Heater structure

The heater configuration for aerosol-generating devices addresses heat management issues by using a tubular heating chamber with an insulating layer and support assembly, ensuring effective thermal insulation and safety, thus creating a compact and user-friendly device.

JP2025186401APending Publication Date: 2025-12-23JT INTERNATIONAL SA
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Patent Information

Application Number
JP2025154349
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2020-02-28
Filing Date
2025-09-17
Publication Date
2025-12-23

AI Technical Summary

Technical Problem

Existing aerosol-generating devices face issues with heat management, leading to potential damage or danger from overheating of power sources and electronic components due to their proximity to the heating chamber.

Method used

A heater configuration featuring a tubular heating chamber with an insulating layer and insulation support assembly, utilizing non-metal materials like PEEK, ceramic fibers, and metal oxides to minimize heat transfer and improve thermal insulation, while being lightweight and cost-effective.

Benefits of technology

The configuration provides improved thermal insulation, reduces heat transfer to sensitive components, and enhances safety by minimizing the risk of fire or explosion, resulting in a compact and user-friendly device.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a heater structure for an aerosol generation device which shows an improved thermal insulation property, allows a larger freedom when selecting an insulation material, and having a lower cost and lighter weight compared to a conventional insulation heater such as the one using a vacuum tube.SOLUTION: A heater structure 1 includes: a tubular heating chamber 10 having a cavity 11 configured to store an aerosol generating substrate; an insulation layer 20 wound around the heating chamber in a circumferential direction; and an insulation material supporting assembly 40 having a rigid enclosure provided around the heating chamber. The insulation material supporting assembly is configured to engage the heating chamber and the insulation layer and hold the insulation layer at a predefined position around the heating chamber. The insulation material supporting assembly reduces a thermal transfer from the heater and improves easier assembly.SELECTED DRAWING: Figure 1B
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Description

[Technical Field]

[0001] The present disclosure relates to heater configurations, particularly heater configurations for aerosol generating devices. The disclosure is particularly applicable to portable aerosol generating devices that may be self-contained and low-temperature. Such devices can heat tobacco or other suitable aerosol substrate materials by conduction, convection, and / or radiation, rather than by combustion, to generate an aerosol for inhalation. [Background technology]

[0002] The popularity and use of risk reduction or risk modification devices (also known as vaporizers) has grown rapidly in recent years as an aid to assisting regular smokers who wish to quit smoking traditional tobacco products such as cigarettes, cigars, cigarillos, and rolling tobacco. A variety of devices and systems are available that heat an aerosolizable substance to release a vapor for inhalation, rather than relying on the combustion of tobacco.

[0003] A commonly available risk reduction or risk modification device is the heated substrate aerosol generator or heat-and-burn device. This type of device generates an aerosol or vapor by heating an aerosol substrate, typically containing moist tobacco or other suitable aerosolizable material, to temperatures typically ranging from 150°C to 300°C. By heating, rather than burning or combusting, the aerosol substrate releases an aerosol containing the components desired by the user but without the toxic and carcinogenic by-products of combustion and burning. Furthermore, aerosols produced by heating tobacco or other aerosolizable material typically do not contain the burnt or bitter taste that can be unpleasant to users due to combustion and burning. Therefore, the substrate does not require sugars and other additives typically added to such materials to make the smoke and / or vapor more palatable to users.

[0004] Known aerosol-generating devices typically include a heating chamber for containing a consumable aerosol-generating substrate, a power source, and control circuitry for controlling the supply of power from the power source to the heating chamber. One known problem with such devices is that the inevitable proximity of the power source and control circuitry to the heating chamber within the device can result in undesirable heating of the power source and electronic circuitry. Such heating can damage these heat-sensitive electronic components and, in some cases, can even be dangerous, involving the risk of fire or explosion, if components not designed to be heated become too hot.

[0005] It is an object of the present invention to address the above-mentioned problems and to provide an aerosol generating device with improved heat management, while still providing a compact and user-friendly device. Summary of the Invention [Means for solving the problem]

[0006] In a first aspect of the present invention, a heater configuration for an aerosol-generating device is provided, the heater configuration comprising: a tubular heating chamber with a cavity configured to accommodate an aerosol-generating substrate; an insulating layer wrapped circumferentially around the heating chamber; and an insulation support assembly comprising a rigid enclosure disposed around the heating chamber, the insulation support assembly configured to engage the heating chamber and the insulating layer and hold the insulating layer in place around the heating chamber. Devices utilizing such a heating configuration exhibit improved thermal insulation performance and allow greater flexibility in selecting insulating materials. The heater configuration according to the present invention is also lower cost and lighter weight than conventional insulated heaters, such as those utilizing vacuum tubes. The insulation support assembly reduces heat transfer from the heater, further improving ease of assembly.

[0007] Preferably, the insulation support assembly comprises a non-metal. Preferably, the insulation support assembly is made of a non-metal. Preferably, the non-metal is a high temperature resistant polymer, most preferably polyetheretherketone (PEEK). Such materials reduce heat transfer to components surrounding the heater arrangement and are lightweight, improving usability and ease of assembly.

[0008] Preferably, the insulating layer comprises a sheet of insulating material. Preferably, the insulating layer is wrapped around the tubular heating chamber one or more times. Preferably, the insulating layer comprises one or more of ceramic fibers, e.g., Superwool™, one or more metal oxides, and aerogel. In some embodiments of the present invention, the insulating layer comprises a ceramic fiber sheet comprising aluminum oxide, silicon oxide, and / or ZrO2. Preferably, the insulating layer is formed as a blanket, felt, or paper. Specifically, the insulating layer may comprise a layer wrapped around the heating chamber. The insulating layer may comprise a flexible, flat piece of insulating material suitable for wrapping around the heating chamber, inside or outside the rigid enclosure.

