Heating assembly and heating non-combustion device
By providing a wrapping member in the heating without burning device to wrap the connection between the heating member and the wire, the problem of the wire being easily torn off is solved, a more stable connection is achieved, and the reliability of the heating component is improved.
Patent Information
- Application Number
- CN202422303274.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-20
- Publication Date
- 2025-09-23
- Estimated Expiration
- 2034-09-20
AI Technical Summary
In heat-not-burn devices, the connection between the wires and the heating network is unstable and can be easily pulled and broken.
A wrapping member, such as ceramic glue, is provided at the connection between the heating element and the wire to wrap and fix the connection between the wire and the heating element, thereby forming a stable connection structure.
The connection stability between the wire and the heating element is improved, the wire is prevented from being torn off during use, and the reliability and service life of the heating component are improved.
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Figure CN223365017U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of heat-without-combustion technology, and in particular to a heating component and a heat-without-combustion device. Background Art
[0002] The heat-not-burn device is a device that can generate aerosol by heating an aerosol-generating substrate at high temperature but not enough to burn it. Without burning, the aerosol-generating substrate can generate the aerosol required by the user.
[0003] In the related art, the heating component of the heat-not-burn device is to wrap the heat exchange core with a heating net, and two ceramic rings wrap the heating net to form an integral structure. The integral structure formed by the heat exchange core, the heating net and the ceramic rings is then installed as a whole in a heat pipe. The wires of the heating net are led out from the inside of the heat pipe. Since the wires are only connected to the heating net through a connecting structure, this connection method causes the wires to be exposed and the connection with the heating net is unstable. During the use of the heating device, the wires are easily pulled and broken. Utility Model Content
[0004] The present application provides a heating component and a heating-without-burning device, wherein the connection between the heating element and the wire is wrapped by a wrapping member, which can further stabilize the wire and prevent the wire from being easily torn off.
[0005] According to the first aspect of the present application, a heating component is provided in an embodiment, including: a heat conductor having a first mounting cavity; a heat exchanger disposed in the first mounting cavity, the heat exchanger having a gas circulation hole penetrating the heat exchanger in the axial direction of the first mounting cavity; a heating element disposed in the first mounting cavity and in contact with the heat exchanger to conduct heat to the heat exchanger to heat the aerosol generating substrate; a wire is provided on the heating element; and a wrapping element fixedly disposed on the heating element, and the wrapping element at least wraps the connection between the heating element and the wire.
[0006] In one embodiment, the first installation cavity has an opening, the wire is led out from the opening of the first installation cavity, and the connection between the heating element and the wire is located in the first installation cavity away from the opening; the wrapping element also wraps the wire located in the first installation cavity.
[0007] In one embodiment, the heating element is arranged around the circumference of the heat exchange element.
[0008] In one embodiment, a first enclosed area and a second enclosed area are arranged along the circumference of the heating element; the heating component also includes two ceramic sheets, the ceramic sheets are arranged in the first installation cavity, and the two ceramic sheets are arranged to enclose the first enclosed area, the ceramic sheets, the second enclosed area and the inner side wall of the first installation cavity define an installation groove, and the wrapping element is located in the installation groove.
[0009] In one embodiment, a groove is provided on the inner side wall of the first installation cavity, and the groove is a part of the installation slot.
[0010] In one embodiment, at least two ceramic sheets are further included, which are arranged in the first installation cavity. The ceramic sheets are arranged circumferentially around the heating element, and two adjacent ceramic sheets are in contact. The contact ends of the two adjacent ceramic sheets and the heating element are surrounded to form an installation groove, and the wrapping element is located in the installation groove.
[0011] In one embodiment, a ceramic sheet is further included. The ceramic sheet is arranged in the first installation cavity. The ceramic sheet is arranged to surround the heating element along the circumference of the heating element, and the ceramic sheet and the heating element are combined to form an installation groove. The wrapping element is located in the installation groove.
[0012] In one embodiment, a portion of the inner side wall of the first installation cavity is recessed toward a side away from the heating element to form an installation groove together with the heating element, and the wrapping element is located in the installation groove.
