Electromagnetic heating atomization structure and electromagnetic atomization device
By introducing a main heating section and an annular atomizing medium carrier section into the atomization structure, the efficiency and uniformity problems of resistance heating are solved, achieving efficient and uniform atomization heating and reducing leakage, while simplifying the structure of the electromagnetic heating atomization device.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHEN ZHEN SHI LE XIANG CHUANG XIN SHE JI YOU XIAN GONG SI
- Filing Date
- 2025-04-22
- Publication Date
- 2026-05-26
AI Technical Summary
Existing resistance heating methods suffer from low heating efficiency, uneven heating, and a tendency to localize dry burning. Furthermore, existing electromagnetic induction heating methods have a complex structure.
An electromagnetic heating atomization structure is adopted, including a main heating part and an annular atomizing medium carrying part. The main heating part is located on the bottom side of the atomizing medium outlet near the storage cavity and is sealed at the linear atomization channel. The annular atomizing medium carrying part is coaxial with the flow hole and partially protrudes from the side of the main heating part, communicating with the linear atomization channel to form an atomizing medium carrying groove, ensuring that the main heating part is located below the atomizing medium outlet to improve the contact area and heating uniformity.
It achieves efficient and uniform atomization heating, reduces leakage of atomization medium, simplifies the structure, and improves heating efficiency and heating uniformity.
Smart Images

Figure CN224268312U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of electronic atomization technology, and in particular to an electromagnetic heating atomization structure and an electromagnetic atomization device. Background Technology
[0002] Because resistance heating has many drawbacks, such as low heating efficiency and uneven heating, resulting in low atomization efficiency and a tendency for localized dry burning, electromagnetic induction heating is now more commonly used to heat and atomize the atomizing medium. For example, the invention patent application with application number CN201610438721.X uses electromagnetic induction heating to heat the atomizing medium, achieving high heating efficiency and good heating uniformity, as well as reducing leakage. However, due to the setting of the air passage and aerosol channel, it requires the use of multiple shells to form a tortuous air passage and aerosol channel, resulting in a relatively complex structure. Utility Model Content
[0003] The purpose of this invention is to overcome the shortcomings of the prior art and provide an electromagnetic heating atomization structure and electromagnetic atomization device that is simple in structure, has high heating efficiency and good heating uniformity, and can reduce liquid leakage.
[0004] The objective of this utility model is achieved through the following technical solution:
[0005] An electromagnetic heating atomizing structure is provided, which is disposed within an atomizing housing. The atomizing housing has an atomizing medium storage cavity and a linear atomizing channel. The electromagnetic heating atomizing structure includes:
[0006] An atomizing medium outlet, the atomizing medium outlet being at least partially located within the atomizing medium storage cavity and at least partially in communication with the linear atomizing channel;
[0007] An electromagnetically heated atomizing element includes a main heating part and at least one annular atomizing medium carrying part. The main heating part is located on the side of the atomizing medium outlet near the bottom of the atomizing medium storage cavity and is sealed at the linear atomizing channel. The main heating part has at least one flow hole communicating with the linear atomizing channel. The annular atomizing medium carrying part is coaxial with the flow hole and at least partially protrudes from the side of the main heating part near the atomizing medium outlet and is connected to the hole wall of the flow hole to form an atomizing medium carrying groove. The atomizing medium outlet communicating with the linear atomizing channel is accommodated in the atomizing medium carrying groove.
[0008] In one embodiment, the number of flow holes is multiple;
[0009] The number of the annular atomizing medium carriers is multiple, and the multiple flow holes are arranged one-to-one with the multiple annular atomizing medium carriers. Each annular atomizing medium carrier is coaxial with the corresponding flow hole, and each annular atomizing medium carrier at least partially protrudes from the side of the main heating part near the atomizing medium outlet. The multiple annular atomizing medium carriers are connected to the hole wall of the corresponding flow hole to form an atomizing medium carrier groove.
[0010] In one embodiment, the atomizing medium outlet is attached to the annular atomizing medium carrier.
[0011] In one embodiment, the main heating part and the annular atomizing medium carrier part are integrally formed.
[0012] In one embodiment, one end face of the annular atomizing medium carrier near the atomizing medium outlet protrudes from the side of the atomizing medium outlet away from the main heating part.
