Induction heating assembly for aerosol generating devices and method of manufacturing same

The induction heating assembly with a tubular coil and insulating layer efficiently heats aerosol-forming materials in aerosol-generating devices, addressing the challenge of compact design and reliable heating without burning, ensuring effective aerosol generation.

JP7791941B2Active Publication Date: 2025-12-24JT INTERNATIONAL SA
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Patent Information

Application Number
JP2024119277
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2018-11-26
Filing Date
2024-07-25
Publication Date
2025-12-24
Estimated Expiration
2039-11-21

AI Technical Summary

Technical Problem

Existing aerosol-generating devices that use induction heating systems face challenges in efficiently and reliably heating aerosol-forming materials without burning them, particularly in maintaining a compact and efficient induction coil assembly design.

Method used

The induction heating assembly features a tubular induction coil assembly with an electrically insulating layer and conductive track, having overlapping portions, which generates an alternating electromagnetic field to heat susceptors within the aerosol-generating article, using materials like aluminum, iron, or nickel alloys, and includes a support structure for efficient heating and electrical insulation.

Benefits of technology

This design allows for efficient heating of aerosol-forming materials to generate aerosols without burning, providing a compact and reliable induction heating system with controlled electromagnetic field distribution and thermal insulation.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide an induction heating assembly that may be used to heat an aerosol generating article that generates aerosol for inhalation by a user.SOLUTION: An induction heating assembly includes a heating chamber 6 for receiving in use an aerosol generating article, and an induction coil assembly 14. The induction coil assembly 14 substantially surrounds the heating chamber 6 and includes an electrically insulating layer and an electrically conductive track. The induction coil assembly 14 has a substantially tubular construction, and at least part of the induction coil assembly 14 overlaps with another part of the induction coil assembly 14 in an axial direction.SELECTED DRAWING: Figure 6
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Description

[Technical Field]

[0001] The present disclosure relates generally to induction heating assemblies for aerosol generating devices, and more particularly to induction heating assemblies that can be used to heat aerosol-generating articles that produce aerosols for inhalation by a user.

[0002] Embodiments of the present disclosure also relate to aerosol generating devices incorporating induction heating assemblies and methods of manufacturing induction heating assemblies. [Background technology]

[0003] Devices that heat, rather than burn, aerosol-forming materials to form aerosols for inhalation have become popular with consumers in recent years.

[0004] Such devices can provide heat to the aerosol-forming material using one of several different techniques. One such technique is to provide an aerosol-generating device that uses an induction heating system, into which a user can removably insert an aerosol-generating article containing the aerosol-forming material. In such devices, an induction coil is provided in the device, and an inductively heatable susceptor is also provided in the device. When a user activates the device, electrical energy is supplied to the induction coil, which generates an alternating current electromagnetic field. The susceptor couples with the electromagnetic field to generate heat, which is transferred, for example, by conduction, to the aerosol-forming material, heating it rather than burning it, thereby generating an aerosol. Summary of the Invention [Means for solving the problem]

[0005] According to a first aspect of the present disclosure, there is provided an induction heating assembly for an aerosol generating device, the induction heating assembly comprising: a heating chamber for accommodating an aerosol-generating article during use; and an induction coil assembly substantially surrounding the heating chamber, the induction coil assembly comprising an electrically insulating layer and an electrically conductive track, the induction coil assembly having a substantially tubular structure, at least a portion of the induction coil assembly axially overlapping another portion of the induction coil assembly, the axial direction being the axial direction of the induction coil assembly.

[0006] The heating chamber of the induction heating assembly is adapted to house the aerosol-generating article during use. The conductive track defines an induction coil, which generates an alternating electromagnetic field to heat one or more susceptors within the aerosol-generating article by inducing eddy currents and / or magnetic hysteresis losses within the susceptor. The susceptor may include, but is not limited to, one or more of aluminum, iron, nickel, stainless steel, and alloys thereof, such as nickel-chromium or nickel-copper.

[0007] The aerosol-generating article can include an aerosol-forming material, and the induction heating assembly is adapted to heat the aerosol-forming material without burning the aerosol-forming material to volatilize at least one component of the aerosol-forming material, thereby generating an aerosol for inhalation by a user of the aerosol-generating device.

[0008] Generally speaking, a vapor is a substance that is in the gas phase below its critical temperature. This means that the vapor can be condensed into a liquid by increasing the pressure without decreasing the temperature. An aerosol, on the other hand, is a suspension of fine solid particles or liquid droplets in air or another gas. However, in this specification, the terms "aerosol" and "vapor" are used interchangeably. It should be noted that the terms "inhalable medium" and "inhalable medium" are sometimes used interchangeably, particularly with respect to the form of inhalable medium that is produced for inhalation by a user.

[0009] The aerosol-generating article may comprise a body of aerosol-forming material. The aerosol-forming material may be any type of solid or semi-solid material. Exemplary types of solid or semi-solid materials include powders, granules, pellets, flakes, strands, particles, gels, strips, loose-leaf, cut filler, porous materials, foam materials, or sheets. The aerosol-forming material may include plant-derived materials, particularly tobacco.

[0010] The aerosol-forming material may include an aerosol-forming agent. Examples of aerosol-forming agents include polyhydric alcohols, such as glycerin or propylene glycol, and mixtures thereof. Typically, the aerosol-forming material may contain about 5% to about 50% aerosol-forming agent content on a dry weight basis. In some embodiments, the aerosol-forming material may contain about 10% to about 20% aerosol-forming agent content on a dry weight basis, and in some cases about 15% on a dry weight basis.

[0011] Alternatively, the aerosol-forming material may be the aerosol-forming agent itself. In this case, the aerosol-forming material may be a liquid. In this case, the aerosol-generating article may also include a liquid-retaining substance (e.g., a fiber bundle, a porous material such as ceramic, etc.) that retains the liquid to be aerosolized and allows the aerosol to be formed from the liquid-retaining substance and released / radiated, for example, toward an exhaust port for inhalation by a user.

[0012] Upon heating, the aerosol-forming material may release volatile compounds, which may include flavor compounds such as nicotine or tobacco flavorings.

[0013] Different regions of the body may contain different types of aerosol-forming materials, may contain different aerosol-forming agents, or may have different aerosol-forming agent contents, or may release different volatile compounds when heated.

