Aerosol Delivery Device

The aerosol delivery device addresses the need for non-combustible smoking alternatives by using induction heating and a tubular member with inward stops to generate aerosols from non-tobacco materials, offering a safer and efficient aerosol generation method.

JP7814520B2Active Publication Date: 2026-02-16NICOVENTURES TRADING LTD
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Patent Information

Application Number
JP2024537456
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-12-22
Filing Date
2022-12-19
Publication Date
2026-02-16
Estimated Expiration
2042-12-19

AI Technical Summary

Technical Problem

Existing smoking articles that burn tobacco produce harmful combustion byproducts, and there is a need for alternatives that release compounds without combustion.

Method used

An aerosol delivery device with a tubular member featuring an inwardly protruding stop to limit insertion of an aerosol-generating article, using induction heating to generate aerosols from non-combustible materials like tobacco or non-tobacco products, which includes a heating chamber and a susceptor heated by a magnetic field.

Benefits of technology

The device efficiently generates aerosols from non-combustible materials, providing a safer alternative to traditional smoking by avoiding combustion, with faster heating and flexible construction due to induction heating.

✦ Generated by Eureka AI based on patent content.

Smart Images

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Abstract

An aerosol delivery device (5) is described. The device generates an aerosol from an aerosol-generating material. The device has a tubular member (30) defining a heating chamber (28). The heating chamber is configured to receive an article (10) containing the aerosol-generating material. The tubular member has an inwardly projecting stop (38) for limiting insertion of the article. An aerosol generation system having an article receivable in the heating chamber of the device is also described.
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Description

[Technical Field]

[0001] The present invention relates to an aerosol delivery device for generating an aerosol from an aerosol-forming material. The present invention also relates to an aerosol delivery system including the aerosol delivery device and an article including the aerosol-forming material. [Background technology]

[0002] Smoking articles, such as cigarettes and cigars, burn tobacco to produce tobacco smoke during use. Attempts have been made to provide alternatives to these tobacco-burning articles by creating products that release compounds without combustion. Examples of such products include heating devices that release compounds by heating, rather than burning, a material. The material can be, for example, tobacco or other non-tobacco products, which may or may not contain nicotine. Summary of the Invention

[0003] According to some embodiments described herein, there is provided an aerosol delivery device for generating an aerosol from an aerosol-generating material, the aerosol delivery device comprising a tubular member defining a heating chamber configured to receive at least a portion of an article containing the aerosol-generating material, the tubular member comprising an inwardly protruding stop for limiting insertion of at least a portion of the article.

[0004] The inwardly projecting stop may be at the end of the tubular member.

[0005] The tubular member may have a first open end and a second open end, the first end defining an opening through which at least a portion of the article is inserted into the heating chamber. The tubular member may be elongated.

[0006] The end portion may define a second open end. The inwardly projecting stop may be at the second open end.

[0007] The device includes a rim at the second open end, and the locking portion is inserted axially through the rim at the second open end.

[0008] The tubular member may include a sidewall. The locking portion may be on or at an inner surface of the sidewall. The locking portion may project inward from the sidewall of the tubular member substantially perpendicular to the sidewall. The locking portion may be formed from the sidewall of the tubular member. The sidewall and the locking portion may be formed as an integral component. The locking portion may be formed from a bent notch proximal to the second open end.

[0009] The stop may include a flange, shoulder, step, tab, or indent.

[0010] The stop may comprise a continuous projection extending circumferentially around the inside of the tubular member.

[0011] The stop may be one of a plurality of stops. The plurality of stops may include a plurality of discontinuous stops. Adjacent stops may be circumferentially spaced apart from one another.

[0012] The tubular member may include first and second flat inner surfaces, each flat surface including a stop.

[0013] The device may include a base for enclosing the heating chamber. The base may define an end wall. The stop may be spaced from the end wall. The base may include an air outlet configured to provide an air path. The base may define a cup.