[0013] In one embodiment, the end face of the annular atomizing medium carrier near the atomizing medium outlet is flush with the side of the atomizing medium outlet away from the main heating part.
[0014] In one embodiment, the electromagnetic heating atomization structure further includes at least one auxiliary electromagnetic heating atomization element, which is disposed at the linear atomization channel and embedded in the atomization medium outlet element.
[0015] In one embodiment, the electromagnetic heating atomization structure further includes an electromagnetic coil, which is disposed adjacent to the main heating part, and the electromagnetic coil is configured to generate an alternating magnetic field when energized, with the main heating part and the annular atomizing medium carrier part situated in the alternating magnetic field.
[0016] An electromagnetic atomizing device includes an atomizing housing and an electromagnetic heating atomizing structure as described in any of the above embodiments. The atomizing housing is provided with an atomizing medium storage cavity and a linear atomizing channel. The atomizing medium outlet is at least partially located in the atomizing medium storage cavity and at least partially communicates with the linear atomizing channel. The main heating part is located on the side of the atomizing medium outlet near the bottom of the atomizing medium storage cavity and is sealed at the linear atomizing channel. The linear atomizing channel communicates with the flow hole. The atomizing medium outlet communicating with the linear atomizing channel is accommodated in the atomizing medium carrying groove.
[0017] In one embodiment, the atomizing medium storage chamber is provided with liquid storage cotton, and the liquid storage cotton is connected to the atomizing medium outlet.
[0018] Compared with the prior art, the present invention has at least the following advantages:
[0019] The electromagnetic heating atomization structure of this invention allows the atomizing medium outlet to be at least partially located within the atomizing medium storage cavity and at least partially connected to the linear atomization channel. This ensures the atomizing medium outlet directs the atomizing medium to the linear atomization channel. The main heating element is located on the side of the atomizing medium outlet near the bottom of the atomizing medium storage cavity and blocks the linear atomization channel. This arrangement ensures the main heating element is positioned below the atomizing medium outlet in the direction of gravity. Because the atomizing medium discharged by the outlet is concentrated near the main heating element under gravity, the main heating element contacts the outlet at a location with a higher concentration of atomizing medium, thus rapidly and effectively atomizing the medium and initially reducing leakage. This design effectively ensures high heating efficiency and good heating uniformity. The annular atomizing medium support portion protrudes at least partially from the side of the main heating element near the atomizing medium outlet and connects with the wall of the flow hole to form an atomizing medium support groove. The atomizing medium outlet, connected to the linear atomizing channel, is housed within this groove. This means that the side of the main heating element near the atomizing medium outlet and the side wall of the annular atomizing medium support portion near the main heating element together form the atomizing medium support groove. The atomizing medium support groove supports and accommodates the atomizing medium outlet located within the linear atomizing channel. In other words, the atomizing medium support groove also supports and accommodates the atomizing medium leaking from the outlet. Furthermore, the atomizing medium leaking into the atomizing medium support groove can be further heated and atomized by the main heating element and the annular atomizing medium support portion, further reducing leakage of the atomizing medium. The design is also simple. Attached Figure Description
[0020] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this utility model and should not be regarded as a limitation on the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.
[0021] Figure 1 This is a schematic diagram of the electromagnetic heating atomization structure according to one embodiment of the present invention;
[0022] Figure 2 for Figure 1 A cross-sectional view of the electromagnetic heating atomization structure shown.
[0023] Figure 3 for Figure 2A magnified view of part A of the electromagnetic heating atomization structure shown.
[0024] Figure 4 This is a schematic diagram of the structure of an electromagnetic atomizing device according to one embodiment of the present invention;
[0025] Figure 5 for Figure 4 A partial cross-sectional view of the electromagnetic atomizing device shown. Detailed Implementation
[0026] To facilitate understanding of this utility model, a more complete description will be given below with reference to the accompanying drawings. The drawings illustrate preferred embodiments of this utility model. However, this utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a more thorough and complete understanding of the disclosure of this utility model.
[0027] It should be noted that when an element is referred to as being "fixed to" another element, it can be directly attached to the other element or there may be an intervening element. When an element is referred to as being "connected to" another element, it can be directly connected to the other element or there may be an intervening element. The terms "vertical," "horizontal," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only possible implementation.
[0028] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.
