VAPOR GENERATION DEVICE
20240057673 ยท 2024-02-22
Inventors
- ZEXIN WU (Shenzhen City, Guangdong Province, CN)
- ZAIMING SHI (Shenzhen City, Guangdong Province, CN)
- ZHONGLI XU (Shenzhen City, Guangdong Province, CN)
- YONGHAI LI (Shenzhen City, Guangdong Province, CN)
Cpc classification
A24F40/40
HUMAN NECESSITIES
International classification
Abstract
A vapor generation device is configured to heat a vapor generation article to generate an aerosol for inhalation, including: a cavity, configured to receive a vapor generation article; a susceptor, configured to be penetrated by a changing magnetic field and generate heat, to heat the vapor generation article received in the cavity; an extractor, at least partially received in the cavity and configured to extract the vapor generation article vapor generation article through movement in an axial direction of the cavity or removal from the cavity; an induction coil, configured to generate the changing magnetic field and held on the extractor; and a first electrical contact, configured to conduct with the induction coil when the extractor is received in the cavity, to supply power to the induction coil.
Claims
1. A vapor generation device, configured to heat a vapor generation article to generate an aerosol for inhalation, comprising: a cavity, configured to receive a vapor generation article; a susceptor, configured to be penetrated by a changing magnetic field and generate heat, to heat the vapor generation article received in the cavity; an extractor, at least partially received in the cavity and configured to extract the vapor generation article through movement in an axial direction of the cavity or removal from the cavity; an induction coil, configured to generate the changing magnetic field, and combined with the extractor and held by the extractor; and a first electrical contact, configured to conduct with the induction coil when the extractor is received in the cavity, to supply power to the induction coil.
2. The vapor generation device according to claim 1, wherein the first electrical contact is located in the cavity.
3. The vapor generation device according to claim 2, wherein a second electrical contact electrically connected to the induction coil is formed on the extractor; and the first electrical contact is configured to conduct with the induction coil by conducting with the second electrical contact when the extractor is received in the cavity.
4. The vapor generation device according to claim 3, further comprising: a conductive element, electrically connected to the induction coil, and forming the second electrical contact by at least a part of the conductive element.
5. The vapor generation device according to claim 4, wherein the conductive element comprises a first part extending in an axial direction of the induction coil and a second part extending in a radial direction of the induction coil, wherein: the induction coil is electrically connected to the first part; and the second part forms the second electrical contact.
6. The vapor generation device according to claim 4, wherein the conductive element is positioned between the extractor and the induction coil.
7. The vapor generation device according to claim 4, wherein the extractor is provided with a holding groove, and the conductive element is at least partially accommodated and held in the holding groove.
8. The vapor generation device according to claim 4, wherein a connection point protruding relative to the conductive element is arranged on the conductive element, and the induction coil is electrically connected to the conductive element through the connection point.
9. The vapor generation device according to claim 4, wherein the conductive element is in a sheet shape.
10. The vapor generation device according to claim 1, wherein the induction coil has an inner diameter in a range of 6.0 mm to 7.5 mm.
11. The vapor generation device according to claim 1, wherein a protrusion is arranged on the extractor, and the protrusion is configured to abut against an inner wall of the cavity when the extractor is received in the cavity, to maintain a channel that allows air to enter the extractor and that is between the extractor and the inner wall of the cavity.
12. The vapor generation device according to claim 1, further comprising: a magnetic field shielding member, configured to surround or wrap the induction coil in a circumferential direction of the induction coil.
13. The vapor generation device according to claim 1, further comprising: a housing having a near end and a far end opposite to each other in a longitudinal direction, wherein the housing comprises: a lower housing, close to the far end, and having an inner wall and an outer wall opposite to each other in a radial direction, wherein the inner wall defines the cavity extending in the longitudinal direction; an upper housing, close to the near end, and at least partially surrounding the outer wall of the lower housing; and an airflow channel, comprising a first part extending between the upper housing and the outer wall of the lower housing along the far end toward the near end, and a second part extending between the inner wall of the lower housing and the extractor along the near end toward the far end.
14. A vapor generation device, configured to heat a vapor generation article to generate an aerosol for inhalation, and comprising a near end and a far end opposite to each other in a longitudinal direction; and a lower housing, close to the far end, and having an inner wall and an outer wall opposite to each other in a radial direction, wherein the inner wall defines a cavity extending in a longitudinal direction, and the cavity is configured to receive a vapor generation article; a heater, configured to at least partially extend in the cavity to heat the vapor generation article received in the cavity; an upper housing, close to the near end, and at least partially surrounding the outer wall of the lower housing; a cylindrical extractor, at least partially received in the cavity and configured to extract the vapor generation article received in the cavity; and an airflow channel, comprising a first part extending between the upper housing and the outer wall of the lower housing along the far end toward the near end, and a second part extending between the inner wall of the lower housing and the cylindrical extractor along the near end toward the far end.
