Atomizer and atomizing device thereof
By setting a regulator with a density smaller than the aerogel matrix on the atomization core, the opening and closing of the liquid inlet hole is adjusted, and the oil absorption and oil leakage problems of the atomizer during the consumption of the aerogel matrix is solved, stable control of the liquid inlet volume and negative pressure balance are achieved, and the reliability of the use of the atomizer is improved.
Patent Information
- Application Number
- CN202422406600.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-30
- Publication Date
- 2025-08-29
- Estimated Expiration
- 2034-09-30
AI Technical Summary
During the consumption of aerogel matrix by existing atomizers, oil absorption and oil leakage are prone to occur when the aerogel matrix in the liquid storage chamber is lower than the inlet hole of the atomization core.
The atomization core is provided with the adjusting member, and the density of the adjusting member is smaller than the density of the aerogel matrix, so that it floats with the change of the liquid level of the aerogel matrix, sealing the liquid inlet holes to adjust the liquid inlet volume and maintaining negative pressure balance.
It effectively prevents oil absorption and oil leakage problems when the atomization core is lowered, and maintains the stability of the liquid inlet, avoids the sudden acceleration of the liquid inlet speed caused by changes in the liquid level, and ensures the stability of the atomization effect.
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Figure CN223274917U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of atomization technology, and in particular to an atomizer and an atomization device thereof. Background Art
[0002] An atomizer heats a liquid aerogel matrix to create a mist. It typically consists of two parts: an atomizer that performs the atomization and a battery pack that powers the atomizer. Among existing electronic atomizers, open-cell electronic cigarettes are a common product.
[0003] However, in the process of consuming the aerogel matrix, when the aerogel matrix in the liquid storage chamber of the atomizer is lower than the liquid inlet hole of the atomizer core, oil absorption and oil leakage are likely to occur. Utility Model Content
[0004] The embodiments of the present application provide an atomizer and an atomizing device thereof, which can utilize buoyancy to adjust the amount of oil entering the atomizing core.
[0005] In a first aspect, an embodiment of the present application provides an atomizer, comprising:
[0006] a housing forming a liquid storage cavity for storing the aerogel matrix;
[0007] An atomizing core, used to atomize the aerogel matrix; the atomizing core is provided with a plurality of liquid inlet holes, the liquid inlet holes communicating with the atomizing core and the liquid storage chamber, and the plurality of liquid inlet holes are arranged along the axial direction of the atomizing core;
[0008] an adjusting member, wherein the adjusting member is movably disposed on the atomizing core and is floatingly disposed on the aerogel matrix;
[0009] The regulating member floats with the change of the aerogel matrix and is used to block the liquid inlet holes to change the communication area between the plurality of liquid inlet holes and the liquid storage cavity.
[0010] In some embodiments, the adjusting member includes a collar portion and a balancing portion, wherein the balancing portion is provided on one side of the collar portion, and the collar portion is slidably mounted on the atomizing core.
[0011] In some embodiments, the density of the material of the adjusting member is less than the density of the aerogel matrix.
[0012] In some embodiments, the adjusting member is a sealed hollow structure.
[0013] In some embodiments, the adjusting member is a plastic member, and the hollow structure of the adjusting member is filled with gas, which is air or a gas with a density lower than that of the aerogel matrix.
[0014] In some embodiments, the atomizer core is disposed in the liquid storage chamber, and the atomizer further comprises a first inner shell disposed in the liquid storage chamber, the first inner shell cooperates with the outer shell to form the liquid storage chamber, a central portion of the first inner shell is surrounded to form an air passage, the air passage is connected to the atomizer core, and the adjusting member is slidably sleeved on the atomizer core;
[0015] The atomizing core comprises:
[0016] Atomizing tube, the liquid inlet hole is arranged on the atomizing tube; the adjusting member is sleeved on the atomizing tube;
[0017] Oil-conducting cotton, the oil-conducting cotton is arranged inside the atomizing tube;
[0018] A heating element, wherein the heating element is arranged inside the oil-conducting cotton, and the air duct is arranged inside the heating element;
[0019] The first liquid absorbing member is arranged in the air channel and is arranged on a side of the air channel close to the heating element.