[0014] The tubular member may be formed from a material that is heatable by the penetration of a magnetic field. The tubular member may be a heating element.

[0015] According to some embodiments of the present disclosure, there is provided a susceptor for an aerosol generating device, the susceptor having a tubular sidewall, the susceptor having a first open end for receiving at least a portion of an article containing an aerosol-generating material, a second open end, and an inwardly depending stop at the second open end for limiting insertion of at least a portion of the article.

[0016] According to some embodiments of the present specification, there is provided a system comprising an aerosol generating device of any preceding claim and an article containing an aerosol generating material, wherein the article can be at least partially received within a heating chamber of the aerosol generating device, and axial insertion of the article is limited by a locking portion.

[0017] The devices of these embodiments may include one, more, or all of the features described above, as appropriate.

[0018] Embodiments will now be described, by way of example only, with reference to the accompanying drawings, in which: [Brief explanation of the drawings]

[0019] [Figure 1] 1 shows a schematic side view of an aerosol delivery device. [Figure 2] 2 shows a longitudinal cross-sectional view of the aerosol generator of the aerosol delivery device of FIG. 1. [Figure 3] 2 shows a tubular member defining the heating chamber of the aerosol generator of the device of FIG. 1. [Figure 4] 4 shows a schematic cross-sectional view of a portion of the tubular member and base of FIG. 3; [Figure 5] 4 shows a schematic cross-sectional view of a portion of the tubular member and base of FIG. 3 with an article received therein; DETAILED DESCRIPTION OF THE INVENTION

[0020] As used herein, the term "aerosol-forming material" refers to a material capable of generating an aerosol when activated, for example, by heating, irradiation, or any other method. Aerosol-forming materials can be in the form of, for example, a solid, liquid, or gel, and may or may not contain active substances and / or flavorings. Aerosol-forming materials can include any plant-derived material, such as tobacco-containing materials, including one or more of tobacco, tobacco derivatives, expanded tobacco, reconstituted tobacco, or tobacco substitutes. Aerosol-forming materials can also include other, non-tobacco products, which may or may not contain nicotine, depending on the product. Aerosol-forming materials can be in the form of, for example, a solid, liquid, gel, or wax. Aerosol-forming materials can also be, for example, a combination or blend of materials. Aerosol-forming materials are sometimes known as "smoking materials."

[0021] The aerosol-forming material may include a binder and an aerosol-forming agent. Optionally, an active agent and / or a filler may also be present. Optionally, a solvent, such as water, may also be present, and one or more other components of the aerosol-forming material may or may not be soluble in the solvent. In some embodiments, the aerosol-forming material is substantially free of plant material. In some embodiments, the aerosol-forming material is substantially free of tobacco.

[0022] The aerosol-generating material may include or be an "amorphous solid." An amorphous solid may be a "monolithic solid." In some embodiments, the amorphous solid may be a dry gel. An amorphous solid is a solid material that can hold some fluid, such as a liquid, within it. In some embodiments, the aerosol-generating material may include, for example, about 50%, 60%, or 70% amorphous solid by weight to about 90%, 95%, or 100% amorphous solid by weight.

[0023] The aerosol-generating material may comprise an aerosol-generating film. The aerosol-generating film may comprise or be a sheet, which may optionally be shredded to form a shredded sheet. The aerosol-generating sheet or shredded sheet may be substantially free of tobacco.

[0024] According to the present disclosure, a "non-combustible" aerosol delivery system is one in which the aerosol-generating components of the aerosol delivery system (or components thereof) are not combusted or burned to facilitate delivery of at least one substance to a user.

[0025] In some embodiments, the delivery system is a non-combustible aerosol delivery system, such as a powered non-combustible aerosol delivery system.

[0026] In some embodiments, the non-combustion aerosol delivery system is an electronic cigarette, also known as a vaping device or electronic nicotine delivery system (END), although it should be noted that the presence of nicotine in the aerosol-generating material is not a requirement.

