted into the control body. In other examples, at least a portion of the heating element may penetrate at least a portion of the aerosol source member when the aerosol source member is inserted into the control body (e.g., one or more protrusions and / or spikes that penetrate the aerosol source member, etc.).

[0090] In accordance with an exemplary embodiment of the present disclosure, FIG. 3 shows a schematic front view of an aerosol delivery device 100, and FIG. 4 shows a cross-sectional view of the aerosol delivery device 100 of FIG. 3. As shown in the figures, the aerosol delivery device 100 of this exemplary embodiment includes a heating assembly 128 including a heating element 132 in the form of multiple heater prongs that directly contact the inhalable substance medium 110. In particular, the control body 102 of the illustrated embodiment includes a housing 118 including an opening 119 defined in its engagement end. The control body 102 also includes a flow sensor 120 (e.g., a puff sensor or pressure switch), a control component 123 (e.g., a printed circuit board (PCB) including a processing circuit, microprocessor, and / or microcontroller, either individually or as part of a microcontroller), a power source 124 (e.g., a battery, which may be rechargeable, and / or a rechargeable supercapacitor), and an end cap including an indicator 126 (e.g., a light-emitting diode (LED)). In one embodiment, indicator 126 may include one or more light emitting diodes, quantum dot-based light emitting diodes, etc. Indicator 126 may be in communication with control component 123 and, for example, when coupled to control body 102, illuminate as detected by flow sensor 120 when a user inhales on aerosol source member 104.

[0091] Other indicators of operation are also encompassed by the present disclosure. For example, visual indicators of operation may also include changes in light color or intensity to indicate the progression of the smoking experience. Tactile indicators of operation and audio indicators of operation are also encompassed by the present disclosure. Furthermore, combinations of such indicators of operation may also be suitable for use in a single smoking article. According to another aspect, the device may include one or more indicators or indicia, such as a display configured to provide information corresponding to the operation of the smoking article, such as the amount of power remaining in the power source, the progression of the smoking experience, an indication corresponding to the activation of a heat source, etc.

[0092] Examples of possible 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 entire disclosures of each of which are incorporated herein by reference. With respect to flow sensors, representative current regulation and other 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 of which are incorporated herein by reference in their entirety, 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, all of which are incorporated herein by reference in their entirety. Reference is also made to the control scheme described in U.S. Patent No. 9,423,152 to Ampolini et al., all of which are incorporated herein by reference in their entirety.

[0093] Additional components may be utilized in the aerosol delivery devices of the present disclosure. For example, U.S. Pat. No. 5,154,192 to Sprinkel et al. discloses an indicator for a smoking article; U.S. Pat. No. 5,261,424 to Sprinkel, Jr. discloses a piezoelectric sensor that may be associated with the mouth end of the device that detects a user's lip movement associated with drawing and subsequently causes heating of the heating device; U.S. Pat. No. 5,372,148 to McCafferty et al. discloses a puff sensor for controlling energy flow to a heat load array in response to a drop in pressure through a mouthpiece; U.S. Pat. No. 5,967,148 to Harris et al. discloses a receptacle within a smoking device that includes an identifier that detects non-uniformities in infrared transparency of an inserted component and a controller that executes a detection routine when a component is inserted into the receptacle; U.S. Pat. No. 6,040,560 to Fleischhauer et al. describes predefined, executable power cycles having multiple differential phases; and U.S. Pat. No. 5,934,289 to Watkins et al. U.S. Patent No. 5,954,979 to Counts et al. discloses a means for varying the resistance to draw through a smoking device; U.S. Patent No. 6,803,545 to Blake et al. discloses particular battery configurations for use in smoking devices; U.S. Patent No. 7,293,565 to Griffen et al. discloses various charging systems for use with smoking devices; U.S. Patent 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. Patent No. 8,689,804 to Fernando et al. discloses an identification system for a smoking device; and International Publication No. WO 2010 / 003480 to Flick discloses a fluid flow sensing system that indicates a puff using an aerosol generating system, all of the foregoing disclosures are incorporated herein by reference in their entireties.

[0094] Additional examples of components related to electronic aerosol delivery articles and disclosed materials or components that may be used herein 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. 6,196,218 to Voges, U.S. Pat. No. 6,810,883 to Felter et al., U.S. Pat. No. 6,854,461 to Nichols, U.S. Pat. No. 7,832,410 to Hon, U.S. Pat. No. 7,513,253 to Kobayashi, U.S. Pat. No. 7,896,006 to Hamano, U.S. Pat. No. 6,772,756 to Shayan, U.S. Pat. No. 6,772,756 to Hon, U.S. Pat. Nos. 8,156,944 and 8,375,957 to Thorens et al., 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. App. Pub. No. 2006 / 003254 to Hon US Patent Application Publication Nos. 0196518 and 2009 / 0188490 to Oglesby et al., 2010 / 0024834 to Oglesby et al., 2010 / 0307518 to Wang, WO 2010 / 091593 to Hon, and WO 2013 / 089551 to Foo, each of which is incorporated herein by reference in its entirety. Additionally, US Patent Application No. 2017-0099877 to Worm et al., filed October 13, 2015, discloses a capsule that can be included in an aerosol delivery device and a fob-shaped configuration for an aerosol delivery device, and is incorporated herein by reference in its entirety. In various embodiments, the devices may incorporate various materials disclosed by the aforementioned documents, the disclosures of all of which are incorporated herein by reference in their entireties.

[0095] 3 and 4, the illustrated embodiment of the control body 102 includes a heating assembly 128 configured to heat the inhalable substance medium 110 of the aerosol source member 104. While the heating assemblies of various embodiments of the present disclosure can take a variety of forms, in the specific embodiment shown in FIGS. 3 and 4, the heating assembly 128 includes an outer cylinder 130 and a heating element 132, which in this embodiment includes a plurality of heater prongs extending from a pedestal 134. In the illustrated embodiment, the outer cylinder 130 includes a double-walled vacuum tube constructed from stainless steel to maintain heat generated by the heater prongs 132 within the outer cylinder 130, and more specifically, to maintain heat generated by the heater prongs 132 within the inhalable substance medium 110. In various embodiments, the heater prongs 132 may be constructed from one or more electrically conductive materials, including, but not limited to, copper, aluminum, platinum, gold, silver, iron, steel, brass, bronze, graphite, or any combination thereof.

[0096] As shown, the heating assembly 128 may extend proximate the engagement end of the housing 118 and may be configured to substantially surround a portion of the heated end 106 of the aerosol source member 104 containing the inhalable substance medium 110. As such, the heating assembly 128 may define a generally tubular configuration. As shown in FIGS. 3 and 4 , the plurality of heater protrusions 132 are surrounded by the outer cylinder 130 to form a receiving chamber 136. As such, in various embodiments, the outer cylinder 130 may comprise a non-conductive, insulating material and / or construction, including, but not limited to, an insulating polymer (e.g., plastic or cellulose), glass, rubber, ceramic, porcelain, a double-walled vacuum structure, or any combination thereof.

[0097] In some embodiments, one or more portions or components of the heating assembly 128 may be combined with, packaged with, and / or integral with (e.g., embedded within) the inhalable substance medium 110. For example, in some embodiments, the inhalable substance medium may be formed from materials such as those described above and may include one or more electrically conductive materials mixed therein. In some of these embodiments, contacts may be directly connectable to the inhalable substance medium such that the contacts electrically connect with an electrical energy source when the aerosol source member is inserted into the receiving chamber of the control body. Alternatively, the contacts may be integral with the electrical energy source and may extend into the receiving chamber such that the contacts electrically connect with the inhalable substance medium when the aerosol source member is inserted into the receiving chamber of the control body. Due to the presence of electrically conductive materials in the inhalable substance medium, application of power from the electrical energy source to the inhalable substance medium causes an electric current to flow, which in turn generates heat from the electrically conductive material. Thus, in some embodiments, the heating member may be described as integral with the inhalable substance medium. By way of non-limiting example, graphite or other suitable conductive material may be mixed with, embedded in, or otherwise directly present on or in the material forming the inhalable substance medium, making the heating element integral with the medium.

[0098] As noted above, in the illustrated embodiment, the outer cylinder 130 may also function to facilitate proper positioning of the aerosol source member 104 when it is inserted into the housing 118. In various embodiments, the outer cylinder 130 of the heating assembly 128 may engage an inner surface of the housing 118 to align the heating assembly 128 relative to the housing 118. This may result in a fixed connection between the heating assembly 128 such that the longitudinal axis of the heating assembly 128 extends substantially parallel to the longitudinal axis of the housing 118. In particular, the support cylinder 130 may extend from the opening 119 in the housing 118 to a cradle 134 to form a receiving chamber 136. In the illustrated embodiment, the inner diameter of the outer cylinder 130 may be slightly larger than or approximately equal to the outer diameter of the corresponding aerosol source member 104 (e.g., to form a sliding fit), such that the outer cylinder 130 is configured to guide the aerosol source member 104 into an appropriate position (e.g., a lateral position) relative to the control body 102.

[0099] In the illustrated embodiment, the control body 102 is configured such that when the aerosol source member 104 is inserted into the control body 102, the heater protrusions 132 are positioned approximately radially centered on at least a portion of the inhalable substance medium 110 at the heated end 106 of the aerosol source member 104. As such, when used in combination with a solid or semi-solid inhalable substance medium 110, the heater protrusions 132 may be in direct contact with the inhalable substance medium 110. In other embodiments, for example, when used in combination with an extruded inhalable substance medium defining a tubular structure, the heater protrusions 132 may be positioned inside a cavity defined by the inner surface of the extruded tubular structure, and do not contact the inner surface of the extruded tubular structure.

[0100] 3 and 4, during use, a consumer initiates heating of the heating assembly 128, particularly the heating protrusions 132 adjacent to the inhalable substance medium 110 (or a particular layer thereof). Heating the inhalable substance medium 110 releases the inhalable substance within the aerosol source member 104, generating inhalable material. When the consumer draws on the mouth end 108 of the aerosol source member 104, air is drawn into the aerosol source member 104 through the opening or gap 122 in the control body 102. As the drawn-in material exits the mouth end 108 of the aerosol source member 104, a combination of the drawn-in air and the released inhalable material is inhaled by the consumer. In some embodiments, the consumer may manually activate a push button or similar component to initiate heating, causing the heating element of the heating assembly to receive electrical energy from a battery or other energy source. The electrical energy may be supplied for a predetermined length of time or may be manually controlled. In some embodiments, the flow of electrical energy is not substantially continuous between puffs using the device (although energy flow may continue to maintain a baseline temperature above ambient temperature (e.g., a temperature that facilitates rapid heating to an operating heating temperature)). However, in the illustrated embodiment, heating is initiated by the consumer's puff action through the use of one or more sensors, such as flow sensor 120. When the puff ceases, heating is stopped or reduced. Once the consumer has taken a sufficient number of puffs and emitted a sufficient amount of inhalable substance (e.g., an amount sufficient to equate to a typical smoking experience), the aerosol source member 104 can be detached from the control body 102 and discarded. In some embodiments, additional sensing elements, such as capacitance sensing elements and other sensors, may be used, as described in U.S. Patent Application No. 15 / 707,461 to Phillips et al., incorporated herein by reference in its entirety.

[0101] In various embodiments, the aerosol source member 104 may be formed from any material suitable for forming and maintaining a suitable structure, such as a tube, and for holding the inhalable substance medium 110 therein. In some embodiments, the aerosol source member 104 may be formed from a single wall, or in other embodiments, multiple walls, and may be formed from a heat-resistant material (natural or synthetic) so as to maintain its structural integrity (e.g., not deteriorate) at least at certain temperatures, such as the heating temperatures provided by the electric heating element, as described further herein. In some embodiments, a heat-resistant polymer may be used, while in other embodiments, the aerosol source member 104 may be formed from paper, such as substantially straw-shaped paper. As described further herein, the aerosol source member 104 may have one or more layers associated therewith that function to substantially prevent vapor transfer therethrough. In one exemplary embodiment, an aluminum foil layer may be laminated to one surface of the aerosol source member. Ceramic materials may also be used. In further embodiments, thermal insulation may be used to prevent unnecessary heat transfer from the inhalable substance medium. When formed from a single layer, the aerosol source member 104 may preferably have a thickness of about 0.2 mm to about 7.5 mm, about 0.5 mm to about 4.0 mm, about 0.5 mm to about 3.0 mm, or about 1.0 mm to about 3.0 mm. Additional exemplary types of components and materials that may be used to provide the above functions or that may be used as substitutes for the above materials and components may be of the type described in U.S. Patent Application Publication Nos. 2010 / 00186757 to Crooks et al., 2010 / 00186757 to Crooks et al., and 2011 / 0041861 to Sebastian et al., the entire disclosures of which are incorporated herein by reference.

[0102] As described above, the aerosol source member 104 includes an inhalable substance medium 110 proximate the heated end 106 of the member 104. In various embodiments, the inhalable substance medium 110 can be any material that, when heated, releases an inhalable substance, such as a flavor-containing substance. In the embodiment of FIGS. 3-4, the inhalable substance medium 110 comprises a solid substrate containing an inhalable substance. In various embodiments, the inhalable substance can specifically be a tobacco component or tobacco-derived material (i.e., a material that can be isolated directly from tobacco, naturally found in tobacco, or a synthetically prepared material). For example, the inhalable substance medium can include a tobacco extract or fraction thereof combined with an inert substrate. The inhalable substance medium can further include unburned tobacco or a composition containing unburned tobacco that releases an inhalable substance when heated to a temperature below combustion temperatures. In some embodiments, the inhalable substance medium can include tobacco condensate or a fraction thereof (i.e., the condensed component of smoke produced by tobacco combustion, leaving behind flavor and possibly nicotine).

[0103] Tobacco materials useful in the present disclosure can vary and may include, for example, flue-cured, burley, Oriental or Maryland, dark, dark-flavored, and rustica tobaccos, as well as other rare or specialty tobaccos, or blends thereof. Tobacco materials may also include so-called "blend" forms and processed forms, such as processed tobacco stems (e.g., cut roll stems or cut puff stems), volume-expanded tobacco (e.g., puffed tobacco, advantageously in cut filler form, e.g., dry ice expanded tobacco (DIET)), and reconstituted tobacco (e.g., reconstituted tobacco produced using a paper-forming type process or a cast sheet type process). Various representative tobacco types, processed tobacco types, and tobacco blend types are described in U.S. Patent Nos. 4,836,224 to Lawson et al., 4,924,888 to Perfetti et al., 5,056,537 to Brown et al., 5,159,942 to Brinkley et al., 5,220,930 to Gentry, and 5,360,023 to Blakley et al., all of which are incorporated herein by reference. No. 6,701,936 to Shafer et al., U.S. Patent No. 7,011,096 to Li et al., U.S. Patent No. 7,017,585 to Li et al., U.S. Patent No. 7,025,066 to Lawson et al., U.S. Patent Application Publication No. 2004 / 0255965 to Perfetti et al., International Publication No. WO 02 / 37990 to Bereman, and Fund. Appl. Toxicol., 39, pp. 11-17 (1997). Additional exemplary tobacco compositions that may be useful in smoking devices, including those according to the present disclosure, are disclosed in U.S. Patent No. 7,726,320 to Robinson et al., which is incorporated herein by reference in its entirety.

[0104] Additionally, the inhalable substance medium may include an inert substrate into which the inhalable substance or its precursor is incorporated or otherwise deposited. For example, a liquid containing the inhalable substance may be coated onto, absorbed into, or adsorbed onto the inert substrate, so that upon application of heat, the inhalable substance is released in a form that can be drawn from the article of the present invention by application of positive or negative pressure. In some embodiments, the inhalable substance medium may include a flavorful, aromatic tobacco blend in cut filler form. In another embodiment, the inhalable substance medium may include reconstituted tobacco material, such as those described in U.S. Pat. Nos. 4,807,809 to Pryor et al., 4,889,143 to Pryor et al., and 5,025,814 to Raker, the entire disclosures of which are incorporated herein by reference.