[0020] In some embodiments, the atomizer core is arranged on one side of the liquid storage chamber, and the atomizer further includes a second inner shell arranged on one side of the liquid storage chamber. The second inner shell forms an air channel, and the air channel is connected to the atomizer core. The adjusting member is provided with a sliding mounting structure, and the adjusting member can be slidably arranged on the atomizer core through the sliding mounting structure.
[0021] In some embodiments, the atomization core includes a liquid guide member, a base, a heating member and an atomization electrode stacked in sequence. The liquid guide member is arranged on a side close to the liquid storage chamber, and the liquid inlet hole passes through the liquid guide member, the base and the heating member.
[0022] In some embodiments, the atomizer further comprises a conductive structure disposed within the housing, the conductive structure comprising:
[0023] A sealing member, wherein the sealing member and the housing together form the liquid storage chamber, and the atomizer core is arranged on the sealing member via an atomizer bracket;
[0024] an inner bracket, the inner bracket being arranged on a side of the sealing member away from the liquid storage chamber;
[0025] The bottom cover is arranged on a side of the inner bracket away from the sealing member, and a second liquid absorbing member is provided between the bottom cover and the inner bracket; an electrode connector is embedded in the bottom cover, and the electrode connector is connected to the atomizing core.
[0026] In a second aspect, an embodiment of the present application further provides an atomization device, which uses any one of the atomizers described above, and further includes a battery assembly, which is connected to the atomization core of the atomizer.
[0027] The beneficial effect of the present application is that an adjusting member is provided on the atomizer core, and the density of the adjusting member is less than the density of the aerogel matrix, so that the adjusting member can float with the liquid level of the aerogel matrix in the liquid storage chamber to adjust the size of the liquid inlet hole of the atomizer core, thereby achieving the adjustment of the amount of oil intake. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.
[0029] Figure 1 1 is a schematic cross-sectional view of an atomizer structure according to an embodiment of the present application;
[0030] Figure 2 is a schematic cross-sectional view of the atomizer structure of another embodiment of the present application;
[0031] Figure 3 Schematic diagram of the shape of the liquid absorption surface in multiple embodiments of the present application;
[0032] Figure 4 This is a schematic diagram of the structure of an adjusting member in one embodiment of the present application;
[0033] Figure 5 1 is a schematic cross-sectional view of an atomizer structure according to another embodiment of the present application;
[0034] Figure 6 This is a schematic diagram of the structure of an adjusting member in one embodiment of the present application;
[0035] Figure 7 1 is a schematic cross-sectional view of an atomizer structure according to another embodiment of the present application;
[0036] Figure 8 This is a cross-sectional schematic diagram of the mounting structure of the adjusting member and the atomizer core in one embodiment of the present application;
[0037] Figure 9 1 is a schematic cross-sectional view of an atomizer structure according to an embodiment of the present application;
[0038] Figure 10 is a schematic cross-sectional view of the atomizer structure of another embodiment of the present application;
[0039] Figure 11 It is a schematic structural diagram of an atomization device in one embodiment of the present application.
[0040] Explanation of the accompanying drawings: 10-shell; 100-liquid storage chamber; 20-atomizer core; 200-liquid inlet; 30-adjusting member; 40-first inner shell; 201-atomizer tube; 202-oil-guiding cotton; 203-heating member; 204-first liquid-absorbing member; 31-collar portion; 32-balancing portion; 50-second inner shell; 60-sliding mounting structure; 60-slider; 61-slidable groove; 62-slidable groove; 205-liquid-guiding member; 206-base; 207-heating member; 208-atomizer electrode; 70-conductive structure; 701-sealing member; 7011-atomizer bracket; 702-inner bracket; 703-bottom cover; 704-second liquid-absorbing member; 705-electrode connector; 80-battery assembly; 90-liquid filling plug; 1000-atomizer device; 1001-atomizer; 1002-battery assembly. DETAILED DESCRIPTION
[0041] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are only part of the embodiments of this application, not all of the embodiments. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.
[0042] Please see the attached Figure 1 and attached Figure 2 One embodiment of the present application provides an atomizer, comprising:
[0043] The housing 10 is formed with a liquid storage cavity 100 for storing the aerogel matrix;
[0044] The atomizing core 20 is used to atomize the aerogel matrix. The atomizing core 20 is provided with a plurality of liquid inlet holes 200 , which connect the atomizing core 20 and the liquid storage chamber 100 . The plurality of liquid inlet holes 200 are arranged along the axial direction of the atomizing core 20 .