[0009] Preferably, the rigid enclosure extends around the circumference of the tubular heating chamber and over most, preferably all, of the length of the heating chamber, so that the rigid enclosure can support the insulating layer over the circumference and length of the tubular heating chamber, i.e., over the cylindrical surface area.

[0010] Preferably, the insulation support assembly is configured to contact the heat chamber at only one end or both ends of the heat chamber to support the rigid enclosure in place around the heat chamber. Since the longitudinal ends of the heat chamber are the coldest points on the heat chamber, connecting the support assembly to one or both end points minimizes heat transfer to the insulation support assembly. Other than the connection points at one or both ends of the heat chamber, the remainder of the insulation support is preferably supported in a manner that leaves a gap between the insulation support and the surface of the heat chamber.

[0011] Preferably, the insulation support assembly includes one or more annular supports mounted around the end of the heating chamber to support the rigid enclosure in place around the heating chamber. The annular supports preferably extend partially or completely around the circumference of the heating chamber. In this manner, the annular supports can provide a secure mechanical connection for supporting the rigid enclosure. The one or more annular supports may include an annular body extending around most of the circumference of the end of the heating chamber and a plurality of longitudinal struts periodically disposed around the annular body and extending along the length of the heating chamber. In this manner, the length tolerance of the insulation support assembly and the heater chamber is greater, facilitating the manufacturing process. Preferably, the annular support and the rigid enclosure are configured to connect via a mechanical connection such that the annular support supports the rigid enclosure. The one or more annular supports may also be configured to engage a frame within the aerosol generating device, thereby allowing the heater assembly to be mounted in place within the aerosol generating device.

[0012] Preferably, the insulating layer is wrapped around the outer surface of the rigid enclosure, in other words the outer surface of the rigid enclosure holds the insulating layer in place around the heating chamber. The rigid enclosure may comprise a frame connected to the ends of the heating chamber on which the insulating layer is supported.

[0013] In these embodiments of the invention, the rigid enclosure preferably comprises a frame having a plurality of longitudinal struts extending along the length of the tubular heating chamber, with the insulating layer wrapped around the outer surface formed by the longitudinal struts. The frame may also comprise two end rings, each end ring positioned around a longitudinal end of the heating chamber, with the longitudinal struts extending between the end rings along the length of the heating chamber. In this manner, a minimal amount of material is used for the rigid enclosure, which functions to support the insulating layer in place. Furthermore, the number of parts required for the insulation support assembly is reduced.

[0014] Preferably, the rigid enclosure comprises gripping members configured to grip the insulating layer and hold at least a portion of the insulating layer in place. In some embodiments, the gripping members extend radially outward from the rigid enclosure to engage the insulating layer. For example, the gripping members may include barbs or sharp points configured to pierce the insulating layer. In other embodiments, the gripping members may be placed on the wrapped insulation to hold the insulation in place; for example, the gripping members may comprise clamps.

[0015] In another embodiment of the invention, the insulating layer is wrapped around the tubular heating chamber and placed within a rigid enclosure, which thus supports the outer surface of the insulating layer and holds it in place.

[0016] Preferably, the rigid enclosure comprises a tubular casing configured to surround the tubular heating chamber to form a cylindrical cavity between the outer surface of the heating chamber and the inner surface of the casing, with the insulating layer held within the cavity. The enclosure thus holds the insulating layer in place and provides a rigid structure to allow mounting of the heater assembly within the aerosol generating device. The tubular casing also preferably includes insulating material to further enhance thermal management properties. Preferably, the casing cavity is sized so that the insulating layer contacts both the surface of the heating chamber and the inner surface of the casing in at least one circumferential region.

[0017] The cylindrical cavity preferably has a radial thickness of 2 mm to 4 mm, more preferably 2.4 to 3.5 mm, and most preferably about 3.0 mm. The insulating layer is preferably wrapped so that it occupies the entire radial thickness of the cavity.

[0018] Preferably, the heater configuration further comprises an annular support disposed at the end of the tubular heating chamber between the tubular heating chamber and the casing, the annular support extending around a majority of the circumference of the tubular heating chamber. In this manner, the annular support serves to separate the tubular casing from the heating chamber, contacting the heating chamber only at its coldest points to minimize heat transfer to the insulation support assembly. The annular support may be completely enclosed by the casing or may extend outward from the case to allow connection to, for example, a frame within the aerosol generating device.

[0019] Preferably, the annular support comprises a plurality of axial struts, e.g., three axial struts, extending along the axis of the tubular heating chamber and configured to retain the heating chamber within the casing, the axial struts functioning to grip the heating chamber and support it in the correct position within the casing while minimizing contact with the heating chamber.

[0020] In some examples, the tubular heating chamber may include a circumferential flange (referred to herein as a lip). The insulation support assembly may include a connection feature configured to receive the circumferential lip and support the heating chamber. Specifically, the connection feature may be configured to receive and grip the lip to hold the heating chamber in place. For example, the connection feature may include a groove or recess configured to engage the lip. Specifically, the tubular casing and the annular support may be configured to lock together around the lip to secure the heating chamber within the tubular casing. This provides a secure configuration to hold the heating chamber in place, while gripping the lip only around the opening to the heating chamber, thereby minimizing heat transfer from the heating chamber to the support assembly.

[0021] The tubular casing may comprise two semi-cylindrical parts connected along a longitudinal interface to form the tubular casing around the heating chamber, which facilitates assembly and allows the insulating layer to be wrapped over the heating chamber and the tubular casing connected around the heating chamber and the insulating layer.