[0105] In some embodiments, the inhalable substance medium may include tobacco, tobacco components and / or tobacco-derived materials that have been processed, manufactured, produced and / or processed to incorporate an aerosol precursor composition (e.g., a humectant, e.g., propylene glycol, glycerin, etc.) and / or at least one flavoring agent, as well as a flame retardant (e.g., diammonium phosphate and / or another salt) configured to help prevent ignition, thermal decomposition, combustion and / or charring of the aerosol delivery component by a heat source. Various modes and methods for incorporating tobacco into smoking articles, particularly smoking articles designed to intentionally avoid combustion of substantially all of the tobacco within the smoking article, are described in U.S. Pat. No. 4,947,874 to Brooks et al., U.S. Pat. No. 7,647,932 to Cantrell et al., U.S. Pat. No. 8,079,371 to Robinson et al., U.S. Pat. No. 7,290,549 to Banerjee et al., and U.S. Patent Application Publication No. 2007 / 0215167 to Crooks et al., the entire disclosures of which are incorporated herein by reference.

[0106] In some embodiments, other flame-retardant / flame-retardant materials and additives may be included in the inhalable medium, including organophosphorus compounds, borax, hydrated alumina, graphite, potassium tripolyphosphate, dipentaerythritol, pentaerythritol, and polyols. Others, such as nitrogen phosphonates, monoammonium phosphate, ammonium polyphosphate, ammonium bromide, ammonium borate, ethanolammonium borate, ammonium sulfamate, halogenated organic compounds, thiourea, and antimony oxide, may also be used. In each aspect of the flame-retardant, flame-retardant, and / or char-retardant materials used in the inhalable medium and / or other components (whether alone or in combination with each other and / or other materials), desirable properties are preferably provided without undesirable outgassing or melting behavior. Additional flavors, flavorings, additives, and other possible enhancing ingredients are described in U.S. Patent Application Serial No. 15 / 707,461 to Phillips et al., incorporated herein by reference in its entirety.

[0107] In addition to the inhalable substance (e.g., generally a flavor, nicotine, or pharmaceutical), the inhalable substance medium may contain one or more aerosol-forming or vapor-forming materials, such as a polyhydric alcohol (e.g., glycerin, propylene glycol, or a mixture thereof) and / or water. Representative types of aerosol-forming materials are described in U.S. Pat. No. 4,793,365 to Sensabaugh, Jr. et al. and U.S. Pat. No. 5,101,839 to Jakob et al., International Publication No. WO 98 / 57556 to Biggs et al., and Chemical and Biological Studies on New Cigarette Prototypes that Heat Instead of Burn Tobacco, RJ Reynolds Tobacco Company Monograph (1988), which are incorporated herein by reference. In some embodiments, the inhalable substance medium generates a visible aerosol when sufficient heat is applied (and optionally cooled by air), and the aerosol delivery component generates a smoke-like aerosol. In other aspects, the aerosol delivery components produce an aerosol that is substantially invisible but whose presence is recognized by other characteristics, such as flavor or texture. Thus, the nature of the aerosol produced varies depending on the particular components of the aerosol delivery components. The aerosol delivery components are chemically simple compared to the chemistry of smoke produced by burning tobacco.

[0108] Additional tobacco materials, such as tobacco aroma oil, tobacco essence, spray-dried tobacco extract, freeze-dried tobacco extract, or tobacco dust, may be combined with the vapor-forming or aerosol-forming material. It should also be understood that the inhalable substance itself may be in a form that, upon heating, releases the inhalable substance as a vapor, an aerosol, or a combination thereof. In other embodiments, the inhalable substance may not necessarily be released in the form of a vapor or aerosol, but the vapor-forming or aerosol-forming material with which it may be combined may form a vapor or aerosol upon heating and essentially function as a carrier for the inhalable substance itself. Thus, the inhalable substance may be characterized as being coated on a substrate, absorbed into a substrate, adsorbed onto a substrate, or a natural component of the substrate (i.e., the material forming the substrate, e.g., tobacco or tobacco-derived material). Similarly, the aerosol-forming or vapor-forming material may be similarly characterized. In certain embodiments, the inhalable substance medium may specifically comprise a substrate containing the inhalable substance and a separate aerosol-forming material contained therein. Thus, during use, the substrate may be heated, and the aerosol-forming material may be volatilized into vapor form, entraining the inhalable substance therewith. In certain examples, the inhalable substance medium may include a solid substrate onto which a tobacco slurry and the aerosol-forming and / or vapor-forming material are coated or absorbed or adsorbed. The substrate component may be any material that does not burn or otherwise degrade at the temperatures described herein, achieved by the heating element to facilitate release of the inhalable substance. For example, paper materials, including tobacco paper (e.g., paper-like materials containing tobacco fiber and / or reconstituted tobacco), may be used. Thus, in various embodiments, the inhalable substance medium may be characterized as comprising an inhalable substance; alternatively, comprising an inhalable substance and a separate aerosol- or vapor-forming agent; alternatively, comprising an inhalable substance and a substrate; or alternatively, comprising an inhalable substance medium, a separate aerosol- or vapor-forming agent, and a substrate.Thus, the substrate may contain an inhalable substance and one or both of an aerosol-forming agent or vapor-forming agent.

[0109] In some aspects of the present disclosure, the inhalable substance medium may be configured as an extruded material, as described in U.S. Patent Application Publication No. 2012 / 0042885 to Stone et al., which is incorporated herein by reference in its entirety. In yet another aspect of the present disclosure, the inhalable substance medium may be configured as an extruded structure and / or substrate that includes or consists essentially of tobacco, tobacco-related materials, glycerin, water, and / or binder materials, although certain formulations do not include binder materials. In various embodiments, the binder material may be any binder material commonly used in tobacco formulations, including, for example, carboxymethylcellulose (CMC), gums (e.g., guar gum), xanthan, pullulan, and / or alginate. According to some aspects, the binder material included in the aerosol delivery component may be configured to substantially maintain the structural shape and / or integrity of the aerosol delivery component. Various representative binders, binder properties, binder uses, and binder amounts are described in U.S. Pat. No. 4,924,887 to Raker et al., which is incorporated herein by reference in its entirety.

[0110] In some embodiments, the inhalable substance medium is further configured to substantially maintain its structure throughout the aerosol generation process. That is, the inhalable substance medium is configured to substantially maintain its shape throughout the aerosol generation process (i.e., the aerosol delivery component does not continuously deform under applied shear stress). In some embodiments, the inhalable substance medium components may contain liquid and / or some moisture content, but in some embodiments, the inhalable substance medium remains substantially solid throughout the aerosol generation process and is configured to substantially maintain its structural integrity throughout the aerosol generation process. Exemplary tobacco and / or tobacco-related materials suitable for substantially solid aerosol delivery components are described in U.S. Patent Application Publication No. 2015 / 0157052 to Ademe et al., U.S. Patent Application Publication No. 2015 / 0335070 to Sears et al., U.S. Patent No. 6,204,287 to White, and U.S. Patent No. 5,060,676 to Hearn et al., each of which is incorporated herein by reference in its entirety.

[0111] In yet another embodiment, the inhalable substance medium may include an extruded structure and / or substrate formed from marumerized and / or non-marumerized tobacco. Marumerized tobacco is known, for example, from U.S. Patent No. 5,105,831 to Banerjee et al., the entire contents of which are incorporated herein by reference. Marumerized tobacco includes about 20 to about 50 percent (by weight) of a tobacco blend in powder form, along with glycerol (about 20 to about 30 percent by weight), calcium carbonate (generally about 10 to about 60 percent by weight, often about 40 to about 60 percent by weight), and a binder and / or flavoring agent as described herein.

[0112] In another embodiment, the inhalable substance medium may include a plurality of microcapsules, beads, granules, etc., having tobacco-related materials. For example, a typical microcapsule may be approximately spherical in shape and have an outer cover or shell containing a liquid center region, such as a tobacco-derived extract. In some embodiments, the aerosol delivery component may include a plurality of microcapsules, each formed in a hollow cylindrical shape. In one embodiment, the aerosol delivery component may include a binder material configured to maintain the structural shape and / or integrity of the plurality of microcapsules formed in a hollow cylindrical shape. Various other configurations and components that may be included in the inhalable substance medium of the present disclosure are described in U.S. Pat. No. 9,078,473 to Worm et al., which is incorporated herein by reference in its entirety. In another embodiment, the inhalable substance medium may include one or more thermally conductive materials. Examples of substrate portions comprising thermally conductive materials are described in U.S. Patent Application No. 15 / 905,320 to Sebastian, entitled "Heat Conducting Substrate For Electrically Heated Aerosol Delivery Device," filed February 26, 2018, which is incorporated herein by reference.

[0113] In various embodiments, tensioning of the inhalable substance medium may be included to provide specific performance characteristics of the disclosed device. As described elsewhere herein, it may be beneficial for the inhalable substance medium to have a relatively thin thickness so that heat is transferred efficiently, particularly when a substrate exhibiting relatively low heat transfer, such as paper, is used. However, a substrate with a thin thickness may have relatively low strength in certain dimensions and relatively high strength in other dimensions. For example, thin paper under tension exhibits high strength compared to the same paper in compression. Tensioning may also facilitate direct contact of the heating element with the surface of the inhalable substance medium to be heated (including the substrate or any vapor barriers used). Various other configurations of the inhalable substance medium of the aerosol source member may be found in the description of similar configurations found in U.S. Pat. No. 9,078,473 to Worm et al., incorporated herein by reference in its entirety.

[0114] 3 and 4 , the heated end 106 of the aerosol source member 104 is sized and shaped for insertion into the control body 102. In various embodiments, the receiving chamber 136 of the control body 102 can be characterized as being defined by a wall having an inner surface and an outer surface, the inner surface defining the interior volume of the receiving chamber 136. For example, in the illustrated embodiment, the outer cylinder 130 defines the inner surface that defines the interior volume of the receiving chamber 136. Thus, the maximum outer diameter (or other dimension, depending on the particular cross-sectional shape of the embodiment) of the aerosol source member 104 can be smaller than the inner diameter (or other dimension) at the inner surface of the wall of the open end of the receiving chamber 136 of the control body 102. In some embodiments, the difference in their respective diameters can be small enough so that the aerosol source member fits snugly into the receiving chamber 136 and frictional forces prevent the aerosol source member 104 from moving without the application of force. On the other hand, this difference may be sufficient to allow the aerosol source member 104 to slide into or out of the receiving chamber 136 without requiring excessive force.

[0115] In some embodiments, the overall size of the aerosol delivery device 100 may be comparable to the shape of a cigarette or cigar. Accordingly, the device may have a diameter of about 5 mm to about 25 mm, about 5 mm to about 20 mm, about 6 mm to about 15 mm, or about 6 mm to about 10 mm. In various embodiments, such dimensions may specifically correspond to the outer diameter of the control body 102. In some embodiments, the aerosol source member 104 may have a diameter of about 4 mm to about 6 mm. Additionally, the control body 102 and the aerosol source member may similarly be characterized in terms of overall length. For example, in some embodiments, the control body may have a length of about 40 mm to about 140 mm, about 45 mm to about 110 mm, or about 50 mm to about 100 mm. The aerosol source member may have a length of about 20 mm to about 60 mm, about 25 mm to about 55 mm, or about 30 mm to about 50 mm.

[0116] In the illustrated embodiment, the control body 102 includes a control component 123 that controls various functions of the aerosol delivery device 100, including providing power to the electric heating member 132. For example, the control component 123 may include a control circuit (which may be connected to additional components, as described further herein) connected to the power source 124 by electrically conductive wires (not shown). In various embodiments, the control circuit may control when and how the heating assembly 128, and particularly the heating member 132, receives electrical energy to heat the inhalable substance medium 110 for release of the inhalable substance for inhalation by the consumer. In some embodiments, such control may be actuated by activation of a flow sensor and / or a pressure-sensitive switch, etc., as described in more detail below.

[0117] As mentioned above, the aerosol delivery device 100 of the exemplary embodiments can include circuitry in connection with either an e-cigarette or a non-combustion-based heating device, or even in the case of a device that includes both functions. FIG. 15 shows a circuit diagram of an aerosol delivery device according to various exemplary embodiments of the present disclosure. As shown, the aerosol delivery device includes a flow sensor 120, a control component 123, a power source 124, an indicator 126, and a heating element 132. As mentioned above, the control component is coupled and configured to controllably power the heating element, which is configured to convert electricity into heat, thereby vaporizing components of the aerosol precursor composition. As shown, the control component includes a buck regulator circuit 402 coupled to the heating element and configured to power the heating element by reducing the voltage and increasing the current from the power source to the heating element. The buck regulator circuit may or may not include a feedback function. An example of a suitable buck regulator circuit includes the Analog Devices Model ADP2165 or Model ADP2166 DC-DC regulator, which includes a feedback function.

[0118] 15, in examples where the buck regulator circuit 402 has a feedback function, the control component 123 includes an op-amp circuit 404 coupled to the heating element 132 and the buck regulator circuit. In these examples, the op-amp circuit may be configured to amplify the output voltage from the heating element to generate a relatively high voltage that is fed back to the buck regulator circuit. In some examples, such as those shown, the op-amp circuit is a non-inverting op-amp circuit.

[0119] 15 , the buck regulator circuit 402 may include a power stage 406 configured to step down the voltage and step up the current from the power supply 124 and a feedback control circuit 408 configured to adjust the output voltage from the buck regulator circuit to the heating element 132 using the relatively high voltage from the operational amplifier circuit 404. The feedback control circuit may further include an error amplifier 410 and a pulse-width modulation (PWM) comparator 412. The error amplifier may be configured to generate a control voltage based on a comparison of the relatively high voltage with a reference voltage. The PWM comparator may also be configured to use the control voltage to generate a PWM waveform used to adjust the output voltage from the buck regulator circuit to the heating element.

[0120] In some examples, the aerosol delivery device 100 has terminals including a positive terminal 414 to which the power source 124 is connected or connectable. The control component 123 may further include a high-side load switch (LS) 416 between the buck regulator circuit 402 and the positive terminal, the high-side load switch configured to connect and disconnect the power source and the load, including the heating element 132, and to limit the input current to the buck regulator circuit. This also functions as a protection circuit in case a current spike exceeds a threshold safety factor. That is, the high-side load switch also functions as a safety feature in that it prevents the input current from exceeding a threshold safety factor.

[0121] Additionally, a flow sensor 120 may be located between the positive terminal 414 and the high-side load switch 416. The sensor may be configured to generate a pressure measurement caused by airflow through at least a portion of the aerosol delivery device 100 and convert the pressure measurement into a corresponding electrical signal. The processor 418 of the control component 123 may be configured to receive the corresponding electrical signal and, in response, control the high-side load switch to connect the power supply 124 to the load. Also, in some examples, the aerosol delivery device 100 further includes a resistor R1 coupled in series between the operational amplifier circuit 404 and the buck regulator circuit 402. In these examples, the resistor may be configured to limit the current fed back from the operational amplifier circuit to the buck regulator circuit. Other embodiments of circuits for aerosol delivery devices are described in U.S. Patent Application No. 15 / 916,696 to Sur, filed March 9, 2018, entitled "Buck Regulator With Operational Amplifier Feedback For An Aerosol Delivery Device," which is incorporated herein by reference.

[0122] As noted above, the control component can be configured to precisely control the amount of heat provided to the inhalable substance medium 110. While the heat required to volatilize a sufficient volume of aerosol-forming substance to provide the desired dose of inhalable substance per puff may vary for each particular substance used, in some embodiments, the heating element may heat to a temperature of at least 120°C, at least 130°C, or at least 140°C. In some embodiments, the heating temperature may be at least 150°C, at least 200°C, at least 220°C, at least 300°C, or at least 350°C to volatilize an adequate amount of aerosol-forming substance and thus provide the desired dose of inhalable substance. However, it may be particularly desirable to avoid heating to temperatures substantially above about 550°C to avoid degradation and / or excessive premature volatilization of the aerosol-forming substance. In particular, heating should be at a temperature low enough and for a time short enough to avoid significant combustion (preferably any combustion) of the inhalable substance medium. The present disclosure may provide components of the device, particularly in combinations and modes of use that produce a desired amount of inhalable substance at relatively low temperatures. Thus, yield can refer to either or both of aerosol generation within the device and delivery from the device to the consumer. In certain embodiments, the heating temperature can be about 130°C to about 310°C, about 140°C to about 300°C, about 150°C to about 290°C, about 170°C to about 270°C, or about 180°C to about 260°C. In other embodiments, the heating temperature can be about 210°C to about 390°C, about 220°C to about 380°C, about 230°C to about 370°C, about 250°C to about 350°C, or about 280°C to about 320°C.