[0045] An adjusting member 30 , wherein the adjusting member 30 is movably disposed on the atomizing core 20 and is floatingly disposed on the aerogel matrix;
[0046] The regulating member 30 floats with the change of the aerogel matrix and is used to block the liquid inlet holes 200 to change the communication area between the multiple liquid inlet holes 200 and the liquid storage chamber 100 .
[0047] The housing 10 is used to form a liquid storage chamber 100. The atomizer core 20 is used to atomize the aerogel matrix. Specifically, the aerogel matrix enters the atomizer core 20 through the liquid inlet hole 200 on the liquid absorption surface of the atomizer core 20 and is then atomized. The regulating member 30 is used to block the liquid inlet hole 200 during movement.
[0048] In this embodiment, the adjusting member 30 floats as the aerogel matrix changes, and is used to block the liquid inlet 200 to change the communication area between the multiple liquid inlet holes 200 and the liquid storage chamber 100. That is, the multiple liquid inlet holes 200 are distributed along the axial direction of the atomizing core 20, so that the atomizing core 20 has liquid inlet holes 200 at different height positions. When the aerogel matrix is at different liquid levels, the adjusting member 30 can block the liquid inlet holes 200 at different heights. It should be noted that the atomizer in this application is in different use states (such as tilted or horizontally placed, the drawings in this application are all in the vertical state), or in different structures (such as the structure in which the adjusting member described below is arranged on one side of the atomizing core). The adjusting member 30 can block the liquid inlet holes 200 at different positions as the liquid level of the aerogel matrix changes.
[0049] Furthermore, the embodiment does not limit the shape of the liquid suction surface where the liquid inlet hole 200 is located. Figure 3 The liquid inlet surface can be parallel to the central axis of the liquid storage chamber 100 or have a certain angle with the central axis of the liquid storage chamber 100.
[0050] In this embodiment, when the regulating member 30 is not present and the liquid level of the aerogel matrix decreases, the liquid inlet 200 will gradually become exposed until it is completely exposed to the gas in the liquid storage chamber 100. At this time, it is difficult to form an internal negative pressure phenomenon. Therefore, the speed at which the aerogel matrix enters the liquid inlet 200 will be accelerated, making it prone to oil absorption, gas leakage or oil spillage, and even oil splashing. After the regulating member 30 is installed, since the regulating member 30 floats with the liquid level of the aerogel matrix, when the liquid level of the aerogel matrix decreases, see the attached Figure 2 Although the liquid inlet 200 is exposed to the gas in the liquid storage chamber 100, the exposed portion is also blocked by the regulating member 30, thereby maintaining an internal negative pressure balance. This allows the aerogel matrix to enter the atomizer core 20 at a stable and normal rate without suddenly increasing the liquid inflow rate. This not only solves the problems of oil absorption and leakage in the atomizer core 20 when the liquid level drops, but also solves the problems of excessive condensation in the atomizer core 20 and the easy formation of oil film in the mouthpiece outlet.
[0051] When the aerogel matrix is added to the atomizing core 20 again, the liquid level of the aerogel matrix rises again. Figure 1The regulating member 30 returns to the upper part of the atomizer core 20 due to buoyancy. At this time, the exposed liquid inlet hole 200 is covered by the aerogel matrix again, ensuring the internal negative pressure balance. It should be noted that the above process is a dynamic process. When the regulating member 30 floats with the height of the liquid level of the aerogel matrix, it can block the liquid inlet holes 200 at different heights, thereby adjusting the amount of oil entering the atomizer core 20 in real time.
[0052] In one embodiment, as shown in the attached Figure 6 As shown, the adjusting member 30 sleeved on the atomizer core 20 includes a collar portion 31 and a balancing portion 32 . The balancing portion 32 is provided on one side of the collar portion 31 . The collar portion 31 is slidably sleeved on the atomizer core 20 .
[0053] The collar portion 31 is used to block liquid inlets 200 at different heights. The balancing portion 32 is used to balance the collar portion 31, so that it can maintain balance and not float randomly when floating on the aerogel matrix, thereby ensuring the stability of the blockage. Similarly, the above-mentioned hollow structure can be set in the collar portion 31, or in the balancing portion 32, or in both the collar portion 31 and the balancing portion 32. In addition, the present application does not limit the shape of the balancing portion 32, and its shape can be designed according to actual needs.