[0014] The shape and form of the aerosol-generating article are not limited. In some embodiments, the aerosol-generating article may be substantially cylindrical in shape, and the heating chamber may therefore be configured to accommodate a substantially cylindrical article. This may be advantageous because vaporizable or aerosolizable substances, particularly tobacco products, are often packaged and sold in cylindrical form. Furthermore, it is convenient to use an induction coil assembly in which the tubular structure is substantially cylindrical, and thus providing the aerosol-generating article in a cylindrical form is advantageous because it can be sized to fit efficiently within the induction coil assembly while minimizing the use of excess material. It will be understood that an induction coil assembly having a "tubular structure" is not limited to a cylindrical structure (i.e., having a substantially circular cross-section), but simply specifies that the induction coil assembly has the shape or form of a tube, typically an open-ended tube, having any suitable cross-section. As described in more detail below, in one embodiment of the present disclosure, an induction coil assembly having a tubular structure may be wound in a spiral shape with a suitable number of turns around the axis of the induction coil assembly.

[0015] The aerosol-forming material may be held inside a breathable material. The breathable material may include an electrically insulating, non-magnetic breathable material. The material may have high breathability, allowing air to flow through it, along with resistance to high temperatures. Examples of suitable breathable materials include cellulose fibers, paper, cotton, and silk. The breathable material may also function as a filter. In one embodiment, the aerosol-forming material may be wrapped in paper. The aerosol-forming material may also be a material that is not breathable but has appropriate perforations or openings to allow air flow. The aerosol-forming article may be held within a tube of material that is not breathable but has an open end that allows air to flow through the aerosol-forming material, or the material may not extend throughout the entire aerosol-forming material. For example, the aerosol-forming material may be held within a tube of material that is not breathable but has an open end that allows air to flow through the aerosol-forming material. Alternatively, the aerosol-generating article may be comprised of a body of aerosol-forming material itself.

[0016] The conductive tracks and the electrical insulating layer may be bonded or fixed together so that the induction coil assembly has a simple and reliable structure. In one embodiment, the conductive tracks may be formed on the electrical insulating layer. Alternatively, the conductive tracks and the electrical insulating layer may not be bonded or fixed together, but may be positioned adjacent to each other within the induction coil assembly.

[0017] The induction coil assembly may include two or more conductive tracks. The conductive tracks may be bonded to or fixed to the electrically insulating layer, or may be formed on the electrically insulating layer. The conductive tracks may be spaced apart in the axial direction of the induction coil assembly. Each conductive track defines an induction coil, which generates an alternating electromagnetic field for heating one or more susceptors in the aerosol-generating article by inducing eddy currents and / or magnetic hysteresis losses in the susceptor. The conductive tracks may be spaced apart evenly or unevenly in the axial direction to provide a desired electromagnetic field distribution and / or desired heating of the aerosol-forming material when the aerosol-generating article is placed in the heating chamber.

[0018] Only one side of each conductive track may be bonded or secured to an electrical insulating layer, with the opposite side of each conductive track remaining unbonded or unsecured. Such an induction coil assembly has a compact size. Alternatively, only one side of each conductive track may be bonded or secured to an electrical insulating layer, with the opposite side of each conductive track being bonded or secured to a second electrical insulating layer. Such an induction coil assembly may have good electrical insulation because each conductive track is sandwiched or embedded between two electrical insulating layers.

[0019] The induction coil assembly may include multiple alternating or stacked layers of electrical insulation and conductive tracks, and such an induction coil assembly may have a simple and reliable structure with good electrical insulation between the conductive tracks.

[0020] Each electrically insulating layer may be formed as a strip of insulating material, such as, for example, polyamide or polyimide.

[0021] Each conductive track may be formed as a strip of conductive material (e.g., formed on a conductive layer) or as a layer of conductive material. The conductive material may be, for example, a metal such as copper, stainless steel, or aluminum. The exposed outer surface of the conductive track may be increased to reduce the track's electrical resistance and prevent its temperature from reaching unacceptable levels. For example, the conductive track may be formed from a woven fabric containing thin metal wires (i.e., a multi-strand conductive track), or the track may include a plurality of fine holes or slits extending along its length.

[0022] In one embodiment, the axial height of each conductive track (i.e., its dimension in the axial direction of the induction coil assembly) does not vary substantially along the circumferential direction of the induction coil assembly. It will be readily understood that any reference to "circumferential direction" herein means a direction along the spiral shape of the induction coil assembly, i.e., a direction from the radially innermost edge to the radially outermost edge of the induction coil assembly, or vice versa. The axial height of the conductive tracks may be substantially the same as the axial height of the electrical insulation layer, thereby providing a simple and reliable construction for the induction coil assembly. Alternatively, the axial height of each conductive track may vary or fluctuate along the circumferential direction of the induction coil assembly. For example, the axial height of the conductive tracks may be substantially the same as the axial height of the electrical insulation layer, thereby providing a simple and reliable construction for the induction coil assembly. The axial height and / or axial position of each conductive track relative to the overall induction coil assembly may be the same along the circumference of the induction coil assembly, or may change or vary along the circumference of the induction coil assembly. Varying the axial height and / or axial position of each conductive track along the circumference of the induction coil assembly means that each conductive track may define an induction coil having a particular shape and configuration within the three-dimensional space defined by the substantially tubular structure of the overall induction coil assembly.

[0023] The axial height of the conductive track may be substantially equal to or greater than half the depth of the portion of the heating chamber that overlaps the body of aerosol-forming material of the aerosol-generating article when the aerosol-generating article is contained within the heating chamber. The depth of the heating chamber is the dimension of the heating chamber in the axial direction of the induction heating assembly. Such a configuration typically results in efficient heating of the aerosol-forming material.

[0024] The induction coil assembly as a whole may have a spiral structure wound around the heating chamber at continuously increasing distances from its central axis. The induction coil assembly may have any suitable number of turns, for example, four or more, with each turn overlapping the preceding turn to form the spiral structure. In other words, the induction coil assembly may be wound around the heating chamber at least four times. This may provide a good balance between the physical size of the induction coil assembly and its heating efficiency when the induction coil assembly is implemented in an aerosol generating device. Adjacent turns of the induction coil assembly may be bonded or fixed to each other, for example, using an adhesive layer, to form a compact structure.