15. The vapor generation device according to claim 14, wherein a gap at a combined part of the upper housing and the lower housing forms an inlet of the airflow channel.
16. The vapor generation device according to claim 14, wherein the airflow channel further comprises a third part extending in the extractor along the far end toward the near end.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0041] One or more embodiments are exemplarily described with reference to the corresponding figures in the accompanying drawings, and the exemplary descriptions are not to be construed as limiting the embodiments. Elements/modules and steps in the accompanying drawings that have same reference numerals are represented as similar elements/modules and steps, and unless otherwise particularly stated, the figures in the accompanying drawings are not drawn to scale.
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DETAILED DESCRIPTION
[0049] For ease of understanding of this application, this application is described below in more detail with reference to accompanying drawings and specific implementations.
[0050] For a configuration of a vapor generation device provided in an embodiment of this application, reference may be made to
[0052] Further, the upper housing 10 is provided with a receiving hole 11 on a surface of the near end 110. During use, the aerosol generation article A may be received in the housing through the receiving hole 111 for heating or removal.
[0053] Further, as shown in
[0054] Further, as shown in
[0055] According to
[0058] An induction coil 50, arranged around at least a part of the cylindrical extractor 30, and is configured to generate, when providing an alternating current to the cylindrical extractor 30, a changing magnetic field penetrating the susceptor 60.
[0059] In a preferred implementation shown in
[0060] Based on a complete implementation, the lower housing 20 includes: [0061] a core 23, configured to supply power; [0062] a circuit 24, configured to guide a current between the core 23 and the induction coil 50, to output an alternating current to the induction coil 50, so that the induction coil 50 generates an alternating magnetic field, and [0063] a charging interface 25, configured to charge the core 23.
[0064] In order to supply power to the induction coil 50 held on the cylindrical extractor 30, in an optional implementation, a configuration of the cylindrical extractor 30 may be shown in
[0066] In another optional implementation, the upper housing 10 causes the cylindrical extractor 30 to extract the aerosol generation article A by moving a certain distance relative to the lower housing 20 without being completely detached from the lower housing 20. By causing the cylindrical extractor 30 to move a certain distance, the aerosol generation article A is substantially loosened or detached from the susceptor 60, which is convenient for the user to perform the removal operation.
[0067] An upper end of the cylindrical extractor 30 is in communication with the receiving hole 11, and a lower end portion is configured as a closed end for abutting against an inner wall of the closed end to form a stop when the aerosol generation article A is received inside. The lower end portion of the cylindrical extractor 30 is provided with a hole 33 for the susceptor 60 to penetrate and inserted into the aerosol generation article A inside. In an optional implementation, the hole 33 may include a narrow slit fitted to a sheet-like susceptor 60, a circular aperture fitted to a pin-like susceptor 60, or a combination thereof as shown in
[0068] A first holding groove 32 extends on an outer surface in a length direction of the cylindrical extractor 30. The first holding groove 32 is configured to mount and hold the sheet-shaped conductive element 40. Certainly, there are two first holding grooves 32, which are arranged symmetrically on the outer surface of the cylindrical extractor 30 in a radial direction of the cylindrical extractor 30, where one is configured to accommodate and hold a positive electrode conductive sheet 410, and the other is configured to accommodate and hold a negative electrode conductive sheet 420. The positive electrode conductive sheet 410 and the negative electrode conductive sheet 420 are both in a shape of a thin sheet, have a thickness of approximately not greater than 1 mm, and are made of gold, silver, copper, or alloy thereof with high electrical conductive performance.
[0069] Further, for details, reference may be made to
[0070] Further, when a first end 51 of the induction coil 50 is connected to the positive electrode conductive sheet 410, and a second end is connected to the negative electrode conductive sheet 420, so that power may be supplied to the induction coil 50 through the positive electrode contact part 412 and the negative electrode contact part 422. Details are shown in
[0071] Two conductive elastic pins 70 extending in the length direction are arranged in the lower housing 20, and the conductive elastic pins 70 are connected to the circuit 24. The conductive elastic pin 70 is at least partially exposed in the cavity 22 to form an electrical contact, so that when the cylindrical extractor 30 is received in the cavity 22, top ends of the two conductive elastic pins 70 can elastically abut against the positive electrode contact part 412 and the negative electrode contact part 422 respectively to form conductivity, thereby forming a complete path of the induction coil 50.
[0072] Further, in a preferred implementation, connection structures or components such as magnets and buckles are arranged on the upper housing 10 and the lower housing 20, so that when the cylindrical extractor 30 is received in the cavity 22, the conductive elastic pin 70 may be stably held in a compressed state through magnetic attraction or buckles. On the one hand, the cylindrical extractor 30 is prevented from ejecting due to elasticity of the conductive elastic pins 70. On the other hand, the top ends of the conductive elastic pins 70 are prevented from being in poor contact with the positive electrode contact part 412 and the negative electrode contact part 422.