[0029] This application provides an electromagnetic heating atomizing structure for use within an atomizing housing. The atomizing housing has an atomizing medium storage cavity and a linear atomizing channel. The electromagnetic heating atomizing structure includes an atomizing medium outlet and an electromagnetic heating atomizing component. The atomizing medium outlet is located at least partially within the atomizing medium storage cavity and communicates at least partially with the linear atomizing channel. The electromagnetic heating atomizing component includes a main heating section and at least one annular atomizing medium carrying section. The main heating section is located on the side of the atomizing medium outlet near the bottom of the atomizing medium storage cavity and blocks the linear atomizing channel. The main heating section has at least one flow hole communicating with the linear atomizing channel. The annular atomizing medium carrying section is coaxial with the flow hole and at least partially protrudes from the side of the main heating section near the atomizing medium outlet and connects to the wall of the flow hole to form an atomizing medium carrying groove. The atomizing medium outlet communicating with the linear atomizing channel is accommodated within the atomizing medium carrying groove.
[0030] The aforementioned electromagnetic heating atomization structure allows the atomizing medium outlet to be at least partially located within the atomizing medium storage cavity and at least partially connected to the linear atomization channel. This ensures the atomizing medium outlet directs the atomizing medium to the linear atomization channel. The main heating element is positioned on the side of the atomizing medium outlet near the bottom of the atomizing medium storage cavity and sealed off at the linear atomization channel. This arrangement ensures the main heating element is located below the atomizing medium outlet in the direction of gravity. Because the atomizing medium exits under gravity, a significant portion of the exited atomizing medium is located near the main heating element. This results in greater contact between the main heating element and the atomizing medium outlet at a location with a higher concentration of atomizing medium, thus rapidly and effectively atomizing the medium and initially reducing leakage. It effectively ensures high heating efficiency and good heating uniformity. The annular atomizing medium support portion protrudes at least partially from the side of the main heating portion near the atomizing medium outlet and connects with the wall of the flow hole to form an atomizing medium support groove. The atomizing medium outlet, which communicates with the linear atomizing channel, is accommodated within the atomizing medium support groove. This means that the side of the main heating portion near the atomizing medium outlet and the side wall of the annular atomizing medium support portion near the main heating portion together form the atomizing medium support groove. The atomizing medium support groove supports and accommodates the atomizing medium outlet located within the linear atomizing channel. In other words, the atomizing medium support groove also supports and accommodates the atomizing medium leaking from the atomizing medium outlet. Furthermore, the atomizing medium leaking into the atomizing medium support groove can be further heated and atomized by the main heating element and the annular atomizing medium support portion, further reducing atomizing medium leakage. The structure is also simple.
[0031] To better understand the electromagnetic heating atomization structure of this application, the following further explanation is provided:
[0032] Please refer to the following: Figures 1 to 3 One embodiment of the electromagnetic heating atomizing structure 10 includes an atomizing medium outlet 100 and an electromagnetic heating atomizing element 200. The atomizing medium outlet 100 is at least partially located within the atomizing medium storage cavity and at least partially communicates with the linear atomizing channel. The electromagnetic heating atomizing element 200 includes a main heating part 210 and at least one annular atomizing medium carrying part 220. The main heating part 210 is located on the side of the atomizing medium outlet 100 near the bottom of the atomizing medium storage cavity and blocks the linear atomizing channel. The main heating part 210 has at least one flow hole 201 communicating with the linear atomizing channel. The annular atomizing medium carrying part 220 is coaxial with the flow hole 201 and at least partially protrudes from the side of the main heating part 210 near the atomizing medium outlet 100 and connects with the wall of the flow hole 201 to form an atomizing medium carrying groove 202. The atomizing medium outlet 100 communicating with the linear atomizing channel is accommodated in the atomizing medium carrying groove 202.