[0022] The heater arrangement may further comprise a gripping member attached to the exterior surface of the heating chamber and configured to grip the insulating layer and hold at least a portion of the insulating layer in place. Preferably, the gripping member comprises a barbed clamp configured to be attached to the exterior surface of the heating chamber below the insulating layer, the barbed clamp comprising outwardly facing barbs configured to grip the insulating layer.

[0023] The tubular casing may include a base surface that at least partially surrounds the tubular casing around the base (closed) end of the tubular heating chamber. The tubular casing may be configured to provide a gap between the base surface of the casing and the base surface (closed end) of the heating chamber. Insulation may be provided in the gap, for example, an insulating material may be disposed in the gap between the closed end of the heating chamber and the base end of the tubular casing. The base surface of the tubular casing may further include an opening that allows an electrical connection to the heating chamber (i.e., a heater configured to heat the heating chamber) to pass therethrough. The base surface is preferably configured such that the opening is oriented at an angle relative to the longitudinal axis of the heating chamber. In this manner, heat is not conducted directly from the casing along the tubular axis, but may be conducted away from sensitive electronic components, such as a battery.

[0024] In some embodiments in which the tubular heating chamber comprises an open end configured to receive the aerosol-generating substrate and an opposite closed end, the tubular casing may comprise an at least partially closed end, the at least partially closed end comprising a protrusion extending from an inner surface to engage the closed end of the heating chamber. The closed end of the tubular heating chamber may comprise a recess in an outer surface of the closed end, the protrusion configured to engage the recess, thereby providing additional stability while minimizing heat transfer between the heating chamber and the support assembly.

[0025] In some embodiments, where the tubular heating chamber has an open end configured to receive the aerosol-generating substrate and an opposite closed end, the heater configuration may further include an end cap support welded to the outer surface of the closed end of the heating chamber and configured to support the tubular casing in place around the heating chamber. By welding the end cap support to the base of the heating chamber, preferably by spot welding, the heating chamber is supported at the coldest point on the heating chamber, and the weld provides a thermal barrier to reduce heat transfer to the end cap support. Additional insulating material may be provided between the end cap support and the heating chamber around the weld to further enhance the insulating effect. The end cap support preferably includes a protrusion extending from the disk-shaped body, the protrusion being welded to the closed end of the heating chamber. The heating chamber may include a recess on the outer surface of the closed end, the protrusion being welded within the recess to provide additional support. This configuration reduces the number of required components.

[0026] The end cap supports may include openings to allow electrical connections to pass through. The end cap supports are preferably metal end caps.

[0027] The insulating layer may be held in place by a piece of tape before being wrapped by the casing to prevent the insulating layer from unwinding before being wrapped.

[0028] Preferably, the tubular casing and the one or more annular supports are made of PEEK.

[0029] The tubular casing may be coated internally with a metallic heat reflective layer or may be wrapped with a metal foil together with an insulating layer.

[0030] The tubular casing may be externally covered by an adhesive support layer such as graphite with an adhesive layer.

[0031] The tubular casing may be assembled by mechanical connections and / or guide elements, such as one or more of pins / holes, press fits, ultrasonic welding, inorganic adhesives, screws, and magnets.

[0032] In a further aspect of the present invention there is provided an aerosol generating device comprising a heater arrangement as defined in the claims. The aerosol generating device preferably comprises an internal support frame, the insulation support assembly being configured to engage the internal support frame so as to hold the heater assembly in place within the aerosol generating device. [Brief explanation of the drawings]

[0033] [Figure 1A-1B] FIG. 1 is a schematic diagram of a heater configuration for an aerosol generating device. [Figure 2A-2B] FIG. 1 is a schematic diagram of an aerosol generating device. [Figures 3A-3F] FIG. 1 is a schematic diagram of a heater configuration for an aerosol generating device. [Figures 4A-4E] FIG. 1 is a schematic diagram of a heater configuration for an aerosol generating device. [Figures 5A-5E] FIG. 1 is a schematic diagram of a heater configuration for an aerosol generating device. [Figures 6A-6E] FIG. 1 is a schematic diagram of a heater configuration for an aerosol generating device. DETAILED DESCRIPTION OF THE INVENTION

[0034] 1A and 1B schematically illustrate a heater configuration 1 for an aerosol-generating device 100 such as that illustrated in FIG. 2. The heater configuration 1 includes a tubular heating chamber 10 with a cavity 11 configured to accommodate an aerosol-generating substrate. The tubular heating chamber 10 is wrapped with an insulating layer 20, shown in cross section in FIG. 1B, circumferentially surrounding the heating chamber 10. The heater configuration 1 further includes an insulation support assembly 30 including a rigid enclosure 40 disposed around the heating chamber 10. The insulation support assembly 30 is configured to engage the heating chamber 10 and the insulating layer 20 to hold the insulating layer 20 in place around the heating chamber 10.

[0035] Unlike known devices that typically use vacuum tubing as insulation for the heater chamber 10, the heater configuration 1 according to the present invention allows for a wider selection of insulating materials and improved insulation performance. The heater configuration 1 is lower cost, easier to assemble, and lighter weight than vacuum tubing, further improving ease of assembly and support within the device while providing the user with a lighter, more user-friendly device.

[0036] As shown in FIG. 1A, the insulation support assembly is a multi-component assembly comprising a rigid enclosure 40, which in the embodiment of FIG. 1 takes the form of a two-piece tubular housing comprising two semi-cylindrical housing sections 41, 42. The housing sections are connected around the heating chamber 10 along their longitudinal interfaces to form a rigid, cylindrical enclosure. The enclosure holds an insulating layer 20, shown in FIG. 1B, in place around the heating chamber 10. In the embodiment of FIG. 1, the heating chamber 10 is heated by a thin-film heater 12, shown in cross section in FIG. 1B, wrapped circumferentially around the exterior of the heating chamber 10. The insulating layer 20 surrounds the heating chamber 10 and the thin-film heater 12 to limit the path of heat from exiting the rigid enclosure 40 to other external components of the device.