[0013] In one embodiment, the heat conducting member further has an inserting cavity, which is respectively arranged along the axial direction of the heat conducting member with the first mounting cavity; the inserting cavity is used to insert the aerosol generating matrix so that the airflow heated by the heat exchange member heats the aerosol generating matrix.
[0014] According to a second aspect of the present application, an embodiment provides a heat-without-combustion device, which includes the heating component of the first aspect.
[0015] The present application provides a heating component, including a heat conductor, a heat exchanger, a heating element and a wrapping element. A wire is provided on the heating element. The wrapping element is fixedly provided on the heating element, and the wrapping element at least wraps the wire at the connection between the heating element and the wire. By preliminarily wrapping and fixing the connection between the heating element and the wire by the wrapping element, the wire can be fixed on the heating element more stably, making it difficult for the wire to be pulled off. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 The heating component of Example 1 of the present application;
[0017] Figure 2 This is a schematic diagram of the explosion structure of the heating component of Example 1;
[0018] Figure 3 is a cross-sectional view of the heating assembly of Example 1;
[0019] Figure 4 is a cross-sectional view of the heating element of Example 1 from another angle;
[0020] Figure 5 This is a schematic structural diagram of the heat-without-combustion device of Example 5;
[0021] Figure 6is a cross-sectional view of the heat-without-combustion device of Example 5;
[0022] Figure 7 Schematic diagram of the cross-sectional structure of the aerosol containing chamber and mounting frame assembly of the heat-not-burn device of Example 5;
[0023] Figure 8 This is a schematic structural diagram of the mounting frame of the heating without combustion device of Example 5.
[0024] Figure markings: heating component-100, heat conductor-110, first installation cavity-111, installation groove-1111, opening-1112, groove-1113, plug-in cavity-112, heat exchange component-120, gas circulation hole-121, heating component-130, wire-131, first enclosed area-132, second enclosed area-133, wrapping component-140, ceramic sheet-150, heating without combustion device-200, outer shell-210, first accommodating cavity-211, second accommodating cavity-212, installation port-213, mounting frame-220, through hole-221, aerosol accommodating cavity-230, power supply component-240. DETAILED DESCRIPTION
[0025] The present application is further described in detail below by means of specific embodiments in conjunction with the accompanying drawings. Similar elements in different embodiments are numbered with associated similar elements. In the following embodiments, many detailed descriptions are provided to enable the present application to be better understood. However, those skilled in the art will readily appreciate that some of the features may be omitted in different circumstances, or may be replaced by other elements, materials, or methods. In some cases, some operations related to the present application are not shown or described in the specification. This is to avoid the core portion of the present application being overwhelmed by excessive descriptions. For those skilled in the art, it is not necessary to describe these related operations in detail. They can fully understand the related operations based on the description in the specification and the general technical knowledge in the art.
[0026] In addition, the features, operations, or characteristics described in the specification may be combined in any appropriate manner to form various implementations, and the operational steps involved in each embodiment may be interchanged or adjusted in a manner that is obvious to those skilled in the art. Therefore, the specification and drawings are only for the purpose of clearly describing a particular embodiment and do not imply a required composition and / or sequence.
[0027] The serial numbers assigned to components herein, such as "first," "second," etc., are used solely to distinguish the objects being described and do not convey any sequential or technical meaning. References to "connection" and "coupling" herein, unless otherwise specified, include both direct and indirect connections (couplings).
[0028] Example 1
[0029] Please refer to Figure 1-4 This embodiment provides a heating assembly 100 , including a heat conducting element 110 , a heat exchanging element 120 , a heating element 130 and a wrapping element 140 .
[0030] Please refer to Figure 1-2 , the heat conducting member 110 has a first mounting cavity 111. The heat exchange member 120 is arranged in the first mounting cavity 111, and the heat exchange member 120 has a gas circulation hole 121 that penetrates the heat exchange member 120 in the axial direction of the first mounting cavity 111. The heating member 130 is arranged in the first mounting cavity 111, and the heating member 130 is arranged in contact with the heat exchange member 120 to conduct heat to the heat exchange member 120 to heat the aerosol generating matrix. A wire 131 is provided on the heating member 130. The wrapping member 140 is fixedly arranged on the heating member 130, and the wrapping member 140 at least wraps the connection between the heating member and the wire. The wrapping member 140 is ceramic glue.
