Apparatus for heating aerosolizable materials

The apparatus addresses the need for non-combustible aerosol delivery by using a high thermal conductivity heat pipe and susceptor to efficiently volatilize aerosolizable materials, ensuring consistent aerosol production.

JP7746392B2Active Publication Date: 2025-09-30NICOVENTURES TRADING LTD
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Patent Information

Application Number
JP2023547222
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-02-10
Filing Date
2022-02-07
Publication Date
2025-09-30
Estimated Expiration
2042-02-07

AI Technical Summary

Technical Problem

Existing smoking articles that burn tobacco produce harmful smoke and there is a need for alternatives that release compounds in a non-combustible manner.

Method used

An apparatus with a heating assembly that includes a heat pipe with high thermal conductivity, configured to volatilize aerosolizable materials using induction or resistive heating, and a susceptor that heats up via a varying magnetic field, allowing for efficient and uniform heating of aerosol-generating materials.

Benefits of technology

The apparatus effectively volatilizes components of aerosolizable materials without combustion, providing a consistent and efficient aerosol delivery system.

✦ Generated by Eureka AI based on patent content.

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Abstract

An apparatus arranged to heat smokable material to volatilize at least one component of the smokable material is described. The apparatus has a heating assembly (201) comprising a heating cavity (211) arranged to receive at least a portion of an article including an aerosolizable material. The apparatus also has a heating element (220) arranged to provide heat to the heating cavity. The heating element comprises a heat pipe (230).
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Description

[Technical Field]

[0001] The present invention relates to an apparatus for heating an aerosolizable material to volatilize at least one component of the aerosolizable material. The present invention also relates to an elongated heating element for use in the apparatus for heating an aerosolizable material, an aerosol delivery device, and an aerosol delivery system comprising an article including the aerosol delivery device and an aerosol-generating material.

[0002] Smoking articles such as cigarettes, cigars, and the like burn tobacco during use to produce tobacco smoke. Attempts have been made to provide alternatives to these tobacco-burning articles by creating products that release compounds in a non-combustible manner. Examples of such products are heating devices that release compounds by heating a material in a non-combustible manner. The material may be, for example, tobacco or other non-tobacco products, and may or may not contain nicotine. Overview

[0003] According to one aspect, an apparatus for heating an aerosolizable material to volatilize at least one component of the aerosolizable material is provided, the apparatus comprising a heating assembly, the heating assembly comprising: a heating cavity arranged to receive at least a portion of an article including the aerosolizable material; a heating element arranged to provide heat to the heating cavity; and a heating configuration configured to generate heat to heat the heating element, the heating element comprising a heat pipe.

[0004] The heating element may protrude into the heating cavity.

[0005] The heating element may have an effective thermal conductivity of greater than 3000 W / mk.

[0006] The heat pipe may protrude into the heating cavity.

[0007] The heat pipe may be an elongated member.

[0008] The heat pipe may have a jacket and a working fluid. The heat pipe may have a wick.

[0009] The heat pipe may be configured to be at least partially received in an article that includes an aerosolizable material.

[0010] The heating element may have a sharp edge or tip at a free end. The heating element may be a pin or a blade. The heating element may be configured to extend into an article received by the heating region.

[0011] The heat pipe may be configured to distribute heat along the heating element.

[0012] The heat pipe may be arranged to transfer heat outside the heating cavity into the heating cavity.

[0013] The heating arrangement may be an inductive heating arrangement. The heating arrangement may be a resistive heating arrangement.

[0014] The heating arrangement may be configured to apply heat to one end of the heat pipe.

[0015] The heating arrangement may at least partially surround a portion of the heat pipe.The heating arrangement may surround a portion of the heat pipe.

[0016] A portion of the heat pipe may extend away from the heating element.

[0017] The apparatus may include a portion of the heat pipe that extends outside the heating cavity.

[0018] The heating assembly may include an end wall defining a closed end of the heating cavity, and the heat pipe may extend beyond the end wall.

[0019] The heat pipe may extend through the end wall, and the heating element may form at least a portion of the end wall.

[0020] The heating arrangement may be arranged to heat a portion of the heat pipe that extends outside the heating cavity.

[0021] The apparatus may include a collar configured to heat the heat pipe.

[0022] The collar may extend around a portion of the heat pipe. The collar may extend around one end of the heat pipe. The collar may be tubular. The collar may be a foil layer. The collar may be a mesh. The susceptor may be a wire formed as a winding. The wire may have a serpentine configuration. The collar may be a solid member.

[0023] The collar may include a heating material that is heatable by the penetration of a varying magnetic field.

[0024] The collar may be of a ferrous material.

[0025] The heat pipe may be a non-ferrous material. The collar may conductively heat the heat pipe. The heat pipe may be indirectly heated by a heating element.

[0026] The heat pipe may include a heating material that is heatable by the penetration of a varying magnetic field.

[0027] The heat pipe may be of ferrous material. The heat pipe may be heated directly by a heating arrangement.

[0028] The heating arrangement may comprise a magnetic field generator including an inductor coil configured to generate a varying magnetic field.

[0029] The inductor coil may be a spiral inductor coil.

[0030] The inductor coil may be axially offset from the heating chamber.

[0031] The apparatus may include a receptacle defining a heating chamber. The inductor coil may not overlap the receptacle.

[0032] The receptacle may include an end wall defining a closed end of the heating region, and the end wall may be between the heating region and the inductor coil.

[0033] The heat pipe may define a longitudinal axis, and the inductor coil may be axially spaced from the heating chamber.

[0034] The inductor coil may be a spiral inductor coil. The inductor coil may be a planar coil.