[0037] 1A and 1B, the insulation support assembly 40 also includes a heater chamber support 50. In this case, the heater chamber support 50 takes the form of an annular or partially annular support that engages the ends 13, 14 of the tubular heater chamber 10 and further engages the rigid enclosure 40, such that the heater chamber support holds the heater chamber 10 in place within the rigid enclosure 40. As explained further below, the heater chamber support 50 contacts only the longitudinal ends 13, 14 of the heater chamber 10, which are the coldest points of the heater chamber 10, to minimize heat transfer from the heater chamber 10 to the rigid enclosure 40 and connected components of the aerosol generation device 100.

[0038] The heater assembly 1 assembled as shown in FIG. 1B may then be installed within the aerosol generation device as shown in FIGS. 2A and 2B. Specifically, the heater assembly 1 may be held within the housing 101 of the aerosol generation device 100 by a heater assembly frame 110. The heater chamber support 50 is configured to connect to connecting features on the heater chamber frame 110 such that the heater assembly 1 is supported within the housing 101 of the device 100 by engagement between the heater support 50 of the insulation support assembly and the frame 110. In this manner, thermal connection points between the heater chamber 10 and the remaining internal components and housing 101 of the device 100 are minimized. Specifically, because the chamber support 50 only contacts the heater chamber 10 at its longitudinal ends, which are its coldest points, and because contact between the heater chamber support 40 and the frame 110 and enclosure 40 is minimized, heat diffusion to the remaining components of the device is significantly limited.

[0039] The insulation support assembly, including the rigid enclosure 40 and heater chamber support 50, preferably comprises a heat-resistant polymer material such as PEEK. The insulation layer is preferably in the form of a sheet wrapped circumferentially around the heater chamber at least one turn, preferably multiple turns, to further improve thermal insulation. Various materials may be selected for the insulation layer 20. Examples include aerogel or ceramic fiber material, i.e., metal oxide fiber material. For example, ceramic fiber sheets include aluminum oxide, silicon oxide, and / or ZrO2. One example of such a material is Superwool™ blanket.

[0040] The rigid enclosure is configured to support a sheet of insulating material 20 in place around the heater chamber 10. In the embodiment of FIG. 1, the tubular housing 40 forming the rigid enclosure is preferably sized to provide a cylindrical cavity having a radial thickness of 2 to 4 millimeters, preferably about 3 millimeters. The insulation support assembly 30 includes a base heater chamber support 51 shaped to provide openings for connections from the heater 12 to pass through to the control circuitry and battery. As shown in FIG. 1B, the base heater chamber support 51 is preferably shaped to provide a path for directing the connections at an angle to the elongated axis of the heater assembly 1, blocking direct heat passage parallel to the elongated axis. This minimizes the passage of heat directly downward from the heater chamber to the battery and other internal components of the device, and instead directs heat laterally out in a direction generally perpendicular to the elongated axis of the heater assembly 1, further improving thermal management.

[0041] This general principle of the present invention thus provides a lightweight assembly 40 that surrounds the heater chamber 10 to securely hold the insulating layer 20 in place around the heater 12 and heater chamber 10, preferably by contacting the heater chamber only at its end points and maintaining minimal contact, thus providing an inexpensive, lightweight, and easy-to-assemble alternative to vacuum tubing for application in aerosol generating devices 1. Within this general concept, the heater configuration 1 can be realized in several different forms. Specific exemplary configurations in which the present invention can be implemented are illustrated in Figures 3, 4, 5, and 6 and are now described in detail. Individual components of the following examples may be interchanged between examples, and features of various embodiments can be combined within the broad principles of the present invention described above.

[0042] 3A-3F schematically illustrate an embodiment of a heater configuration 1 similar to that shown in FIGS. 1A and 1B in which the rigid enclosure takes the form of a two-piece cylindrical casing 41, 42. As noted above, the tubular heating chamber 10 has an open end 13 through which a consumable aerosol-generating substrate can be inserted into the interior cavity 11, and an opposite closed end 14 at the opposite longitudinal end of the chamber 10. The heating chamber 10 is wrapped with a thin-film heater 12 comprising a resistive heating track on a flexible, electrically insulating backing film, and connections 16 for connection to control circuitry and a power source extend out from the base 14 end of the heating chamber 10.

[0043] The first component of the insulation support assembly 40 is a base heat chamber support 51, which is sleeved over the base end 14 of the heat chamber 10 and over the thin film heater 12. The first heat chamber support 51 comprises an annular body 53 extending at least partially around the circumference of the base end 14 of the heat chamber 10 and further comprises a plurality of axial struts 52 extending partially from the annular body 53 along the length of the heat chamber 10. The struts 52 thus engage the end 14 of the heat chamber 10 and provide support that allows the heat chamber to be securely mounted within the enclosure 40. As shown in FIG. 3B, the struts 52 extend over the thin film heater 12 to securely grip the thin film heater 12 and the heat chamber 10. An insulation layer 20 in the form of a sheet of insulating material is then wrapped circumferentially around the heat chamber, the thin film heater 12, and the struts 52 of the first heat chamber support 51, as shown in FIG. 3C. The assembled heating chamber 10 and insulating layer 20 are then placed within the first semi-cylindrical portion 42 of the rigid enclosure 40, as shown in Figure 3C.