[0025] The electrically insulating layer may have a spiral structure and may be sandwiched between adjacent turns of the conductive track, for example to maintain good electrical insulation.

[0026] Each conductive track of the induction coil assembly may have a spiral or helical structure. The conductive track may have any suitable number of turns, for example, four or more. This may provide a good balance between the physical size of the induction coil assembly and its heating efficiency. As described in more detail below, each conductive track may have a spiral structure if the conductive track is wound around the heating chamber at successively increasing distances from the central axis of the induction coil assembly, and the axial position of each conductive track does not change along the circumference of the induction coil assembly relative to the entire induction coil assembly, such that each turn overlaps the preceding turn to form the spiral structure. Each conductive track may have a helical structure if the conductive track is wound around the heating chamber at successively increasing distances from the central axis of the induction coil assembly, and the axial position of each conductive track changes or varies along the circumference of the induction coil assembly relative to the entire induction coil assembly, such that each turn is axially offset from the preceding turn (i.e., the turns do not completely overlap, but may still partially overlap) to form the helical structure.

[0027] At least one end of each conductive track may include a connector leg that protrudes from the conductive track and allows for simple and reliable electrical connection to a separate part of the aerosol generating device (e.g., the body assembly), which may include a controller and / or power supply for the induction coil assembly. Most preferably, both ends of each conductive track include a corresponding connector leg that protrudes from the conductive track in the same direction, typically axially. This results in a simple and compact construction for the induction heating assembly. In one embodiment, additional connector legs may be provided between the end connector legs, for example in the middle of each conductive track. Such an induction coil assembly may be easily connected to a separate part of the aerosol generating device (e.g., the body assembly), which may include a controller and / or power supply for the induction coil assembly. Most preferably, both ends of each conductive track include a corresponding connector leg that protrudes from the conductive track in the same direction, typically axially. This results in a simple and compact construction for the induction heating assembly. In one embodiment, additional connector legs may be provided between the end connector legs, for example, in the middle of each conductive track. The coil assembly may be referred to as a "center-tapped" induction coil assembly. Additional connector legs may be provided at or near the center of each conductive track along its circumference. The additional connector legs may protrude from the conductive track in the same direction as the connector legs at both ends of the conductive track. The additional connector legs may be electrically connected to a power source, such as a direct current (DC) power source, preferably by a low-pass filter. The low-pass filter may comprise, for example, a choke coil. Such a "center-tapped" induction coil assembly may operate efficiently and may simplify the design of the electronic circuitry to which the induction coil assembly connects.

[0028] Each connector leg may protrude from the induction heating assembly so as to be exposed for electrical connection with the body assembly of the aerosol generating device. Each connector leg may be electrically connected to two or more conductive tracks, if present, within the induction coil assembly. For example, if two or more conductive tracks are bonded or fixed to an electrical insulating layer or formed on an electrical insulating layer and axially spaced apart, the two or more conductive tracks may be connected in parallel between two connector legs. Alternatively, if two or more conductive tracks are present in the induction coil assembly, each conductive track may be connected to two connector legs, respectively. This may improve control over the electromagnetic field generated by the induction coil assembly.

[0029] Each connector leg may be adapted to mate with a corresponding connector on a body assembly of the aerosol generating device, and each connector leg may be provided with a first type of connector end, and the corresponding connector on the body assembly may be provided with a second type of connector end mateable with the first type of connector end.

[0030] The induction heating assembly may include a support defining a heating chamber. More specifically, the heating chamber may be defined by one or more walls of the support. In one embodiment, the support may include a substantially cylindrical wall defining a heating chamber suitable for accommodating a substantially cylindrical aerosol-generating article.

[0031] The support may be formed of any suitable, relatively inert material that has good thermal properties and can be manufactured in large quantities in a cost-effective manner, for example, a plastic material such as polyetheretherketone (PEEK), or a ceramic material such as alumina, zirconia, silicates, etc.

[0032] The induction coil assembly may be mounted on a support for a simple and reliable construction. The induction heating assembly may include a base having a first surface that supports one axial end of the induction coil assembly. The induction heating assembly may include a top having a surface that supports the other axial end of the induction coil assembly. One or both of the base and top may be integral parts of the support to which the induction coil assembly is mounted. In one embodiment, the base and top may be formed as outwardly extending flanges between which the induction coil assembly is axially disposed, with its axial ends supported by the opposing flange surfaces. The support wall defining the heating chamber may extend between the base and top, for example, between two outwardly extending flanges. Such a structure may be useful for supporting and guiding the induction coil assembly if it is wound in situ around the support, i.e., if the support functions as a coil former; see below. The induction coil assembly may be affixed or fastened to the support, for example, by a suitable adhesive, to maintain the induction coil assembly in position relative to the heating chamber. This provides reliable heating. This is because the positional relationship between the induction coil assembly and the susceptor in the aerosol-generating article housed within the heating chamber is important.

[0033] One or more air inlets may be formed in the bottom of the heating chamber. The air inlets may be formed, for example, in the base of the induction heating assembly. If more than one air inlet is provided, they are preferably substantially evenly spaced across the bottom of the heating chamber.

[0034] The connector legs may be arranged to pass through slots or openings in the base of the induction heating assembly such that the connector legs project axially outward from the base and engage with corresponding connectors on another portion of the aerosol generation device. The induction heating assembly may be adapted to be removably connected to another portion of the aerosol generation device, such as the body assembly.

[0035] In an alternative embodiment, a slot or opening in the base of the induction heating assembly may receive a corresponding connector in the body assembly so that an electrical connection can be made with the connector legs. More specifically, the connector may be configured to project outward from another portion of the aerosol generation device (e.g., the body assembly) and pass through a slot or opening in the base so that the connector is positioned to engage the connector legs.