[0123] As will be described in more detail below, the duration of heating can be controlled by several factors. As further described herein, the heating temperature and duration can depend on the desired volume of aerosol and ambient air desired to be drawn through the aerosol delivery device. However, the device can be configured so that the heating element is energized only until the desired temperature is reached, so the duration can vary depending on the heating rate of the heating element. Alternatively, the heating duration can be linked to the duration of a consumer's puff using the article. Generally, the heating temperature and duration are controlled by one or more components housed in the control housing, as described above.

[0124] In various embodiments, the electric heating assembly may include any device suitable for providing sufficient heat to facilitate the release of the inhalable substance for inhalation by the consumer. In certain embodiments, the electric heating assembly may include a resistive heating element. Useful heating elements may have low mass, low density, moderate resistivity, and be thermally stable at temperatures experienced during use. Useful heating elements heat and cool rapidly, thereby efficiently using energy. Rapid heating of the element also results in nearly instantaneous volatilization of the aerosol-forming substance. Rapid cooling prevents substantial volatilization (and therefore waste) of the aerosol-forming substance during periods when aerosol formation is undesirable. Such heating elements also allow for relatively precise control of the temperature range experienced by the aerosol-forming substance, particularly when time-based current control is used. Useful heating elements are also chemically non-reactive with the materials comprising the inhalable substance medium being heated so as not to adversely affect the flavor or content of the aerosol or vapor produced. Exemplary, non-limiting materials that may comprise the heating element include carbon, graphite, carbon / graphite composites, metals, metal and non-metal carbides, nitrides, silicides, intermetallic compounds, cermets, alloys, and metal foils. Refractory materials may be particularly useful. A variety of different materials may be blended to achieve desired properties of resistivity, mass, thermal conductivity, and surface characteristics. In some embodiments, refractory materials may be useful. A variety of different materials may be blended to achieve desired properties of resistivity, mass, and thermal conductivity. In certain aspects, metals that may be utilized include, for example, nickel, chromium, alloys of nickel and chromium (e.g., nichrome), and steel.Materials that may be useful for providing resistance or resistive heating are described in U.S. Pat. No. 5,060,671 to Counts et al., U.S. Pat. No. 5,093,894 to Deevi et al., U.S. Pat. No. 5,224,498 to Deevi et al., U.S. Pat. No. 5,224,498 to Sprinkel et al., the entire disclosures of which are incorporated herein by reference. No. 5,322,075 to Deevi et al., U.S. Pat. No. 5,353,813 to Deevi et al., U.S. Pat. No. 5,468,936 to Deevi et al., U.S. Pat. No. 5,498,850 to Das, U.S. Pat. No. 5,659,656 to Das, U.S. Pat. No. 5,498,855 to Deevi et al., U.S. Pat. No. 5,530,225 to Hajaligol, U.S. Pat. No. 5,665,262 to Hajaligol, U.S. Pat. No. 5,573,692 to Das et al., and U.S. Pat. No. 5,591,368 to Fleischhauer et al.

[0125] 3 and 4 , the heating assembly 128 of the illustrated embodiment includes an outer cylinder 130 and a plurality of heater protrusions 132 extending from a pedestal 134. In some embodiments, such as those in which the inhalable substance medium comprises a tubular structure, the heater protrusions 132 may be configured to extend into a cavity defined by the inner surface of the inhalable substance medium. In other embodiments, such as the illustrated embodiment in which the inhalable substance medium comprises a solid or semi-solid structure, the plurality of heater protrusions 132 are configured to penetrate the inhalable substance medium 110 contained in the heated end 106 of the aerosol source member 104 when the aerosol source member 104 is inserted into the control body 102. In such embodiments, one or more of the components of the heating assembly 128, including the heater protrusions 132 and / or the pedestal 134, may be constructed from a non-stick or stick-resistant material, such as certain aluminum, copper, stainless steel, carbon steel, and ceramic materials. In other embodiments, one or more of the components of the heating assembly 128, including the heater protrusions 132 and / or the pedestals 134, may include a non-stick coating, including, for example, a polytetrafluoroethylene (PTFE) coating, such as Teflon®, or other coatings, such as a stick-resistant enamel coating, or a ceramic coating, such as Greblon® or Thermolon™.

[0126] Additionally, while in the illustrated embodiment, there are multiple heater protrusions substantially evenly distributed around the pedestal 134, it should be noted that in other embodiments, any number of heater protrusions, including as few as one, may be used, along with any other suitable spatial configuration. Additionally, in various embodiments, the length of the heater protrusions may vary. For example, in some embodiments, the heater protrusions may comprise small protrusions, while in other embodiments, the heater protrusions may extend any portion of the length of the receiving chamber 136, including up to about 25%, up to about 50%, up to 75%, and up to nearly the entire length of the receiving chamber 136. In still other embodiments, the heating assembly 128 may have other configurations. Examples of other heater configurations that may be configured for use in the present disclosure in accordance with the description provided above include U.S. Pat. No. 5,060,671 to Counts et al.; U.S. Pat. No. 5,093,894 to Deevi et al.; U.S. Pat. No. 5,224,498 to Deevi et al.; U.S. Pat. No. 5,224,498 to Sprinkel et al., all of which are incorporated herein by reference in their entireties. No. 5,322,075 to Deevi et al., U.S. Pat. No. 5,353,813 to Deevi et al., U.S. Pat. No. 5,468,936 to Deevi et al., U.S. Pat. No. 5,498,850 to Das, U.S. Pat. No. 5,659,656 to Das, U.S. Pat. No. 5,498,855 to Deevi et al., U.S. Pat. No. 5,530,225 to Hajaligol, U.S. Pat. No. 5,665,262 to Hajaligol, U.S. Pat. No. 5,573,692 to Das et al., and U.S. Pat. No. 5,591,368 to Fleischhauer et al.

[0127] The amount of inhalable material emitted by the device 100 of the present invention can vary based on the properties of the inhalable material. Preferably, the device 100 is configured with a sufficient amount of inhalable material, along with a sufficient amount of any aerosol precursor, to function at a sufficient temperature for a sufficient time to emit the desired amount over the course of use. The amount may be provided in a single inhalation from the device 100, or may be divided up to be provided through several puffs from the article over a relatively short period of time (e.g., less than 30 minutes, less than 20 minutes, less than 15 minutes, less than 10 minutes, or less than 5 minutes). Examples of nicotine levels and wet total particulate matter that can be delivered are described in U.S. Patent No. 9,078,473 to Worm et al., incorporated herein by reference.

[0128] In various embodiments, the control body 102 may include one or more openings or gaps 122 therein to allow ambient air to enter the receiving chamber 136. Thus, in some embodiments, the cradle 134 may also include a gap. Thus, in some embodiments, when a consumer draws on the mouth end of the aerosol source member 104, air is drawn through the gap between the control body 102 and the cradle 134 into the receiving chamber 136, passes through the aerosol source member 104, and is drawn through the inhalable substance medium 110 of the aerosol source member 104, where it can be inhaled by the consumer. In some embodiments, the drawn air passes through the optional filter 114 and carries the inhalable substance through the opening in the mouth end 108 of the aerosol source member 104. When the heating member 132 is positioned within the inhalable substance medium 110, the heating member 132 may be activated to heat the inhalable substance medium 110 and release the inhalable substance through the aerosol source member 104.

[0129] In some embodiments, it may be useful to provide some indication when the aerosol source member 104 has achieved the proper distance of insertion into the receiving chamber 136 so that the heating member 132 is positioned in the inhalable substance medium 110. For example, the aerosol source member 104 may include one or more markings on its exterior (e.g., on the outer surface of the aerosol source member 104). In other embodiments, a single marking may indicate the depth of insertion required to achieve this position. Alternatively, the proper insertion distance may be indicated by the aerosol source member 104 “bottoming out” against the base of the receiving chamber 136, such as against the cradle 134, or by any other such means that may enable a consumer to recognize and understand that the aerosol source member 104 has been sufficiently inserted into the receiving chamber 136 to properly position the heating member 132 relative to the inhalable substance medium 110.

[0130] In some embodiments, the aerosol delivery device 100 may include a push button that may be coupled to a control component for manual control of the heating assembly. For example, in some embodiments, a consumer may energize the heating member 132 using a push button. Similar functionality associated with a push button may be achieved by other mechanical or non-mechanical means (e.g., magnetic or electromagnetic). Thus, activation of the heating member 132 may be controlled by a single push button. Alternatively, multiple push buttons may be provided to separately control various operations. If present, the one or more push buttons may be located substantially flush with the casing of the control body 102.

[0131] Instead of (or in addition to) any push button, the inventive device 100 of the present disclosure may include a component that energizes the heating element 132 in response to a consumer drawing on an item (i.e., puff-activated heating). For example, the device may include a flow sensor 120 (i.e., a puff-activated switch) within the control body 102 that is sensitive to either pressure or airflow changes as a consumer draws on an item. Other suitable current activation / deactivation mechanisms may include a temperature-activated on / off switch or a lip-pressure-activated switch. An exemplary mechanism capable of providing such puff-activation capability includes the Model 163PC01D36 silicon sensor manufactured by the MicroSwitch division of Honeywell, Inc. of Freeport, Illinois. Using such a sensor, pressure changes as a consumer draws on the device can rapidly activate the heating element. Additionally, a flow-sensing device, such as one using the principles of hot wire anemometry, may be used to energize the heating element 132 sufficiently quickly after sensing a change in airflow. Another puff-activated switch that may be used is a pressure differential switch, such as Model No. MPL-502-V, Range A, manufactured by Micro Pneumatic Logic, Inc. of Fort Lauderdale, Florida. Another suitable puff-activated mechanism is a pressure-sensitive transducer (e.g., with an amplifier or gain stage) coupled to a comparator for detecting a predetermined threshold pressure. Yet another suitable puff-activated mechanism is a vane deflected by airflow, the movement of which is detected by a motion-sensing means. Yet another suitable actuation mechanism is a piezoelectric switch. Also useful is a suitably connected Honeywell MicroSwitch Microbridge Airflow Sensor, Part No. AWM 2100V, manufactured by the MicroSwitch Division of Honeywell, Inc. of Freeport, Illinois. Another example of a demand-operated electrical switch that may be used in a heating circuit according to the present disclosure is described in U.S. Pat. No. 4,735,217 to Gerth et al., incorporated herein by reference in its entirety. Other suitable differential switches, analog pressure sensors, flow sensors, etc. will be apparent to those skilled in the art with knowledge of this disclosure.In some embodiments, the control body 102 may include a pressure sensing tube or other passageway that provides a fluid connection between the puff-activated switch and the receiving chamber 136 so that pressure changes during puffing are easily identified by the switch. Other exemplary puff-activated devices that may be useful in accordance with the present disclosure are disclosed in U.S. Patent Nos. 4,922,901, 4,947,874, and 4,947,874 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., and U.S. Patent No. 7,040,314 to Nguyen et al., all of which are incorporated herein by reference in their entireties.

[0132] When a consumer inhales on the mouth end of the device 100, the current actuation means may ensure that the flow of current through the resistive heating element 132 is unrestricted or uninterrupted, thereby rapidly generating heat. For rapid heating, it may be useful to include current regulation components to (i) regulate the flow of current through the heating element to control the heating of the resistive element and the resulting temperature, and (ii) prevent overheating and degradation of the inhalable substance medium 110. In some embodiments, the current regulation circuitry may be time-based. Specifically, such a circuitry may include means for ensuring that the flow of current through the heating element is uninterrupted for an initial period during inhalation, followed by timer means for regulating the current flow until inhalation is complete. For example, subsequent regulation may include rapid on / off switching of the current flow (e.g., on the order of about every 1-50 milliseconds) to maintain the heating element within a desired temperature range. Furthermore, regulation may involve simply ensuring that the current flow is uninterrupted until the desired temperature is achieved, and then turning the current flow off completely. The heating element may be reactivated by the consumer initiating another puff on the item (or by manually activating a push button, depending on the particular switch embodiment used to activate the heater). Alternatively, subsequent adjustments may involve modulating the flow of current through the heating element to maintain the heating element within a desired temperature range. In some embodiments, the heating element may be energized for a duration of about 0.2 seconds to about 5.0 seconds, about 0.3 seconds to about 4.0 seconds, about 0.4 seconds to about 3.0 seconds, about 0.5 seconds to about 2.0 seconds, or about 0.6 seconds to about 1.5 seconds to emit a desired dose of inhalable substance. One exemplary time-based current regulation circuit may include a transistor, a timer, a comparator, and a capacitor. Suitable transistors, timers, comparators, and capacitors are commercially available and will be apparent to those skilled in the art. Exemplary timers are those available from NEC Electronics as C-1555C and from General Electric Intersil, Inc. as ICM7555, as well as other so-called "555 timers" in various sizes and configurations.An exemplary comparator is available from National Semiconductor as the LM311. Additional description of such time-based current regulation circuits is provided in U.S. Patent No. 4,947,874 to Brooks et al., which is incorporated herein by reference in its entirety.

[0133] In light of the above, it can be appreciated that various mechanisms may be used to facilitate activation / deactivation of current to the heating element. For example, the device may include a timer for regulating the flow of current through the article (such as during inhalation by the consumer). The device may further include a timer-responsive switch for enabling and disabling the flow of current to the heating element. Regulating the flow of current may also include the use of a capacitor and components for charging and discharging the capacitor at a prescribed rate (e.g., a rate approximating the rate at which the heating element heats and cools). The flow of current may be regulated so that the flow of current through the heating element is uninterrupted, particularly for an initial period during inhalation, but the flow of current may be turned off or cycled alternately on and off after the initial period until inhalation is completed. Such cycles may be controlled by a timer capable of generating preset switching cycles, as described above. In certain embodiments, the timer may generate a periodic digital waveform. The flow during the initial period may be further regulated by using a comparator that compares a first voltage at a first input with a threshold voltage at a threshold input and generates an output signal when the first voltage equals the threshold voltage, thereby enabling the timer. Such an embodiment may further include a component for generating a threshold voltage at the threshold input, and a component for generating a threshold voltage at the first input upon passage of an initial period of time.

[0134] As noted above, the power supply 124 used to power the various electrical components of the device 100 can take on a variety of embodiments. Preferably, the power supply provides sufficient energy to rapidly heat the heating element in the manner described above and can power the device through use with multiple aerosol source elements 104 while still fitting conveniently into the device 100. One example of a power supply is the TKI-1550 rechargeable lithium-ion battery manufactured by Tadiran Batteries GmbH of Germany. In another embodiment, a useful power supply may be the N50-AAA CADNICA nickel-cadmium battery manufactured by Sanyo Electric Company, Ltd. of Japan. In other embodiments, multiple such batteries, each providing 1.2 volts, may be connected in series. Other power sources, such as rechargeable lithium manganese dioxide batteries, may also be used. While any of these batteries or combinations thereof may be used for the power supply, rechargeable batteries are preferred due to the cost and disposal considerations associated with disposable batteries. Alternatively, in embodiments in which a rechargeable battery is used, the power source 124 may further include charging contacts that interact with corresponding contacts on a conventional charging unit (not shown) that obtains power from a standard 120-volt AC wall outlet or other source, such as an automobile's electrical system or a separate portable power source. In further embodiments, the power source may also include a capacitor. Capacitors can discharge faster than batteries and can be charged between puffs, allowing the capacitor to discharge at a slower rate than if a battery were used to directly power the heating element. For example, a supercapacitor, i.e., an electric double-layer capacitor (EDLC), may be used separately from or in combination with a battery. When used alone, the supercapacitor may be charged before each use of the device 100. Accordingly, the present disclosure may also include a charger component that can be attached to the device between uses to store the supercapacitor. In certain embodiments of the present disclosure, a thin-film battery may be used.