[0044] In this example, a circumferential flange or lip 15 around the open end 13 of the heating chamber is received within a corresponding circumferential recess 43 extending around the inner surface of the open end 42b of the first portion 42 of the rigid enclosure 40. A second heating chamber support 52 is then connected to the open end 42b of the heating chamber and engages the lip 15 and connection points around the open ends of the semi-cylindrical portions 41, 42 of the rigid enclosure 40, as shown in FIG. 3D. The heating chamber lip 15 is retained within the recess formed by the open ends 41b, 42b of the tubular casing and the heating chamber support 52.

[0045] 1B. Specifically, the heat chamber support 52 is shown clipping onto connection points at the open ends of the tubular casing parts 41, 42 in a manner that grips the lip 15 of the heat chamber 10 between the ends 41 b, 42 b of the semi-cylindrical portions 41, 42 of the casing 40 and the heat chamber support 52. In this manner, direct contact with the heat chamber 10 exists only at the open ends of the cylindrical rim 15, reducing heat transfer to the heater support 52.

[0046] Returning to Figure 3E, second portion 41 of cylindrical housing 40 is then snapped into position to form a complete housing around the insulation and tubular heating chamber 10 to provide heater assembly 1 as shown in Figure 3F. Mechanical connections 43 at the base of casing 40, together with second heating chamber support 52, allow the assembled heater assembly 1 to be connected into aerosol generation device 100.

[0047] A further embodiment of a heater assembly 1 according to the present invention is illustrated in Figures 4A-4E. This configuration utilizes the same central inventive concept as in the use of an insulation support assembly 30 including a rigid enclosure 40 that functions to hold the insulation layer 20 in place around the heating chamber 10. However, in this embodiment of the invention, instead of the rigid enclosure 40 being disposed outside the insulation layer 20 so as to hold the insulation layer 20 on its outer surface, the rigid enclosure 40 comprises a frame 40 that supports the insulation layer 20 from below against its (radially) inner surface. Specifically, the frame 40 provides a support surface around which the insulation layer 20 is wrapped.

[0048] 1 and 3, in this example, the heating chamber 10 is heated by a thin-film heater 12 wrapped circumferentially around the exterior of the heating chamber 10, as shown in FIG. 4A. As mentioned above, in this case, the rigid enclosure 40 is in the form of a tubular frame 45 that is sleeved around the tubular heating chamber 10. The frame 45 that provides the rigid enclosure 40 includes two end rings 46 and a plurality of longitudinal struts that extend between the end rings 46 in a direction corresponding to the elongated axis of the tubular heating chamber 10. As shown in FIG. 4B, the tubular heating chamber 10 is inserted into the frame 45 so that the heating chamber 10 is surrounded by the frame 45 and the longitudinal struts 47 extend along the length of the heating chamber 10.

[0049] Similar to the embodiments of FIGS. 1 and 3, an end ring 46a at the open end of the chamber may be configured to engage a circumferential lip 15 extending around the open end 13 of the heating chamber 10. In some embodiments, a connection mechanism similar to that shown in the enlarged detail of FIG. 1B may be used, in which the end ring 46a of the frame 45 and the heating chamber support 52 mechanically engage around the lip 15 of the heating chamber to secure the heating chamber in place. In this embodiment, a base end ring 46b of the support frame 45, shown in FIG. 4B, replaces the first heating chamber support 51 in the embodiment of FIGS. 1 and 3. Specifically, the frame 45 extends beyond the base end 14 of the heating chamber 10, and this frame 45 may be used in a similar manner to the manner in which the frame 45 is connected within the aerosol generation device 100 using the connecting features 43.

[0050] With the tubular heating chamber 10 and thin-film heater 12 held together by the mechanical connection between the frame 45 and the heating chamber support 52 and the contact of the longitudinal struts 47 on the outer surface of the thin-film heater 12, the sheet of insulating material 20 is then wrapped around the outer surface of the frame 45, formed by the longitudinal struts 47 of the frame 45. The frame 45 may further include one or more gripping means 48, in this case in the form of barbs 48, that pierce and grip the sheet of insulating material 20, as shown in FIG. 4D . The sheet of insulating material 20 is then wrapped circumferentially around the frame 45 and secured by engagement with the barbs 48. As with all embodiments, other attachment means may be used instead or in addition, such as strips of adhesive tape to hold the insulating layer 20 in place.

[0051] Similar to the previously described embodiments, the heater configuration 1 shown in FIG. 4E includes a sheet of insulating material 20 held by an insulation support assembly that engages the heater chamber 10 and holds the insulating layer 20 in place around the heater chamber 10. The assembled heater assembly 1 may then be connected within an aerosol generation device 100, as shown in FIGS. 2A and 2B. Specifically, the end rings 46 of the frame 45 may include mechanical attachment means, such as clips 43, in this embodiment on the base end ring 46b, to allow for mechanical connection with the heater chamber frame 110 within the aerosol generation device 100. The heater chamber support 52 may also allow for connection to internal components of the device, as shown in FIG. 2B, where the heater chamber support 52 connects to end caps 120 that function to securely hold the heater assembly 1, along with the frame 110, in place within the device 100.

[0052] A further embodiment of a heater configuration according to the present invention is illustrated in Figures 5A-5E. The configuration of Figure 5 uses a tubular housing 40 as a rigid enclosure in a similar configuration to the embodiment of Figures 1 and 3, but uses alternative means for attaching the sheet of insulating material 20 and alternative means for engaging the tubular housing 40 to the heating chamber 10.