[0031] The present application arranges the wrapping member 140 on the heating member 130 and wraps the connection between the heating member 130 and the wire 131 through the wrapping member 140, thereby achieving a more stable connection between the wire 131 and the heating member 130, making the wire 131 less likely to be torn off.
[0032] Please refer to Figure 1-2 The first installation cavity 111 has an opening 1112, and the wire 131 is led out from the opening 1112 of the first installation cavity 111. The connection between the heating element 130 and the wire 131 is located in the first installation cavity 111 away from the opening 1112, and the wrapping member 140 also wraps the wire 131 located in the first installation cavity 111.
[0033] By wrapping the wire 131 in the first installation cavity 111 and fixing it to the heating element 130 through the wrapping member 140 , the connection between the heating element 130 and the wire 131 can be further stabilized, making the wire 131 less likely to be torn off.
[0034] Please refer to Figure 1 The heating element 130 is arranged circumferentially around the heat exchange element 120 .
[0035] The heating element 130 is arranged around the heat exchange element 120 to facilitate heat transfer from the heating element 130 to the heat exchange element 120, thereby increasing the heating speed of the heat exchange element 120 and allowing the heat of the heating element 130 to be transferred to the heat exchange element 120 as much as possible.
[0036] Please refer to Figure 4A first enclosed area 132 and a second enclosed area 133 are provided along the circumference of the heating element 130. The heating assembly 100 further includes two ceramic sheets 150, which are disposed in the first mounting cavity 111 and enclose the first enclosed area 132. The ceramic sheets 150, the second enclosed area 133, and the inner sidewall of the first mounting cavity 111 define a mounting groove 1111, and the wrapping member 140 is located within the mounting groove 1111. Specifically, the ceramic sheets 150 are arc-shaped.
[0037] On the one hand, since the wrapping member 140 needs to be accommodated, an installation groove 1111 needs to be set in the first installation cavity 111. The setting of the ceramic sheet 150 can fix the heat exchange member 120 and the heating member 130 in the first installation cavity 111, and on the other hand, it also helps heat conduction.
[0038] More specifically, after the ceramic sheet 150, the second enclosed area 133, and the inner sidewall of the first mounting cavity 111 define a mounting groove 1111, ceramic glue is poured into the mounting groove 1111 and then sintered to form the wrapping member 140. In the heating assembly 100 manufactured by this method, the wrapping member 140, the ceramic sheet 150, the heating element 130, and the first mounting cavity 111 are connected as an integrated structure, which facilitates the fixation of the wire 131.
[0039] Please refer to Figure 1 The inner wall of the first installation cavity 111 is provided with a groove 1113, which is a part of the installation groove 1111. The provision of the groove 1113 can expand the space of the installation groove 1111.
[0040] Please refer to Figure 2 The heat conducting member 110 further comprises an inserting cavity 112, which is arranged along the axial direction of the heat conducting member 110 along with the first mounting cavity 111. The inserting cavity 112 is used to insert the aerosol generating substrate so that the airflow heated by the heat exchanging member 120 heats the aerosol generating substrate.
[0041] The insertion cavity 112 and the first installation cavity 111 are provided in the heat conducting member 110 , so that the aerosol matrix can be inserted into the insertion cavity 112 for heating. At the same time, the heat conducting member 110 has a certain heat preservation effect, which helps to heat the aerosol matrix.
[0042] Example 2
[0043] Please refer to Figure 1-4 This embodiment provides a heating assembly 100 , including a heat conducting element 110 , a heat exchanging element 120 , a heating element 130 and a wrapping element 140 .