[0035] The inductor coil may overlie the heating chamber.

[0036] The heating arrangement may be a resistive heating arrangement. The collar may be a resistive heater.

[0037] During use, the heating arrangement may be configured to heat the heat pipe to a temperature of from about 200°C to about 350°C, such as from about 240°C to about 300°C or from about 250°C to about 280°C.

[0038] A heat pipe may extend between the heating arrangement and the heating chamber.

[0039] The heat pipe may be tubular.

[0040] The heat pipe may be a flat heat pipe.

[0041] The inductor coil may be supported on a mount.

[0042] The inductor coil may comprise a wire. The inductor coil may comprise a conductive film.

[0043] The elongated heating element may define a longitudinal axis, and the inductor coil may be axially spaced from the heating region.

[0044] The heat pipes may stand upright from the base.

[0045] The maximum width of the spiral inductor coil may be less than the maximum width of the heating region.

[0046] The inner diameter of the helical inductor coil may be smaller than the outer diameter of the heating region.

[0047] The maximum outer width of the helical inductor coil may be less than the maximum outer width of the heating region.

[0048] The maximum outer diameter of the helical inductor coil may be less than the maximum outer diameter of the receptacle.

[0049] The heating element may include a first portion exposed to the heating zone and a second portion outside the heating zone, and the helical inductor coil may surround the second portion.

[0050] The first and second portions may be integrally formed. As used herein, the term "integrally formed" is intended to mean that their features are inseparable.

[0051] The second portion may be fluidly isolated from the heating region.

[0052] The first portion may be a heating portion, the second portion may be a base portion, and the heating portion and the base portion may be coaxial.

[0053] The heating portion and the base portion may be thermally conductively connected. As used herein, the term "conductively connected" does not necessarily mean that two features are directly connected; such a construction may include one or more additional features between the two features. The heating portion and the base portion may be directly thermally conductively connected. The heating portion and the base portion may be indirectly thermally conductively connected, for example, by an intermediate member. As used herein, the term "conductively connected" is intended to mean the primary means of heat transfer between the heating portion and the base portion.

[0054] The heat pipe may be less susceptible to heating due to the intrusion of fluctuating magnetic fields than the collar.

[0055] The heating element may be formed as a unitary component, i.e., the features are formed together such that no joints are defined between them.

[0056] According to one aspect, an apparatus is provided for heating an aerosolizable material to volatilize at least one component of the aerosolizable material, the apparatus comprising: a heating assembly including a heating cavity arranged to receive at least a portion of an article including the aerosolizable material; a heating element arranged to provide heat to the heating cavity; and a heating configuration configured to generate heat to heat the heating element, wherein the heating element has an effective thermal conductivity greater than 3000 W / mk.

[0057] The thermal conductivity may be greater than 4000 W / mK. The thermal conductivity may be greater than 5000 W / mK.

[0058] According to one aspect, an apparatus for heating an aerosolizable material to volatilize at least one component of the aerosolizable material is provided, the apparatus comprising a heating assembly, the heating assembly comprising a heating cavity positioned to receive at least a portion of an article including the aerosolizable material, and a heating element positioned to provide heat to the heating cavity, the heating element having an effective thermal conductivity of 3000 to 100,000 W / mk.

[0059] The heating element may have an effective thermal conductivity of 4000 to 10000 W / mk.

[0060] The heat pipe may be formed from one of copper, aluminum, and austenitic nickel chromium. The heat pipe may be formed from stainless steel.

[0061] The heat pipe may comprise a working fluid that, in use, has an operating temperature of from about 200°C to about 350°C, such as from about 240°C to about 300°C or from about 250°C to about 280°C.

[0062] The heat pipe may include a working fluid including water.The heat pipe may include a working fluid including one or more of acetone, carbon dioxide, and ammonia.

[0063] The heat pipe may be formed from a body comprising copper and a working fluid comprising water. The heat pipe may be formed from a body comprising aluminum and a working fluid comprising ammonia. Other combinations are also contemplated.

[0064] The apparatus of these aspects may include one or more or all of the features described above, where appropriate.

[0065] According to one aspect, there is provided an elongated heating element for use in an apparatus for heating an aerosolizable material to volatilize at least one component of the aerosolizable material, the elongated heating element comprising a heat pipe, and a susceptor portion which may be heatable by penetration of a varying magnetic field.

[0066] According to one aspect, there is provided an aerosol delivery device comprising at least one of the apparatuses described above.

[0067] According to one aspect, there is provided an aerosol delivery device comprising at least one elongated heating element as described above.

[0068] According to one aspect, there is provided an aerosol delivery device comprising at least one of the apparatuses described above and at least one of the elongated heating elements described above.

[0069] The aerosol delivery device may be a non-flammable aerosol delivery device.

[0070] The device may be a tobacco heating device, also known as a non-combustion heating device.

[0071] According to one aspect, there is provided an aerosol delivery system comprising the aerosol delivery device described above and an article including an aerosol-forming material.

[0072] The item may be a consumable item.

[0073] The aerosol-forming material may be a non-liquid aerosol-forming material.

[0074] The article may be sized to be at least partially received within the heating region.