[0054] In one embodiment, the density of the material of the adjustment member 30 is less than the density of the aerogel matrix.
[0055] In the case of this embodiment, it is ensured that the adjusting member 30 can float on the liquid surface of the aerogel matrix. In an example of this embodiment, the adjusting member 30 is made of foam or plastic, or can be an inflatable plastic.
[0056] In one embodiment, see the attached Figure 4 , the adjusting member 30 is a sealed hollow structure.
[0057] In the case of this embodiment, due to the sealed hollow structure of the regulating member 30, the interior of the regulating member 30 is inflated. At this time, even if the density of the material of the regulating member 30 is greater than the density of the aerogel matrix, the buoyancy calculation formula F 浮 =G 排 =ρ 液 It can be seen from row gV that the adjustment element 30 can still float on the liquid surface of the aerogel matrix.
[0058] In one embodiment, the adjusting member 30 is made of plastic, and the hollow structure of the adjusting member 30 is filled with gas, which is air or a gas with a density lower than that of the aerogel matrix.
[0059] In one embodiment, a limiting structure is provided on the top of the atomizer core 20 , and the limiting structure is used to prevent the adjusting member 30 from being separated from the atomizer core 20 during the floating process.
[0060] In one embodiment, as shown in the attached Figure 5 As shown, the atomizer core 20 is disposed in the liquid storage chamber 100. The atomizer further includes a first inner shell 40 disposed in the liquid storage chamber 100. The first inner shell 40 cooperates with the outer shell 10 to form the liquid storage chamber 100. The middle portion of the first inner shell 40 is surrounded to form an airway (as shown in A in the figure). The airway is connected to the atomizer core 20. The adjustment member 30 is slidably mounted on the atomizer core 20.
[0061] In the present embodiment, the first inner shell 40 is used to cooperate with the shell to form a liquid storage chamber 100, and itself forms an airway, which is a channel for the aerogel to be discharged after atomization, and one end of which is generally connected to the suction nozzle. At this time, the atomizer core 20 is arranged inside the liquid storage chamber 100, and its cross-section can be circular, elliptical, etc. The adjusting member 30 is slidably mounted on the atomizer core 20 so that it floats with the liquid level of the aerogel matrix. In the present embodiment, the adjusting member 30 is slidably mounted on the atomizer core 20, and the adjusting member 30 and the atomizer core 20 do not contact each other and have a gap. It is only necessary to ensure that the adjusting member 30 does not detach from it through a limiting structure (such as a boss, etc.). The adjusting member 30 can also be slidably connected to the atomizer core 20 through a slidable structure.
[0062] In one embodiment, as shown in the attached Figure 5 As shown, the atomizer core 20 includes:
[0063] The atomizing tube 201 and the liquid inlet 200 are provided on the atomizing tube 201; the adjusting member 30 is sleeved on the atomizing tube 201;
[0064] The oil-conducting cotton 202 is arranged inside the atomizing tube 201;
[0065] The heating element 203 is arranged inside the oil-conducting cotton 202 , and the air passage passes through the heating element 203 .
[0066] This embodiment further details the structure of the atomizer core 20 disposed within the liquid storage chamber 100. The atomizer tube 201 is the outermost structure of the atomizer core 20. Its aerogel matrix enters the oil-conducting cotton 202 through the liquid inlet 200, is heated by the heating element 203, and is atomized, ultimately being discharged from the airway.
[0067] The heating element 203 can be a heating wire or a heating net.
[0068] In one embodiment, as shown in the attached Figure 5 As shown, the atomizer core further includes a first liquid absorbing member 204 . The first liquid absorbing member 204 is disposed in the air passage. The first liquid absorbing member 204 is disposed on a side of the air passage close to the heating element 203 .
[0069] The first liquid absorbing member 204 is used to further prevent the aerogel matrix from splashing out of the air passage during the atomization process, and to prevent external impurities from entering the atomization core 20 .
[0070] In one embodiment, as shown in the attached Figure 7 As shown, the atomizer core 20 is arranged on one side of the liquid storage chamber 100. The atomizer also includes a second inner shell 50 arranged on one side of the liquid storage chamber 100. The second inner shell 50 is formed with an air channel (as shown in B in the figure). The air channel is connected to the atomizer core 20. The adjusting member 30 is provided with a sliding mounting structure 60. The adjusting member 30 is slidably arranged on the atomizer core 20 through the sliding mounting structure 60.
