AEROSOL GENERATING DEVICE AND HEATER
20230044176 · 2023-02-09
Inventors
- DONGJUN YAN (Shenzhen City, Guangdong Province, CN)
- ZUQIANG QI (Shenzhen City, Guangdong Province, CN)
- WENJUAN LI (Shenzhen City, Guangdong Province, CN)
- RUILONG HU (Shenzhen City, Guangdong Province, CN)
- JIAN WU (Shenzhen City, Guangdong Province, CN)
- JIAMAO LUO (Shenzhen City, Guangdong Province, CN)
- BAOLING LEI (Shenzhen City, Guangdong Province, CN)
- WEI CHEN (Shenzhen City, Guangdong Province, CN)
- XIAOGANG FANG (Shenzhen City, Guangdong Province, CN)
- ZHONGLI XU (Shenzhen City, Guangdong Province, CN)
- YONGHAI LI (Shenzhen City, Guangdong Province, CN)
Cpc classification
F28F13/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05B11/00
ELECTRICITY
F28F2245/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28F13/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05B11/00
ELECTRICITY
Abstract
An aerosol generating device comprises a magnetic field generator and a heater for heating a smokable material; the heater comprises a susceptor portion and an infrared emission portion, the susceptor portion is penetrated by a magnetic field to generate heat and heat the smokable material by heat conduction, and the infrared emission portion receives the heat of the susceptor portion, and is excited by heating to radiate infrared rays to heat the smokable material. During the use of the above aerosol generating device, on the one hand, the susceptor portion generates heat by inductive heating so that the smokable material is directly heated by heat conduction; and on the other hand, the infrared emission portion is excited by the heat of the susceptor portion to radiate infrared rays, thereby assisting in the heating of the smokable material, and improving the utilization efficiency of heat.
Claims
1. An aerosol generating device for heating a smokable material to generate aerosol for inhalation, comprising: a cavity, for receiving a smokable material; a magnetic field generator, being configured to generate a varying magnetic field; a heater, being configured to heat the smokable material received in the cavity; the heater comprising: a susceptor portion, being configured to be penetrated by the varying magnetic field to generate heat, and to heat the smokable material received in the cavity by heat conduction; and an infrared emission portion, being configured to be arranged close to the susceptor portion and being capable of receiving the heat transferred by the susceptor portion, and being configured to radiate infrared rays to the cavity to heat the smokable material when it is heated by the susceptor portion.
2. The aerosol generating device according to claim 1, wherein the susceptor portion and the infrared emission portion are in contact with each other so that the susceptor portion transfers heat to the infrared emission portion through contact conduction.
3. The aerosol generating device according to claim 1, wherein at least a part of the axial extension length of the susceptor portion along the cavity coincides with the extension length of the infrared emission portion along the cavity.
4. The aerosol generating device according to claim 1 wherein the heater is configured in the shape of a pin or blade extending at least partially along the axial direction of the cavity.
5. The aerosol generating device according to claim 4, wherein the infrared emission portion is configured to be located outside the susceptor portion along the radial direction of the heater.
6. The aerosol generating device according to claim 4, wherein the heater comprises: a base, being configured in the shape of a pin extending at least partially along the axial direction of the cavity; the base is provided therein with a hollow space extending along the axial direction of the base, and the susceptor portion and the infrared emission portion are accommodated in the hollow space.
7. The aerosol generating device according to claim 6, wherein the susceptor portion extends along the axial direction of the hollow space; the infrared emission portion is an infrared emission coating formed on the surface of the susceptor portion or an infrared emission thin film wound on the surface of the susceptor portion.
8. The aerosol generating device according to claim 4, wherein the susceptor portion is configured in the shape of a pin or blade extending at least partially along the axial direction of the cavity; the infrared emission portion is a coating formed on the surface of the susceptor portion.
9. The aerosol generating device according to claim 8, wherein the heater further comprises a protective layer formed on the surface of the infrared emission portion.
10. The aerosol generating device according to claim 1 wherein the heater is configured in a tubular shape extending along the axial direction of the cavity and surrounding the cavity.
11. The aerosol generating device according to claim 10, wherein the infrared emission portion is configured to be closer to the cavity than the susceptor portion.
12. The aerosol generating device according to claim 10, wherein the susceptor portion is configured in a tubular shape extending along the axial direction of the cavity and surrounding the cavity; the infrared emission portion is an infrared emission coating formed on the inner surface of the susceptor portion.
