Atomizer and atomizing equipment

By designing liquid storage chambers and feeding components in the atomization equipment, the odor enhancement parts are mixed with the atomization matrix, the problem that existing equipment cannot meet customers' diverse taste needs is solved, and flexible taste adjustments and user experience improvements are achieved.

CN222853199UActive Publication Date: 2025-05-13SHENZHEN GEEKVAPE TECH CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202421376092.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-17
Publication Date
2025-05-13
Estimated Expiration
2034-06-17

AI Technical Summary

Technical Problem

Existing atomization equipment cannot meet customers' diverse taste needs at different stages or in the same time period at the same time, resulting in customers needing to purchase multiple atomization equipment, which increases costs and usage problems.

Method used

A nebulizer is designed, including a liquid storage compartment and a feeding assembly. The liquid storage compartment is equipped with an independent liquid storage compartment and a feeding chamber. The feeding assembly includes a odor enhancement member and a driving assembly. The driving assembly can mix the odor enhancement member with the atomizing matrix in the liquid storage compartment, thereby increasing or adjusting the taste of the atomizing device.

Benefits of technology

Through this design, the atomization equipment can flexibly meet customers' diverse taste needs, reduce customers' purchasing costs, and improve users' user experience and equipment adaptability.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN222853199U_ABST
    Figure CN222853199U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of atomization, in particular to an atomizer and atomization device.The atomizer comprises a liquid storage bin and a feeding assembly, a liquid storage cavity and a feeding cavity which are independent are formed in the liquid storage bin, the liquid storage cavity is used for storing atomization matrixes, a feeding opening is formed in the liquid storage cavity, and the feeding opening communicates with the feeding cavity; the feeding assembly is movably arranged in the feeding cavity, the feeding assembly comprises a flavor enhancing part and a driving assembly, and the driving assembly can enable the flavor enhancing part to be mixed with the atomization matrix in the liquid storage cavity. Due to the fact that the charging assembly comprising the flavor enhancing piece and the driving assembly is arranged in the charging cavity, the flavor enhancing piece and the atomization matrix in the liquid storage cavity can be mixed through the driving assembly, the flavor of the atomization equipment is increased or adjusted, the requirements of different customers for increasing the flavor in the using process are met, the adaptability of the whole atomization equipment is improved, and the user experience is improved. And the use experience feeling of the user is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present application relates to the field of atomization technology, and more specifically to an atomizer and atomization equipment. Background Art

[0002] At present, the atomizing device uses a heating element to heat and atomize the atomizing matrix stored in the liquid storage tank to generate an aerosol for the user to use. The flavor of the atomizing matrix in the existing same atomizing device is fixed. Although, atomizers with different flavors have been designed and produced to meet the different taste requirements of different customer groups, and customers can purchase them according to their needs, some customers have different taste requirements at different stages, or some customers have multiple taste requirements in the same time period. The same atomizing device cannot meet the above requirements at the same time. Some customers will purchase multiple atomizing devices in order to obtain different flavors, which undoubtedly increases customer costs and brings troubles and annoyances to customers. Utility Model Content

[0003] The present application provides an atomizer and an atomization device, which have a simple structure and are convenient for adding or adjusting the flavor of the atomizer.

[0004] The present application provides an atomizer, comprising:

[0005] A liquid storage bin, wherein an independent liquid storage cavity and a feeding cavity are provided in the liquid storage bin, wherein the liquid storage cavity is used to store the atomized matrix, and a feeding port is provided on the liquid storage cavity, and the feeding port is communicated with the feeding cavity;

[0006] and a feeding component, wherein the feeding component is movably arranged in the feeding cavity, the feeding component comprises a flavoring component and a driving component, and the driving component can mix the flavoring component with the atomized matrix in the liquid storage cavity.

[0007] In one embodiment, the driving assembly includes a driving push rod, which is movably disposed in the feeding chamber, and the flavor enhancer is disposed between the driving push rod and the feeding port, and the driving push rod can drive the flavor enhancer to mix with the atomized matrix in the liquid storage chamber.

[0008] In one embodiment, the driving assembly further comprises an extrusion member, wherein the extrusion member is movably disposed in the feeding chamber, wherein a movable chamber is provided in the extrusion member, wherein the driving push rod is disposed in the movable chamber, and wherein the driving push rod can drive the flavor enhancer to mix with the atomized matrix in the liquid storage chamber.

[0009] In one embodiment, the flavor enhancing element comprises a wrapping layer and a matrix, and the wrapping layer is used to wrap and seal the matrix.