[0027] In some embodiments, the non-combustion aerosol delivery system is an aerosol-generating material heating system, also known as a non-combustion heating system. An example of such a system is a tobacco heating system.

[0028] In some embodiments, the non-combustion aerosol delivery system is a mixing system for generating an aerosol using a combination of aerosol-forming materials, and one or more of the aerosol-forming materials can be heated. Each of the aerosol-forming materials can be, for example, in solid, liquid, or gel form, and may or may not contain nicotine. In some embodiments, the mixing system includes a liquid or gel aerosol-forming material and a solid aerosol-forming material. The solid aerosol-forming material can include, for example, tobacco or a non-tobacco product.

[0029] Typically, a non-combustible aerosol delivery system can include a non-combustible aerosol delivery device and consumables for use with the non-combustible aerosol delivery system.

[0030] In some embodiments, the present disclosure relates to consumables, sometimes referred to as articles throughout this disclosure, that include aerosol-generating materials and are configured for use with non-combustible aerosol delivery devices.

[0031] In some embodiments, a non-combustion aerosol delivery system, e.g., a non-combustion aerosol delivery device of a non-combustion aerosol delivery system, can include an energy source and a controller. The energy source can be, for example, a power source or a heat source. In some embodiments, the heat source includes a carbon substrate that can be excited to dissipate power in the form of heat to an aerosol-generating material or a heat transfer material in proximity to the heat source.

[0032] In some embodiments, the non-combustible aerosol delivery system may include an area for receiving a consumable, an aerosol generator, an aerosol-generating area, a housing, a mouthpiece, a filter, and / or an aerosol modifier.

[0033] In some embodiments, consumables for use with non-combustible aerosol delivery devices may include an aerosol-generating material, an aerosol-generating material storage region, an aerosol-generating material transfer component, an aerosol generator, an aerosol-generating region, a housing, a wrapper, a filter, a mouthpiece, and / or an aerosol modifier.

[0034] The aerosol-generating device can accept an article comprising an aerosol-generating material for heating. An "article" in this context is a component that, in use, includes or contains the aerosol-generating material to be heated to volatilize the aerosol-generating material, and optionally includes or contains other components. A user can insert the article into the aerosol-generating device, after which the aerosol delivery device is heated to generate an aerosol, which is subsequently inhaled by the user. The article can be, for example, of a predetermined or specific size configured to be placed within a heating chamber of a device sized to accept the article.

[0035] 1 shows an aerosol delivery device 5. The device 5 can be part of a system 4 for generating an aerosol from an aerosol-generating material. The system includes a replaceable article 10 that includes the aerosol-generating material. The device 5 can be used to heat the replaceable article 10 that includes the aerosol-generating material to generate an aerosol or other inhalable substance that can be inhaled by a user of the device 5.

[0036] The device 5 comprises a housing 20 that encloses and contains the various components of the device 5. The housing 20 is elongated. The device 5 has an opening 22 at one end through which the item 10 can be inserted for heating by the device 5. The item 10 may be fully or partially inserted into the device 5 for heating by the device 5.

[0037] Device 5 may include a user-actuable control element 26, such as a button or switch, that, when activated, for example, when pressed, activates device 5. For example, a user may activate device 5 by pressing button 26.

[0038] 2, device 5 includes an aerosol generator 8. Aerosol generator 8 defines a longitudinal axis 15 along which article 10 may extend when inserted into device 5. The opening is aligned with the longitudinal axis.