[0073] In an optional implementation, because an outer surface of the induction coil 50 is usually coated with an insulating layer or sprayed with insulating paint, the induction coil 50 may stably connect the first end 51 and the second end 52 to a sheet-shaped conductive element 40 in a welding manner. In a preferred implementation shown in
[0074] Alternatively, in other optional implementations, the protruding positive electrode welding point 411 or negative electrode welding point 421 may be replaced by threaded holes, the first end 51 and the second end 52 are respectively drilled corresponding to the induction coil 50, and then the first end 51 and the second end 52 are fixed to the threaded holes through screws, to form conductivity.
[0075] According to a preferred implementation shown in
[0076] With reference to an airflow path during inhalation shown in
[0077] Further, in the foregoing optional implementations, because the induction coil 50 is wound on the outer wall of the cylindrical extractor 30, the induction coil has a smaller spiral inner diameter than that wound on an outer wall forming a cavity component, so that the generated magnetic field may be more concentrated. In a preferred implementation, based on a size of the cylindrical extractor 30 that is made of a polymer plastic material with a thickness in a range of 0.5 to 1.5 mm and is adapted to a commonly used inhalable material A with a diameter of 5.6 mm, the induction coil 50 may have an inner diameter in a range of about 6.0 to 7.5 mm, more preferably in a range of 6.5 to 6.8 mm. A length of a cylindrical induction coil 50 wound in a spiral shape may range from about 8 mm to about 14 mm, and a number of turns of the induction coil 50 may range from about 8 turns to 15 turns. Correspondingly, an internal volume may range from about 0.15 cm.sup.3 to about 1.10 cm.sup.3.
[0078] In a more preferred implementation, a frequency of an alternating current supplied to the induction coil 50 by the circuit 20 ranges from 80 KHz and 400 KHz, and more specifically, the frequency may range from about 200 KHz to 300 KHz.
[0079] In a preferred embodiment, a direct-current power supply voltage provided by the core 23 ranges from about 2.5 V to about 9.0 V, and an amperage of a direct current that can be provided by the core 23 c ranges from about 2.5 A to about 20 A.
[0080] In a preferred embodiment, the susceptor 60 may have a length of about 12 mm, a width of about 4 mm, and a thickness of about 0.5 mm, and may be made of stainless steel of level 430 (SS430). In an alternative embodiment, the susceptor 60 may have a length of about 12 mm, a width of about 5 mm, and a thickness of about 0.5 mm, and may be made of stainless steel of level 420 (SS420). In other variation implementations, the susceptor 60 may further be configured in a cylindrical or tubular shape. During use, a cavity for receiving the aerosol generation article A is formed in an inner space of the susceptor 60, and an aerosol for inhalation is generated by heating an outer periphery of the aerosol generation article A. These susceptors may further be made of an alloy material containing iron and nickel (such as permalloy).
[0081] In another optional implementation, the susceptor 60 is made of the sensing material, or is obtained by electroplating or deposition on an outer surface of a heat-resistant substrate material, such as ceramics, to form a coating of the sensing material.
[0082] Further,
[0085] In a variation implementation shown in
[0086] In still another preferred implementation, the extraction assembly may further include: [0087] an electromagnetic shielding film (not shown in the figure), extending in an axial direction of the induction coil 50a and surrounding or wrapping the induction coil 50a, and configured to shield or twist magnetic lines of the induction coil 50a from the outside, so that the magnetic field generated by the induction coil 50a is concentrated inside as much as possible.
[0088] In an optional implementation, the electromagnetic shielding film is a flexible electromagnetic shielding film. For example, the electromagnetic shielding film may be a commonly used film of a thickness of 0.2 mm, which is made by heating and melting powder with 30% iron powder, 5% nickel powder, 5% cobalt powder and powder of organic flexible carriers through a film-making process. Metal particles have a granularity of less than 100 nm and are evenly dispersed in a plastic material, so that the performance of magnetic field shielding can be implemented. Alternatively, in another optional implementation, the electromagnetic shielding film is an electromagnetic shielding film made of an alloy coating of nickel, chromium, aluminum, titanium, tin, indium on a flexible substrate such as PI film, PEN film, PEI film, PC film, cloth, or paper by deposition, printing, or spraying. Alternatively, in still another optional implementation, the electromagnetic shielding film is a film of a metal or an alloy with a lower thickness of high conductivity, high permeability, such as an Al film, a copper film, a titanium film, or a deposited magnetic metal foil with high permeability, such as a ferroalloy foil, a cobalt alloy foil, and a nickel alloy foil.
[0089] Another embodiment of this application further provides a vapor generation device. As shown in
[0094] In this embodiment, the susceptor 60 penetrated by the magnetic field and generating heat may further be replaced in a heat-generating manner such as resistance or infrared.
[0095] It should be noted that, the specification of this application and the accompanying drawings thereof illustrate preferred embodiments of this application, but this application is not limited to the embodiments described in the specification. Further, a person of ordinary skill in the art may make improvements or variations according to the foregoing descriptions, and such improvements and variations shall all fall within the protection scope of the appended claims of this application.