[0075] Embodiments will now be described, by way of example only, with reference to the accompanying drawings, in which: [Brief explanation of the drawings]

[0076] [Figure 1] FIG. 1 is a front perspective view of an aerosol delivery device. [Figure 2] FIG. 2 is a schematic diagram of the aerosol delivery device of FIG. 1. [Figure 3]3 is a side view of a portion of the heating assembly of FIG. 2 having an article containing an aerosol-forming material. [Figure 4] FIG. 4 is a cross-sectional side view of a portion of the heating assembly of FIG. 3 having an article including an aerosol-forming material. [Figure 5] FIG. 4 is a schematic perspective view of the heating assembly of FIG. 3. [Figure 6] 3 is a schematic side view of another heating assembly of the aerosol delivery device of FIG. 2. [Figure 7] 3 is a schematic side view of another heating assembly of the aerosol delivery device of FIG. 2. [Figure 8] 3 is a schematic side view of another heating assembly of the aerosol delivery device of FIG. 2. [Figure 9] 10 is a schematic side view of another heating assembly of the aerosol delivery device. FIG. Detailed Description

[0077] As used herein, the term "aerosol-forming material" includes materials that, upon heating, deliver volatile components, typically in the form of an aerosol. Aerosol-forming materials include any tobacco-containing material, and may include, for example, one or more of tobacco, tobacco derivatives, expanded tobacco, reconstituted tobacco, or tobacco substitutes. Aerosol-forming materials may also include other non-tobacco products, which may or may not contain nicotine, depending on the product. Aerosol-forming materials may be in the form of, for example, a solid, liquid, gel, wax, etc. Aerosol-forming materials may also be, for example, a combination or mixture of materials. Aerosol-forming materials are also sometimes known as "smoking materials."

[0078] Devices are known that heat aerosol-generating materials to volatilize at least one component of the aerosol-generating materials to form an inhalable aerosol, typically without burning or combusting the aerosol-generating materials. Such devices may be described as "aerosol-generating devices," "aerosol-delivery devices," "non-combustion heating devices," "tobacco heating product devices," or "tobacco heating devices," or similar. Similarly, so-called e-cigarette devices also exist, which typically vaporize aerosol-generating materials in liquid form, and such aerosol-generating materials may or may not contain nicotine. The aerosol-generating materials may be in the form of a wand, cartridge, or cassette that can be inserted into the device, or may be provided as part of such a wand, cartridge, or cassette. A heater for heating and volatilizing the aerosol-generating material may be provided as a "permanent" part of the device.

[0079] The aerosol delivery device can receive an article containing an aerosol-forming material for heating. In this context, an "article" refers to a component that contains or houses the aerosol-forming material in use, which is heated to volatilize the aerosol-forming material, and optionally other components in use. A user may insert the article into the aerosol delivery device before heating it to produce an aerosol that the user subsequently inhales. The article may, for example, be of a predetermined or specific size configured to be placed within a heating chamber of a device sized to receive the article.

[0080] 1 shows an example of an aerosol delivery device 100 for generating aerosol from an aerosol-generating medium / material. Device 100 can be used to heat a replaceable item 110 containing an aerosol-generating medium to generate an aerosol or other inhalable medium that can be inhaled by a user of device 100.

[0081] Device 100 includes a housing 102 that surrounds and houses the various components of device 100. Device 100 has an opening 104 at one end through which an item 110 can be inserted for heating by device 100. Item 110 may be fully or partially inserted into device 100 for heating by device 100.

[0082] Device 100 may include a user-operable control element 106, such as a button or switch, that when actuated, e.g., pressed, operates device 100. For example, a user may activate device 100 by pressing switch 106.

[0083] The device 100 defines a longitudinal axis 101 along which the article 110 may extend when inserted into the device 100 .

[0084] 2 is a schematic diagram of the aerosol delivery device 100 of FIG. 1, illustrating various components of the device 100. It will be understood that the device 100 may include other components not shown in FIG.

[0085] As shown in FIG. 2 , device 100 includes an apparatus 200 for heating an aerosolizable material. Apparatus 200 includes a heating assembly 201, a controller (control circuit) 202, and a power supply 204. Apparatus 200 includes a body assembly 210, which may include a chassis and other components that form part of the device. Heating assembly 201 is configured to heat the aerosol-generating medium of an article 110 inserted into device 100, thereby generating an aerosol from the aerosol-generating medium. Power supply 204 provides power to heating assembly 201, which converts the provided electrical energy into thermal energy for heating the aerosol-generating medium.

[0086] The power source 204 may be, for example, a battery, such as a rechargeable or non-rechargeable battery. Examples of suitable batteries include, for example, lithium batteries (such as lithium-ion batteries), nickel batteries (such as nickel-cadmium batteries), and alkaline batteries.

[0087] Battery 204 may be electrically coupled to heating assembly 201 to provide power under the control of controller 202 when needed to heat the aerosol-generating material. Control circuitry 202 may be configured to activate and deactivate heating assembly 201 based on a user operating control element 106. For example, controller 202 may activate heating assembly 201 in response to a user operating switch 106.

[0088] The end of device 100 closest to opening 104 is sometimes known as the proximal end (or mouth end) 107 of device 100, as it is closest to the user's mouth during use. During use, the user inserts item 110 into opening 104, operates user control 106 to begin heating the aerosol-generating material, and inhales the aerosol generated by the device, causing the aerosol to flow through device 100 along a flow path toward the proximal end of device 100.

[0089] The other end of the device furthest from opening 104 is sometimes known as the distal end 108 of device 100, as it is the end furthest from a user's mouth during use. When a user inhales the aerosol generated by the device, the aerosol flows in a direction toward the proximal end of device 100. The terms proximal and distal as applied to features of device 100 are described by reference to the relative positions of such features with respect to one another in the proximal-distal direction along axis 101.