[0053] As with each of the previously described embodiments, the heater 12 is wrapped around the exterior of the heating chamber 10, as shown in FIG. 5A. The embodiment of FIG. 5 includes an additional component in the form of a clamp 31. The clamp 31 is sleeved around the thin-film heater and includes gripping means in the form of a barbed surface 32. The barbed surface 32 extends radially outward from the heating chamber 10 to secure the sheet of heating material 20 and functions in a manner similar to the barbs 4 in the arrangement of FIG. 4. The clamp 31 may be replaced with alternative means for gripping the sheet of insulating material 20, such as an adhesive or other type of gripping member. In this embodiment, the clamp 31 is in the form of a C-shaped component that is sleeved over the heating chamber 10 and thin-film heater 12, as shown in FIG. 5B, and has a serrated outward edge 32 configured to engage and grip the sheet of insulating material 20. The sheet of insulating material 20 is wrapped onto a gripping means 31 so as to wrap circumferentially around the heating chamber 10 and thin film heater 12 one or more times, as shown in Figure 5C.

[0054] As shown in FIGS. 5C-5E , the rigid enclosure 40 is in the form of a tubular casing or housing 40 comprising two semi-cylindrical housing parts 41 and 42 connected along their longitudinal interface to form a complete cylindrical housing around the insulating heat chamber 10. As with all similar embodiments of the present invention utilizing a multi-part housing, the parts 41, 42 may be fastened together mechanically or with an adhesive or other fastening means. The tubular casing providing the rigid enclosure 40 in the embodiment of FIG. 5 differs from the embodiments of FIGS. 1 and 3 in the manner in which it engages the tubular heat chamber 10. In this embodiment, the tubular casing 40 includes an internal protrusion 49 extending from the inner base surface and contacting the outer base surface at the closed end 14 of the heat chamber 10.

[0055] The protrusion 49 is configured to engage the heating chamber 20 to provide a stable contact to hold the heating chamber 10 in place within the tubular housing 40. In some embodiments, the tubular heating chamber 10 may have a corresponding recess on the outer base surface of the closed end 14 into which the protrusion 49 engages, providing additional stability to the heating chamber 10. The protrusion 49 may be provided on one of the two semi-cylindrical portions 41, 42. In the case of FIG. 5, the protrusion is provided on the lower semi-cylindrical portion 42 as shown in FIG. 5C. The other semi-cylindrical portion 42 of the tubular housing 40 may have an opening at the base end 41a to allow the heater connections to pass through. Specifically, portion 41 shown in FIG. 5D is fully open at the base end 41a to leave an opening through which the heater connections can pass.

[0056] The open ends of tubular casings 41b, 42b may include a circumferential recess 43 disposed around the inner surface of the opening, the circumferential recess configured to engage a circumferential lip 15 disposed around the open first end 13 of heating chamber 10. In other embodiments, tubular casing 40 may engage heating chamber 10 in a different manner, for example, having a plurality of radially inwardly extending protrusions that contact the outer surface of the chamber, or having a collar portion that engages the chamber without requiring a circumferential ridge 15 around the open end 13 of heating chamber 10.

[0057] The heating chamber 10, wrapped with the insulating sheet 20, is placed within the first semi-cylindrical portion 42 of the housing 40, as shown in FIG. 5C. The protrusion 49 engages the base of the heating chamber 10, and the open end 13 of the heating chamber engages the opposing surfaces of the open ends 41B, 42B of the housing 40, securing the heating chamber 10 in place within the housing 41, 42 without the need for additional heater supports as in the embodiments of FIGS. 3 and 4. The assembled heater arrangement 1 shown in FIG. 5E may include one or more mechanical features 43 on the exterior and / or end of the tubular housing 40 to facilitate connection of the heater arrangement 1 within the aerosol generating device 100, as described above. Assuming there is no contact with the cylindrical exterior surface of the heating chamber, this configuration reduces the number of insulation support assembly components required and provides good thermal insulation.

[0058] A further embodiment of a heater arrangement 1 according to the present invention is shown in Figures 6A-6E. This embodiment differs from the previously described embodiments in that it uses a means of supporting the tubular casing 40, including a welded support cap 33 welded onto the base end 14 of the heating chamber 10.

[0059] As shown in FIG. 6A , support cap 33 is a substantially planar component having a substantially circular disk shape with an opening 35, resembling a circular disk with a radial segment removed to form opening 35. Support cap 33 additionally includes a protrusion 34 extending vertically away from the flat plane of the disk-shaped body. Protrusion 34 is configured to engage a base surface at closed end 14 of heat chamber 10. As shown in FIG. 6C , the protrusion may be spot welded to the base surface of closed end 14 of heat chamber 10 at a plurality of welds 36. In this embodiment, base end 14 of heat chamber 10 includes a recess 18 configured to accommodate protrusion 34 of support cap 33.

[0060] This spot welding provides a thermal barrier between the heating chamber 10 and the support cap 33, significantly limiting heat transfer between the thermal cap 10 and the support cap 33. Furthermore, because the support cap 33 is welded to the coldest spot on the heating chamber 10, heat transfer from the heating chamber to the insulating support for the surrounding components is further reduced. Once connected to the heating chamber 10, the support cap 33 provides a means for connecting the surrounding housing and mounting the heater arrangement 1 within the aerosol generation device 100. As shown in FIG. 6C, an additional section of insulating material 37 may be provided between the base of the heating chamber 10 and the support cap 33 to further reduce heat transfer to the support cap 33.

[0061] As with the previously described embodiments of the present invention, heater 12 is wrapped circumferentially around the exterior of tubular heating chamber 10, as shown in Figure 6B. Because support cap 33 is already connected to heating chamber 10, electrical connections 16 for heater 12 may be aligned to pass through gap 35 in support cap 33, as shown in Figure 6B.