[0044] Please refer to Figure 1-2The heat conducting member 110 has a first mounting cavity 111. The heat exchange member 120 is arranged in the first mounting cavity 111, and the heat exchange core has a gas circulation hole 121 that penetrates the heat exchange member 120 in the axial direction of the first mounting cavity 111. The heating member 130 is arranged in the first mounting cavity 111, and the heating member 130 is arranged in contact with the heat exchange member 120 to conduct heat to the heat exchange member 120 to heat the aerosol generating matrix. A wire 131 is provided on the heating member 130. The wrapping member 140 is fixedly arranged on the heating member 130, and the wrapping member 140 at least wraps the connection between the heating member and the wire.
[0045] The present application arranges the wrapping member 140 on the heating member 130 and wraps the connection between the heating member 130 and the wire 131 through the wrapping member 140, thereby achieving a more stable connection between the wire 131 and the heating member 130, making the wire 131 less likely to be torn off.
[0046] Please refer to Figure 1-2 The first installation cavity 111 has an opening 1112, and the wire 131 is led out from the opening 1112 of the first installation cavity 111. The connection between the heating element 130 and the wire 131 is located in the first installation cavity 111 away from the opening 1112, and the wrapping member 140 also wraps the wire 131 located in the first installation cavity 111.
[0047] By wrapping the wire 131 in the first installation cavity 111 and fixing it to the heating element 130 through the wrapping member 140 , the connection between the heating element 130 and the wire 131 can be further stabilized, making the wire 131 less likely to be torn off.
[0048] Please refer to Figure 1 The heating element 130 is arranged circumferentially around the heat exchange element 120 .
[0049] The heating element 130 is arranged around the heat exchange element 120 to facilitate heat transfer from the heating element 130 to the heat exchange element 120, thereby increasing the heating speed of the heat exchange element 120 and allowing the heat of the heating element 130 to be transferred to the heat exchange element 120 as much as possible.
[0050] In this embodiment, the heating assembly 100 further includes two ceramic sheets 150, which are disposed within the first mounting cavity 111. The ceramic sheets 150 surround the circumference of the heating element 130, and the two ceramic sheets 150 are in contact with each other. The contact ends of the two ceramic sheets 150 and the heating element 130 form a mounting groove 1111, and the wrapping member 140 is located within the mounting groove 1111. Specifically, the ceramic sheets 150 are arc-shaped. The contact ends of the two ceramic sheets 150 each have a groove, which, together with the heating element 130, forms the mounting groove 1111.
[0051] On the one hand, since the wrapping member 140 needs to be accommodated, an installation groove 1111 needs to be set in the first installation cavity 111. The setting of the ceramic sheet 150 can fix the heat exchange member 120 and the heating member 130 in the first installation cavity 111, and on the other hand, it also helps heat conduction.
[0052] More specifically, after the inner sidewalls of the two ceramic sheets 150 at the contact ends define a mounting groove 1111 with the heater 130, ceramic glue is poured into the mounting groove 1111 and then sintered to form the wrapping member 140. In the heating assembly 100 manufactured by this method, the wrapping member 140, ceramic sheet 150, and heater 130 are connected into an integrated structure, which facilitates the fixation of the wire 131.
[0053] Please refer to Figure 2 The heat conducting member 110 further comprises an inserting cavity 112, which is arranged along the axial direction of the heat conducting member 110 along with the first mounting cavity 111. The inserting cavity 112 is used to insert the aerosol generating substrate so that the airflow heated by the heat exchanging member 120 heats the aerosol generating substrate.
[0054] The insertion cavity 112 and the first installation cavity 111 are provided in the heat conducting member 110 , so that the aerosol matrix can be inserted into the insertion cavity 112 for heating. At the same time, the heat conducting member 110 has a certain heat preservation effect, which helps to heat the aerosol matrix.
[0055] Example 3
[0056] Please refer to Figure 1-4 This embodiment provides a heating assembly 100 , including a heat conducting element 110 , a heat exchanging element 120 , a heating element 130 and a wrapping element 140 .
[0057] Please refer to Figure 1-2 The heat conducting member 110 has a first mounting cavity 111. The heat exchange member 120 is disposed in the first mounting cavity 111, and the heat exchange core has a gas circulation hole 221121 that penetrates the heat exchange member 120 in the axial direction of the first mounting cavity 111. The heating member 130 is disposed in the first mounting cavity 111, and the heating member 130 is disposed in contact with the heat exchange member 120 to conduct heat to the heat exchange member 120 to heat the aerosol generating matrix. A wire 131 is disposed on the heating member 130. The wrapping member 140 is fixedly disposed on the heating member 130, and the wrapping member 140 at least wraps the connection between the heating member and the wire.