[0090] The heating assembly 201 may include various components for heating the aerosol-generating material of the article 110 via an induction heating process. Induction heating is a process of heating an electrically conductive heating element (such as a susceptor) via electromagnetic induction. The induction heating assembly may include an induction element, e.g., one or more 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) suitably positioned relative to the induction element, generating eddy currents within the susceptor. The susceptor has an electrical resistance to eddy currents, and the flow of eddy currents across this resistance causes the susceptor to heat via Joule heating. If the susceptor includes a ferromagnetic material, such as iron, nickel, or cobalt, heat may be generated by magnetic hysteresis losses in the susceptor, i.e., by the magnetic poles of the magnetic material changing orientation as a result of alignment with the varying magnetic field. Induction heating generates heat within the susceptor, allowing for rapid heating, as compared to heating by conduction, for example. Furthermore, no physical contact is required between the inductive element and the susceptor, allowing for greater freedom in construction and application.

[0091] Apparatus 200 includes a heating chamber 211 configured and dimensioned to receive an article 110 to be heated. Heating chamber 211 defines a heating region 215. In this example, article 110 is generally cylindrical, and heating chamber 211 is correspondingly generally cylindrical in shape; however, other shapes could be possible. Heating chamber 211 is formed by a receptacle 212. Receptacle 212 includes end walls 213 and a peripheral wall 214.

[0092] The heating chamber 211 is defined by the inner wall of the receptacle 212. The receptacle 212 acts as a support member. The receptacle constitutes a generally tubular member, extending along and around the longitudinal axis 101 of the device 100 and being substantially coaxial with the longitudinal axis 101. However, other shapes could be possible. The receptacle 212, and thus the heating chamber 211, is open at its proximal end so that an item 110 inserted into the opening 104 of the device 100 can be received by the heating chamber 211 through its proximal end. The receptacle 212 is closed at its distal end by an end wall 213. The receptacle 212 may comprise one or more conduits that form an air passageway. During use, the distal end of the item 110 may be positioned adjacent to or engaged with the end of the heating chamber 211. Air may enter heating chamber 211 through one or more conduits and flow through article 110 towards the proximal end of device 100 .

[0093] The receptacle 212 may be formed from an insulating material. For example, the receptacle 212 may be formed from a plastic such as polyetheretherketone (PEEK). Other suitable materials are possible. The receptacle 212 may be formed from a material that ensures that the heating assembly 201 remains rigid / solid when the assembly is operated. Using a non-metallic material for the receptacle 212 may help limit heating of other components of the device 100. The receptacle 212 may be formed from a rigid material to help support the other components.

[0094] Other configurations for the receptacle 212 may be possible. For example, in one embodiment, the end wall 213 is defined by a portion of the heating assembly 201, such as a circumferentially extending flange.

[0095] 2, the heating assembly 201 includes a heating element 220. The heating element 220 is configured to heat a heating region 215. The heating region 215 is defined in a heating chamber 211. In an embodiment, the heating chamber 211 defines a portion of the heating region 215 or an extent of the heating region 215.

[0096] The heating element 220 comprises a heat pipe 230. The heat pipe 230 acts as a heat transfer device. The heat pipe 230 comprises an outer jacket and a working fluid. The working fluid acts to transfer heat along the heat pipe from a heated end to a cooler end.

[0097] The heat pipe 230 is a closed evaporative condensation system. The heat pipe comprises a sealed hollow tube. A wick is disposed within the tube. The interior wall of the heat pipe is lined with a capillary structure or wick. A thermodynamic working fluid having substantial vapor pressure at the desired operating temperature fills the pores of the wick in equilibrium between liquid and vapor. When heat is applied to the heat pipe, the liquid in the wick heats up, causing the fluid to evaporate. The evaporated fluid fills the hollow center of the heat pipe and diffuses throughout its length.

[0098] In the above context, tubular is intended to mean a member having a central inner diameter. Such heat pipes may be elongated members, plates, or may have another cross-sectional shape.

[0099] The heat pipe is formed from copper. The working fluid is water. Other configurations are contemplated. For example, the heat pipe may be formed from one of copper, aluminum, and austenitic nickel chromium. The heat pipe may be formed from stainless steel. The heat pipe may include a working fluid including water. The heat pipe may include a working fluid including one or more of acetone, carbon dioxide, and ammonia.

[0100] In some embodiments, the heat pipe comprises a working fluid that has an operating temperature in use between about 200°C and about 350°C, such as between about 240°C and about 300°C or between about 250°C and about 280°C.

[0101] With such a configuration, the heating element has an effective thermal conductivity of greater than 3000 W / mk, such as greater than 4000 W / mk, or greater than 5000 W / mk.

[0102] In some embodiments, the heating element has an effective thermal conductivity of 3000 to 100000 W / mk, for example 4000 to 10000 W / mk.

[0103] The effective thermal conductivity of a heat pipe may be calculated based on, for example, a function of the adiabatic, evaporative, and condensing lengths, as shown in the following equation:

[0104] Keff=Q Leff / (A ΔT) In the above equation, Keff = effective thermal conductivity [W / mK] Q=transport power [W] L eff = Effective length = (L evaporator +L condenser ) / 2+L adiabatic [m] A=cross-sectional area [m 2 ] ΔT = temperature difference between evaporation and condensation zones [°C] The heat pipe comprises an evaporation region (heat addition) which is the portion of the heat pipe that receives the incoming heat, an adiabatic region which is the portion of the tube that transports the vapor flow, and a condensation region (heat rejection) which is the portion of the heat pipe that actually heats the aerosolizable material. evaporator is the length of the evaporation zone, L condenser is the length of the condensed region, and L adiabatic is the length of the insulating region.