[0135] As noted above, in various embodiments, the aerosol delivery device 100 may include one or more indicators 126. In the illustrated embodiment, the indicator 136 is shown on the end of the control body 102, but in various embodiments, the indicator 136 may be located on another portion of the control body 102 or elsewhere. In some embodiments, the indicator may be a light (e.g., a light-emitting diode) that can provide an indication of multiple aspects of the device's use. For example, a series of lights may correspond to the number of puffs taken on a given aerosol source member. Specifically, the lights may illuminate sequentially with each puff, such that when all lights are illuminated, the consumer is notified that the aerosol source member has been consumed. Alternatively, all lights may illuminate when the aerosol source member is inserted into the housing, and the lights may turn off with each puff, such that when all lights are off, the consumer is notified that the aerosol source member has been consumed. In still other embodiments, there may be only a single indicator, the illumination of which may indicate that current is flowing through the heating member and that the device is actively heating. This may prevent a consumer from unintentionally leaving the device in active heating mode. In alternative embodiments, one or more of the indicators may be components of the aerosol source member. While the indicators are described above in connection with visual indicators of an on / off method, other indicators of operation are also encompassed. For example, visual indicators may also include changes in light color or intensity to indicate the progression of the smoking experience. Tactile and audible indicators are also encompassed by the present disclosure. Furthermore, combinations of such indicators may be used in a single device.

[0136] In addition to the above embodiments, in some embodiments, the inhalable substance medium may be configured as a liquid capable of generating an aerosol upon application of sufficient heat, having components commonly referred to as “smoke juice,” “e-liquid,” and “e-juice.” Exemplary formulations of aerosol-generating liquids are described in U.S. Patent Application Publication No. 2013 / 0008457 to Zheng et al., the entire disclosure of which is incorporated herein by reference.

[0137] Another embodiment of the present disclosure is shown in FIGS. 5-8. In particular, FIGS. 5-8 illustrate an aerosol delivery device 200 according to an exemplary embodiment of the present disclosure. The aerosol delivery device 200 may include a control body 202 and an aerosol source member 204. In various embodiments, the aerosol source member 204 and the control body 202 may be permanently or removably aligned in a functional relationship. In this regard, FIG. 5 illustrates the aerosol delivery device 200 in a coupled configuration, while FIG. 6 illustrates the aerosol delivery device 200 in a separated configuration. Various mechanisms may connect the aerosol source member 204 to the control body 202, providing a threaded engagement, a press-fit engagement, an interference fit, a sliding fit, a magnetic engagement, or the like. According to an exemplary embodiment of the present disclosure, FIG. 7 illustrates a front schematic view of the aerosol delivery device 200, and FIG. 8 illustrates a cross-sectional view of the aerosol delivery device 200.

[0138] In various embodiments, the aerosol delivery device 200 according to the present disclosure can have a variety of overall shapes, including, but not limited to, an overall shape that can be defined as substantially rod-shaped, substantially tubular, or substantially cylindrical. In the embodiment of Figures 5-8, the device 200 has a substantially round cross-section. However, other cross-sectional shapes (e.g., oval, square, triangular, etc.) are also encompassed by the present disclosure. Such language describing the physical shape of an article can also apply to its individual components, including the control body 202 and the aerosol source member 204. In other embodiments, the control body may take on another handheld shape, such as a small box.

[0139] In certain embodiments, one or both of the control body 202 and the aerosol source member 204 may be referred to as disposable or reusable. For example, the control body 202 may have a replaceable or rechargeable battery, a solid-state battery, a thin-film solid-state battery, a rechargeable supercapacitor, or the like, and thus may be combined with any type of charging technology, including connection to a wall charger, a car charger (i.e., cigarette lighter socket), 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, a photovoltaic cell (sometimes called a solar cell) or solar panel, or a wireless charger, such as a charger using inductive wireless charging (e.g., including wireless charging compliant with the Qi wireless charging standard by the Wireless Power Consortium (WPC)), or a radio frequency (RF)-based charger. An example of an inductive wireless charging system is described in U.S. Patent Application Publication No. 2017 / 0112196 to Sur et al., which is incorporated herein by reference in its entirety. Additionally, in some embodiments, the aerosol source member 204 may comprise a disposable device. Similar disposable components for use with a control body are disclosed in U.S. Patent No. 8,910,639 to Chang et al., which is incorporated herein by reference in its entirety.

[0140] In the illustrated embodiment, the aerosol source member 204 includes a heated end 206 configured to be inserted into the control body 202 and a mouth end 208 at which a user draws to generate an aerosol. At least a portion of the heated end 206 may include an inhalable substance medium 210. As described in further detail below, the inhalable substance medium 210 may include tobacco-containing beads, shredded tobacco, shredded tobacco, cast tobacco sheets, reconstituted tobacco materials, or combinations thereof, and / or a mixture of finely ground tobacco, tobacco extract, spray-dried tobacco extract, or other tobacco forms mixed with optional inorganic materials (such as calcium carbonate), optional flavorings, and aerosol-forming materials to form a substantially solid, semi-solid, or moldable (e.g., extruded) substrate. Representative types of solid and semi-solid inhalable substance vehicle constructions and formulations are disclosed in U.S. Pat. No. 8,424,538 to Thomas et al., U.S. Pat. No. 8,464,726 to Sebastian et al., U.S. Patent Application Publication No. 2015 / 0083150 to Conner et al., U.S. Patent Application Publication No. 2015 / 0157052 to Ademe et al., and U.S. Patent Application Publication No. 2017 / 0000188 to Nordskog et al., filed June 30, 2015, all of which are incorporated herein by reference.

[0141] In various embodiments, the aerosol source member 204, or a portion thereof, may be wrapped in a wrapping material 212 (see FIG. 6), which may be formed from any material useful for providing additional structure and / or support to the aerosol source member 204. In various embodiments, the mouth end 208 of the aerosol source member 204 may include a filter 214, which may be made from a cellulose acetate material or a polypropylene material. The filter 214 may enhance the structural integrity of the mouth end of the aerosol source member and / or provide optional filtration capabilities and / or resistance to suction. The wrapping material may include a material that resists the transfer of heat, which may include paper or other fibrous materials, such as cellulose materials. The wrapping material may also include at least one filler material embedded or dispersed within the fibrous material. In various embodiments, the filler material may have the form of water-insoluble particles. Additionally, the filler material may incorporate inorganic components. In various embodiments, the wrapper may be formed from multiple layers, such as an underlying bulk layer and an overlying layer, such as a typical paper wrapper in a cigarette. Such materials may include, for example, lightweight "rag fibers" such as flax, hemp, sisal, rice straw, and / or esparto. The wrapping may also include materials typically used in conventional cigarette filter elements, such as cellulose acetate. Additionally, the excess length of overwrapping at the mouth end 208 of the aerosol source member may function simply to separate the inhalable substance medium 210 from the consumer's mouth, or to provide space for placement of a filter material, as described below, or to affect draw on the article, or to affect the flow characteristics of vapor or aerosol exiting the device during draw. Additional description regarding the construction of overwrapping materials that may be used with the present disclosure may be found in U.S. Pat. No. 9,078,473 to Worm et al., which is incorporated herein by reference in its entirety.

[0142] In various embodiments, other components may be present between the inhalable substance medium 210 and the mouth end 208 of the aerosol source member 204, and the mouth end 208 may include a filter 214. For example, in some embodiments, one or any combination of the following may be disposed between the inhalable substance medium 210 and the mouth end 208 of the aerosol source member 204: an air gap; a phase change material for cooling air; a flavor release medium; ion exchange fibers capable of selective chemical adsorption; aerogel particles as a filter medium; and other suitable materials.

[0143] As described in further detail below, the present disclosure uses a conductive heat source to heat the inhalable substance medium. In various embodiments, the conductive heat source may comprise a heating assembly including a heating element in direct contact with or in close proximity to the aerosol source member, particularly the inhalable substance medium of the aerosol source member. As described in further detail below, the heating assembly and / or heating element may be disposed in the control body and / or the aerosol source member. In some cases, the inhalable substance medium may include a plurality of beads or particles embedded in or part of the inhalable substance medium that may function as the heating assembly or facilitate the function of the heating assembly.

[0144] In some devices, the heating element may comprise a resistive heating element. The resistive heating element may be configured to generate heat when an electric current is conducted therethrough. In various embodiments, the heating element may be provided in various forms, such as in the form of a foil, foam, disk, spiral, fiber, wire, film, thread, strip, ribbon, or cylinder. Such heating elements often comprise a metallic material and are configured to generate heat as a result of electrical resistance associated with passing an electric current through them. Such a resistive heating element may be positioned in close proximity to the inhalable substance medium. Alternatively, the heating element may be positioned in contact with a solid or semi-solid inhalable substance medium. Such a configuration may heat the inhalable substance medium to generate an aerosol. Various conductive substrates that may be used with the present disclosure are described in U.S. Patent Application Publication No. 2013 / 0255702 to Griffith et al., the entire disclosure of which is incorporated herein by reference.

[0145] According to an exemplary embodiment of the present disclosure, FIG. 7 shows a schematic front view of an aerosol delivery device 200, and FIG. 8 shows a cross-sectional view of the aerosol delivery device 200 of FIG. 7. The control body 202 of the illustrated embodiment comprises a housing 218 including an opening 219 defined in an engagement end thereof. The control body 202 also includes a flow sensor 220 (e.g., a puff sensor or pressure switch), a control component 223 (e.g., a printed circuit board (PCB) including processing circuitry, a microprocessor, and / or a microcontroller, either separately or as part of a microcontroller), a power source 224 (e.g., a battery, which may be rechargeable, and / or a rechargeable supercapacitor), and an end cap including an indicator 226 (e.g., a light-emitting diode (LED)). In one embodiment, the indicator 226 may comprise one or more light-emitting diodes, quantum dot-based light-emitting diodes, or the like. Indicator 226 is in communication with control component 223 and may, for example, be illuminated when coupled to control body 202 and a user draws on aerosol source member 204 as detected by flow sensor 220. As described in further detail below, aerosol delivery device 200 of this exemplary embodiment also includes a heating assembly 228 including an outer cylinder 230 and two-piece heating members 232, 233.

[0146] As noted above, various visual and / or tactile and / or audible indicators of operation are also encompassed by this disclosure. Additionally, applicants note various possible power sources, flow sensors, representative current regulation components, other electrical parts, and additional components described above with respect to Figures 1-4 as also applicable to the present exemplary embodiment.

[0147] 7 and 8, the illustrated embodiment of the control body 202 includes a heating assembly 228 configured to heat the inhalable substance medium 210 of the aerosol source member 204. While the heating assemblies of various embodiments of the present disclosure can take a variety of forms, in the particular embodiment shown in FIGS. 7 and 8, the heating assembly 228 comprises an outer cylinder 230 and a two-piece heating element 232 including a base heating element 232 and a substrate heating element 233 including a plurality of heater protrusions 235. In the illustrated embodiment, the outer cylinder 230 and the base heating element 232 are disposed in the control body 202, and the substrate heating element 233 is disposed in the aerosol source member 204 in proximity to the inhalable substance medium 210. In this manner, the substrate heating element 233 of the aerosol source member 204 may be configured to be received by and / or otherwise engage the base heating element 232. In particular, in the illustrated embodiment, the base heating member 232 includes one or more alignment features 237 configured to be received by and / or otherwise engage with corresponding alignment features 239 of the substrate heating member 233. For example, in the illustrated embodiment, the alignment features 237 of the base heating member 232 include one or more rounded protrusions (i.e., "male" connecting components) configured to be matingly received by one or more corresponding rounded receiving notches (i.e., "female" connecting components) of the substrate heating member 233. It should be noted that in other similar embodiments, the relative configuration of such connecting components may be reversed, for example, so that the male receiving components are part of the substrate heating member 233 and the female connecting components are part of the base heating member 232.

[0148] To further aid in engagement between the substrate heating member 233 and the base heating member 232, in some embodiments, one or both of the base heating member 232 and the base heating member 233 may be constructed from or otherwise include a ferromagnetic material. Thus, the substrate heating member 233 and the base heating member 232 may be configured to be magnetically attracted to one another to further aid in engagement between the components. In this manner, and in combination with the configuration of the rounded positioning features 237, 239, the substrate heating member 233 and the base heating member 232 may snap together and / or otherwise self-position. In some embodiments, the base heating member 232 may comprise an electromagnet powered by the power source 224 and configured to be electrically actuated between a magnetized state and a demagnetized state (and vice versa) via control by the control component 223. In this manner, a magnetic coupling may be created between the control body 202 and the aerosol source member 204. In such embodiments, the control component 223 may be further configured to demagnetize the electromagnetic base heating component 232 and eject the aerosol source component 204 under one or more conditions, such as, for example, when the control component 223 determines that the aerosol source component 204 has been used to its capacity and / or the inhalable substance medium 210 has been depleted.

[0149] In some embodiments, the control body 202 may be configured to authenticate the aerosol source member 204. For example, in some embodiments, components of the aerosol source member 204 (e.g., the substrate heating member 233) may include one or more electronic components (e.g., an RFID tag), which may include integrated circuits, memory components, sensors, etc. In various embodiments, the electronic components of the aerosol source member 204 may be configured to communicate with the control component 223 and / or an external device by wired or wireless means. An example of an aerosol delivery system including an RFID tag is described in U.S. Patent Application Publication No. 2017 / 0020191 to Lamb et al., which is incorporated herein by reference in its entirety.

[0150] In the illustrated embodiment, the outer cylinder 230 includes a dual vacuum tube constructed from stainless steel to maintain the heat generated by the base heating element 232 and the substrate heating element 233 within the outer cylinder 230, and more particularly, to maintain the heat generated by the base heating element 232 and the substrate heating element 233 within the inhalable substance medium 210. In various embodiments, the base heating element 232 and / or the substrate heating element 233 may be constructed from the same material or different materials. For example, one or both of the base heating element 232 and the substrate heating element 233 may be constructed from another electrically conductive material, including, but not limited to, copper, aluminum, platinum, gold, silver, iron, steel, brass, bronze, graphite, or any combination thereof. In some embodiments, one or more of these materials may be embedded or otherwise contained within another material. For example, in some embodiments, one or both of the base heating element 232 or the substrate heating element 233 may be constructed from a ceramic material with an electrically conductive metallic material embedded or otherwise contained therein. As one skilled in the art will appreciate, various material choices may be made in light of sustainability considerations, such as in embodiments where one or both of the aerosol source member or control body are configured to be disposable.

[0151] As shown, the heating assembly 228 may extend proximate the engagement end of the housing 218 and may be configured to substantially surround a portion of the heated end 206 of the aerosol source member 204 containing the inhalable substance medium 210. As such, the heating assembly 228 may define a generally tubular configuration. As shown in FIGS. 7 and 8, the outer cylinder 230 forms a receiving chamber 236. As such, the outer cylinder 230 may comprise a non-conductive insulating material and / or construction, including, but not limited to, an insulating polymer (e.g., plastic or cellulose), glass, rubber, ceramic, porcelain, a double vacuum structure, or any combination thereof.

[0152] As noted above, in the illustrated embodiment, the outer cylinder 230 may also function to facilitate proper positioning of the aerosol source member 204 when the aerosol source member 204 is inserted into the housing 218. In various embodiments, the outer cylinder 230 of the heating assembly 228 may engage an inner surface of the housing 218 to align the heating assembly 228 relative to the housing 218. This may result in the longitudinal axis of the heating assembly 228 extending substantially parallel to the longitudinal axis of the housing 218 as a result of the fixed connection between the heating assemblies 228. In particular, the support cylinder 230 may extend from the opening 219 in the housing 218 to the base heating member 232 to form a demand chamber 236. In the illustrated embodiment, the inner diameter of the outer cylinder 230 may be slightly larger than or approximately equal to the outer diameter of the corresponding aerosol source member 204 (e.g., to form a sliding fit), such that the outer cylinder 230 is configured to guide the aerosol source member 204 into an appropriate position (e.g., a lateral position) relative to the control body 202.

[0153] In the illustrated embodiment, the heater protrusions 235 of the substrate heating member 233 are positioned approximately radially centered on at least a portion of the inhalable substance medium 210 at the heated end 206 of the aerosol source member 204. As such, when used in combination with a solid or semi-solid inhalable substance medium 210, the heater protrusions 235 may be in direct contact with the inhalable substance medium 210. In other embodiments, for example, when used in combination with an extruded inhalable substance medium defining a tubular structure, the heater protrusions 235 may be positioned inside a cavity defined by the inner surface of the extruded tubular structure and not contact the inner surface of the extruded tubular structure.