[0010] In one embodiment, the driving assembly further comprises a blocking member, wherein the blocking member is arranged at one end of the extruding member close to the feeding port, and the flavoring member is arranged between the blocking member and the driving push rod, and the blocking member and the driving push rod can squeeze through the wrapping layer to release the matrix, and the blocking member is provided with a flow hole, and the matrix passes through the flow hole and the feeding port in turn, flows into the liquid storage chamber, and is mixed with the atomized matrix.

[0011] In one embodiment, the driving push rod and the blocking member are both deformable components that can break through the wrapping layer.

[0012] In one embodiment, a piercing portion is provided at one end of the blocking member close to the driving push rod, and the piercing portion can pierce the wrapping layer to release the matrix.

[0013] In one embodiment, a first sealing member is provided between the extrusion member and the feeding chamber, and a second sealing member is provided between the driving push rod and the active chamber.

[0014] In one embodiment, the atomizer further comprises a sealing plug, which is disposed at the feeding port to seal the feeding port, and the feeding assembly can drive the sealing plug to move to release the feeding port.

[0015] The present application provides an atomization device, comprising the atomizer as described above.

[0016] According to the atomizer in the above embodiment, it includes a liquid storage tank and a feeding component. The liquid storage tank is provided with an independent liquid storage cavity and a feeding cavity. The liquid storage cavity is used to store the atomized matrix. The liquid storage cavity is provided with a feeding port, which is connected to the feeding cavity. The feeding component is movably arranged in the feeding cavity. The feeding component includes a flavoring member and a driving component. The driving component can mix the flavoring member with the atomized matrix in the liquid storage cavity. Since the feeding cavity is provided with a feeding component including a flavoring member and a driving component, the flavoring member can be mixed with the atomized matrix in the liquid storage cavity through the driving component, thereby increasing or adjusting the flavor of the atomizing device to meet the needs of different customers who want to increase the flavor during use, thereby improving the adaptability of the entire atomizing device and improving the user experience. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 A structural cross-sectional view of an atomizer in one embodiment;

[0018] Figure 2 for Figure 1 Schematic diagram of the state of the middle extrusion part after movement;

[0019] Figure 3 For Figure 2 A schematic diagram of the state after the push rod is driven to move based on the above;

[0020] Figure 4 for Figure 1 Schematic diagram of the explosion of the atomizer;

[0021] Figure 5 This is a schematic diagram of the structure of a feeding assembly in one embodiment;

[0022] Figure 6 A structural cross-sectional view of a feeding assembly in one embodiment;

[0023] Figure 7 It is a structural cross-sectional view of an extrusion part in one embodiment.

[0024] Among them: 100, liquid storage tank; 110, liquid storage chamber; 111, feeding port; 120, feeding chamber; 130, atomization chamber; 200, feeding assembly; 210, flavor enhancer; 211, wrapping layer; 212, matrix; 220, driving assembly; 221, driving push rod; 2211, first groove; 222, extrusion member; 2221, active chamber; 2222, second groove; 223, blocking member; 2231, flow hole; 2232, puncture part; 224, first sealing member; 225, second sealing member; 300, sealing plug; 400, atomization core. DETAILED DESCRIPTION

[0025] The present application is further described in detail below by specific embodiments in conjunction with the accompanying drawings. Wherein similar elements in different embodiments adopt associated similar element numbers. In the following embodiments, many detailed descriptions are intended to enable the present application to be better understood. However, those skilled in the art can easily recognize that some of the features can be omitted in different situations, or can be replaced by other elements, materials, and methods. In some cases, some operations related to the present application are not shown or described in the specification, in order to avoid the core part of the present application being overwhelmed by too much description, and for those skilled in the art, it is not necessary to describe these related operations in detail, and they can fully understand the related operations based on the description in the specification and the general technical knowledge in the art.

[0026] In addition, the features, operations or characteristics described in the specification can be combined in any appropriate manner to form various implementations, and the operation steps involved in each embodiment can also be replaced or adjusted in a sequence in a manner that is obvious to those skilled in the art. Therefore, the specification and drawings are only for the purpose of clearly describing a certain embodiment and do not mean that the composition and / or sequence are necessary.

[0027] The serial numbers of the components in this document, such as "first", "second", etc., are only used to distinguish the objects described and do not have any order or technical meaning. The "connection" and "coupling" mentioned in this application, unless otherwise specified, include direct and indirect connections (couplings).