[0039] The aerosol generator 8 includes various components for generating an aerosol from the received article. In one example, the article 10 is heated to generate an aerosol by a heating assembly 24. An opening 22 is located at one end, through which the article can be inserted for heating. During use, the article 10 can be fully or partially inserted into the device and heated by one or more components in the device. The apparatus includes the heating assembly 24, a controller, and a power source (not shown). The heating assembly 24 is configured to heat the aerosol-forming material of the article 10 inserted into the device 5, thereby generating an aerosol from the aerosol-forming material. An energy source provides power to the heating assembly 24, which converts the provided electrical energy into thermal energy for heating the aerosol-forming material. The energy source can be, for example, a battery, such as a rechargeable or non-rechargeable battery. Examples of suitable batteries include, for example, lithium batteries (e.g., lithium-ion batteries), nickel batteries (e.g., nickel-cadmium batteries), and alkaline batteries. The energy source may be electrically coupled to heating assembly 24 to provide power under the control of the controller when it is necessary to heat the aerosol-generating material. The control circuitry may be configured to activate and deactivate heating assembly 24 based on a user operating control element 26. For example, the controller may activate heating assembly 24 in response to a user operating button 26.

[0040] The end of device 5 closest to opening 22 may be known as proximal end 52 of device 5, as it is closest to the user's mouth during use. During use, a user inserts article 110 into opening 22 and operates user control 22 to initiate heating of the aerosol-generating material, utilizing the aerosol generated within device 5. This causes the aerosol to flow through article 110 along the flow path toward proximal end 52 of device 5.

[0041] The other end of the device furthest from opening 22 may be known as the distal end 54 of device 5, as it is the end furthest from the user's mouth in use. The terms proximal and distal, when applied to features of device 5, are described by reference to the relative positions of such features with respect to one another in the proximal-distal direction along axis 15.

[0042] The aerosol generator 8 comprises an induction heater that includes a magnetic field generator. The magnetic field generator comprises an inductor coil 29. The aerosol generator 8 comprises a heating element. The heating element is also known as a susceptor.

[0043] The susceptor is a material that can be heated by the penetration of a varying magnetic field, such as an alternating magnetic field. The susceptor may be a conductive material, such that the penetration of the varying magnetic field into the conductive material results in induction heating of the heating material. The heating material may be a magnetic material, such that the penetration of the varying magnetic field into the magnetic material results in magnetic hysteresis heating of the heating material. The susceptor may be both conductive and magnetic, such that the susceptor can be heated by both heating mechanisms. A device configured to generate a varying magnetic field is referred to herein as a magnetic field generator.

[0044] The heating assembly 24 includes various components for heating the aerosol-generating material of the article 10 via an induction heating process. Induction heating is the process of heating an electrically conductive heating element via electromagnetic induction. In this embodiment, the heating element is a tubular member 30. The induction heating assembly can include an induction element, e.g., one or more inductor coils 29, serving as the inductor coils, and a device for passing a varying current, such as an alternating current, through the induction element. The varying current in the induction element generates a varying magnetic field. The varying magnetic field penetrates a susceptor (heating element) appropriately positioned relative to the induction element, generating eddy currents within the susceptor. The susceptor has an electrical resistance to eddy currents, and therefore, the flow of eddy currents against this resistance heats the susceptor via Joule heating. If the susceptor includes a ferromagnetic material, such as iron, nickel, or cobalt, heat can also be generated by magnetic hysteresis losses in the susceptor, i.e., by varying orientation of magnetic dipoles in the magnetic material as a result of alignment with various magnetic fields. In comparison to heating by conduction, for example, in induction heating, heat is generated within the susceptor, allowing for faster heating, and furthermore, there is no need for physical contact between the inductive element and the susceptor, allowing for greater flexibility in construction and application.

[0045] The heating assembly 24 comprises a tubular member 30. The tubular member defines a heating chamber 28. The tubular member 30 serves as a receptacle for receiving at least a portion of the article 10. The tubular member 30 is a heating element configured to heat the heating chamber 28. In other embodiments, the heating element and the tubular member 30 may be separate components. Such a heating element extends axially within the tubular member 30. The heating element in such embodiments protrudes into the heating chamber 28. The heating element protrudes from a distal end into the heating zone. The heating element stands upright in the receptacle.