[0154] 7 and 8 , during use, a consumer initiates heating of the heating assembly 228, particularly the base heating element 232. This also initiates heating of the substrate heating element 233 adjacent to the inhalable substance medium 210 (or a particular layer thereof) due to heat transfer due to engagement between the base heating element 232 and the substrate heating element 233. Heating of the inhalable substance medium 210 releases the inhalable substance within the aerosol source element 204, generating an inhalable substance. When a consumer inhales into the mouth end 208 of the aerosol source element 204, air is drawn into the aerosol source element 204 through the opening or gap 222 in the control body 202. As the drawn-in material exits the mouth end 208 of the aerosol source element 204, a combination of the drawn-in air and the released inhalable substance is inhaled by the consumer. In some embodiments, a consumer can manually activate a push button or similar component to cause the heating element of the heating assembly to receive electrical energy from a battery or other energy source and begin heating. The electrical energy may be supplied for a predetermined length of time or may be manually controlled. In some embodiments, the flow of electrical energy is not substantially continuous between puffs using the device (although the energy flow may continue to maintain a baseline temperature above ambient temperature (e.g., a temperature that facilitates rapid heating to an operating heating temperature)). However, in the illustrated embodiment, heating is initiated by the consumer's puff action using one or more sensors, such as flow sensor 220. When a puff is discontinued, heating is stopped or reduced. Once the consumer has taken a sufficient number of puffs and released a sufficient amount of inhalable substance (e.g., an amount sufficient to equate to a typical smoking experience), the aerosol source member 204 may be detached from the control body 202 and discarded. In some embodiments, additional sensing elements, such as capacitance sensing elements and other sensors, may be used, as described in U.S. Patent Application No. 15 / 707,461 to Phillips et al., incorporated herein by reference in its entirety.

[0155] In various embodiments, the aerosol source member 204 may be formed from any material suitable for forming and maintaining a suitable structure, such as a tube, and for holding the inhalable substance medium 210 therein. In some embodiments, the aerosol source member 204 may be formed from a single wall or, in other embodiments, multiple walls, and may be formed from a heat-resistant material (natural or synthetic) so as to maintain its structural integrity (e.g., not deteriorate) at least at certain temperatures, such as the heating temperatures provided by the electric heating element, as described further herein. In some embodiments, a heat-resistant polymer may be used, while in other embodiments, the aerosol source member 204 may be formed from paper, such as substantially straw-shaped paper. As described further herein, the aerosol source member 204 may have one or more layers associated therewith that function to substantially prevent vapor transfer therethrough. In one exemplary embodiment, an aluminum foil layer may be laminated to one surface of the aerosol source member. Ceramic materials may also be used. In further embodiments, thermal insulation may be used to prevent unnecessary transfer of heat from the inhalable substance medium. Additionally, applicants refer to various possible dimensions, additional components, and possible compositions of the aerosol source member containing the inhalable substance medium, as discussed above with respect to FIGS.

[0156] 7 and 8 , the heated end 206 of the aerosol source member 204 is sized and formed for insertion into the control body 202. In various embodiments, the receiving chamber 236 of the control body 202 can be characterized as being defined by a wall having an inner surface and an outer surface, the inner surface defining the interior volume of the receiving chamber 236. For example, in the illustrated embodiment, the outer cylinder 230 defines the inner surface that defines the interior volume of the receiving chamber 236. Thus, the maximum outer diameter (or other dimension depending on the particular cross-sectional shape of the embodiment) of the aerosol source member 204 can be smaller than the inner diameter (or other dimension) of the inner surface of the wall of the open end of the receiving chamber 236 of the control body 202. In some embodiments, the difference in their respective diameters can be small enough so that the aerosol source member fits snugly into the receiving chamber 236 and frictional forces prevent the aerosol source member 204 from moving without the application of force. On the other hand, this difference may be sufficient to allow the aerosol source member 204 to slide into or out of the receiving chamber 236 without requiring excessive force.

[0157] In some embodiments, the overall dimensions of the aerosol delivery device 200 may be comparable to the shape of a cigarette or cigar. Accordingly, the device may have a diameter of about 5 mm to about 25 mm, about 5 mm to about 20 mm, about 6 mm to about 15 mm, or about 6 mm to about 10 mm. In various embodiments, such dimensions may specifically correspond to the outer diameter of the control body 202. In some embodiments, the aerosol source member 204 may have a diameter of about 4 mm to about 6 mm. Additionally, the control body 202 and the aerosol source member may similarly be characterized in terms of overall length. For example, in some embodiments, the control body may have a length of about 40 mm to about 120 mm, about 45 mm to about 110 mm, or about 50 mm to about 100 mm. The aerosol source member may have a length of about 20 mm to about 60 mm, about 25 mm to about 55 mm, or about 30 mm to about 50 mm. In the illustrated embodiment, the control body 202 includes a control component 223 that controls various functions of the aerosol delivery device 200, including providing power to the base heating member 232 and the substrate heating member 233. For example, the control component 223 may include a control circuit (which may be connected to additional components, as further described herein) connected to the power source 224 by conductive wires (not shown). See, for example, the circuit diagram of the aerosol delivery device, as described above, shown in FIG. 15. In various embodiments, the control circuit may control when and how the heating assembly 228, particularly the base heating member 232, receives electrical energy to heat the substrate heating member 233 and, therefore, the inhalable substance medium 210, for release of the inhalable substance for inhalation by the consumer. In some embodiments, such control may be actuated by activation of a flow sensor and / or a pressure-sensitive switch, etc., as described in more detail below.

[0158] As noted above, the control component can be configured to precisely control the amount of heat provided to the inhalable substance medium 210. While the heat required to volatilize a sufficient volume of aerosol-forming substance to provide the desired dose of inhalable substance per puff may vary for each particular substance used, in some embodiments, the heating element may heat to a temperature of at least 120°C, at least 130°C, or at least 140°C. In some embodiments, the heating temperature may be at least 150°C, at least 200°C, at least 220°C, at least 300°C, or at least 350°C to volatilize an adequate amount of aerosol-forming substance and thus provide the desired dose of inhalable substance. However, it may be particularly desirable to avoid heating to temperatures substantially above about 550°C to avoid degradation and / or excessive premature volatilization of the aerosol-forming substance. In particular, heating should be at a temperature low enough and for a time short enough to avoid significant combustion (preferably any combustion) of the inhalable substance medium. The present disclosure may provide components of the device in combinations and modes of use that, among other things, produce a desired amount of inhalable substance at relatively low temperatures. Thus, yield can refer to either or both of aerosol generation within the device and delivery from the device to the consumer. In certain embodiments, the heating temperature can be about 130°C to about 310°C, about 140°C to about 300°C, about 150°C to about 290°C, about 170°C to about 270°C, or about 180°C to about 260°C. In other embodiments, the heating temperature can be about 210°C to about 390°C, about 220°C to about 380°C, about 230°C to about 370°C, about 250°C to about 350°C, or about 280°C to about 320°C.

[0159] As described in more detail below, the duration of heating can be controlled by several factors. As described further herein, the heating temperature and duration can depend on the desired volume of aerosol and ambient air desired to be drawn through the aerosol delivery device. However, the duration can vary depending on the heating rate of the heating element, as the device can be configured so that the heating element is energized only until the desired temperature is reached. Alternatively, the duration of heating can be tied to the duration of a consumer's puff using the article. Generally, the temperature and duration of heating are controlled by one or more components housed in a control housing, as described above. Applicant notes various possible control components and associated functions described above with respect to Figures 1-4 as applicable to this exemplary embodiment.

[0160] In various embodiments, the electric heating assembly may include any device suitable for providing sufficient heat to facilitate the release of the inhalable substance for inhalation by the consumer. In certain embodiments, the electric heating assembly may include a resistive heating element. Useful heating elements may have low mass, low density, moderate resistivity, and be thermally stable at temperatures experienced during use. Useful heating elements heat and cool rapidly, thereby efficiently using energy. Rapid heating of the element also results in nearly instantaneous volatilization of the aerosol-forming substance. Rapid cooling prevents substantial volatilization (and thus waste) of the aerosol-forming substance during periods when aerosol formation is not desired. Such heating elements also allow for relatively precise control of the temperature range experienced by the aerosol-forming substance, particularly when time-based current control is used. Useful heating elements are also chemically non-reactive with the materials comprising the inhalable substance medium being heated so as not to adversely affect the flavor or content of the aerosol or vapor produced. Applicant further notes various possible materials for the heating element described above with respect to FIGS. 1-4, which are also applicable to this exemplary embodiment.

[0161] As seen in FIGS. 7 and 8 , the illustrated embodiment of the electric heating assembly 228 includes an outer cylinder 230 and a two-piece heating element comprising a base heating element 232 of the control body 202 and a substrate heating element 233 of the aerosol source member 204, with the substrate heating element 233 including a plurality of heater protrusions 235. In some embodiments, such as those in which the inhalable substance medium comprises a tubular structure, the heater protrusions 235 may be configured to extend into a cavity defined by the inner surface of the inhalable substance medium. In other embodiments, such as the illustrated embodiment in which the inhalable substance medium comprises a solid or semi-solid structure, the plurality of heater protrusions 235 extend into the inhalable substance medium 210. While the illustrated embodiment has a plurality of heater protrusions substantially evenly distributed around the end surface of the substrate heating element 233, it should be noted that in other embodiments, any number of heater protrusions, including as few as one, may be used, along with any other suitable spatial configuration. Furthermore, in various embodiments, the length of the heater protrusions may vary. For example, in the illustrated embodiment, the heater protrusions extend a relatively short distance, but in other embodiments, the heater protrusions may extend any portion of the length of the inhalable substance medium 210, including up to about 25%, up to about 50%, up to 75%, and up to nearly the entire length of the inhalable substance medium 210. Additionally, in various embodiments, the relative overall dimensions of the substrate heating element 233 and the inhalable substance medium 210 may vary. For example, in some embodiments, the linear length of the substrate heating element 233 may be greater than, equal to, or less than the linear length of the inhalable substance medium 210. In some embodiments, the length of the substrate heating element may be between about 10 mm and about 14 mm, and in some embodiments, about 12 mm. In some embodiments, the length of the inhalable substance medium may be between about 19 mm and about 23 mm, and in some embodiments, about 21 mm. In other embodiments, the substrate heating element 233 may have a different configuration that does not include protrusions, such as, for example, a substrate heating element having a cylindrical or tubular shape.Applicant further notes various other possible heater configurations discussed above with respect to Figures 1-4 that are also applicable to the present exemplary embodiment.

[0162] The amount of inhalable material emitted by the device 200 of the present invention can vary based on the properties of the inhalable material. Preferably, the device 200 is configured with a sufficient amount of inhalable material, along with a sufficient amount of any aerosol precursor, to function at a sufficient temperature for a sufficient time to emit the desired amount over the course of use. The amount may be provided in a single inhalation from the device 200, or may be divided up to be provided through several puffs from the article over a relatively short period of time (e.g., less than 30 minutes, less than 20 minutes, less than 15 minutes, less than 10 minutes, or less than 5 minutes). Examples of nicotine levels and wet total particulate matter that can be delivered are described in U.S. Patent No. 9,078,473 to Worm et al., incorporated herein by reference.

[0163] In various embodiments, the control body 202 may include one or more gaps 222 therein to allow ambient air to enter the interior of the receiving chamber 236. As such, the base heating member 232 and the substrate heating member 233 may also include openings or gaps. Thus, in some embodiments, when a consumer draws on the mouth end of the aerosol source member 204, air is drawn into the control body 202, passes through the base heating member 232 and the substrate heating member 233, and through the inhalable substance medium 210, and may be inhaled by the consumer. In some embodiments, the drawn air passes through the optional filter 214 and carries the inhalable substance through an opening in the mouth end 208 of the aerosol source member 204. When the substrate heating member 233 is positioned proximate to or within the inhalable substance medium 210, the heating members 232, 233 may be activated to heat the inhalable substance medium 210 and release the inhalable substance through the aerosol source member 204.

[0164] In some embodiments, such as, for example, some embodiments in which magnetic materials are not used, it can be useful to provide an indication when the aerosol source member 204 has achieved the proper distance of insertion into the receiving chamber so that the base heating member 232 and the substrate heating member 233 are properly positioned relative to one another. For example, the aerosol source member 204 may include one or more markings on its exterior (e.g., on the outer surface of the aerosol source member 204). In other embodiments, a single marking may indicate the depth of insertion required to achieve this position. Alternatively, the proper insertion distance may be indicated by the aerosol source member “bottoming out” against the base of the receiving chamber, or by any other such means that may enable a consumer to recognize and understand that the aerosol source member 204 has been sufficiently inserted into the receiving chamber 236 to position the heating members 232, 233 relative to one another.

[0165] In some embodiments, the aerosol delivery device 200 may include a push button that may be coupled to a control component for manual control of the heating assembly. For example, in some embodiments, a consumer may energize the base heating member 232 using a push button. Similar functionality associated with a push button may be achieved by other mechanical or non-mechanical means (e.g., magnetic or electromagnetic). Thus, activation of the base heating member 232 may be controlled by a single push button. Alternatively, multiple push buttons may be provided to separately control various operations. One or more push buttons may be located substantially flush with the casing of the control body 202.

[0166] Instead of (or in addition to) any push button, the inventive device 200 of the present disclosure may include a component that energizes the base heating element 232 in response to a consumer drawing on an item (i.e., puff-activated heating). For example, the device may include a flow sensor 220 (i.e., puff-activated switch) within the control body 202 that is sensitive to either pressure or airflow changes as a consumer draws on an item. Other suitable current activation / deactivation mechanisms may include a temperature-activated on / off switch or a lip-pressure-activated switch. An exemplary mechanism capable of providing such puff-activation capability includes the Model 163PC01D36 silicon sensor manufactured by the MicroSwitch division of Honeywell, Inc. of Freeport, Illinois. Using such a sensor, pressure changes as a consumer draws on the device can rapidly activate the heating element. Additionally, a flow-sensing device, such as one using the principles of hot-wire anemometry, may be used to energize the base heating element 232 sufficiently quickly after sensing a change in airflow. Another puff-activated switch that may be used is a pressure differential switch, such as Model No. MPL-502-V, Range A, manufactured by Micro Pneumatic Logic, Inc. of Fort Lauderdale, Florida. Another suitable puff-activated mechanism is a pressure-sensitive transducer (e.g., with an amplifier or gain stage) coupled to a comparator for detecting a predetermined threshold pressure. Applicant further notes various other possible puff-activated mechanisms and other switches, sensors, etc., described above with respect to FIGS. 1-4, which are also applicable to the present exemplary embodiment. When a consumer draws on the mouth end of device 200, current-activated means may ensure that current flow through resistive base heating element 232 is unrestricted or uninterrupted, thereby rapidly generating heat. For rapid heating, it may be useful to include a current regulation component to (i) regulate the flow of current through the heating element to control heating of the resistive element and the resulting temperature, and (ii) prevent overheating and degradation of inhalable substance medium 210. In some embodiments, the current regulation circuit may be specifically time-based.Applicant further notes various possible current regulation circuits associated with the heating element, including the time base circuits described above with respect to FIGS. 1-4, which are also applicable to the present exemplary embodiment.

[0167] As noted above, the power supply 224 used to power the various electrical components of the device 200 can take on a variety of embodiments. Preferably, the power supply provides sufficient energy to rapidly heat the heating element in the manner described above and can power the device through use with multiple aerosol source elements 204 while still fitting conveniently into the device 200. One example of a power supply is the TKI-1550 rechargeable lithium-ion battery manufactured by Tadiran Batteries GmbH of Germany. In another embodiment, a useful power supply may be the N50-AAA CADNICA nickel-cadmium battery manufactured by Sanyo Electric Company, Ltd. of Japan. In other embodiments, multiple such batteries, each providing 1.2 volts, may be connected in series. Other power sources, such as rechargeable lithium manganese dioxide batteries, may also be used. While any of these batteries or combinations thereof may be used for the power supply, rechargeable batteries are preferred due to cost and disposal considerations associated with disposable batteries. Alternatively, in embodiments in which a rechargeable battery is used, the power source 224 may further include charging contacts that interact with corresponding contacts on a conventional charging unit (not shown) that obtains power from a standard 120-volt AC wall outlet or other source, such as an automobile's electrical system or a separate portable power source. In further embodiments, the power source may also include a capacitor. The capacitor can discharge faster than a battery and can be charged between puffs, allowing the battery to discharge at a slower rate than if it were used to directly power the heating element. For example, a supercapacitor, i.e., an electric double-layer capacitor (EDLC), may be used separately from or in combination with a battery. If used alone, the supercapacitor may be charged before each use of the device 200. Accordingly, the present disclosure may also include a charger component that can be attached to the device between uses to replenish the supercapacitor. In certain embodiments of the present disclosure, a thin-film battery may be used.