[0105] The heat pipe 230 has a diameter of about 3 mm. In some embodiments, the diameter of the heat pipe is between about 1 mm and 10 mm, such as between about 2 mm and 5 mm and between about 3 mm and 4 mm.

[0106] The heat pipe 230 has a length of about 50 mm. In some embodiments, the length of the heat pipe is between about 10 mm and 100 mm, such as between about 30 mm and 70 mm, and between about 40 mm and 60 mm.

[0107] The heating element 220 is heatable to heat the heating region 215. The heating element 220 is an induction heating element. That is, the heating element 220 comprises a susceptor that is heatable by the penetration of a varying magnetic field. The heating element 220 comprises a heat pipe 230 and a collar 225. As will be described below, the collar may be omitted. The heating element 220 comprises a first portion, referred to herein as a heating portion 221, and a second portion, referred to herein as a base portion 222. At least a portion of the base portion 222 acts as a susceptor.

[0108] The susceptor comprises a conductive material suitable for heating by electromagnetic induction. For example, the susceptor 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.

[0109] The heating assembly 201 includes a magnetic field generator 240 that acts as a heating element. The magnetic field generator 240 is configured to generate one or more varying magnetic fields that penetrate the susceptor and cause heating of the susceptor. The magnetic field generator 240 includes a helical inductor coil 241, shown schematically in FIG. 2, that acts as an inductor element.

[0110] In some examples, during use, the inductor coil is configured to heat the susceptor to a temperature between about 200°C and about 350°C, such as between about 240°C and about 300°C or between about 250°C and about 280°C.

[0111] Figures 3, 4, and 5 show in more detail one embodiment of the heating assembly 201. It will be understood that the heating assembly 201 may include other components not shown in Figures 3-5.

[0112] 3-5, the heating assembly 201 includes a heating element 220 and a magnetic field generator 240. A helical inductor coil 241 of the magnetic field generator 240 is shown in FIGS.

[0113] The heating element 220 extends into the heating region 215. The heating portion 221 acts as a protruding element and protrudes into the heating region 215. The heating portion 221 is formed by a portion of a heat pipe 230. The heat pipe 230 is spaced from the peripheral wall 214. The heating assembly 201 is configured such that when the item 110 is received by the heating chamber 211, the heat pipe 230 of the heating element 220 extends into the distal end of the item 110. The heat pipe 230 of the heating element 220 is disposed within the item 110 during use, as shown in FIGS. 3 and 4 . The heating element 220 is configured to heat the aerosol-generating material of the item 110 from the inside, and for this reason is referred to as an internal heating element. To facilitate this, the internal heating element 220 is configured to perforate the item 110 inserted into the device 100. By providing a heat pipe that extends into the item, heat transfer into the item may be maximized. Heat distribution along the article may be applied more evenly.

[0114] In this embodiment, the heat pipe 230 includes a sharp edge or tip at its proximal end 223. The proximal end is the free end of the heating element 220. The heating portion 221 is a pin. Other shapes are also envisioned, for example, in some embodiments, the heating portion 221 is a blade. The heat pipe 230 may extend from the distal end of the heating chamber 211 into the heating chamber 211 along the longitudinal axis 101 of the device (axially). In some embodiments, the heating portion 221 formed by the heat pipe 230 extends into the heating chamber 211 spaced apart from the axis 101. The heating portion 211 may be off-axis or non-parallel to the axis 101. While one heat pipe 230 is shown, it will be understood that in some embodiments, the heating assembly 201 includes multiple heat pipes. In some embodiments, such heat pipes are spaced apart from each other but parallel to each other. Such multiple heat pipes are arranged in an array.

[0115] A heat pipe 230 extends from heating region 215. The heat pipe 230 extends to the exterior of heating region 220. The heat pipe 230 is received through receptacle 212. The heat pipe 230 extends through end wall 213. A spiral inductor coil 241 is disposed exterior to receptacle 212. The spiral inductor coil 241 is spaced apart from end wall 213. A gap 216 is provided between receptacle 212 and spiral inductor coil 241. In some embodiments, an insulating member (not shown) is provided in gap 216. In some embodiments, the spiral inductor coil 241 is attached to end wall 213. In some embodiments, the inductor coil 241 is spaced apart from end wall 213. A base portion 222 is shown exterior to heating chamber 211. Heating element 220 may include an intermediate portion 225 between heating portion 221 and base portion 222. Intermediate portion 225 may extend between helical inductor coil 241 and heating chamber 211. Intermediate portion 225 extends through end wall 213. In some embodiments, intermediate portion 225 is omitted or forms part of one of heating portion 221 and base portion 222.

[0116] The helical inductor coil 241 extends around at least a portion of the base portion 222 and acts as a susceptor. The helical inductor coil 241 is configured to generate a varying magnetic field that penetrates the base portion 222.

[0117] Inductor coil 241 is a helical coil comprising a conductive material, such as copper. The coil is formed from wire, such as Litz wire, wound helically around a support member (not shown). The support member (not shown) may be omitted. The support member is tubular. Coil 241 defines a generally tubular shape. Helical coil 241 defines inductor region 242. Helical coil 241 defines inner diameter 243.

[0118] Inductor coil 241 has a generally circular profile. In other embodiments, inductor coil 241 may have a different shape, such as generally square, rectangular, or oval. The coil width may increase or decrease along its length.

[0119] The base portion 222 of the heating element 220 extends into the inductor coil 241. That is, the helical inductor coil 241 defines an enclosed space, an inductor region 242. The inductor region 242 is the space defined by the inductor coil 241 that can receive features therein and that make it heatable by the penetration of the varying magnetic field generated by the inductor coil 241.