[0062] As shown in Figure 6D, once the thin film heater 12 is wrapped around the exterior of the heating chamber, the insulating sheet 20 is then wrapped around the exterior of the thin film heater 12. As with the embodiments of Figures 1, 3, and 5, the rigid enclosure 40 is provided by a two-piece tubular housing 41, 42. The tubular housings are then connected around the insulating heating chamber 10 to form the tubular casing 40. The tubular casing functions to hold the insulating sheet 20 in place around the heating chamber 10. Again, the semi-cylindrical housing portions 41, 42 may be mechanically connected along their longitudinal interface or secured by other means, such as adhesive.

[0063] As mentioned above, the open ends of the tubular casings 41 b, 42 b may engage the open end 13 of the heating chamber to provide further stabilization and support for the heating chamber within the rigid enclosure 40. This may be achieved by providing a circumferential lip or flange 15, as shown most clearly in Figures 6A and 6B, which is received in a corresponding circumferential recess 43 provided around the opening of the casing 40. The tubular casings 41, 42 may additionally include one or more mechanical features to allow the heater arrangement to be mounted within the aerosol generation device 100.

[0064] Several additional features and modifications can be applied to the above embodiments within the scope of the present invention. The insulation may be in the form of a sheet wrapped one or more times around the heating chamber. If the rigid enclosure is in the form of a casing, the casing may be sized to engage the outer surface of the wrapped insulation. In each case, the insulation layer 20 may be additionally supported by strips of adhesive tape to provide further support. To further insulate the tubular heating chamber 10, additional insulation may be provided within the tubular casings 41, 42 at the base surface near the closed end of the heater.

[0065] For example, the insulation support assembly 30 may be assembled with mechanical connections and / or guide elements, such as pins / holes, press fits, ultrasonic welding, inorganic adhesives, screws, or magnets. To further secure the rigid enclosure 40 in place, the rigid enclosure 40 may be externally covered with an adhesive support layer, such as a graphite layer with an adhesive layer. The rigid enclosure may also be internally coated with a metallic heat-reflective layer or metal foil, which in some embodiments may be wrapped with a super-insulating layer to further enhance the thermal management properties of the device.

[0066] Thus, the present invention provides a low-cost, lightweight, and easy-to-assemble means for insulating a heating chamber within an aerosol generating device.

[0067] Definitions and Alternative Embodiments It will be appreciated from the above description that many features of the described embodiments perform independent functions with independent advantages, and therefore the inclusion or omission of each of these independent features from the embodiments of the invention defined in the claims may be independently selected.

[0068] The term "heater" should be understood to mean any device for outputting sufficient thermal energy to form an aerosol from an aerosol substrate. The transfer of thermal energy from the heater to the aerosol substrate can be by conduction, convection, radiation, or any combination of these means. As a non-limiting example, a conductive heater may be in direct contact with the aerosol substrate, pressing against it, or may be in contact with a separate component, such as a heating chamber, that itself causes heating of the aerosol substrate by conduction, convection, and / or radiation.

[0069] The heater may be electrically powered, combustion powered, or powered by any other suitable means. Electrically powered heaters may include resistive track elements (optionally including insulating packaging), inductive heating systems (e.g., including electromagnets and high frequency oscillators), etc. The heater may be configured around the outside of the aerosol substrate, may penetrate partway or completely into the aerosol substrate, or any combination thereof. For example, instead of the heaters of the embodiments described above, the aerosol generating device may have a blade-type heater that extends into the aerosol substrate within the heating chamber.

[0070] The aerosol substrate includes tobacco, e.g., in dried or cured form, optionally with additional ingredients for flavor or to provide a smoother or more satisfying experience. In some examples, an aerosol substrate, such as tobacco, may be treated with a vaporizer. The vaporizer may improve vapor generation from the aerosol substrate. The vaporizer may include, for example, a polyol, such as glycerol, or a glycol, such as propylene glycol. In some cases, the aerosol substrate may not even contain tobacco or nicotine, but instead may contain natural or synthetic ingredients to provide flavor, volatility, improved smoothness, and / or other satisfying effects. The aerosol substrate may be provided as a solid or paste-type material in shredded, pelleted, powdered, granular, strip, or sheet form, optionally a combination thereof. Similarly, the aerosol substrate may be liquid or gel. Indeed, in some examples, it may include both solid and liquid / gel portions.

[0071] Thus, the aerosol-generating device 1 may equally be referred to as a "heated tobacco device," a "heated-not-burn tobacco device," a "device for vaporizing tobacco products," etc., and is to be construed as a device suitable for achieving these effects. The features disclosed herein are equally applicable to devices designed to vaporize any aerosol substrate.

[0072] The aerosol generation device may be configured to house the aerosol substrate within a pre-packaged substrate carrier. The substrate carrier may generally resemble a cigarette, with a tubular region having the aerosol substrate configured in a suitable form. Some designs may also include filters, vapor collection regions, cooling regions, and other structures. For example, an outer layer of flexible planar material, such as paper or foil, may also be provided to hold the aerosol substrate in place, further enhancing the resemblance to a cigarette or the like. The substrate carrier may be contained within a heating chamber, or may be longer than the heating chamber, such that a lid remains open while the substrate carrier is placed in the aerosol generation device 1. In such embodiments, the aerosol may be provided directly from the substrate carrier, which functions as a mouthpiece for the aerosol generation device.

[0073] As used herein, the term "aerosol" shall mean a system of particles dispersed in air or gas, such as a mist, fog, or smoke. Accordingly, the term "aerosolize" means to make into an aerosol and / or to disperse as an aerosol. Note that the meaning of aerosol / aerosolize is consistent with each of volatilize, atomize, and vaporize. For the avoidance of doubt, aerosol is used to consistently describe a mist or droplets containing atomized, volatilized, or vaporized particles. Aerosol also includes a mist or droplets containing any combination of atomized, volatilized, or vaporized particles.