[0168] As noted above, in various embodiments, the aerosol delivery device 200 may include one or more indicators 226. In the illustrated embodiment, the indicator 236 is shown on the end of the control body 202, but in various embodiments, the indicator 236 may be located on another portion of the control body 202 or elsewhere. In some embodiments, the indicator may be a light (e.g., a light-emitting diode) that can provide an indication of multiple aspects of the device's use. For example, a series of lights may correspond to the number of puffs taken on a given aerosol source member. Specifically, the lights may illuminate sequentially with each puff, such that when all lights are illuminated, the consumer is notified that the aerosol source member has been consumed. Alternatively, all lights may illuminate when the aerosol source member is inserted into the housing, and the lights may turn off with each puff, such that when all lights are off, the consumer is notified that the aerosol source member has been consumed. In still other embodiments, there may be only a single indicator, the illumination of which may indicate that current is flowing through the heating member and that the device is actively heating. This may prevent a consumer from unintentionally leaving the device in active heating mode. In alternative embodiments, one or more of the indicators may be components of the aerosol source member. While the indicators are described above in connection with visual indicators of an on / off method, other indicators of operation are also encompassed. For example, visual indicators may also include changes in light color or intensity to indicate the progression of the smoking experience. Tactile and audible indicators are also encompassed by the present disclosure. Furthermore, combinations of such indicators may be used in a single device.

[0169] In addition to the above embodiments, in some embodiments, the inhalable substance medium may be configured as a liquid capable of generating an aerosol upon application of sufficient heat, having components commonly referred to as “smoke juice,” “e-liquid,” and “e-juice.” Exemplary formulations of aerosol-generating liquids are described in U.S. Patent Application Publication No. 2013 / 0008457 to Zheng et al., the entire disclosure of which is incorporated herein by reference.

[0170] Another embodiment of the present disclosure is shown in FIGS. 9-12. In particular, FIGS. 9-12 illustrate an aerosol delivery device 300 according to an exemplary embodiment of the present disclosure. The aerosol delivery device 300 may include a control body 302 and an aerosol source member 304. In various embodiments, the aerosol source member 304 and the control body 302 may be permanently or removably aligned in a functional relationship. In this regard, FIG. 9 illustrates the aerosol delivery device 300 in a coupled configuration, while FIG. 10 illustrates the aerosol delivery device 300 in a separated configuration. Various mechanisms may connect the aerosol source member 304 to the control body 302, providing a threaded engagement, a press-fit engagement, an interference fit, a sliding fit, a magnetic engagement, or the like. In accordance with an exemplary embodiment of the present disclosure, FIG. 11 illustrates a front schematic view of the aerosol delivery device 300, and FIG. 12 illustrates a cross-sectional view of the aerosol delivery device 300.

[0171] In various embodiments, the aerosol delivery device 300 according to the present disclosure can have a variety of overall shapes, including, but not limited to, those that can be defined as substantially rod-shaped, substantially tubular, or substantially cylindrical. In the embodiment of Figures 9-12, the device 300 has a substantially circular cross-section. However, other cross-sectional shapes (e.g., oval, square, triangular, etc.) are also encompassed by the present disclosure. Such language describing the physical shape of an article can also apply to its individual components, including the control body 302 and the aerosol source member 304. In other embodiments, the control body may take on another handheld shape, such as a small box.

[0172] In certain embodiments, one or both of the control body 302 and the aerosol source member 304 may be referred to as disposable or reusable. For example, the control body 302 may have a replaceable or rechargeable battery, a solid-state battery, a thin-film solid-state battery, a rechargeable supercapacitor, or the like, and thus may be combined with any type of charging technology, including connection to a wall charger, a car charger (i.e., cigarette lighter socket), 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, a photovoltaic cell (sometimes called a solar cell) or solar panel, or a wireless charger, such as a charger using inductive wireless charging (e.g., including wireless charging compliant with the Qi wireless charging standard by the Wireless Power Consortium (WPC)), or a radio frequency (RF)-based charger. An example of an inductive wireless charging system is described in U.S. Patent Application Publication No. 2017 / 0112196 to Sur et al., which is incorporated herein by reference in its entirety. Additionally, in some embodiments, the aerosol source member 304 may comprise a disposable device. Similar disposable components for use with control bodies are disclosed in U.S. Patent No. 8,910,639 to Chang et al., which is incorporated herein by reference in its entirety.

[0173] In the illustrated embodiment, the aerosol source member 304 includes a heated end 306 configured to be inserted into the control body 302 and a mouth end 308 at which a user draws to generate an aerosol. At least a portion of the heated end 306 may include an inhalable substance medium 310. As described in further detail below, the inhalable substance medium 310 may include tobacco-containing beads, shredded tobacco, strips of tobacco, cast tobacco sheets, reconstituted tobacco materials, or combinations thereof, and / or a mixture of finely ground tobacco, tobacco extract, spray-dried tobacco extract, or other tobacco forms mixed with optional inorganic materials (such as calcium carbonate), optional flavorings, and aerosol-forming materials to form a substantially solid, semi-solid, or moldable (e.g., extrudable) substrate. Representative types of solid and semi-solid inhalable substance vehicle constructions and formulations are disclosed in U.S. Pat. No. 8,424,538 to Thomas et al., U.S. Pat. No. 8,464,726 to Sebastian et al., U.S. Patent Application Publication No. 2015 / 0083150 to Conner et al., U.S. Patent Application Publication No. 2015 / 0157052 to Ademe et al., and U.S. Patent Application Publication No. 2017 / 0000188 to Nordskog et al., filed June 30, 2015, all of which are incorporated herein by reference.

[0174] In various embodiments, the aerosol source member 304, or a portion thereof, can be wrapped in an overwrap material 312, which can be formed from any material useful for providing additional structure and / or support to the aerosol source member 304. In various embodiments, the mouth end 308 of the aerosol source member 304 can include a filter 314, which can be made from a cellulose acetate material or a polypropylene material. The filter 314 may enhance the structural integrity of the mouth end of the aerosol source member and / or provide optional filtration capabilities and / or resistance to suction. The overwrap material can comprise a material that resists heat transfer, which can include paper or other fibrous materials, such as cellulose materials. The overwrap material can also include at least one filler material embedded or dispersed within the fibrous material. In various embodiments, the filler material can have the form of water-insoluble particles. Additionally, the filler material may incorporate inorganic components. In various embodiments, the packaging can be formed from multiple layers, such as an underlying bulk layer and an overlying layer, such as a typical cigarette wrapper. Such materials may include, for example, lightweight "rag fibers" such as flax, hemp, sisal, rice straw, and / or esparto. The wrapping may also include materials typically used in conventional cigarette filter elements, such as cellulose acetate. Additionally, excess length of wrapping at the mouth end 308 of the aerosol source member may function simply to separate the inhalable substance medium 310 from the consumer's mouth, or to provide space for placement of a filter material, as described below, or to affect draw on the article, or to affect the flow characteristics of vapor or aerosol exiting the device during draw. Additional description regarding the construction of overwrapping materials that may be used with the present disclosure may be found in U.S. Pat. No. 9,078,473 to Worm et al., incorporated herein by reference in its entirety.

[0175] In various embodiments, other components may be present between the inhalable substance medium 310 and the mouth end 308 of the aerosol source member 304, and the mouth end 308 may include a filter 314. For example, in some embodiments, one or any combination of the following may be disposed between the inhalable substance medium 310 and the mouth end 308 of the aerosol source member 304: an air gap; a phase change material for cooling air; a flavor release medium; ion exchange fibers capable of selective chemical adsorption; aerogel particles as a filter medium; and other suitable materials.

[0176] As described in further detail below, the present disclosure uses a conductive heat source to heat the inhalable substance medium. In various embodiments, the conductive heat source may comprise a heating assembly including a heating element in direct contact with or in close proximity to the aerosol source member, particularly the inhalable substance medium of the aerosol source member. As described in further detail below, the heating assembly and / or heating element may be disposed in the control body and / or the aerosol source member. In some cases, the inhalable substance medium may include a plurality of beads or particles embedded in or part of the inhalable substance medium that may function as the heating assembly or facilitate the function of the heating assembly.

[0177] In some devices, the heating element may comprise a resistive heating element. The resistive heating element may be configured to generate heat when an electric current is conducted therethrough. In various embodiments, the heating element may be provided in various forms, such as in the form of a foil, foam, disk, spiral, fiber, wire, film, thread, strip, ribbon, or cylinder. Such heating elements often comprise a metallic material and are configured to generate heat as a result of electrical resistance associated with passing an electric current through them. Such a resistive heating element may be positioned in close proximity to the inhalable substance medium. Alternatively, the heating element may be positioned in contact with a solid or semi-solid inhalable substance medium. Such a configuration may heat the inhalable substance medium to generate an aerosol. Various conductive substrates that may be used with the present disclosure are described in U.S. Patent Application Publication No. 2013 / 0255702 to Griffith et al., the entire disclosure of which is incorporated herein by reference.

[0178] 11 shows a schematic front view of an aerosol delivery device 300, and FIG. 12 shows a cross-sectional view of the aerosol delivery device 300 of FIG. 11 , in accordance with an exemplary embodiment of the present disclosure. The control body 302 of the illustrated embodiment comprises a housing 318 including an opening 319 defined in an engagement end thereof. The control body 302 also includes a flow sensor 320 (e.g., a puff sensor or pressure switch), control components 323 (e.g., a printed circuit board (PCB) including processing circuitry, a microprocessor, and / or a microcontroller, either separately or as part of a microcontroller), a power source 324 (e.g., a battery, which may be rechargeable, and / or a rechargeable supercapacitor), and an end cap including an indicator 326 (e.g., a light-emitting diode (LED)). In one embodiment, the indicator 326 may comprise one or more light-emitting diodes, quantum dot-based light-emitting diodes, or the like. Indicator 326 is in communication with control component 323 and may, for example, when coupled to control body 302, illuminate as detected by flow sensor 320 when a user inhales on aerosol source member 304. As described in further detail below, aerosol delivery device 300 of this exemplary embodiment also includes a heating assembly 328 including a heating cylinder 330 and a flexible heating member 332.

[0179] As noted above, various visual and / or tactile and / or audible indicators of operation are also encompassed by this disclosure. Additionally, applicants note various possible power sources, flow sensors, representative current regulation components, other electrical parts, and additional components described above with respect to Figures 1-4 as also applicable to the present exemplary embodiment.

[0180] 11 and 12, the illustrated embodiment of the control body 302 includes a heating assembly 328 configured to heat the inhalable substance medium 310 of the aerosol source member 304. While the heating assemblies of various embodiments of the present disclosure can take a variety of forms, in the specific embodiment shown in FIGS. 11 and 12, the heating assembly 328 comprises an outer cylinder 330 and a flexible heating member 332 that substantially surrounds at least a portion of the heating cylinder 330. In the illustrated embodiment, the heating cylinder 330 and the flexible heating member 332 are disposed in the control body 302. FIG. 13 shows a top view of the flexible heating member 332 of an exemplary embodiment of the present disclosure, shown in an unrolled, flat state. In the illustrated embodiment, the flexible heating member 332 comprises two independently controllable heater circuits 340, 342. In various embodiments, the flexible heating element 332 can take a variety of other forms, including, for example, as few as one heater circuit or more than two heater circuits, and any one, some, or all of the circuits can be independently controllable. While various other types of flexible heaters can be used, in the illustrated embodiment, the flexible heating element 332 comprises an internal conductive layer surrounded by a cover layer on one side and a base layer on the other side. In some embodiments, the cover and base layers can be constructed from a polyimide material, and the internal conductive layer can be constructed from one or more flexible copper layers. In various embodiments, the copper layers can be separated from the cover and base layers by one or more adhesive layers. Other conductive materials can be fabricated from one or more of nichrome, cupronickel, kanthal, molybdenum disilicide, barium titanate, and lead titanate.

[0181] In the illustrated embodiment, the heating cylinder 330 comprises a tube configured to conduct heat from the inner surface of the flexible heating member 332 (i.e., adjacent the base layer) to the aerosol source member 304, which is adjacent the inner surface of the heating cylinder 330 when inserted into the control body 302, as described in further detail below. In various embodiments, the heating cylinder 330 may comprise a conductive material, including but not limited to, copper, aluminum, platinum, gold, silver, iron, steel, brass, bronze, graphite, or any combination thereof. In the illustrated embodiment, the heating cylinder 330 is constructed from stainless steel. In various embodiments, the flexible heating member 332 may be secured to the heating cylinder 330, such as by using one or more adhesives and / or other mechanical means; in the illustrated embodiment, the flexible heating member 332 is secured to the heating cylinder 330 using a layer of heat shrink wrap wrapped around the outer surface of the flexible heating member 332. In some embodiments, the flexible heating element 332 and the heating cylinder 330 may be surrounded by an insulating cylinder (not shown), which in some embodiments may comprise a non-conductive insulating material and / or construction including an insulating polymer (e.g., plastic or cellulose), glass, rubber, ceramic, porcelain, a double vacuum structure, or any combination thereof.

[0182] As shown, the heating assembly 328 may extend proximate the engagement end of the housing 318 and may be configured to substantially surround a portion of the heated end 306 of the aerosol source member 304 containing the inhalable substance medium 310. In this manner, the heating assembly 328 may define a generally tubular configuration. As shown in FIGS. 11 and 12 , the heating cylinder 330 forms a receiving chamber 336. The cradle 334 is disposed at the end of the receiving chamber 336 opposite the opening 319. Thus, the heating cylinder 330 may also function to facilitate proper positioning of the aerosol source member 304 when the aerosol source member 304 is inserted into the housing 318. In various embodiments, the heating cylinder 330 of the heating assembly 328 may engage an inner surface of the housing 318 to align the heating assembly 328 relative to the housing 318. This allows the longitudinal axis of the heating assembly 328 to extend substantially parallel to the longitudinal axis of the housing 318 as a result of the fixed connection between the heating assembly 328. In particular, the heating cylinder 330 may extend from the opening 319 in the housing 318 to the cradle 334 to form a receiving chamber 336. In the illustrated embodiment, the inner diameter of the heating cylinder 330 may be slightly larger than or approximately equal to the outer diameter of the corresponding aerosol source member 304 (e.g., to form a sliding fit), such that the heating cylinder 330 is configured to guide the aerosol source member 304 into an appropriate position (e.g., a lateral position) relative to the control body 302.

[0183] In various embodiments, the control body 302 is configured such that when the aerosol source member 304 is inserted into the control body 302, the heating cylinder 330 is proximate to at least a portion of the inhalable substance medium 310 at the heated end 306 of the aerosol source member 304. In the illustrated embodiment, the control body 302 is configured such that when the aerosol source member 304 is inserted into the control body 302, the heating cylinder 330 is in direct contact with the outer surface of the aerosol source member 304 and is proximate to the inhalable substance medium 310 at the heated end 306 of the aerosol source member 304. In various embodiments, the control body 302 may be used in conjunction with a solid or semi-solid inhalable substance medium 310. Additionally, in various embodiments, the heating cylinder 330 may be used in conjunction with an additional heating element, which in some embodiments may include a cradle 334.