[0033] The aforementioned electromagnetic heating atomization structure 10 is configured such that the atomizing medium outlet 100 is at least partially located within the atomizing medium storage cavity and at least partially connected to the linear atomization channel, thereby enabling the atomizing medium outlet 100 to outlet the atomizing medium to the linear atomization channel. Furthermore, the main heating unit 210 is located on the side of the atomizing medium outlet 100 near the bottom of the atomizing medium storage cavity and blocks the linear atomization channel, thus enabling the main heating unit 210 to be located on the side of the atomizing medium outlet 100 near the atomizing medium storage cavity. On one side, the main heating part 210 is positioned below the atomizing medium outlet 100 in the direction of gravity. Because the atomizing medium outlet 100, under the influence of gravity, has a higher concentration of atomized medium near the main heating part 210, this results in the main heating part 210 contacting the atomizing medium outlet 100 at a location with a higher concentration of atomized medium. This allows for rapid and effective atomization of the atomized medium, initially reducing leakage and ensuring better atomization. The high heating efficiency and good heating uniformity, combined with the annular atomizing medium support portion 220 at least partially protruding from the side of the main heating portion 210 near the atomizing medium outlet 100 and connected to the wall of the flow hole 201 to form an atomizing medium support groove 202, and the atomizing medium outlet 100 communicating with the linear atomizing channel being accommodated in the atomizing medium support groove 202, ensure that the side of the main heating portion 210 near the atomizing medium outlet 100 is aligned with the side of the annular atomizing medium support portion 220 near the main heating portion 210. The sidewalls together form an atomizing medium carrying groove 202, which carries and accommodates the atomizing medium outlet 100 located in the linear atomizing channel. In other words, the atomizing medium carrying groove 202 carries and accommodates the atomizing medium leaking out of the atomizing medium outlet 100. Furthermore, the atomizing medium leaking into the atomizing medium carrying groove 202 can be further heated and atomized by the main heating element and the annular atomizing medium carrying part 220, further reducing the leakage of the atomizing medium and with a simple structure.
[0034] Please refer to the following: Figures 1 to 3 In one embodiment, there are multiple flow holes 201. Furthermore, there are multiple annular atomizing medium carriers 220, with each flow hole 201 corresponding to one of the multiple annular atomizing medium carriers 220. Each annular atomizing medium carrier 220 is coaxial with its corresponding flow hole 201, and each annular atomizing medium carrier 220 at least partially protrudes from the side of the main heating part 210 near the atomizing medium outlet 100. The multiple annular atomizing medium carriers 220 are connected to the walls of their corresponding flow holes 201 to form an atomizing medium carrier groove 202, which facilitates the rapid outlet of the aerosol formed by the heating and atomization of the atomizing medium.
[0035] Please refer to the following: Figures 1 to 3In one embodiment, the atomizing medium outlet 100 is attached to the annular atomizing medium carrier 220, thereby increasing the atomization heating area of the atomizing medium.
[0036] Please refer to the following: Figures 1 to 3 In one embodiment, the main heating part 210 and the annular atomizing medium carrier part 220 are integrally formed, which improves the structural strength of the electromagnetic heating atomizing structure 10.
[0037] In one embodiment, the end face of the annular atomizing medium carrier near the atomizing medium outlet protrudes from the side of the atomizing medium outlet away from the main heating part, ensuring that the atomizing medium leaking out at the atomizing medium outlet is effectively carried and reheated and atomized by the main heating element and the annular atomizing medium carrier.
[0038] Please refer to the following: Figures 1 to 3 In one embodiment, the end face of the annular atomizing medium carrier 220 near the atomizing medium outlet 100 is flush with the side of the atomizing medium outlet 100 away from the main heating part 210, ensuring that the atomizing medium leaking out at the atomizing medium outlet 100 is effectively carried and reheated and atomized by the main heating element and the annular atomizing medium carrier 220.
[0039] In one embodiment, the electromagnetic heating atomization structure further includes at least one auxiliary electromagnetic heating atomization component, which is disposed at the linear atomization channel and embedded in the atomization medium outlet component, thereby further improving the atomization heating efficiency.
[0040] In one embodiment, the electromagnetic heating atomization structure further includes an electromagnetic coil, which is arranged adjacent to the main heating part. The electromagnetic coil is configured to generate an alternating magnetic field after being energized. The main heating part and the annular atomizing medium carrier part are in the alternating magnetic field, which better ensures the effectiveness of electromagnetic heating atomization of the electromagnetic heating atomization structure.