[0071] In this embodiment, the second inner shell 50 is used to form an air passage inside the atomizer. The sliding mounting structure 60 of the adjusting member 30 can be as shown in the attached Figure 8 ( Figure 8 The adjusting member 30 and the sliding mounting structure 60 are Figure 6 As shown in the schematic top cross-sectional view obtained by sectioning in the horizontal direction of the atomizer core 20, a slider 61 is provided on the adjusting member 30, and a slidable groove 62 corresponding to the slider is provided on the side wall of the non-connected liquid storage cavity 100 of the atomizer core 20. The two cooperate with each other to realize the up and down sliding of the adjusting member 30, and the adjusting member 30 is arranged in contact with the liquid inlet surface of the atomizer core 20.
[0072] In some embodiments, the atomizing core 20 includes a liquid guiding member 205, a base 206, a heating member 207 and an atomizing electrode 208 that are stacked in sequence. The liquid guiding member 205 is arranged on a side close to the liquid storage chamber 100, and the liquid inlet hole 200 is arranged through the liquid guiding member 205, the base 206 and the heating member 207.
[0073] This embodiment further refines the structure of the atomizer core 20 disposed on one side of the liquid storage chamber 100. One side of the atomizer core 20 can be positioned flush against the sidewall of the liquid storage chamber 100, or it can extend into the interior of the liquid storage chamber 100. The aerogel matrix enters through the liquid inlet 200 in the liquid guide 205 and is atomized by the heating element 207, which is heated by the atomizing electrode 208. The aerogel matrix is ultimately discharged from the airway.
[0074] In one embodiment, as shown in the attached Figure 9 As shown, the atomizer further includes a conductive structure 70 disposed within the housing 10, and the conductive structure 70 includes:
[0075] The sealing member 701 and the housing 10 together form a liquid storage chamber 100 , and the atomizer core 20 is mounted on the sealing member 701 via an atomizer bracket 7011 ;
[0076] An inner bracket 702 is provided on a side of the sealing member 701 away from the liquid storage chamber 100;
[0077] The bottom cover 703 is arranged on a side of the inner bracket 702 away from the sealing member 701 , and a second liquid absorbing member 704 is provided between the bottom cover 703 and the inner bracket 702 ; an electrode connector 705 is embedded in the bottom cover 703 , and the electrode connector 705 is connected to the atomizing core 20 .
[0078] The seal 701 is used to form the liquid storage chamber 100 and isolate the liquid storage chamber 100 from the other conductive structures 70. The inner bracket 702 is used to prevent the electrode connector 705 on the bottom cover 703 from directly contacting the seal 701, thereby reducing the impact on the electrode connector 705. The bottom cover 703 is used to mount the electrode connector 705 and is equipped with a second liquid absorbent 704 to further prevent the aerogel matrix from contacting the electrode connector 705.
[0079] In this embodiment, the air outlet end of the air duct can be connected to the housing 10 of the atomizing device, and the air inlet end of the air duct can be set inside the conductive structure 70, connected to the outside of the atomizing device through the conductive structure 70, or directly connected to the outside of the atomizing device through the conductive structure 70.
[0080] In this embodiment, the electrode connector 705 can be set to two or more. Referring to the structural description in the above embodiment, when two electrode connectors 705 (one positive and one negative) are set, the two electrode connectors 705 are respectively connected to the heating element 203. When two or more are set, for example, when three electrode connectors 705 are set, two heating elements 203 are correspondingly provided. At this time, two of the electrode connectors 705 are respectively connected to the two heating elements 203 in a one-to-one correspondence, while the third electrode connector 705 is simultaneously connected to the above two heating elements 203, so as to achieve the dual power generation effect of any one of the heating elements 203. In addition, the electrode connector 705 can also be used to realize the conversion function of the atomization device. The conversion function can be an existing conversion function, which will not be described in detail here.
[0081] In one embodiment, as shown in the attached Figure 10 As shown, the housing 10 is further provided with a liquid injection plug 90. The liquid injection plug 90 is used to inject the aerogel matrix into the liquid storage chamber 100. When the aerogel matrix needs to be injected, the liquid injection plug 90 can be pulled out, so that the above-mentioned atomizer can be reused.