[0058] The present application arranges the wrapping member 140 on the heating member 130 and wraps the connection between the heating member 130 and the wire 131 through the wrapping member 140, thereby achieving a more stable connection between the wire 131 and the heating member 130, making the wire 131 less likely to be torn off.
[0059] Please refer to Figure 1-2The first installation cavity 111 has an opening 1112, and the wire 131 is led out from the opening 1112 of the first installation cavity 111. The connection between the heating element 130 and the wire 131 is located in the first installation cavity 111 away from the opening 1112, and the wrapping member 140 also wraps the wire 131 located in the first installation cavity 111.
[0060] By wrapping the wire 131 in the first installation cavity 111 and fixing it to the heating element 130 through the wrapping member 140 , the connection between the heating element 130 and the wire 131 can be further stabilized, making the wire 131 less likely to be torn off.
[0061] Please refer to Figure 1 The heating element 130 is arranged circumferentially around the heat exchange element 120 .
[0062] The heating element 130 is arranged around the heat exchange element 120 to facilitate heat transfer from the heating element 130 to the heat exchange element 120, thereby increasing the heating speed of the heat exchange element 120 and allowing the heat of the heating element 130 to be transferred to the heat exchange element 120 as much as possible.
[0063] In this embodiment, the heating assembly 100 further includes a ceramic sheet 150 disposed in the first mounting cavity 111. The ceramic sheet 150 is disposed circumferentially around the heating element 130, and the ceramic sheet 150 and the heating element 130 together form a mounting groove 1111. The wrapping member 140 is located within the mounting groove 1111. Specifically, the ceramic sheet 150 is arc-shaped. The inner sidewall of the ceramic sheet 150 has a groove, which together with the heating element 130 forms the mounting groove 1111.
[0064] On the one hand, since the wrapping member 140 needs to be accommodated, an installation groove 1111 needs to be set in the first installation cavity 111. The setting of the ceramic sheet 150 can fix the heat exchange member 120 and the heating member 130 in the first installation cavity 111, and on the other hand, it also helps heat conduction.
[0065] More specifically, after the inner wall of the ceramic sheet 150 and the heater 130 define a mounting groove 1111, ceramic glue is poured into the mounting groove 1111 and then sintered to form the wrapping member 140. In the heating assembly 100 manufactured by this method, the wrapping member 140, the ceramic sheet 150, and the heater 130 are connected into an integrated structure, which facilitates the fixation of the wire 131.
[0066] Please refer to Figure 2 The heat conducting member 110 further comprises an inserting cavity 112, which is arranged along the axial direction of the heat conducting member 110 along with the first mounting cavity 111. The inserting cavity 112 is used to insert the aerosol generating substrate so that the airflow heated by the heat exchanging member 120 heats the aerosol generating substrate.
[0067] The insertion cavity 112 and the first installation cavity 111 are provided in the heat conducting member 110 , so that the aerosol matrix can be inserted into the insertion cavity 112 for heating. At the same time, the heat conducting member 110 has a certain heat preservation effect, which helps to heat the aerosol matrix.
[0068] Example 4
[0069] Please refer to Figure 1-4 This embodiment provides a heating assembly 100 , including a heat conducting element 110 , a heat exchanging element 120 , a heating element 130 and a wrapping element 140 .
[0070] Please refer to Figure 1-2 , the heat conducting member 110 has a first mounting cavity 111. The heat exchange member 120 is arranged in the first mounting cavity 111, and the heat exchange core has a gas circulation hole 121 that penetrates the heat exchange member 120 in the axial direction of the first mounting cavity 111. The heating member 130 is arranged in the first mounting cavity 111, and the heating member 130 is arranged in contact with the heat exchange member 120 to conduct heat to the heat exchange member 120 to heat the aerosol generating matrix. A wire 131 is provided on the heating member 130. The wrapping member 140 is fixedly provided on the heating member 130, and the wrapping member 140 at least wraps the connection between the heating member 130 and the wire 131. The wrapping member 140 is ceramic glue.