[0120] Other types of inductor coils, such as flat spiral coils, may also be used. The helical coil allows for defining an elongated inductor region for receiving the susceptor, thereby realizing a long, narrow length of the susceptor to be received in the elongated inductor region. The length of the susceptor exposed to the varying magnetic field may be maximized. Providing an enclosed inductor region with the helical coil configuration may assist in concentrating the magnetic field flux.

[0121] Litz wire contains multiple individually insulated individual wires that are twisted together to form a single wire. Litz wire is designed to reduce skin effect losses in the conductor. Other wire types, such as solid wire, can also be used.

[0122] The configuration of the helical inductor coil may vary along its axial length, for example, the or each inductor coil may have substantially the same or different values ​​of inductance, axial length, radius, pitch, number of turns, etc.

[0123] The helical inductor coil 241 may extend around and be supported by a support member (not shown). The helical inductor coil 241 is disposed coaxially with the heating chamber 211 and the longitudinal axis 101.

[0124] When base portion 222 extends through inductor region 242, base portion 222 is susceptible to a varying magnetic flux along its length.

[0125] The heating element 220 includes a base portion 222 with a heating portion 221 protruding from the base portion 222. The heating portion 221 is heatable by the base portion 222 through thermal conduction. The heating portion 221 and the base portion 222 are thermally conductively connected. The base portion 222 has a larger radial extent than the heating portion 221. The base portion 222 is generally cylindrical, although other shapes are contemplated.

[0126] The elongated heating portion 221 extends at its distal end from a base portion 222. The elongated heating portion 221 and the base portion 222 are coaxial. The base portion 222 has an axial height. The axial height of the base portion 222 substantially corresponds to the axial length of the inductor region 242. Such a configuration helps maximize the magnetic flux intersecting the base portion 222.

[0127] Base portion 222 comprises the distal end of heat pipe 230 and collar 225. The distal end of heat pipe 230 acts as core 224. The core is formed by heat pipe 230. In some embodiments, the distal end of heat pipe 230 abuts collar 225 but does not extend into collar 225. In some embodiments, collar 225 is solid. Heat pipe 230 is a unitary component. In such a configuration, heating portion 221 is defined by the portion of heat pipe 230 that extends into heating region 215. Core 224 is defined by the portion of heat pipe 230 that extends into collar 225.

[0128] The heat pipe 230 has a substantially constant cross-sectional area and profile along its length. The heat pipe 230 and the heating portion 221 together can assist in heat transfer along the heating element 220. The heat pipe 230 is conductively connected to the collar 225. Accordingly, when the collar 225 is heated, heat transfer occurs from the collar 225 to the heat pipe 230 by conduction. The collar 225 forms an interference fit with the core 224. The collar 225 may be connected to the core 224 by different means. The heat pipe 230 acts to facilitate heat transfer along the length of the heating element 220.

[0129] A collar 225 surrounds the heat pipe 230. In some embodiments, the collar 225 partially surrounds the heat pipe 230. In this embodiment, the collar 225 is tubular. The collar 225 defines the outer layer of the heat pipe 230. The heating portion 221 of the heat pipe 230 protrudes above the collar 225.

[0130] The heat pipe 230 has a thermal conductivity greater than that of the collar 225. The collar 225 is formed from a different material. The collar 225 acts as a susceptor and is formed from a material that is susceptible to heating by the penetration of a fluctuating magnetic field. The collar 225 comprises a conductive material suitable for heating by electromagnetic induction. For example, the susceptor may be formed from carbon steel. It will be understood that other suitable materials may be used, such as ferromagnetic materials such as iron, nickel, or cobalt.

[0131] As shown in FIGS. 3-5, collar 225 has a solid configuration. Collar 225 is shown as tubular. In some embodiments, the collar configuration varies. In one embodiment, the collar is a foil layer. The collar may be an outer layer of core 224. In some embodiments, the collar is a mesh. The collar acts as a susceptor and in some embodiments is a wire. The collar may comprise multiple wires forming the collar. In one embodiment, the wires are formed as windings around the core. The collar may have a serpentine configuration. It will be understood that the configuration of the wire configuration may vary. For example, the wire configuration forming the susceptor may have a helical configuration.

[0132] The material of the heat pipe 230 has a lower susceptibility to heating due to the intrusion of a fluctuating magnetic field than the susceptibility of the collar 225. The material forming the collar 225 has a higher susceptibility to heating due to the intrusion of a fluctuating magnetic field than the susceptibility of the heat pipe 230. The material of the heat pipe 230 is a non-ferrous material. The material of the collar 225 is one of a ferromagnetic material and a paramagnetic material.

[0133] The high thermal conductivity of the heat pipe 230 aids in heat transfer. Accordingly, when the collar 225 is heated, the heat transfer along the heat pipe 230 is maximized. This aids in more uniform heating of the heated portion 221 along its axial length. Uniform heating of the heated portion 221 aids in uniform heating of the article 110. This may help provide consistent generation of aerosol along the length of the aerosolizable material. The high thermal conductivity of the heat pipe 230 may reduce the likelihood of hot spots.

[0134] As noted above, base portion 222 includes the distal ends of heat pipes 230 and collar 225, which in some embodiments define a susceptor. Such an embodiment is shown in Figure 6. It will be understood that heating assembly 301 may include other components not shown in Figure 6. The configuration of device 100 is generally as described above and therefore will not be described in detail.