[0036] The induction heating assembly may include an electromagnetic shield that substantially surrounds the induction coil assembly. Therefore, the induction heating assembly has a simple and reliable structure for shielding the electromagnetic field generated by the induction coil assembly during use. The base of the induction heating assembly may include a second surface that supports an axial end of the electromagnetic shield. The electromagnetic shield is preferably affixed or fixed to the second surface, for example, by a suitable adhesive. A gap may be maintained between the induction coil assembly and the electromagnetic shield to provide thermal insulation between the corresponding components. Providing a gap between the induction coil assembly and the electromagnetic shield may also help ensure a desired electromagnetic field distribution of the generated electromagnetic field within the heating chamber. That is, the gap may be used to "shape" the electromagnetic field. The gap may be maintained in a simple and reliable manner by one or more spacers disposed between the outer surface of the induction coil assembly and the inner surface of the electromagnetic shield. The spacers may be formed as protrusions on one or both of the electromagnetic shield and the base of the induction heating assembly (e.g., on a support), and the spacers may be spaced apart circumferentially.

[0037] According to a second aspect of the present disclosure, there is provided an induction heating assembly for an aerosol generating device, the induction heating assembly comprising: a heating chamber for accommodating an aerosol-generating article during use; and an induction coil assembly substantially surrounding the heating chamber, the induction coil assembly comprising a conductive track, at least a portion of the conductive track axially overlapping another portion of the conductive track.

[0038] The induction coil assembly may comprise an electrically insulating layer located between at least the overlapping portions of the conductive tracks.

[0039] Other features of the induction heating assembly according to the second aspect of the present disclosure may be as described above for the first aspect.

[0040] According to a third aspect of the present disclosure, there is provided an aerosol generating device comprising an induction heating assembly as described above.

[0041] The aerosol-generating device may be configured to house an aerosol-generating article according to a first type that includes an integrated filter that allows a user to inhale the aerosol that is released upon heating. The aerosol generating device may also be configured to accommodate aerosol-generating articles according to the second type, and the device may further comprise a mouthpiece.

[0042] The aerosol generating device may include a body assembly to which the induction heating assembly is connected, optionally in a detachable manner. The body assembly may include a controller and / or power supply for the induction heating assembly. The controller may include a programmable digital controller.

[0043] The body assembly may include one or more connectors, each adapted to engage a corresponding connector leg of the induction heating assembly. The use of connectors provides a simple and reliable method of providing electrical connection between the induction heating assembly and the body assembly of the aerosol generating device.

[0044] According to a fourth aspect of the present disclosure, there is provided a method of manufacturing an induction heating assembly, the method comprising: forming a heating chamber; forming or disposing an induction coil assembly substantially around the heating chamber, the induction coil assembly (i) comprising an electrically insulating layer and a conductive track, the induction coil assembly having a substantially tubular structure, with at least a portion of the induction coil assembly axially overlapping another portion of the induction coil assembly, or (ii) comprising a conductive track, with at least a portion of the conductive track axially overlapping another portion of the conductive track.

[0045] This provides a simple method for manufacturing induction heating assemblies with a variety of different induction coil assemblies.

[0046] As described above, the induction coil assembly may have a spiral structure with a suitable number of turns, for example, four or more turns. The induction coil assembly may be preformed and then positioned so that it substantially surrounds the heating chamber. Alternatively, the induction coil assembly may be wound in situ around the heating chamber, specifically by winding it around a support that defines the heating chamber and functions as a coil former. The heating chamber may be defined by one or more walls of the support, and the induction coil assembly may be wound around the walls with a suitable number of turns.

[0047] The support may include at least one flange (e.g., as part of the base or top of the support) extending outward from a wall defining the heating chamber. Each flange may support a corresponding axial end of the induction coil assembly. Each flange may help support and guide the induction coil assembly during the in-situ winding process.

[0048] Adjacent turns of the induction coil assembly may be bonded or secured together, for example using an adhesive layer, to form a compact structure.

[0049] The induction coil assembly may include at least one connector leg electrically connected to an end of the conductive track. Typically, two connector legs are formed, each electrically connected to a corresponding end of the conductive track. Each connector leg protrudes from the conductive track or the induction heating assembly to allow for simple and reliable electrical connection to a separate part of the aerosol generation device (e.g., a body assembly), which may include a controller and / or power source for the induction coil assembly. The method may include electrically connecting each connector leg to a connector of the body assembly of the aerosol generation device.

[0050] The method may include forming or disposing an electromagnetic shield that substantially surrounds the induction coil assembly. The electromagnetic shield may be pre-formed and then disposed around the induction coil assembly, for example, by being secured to a support. In this case, the electromagnetic shield may be spaced apart from the induction coil assembly by a gap that may provide thermal insulation and help ensure a desired electromagnetic field distribution of the generated electromagnetic field within the heating chamber. Alternatively, the electromagnetic shield may be formed or wrapped around the induction coil assembly.

[0051] Other features of the induction heating assembly formed by the method according to the fourth aspect of the present disclosure may be as described above for the first aspect. [Brief explanation of the drawings]

[0052] [Figure 1] 1 is a schematic cross-sectional view of an embodiment of an induction heating assembly. [Figure 2] 2 is a schematic cross-sectional view of an embodiment of the induction heating assembly of FIG. 1 taken along line AA. [Figure 3] 3 is a schematic cross-sectional view of an embodiment of the induction heating assembly of FIG. 2 taken along line BB. [Figure 4] 3 is a schematic cross-sectional view of an embodiment of the induction heating assembly of FIG. 2 taken along line CC. [Figure 5] FIG. 2 is a schematic diagram of a first embodiment of an induction coil assembly before the induction coil assembly is wound. [Figure 6] 1 is a schematic cross-sectional view of an embodiment of an aerosol generating device before the induction heating assembly is connected to the body assembly and before an aerosol-generating article is contained within the induction heating assembly. FIG. [Figure 7] 7 is a schematic cross-sectional view of the aerosol generating device of FIG. 6, with the induction heating assembly connected to the body assembly and the aerosol article contained within the induction heating assembly. [Figure 8] FIG. 10 is a schematic diagram of a second embodiment of an induction coil assembly before the induction coil assembly is wound. [Figure 9]9 is a schematic cross-sectional view of an embodiment of an induction heating assembly comprising the induction coil assembly of FIG. 8. [Figure 10] FIG. 10 is a schematic diagram of a third embodiment of an induction coil assembly before the induction coil assembly is wound. [Figure 11] 11 is a schematic cross-sectional view of an embodiment of an induction heating assembly comprising the induction coil assembly of FIG. 10. [Figure 12] FIG. 10 is a schematic diagram of a fourth embodiment of an induction coil assembly before the induction coil assembly is wound. [Figure 13] 13 is a schematic cross-sectional view of an embodiment of an induction heating assembly comprising the induction coil assembly of FIG. 12. [Figure 14] FIG. 10 is a schematic diagram of a fifth embodiment of an induction coil assembly before the induction coil assembly is wound. [Figure 15] 15 is a schematic cross-sectional view of an embodiment of an induction heating assembly comprising the induction coil assembly of FIG. 14. [Figure 16] FIG. 10 is a schematic diagram of a sixth embodiment of an induction coil assembly before the induction coil assembly is wound. [Figure 17] 17 is a schematic cross-sectional view of an embodiment of an induction heating assembly comprising the induction coil assembly of FIG. 16. [Figure 18] FIG. 10 is a schematic cross-sectional view of a seventh embodiment of an induction coil assembly before the induction coil assembly is wound. [Figure 19] FIG. 1 is a circuit diagram of a portion of the electronic circuit of the aerosol generating device. DETAILED DESCRIPTION OF THE INVENTION