[0046] The tubular member 30, which serves as a heating element, is heatable by the penetration of a varying magnetic field. The tubular member 30 comprises an electrically conductive material suitable for heating by electromagnetic induction. For example, the tubular member 30 may be formed from carbon steel. It will be appreciated that other suitable materials may be used, such as ferromagnetic materials such as iron, nickel, or cobalt.

[0047] The inductor coil is a helical coil, although other configurations are contemplated. In embodiments, the number of inductor coils varies. In embodiments, inductor coil 29 includes two or more coils. In embodiments, the two or more coils may be disposed adjacent to one another and coaxially aligned along axis 15.

[0048] In some examples, during use, the inductor coil is configured to heat the heating element to a temperature of about 200°C to about 350°C, such as about 240°C to about 300°C, or about 250°C to about 280°C.

[0049] The inductor coil 29 may be disposed external to the heating chamber 28. The inductor coil 29 surrounds the heating chamber 28. The inductor coil 29 is configured to generate a varying magnetic field that penetrates the tubular member 30. The inductor coil 29 is disposed coaxially with the heating chamber 28.

[0050] In use, a power supply supplies alternating current to the inductor coil 29. The alternating current in the inductor coil 29 generates a varying magnetic flux adjacent to the heating element. The magnetic flux generates a current in the heating element, which in turn causes the heating element to heat.

[0051] Heating chamber 28 is configured and dimensioned to receive article 10 to be heated. Heating chamber 28 defines a heating zone. In this example, article 10 is generally cylindrical, and heating chamber 28 is dimensioned to receive article 10. Sealing member 60 holds heating chamber 28 in place within the device. Sealing member 60 provides a seal between tubular member 30 and the remainder of device 5.

[0052] The receptacle includes a tubular member 30 and a base 58. In this embodiment, the tubular member 30 is the heating element. The heating chamber 28 is defined by a sidewall 32 and a base wall of the tubular member 30. The base wall is formed by the base 58. The sidewall 32 of the tubular member 30 extends axially into the heating chamber 28 and upstandingly from the base 58. The tubular member is elongated. The base 58 is at the distal end 54 of the device 5. In this embodiment, the base 58 and the tubular member 30 are separate components. In other embodiments, the tubular member and the base may be a unitary component that defines the heating chamber 28. The tubular member 30 and the base 58 may be made of different materials or the same material. The base 58 is attached to the distal end 54 of the tubular member 30 to form the heating chamber 28. The attachment between the base 58 and the tubular member 30 may be such that air can flow into the heating chamber, forming a gap between the sidewall 32 and the base 58. The base 58 may include an air outlet configured to provide an air path into the heating chamber 28.

[0053] The sidewall 32 of the tubular member 30 extends axially within the device from a base 58 at the distal end 54 to an opening 22 in the device 5 at the proximal end 52. The heating chamber 28 is open at the proximal end 52 to receive the article 10 through the opening 22 in the device 5. The tubular member 30 extends along, around, and substantially coaxial with the longitudinal axis 15 of the device 5.

[0054] FIG. 3 illustrates a tubular member 30. The tubular member 30 has a first open end 40 and a second open end 42. The first end 40 defines an opening through which the article 10 is inserted into the heating chamber 28. The sidewall 32 of the tubular member 30 has at least one inner surface 34. In the embodiment of FIG. 3, the tubular member 30 has four inner surfaces 34. The inner surfaces may be flat or may have a non-flat shape, such as an arcuate shape. One or more of the surfaces may be convex. In other embodiments, the tubular member may have a circular, rectangular, or polygonal cross-section. The tubular member 30 may have a non-constant diameter around the circumference of the sidewall 32, perpendicular to its axis. In other embodiments, the tubular member 30 may have a constant diameter around the circumference of the sidewall 32.