[0028] The flavor of the atomization matrix in the existing same atomization device is fixed. Although, atomizers with different flavors have been designed and produced to meet the different taste requirements of different customer groups, and customers can purchase them according to their needs, some customers have different demands for flavors at different stages, or some customers have multiple flavors in the same period of time. The same atomization device cannot meet the above demands at the same time. Some customers will purchase multiple atomization devices in order to obtain different flavors, which undoubtedly increases customer costs and brings troubles and annoyances to customers.

[0029] In the prior art, a plurality of liquid storage chambers containing different flavors are usually arranged in an atomizing device, and separate atomizing cores and atomizing chambers are arranged for different liquid storage chambers. Each atomizing core heats and atomizes the atomizing matrix of different flavors in the corresponding liquid storage chamber to generate an aerosol so as to meet the needs of users with different flavors. However, this method has some defects. On the one hand, the atomizing device has a complex structure and is difficult to assemble, which will also increase the cost of the atomizing device. On the other hand, in some areas of use, due to some customs or regulations, atomizing devices containing nicotine or other flavors cannot be used or sold, which cannot meet the needs of customers with such flavors, resulting in a poor user experience. In order to solve this problem, the present application proposes the following technical solution.

[0030] The present application provides an atomizing device, which includes a host assembly (not shown in the figure) and an atomizer. The host assembly is a collection of related functional components that constitute the overall outline structure of the atomizing device. The user can carry, operate and use the atomizing device by holding the host assembly; for example, the host assembly may include a main shell, a control assembly including a battery, and various pipes and the like. Usually, a plurality of cavities with different functions are arranged or formed in the host assembly, and the plurality of cavities include an installation cavity, which is used to accommodate the atomizer. The host assembly also includes a plurality of channels, such as an air inlet channel and an air outlet channel. External air enters the interior of the host assembly through the air inlet channel, which can provide the air required for the atomizer to work, and the aerosol generated by the atomizer can be provided to the user through the air outlet channel. The specific structure of the host assembly can refer to the prior art. The structure of the atomizer will be described in detail below.

[0031] refer to Figures 1 to 7The atomizer includes a liquid storage tank 100 and a feeding component 200. The liquid storage tank 100 is provided with an independent liquid storage chamber 110 and a feeding chamber 120. The liquid storage chamber 110 is used to store the atomized matrix. The liquid storage chamber 110 is provided with a feeding port 111, which is connected to the feeding chamber 120. The feeding component 200 is movably arranged in the feeding chamber 120. The feeding component 200 includes a flavoring component 210 and a driving component 220. The driving component 220 can mix the flavoring component 210 with the atomized matrix in the liquid storage chamber 110.

[0032] The liquid storage tank 100 is further provided with an atomizing chamber 130, and the atomizing chamber 130 is provided with an atomizing core 400, and the atomizing core 400 is used to heat the atomizing matrix to form an aerosol. The atomizing matrix can be a liquid material that can produce volatile substances.

[0033] By setting a feeding chamber 120 on one side of the liquid storage chamber 110, a feeding assembly 200 including a flavor enhancer 210 and a driving assembly 220 is set in the feeding chamber 120. The flavor enhancer 210 and the atomization matrix in the liquid storage chamber 110 can be mixed through the driving assembly 220, so as to increase or adjust the flavor of the atomization device to meet the needs of different customers who want to increase the flavor during use, thereby improving the adaptability of the entire atomization device and improving the user experience.

[0034] refer to Figure 1 The driving assembly 220 includes a driving push rod 221, which is movably disposed in the feeding chamber 120. The flavor enhancer 210 is disposed between the driving push rod 221 and the feeding port 111. The driving push rod 221 can drive the flavor enhancer 210 to mix with the atomized matrix 212 in the liquid storage chamber 110.

[0035] In one embodiment, the flavor enhancer 210 can enter the liquid storage chamber 110 from the feeding port 111 through the pushing action of the driving rod 221, and directly mix evenly with the liquid atomization matrix in the liquid storage chamber 110, thereby adjusting the components in the atomization matrix. The aerosol components formed by heating and atomizing by the atomization core 400 also change, thereby adjusting the taste of the atomization device.

[0036] Based on the above-mentioned implementation method of mixing the flavor enhancer 210 and the atomized matrix, the atomized matrix 212 is a solid material to avoid leakage when there is no container. Of course, by setting the driving push rod 221, the flavor enhancer 210 can also be fixed in the feeding chamber 120.