Claims

1. 1. A heater arrangement for an aerosol generating device, the heater arrangement comprising: a tubular heating chamber having a cavity configured to accommodate an aerosol-generating substrate; an insulating layer wrapped circumferentially around the heating chamber; an insulation support assembly comprising a rigid enclosure disposed around the heating chamber; The heater arrangement, wherein the insulation support assembly is configured to engage the heating chamber and the insulating layer to hold the insulating layer in place around the heating chamber.

2. 2. A heater configuration for an aerosol generating device as described in claim 1, wherein the insulation support assembly is configured to contact the heating chamber at only one end or both ends of the heating chamber to support the rigid enclosure in a predetermined position around the heating chamber.

3. 3. The heater configuration of claim 2, wherein the insulation support assembly comprises one or more annular supports mounted around ends of the heating chamber to support the rigid enclosure in place around the heating chamber.

4. 4. A heater arrangement for an aerosol generating device according to claim 1, wherein the insulating layer is wrapped around the outer surface of the rigid enclosure.

5. 5. A heater configuration for an aerosol generating device as described in claim 4, wherein the rigid enclosure comprises a frame having a plurality of longitudinal struts extending along the length of the tubular heating chamber, and the insulating layer is wrapped around an outer surface formed by the longitudinal struts.

6. 6. The heater configuration of claim 4 or 5, wherein the rigid enclosure comprises gripping members extending radially outward from the rigid enclosure, the gripping members configured to grip the insulating layer and hold at least a portion of the insulating layer in place.

7. 4. The heater arrangement of claim 1, wherein the rigid enclosure comprises a tubular casing configured to surround the tubular heating chamber to form a cylindrical cavity between the outer surface of the heating chamber and an inner surface of the casing, and the insulating layer is retained within the cavity.

8. The heater configuration of claim 7, wherein the cylindrical cavity has a radial thickness of between 2 mm and 4 mm.

9. 9. The heater configuration of claim 7 or 8, further comprising an annular support disposed at an end of the tubular heating chamber between the tubular heating chamber and the casing, the annular support extending around a majority of the circumference of the tubular heating chamber.

10. 10. The heater configuration of claim 9, wherein the annular support comprises a plurality of axial struts extending along the axis of the tubular heating chamber and configured to retain the heating chamber within the casing.

11. further comprising a circumferential lip; A heater configuration according to any preceding claim, wherein the insulation support assembly comprises a connection feature that receives the circumferential lip to hold the heating chamber in place.

12. 12. A heater arrangement according to any one of claims 7 to 11, wherein the tubular casing comprises two semi-cylindrical parts connected along a longitudinal interface to form the tubular casing around the heating chamber.

13. 12. The heater arrangement of claim 7, further comprising a gripping member attached to the outer surface of the heating chamber and configured to grip the insulating layer and hold at least a portion of the insulating layer in place.

14. 14. The heater configuration of claim 13, wherein the gripping member comprises a barbed clamp configured to be attached to the exterior surface of the heating chamber below the insulating layer, the barbed clamp comprising outwardly facing barbs configured to grip the insulating layer.

15. 15. A heater arrangement according to any one of claims 7 to 14, wherein the tubular casing has a base surface that at least partially surrounds the tubular casing around a closed end of the tubular heating chamber, the tubular casing being configured to provide a gap between the base surface of the casing and the closed end of the heating chamber.

16. 16. The heater configuration of claim 15, further comprising insulation disposed within the gap between the closed end of the tubular heating chamber and the base surface of the tubular casing.

17. 17. A heater arrangement according to claim 15 or 16, wherein the base surface of the tubular casing further comprises an opening to allow an electrical connection to the heating chamber to pass therethrough.

18. 18. The heater configuration of claim 17, wherein the base surface is configured such that the opening is oriented at an angle relative to a longitudinal axis of the heating chamber.

19. the tubular heating chamber having an open end configured to receive the aerosol-generating substrate and an opposite closed end; A heater arrangement according to any one of claims 7 to 18, wherein the tubular casing comprises a closed end, the closed end comprising a protrusion extending from an inner surface to engage the closed end of the heating chamber.

20. 20. The heater configuration of claim 19, wherein the closed end of the tubular heating chamber comprises a recess in the outer surface of the closed end, and the protrusion is configured to engage the recess.

21. The tubular heating chamber has an open end configured to receive the aerosol-generating substrate and an opposite closed end, and the heater arrangement comprises:

19. The heater arrangement of any one of claims 7 to 18, further comprising an end cap support, the end cap support welded to the outer surface of the closed end of the heating chamber and configured to support the tubular casing in position around the heating chamber.

22. 21. The heater configuration of claim 20, wherein an end cap support comprises a substantially disk-shaped body having a protrusion extending from the body, the protrusion being welded to the outer surface of the closed end of the tubular heating chamber.

23. A heater arrangement according to any one of claims 7 to 22, wherein the tubular casing is coated internally with a heat-reflective metal layer or is wrapped with a metal foil together with the insulating layer.

24. A heater arrangement according to any preceding claim, wherein the insulating layer comprises ceramic fibres.

25. 25. The heater configuration of claim 24, wherein the insulating layer comprises a metal oxide.

26. 26. The heater configuration of claim 24 or 25, wherein the insulating layer comprises aluminum oxide, silicon oxide, and / or ZrO2.

27. The heater arrangement of any one of claims 1 to 26, wherein the insulating layer comprises an aerogel.

28. A heater arrangement according to any preceding claim, wherein the insulating layer is formed as a blanket, felt or paper.

29. A heater arrangement according to any preceding claim, wherein the insulation support assembly comprises a non-metallic material.

30. 30. The heater configuration of claim 29, wherein the insulation support assembly is made from a non-metallic, preferably a high temperature polymer, most preferably polyetheretherketone (PEEK).