[0071] The present application arranges the wrapping member 140 on the heating member 130 and wraps the connection between the heating member 130 and the wire 131 through the wrapping member 140, thereby achieving a more stable connection between the wire 131 and the heating member 130, making the wire 131 less likely to be torn off.
[0072] Please refer to Figure 1-2 The first installation cavity 111 has an opening 1112, and the wire 131 is led out from the opening 1112 of the first installation cavity 111. The connection between the heating element 130 and the wire 131 is located in the first installation cavity 111 away from the opening 1112, and the wrapping member 140 also wraps the wire 131 located in the first installation cavity 111.
[0073] By wrapping the wire 131 in the first installation cavity 111 and fixing it to the heating element 130 through the wrapping member 140 , the connection between the heating element 130 and the wire 131 can be further stabilized, making the wire 131 less likely to be torn off.
[0074] Please refer to Figure 1 The heating element 130 is arranged circumferentially around the heat exchange element 120 .
[0075] The heating element 130 is arranged around the heat exchange element 120 to facilitate heat transfer from the heating element 130 to the heat exchange element 120, thereby increasing the heating speed of the heat exchange element 120 and allowing the heat of the heating element 130 to be transferred to the heat exchange element 120 as much as possible.
[0076] The inner wall of the first installation cavity 111 is partially recessed toward the side away from the heating element 130 to enclose the heating element 130 to form an installation groove 1111. The wrapping member 140 is located in the installation groove 1111. Specifically, the ceramic sheet 150 is arc-shaped.
[0077] On the one hand, since the wrapping member 140 needs to be installed, an installation groove 1111 needs to be set in the first installation cavity 111. The setting of the ceramic sheet 150 can fix the heat exchange member 120 and the heating member 130 in the first installation cavity 111, and on the other hand, it also helps heat conduction.
[0078] More specifically, after the inner wall of the first mounting cavity 111 and the heater 130 define a mounting groove 1111, ceramic glue is poured into the mounting groove 1111 and then sintered to form the wrapping member 140. In the heating assembly 100 manufactured by this method, the wrapping member 140, the heater 130, and the first mounting cavity 111 are connected as an integrated structure, which facilitates the fixation of the wire 131.
[0079] Please refer to Figure 2 The heat conducting member 110 further comprises an inserting cavity 112, which is arranged along the axial direction of the heat conducting member 110 along with the first mounting cavity 111. The inserting cavity 112 is used to insert the aerosol generating substrate so that the airflow heated by the heat exchanging member 120 heats the aerosol generating substrate.
[0080] The insertion cavity 112 and the first installation cavity 111 are provided in the heat conducting member 110 , so that the aerosol matrix can be inserted into the insertion cavity 112 for heating. At the same time, the heat conducting member 110 has a certain heat preservation effect, which helps to heat the aerosol matrix.
[0081] Example 5
[0082] This embodiment provides a heating without burning device 200, please refer to Figure 5-8 The heating without burning device 200 in this embodiment includes any one of the heating components 100 in embodiments 1-4.
[0083] Please refer to Figure 5-7 The heat-not-burn device 200 further includes a housing 210, a mounting bracket 220, an aerosol storage chamber 230, and a power supply assembly 240. The housing 210 is provided with a first storage chamber 211 and a second storage chamber 212. The mounting bracket 220 and the aerosol storage chamber 230 are disposed within the first storage chamber 211, and the power supply assembly 240 is disposed within the second storage chamber 212. The heating assembly 100 is disposed within the aerosol storage chamber 230. The aerosol storage chamber 230 is used to confine the aerosol generated by the heating assembly 100 heating the aerosol generating base section within the chamber to prevent it from diffusing into the first and second storage chambers and damaging other components of the heat-not-burn device.
[0084] Please refer to Figure 5 The housing 210 is provided with a mounting opening 213 at a position corresponding to the first accommodating cavity 211 , and the mounting opening 213 is used for inserting the aerosol generating matrix.