13. The aerosol generating device according to claim 10, wherein the heater comprises: a base, being configured in a tubular shape extending in the axial direction of the cavity and surrounding the cavity; the infrared emission portion and the susceptor portion are sequentially arranged outward along the radial direction of the base.
14. The aerosol generating device according to claim 13, wherein the infrared emission portion is an infrared emission coating formed on the outer surface of the base or an infrared emission thin film wound on the outer surface of the base.
15. The aerosol generating device according to claim 14, wherein the susceptor portion is a susceptor coating formed on the infrared emission portion; or the susceptor portion is configured as a rigid tube abutting against the infrared emission portion.
16. A heater for an aerosol generating device, comprising: a susceptor portion, being configured to be penetrated by a varying magnetic field to generate heat, and to heat a smokable material by heat conduction; and an infrared emission portion, being configured to be arranged close to the susceptor portion and being capable of receiving the heat of the susceptor portion, and being configured to radiate infrared rays to heat the smokable material when it is heated by the susceptor portion.
17. The aerosol generating device according to claim 2, wherein the heater is configured in the shape of a pin or blade extending at least partially along the axial direction of the cavity.
18. The aerosol generating device according to claim 3, wherein the heater is configured in the shape of a pin or blade extending at least partially along the axial direction of the cavity.
19. The aerosol generating device according to claim 2, wherein the heater is configured in a tubular shape extending along the axial direction of the cavity and surrounding the cavity.
20. The aerosol generating device according to claim 3, wherein the heater is configured in a tubular shape extending along the axial direction of the cavity and surrounding the cavity.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0037] One or more embodiments are illustrated by pictures in corresponding attached drawings, and this does not constitute limitation on the embodiments. Elements with the same reference numerals in the attached drawings are shown as similar elements, and the pictures in the attached drawings do not constitute scale limitation unless otherwise stated specifically.
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DETAILED DESCRIPTION
[0048] In order to facilitate the understanding of the present application, the present application will be described in more detail below with reference to attached drawings and detailed description.
[0049] One embodiment of the present application provides an aerosol generating device for heating instead of burning a smokable material, such as cigarettes, so as to volatilize or release at least one component of the smokable material to form aerosol for inhalation.
[0050] Reference may be made to
[0053] As can be further seen from
[0054] The housing 10 is further provided with a switch button 13 on one side in the width direction, and a user may manually actuate the switch button 13 to control the start or stop of the aerosol generating device.
[0055] Further referring to
[0059] Further referring to the embodiment shown in
[0063] To further facilitate the installation and fixation of the heating mechanism in the housing 10, the heating mechanism further comprises:
[0064] an upper support 40 arranged at the upper end of the tubular support 20, wherein the upper support 40 is in an annular shape coaxial with the tubular support 20, and is provided thereon with a fixing structure 41 for connecting and fixing the housing 10, thereby fixing and holding the upper end of the heating mechanism in the housing 10. As can be seen from
[0065] Of course, the smokable material A may pass through the central hole of the upper support 40 to be received in or removed from the cavity 21.
[0066] Further referring to
[0067] Specifically, referring to
[0068] Further speaking, in a preferred embodiment shown in
[0069] In a preferred embodiment, and the tubular support 20, the fixing seat 50 and the lower end cover 22 can all be made of high-temperature resistant organic polymer materials, such as PEEK, polycarbonate, polytetrafluoroethylene or the like, or inorganic ceramic materials with good temperature resistance, such as zirconia ceramics,
[0070] In the embodiment of the present application, the heater 60 is a heater 60 which heats the smokable material A either in an electromagnetic inductive manner or in an infrared radiation manner. Specifically, further referring to
[0071] a base 61 made of rigid infrared-permeable quartz, glass or ceramic materials, and configured in the shape of a pin so as to be inserted into the smokable material A; of course, in order to facilitate the installation and fixing of the heater 60, the base 61 is provided thereon with a base portion 62 for abutting against and fixing with the fixing seat 50. The base 61 is provided therein with a hollow space 63 for receiving a heating element 64, and the heating element 64 is encapsulated or contained in the base 61 to emit heat and radiate infrared rays.