[0053] Embodiments of the present disclosure will now be described, by way of example only, with reference to the accompanying drawings, in which:

[0054] 1-4, an induction heating assembly 1 according to one embodiment of the present disclosure is shown schematically.

[0055] The induction heating assembly 1 includes a support 2 having a substantially cylindrical wall 4 that defines a heating chamber 6. The support 2 includes a base 8 that defines the bottom of the heating chamber 6 and includes a radially outwardly extending flange 8a. An air inlet 10 is formed in the base 8 at the bottom of the heating chamber 6.

[0056] The support 2 also includes a top portion 12 which defines an opening to the heating chamber 6 and includes a radially outwardly extending flange 12a.

[0057] The support 2 is integrally formed from a plastic material such as polyetheretherketone (PEEK).

[0058] Induction heating assembly 1 includes induction coil assembly 14. Induction coil assembly 14 has a spiral configuration, described in more detail below, and generally takes the form of an open-ended tube having a substantially circular cross-section. Induction coil assembly 14 is attached to support 2 and surrounds heating chamber 6. More specifically, induction coil assembly 14 is axially disposed radially outward of the substantially cylindrical wall 4 that defines heating chamber 6, between base flange 8a and top flange 12a of the support. Axial ends 14a, 14b of induction coil assembly 14 are supported by oppositely facing base and top annular flange surfaces 8b, 12b, as shown.

[0059] A substantially cylindrical electromagnetic shield 16 substantially surrounds the induction coil assembly 14. The base 8 includes an annular flange surface 8c that supports an axial end 16a of the electromagnetic shield 16. A radial gap 18 is maintained between the induction coil assembly 14 and the electromagnetic shield 16 to provide thermal insulation between the components and ensure a desired electromagnetic field distribution of the generated electromagnetic field within the heating chamber 6. The gap 18 between the induction coil assembly 14 and the electromagnetic shield 16 is maintained by circumferentially spaced spacers in the form of four radially inwardly extending protrusions 20 formed on the radially inner surface of the electromagnetic shield at the top and four radially inwardly extending protrusions 20 formed on the radially inner surface of the electromagnetic shield at the bottom. As shown in FIGS. 1 and 4 , the bottom protrusions 20 contact the substantially cylindrical radially outer surface of the flange 8a, and the top protrusions 20 contact the substantially cylindrical radially outer surface of the top portion 12a. In alternative embodiments, the spacers may be formed on the base of the support, for example. The induction coil assembly 14 may be affixed or secured to the support 2, for example by a suitable adhesive, to maintain the induction coil assembly in position relative to the heating chamber 6.

[0060] Referring also to FIG. 5, which schematically illustrates the induction coil assembly 14 prior to being wound into a spiral configuration, the induction coil assembly includes a strip of conductive material 22 bonded or secured to an electrically insulating layer 24. The conductive material may be, for example, a metal such as copper, stainless steel, or aluminum. The electrically insulating layer 24 may be, for example, a polyamide or polyimide layer. The strip 22 extends along the length of the unwound electrically insulating layer 24, i.e., from a first end 24a to a second end 24b. The unwound induction coil assembly shown in FIG. 5 is It will be readily understood that the direction along the length of the induction coil assembly 14 corresponds to the circumferential direction of the induction coil assembly when wound in a spiral configuration. Similarly, the direction along the width of the unwound induction coil assembly 14 shown in FIG. 5 corresponds to the axial direction of the induction coil assembly when wound in a spiral configuration.

[0061] In one embodiment, the induction coil assembly 14 is formed from a copper strip approximately 0.2 mm thick and approximately 6.5 mm wide that is bonded or secured to a polyimide (Kapton®) tape with a suitable adhesive.

[0062] 1 and 2 show a schematic representation of the induction coil assembly 14 after it has been wound into a spiral configuration. The strip of conductive material 22 and the conductive layer 24 to which it is bonded or secured are wound around the heating chamber 6 at successively increasing distances from the central axis of the induction coil assembly. Each turn of the induction coil assembly 14 completely overlaps the previous turn to form the spiral configuration. Portions of the induction coil assembly 14 axially overlap other portions of the induction coil assembly.

[0063] The induction coil assembly 14 may be wound in situ around the substantially cylindrical wall 4 of the support 2, with the strip 22 and the electrical insulation layer 24 guided by the opposing annular flange surfaces 8b, 12b during the winding process. In this embodiment, the support 2 functions as a coil former. Alternatively, if the support is suitably modified, the induction coil assembly may be pre-formed and then placed around the heating chamber 6.

[0064] In the wound induction coil assembly 14, the axial position of the strip of conductive material 22 does not change around the circumference of the induction coil assembly 14. The strip 22 is wound around the heating chamber 6 at successively increasing distances from the central axis of the induction coil assembly, with each turn completely overlapping the preceding turn to form a spiral structure. The strip of conductive material 22 defines the induction coil. While the strip 22 is bonded or secured to the electrically insulating layer 24 on only one side, it can be seen, particularly in FIG. 2, that the spiral structure of the induction coil assembly 14 as a whole means that adjacent turns of the strip 22 are insulated from one another by the intervening electrically insulating layer 24.