[0135] In the configuration shown in FIG. 6, the heating assembly 301 includes a heat pipe 330 acting as the heating element 320 and a magnetic field generator 340 acting as the heating structure. The magnetic field generator 340 includes a helical inductor coil 341. The heating element 320 protrudes into the heating chamber 311 as described above. The heating element 320 does not include a collar forming a susceptor as described above. In this configuration, the heat pipe 330 forms the susceptor. That is, the heat pipe 330 is formed from a material that is susceptible to heating due to the penetration of a fluctuating magnetic field. The heat pipe 330 is formed from a susceptor material.

[0136] The susceptor material is integrally formed with the heat pipe 330. The heat pipe 330 acts as a susceptor and is formed from a material that is susceptible to heating due to the penetration of a fluctuating magnetic field. The heat pipe 330 may be formed from carbon steel. It will be appreciated that other suitable materials may be used, for example, ferromagnetic materials such as iron, nickel, or cobalt.

[0137] In the embodiments described above, the heating arrangement is an inductive heating arrangement. In some embodiments, other types of heating arrangements, such as resistive heating, are also used. In the arrangement shown in FIG. 7, resistive heating is used. It will be understood that the heating assembly 401 may include other components not shown in FIG. 7. The arrangement of the device 100 is generally as described above, and therefore will not be described in detail.

[0138] In the configuration shown in Figure 7, the heater assembly 401 includes a resistive heating generator 440 that includes components for heating the heat pipe 430 by a resistive heating process. In this case, electrical current is applied directly to the resistive heating component 441, and the resulting current flow through the heating component 441 heats the heating component by Joule heating. The heating element 420 includes the resistive heating component 441 that surrounds the heat pipe 430 and a collar that forms the heat pipe 430. The resistive heating component 441 includes a resistive material configured to generate heat when a suitable electrical current is passed through it, and the heating assembly 401 includes electrical contacts for supplying the electrical current to the resistive material. The heat pipe 430 projects into the heating chamber 411.

[0139] In some embodiments, the heat pipe 430 itself forms the resistive heating component 441. The heat pipe 430 transfers heat to the item 110.

[0140] Other forms of heating elements are also contemplated, such as infrared heating elements.

[0141] As described above with respect to the induction heating configuration, the inductor coil is a helical coil configuration. In other configurations, other coil configurations, such as spiral coils, are also contemplated. Such an embodiment is shown in FIG. 8. It will be understood that the heating assembly 401 may include other components not shown in FIG. 8. The configuration of the device 100 is generally as described above and therefore will not be described in detail.

[0142] A spiral inductor coil 541, which forms part of the magnetic field generator 540 and acts as a heating element, is shown in FIG. 3. The inductor coil 541 is a two-dimensional spiral on the surface of a PCB 550. The PCB 550 acts as a substrate. The substrate supports the spiral coil 541. The inductor coil 541 is defined by a film. In this embodiment, the substrate 550 is a non-conductive support; that is, the substrate is an insulator. In other embodiments, the support substrate may be omitted.

[0143] In this embodiment, the spiral inductor coil 541 is deposited on a flat substrate or support. In some embodiments, the spiral inductor coil 541 has a three-dimensional shape, for example, the spiral inductor coil 541 may define a recess.

[0144] The spiral inductor coil 541 is a conductive coil configured to carry a varying current. The spiral coil may be formed by, for example, deposition, printing, etching, chemical or mechanical bonding.

[0145] The spiral inductor coil 541 is a generally square or rectangular coil. In other embodiments, the spiral inductor coil 541 may have a different shape, such as a generally circular or oval shape. In some embodiments, the spiral inductor coil 541 may be a three-dimensional spiral. In some such embodiments, the inductor coil 541 may be manufactured using additive manufacturing techniques, such as 3D printing. In this embodiment, adjacent spaced apart portions of the inductor coil 541 are regularly spaced apart. In other embodiments, such portions of the inductor coil 541 may not be regularly spaced apart.

[0146] The heating assembly 501 also includes a heating element 520. The heating element 520 comprises a heat pipe 530 and a base 531. The base 531 acts as a susceptor. The base 531 is heatable by a varying magnetic field generated by a spiral inductor coil 541. The base 531 is a plate. The heat pipe 530 stands upright from the base 531. The heat pipe 530 forms an elongated heating portion 521. The base 531 forms part of a base portion 522, and the heating portion 521 protrudes from the base portion 522. The heat pipe 530 is heatable by thermal conduction via the base 531. The heat pipe 530 and the base 531 are thermally conductively connected. The base 531 has a larger radial extent than the heat pipe 530.

[0147] In some embodiments described above, the heating arrangement is axially offset from the heating chamber. For example, the helical inductor coil described above is axially spaced from the receptacle. Offsetting the helical inductor coil 241 from the receptacle 212 can help minimize the radial extent of the helical inductor coil 241.

[0148] In some embodiments, other types of induction heating arrangements are used, such as the embodiment shown in Figure 9, in which an inductor coil overlies the heating chamber. It will be understood that the heating assembly 601 may include other components not shown in Figure 9. The configuration of the device 100 is generally as described above, and therefore will not be described in detail.

[0149] In the configuration shown in FIG. 7 , the heating assembly 601 includes a heat pipe 630 acting as the heating element 620 and a magnetic field generator 640 acting as the heating structure. The magnetic field generator 640 includes a helical inductor coil 641. The heating element 620 projects into the heating chamber 611, as described above. In this configuration, the heat pipe 630 forms a susceptor. That is, the heat pipe 630 is formed from a material that is susceptible to heating due to the intrusion of a fluctuating magnetic field. The heat pipe 630 is formed from a susceptor material. The heat pipe 630 may be formed from carbon steel. It will be understood that other suitable materials may be used, such as ferromagnetic materials such as iron, nickel, or cobalt. In another embodiment, the heating element 630 includes a collar (not shown). In such an embodiment, the collar is formed from a material that is susceptible to heating due to the intrusion of a fluctuating magnetic field. The heat pipe 630 may be formed from a material that is not susceptible to heating due to the intrusion of a fluctuating magnetic field.