[0072] Specifically, the heating element 64 comprises a susceptor portion, which is an elongated bar-shaped or rod-shaped susceptor 641 in this embodiment. The susceptor portion is made of a metal material with appropriate magnetic permeability that is inductively coupled with an alternating magnetic field, and it may be penetrated by a varying magnetic field to generate heat. The heat generated sequentially passes through the infrared emission coating 642 and the base 61 outward in the radial direction, and then is transferred to the smokable material A so that the smokable material A may be heated by heat conduction. The heating element 64 further comprises a thermally induced infrared emission coating 642 formed on the susceptor 641 or a thermally induced infrared emission thin film 642 wound on the susceptor 641. The infrared emission coating 642 of the heating element 64 may be excited while receiving the heat from the susceptor 641, and then radiate far infrared rays with heating effect, such as far infrared rays of 3 .Math.m to 15 .Math.m. When the wavelength of infrared rays matches the absorption wavelength of volatile components of the smokable material A, the energy of infrared rays is easily absorbed by the smokable material so that the smokable material A is heated.
[0073] The susceptor 641 may be made of grade 430 stainless steel (SS430), grade 420 stainless steel (SS420), and alloy materials containing iron and nickel (such as J85/J66 permalloy). It has excellent magnetic permeability, and it can be rapidly heated up under the alternating magnetic field.
[0074] The infrared emission coating 642 is made of a thermally induced infrared emission material. Specifically, the infrared emission coating 642 includes coatings made of ceramic based materials (e.g., zirconium), or Fe—Mn—Cu based materials and tungsten based materials.
[0075] In a preferred embodiment, the infrared emission coating 642 comprises, but not limited to, a sub-material: carbon materials (amorphous carbon film, DLC film, graphene, carbon nanotubes, etc.), oxides (Fe2O3 .sub.’ Al2O3 .sub.’ Cr2O3 .sub.’ In2O3 .sub.’ La2O3 .sub.’ Co2O3 .sub.’ Ni2O3 .sub.’ Sb2O3 .sub.’ Sb2O5 .sub.’ TiO2 .sub.’ ZrO2 .sub.’ CeO2 .sub.’ CuO .sub.’ ZnO .sub.’ MgO .sub.’ CaO .sub.’ MoO3, etc.), carbides (such as SiC, etc.), nitrides (such as TiN, CrN, A1N, Si3N4, etc.) or a combination of two or more of the above materials. The infrared emission coating 642 will radiate the far infrared rays with heating effect described above when it is heated to a proper temperature by the susceptor 641. The thickness of the infrared emission coating 642 may preferably be controlled to range from 30 .Math.m to 50 .Math.m.The infrared emission coating 642 may be formed on the surface of susceptor 641 by spraying the above materials on the outer surface of susceptor 641 by atmospheric plasma spraying and then curing the materials.
[0076] During the use of the heater 60 described above, on the one hand, the susceptor 641 generates heat by inductive heating so that the smokable material A is directly heated by heat conduction; and on the other hand, the infrared radiation is excited by the heat of the susceptor 641, thereby assisting in the heating of the smokable material A, and improving the utilization efficiency of heat.
[0077] Furthermore, as can be further seen from the above embodiment, when the heater 60 is inserted into the smokable material A for heating, the infrared emission coating 642 surrounds the outside of the susceptor 641, and this can ensure that the infrared rays emitted by the infrared emission coating 642 are not blocked and then smoothly radiated to the smokable material A.
[0078] Moreover, in the preferred embodiment shown in
[0079] Furthermore, in yet another modified embodiment of the heater 60a shown in
[0080] Of course, in a more preferred embodiment, an infrared-permeable protective layer (not shown in the figure) such as a layer of glass may be added or formed outside the infrared emission coating 62a for the heater 60a shown in
[0081] In yet another variant embodiment, as shown in
[0082] the tubular hollow space of the heater 60b forms a cavity 63b for accommodating and heating the smokable material A.
[0083] Further referring to
[0086] In yet another optional embodiment, the susceptor portion may be in the form of a coating or a thin film. For example, the structure of the heater 60c may be as shown in
[0090] In other variant embodiments, the infrared emission coating 62c described above may also adopt an infrared emission thin film, such as a zinc oxide thin film, a graphene thin film, or an indium oxide thin film doped with rare earth metal, or a composite thin film formed with infrared emitting materials on flexible thin film substrates such as polyimide, ceramic paper, and flexible glass. Moreover, the corresponding susceptor heating coating 63c may be correspondingly changed into the form of a rigid tube made of magnetically conductive metal or alloy.
[0091] As can be further seen from the embodiment shown in
[0092] It shall be noted that, the specification and attached drawings of the present application show preferred embodiments of the present application. However, the present application is not limited to the embodiments described in this specification. Further speaking, those of ordinary skill in the art can make improvements or variations according to the above description, and all these improvements and variations shall fall within the scope claimed in the appended claims of the present application.