[0037] In order to prevent the solid flavor enhancer 210 from entering the liquid storage chamber 110 from the feeding port 111 during transportation, carrying or movement of the entire device, the outer contour size of the flavor enhancer 210 is larger than the size of the feeding port 111. Under the action of the driving push rod 221, the flavor enhancer 210 can be deformed or squeezed (crushed) and fall into the liquid storage chamber 110.

[0038] In another embodiment, the flavor enhancer 210 may also include a wrapping layer 211 and an internal matrix 212 for flavoring. The matrix 212 may include a solid matrix 212 (including a powdered matrix 212) or a liquid matrix 212. The wrapping layer 211 may be a colloid. The squeezing force between the driving push rod 221 and the feeding port 111 causes the colloid to rupture, thereby exposing the matrix 212 inside. When the matrix 212 is a liquid matrix, it can flow into the liquid storage chamber 110 by itself. When the matrix 212 is a solid matrix, the driving push rod 221 can continue to move to push the solid matrix 212 into the liquid storage chamber 110.

[0039] When the flavor enhancer 210 is a colloid-wrapped liquid matrix 212, it can also be called a popping bead. By using a wrapping layer 211 to wrap one of the various types of flavor liquid matrices 212, the popping bead can have a different flavor liquid matrix 212 inside, thereby making the flavor of the popping bead more diversified, and the new flavor produced by mixing the flavor of the popping bead with the flavor of the atomized matrix 212 is also more diversified.

[0040] In one embodiment, the driving component 220 also includes an extrusion piece 222, which is movably disposed in the feeding chamber 120. A movable chamber 2221 is provided in the extrusion piece 222. A driving push rod 221 is disposed in the movable chamber 2221. The driving push rod 221 can drive the flavor enhancer 210 to mix with the atomized matrix in the liquid storage chamber 110. The driving push rod 221 can move to break the solid flavor enhancer 210 or drop it into the liquid storage chamber 110, or it can cooperate with the extrusion piece 222 to squeeze the outer wrapping layer 211 of the flavor enhancer 210, so that the liquid matrix 212 inside it flows into the liquid storage chamber 110.

[0041] refer to Figure 5 and Figure 6In order to better store the above-mentioned flavor enhancer 210 and facilitate the release of the liquid matrix 212 in the flavor enhancer 210, the driving component 220 also includes a blocking member 223, and the blocking member 223 is arranged at one end of the extrusion member 222 close to the feeding port 111. The flavor enhancer 210 is arranged between the blocking member 223 and the driving push rod 221. The blocking member 223 and the driving push rod 221 can cooperate to squeeze the wrapping layer 211 to release the liquid matrix 212 inside the wrapping layer 211. The blocking member 223 is provided with a flow hole 2231. The liquid matrix 212 passes through the flow hole 2231 and the feeding port 111 in turn, flows into the liquid storage chamber 110, and mixes with the atomized matrix 212.

[0042] In one embodiment, the driving push rod 221 and the blocking member 223 are both deformable components that can break through the wrapping layer 211 .

[0043] refer to Figure 7 The blocking member 223 is provided with a piercing portion 2232 at one end close to the driving push rod 221. The piercing portion 2232 can pierce the wrapping layer 211 to release the liquid matrix 212. The flavoring member 210 is arranged in the active cavity 2221 and between the piercing portion 2232 and the driving push rod 221. When it is necessary to increase or change the flavor, the driving push rod 221 is pushed to move close to the piercing portion 2232, so that the flavoring member 210 is squeezed and arranged between the piercing portion 2232 and the driving push rod 221. As the distance between the driving push rod 221 and the piercing portion 2232 becomes smaller, the flavoring member 210 is squeezed and ruptured, and the liquid matrix 212 inside it can be released.

[0044] In some embodiments, in order to prevent the driving push rod 221 from moving synchronously when the extrusion member 222 moves, a first sealing member 224 is provided between the driving push rod 221 and the active chamber 2221. Since the driving push rod 221 is completely disposed inside the extrusion member 222, a part of the structure of the driving push rod 221 is exposed from the extrusion member 222 through the movement of the extrusion member 222, thereby providing a fulcrum point, which facilitates the operator to drive the exposed driving push rod 221 to move and puncture the flavor enhancer 210. This structural mode can reduce the volume of the entire feeding assembly 200, making it easy to carry.

[0045] Of course, in other embodiments, the entire extension length of the driving push rod 221 can be greater than the extension length of the active cavity 2221, that is, at least a portion of the structure of the driving push rod 221 is exposed from the extrusion member 222. When the extrusion member 222 moves, the driving push rod 221 can move synchronously, and the exposed portion can independently drive the driving push rod 221 to move.