[0184] 11 and 12 , during use, a consumer initiates heating of the heating assembly 328, particularly the flexible heating element 332. This, in turn, initiates heating of the inhalable substance medium 310 (or a particular layer thereof) through heat transfer due to the spatial relationship between the flexible heating element 332 and the heating cylinder 330. Heating of the inhalable substance medium 310 releases the inhalable substance within the aerosol source member 304, generating inhalable material. When a consumer inhales into the mouth end 308 of the aerosol source member 304, air is drawn into the aerosol source member 304 through the opening or gap 322 in the control body 302. As the drawn-in material exits the mouth end 308 of the aerosol source member 304, a combination of the drawn-in air and the released inhalable material is inhaled by the consumer. In some embodiments, the consumer may manually activate a push button or similar component to initiate heating, causing the heating element of the heating assembly to receive electrical energy from a battery or other energy source. The electrical energy may be supplied for a predetermined length of time or may be manually controlled. In some embodiments, the flow of electrical energy is not substantially continuous between puffs using the device (although the energy flow may continue to maintain a baseline temperature above ambient temperature, e.g., a temperature that facilitates rapid heating to an operating heating temperature). However, in the illustrated embodiment, heating is initiated by the consumer's puff action using one or more sensors, such as flow sensor 320. When a puff is discontinued, heating is stopped or reduced. Once the consumer has taken a sufficient number of puffs and released a sufficient amount of inhalable substance (e.g., an amount sufficient to equate to a typical smoking experience), the aerosol source member 304 may be detached from the control body 302 and discarded. In some embodiments, additional sensing elements, such as capacitance sensing elements and other sensors, may be used, as described in U.S. Patent Application No. 15 / 707,461 to Phillips et al., incorporated herein by reference in its entirety.

[0185] In various embodiments, the aerosol source member 304 may be formed from any material suitable for forming and maintaining a suitable structure, such as a tube, and for holding the inhalable substance medium 310 therein. In some embodiments, the aerosol source member 304 may be formed from a single wall, or in other embodiments, multiple walls, and may be formed from a heat-resistant material (natural or synthetic) so as to maintain its structural integrity (e.g., not deteriorate) at least at certain temperatures, such as the heating temperatures provided by the electric heating element, as described further herein. In some embodiments, a heat-resistant polymer may be used, while in other embodiments, the aerosol source member 304 may be formed from paper, such as substantially straw-shaped paper. As described further herein, the aerosol source member 304 may have one or more layers associated therewith that function to substantially prevent vapor transfer therethrough. In one exemplary embodiment, an aluminum foil layer may be laminated to one surface of the aerosol source member. Ceramic materials may also be used. In further embodiments, thermal insulation may be used to prevent unnecessary transfer of heat from the inhalable substance medium. Additionally, applicants refer to a variety of possible dimensions, additional components, and possible compositions of the aerosol source member containing the inhalable substance medium, as discussed above with respect to FIGS.

[0186] 11 and 12 , the heated end 306 of the aerosol source member 304 is sized and shaped for insertion into the control body 302. In various embodiments, the receiving chamber 336 of the control body 302 can be characterized as being defined by a wall having an inner surface and an outer surface, the inner surface defining the interior volume of the receiving chamber 336. For example, in the illustrated embodiment, the heating cylinder 330 defines the inner surface that defines the interior volume of the receiving chamber 336. Thus, the maximum outer diameter (or other dimension, depending on the particular cross-sectional shape of the embodiment) of the aerosol source member 304 can be smaller than the inner diameter (or other dimension) at the inner surface of the wall of the open end of the receiving chamber 336 of the control body 302. In some embodiments, the difference in their respective diameters can be small enough so that the aerosol source member fits snugly into the receiving chamber 336 and frictional forces prevent the aerosol source member 204 from moving without the application of force. On the other hand, this difference may be sufficient to allow the aerosol source member 304 to slide into or out of the receiving chamber 336 without requiring excessive force.

[0187] In some embodiments, the overall size of the aerosol delivery device 300 may be comparable in size to the shape of a cigarette or cigar. Accordingly, the device may have a diameter of about 5 mm to about 25 mm, about 5 mm to about 20 mm, about 6 mm to about 15 mm, or about 6 mm to about 10 mm. In various embodiments, such dimensions may specifically correspond to the outer diameter of the control body 302. In some embodiments, the aerosol source member 304 may have a diameter of about 4 mm to about 6 mm. Additionally, the control body 302 and the aerosol source member may similarly be characterized in terms of overall length. For example, in some embodiments, the control body may have a length of about 40 mm to about 120 mm, about 45 mm to about 110 mm, or about 50 mm to about 100 mm. The aerosol source member may have a length of about 20 mm to about 60 mm, about 25 mm to about 55 mm, or about 30 mm to about 50 mm.

[0188] In the illustrated embodiment, the control body 302 includes a control component 323 that controls various functions of the aerosol delivery device 300, including providing power to the flexible heating member 332. For example, the control component 323 may include a control circuit (which may be connected to additional components, as further described herein) connected to the power source 324 by conductive wires (not shown). See, for example, the circuit diagram of the aerosol delivery device shown in FIG. 15 and described above. In various embodiments, the control circuit may control when and how the heating assembly 328, and in particular the flexible heating member 332, receives electrical energy to heat the heating cylinder 330 and, therefore, the inhalable substance medium 310, for release of the inhalable substance for inhalation by the consumer. In some embodiments, such control may be actuated by activation of a flow sensor and / or a pressure-sensitive switch, etc., as described in more detail below.

[0189] As noted above, in the illustrated embodiment, the flexible heating member 332 includes two independently controllable heating circuits 340, 342; in other embodiments, the flexible heating member 332 may include more than two independently controllable heating circuits. Accordingly, in various embodiments, the control component 323 may independently control each of the heating circuits, such that each or some of the heating circuits may exhibit different heating characteristics compared to the others. For example, in the illustrated embodiment, the control component 323 may control the first heater circuit 340 differently from the second heater circuit 342 at certain times or all of the time, e.g., so that the first heater circuit 340 has a different heating profile and / or its timing or heating temperature differs from that of the second heater circuit 342. However, in other embodiments, the heating characteristics of the heating circuits may be the same.

[0190] As noted above, the control component can be configured to precisely control the amount of heat provided to the inhalable substance medium 310. While the heat required to volatilize a sufficient volume of aerosol-forming substance to provide the desired dose of inhalable substance per puff may vary for each particular substance used, in some embodiments, one or more of the heating circuits of the heating element may heat to a temperature of at least 120°C, at least 130°C, or at least 140°C. In some embodiments, the heating temperature may be at least 150°C, at least 200°C, at least 220°C, at least 300°C, or at least 350°C to volatilize an adequate amount of aerosol-forming substance and thus provide the desired dose of inhalable substance. However, it may be particularly desirable to avoid heating to temperatures substantially above about 550°C to avoid degradation and / or excessive premature volatilization of the aerosol-forming substance. In particular, heating should be at a temperature low enough and for a time short enough to avoid significant combustion (preferably any combustion) of the inhalable substance medium. The present disclosure provides, inter alia, components of the device in combinations and modes of use that produce a desired amount of inhalable substance at relatively low temperatures. Thus, yield may refer to one or both of aerosol production within the device and delivery from the device to the consumer. In certain embodiments, the heating temperature can be about 130°C to about 310°C, about 140°C to about 300°C, about 150°C to about 290°C, about 170°C to about 270°C, or about 180°C to about 260°C. In other embodiments, the heating temperature can be about 210°C to about 390°C, about 220°C to about 380°C, about 230°C to about 370°C, about 250°C to about 350°C, or about 280°C to about 320°C.

[0191] As described in more detail below, the duration of heating of one or more of the heating circuits can be controlled by several factors. As described further herein, the heating temperature and duration can depend on the desired volume of aerosol and ambient air desired to be drawn through the aerosol delivery device. However, the duration can vary depending on the heating rate of the heating element circuit, as the device can be configured so that the heating element circuit is energized only until the desired temperature is reached. Alternatively, the duration of heating can be tied to the duration of a consumer's puff using the article. Generally, the temperature and duration of heating are controlled by one or more components housed in the control housing, as described above. Applicant notes various possible control components and associated functions described above with respect to Figures 1-4 as applicable to this exemplary embodiment.

[0192] In various embodiments, the electric heating assembly may include any device suitable for providing sufficient heat to facilitate the release of the inhalable substance for inhalation by the consumer. In certain embodiments, the electric heating assembly may include a resistive heating element. Useful heating elements may have low mass, low density, moderate resistivity, and be thermally stable at temperatures experienced during use. Useful heating elements heat and cool rapidly, thereby efficiently using energy. Rapid heating of the element also results in nearly instantaneous volatilization of the aerosol-forming substance. Rapid cooling prevents substantial volatilization (and therefore waste) of the aerosol-forming substance during periods when aerosol formation is not desired. Such heating elements also allow for relatively precise control of the temperature range experienced by the aerosol-forming substance, particularly when time-based current control is used. Useful heating elements are also chemically non-reactive with the materials comprising the heated inhalable substance medium so as not to adversely affect the flavor or content of the aerosol or vapor produced. Applicant further notes various possible materials for the heating element described above with respect to FIGS. 1-4, which are also applicable to this exemplary embodiment.

[0193] As seen in FIGS. 11-14 , the electric heating assembly 328 of the illustrated embodiment comprises a heating cylinder 330 and a flexible heating element 332 including two independently controlled heater circuits 340, 342. In various embodiments, the flexible heating element 332 may extend any distance along the inhalable substance medium 310 portion of the aerosol source element 304. For example, in various embodiments, the flexible heating element 332 may extend up to about 25%, up to about 50%, up to about 75%, or nearly the entire length of the inhalable substance medium 310. Additionally, in various embodiments, the relative overall dimensions of the flexible heating element 332 may vary. Applicant further notes various other possible heater configurations discussed above with respect to FIGS. 1-4 that are also applicable to this exemplary embodiment.

[0194] The amount of inhalable material emitted by the device 300 of the present invention can vary based on the properties of the inhalable material. Preferably, the device 300 is configured with a sufficient amount of inhalable material, along with a sufficient amount of any aerosol-forming agent, to function at a sufficient temperature for a sufficient time to emit the desired amount over the course of use. The amount may be provided in a single inhalation from the device 300, or may be divided up to be provided through several puffs from the article over a relatively short period of time (e.g., less than 30 minutes, less than 20 minutes, less than 15 minutes, less than 10 minutes, or less than 5 minutes). Examples of nicotine levels and wet total particulate matter that can be delivered are described in U.S. Patent No. 9,078,473 to Worm et al., incorporated herein by reference.

[0195] In various embodiments, the control body 302 may include one or more gaps 322 therein to allow ambient air to enter the interior of the receiving chamber 336. As such, the cradle 334 may also include openings or gaps. Thus, in some embodiments, when a consumer draws on the mouth end of the aerosol source member 304, air is drawn into the control body 302, through the base receiving member 334, and through the inhalable substance medium 310, and may be inhaled by the consumer. In some embodiments, the drawn air passes through the optional filter 314 and carries the inhalable substance through an opening in the mouth end 308 of the aerosol source member 304. When the flexible heating member 332 and the heating cylinder 330 are positioned proximate to the inhalable substance medium 310, the flexible heating member 332 and the heating cylinder 330 may be activated to heat the inhalable substance medium 310 and release the inhalable substance through the aerosol source member 304.

[0196] In some embodiments, it may be useful to provide an indication when the aerosol source member 304 has achieved the proper distance of insertion into the receiving chamber 336 so that the flexible heating member 332 and heating cylinder 330 are positioned proximate to the inhalable substance medium 310. For example, the aerosol source member 304 may include one or more markings on its exterior (e.g., on the outer surface of the aerosol source member 304). In other embodiments, a single marking may indicate the depth of insertion required to achieve this position. Alternatively, the proper insertion distance may be indicated by the aerosol source member “bottoming out” against the base of the receiving chamber 336 (e.g., against the cradle 334), or by any other such means that may enable a consumer to recognize and understand that the aerosol source member 304 has been sufficiently inserted into the receiving chamber 336 to position the inhalable substance medium 310 against the flexible heating member 332 and heating cylinder 330.

[0197] In some embodiments, the aerosol delivery device 300 may include a push button that may be coupled to a control component for manual control of the heating assembly. For example, in some embodiments, a consumer may use the push button to energize the flexible heating member 332. Similar functionality associated with a push button may be achieved by other mechanical or non-mechanical means (e.g., magnetic or electromagnetic). Thus, activation of the flexible heating member 332 may be controlled by a single push button. Alternatively, multiple push buttons may be provided to separately control various operations. If present, the one or more push buttons may be located substantially flush with the casing of the control body 302.

[0198] Instead of (or in addition to) any push button, the inventive device 300 of the present disclosure may include a component that energizes the flexible heating element 332 in response to a consumer drawing on an item (i.e., puff-activated heating). For example, the device may include a flow sensor 320 (i.e., a puff-activated switch) within the control body 302 that is sensitive to either pressure or airflow changes as a consumer draws on an item. Other suitable current activation / deactivation mechanisms may include a temperature-activated on / off switch or a lip-pressure-activated switch. An exemplary mechanism capable of providing such puff-activation capability includes the Model 163PC01D36 silicon sensor manufactured by the MicroSwitch division of Honeywell, Inc. of Freeport, Illinois. Using such a sensor, pressure changes as a consumer draws on the device can rapidly activate the heating element. Additionally, a flow-sensing device, such as one using the principles of hot wire anemometry, may be used to energize the flexible heating element 332 sufficiently quickly after sensing a change in airflow. Another puff-activated switch that may be used is a pressure differential switch, such as Model No. MPL-502-V, Range A, manufactured by Micro Pneumatic Logic, Inc. of Fort Lauderdale, Florida. Another suitable puff-activated mechanism is a pressure-sensitive transducer (e.g., with an amplifier or gain stage) coupled to a comparator for detecting a predetermined threshold pressure. Applicant further notes various other possible puff-activated mechanisms and other switches, sensors, etc., as described above with respect to FIGS. 1-4, which are also applicable to the present exemplary embodiment. When a consumer draws on the mouth end of device 300, current-activated means may rapidly generate heat by ensuring that current flow through resistive flexible heating element 332 is unrestricted or uninterrupted. For rapid heating, it may be useful to include a current regulation component to (i) regulate the flow of current through the heating element to control heating of the resistive element and the resulting temperature, and (ii) prevent overheating and degradation of inhalable substance medium 310. In some embodiments, the current regulation circuit may be particularly time-based.Applicant further notes various possible current regulation circuits associated with the heating element, including the time base circuits described above with respect to FIGS. 1-4, which are also applicable to the present exemplary embodiment.

[0199] As noted above, the power supply 324 used to power the various electrical components of the device 300 can take on a variety of embodiments. Preferably, the power supply provides sufficient energy to rapidly heat the heating element in the manner described above and can power the device through use with multiple aerosol source elements 304 while still fitting conveniently into the device 300. One example of a power supply is the TKI-1550 rechargeable lithium-ion battery manufactured by Tadiran Batteries GmbH of Germany. In another embodiment, a useful power supply may be the N50-AAA CADNICA nickel-cadmium battery manufactured by Sanyo Electric Company, Ltd. of Japan. In other embodiments, multiple such batteries, each providing 1.2 volts, may be connected in series. Other power sources, such as rechargeable lithium manganese dioxide batteries, may also be used. While any of these batteries or combinations thereof may be used for the power supply, rechargeable batteries are preferred due to the cost and disposal considerations associated with disposable batteries. Alternatively, in embodiments in which a rechargeable battery is used, the power source 324 may further include charging contacts that interact with corresponding contacts on a conventional charging unit (not shown) that obtains power from a standard 120-volt AC wall outlet or other source, such as an automobile's electrical system or a separate portable power source. In further embodiments, the power source may also include a capacitor. The capacitor can discharge faster than a battery and can be charged between puffs, allowing the capacitor to discharge at a slower rate than if a battery were used to directly power the heating element. For example, a supercapacitor, i.e., an electric double-layer capacitor (EDLC), may be used separately or in combination with a battery. If used alone, the supercapacitor may be charged before each use of the device 300. Accordingly, the present disclosure may also include a charger component that can be attached to the device between uses to replenish the supercapacitor. In certain embodiments of the present disclosure, a thin-film battery may be used.

[0200] As noted above, in various embodiments, the aerosol delivery device 300 may include one or more indicators 326. In the illustrated embodiment, the indicator 336 is shown on the end of the control body 302, but in various embodiments, the indicator 336 may be located on another portion of the control body 302 or elsewhere. In some embodiments, the indicator may be a light (e.g., a light-emitting diode) that can provide an indication of multiple aspects of the device's use. For example, a series of lights may correspond to the number of puffs taken on a given aerosol source member. Specifically, the lights may illuminate sequentially with each puff, such that when all lights are illuminated, the consumer is notified that the aerosol source member has been consumed. Alternatively, all lights may illuminate when the aerosol source member is inserted into the housing, and the lights may extinguish with each puff, such that when all lights are extinguished, the consumer is notified that the aerosol source member has been consumed. In still other embodiments, there may be only a single indicator, the illumination of which may indicate that current is flowing through the heating member and that the device is actively heating. This may prevent a consumer from unintentionally leaving the device in active heating mode. In alternative embodiments, one or more of the indicators may be components of the aerosol source member. While the indicators are described above in connection with visual indicators of an on / off method, other indicators of operation are also encompassed. For example, visual indicators may also include changes in light color or intensity to indicate the progression of the smoking experience. Tactile and audible indicators are also encompassed by the present disclosure. Furthermore, combinations of such indicators may be used in a single device.