[0065] A first connector leg 26 protrudes from a first end 22a of the strip 22, and a second connector leg 28 protrudes from a second end 22b of the strip. The first and second connector legs 26, 28 protrude axially beyond the induction coil assembly 14, as shown. The first connector leg 26 is located at a radially innermost portion of the wound strip 22, and the second connector leg 28 is located at a radially outermost portion of the wound strip. Referring to FIG. 2, during the winding process, the unwound induction coil assembly 14 may be positioned so that the first end 22a of the strip 22 is adjacent to the substantially cylindrical wall 4 and spaced from the wall 4 by the electrical insulation layer 24, and then the strip and electrical insulation layer are wound together in a counterclockwise direction around the substantially cylindrical wall 4.

[0066] The first and second connector legs 26 , 28 extend through slots 30 formed in the base 8 of the support 2 .

[0067] The induction coil assembly 14 has 4.5 turns, i.e., the induction coil assembly 14 extends 4.5 times around the heating chamber 6. Half a turn means that the first and second connector legs 26, 28 are conveniently positioned diametrically opposite one another. Slots 30 are also formed in the base 8 diametrically opposite one another.

[0068] 6 and 7, there is shown a schematic representation of an aerosol generating device 100 according to one embodiment of the present disclosure. The induction heating assembly 1 described above with reference to Figures 1 to 5 forms part of the aerosol generating device 100. The aerosol generating device 100 further comprises a body assembly 102 having a controller (e.g., a digital controller) 104 and a power source 106, such as a rechargeable battery.

[0069] The body assembly 102 includes a first connector 108 and a second connector 110. The first connector 108 and the second connector 110 are adapted to engage the first and second connector legs 26, 28 of the induction coil assembly 14 to provide an electrical connection between the body assembly 102 and the induction heating assembly 1. The induction heating assembly 1 may be designed to be removably connected to the body assembly 102 (e.g., to allow for installation of a replacement induction heating assembly), in which case the engagement between the first and second connectors 108, 110 and the first and second connector legs 26, 28 may be removably engaged. The first and second connector legs 26, 28 may be provided with a first type of connector end, and the first and second connectors 108, 110 may be provided with a second type of connector end that is mateable with the first type of connector end. 7 shows schematically how the induction heating assembly 1 may be connected to the body assembly 102, with the first connector leg 26 engaging the first connector 108 and the second connector leg 28 engaging the second connector 110. Thus, an electrical connection is provided between the induction coil assembly 14 (and in particular the strip of conductive material 22 defining the induction coil) and the controller 104 and power supply 106 of the body assembly 102. The induction coil assembly 14 may thus be controlled by the controller 104 to generate an electromagnetic field for heating one or more susceptors within the aerosol-generating article by inducing eddy currents and / or magnetic hysteresis losses in the susceptors.

[0070] An example of one type of aerosol-generating article 200 is shown schematically in Figures 6 and 7. In Figure 7, the aerosol-generating article 200 is housed within the heating chamber 6 of the induction heating assembly 1 and can be heated therein. The aerosol-generating article 200 comprises a body of aerosol-forming material 204. The aerosol-forming material 204 comprises one or more susceptors (not shown) and releases volatile compounds upon heating. The volatile compounds can include flavor compounds such as nicotine or tobacco flavorings. The aerosol-generating article 200 is substantially cylindrical in shape, and the aerosol-forming material 204 is held inside a tube 206 of air-impermeable material, such as paper.

[0071] A filter 208 is provided at one end of the aerosol-forming article 200, through which the aerosol released upon heating can be inhaled by a user. The filter 208 is spaced from the main body of the aerosol-forming material 204 by a cooling space 210. A breathable filter or cap 212 is provided at the other end of the aerosol-generating article 200 to contain the aerosol-forming material 204. In use, when the aerosol-generating article 200 is contained within the heating chamber 6, the filter or cap 212 is positioned adjacent to the base 8 of the support 2, as shown schematically in FIG. 7 . Air may be drawn through the air inlet 10 and enter the aerosol-generating article 200 through the filter or cap 212.

[0072] The depth D of the heating chamber 6 may be defined as the dimension in the axial direction of the induction heating assembly 1 that overlaps the body of aerosol-forming material 204 when the aerosol-generating article 200 is contained within the heating chamber 6. The width of the unwound strip of conductive material 22 defines the axial height of the wound induction coil and may be substantially equal to or greater than half the depth D to provide effective heating of the aerosol-forming material 204. In the induction coil assembly 14 shown schematically in FIGS. 1-7, the axial height of the strip of conductive material 22 is equal to or greater than the axial height of the induction coil 5, which shows that the width W of the unwound strip 22 is slightly less than the width of the unwound electrical insulation layer 24, and remains substantially the same along the entire length of the electrical insulation layer, i.e., from the first end 24a to the second end 24b, and thus along the circumference of the wound induction coil assembly 14.

[0073] 8 and 9, an induction coil assembly 32 according to a second embodiment of the present disclosure is shown schematically. The induction coil assembly 32 is similar to the induction coil assembly 14 described with reference to FIGS. 1-7, and like parts are given the same reference numerals. In the induction coil assembly 32, the axial height of the strip of conductive material 34 is substantially the same as the height of the electrical insulation layer 24, thereby providing a structure that is easy to manufacture. This is most clearly shown in FIG. 8, which shows that the width of the unwound strip 34 is the same as the width of the unwound electrical insulation layer 24 and remains substantially the same along the entire length of the electrical insulation layer, and therefore along the circumferential direction of the wound induction coil assembly 32.

[0074] 10 and 11 schematically illustrate an induction coil assembly 36 according to a third embodiment of the present disclosure. The induction coil assembly 36 is similar to the induction coil assemblies 14, 32 described with reference to FIGS. 1-9, and like parts are given the same reference numerals. In the induction coil assemblies 14, 32 described above, only one side of the strips of conductive material 22, 34 is bonded or secured to the electrically insulating layer 24. The other side of the strips 22, 34 remains unbonded or unsecured, but is disposed adjacent to the electrically insulating layer of a radially adjacent turn when the induction coil assemblies 14, 32 are wound into a spiral configuration. In the induction coil assembly 36 shown in FIGS. 10 and 11, the strips of conductive material 22 are bonded or secured to the first electrically insulating layer 24 and the second electrically insulating layer 38, such that the strips 22 are sandwiched or embedded therebetween. In FIG. 10, a portion of the second electrically insulating layer 38 has been removed to reveal the strips 22 and the first electrically insulating layer 24.