[0041] This application also provides an electromagnetic atomizing device. Please refer to it as well. Figures 4 to 5 One embodiment of the electromagnetic atomizing device 10A includes an atomizing housing 20 and an electromagnetic heating atomizing structure 10 of any of the above embodiments. The atomizing housing 20 is provided with an atomizing medium storage cavity 2001 and a linear atomizing channel 2002. The atomizing medium outlet 100 is at least partially located in the atomizing medium storage cavity 2001 and at least partially communicates with the linear atomizing channel 2002. The main heating part 210 is provided on the side of the atomizing medium outlet 100 near the bottom of the atomizing medium storage cavity 2001 and is sealed at the linear atomizing channel 2002. The linear atomizing channel 2002 communicates with the flow hole 201. The atomizing medium outlet 100 communicating with the linear atomizing channel 2002 is accommodated in the atomizing medium carrying groove 202. Further, please refer to the following: Figures 1 to 3In this embodiment, the electromagnetic heating atomizing structure 10 includes an atomizing medium outlet 100 and an electromagnetic heating atomizing element 200. The atomizing medium outlet 100 is at least partially located within the atomizing medium storage cavity 2001 and at least partially communicates with the linear atomizing channel 2002. The electromagnetic heating atomizing component 200 includes a main heating part 210 and at least one annular atomizing medium carrying part 220. The main heating part 210 is located on the side of the atomizing medium outlet 100 near the bottom of the atomizing medium storage cavity 2001 and is sealed at the linear atomizing channel 2002. The main heating part 210 is provided with at least one flow hole 201 communicating with the linear atomizing channel 2002. The annular atomizing medium carrying part 220 is coaxial with the flow hole 201, and at least part of the annular atomizing medium carrying part 220 protrudes from the side of the main heating part 210 near the atomizing medium outlet 100 and is connected to the hole wall of the flow hole 201 to form an atomizing medium carrying groove 202. The atomizing medium outlet 100 communicating with the linear atomizing channel 2002 is accommodated in the atomizing medium carrying groove 202.
[0042] The aforementioned electromagnetic atomizing device 10A employs an electromagnetic heating atomizing structure 10, which has high heating efficiency and good heating uniformity, simplifies the structure of the electromagnetic atomizing device 10A, and effectively reduces leakage problems.
[0043] Please refer to the following: Figures 4 to 5 In one embodiment, the atomizing medium storage cavity 2001 is provided with a liquid storage cotton 30, which is connected to the atomizing medium outlet 100. This allows the liquid storage cotton 30 to store the atomizing medium, avoiding the situation where the atomizing medium is backflowed and does not come into contact with the atomizing medium outlet 100, thus improving the stable outlet of the atomizing medium by the atomizing medium outlet 100.
[0044] Compared with the prior art, the present invention has at least the following advantages:
[0045] The electromagnetic heating atomizing structure 10 of this invention allows the atomizing medium outlet 100 to be at least partially located within the atomizing medium storage cavity 2001 and at least partially connected to the linear atomizing channel 2002, thus enabling the atomizing medium outlet 100 to outlet the atomizing medium to the linear atomizing channel 2002. Furthermore, the main heating part 210 is located on the side of the atomizing medium outlet 100 near the bottom of the atomizing medium storage cavity 2001 and is sealed at the linear atomizing channel 2002, thus enabling the main heating part 210 to be positioned at the atomizing medium outlet. The side of component 100 closest to the atomizing medium storage cavity 2001 is positioned such that, in the direction of gravity, the main heating part 210 is located below the atomizing medium outlet 100. Because the atomizing medium exited by the atomizing medium outlet 100 is concentrated near the main heating part 210 under gravity, the main heating part 210 contacts the area of the atomizing medium outlet 100 where a significant amount of atomizing medium accumulates, thus quickly and effectively atomizing the atomizing medium and initially reducing the accumulation and leakage of the atomizing medium. This design ensures high heating efficiency and good heating uniformity. The annular atomizing medium carrier 220 protrudes at least partially from the side of the main heating section 210 near the atomizing medium outlet 100 and connects with the wall of the flow hole 201 to form an atomizing medium carrier groove 202. The atomizing medium outlet 100, which communicates with the linear atomizing channel 2002, is housed within the atomizing medium carrier groove 202. This ensures that the side of the main heating section 210 near the atomizing medium outlet 100 is flush with the side of the annular atomizing medium carrier 220 near the main heating section. The sidewalls of part 210 together form an atomizing medium carrying groove 202, which carries and accommodates the atomizing medium outlet 100 located in the linear atomizing channel 2002. In other words, the atomizing medium carrying groove 202 carries and accommodates the atomizing medium leaking out of the atomizing medium outlet 100. Furthermore, the atomizing medium leaking into the atomizing medium carrying groove 202 can be further heated and atomized by the main heating element and the annular atomizing medium carrying part 220, further reducing the leakage of the atomizing medium and simplifying the structure.