[0085] Please refer to Figure 6-8 One end of the mounting frame 220 surrounds the mounting opening 213. The mounting frame 220 is a tubular structure. The aerosol containing chamber 230 is mounted on the mounting frame 220, and the end of the mounting frame 220 facing away from the mounting opening 213 extends into the aerosol containing chamber 230, communicating with the aerosol containing chamber 230. The portion of the mounting frame 220 extending into the aerosol containing chamber 230 is spaced apart from the sidewall of the aerosol containing chamber 230. The sidewall of the portion of the mounting frame 220 extending into the aerosol containing chamber 230 has a through hole 221. The through hole 221 allows outside air entering through the mounting opening 213 to flow into the aerosol containing chamber 230, allowing the flowing air to flow through the gas flow holes 121 of the heat exchange element 120, thereby baking and heating the aerosol generating substrate.
[0086] Please refer to Figure 6 The second accommodating cavity 212 and the first accommodating cavity 211 are arranged side by side in the housing 210. The power supply component 240 is electrically connected to the wire 131 to supply power to the heating element 130.
[0087] The above examples are used to illustrate the present invention, which are only used to help understand the present invention and are not intended to limit the present invention. Those skilled in the art of the present invention can make some simple deductions, modifications or substitutions based on the concept of the present invention.
Claims
1. A heating component, characterized in that: include: A heat conducting member having a first mounting cavity; a heat exchange element, disposed in the first mounting cavity, the heat exchange element having a gas flow hole penetrating the heat exchange element in the axial direction of the first mounting cavity; a heating element disposed in the first mounting cavity and in contact with the heat exchange element to conduct heat to the heat exchange element to heat the aerosol generating substrate; a wire is disposed on the heating element; and a wrapping member fixedly disposed on the heating member, wherein the wrapping member at least wraps a connection between the heating member and the wire.
2. The heating assembly according to claim 1, wherein The first installation cavity has an opening, the wire is led out from the opening of the first installation cavity, and the connection between the heating element and the wire is located in the first installation cavity away from the opening; the wrapping element also wraps the wire located in the first installation cavity.
3. The heating assembly according to claim 1, wherein The heating element is arranged around the circumference of the heat exchange element.
4. The heating assembly according to claim 3, wherein A first enclosed area and a second enclosed area are arranged along the circumference of the heating element; the heating component also includes two ceramic sheets, which are arranged in the first installation cavity, and the two ceramic sheets are arranged to enclose the first enclosed area, and the ceramic sheets, the second enclosed area and the inner side wall of the first installation cavity define an installation groove, and the wrapping member is located in the installation groove.
5. The heating assembly according to claim 4, wherein The inner side wall of the first installation cavity is provided with a groove, and the groove is a part of the installation slot.
6. The heating assembly according to claim 3, wherein It also includes at least two ceramic sheets, which are arranged in the first installation cavity. The ceramic sheets are circumferentially arranged to surround the heating element, and two adjacent ceramic sheets are in contact. The contact ends of the two adjacent ceramic sheets and the heating element form an installation groove, and the wrapping element is located in the installation groove.
7. The heating assembly according to claim 3, wherein It also includes a ceramic sheet, which is arranged in the first installation cavity. The ceramic sheet is arranged to surround the heating element along the circumference of the heating element, and the ceramic sheet and the heating element form an installation groove, and the wrapping element is located in the installation groove.
8. The heating assembly according to claim 3, wherein A portion of the inner side wall of the first installation cavity is recessed toward a side away from the heating element to enclose the first installation cavity and the heating element to form an installation groove, and the wrapping element is located in the installation groove.
9. The heating assembly according to any one of claims 1 to 8, characterized in that: The heat conducting member further has an inserting cavity, which is respectively arranged along the axial direction of the heat conducting member with the first mounting cavity; the inserting cavity is used to insert the aerosol generating matrix so that the airflow heated by the heat exchange member heats the aerosol generating matrix.
10. A heat-not-burn device, characterized in that: The heat-without-combustion device comprises the heating assembly according to any one of claims 1 to 9.