[0075] 12 and 13, an induction coil assembly 40 according to a fourth embodiment of the present disclosure is schematically illustrated. The induction coil assembly 40 is similar to the induction coil assemblies 14, 32, and 36 described with reference to FIGS. 1-11, and like parts are given the same reference numerals. Referring to FIG. 12, which shows the induction coil assembly 40 before winding, the induction coil assembly 40 includes a strip of conductive material 42 bonded or secured to the electrical insulation layer 24. In this embodiment, the axial height of the strip 42 is narrower than the axial heights of the strips 22 and 34 described above and remains constant along the circumference of the induction coil assembly 40. Referring to FIG. 12, the unwound strip 42 extends from one corner of the unwound electrical insulation layer 24, diagonally across the electrical insulation layer, to the opposite corner. This means that after the induction coil assembly 40 is wound into a spiral configuration, the strip of conductive material 42 defines an induction coil having a helical configuration. The axial position of the induction coil varies around the circumference of the wound induction coil assembly 40 such that the induction coil is wound around the heating chamber at successively increasing distances from the central axis of the induction coil assembly 40, with each turn being axially offset from the preceding turn. This axial offset between adjacent turns of the strip 42 is most clearly shown in FIG. 13. It should also be noted from FIG. 13 that the turns of the strip 42 are not arranged in the same cylindrical plane, but rather, due to the overall spiral structure of the induction coil assembly 40, the first connector leg 26 is located at the radially innermost portion of the wound strip 42 and the second connector leg 28 is located at the radially outermost portion of the wound strip. Thus, the turns of the strip 42 are actually arranged in a frustoconical plane, and the axial offset between adjacent turns is axially offset from the preceding turn. The induction coil specifically has a conical helical structure.

[0076] 14 and 15, an induction coil assembly 44 according to a fifth embodiment of the present disclosure is schematically illustrated. The induction coil assembly 44 is similar to the induction coil assemblies 14, 32, 36, and 40 described with reference to FIGS. 1-13, and like parts are given the same reference numerals. Referring to FIG. 14, which shows the induction coil assembly 44 before winding, the induction coil assembly 44 comprises multiple strips 46a, 46b, ..., 46g of conductive material bonded or secured to the electrically insulating layer 24. While a total of seven strips are shown in FIGS. 14 and 15, it will be understood that any suitable number may be provided. The strips 46a, 46b, ..., 46g extend parallel along the conductive layer 24 between the first and second connector legs 26, 28. Each strip of conductive material 46 defines an induction coil having a spiral configuration. In particular, the axial position of each strip 46a, 46b, ..., 46g does not vary along the circumference of the induction coil assembly 44, and each strip is wound around the heating chamber 6 at a continuously increasing distance from the central axis of the induction coil assembly 44. Each turn 46a, 46b, ..., 46g of each strip completely overlaps the previous turn to form a spiral structure.

[0077] The strips 46a, 46b, ..., 46g are unevenly spaced along the width of the unwound electrical insulation layer 24 (i.e., in the axial direction of the wound induction coil assembly 44). In particular, the spacing between each adjacent pair of strips 46a, 46b, ..., 46g gradually varies along the width of the unwound electrical insulation layer 24. Referring to FIG. 15 , the strips 46a, 46b located near the top 12 of the support 2 are closer to each other than the strips 46f, 46g located near the bottom 8 of the support. This means that the induction coils defined by the strips 46a, 46b, ..., 46g are concentrated at the top of the induction coil assembly 44. In alternative embodiments, the induction coils may be concentrated at the middle or base of the induction coil assembly. The uneven distribution of the induction coils in the axial direction of the induction coil assembly 44 can provide a desired electromagnetic field distribution within the heating chamber 6. In an alternative embodiment, the spacing between each adjacent pair of strips may be substantially the same, so that there is a substantially even distribution of induction coils axially along the induction coil assembly 44 .

[0078] 16 and 17, an induction coil assembly 48 according to a sixth embodiment of the present disclosure is schematically illustrated. The induction coil assembly 48 is similar to the induction coil assemblies 14, 32, 36, 40, and 44 described with reference to FIGS. 1-15, and like parts are given the same reference numerals. Referring to FIG. 16, which shows the induction coil assembly 48 before winding, the induction coil assembly 48 includes a strip of conductive material 50 bonded or secured to the electrical insulation layer 24. In this embodiment, the strip 50 has an axial height that varies or changes around the circumference of the wound induction coil assembly 48. Referring to FIG. 16, the unwound strip 50 has a generally triangular shape. This means that after the induction coil assembly 48 is wound into a spiral configuration, the strip of conductive material 50 defines an induction coil whose axial height varies around the circumference of the induction coil assembly. Such an induction coil can provide a desired electromagnetic field distribution within the heating chamber 6. The strip 50 is wrapped around the heating chamber 6 at successively increasing distances from the central axis of the induction coil assembly 48, with each turn overlapping the previous turn to form a spiral structure.

[0079] 18, an induction coil assembly 52 according to a seventh embodiment of the present disclosure is shown schematically. The induction coil assembly 52 is similar to the induction coil assembly 14 described with reference to FIG. 5, and like parts have been given the same reference symbols. Referring to FIG. 18, which shows the induction coil assembly 52 before it is wound, the third connector leg 54 is electrically conductive. The third connector leg 54 protrudes from the central portion 22c of the strip of material 22. Thus, the third connector leg 54 is disposed along the length of the strip 22, between the first connector leg 26 and the second connector leg 28. It will be readily understood that any of the other induction coil assemblies described above may include a third connector leg in a similar configuration.