[0082] Please refer to the attached Figure 11 Another embodiment of the present application provides an atomizing device 1000 , which uses any one of the atomizers 1001 described above. The atomizing device further includes a battery assembly 1002 , which is connected to the atomizing core 20 of the atomizer 1001 .
[0083] The battery assembly 1002 is used to power the atomizer 1001. The battery assembly 1002 may include a battery and a control circuit board, and its structure may be based on existing technologies, which will not be described in detail here.
[0084] The above description is merely an embodiment of the present application and does not limit the patent scope of the present application. Any equivalent structure or equivalent process transformation made using the contents of the present application specification and drawings, or directly or indirectly applied in other related technical fields, are also included in the patent protection scope of the present application.
Claims
1. An atomizer, characterized in that: include: a housing forming a liquid storage cavity for storing the aerogel matrix; An atomizing core, used to atomize the aerogel matrix; the atomizing core is provided with a plurality of liquid inlet holes, the liquid inlet holes communicating with the atomizing core and the liquid storage chamber, and the plurality of liquid inlet holes are arranged along the axial direction of the atomizing core; an adjusting member, wherein the adjusting member is movably disposed on the atomizing core and is floatingly disposed on the aerogel matrix; The regulating member floats with the change of the aerogel matrix and is used to block the liquid inlet holes to change the communication area between the plurality of liquid inlet holes and the liquid storage cavity.
2. An atomizer according to claim 1, characterized in that: The adjusting member includes a collar portion and a balancing portion. The balancing portion is arranged on one side of the collar portion. The collar portion is slidably sleeved on the atomizing core.
3. The atomizer according to claim 1, characterized in that: The density of the material of the adjusting member is less than the density of the aerogel matrix.
4. The atomizer according to claim 1, characterized in that: The adjusting member is a sealed hollow structure.
5. The atomizer according to claim 4, characterized in that: The regulating member is a plastic member, and the hollow structure of the regulating member is filled with gas, which is air or a gas with a density lower than that of the aerogel matrix.
6. The atomizer according to claim 1, characterized in that: The atomizer core is disposed in the liquid storage cavity. The atomizer further comprises a first inner shell disposed in the liquid storage cavity. The first inner shell cooperates with the outer shell to form the liquid storage cavity. The middle portion of the first inner shell is surrounded by an air passage, which is connected to the atomizer core. The adjusting member is slidably sleeved on the atomizer core. The atomizing core comprises: Atomizing tube, the liquid inlet hole is arranged on the atomizing tube; the adjusting member is sleeved on the atomizing tube; Oil-conducting cotton, the oil-conducting cotton is arranged inside the atomizing tube; A heating element, wherein the heating element is arranged inside the oil-conducting cotton, and the air duct is arranged inside the heating element; The first liquid absorbing member is arranged in the air channel and is arranged on a side of the air channel close to the heating element.
7. The atomizer according to claim 1, characterized in that: The atomizer core is arranged on one side of the liquid storage chamber. The atomizer also includes a second inner shell arranged on one side of the liquid storage chamber. The second inner shell forms an air channel, and the air channel is connected to the atomizer core. The adjusting member is provided with a sliding mounting structure, and the adjusting member is slidably arranged on the atomizer core through the sliding mounting structure.
8. The atomizer according to claim 7, characterized in that: The atomizing core includes a liquid guiding member, a base, a heating member and an atomizing electrode which are stacked in sequence. The liquid guiding member is arranged on a side close to the liquid storage chamber, and the liquid inlet hole is arranged through the liquid guiding member, the base and the heating member.
9. The atomizer according to claim 1, characterized in that: The atomizer further includes a conductive structure disposed within the housing, the conductive structure including: A sealing member, wherein the sealing member and the housing together form the liquid storage chamber, and the atomizer core is arranged on the sealing member via an atomizer bracket; an inner bracket, the inner bracket being arranged on a side of the sealing member away from the liquid storage chamber; The bottom cover is arranged on a side of the inner bracket away from the sealing member, and a second liquid absorbing member is provided between the bottom cover and the inner bracket; an electrode connector is embedded in the bottom cover, and the electrode connector is connected to the atomizing core.
10. An atomizing device, characterized in that: The atomizing device uses the atomizer according to any one of claims 1 to 9, and further comprises a battery assembly, wherein the battery assembly is connected to the atomizing core of the atomizer.