[0055] The tubular member 30 has inwardly protruding stops 38 at the second end 42. The stops 38 are on the inner surface 34 of the tubular member 30. In this embodiment, the tubular member includes four stops 38, with each inner surface 34 having a corresponding stop 38. The stops 38 form a stop configuration. In other embodiments, the number of stops may correspond to the number of inner surfaces. In other embodiments, the number of stops may be less than the number of inner surfaces. In other embodiments, the number of stops may be greater than the number of inner surfaces. The stops 38 protrude away from the inner surface 34 into the heating chamber 28. The stops 38 may protrude inward from the inner surface 34 of the tubular member 30, substantially perpendicular to the inner surface 34.

[0056] The sidewall 32 of the tubular member 30 terminates at an end wall or edge 44. The latch 38 is inserted axially from the edge 44. The latch 38 axially limits the insertion of the item 10 into the heating chamber 28 along the axis 15. When the item 10 is inserted into the heating chamber 28, the item does not protrude beyond the edge 44 and out the second end 42 of the tubular member 30. In this embodiment, the latch 38 is formed from a bent notch proximal to the second end 42. The notch is bent to form a tab that protrudes into the heating chamber 28 and contacts the item 10 in use. The latch 38 is formed from the sidewall of the tubular member. The latch 38 forms an integral component with the tubular member 30.

[0057] Each stop 38 is circumferentially spaced from its adjacent stop 38. The stops 38 are discontinuous. The tubular member 30 of FIG. 3 has four flat inner surfaces 34, each with a stop 38. In other embodiments, the tubular member may have a different number of inner surfaces. The surfaces may be flat or non-flat. Each inner surface has a corresponding stop depending inwardly. The stops may be diametrically opposed to one another.

[0058] The stops 38 depend inwardly such that at the locations of the stops 38, the diameter of the tubular member 30 is partially narrowed so that upon insertion of the article 10, the stops 38 contact the article to axially limit insertion of the article 10. The diameter of the tubular member 30 at diametrically opposed stops 38 is less than the diameter of the article 10 to be inserted.

[0059] In other embodiments, the stop may be a flange, shoulder, step, tab, or indent located at or proximate to the second end. The stop may be formed from the tubular member 30. The stop may be formed separately from the tubular member and then attached. The stop may form an integral component with the tubular member.

[0060] FIG. 4 shows a cross-sectional view of the second end 42 of the tubular member 30 with a base 58 attached thereto. The base 58 closes the heating chamber 28. The base 58 defines an end wall, and the stop 38 is axially spaced from the end wall. Air flows between the tubular member 30 and the article 10 up to the base 58. The airflow then passes to the distal end of the article 10. The stop 38 separates the distal end of the article 10 from the base 58, providing an airflow path. In an embodiment, the base 58 has an air inlet configured to provide an air path through the aerosol generator 8 and the device 5. The base 58 is attached around the outer edge of the sidewall 32 of the tubular member 30. The base 58 is spaced from the article 10 by the stop. The base 58 overlaps the tubular member 30.

[0061] FIG. 5 shows a cross-sectional view of the second end 42 of the tubular member 30 with the base 58 attached and the item 10 inserted. The item 10 is inserted through the tubular member 30 and into the heating chamber 28 so that the item 10 contacts the inner surface 34 of the tubular member 30. The inner surface 34 positions the item 10 concentrically within the tubular member 30 and thus within the heating chamber 28. The inner surface 34 interacts with the item 10, for example, to provide a press fit with the item 10 within the heating chamber 28. During insertion of the item 10 into the heating chamber 28, the stop 38 contacts the item 10 and limits the insertion of the item 10 into the tubular member 30. This provides tactile feedback to the user as to when the item 10 is fully inserted. This also prevents the user from inserting the item 10 too deeply, thus preventing damage to the item 10 or the heating chamber 28. The stop 38 ensures that the item 10 is properly axially positioned within the heating chamber 28. The article 10 can never be inserted axially further than the lip 44 at the second end 42 due to the presence of the stop 38 .