[0080] FIG. 19 is a circuit diagram of a portion of the electronic circuit of the aerosol generating device. The electronic circuit is electrically connected to the induction coil assembly 52 shown in FIG. 18. The first and second connector legs 26, 28 are electrically connected to power semiconductor switches T1, T2 of the electronic circuit. The power semiconductor switches T1, T2 may be controlled to turn on and off at high frequency to alternately connect each of the first and second connector legs 26, 28 to ground, causing current to flow back and forth in both directions through the induction coil assembly 52, particularly through the strip of conductive material 22, which defines the induction coil, represented by inductor L1 in the circuit diagram of FIG. 19. Thus, turning the power semiconductor switches T1, T2 on and off generates an alternating electromagnetic field that heats one or more susceptors in the aerosol-generating article by inducing eddy currents and / or magnetic hysteresis losses in the susceptors. The power semiconductor switches T1, T2 may be, for example, MOSFETs. Capacitor C1 is electrically connected in parallel with inductor L1 to first and second connector legs 26, 28. Together, inductor L1 and capacitor C1 define a parallel LC circuit. Third connector leg 54 of induction coil assembly 52 functions as a so-called "center tap" and is electrically connected to the power supply through a low-pass filter represented by choke coil L2. Choke coil L2 can limit the current in inductor L1 to an acceptable level and help optimize its frequency characteristics.

[0081] While exemplary embodiments have been described in the preceding paragraphs, it should be understood that various modifications can be made to these embodiments without departing from the scope of the appended claims. Thus, the breadth and scope of the claims should not be limited to the above-described exemplary embodiments.

[0082] Unless the context clearly requires otherwise, throughout this specification and claims, the words "comprise," "comprising," and the like are to be construed in an inclusive, i.e., "including but not limited to," sense, as opposed to an exclusive or exhaustive sense.

Claims

1. An induction heating assembly (1) for an aerosol generating device (100), said induction heating assembly (1) comprising a heating chamber (6) for accommodating an aerosol-generating article (200) during use, and an induction coil assembly (14; 32; 36; 44; 48) substantially surrounding said heating chamber (6), said induction coil assembly (14; 32; 36; 44; 48) comprising an electrically insulating layer (24) and conductive tracks (22; 34; 46; 50), said induction coil assembly (14; 32; 36; 44; 48) having a substantially tubular structure, said conductive tracks (22; 34; 46; 50) being multiplexed around said heating chamber (6). the conductive tracks (22; 34; 46; 50) are wound in several turns, at least a portion of the conductive tracks (22; 34; 46; 50) overlapping another portion of the conductive tracks (22; 34; 46; 50) in the axial direction of the induction coil assembly (14; 32; 36; 44; 48), the electrically insulating layer (24) being located between adjacent conductive tracks (22; 34; 46; 50), the heating chamber (6) being defined by one or more walls (4) of a support (2), the support (2) comprising at least one flange (8 a, 12 a) supporting at least one axial end (14 a, 14 b) of the induction coil assembly (14).

2. 2. The induction heating assembly (1) of claim 1, wherein the induction coil assembly (14; 32; 36; 44; 48) has a spiral structure.

3. 3. An induction heating assembly (1) according to claim 1 or 2, further comprising connector legs (26, 28) electrically connected to the ends (22a, 22b) of the conductive tracks (22; 34; 46; 50) and protruding from the conductive tracks (22; 34; 46; 50).

4. The induction heating assembly (1) of claim 3, further comprising a base (8) supporting an axial end (14b) of the induction coil assembly (14).

5. 5. The induction heating assembly (1) of claim 4, wherein the base (8) comprises slots or openings (30) for receiving the connector legs (26, 28).

6. The induction heating assembly (1) of any one of claims 1 to 5, further comprising an electromagnetic shield (16) substantially surrounding the induction coil assembly (14).

7. The induction heating assembly (1) of claim 6, wherein a gap (18) exists between the induction coil assembly (14) and the electromagnetic shield (16).

8. A method for manufacturing an induction heating assembly (1), said method comprising: forming a heating chamber (6); forming or disposing an induction coil assembly (14; 32; 36; 44; 48) substantially around the heating chamber (6), the induction coil assembly (14; 32; 36; 44; 48) comprising an electrically insulating layer (24) and a conductive track (22; 34; 46; 50), the induction coil assembly (14; 32; 36; 44; 48) having a substantially tubular structure, the conductive track (22; 34; 46; 50) wound around the heating chamber (6) multiple times, and the conductive track (22; 34; 46; 50) at least a portion of the conductive tracks (22; 34; 46; 50) overlaps another portion of the conductive tracks (22; 34; 46; 50) in the axial direction of the induction coil assembly (14; 32; 36; 44; 48), the electrically insulating layer (24) is located between adjacent conductive tracks (22; 34; 46; 50), the heating chamber (6) is defined by one or more walls (4) of a support (2), the support (2) comprising at least one flange (8a, 12a) supporting at least one axial end (14a, 14b) of the induction coil assembly (14).

9. 9. The method of claim 8, wherein the step of forming or arranging the induction coil assembly (14; 32; 36; 44; 48) comprises a step of winding the electrically insulating layer (24) and / or the conductive track (22; 34; 46; 50) around the heating chamber (6) so that the induction coil assembly (14; 32; 36; 44; 48) has a spiral configuration.

10. 10. The method of claim 9, wherein the electrically insulating layer (24) and / or the conductive tracks (22; 34; 46; 50) are wrapped around the one or more walls (4), and the support (2) comprises at least one flange (8a, 12a), the at least one flange (8a, 12a) extending outward from the one or more walls (4) and guiding the electrically insulating layer (24) and / or the conductive tracks (22; 34; 46; 50) during the wrapping step.

11. 11. The method according to any one of claims 8 to 10, wherein the induction coil assembly (14; 32; 36; 44; 48) comprises connector legs (26, 28) electrically connected to ends of the conductive tracks (22; 34; 46; 50), and wherein the step of forming or positioning the induction coil assembly (14; 32; 36; 44; 48) is performed such that the connector legs (26, 28) protrude from the conductive tracks (22; 34; 46; 50).

12. The method of claim 11, further comprising electrically connecting the connector legs (26, 28) to connectors (108, 110) of a body assembly (102) of an aerosol generating device (100).

13. The method of any one of claims 8 to 12, further comprising forming or disposing an electromagnetic shield (16) substantially around the induction coil assembly (14; 32; 36; 44; 48).

Citation Information

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