[0046] The above embodiments only illustrate several implementation methods of this utility model, and their descriptions are relatively specific and detailed, but they should not be construed as limiting the scope of the utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.
Claims
1. An electromagnetic heating atomizing structure, used to be disposed within an atomizing housing, characterized in that, The atomizing housing has an atomizing medium storage cavity and a linear atomizing channel, and the electromagnetic heating atomizing structure includes: An atomizing medium outlet, the atomizing medium outlet being at least partially located within the atomizing medium storage cavity and at least partially in communication with the linear atomizing channel; An electromagnetically heated atomizing element includes a main heating part and at least one annular atomizing medium carrying part. The main heating part is located on the side of the atomizing medium outlet near the bottom of the atomizing medium storage cavity and is sealed at the linear atomizing channel. The main heating part has at least one flow hole communicating with the linear atomizing channel. The annular atomizing medium carrying part is coaxial with the flow hole and at least partially protrudes from the side of the main heating part near the atomizing medium outlet and is connected to the hole wall of the flow hole to form an atomizing medium carrying groove. The atomizing medium outlet communicating with the linear atomizing channel is accommodated in the atomizing medium carrying groove.
2. The electromagnetic heating atomization structure according to claim 1, characterized in that, The number of flow holes is multiple; The number of the annular atomizing medium carriers is multiple, and the multiple flow holes are arranged one-to-one with the multiple annular atomizing medium carriers. Each annular atomizing medium carrier is coaxial with the corresponding flow hole, and each annular atomizing medium carrier at least partially protrudes from the side of the main heating part near the atomizing medium outlet. The multiple annular atomizing medium carriers are connected to the hole wall of the corresponding flow hole to form an atomizing medium carrier groove.
3. The electromagnetic heating atomization structure according to claim 1 or 2, characterized in that, The atomizing medium outlet is attached to the annular atomizing medium carrier.
4. The electromagnetic heating atomization structure according to claim 1 or 2, characterized in that, The main heating section and the annular atomizing medium support section are integrally formed.
5. The electromagnetic heating atomization structure according to claim 1 or 2, characterized in that, The end face of the annular atomizing medium carrier near the atomizing medium outlet protrudes from the side of the atomizing medium outlet away from the main heating part.
6. The electromagnetic heating atomization structure according to claim 1 or 2, characterized in that, The end face of the annular atomizing medium carrier near the atomizing medium outlet is flush with the side of the atomizing medium outlet away from the main heating part.
7. The electromagnetic heating atomization structure according to claim 1 or 2, characterized in that, The electromagnetic heating atomization structure further includes at least one auxiliary electromagnetic heating atomization element, which is disposed at the linear atomization channel and embedded in the atomization medium outlet element.
8. The electromagnetic heating atomization structure according to claim 1 or 2, characterized in that, The electromagnetic heating atomization structure also includes an electromagnetic coil, which is arranged adjacent to the main heating part. The electromagnetic coil is configured to generate an alternating magnetic field when energized, and the main heating part and the annular atomizing medium carrier part are located in the alternating magnetic field.
9. An electromagnetic atomizing device, characterized in that, The device includes an atomizing housing and an electromagnetic heating atomizing structure as described in any one of claims 1 to 8. The atomizing housing is provided with an atomizing medium storage cavity and a linear atomizing channel. The atomizing medium outlet is at least partially located in the atomizing medium storage cavity and at least partially communicates with the linear atomizing channel. The main heating part is located on the side of the atomizing medium outlet near the bottom of the atomizing medium storage cavity and is sealed at the linear atomizing channel. The linear atomizing channel communicates with the flow hole. The atomizing medium outlet communicating with the linear atomizing channel is accommodated in the atomizing medium carrying groove.
10. The electromagnetic atomizing device according to claim 9, characterized in that, The atomizing medium storage chamber is equipped with a liquid storage cotton, which is connected to the atomizing medium outlet.