[0062] In some embodiments, such as those in Figures 3-5, the locks are a plurality of discontinuous locks. In other embodiments, the locks may be continuous. A continuous lock comprises a continuous projection that extends circumferentially around the inside of the tubular member 30. The continuous lock extends inward from the inner surface of the tubular member 30 and limits axial insertion of the article. The continuous lock may have a varying radial width around the circumference of the lock, or may have a constant radial width.

[0063] In the embodiments described above, the heating element is an induction heating element. In some embodiments, other types of heating elements, such as resistive heating, are used. The device configuration is generally as described above and will not be described in detail. In such an arrangement, the heating assembly 24 includes a resistive heat generator including components for heating the heating element by a resistive heating process. In this case, an electric current is applied directly to the resistive heating element, and the resulting current flow in the heating element heats the heating element by Joule heating. The resistive heating element includes a resistive material configured to generate heat when an appropriate electric current passes through it, and the heating assembly includes electrical contacts for supplying the electric current to the resistive material.

[0064] In embodiments, the heating element forms the resistive heating component itself, hi embodiments, the resistive heating component transfers heat to the heating element, for example, by conduction.

[0065] The above-described embodiments are to be understood as illustrative examples of the present invention. Further embodiments of the present invention are envisioned. It should be understood that any feature described in connection with any one embodiment may be used alone or in combination with other described features, and may also be used in combination with one or more features of any other embodiment or any combination of any other embodiments. Furthermore, equivalents and modifications not described above may also be employed without departing from the scope of the present invention, which is defined in the appended claims.

Claims

1. 1. An aerosol delivery device for generating an aerosol from an aerosol-generating material, comprising: a tubular member defining a heating chamber configured to receive at least a portion of an article containing an aerosol-forming material; the tubular member includes an inwardly projecting stop for limiting insertion of at least a portion of the article; the tubular member includes a sidewall; The locking portion is formed from the side wall. Aerosol delivery device.

2. The aerosol delivery device of claim 1 , wherein the inwardly protruding stop is at an end of the tubular member.

3. 2. The aerosol delivery device of claim 1, wherein the tubular member has a first open end and a second open end, the first open end defining an opening through which at least a portion of the article is inserted into the heating chamber.

4. An aerosol delivery device as described in claim 3, wherein an end of the tubular member defines the second open end.

5. The aerosol delivery device of claim 3 , wherein the inwardly protruding stop is at the second open end.

6. The aerosol delivery device of claim 3 , further comprising a lip at the second open end, and the stop is inserted axially through the lip at the second open end.

7. The aerosol delivery device of claim 1 , wherein the stop is on or at the inner surface of the side wall.

8. The aerosol delivery device of claim 1 , wherein the stop projects inward from the side wall of the tubular member substantially perpendicular to the side wall.

9. The aerosol delivery device of claim 3 , wherein the stop is formed from a bent notch proximal to the second open end.

10. The aerosol delivery device of claim 1 , wherein the stop is one of a plurality of stops.

11. The aerosol delivery device of claim 10 , wherein the plurality of stops comprises a plurality of discontinuous stops.

12. The aerosol delivery device of claim 1 , comprising a base for closing the heating chamber.

13. The aerosol delivery device of claim 12 , wherein the base defines an end wall.

14. The aerosol delivery device of claim 13 , wherein the stop is spaced from the end wall.

15. The aerosol delivery device of claim 12 , wherein the base comprises an air outlet configured to provide an air path.

16. The aerosol delivery device of claim 1 , wherein the tubular member is formed from a material that can be heated by the penetration of a magnetic field.

17. A susceptor for an aerosol delivery device, comprising a tubular sidewall, the susceptor having a first open end for receiving at least a portion of an article containing an aerosol-generating material, a second open end, and an inwardly depending stop at the second open end for limiting insertion of at least a portion of the article, the stop being formed from the tubular sidewall.

18. 10. A system comprising the aerosol delivery device of claim 1 and an article containing an aerosol-generating material, wherein the article can be at least partially received within the heating chamber of the aerosol delivery device, and axial insertion of the article is limited by the locking portion.

Citation Information

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