[0201] In addition to the above embodiments, in some embodiments, the inhalable substance medium may be configured as a liquid capable of generating an aerosol upon application of sufficient heat, having components commonly referred to as “smoke juice,” “e-liquid,” and “e-juice.” Exemplary formulations of aerosol-generating liquids are described in U.S. Patent Publication No. 2013 / 0008457 to Zheng et al., the disclosure of which is incorporated herein by reference in its entirety.

[0202] The present disclosure provides devices and methods of using the devices that use electrical energy to heat a heat source, which then heats tobacco or tobacco-derived materials (preferably without significantly burning the tobacco or tobacco-derived materials) to form an inhalable substance, such as an aerosol, and the article is small enough to be considered a "handheld" device. In certain embodiments, the device may be specifically characterized as a smoking article. As used herein, this term is intended to mean a device or article that provides the taste and / or sensation (e.g., feel or mouthfeel) of smoking a cigarette, cigar, or pipe without actually burning any components of the device. The term smoking device or article does not necessarily indicate that the device produces smoke in the sense of a combustion or pyrolysis byproduct during operation. Rather, smoking refers to the physical actions of an individual in using the device, e.g., holding the device in one's hand, drawing on one end of the device, and inhaling from the device. In further embodiments, the devices of the present invention may be characterized as vapor-generating devices, aerosolization devices, or pharmaceutical delivery devices. Thus, the device may be configured to provide one or more substances in an inhalable state.

[0203] It should be noted that while the aerosol source member and control body are generally provided together as a complete smoking device or medication delivery article, the components can also be provided separately. For example, the present disclosure also encompasses disposable units for use with reusable smoking devices or reusable medication delivery articles. In certain embodiments, such disposable units (which may be aerosol source members as shown in the accompanying figures) may include a heated end configured to engage the reusable smoking device or medication delivery article, an opposing mouth end configured to allow passage of an inhalable substance to the consumer, and a substantially tubular body having a wall with an outer surface and an inner surface defining an interior space. Various embodiments of aerosol source members (or cartridges) are described in U.S. Patent No. 9,078,473 to Worm et al., which is incorporated herein by reference.

[0204] In addition to disposable units, the present disclosure may further be characterized as providing a separate control body for use in a reusable smoking device or a reusable medication delivery article. In certain embodiments, the control body may generally be a housing having a receiving end (which may include an open-ended receiving chamber) for receiving the heated end of a separately provided aerosol source member. The control body may further include an electrical energy source that provides power to an electric heating element that may be a component of the control body or that may be included in an aerosol source member used with the control unit. For example, in some embodiments, the electrical energy source may provide power to a heating assembly, which in some embodiments may include one or more protrusions forming the heating element, and the heating assembly may have associated electrical contacts connecting the heating element to the electrical energy source. In other embodiments, the heating assembly may include a flexible heating element that substantially encases the heating cylinder. In other embodiments, the heating assembly, instead of including a single heating element, may include a separate heating element component, with one component as part of the control body and another component as part of the aerosol source member. In various embodiments, the control body may also include additional components, including a power source (e.g., a battery), components for activating the flow of current to the heating element, and components for regulating such current flow to maintain a desired temperature for a desired period of time and / or to cycle or stop the flow of current when the desired temperature is reached or when the heating element has been heating for a desired length of time. In some embodiments, the control unit may further include one or more push buttons associated with one or both of the components for activating the flow of current to the heating element and components for regulating such current flow. The control body may also include one or more indicators, such as a light that indicates that the heater is heating and / or a light that indicates the number of puffs remaining in an aerosol source element used with the control body.

[0205] Although the various figures described herein show the control body and aerosol source member in an operative relationship, it should be understood that the control body and aerosol source member may exist as separate devices, and therefore any description provided elsewhere herein regarding combined components should be understood as applying to the control body and aerosol source member as individual and separate components.

[0206] In another aspect, the present disclosure may be directed to kits providing various components described herein. For example, the kit may include a control body having one or more aerosol source members. The kit may further include a control body having one or more charging components. The kit may further include a control body having one or more batteries. The kit may further include a control body having one or more aerosol source members and one or more charging components and / or one or more batteries. In further embodiments, the kit may include multiple aerosol source members. The kit may further include multiple aerosol source members and one or more batteries and / or one or more charging components. In the above embodiments, the aerosol source member or control body may include a heating element included therein. The kits of the present invention may further include a case (or other packaging, transport, or storage component) for housing one or more of the additional kit components. The case may be a reusable hard or soft container. Furthermore, the case may simply be a box or other packaging structure.

[0207] Many modifications and other embodiments of the present disclosure will come to mind to one skilled in the art to which this disclosure pertains having the benefit of the teachings presented in the foregoing descriptions and the associated drawings. It is to be understood, therefore, that the present disclosure is not limited to the specific embodiments disclosed herein, and that 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.

Claims

1. 1. An aerosol delivery device configured to generate an inhalable substance, the aerosol delivery device comprising: a substantially tubular control body having a closed distal end and an open engagement end; A heating element; a control component disposed within the control body and configured to control the heating member; a power source disposed within the control body and configured to provide power to the control components; a substantially cylindrical removable aerosol source member containing an inhalable substance medium; Equipped with an aerosol source member configured to be inserted into the engagement end of the control body and defining a heated end and a mouth end, the heated end configured to be positioned adjacent to the heating member when inserted into the control body, and the mouth end configured to extend beyond the engagement end of the control body; a heating member configured to provide heat to at least a portion of the aerosol source member to form an inhalable aerosol, the aerosol configured to be drawn through the aerosol source member in response to suction applied to the mouth end of the inhalable substance medium; The aerosol delivery device, wherein the heating member comprises a flexible heating member surrounding a heating cylinder disposed within a portion of the engagement end of the control body.

2. 10. The aerosol delivery device of claim 1, wherein at least a portion of the heating element is in direct contact with the inhalable substance medium.

3. 10. The aerosol delivery device of claim 1, wherein the control component is configured to provide an operating current in the range of about 2.5 amps to about 10 amps or between the range of about 2.5 amps to about 10 amps.

4. 10. The aerosol delivery device of claim 1, wherein the control component is configured to provide a power efficiency of up to about 96%.

5. 10. The aerosol delivery device of claim 1, wherein the control component is configured to establish a temperature arrival time of less than about 10 seconds.

6. 10. The aerosol delivery device of claim 1, wherein the inhalable substance vehicle comprises tobacco or a tobacco-derived material.

7. 10. The aerosol delivery device of claim 1, wherein at least a portion of the inhalable substance medium comprises at least one of tobacco-containing beads, shredded tobacco, shredded tobacco, reconstituted tobacco material pieces, and cast tobacco sheets.

8. 10. The aerosol delivery device of claim 1, wherein at least a portion of the inhalable substance medium comprises an extruded structure comprising tobacco or tobacco-derived material.

9. 10. The aerosol delivery device of claim 1, wherein the aerosol source member comprises an overwrap comprising a paper material surrounding the inhalable substance medium.

10. 10. The aerosol delivery device of claim 1, wherein the aerosol source member includes a filter material disposed adjacent the mouth end of the aerosol source member.

11. 10. The aerosol delivery device of claim 1, wherein the mouth end of the aerosol source member is partially occluded.

12. 10. The aerosol delivery device of claim 1, wherein the control body further comprises one or more ventilation openings configured to allow ambient air to enter the control body.

13. 10. The aerosol delivery device of claim 1, further comprising a puff-activated switch that activates the flow of electrical current from the power source to the heating element.

14. 10. The aerosol delivery device of claim 1, further comprising a manual push button that activates the flow of electrical current from the power source to the heating element.

15. 10. The aerosol delivery device of claim 1, wherein the power source comprises a battery.

16. 10. The aerosol delivery device of claim 1, further comprising a current regulating component configured to regulate a previously initiated flow of current from the power source to the heating element.

17. 10. The aerosol delivery device of claim 1, wherein the current regulation component comprises a time reference component.

18. 10. The aerosol delivery device of claim 1, wherein the current regulating component is configured to terminate current flow to the electrical heating element once a defined temperature is achieved.

19. 10. The aerosol delivery device of claim 1, wherein the current regulating component is configured to cycle the current to the electric heating element off and on once a specified temperature is achieved to maintain the specified temperature for a specified period of time.

20. 10. The aerosol delivery device of claim 1, wherein the aerosol source member defines an exterior surface, and wherein a fluid passage along the length of the aerosol source member is substantially limited to a passage within the aerosol source member.

21. 1. An aerosol delivery device configured to generate an inhalable substance, the aerosol delivery device comprising: a substantially tubular control body having a closed distal end and an open engagement end; A heating element; a control component disposed within the control body and configured to control the heating member; a power source disposed within the control body and configured to provide power to the control components; a substantially cylindrical removable aerosol source member containing an inhalable substance medium; Equipped with an aerosol source member configured to be inserted into the engagement end of the control body and defining a heated end and a mouth end, the heated end configured to be positioned adjacent to the heating member when inserted into the control body, and the mouth end configured to extend beyond the engagement end of the control body; a heating member configured to provide heat to at least a portion of the aerosol source member to form an inhalable aerosol, the aerosol configured to be drawn through the aerosol source member in response to suction applied to the mouth end of the inhalable substance medium; An aerosol delivery device, wherein the heating member comprises a base heating member and a substrate heating member, the base heating member being disposed within the control body, the substrate heating member being disposed within the aerosol source member, and the base heating member being configured to transfer heat to the substrate heating member.

22. 22. The aerosol delivery device of claim 21, wherein at least a portion of the heating element is in direct contact with the inhalable substance medium.

23. 22. The aerosol delivery device of claim 21, wherein the control component is configured to provide an operating current in the range of about 2.5 amps to about 10 amps or between the range of about 2.5 amps to about 10 amps.

24. 22. The aerosol delivery device of claim 21, wherein the control component is configured to provide a power efficiency of up to about 96%.

25. 22. The aerosol delivery device of claim 21, wherein the control component is configured to establish a temperature arrival time of less than about 10 seconds.

26. 22. The aerosol delivery device of claim 21, wherein the inhalable substance vehicle comprises tobacco or a tobacco-derived material.

27. 22. The aerosol delivery device of claim 21, wherein at least a portion of the inhalable substance medium comprises at least one of tobacco-containing beads, shredded tobacco, shredded tobacco, reconstituted tobacco material pieces, and cast tobacco sheets.

28. 22. The aerosol delivery device of claim 21, wherein at least a portion of the inhalable substance medium comprises an extruded structure comprising tobacco or tobacco-derived material.

29. 22. The aerosol delivery device of claim 21, wherein the aerosol source member comprises an overwrap comprising a paper material that surrounds the inhalable substance medium.

30. 22. The aerosol delivery device of claim 21, wherein the aerosol source member includes a filter material disposed adjacent the mouth end of the aerosol source member.

31. 22. The aerosol delivery device of claim 21, wherein the mouth end of the aerosol source member is partially occluded.

32. 22. The aerosol delivery device of claim 21, wherein the control body further comprises one or more ventilation openings configured to allow ambient air to enter the control body.

33. 22. The aerosol delivery device of claim 21, further comprising a puff-activated switch that activates the flow of electrical current from the power source to the heating element.

34. 22. The aerosol delivery device of claim 21, further comprising a manual push button that activates the flow of electrical current from the power source to the heating element.

35. 22. The aerosol delivery device of claim 21, wherein the power source comprises a battery.

36. 22. The aerosol delivery device of claim 21, further comprising a current regulating component configured to regulate a previously initiated flow of current from the power source to the heating element.

37. 22. The aerosol delivery device of claim 21, wherein the current regulation component comprises a time reference component.

38. 22. The aerosol delivery device of claim 21, wherein the current regulating component is configured to terminate current flow to the electrical heating element once a defined temperature is achieved.

39. 22. The aerosol delivery device of claim 21, wherein the current regulating component is configured to cycle the current to the electric heating element off and on once a specified temperature is achieved to maintain the specified temperature for a specified period of time.

40. 22. The aerosol delivery device of claim 21, wherein the aerosol source member defines an exterior surface, and wherein fluid passages along the length of the aerosol source member are substantially limited to passages within the aerosol source member.

41. 1. An aerosol delivery device configured to generate an inhalable substance, the aerosol delivery device comprising: a substantially tubular control body having a closed distal end and an open engagement end; A heating element; a control component disposed within the control body and configured to control the heating member; a power source disposed within the control body and configured to provide power to the control components; a substantially cylindrical removable aerosol source member containing an inhalable substance medium; Equipped with an aerosol source member configured to be inserted into the engagement end of the control body and defining a heated end and a mouth end, the heated end configured to be positioned adjacent to the heating member when inserted into the control body, and the mouth end configured to extend beyond the engagement end of the control body; a heating member configured to provide heat to at least a portion of the aerosol source member to form an inhalable aerosol, the aerosol configured to be drawn through the aerosol source member in response to suction applied to the mouth end of the inhalable substance medium; An aerosol delivery device, wherein the heating member comprises a plurality of heater protrusions extending into at least a portion of the engagement end of the control body.

42. 42. The aerosol delivery device of claim 41, wherein at least a portion of the heating element is in direct contact with the inhalable substance medium.

43. 42. The aerosol delivery device of claim 41, wherein the control component is configured to provide an operating current in the range of about 2.5 amps to about 10 amps or between the range of about 2.5 amps to about 10 amps.

44. 42. The aerosol delivery device of claim 41, wherein the control component is configured to provide a power efficiency of up to about 96%.

45. 42. The aerosol delivery device of claim 41, wherein the control component is configured to establish a temperature arrival time of less than about 10 seconds.

46. 42. The aerosol delivery device of claim 41, wherein the inhalable substance vehicle comprises tobacco or a tobacco-derived material.

47. 42. The aerosol delivery device of claim 41, wherein at least a portion of the inhalable substance medium comprises at least one of tobacco-containing beads, shredded tobacco, shredded tobacco, reconstituted tobacco material pieces, and cast tobacco sheets.

48. 42. The aerosol delivery device of claim 41, wherein at least a portion of the inhalable substance medium comprises an extruded structure comprising tobacco or tobacco-derived material.

49. 42. The aerosol delivery device of claim 41, wherein the aerosol source member comprises an overwrap comprising a paper material that surrounds the inhalable substance medium.

50. 42. The aerosol delivery device of claim 41, wherein the aerosol source member includes a filter material positioned proximate the mouth end of the aerosol source member.

51. 42. The aerosol delivery device of claim 41, wherein the mouth end of the aerosol source member is partially occluded.

52. 42. The aerosol delivery device of claim 41, wherein the control body further comprises one or more ventilation openings configured to allow ambient air to enter the control body.

53. 42. The aerosol delivery device of claim 41, further comprising a puff-activated switch that activates the flow of electrical current from the power source to the heating element.

54. 42. The aerosol delivery device of claim 41, further comprising a manual push button that activates the flow of electrical current from the power source to the heating element.

55. 42. The aerosol delivery device of claim 41, wherein the power source comprises a battery.

56. 42. The aerosol delivery device of claim 41, further comprising a current regulating component configured to regulate a previously initiated flow of current from the power source to the heating element.

57. 42. The aerosol delivery device of claim 41, wherein the current regulation component comprises a time reference component.

58. 42. The aerosol delivery device of claim 41, wherein the current regulating component is configured to terminate current flow to the electrical heating element once a defined temperature is achieved.

59. 42. The aerosol delivery device of claim 41, wherein the current regulating component is configured to cycle the current to the electric heating element off and on once a specified temperature is achieved to maintain the specified temperature for a specified period of time.

60. 42. The aerosol delivery device of claim 41, wherein the aerosol source member defines an outer surface, and wherein fluid passages along the length of the aerosol source member are substantially limited to passages within the aerosol source member.

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