[0150] A receptacle 612 defines a heating chamber 611. A helical inductor coil 641 overlies the heating chamber 611. In such a configuration, the heating element 620 does not extend from the heating chamber 611. The heating element 620 is heated directly by the coil of the heating chamber 611.

[0151] 9, the coil 641 partially overlaps the heating element 620. The heat pipe 630 assists in heat distribution along the heating element 620 between the base portion 622 that overlaps the coil 641 and the heating portion 621 that is offset from the coil 641. In some embodiments, the heat pipe 630 is surrounded by the coil 641.

[0152] In the above-described embodiment, the heating portion is an internal heater. That is, the heating portion protrudes into the heating chamber and is positioned to be received by the article. In another embodiment, the heating portion is an external heater. In such a configuration, the heating element may be a generally tubular element extending along the longitudinal axis 101 and being substantially coaxial with the longitudinal axis 101. The heating element may extend at least partially around an axial portion of the heating chamber. The heating element may extend continuously around the entire circumference of the heating chamber, or may extend only partially around the chamber. For example, one or more interruptions, such as holes, gaps, or slots, may be provided in the heating element. The heating element may be configured and dimensioned to extend around an article received by the heating chamber. Thus, the heating element may be positioned around the article during use. The heating element may thus be configured to heat the aerosol-generating material of the article 110 from the outside, and for this reason is referred to as an external heating element. The heating element may have a circular cross-section, for example, corresponding to the circular cross-section of the article 110. Other cross-sectional shapes may also be possible.

[0153] The heating element may extend any suitable distance along the heating zone. In such embodiments, the heating element may form a receptacle. The base portion is disposed at an end of the tubular member. The outer heating element may form the tubular member at one end. In such embodiments, the base portion may extend axially or radially inward, or both. The base portion may define an end wall. In some embodiments, the base collar is a collar around the tubular member.

[0154] The above-described embodiments should be understood as illustrative of the present invention. Additional embodiments of the present invention are also contemplated. It should be understood that any feature described in connection with any one embodiment may be used alone or in combination with other features described, or with one or more features of any other embodiment, or with any combination of any other embodiment. Furthermore, equivalents and modifications not described above may be employed without departing from the scope of the present invention, which is defined in the appended claims.

Claims

1. 1. An apparatus for heating an aerosolizable material to volatilize at least one component of the aerosolizable material, comprising: a heating assembly, the heating assembly comprising: a heated cavity positioned to receive at least a portion of an article including an aerosolizable material; a heating element positioned to provide heat to the heating cavity; a heating arrangement configured to generate heat to heat the heating element; Equipped with The apparatus, wherein the heating element comprises a heat pipe.

2. The device of claim 1 , wherein the heating element protrudes into the heating cavity.

3. 3. The device of claim 1, wherein the heat pipe projects into the heating cavity.

4. The apparatus of any one of claims 1 to 3, wherein the heat pipe is configured to be at least partially received in the article containing an aerosolizable material.

5. The device according to any one of claims 1 to 4, wherein the heat pipe is arranged to transfer heat outside the heating cavity into the heating cavity.

6. An apparatus according to any one of claims 1 to 5, wherein the heating element has an effective thermal conductivity greater than 3000 W / mk.

7. The apparatus of any one of claims 1 to 6, wherein the heating arrangement is configured to apply heat to one end of the heat pipe.

8. The apparatus of claim 7 , wherein the heating arrangement surrounds a portion of the heat pipe.

9. The apparatus of claim 8 , wherein a portion of the heat pipe extends away from the heating element.

10. The apparatus of claim 9 comprising a portion of the heat pipe extending outside the heated cavity.

11. The apparatus of claim 10 , wherein the heating arrangement is positioned to heat the portion of the heat pipe that extends outside the heating cavity.

12. The apparatus of claim 11 , comprising a collar configured to heat the heat pipe.

13. 13. The device of claim 12, wherein the collar comprises a heating material heatable by penetration of a varying magnetic field.

14. An apparatus according to any one of the preceding claims, wherein the heat pipe comprises a heating material that can be heated by the penetration of a fluctuating magnetic field.

15. 15. The apparatus of claim 13 or 14, wherein the heating arrangement comprises a magnetic field generator including an inductor coil configured to generate a varying magnetic field.

16. The apparatus of claim 15 , wherein the inductor coil is a helical inductor coil.

17. 1. An apparatus for heating an aerosolizable material to volatilize at least one component of the aerosolizable material, comprising: a heating assembly including a heating cavity positioned to receive at least a portion of an article including an aerosolizable material; a heating element positioned to provide heat to the heating cavity; a heating arrangement configured to generate heat to heat the heating element; Equipped with The apparatus wherein the heating element has an effective thermal conductivity greater than 3000 W / mk.

18. 1. An elongated heating element for use in an apparatus for heating an aerosolizable material to volatilize at least one component of the aerosolizable material, the elongated heating element comprising a heat pipe and a susceptor portion heatable by the penetration of a varying magnetic field.

19. 20. An aerosol delivery device comprising the elongated heating element of claim 18.

20. An aerosol delivery device comprising the apparatus described in any one of claims 1 to 17.

21. 21. An aerosol delivery system comprising the aerosol delivery device of claim 19 or 20 and an article containing an aerosol-forming material.

Citation Information

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