[0046] Of course, in order to prevent the liquid matrix 212 inside the flavor enhancer 210 from leaking after being released, or the atomized matrix 212 from leaking, a second seal 225 is provided between the extrusion member 222 and the feeding chamber 120. The first seal 224 and the second seal 225 are both rubber (silicone) sealing rings, which can improve the sealing of the entire feeding assembly 200. The first seal 224 is mounted on the driving push rod 221, and the second seal 225 is mounted on the extrusion member 222.

[0047] In order to prevent the matrix 212 in the flavor enhancer 210 from affecting the normal use or sale of the entire atomization device, the feeding component 200 is detachably arranged in the feeding chamber 120. The feeding component 200 has a simple structure and is easy to assemble and assemble, and can prevent the atomized matrix 212 from leaking from the feeding port 111 or being contaminated by the external environment. A sealing plug 300 is also provided at the feeding port 111. By setting the sealing plug 300 at the feeding port 111 to seal the feeding port 111, when there is no need to increase the flavor, the feeding port 111 can protect the atomized matrix 212 in the liquid storage chamber 110. When it is necessary to increase the flavor, the feeding component 200 can drive the sealing plug 300 to move to release the feeding port 111.

[0048] When it is necessary to add flavor, the feeding assembly 200 is placed in the feeding chamber 120, and the extrusion member 222 is pushed to move so that the sealing plug 300 can be pushed away from the feeding port 111. For example, the sealing plug 300 is pushed into the liquid storage chamber 110 by the extrusion member 222. Figures 1 to 3 , which is a schematic diagram of the process of pushing the sealing plug 300 into the liquid storage cavity 110 by using the extrusion member 222, and then piercing the flavoring member 210 by using the driving push rod 221 to achieve flavor enhancement. Alternatively, the liquid storage tank 100 is provided with other buffer cavities, the sealing plug 300 is pushed away from the feeding port 111 and pushed into the buffer cavity, and then the driving push rod 221 is moved (relative to the extrusion member 222), so that the liquid matrix 212 inside the flavoring member 210 is released by the joint action of the piercing portion 2232 and the driving push rod 221, so that it flows into the liquid storage cavity 110 along the flow hole 2231 and the feeding port 111.

[0049] In some embodiments, when the extrusion member 222 moves, the driving push rod 221 can also move synchronously and approach the feeding port 111. After the sealing plug 300 is separated from the feeding port 111, the driving push rod 221 moves again to puncture.

[0050] The feeding chamber 120 has a straight central axis, and its extended line coincides with the center of the feeding port 111. The extrusion piece 222 and the driving push rod 221 are tubular structures with a straight central axis, and the central axes of the extrusion piece 222 and the driving push rod 221 coincide with the central axis of the feeding chamber 120. The extrusion piece 222 and the driving push rod 221 both move along the direction of their central axes, that is, the movement directions of the extrusion piece 222 and the driving push rod 221 are consistent. The piercing portion 2232 and the flow hole 2231 are arranged at one end of the movement direction of the extrusion piece 222. The movement of the extrusion piece 222 is utilized to make the sealing plug 300 enter the liquid storage chamber 110, and the driving push rod 221 is utilized to squeeze the flavor enhancer 210 so that the liquid matrix 212 inside it flows into the liquid storage chamber 110, thereby completing the increase of flavor.

[0051] In another embodiment, the extrusion member 222 and the driving push rod 221 may move in different directions, for example, the extrusion member 222 and the driving push rod 221 may move in perpendicular directions to each other. The extrusion member 222 pushes the sealing plug 300 away from the feeding port 111, the piercing portion 2232 and the flow hole 2231 are arranged on the side of the extrusion member 222, and the driving push rod 221 inside the extrusion member 222 moves in a direction close to the piercing portion 2232, and cooperates with the piercing portion 2232 to release the liquid matrix 212 inside the flavor enhancer 210.

[0052] In order to prevent the first seal 224 from moving back and forth during the movement of the driving push rod 221 and the second seal 225 from moving back and forth during the movement of the extrusion member 222, which would cause the first seal 224 and the second seal 225 to fail in function, a first groove 2211 is provided on the driving push rod 221, and a second groove 2222 is provided on the extrusion member 222. The first seal 224 is arranged in the first groove 2211, and the second seal 225 is arranged in the second groove 2222. The size of the first groove 2211 is smaller than that of the first seal 224, so that part of the structure of the first seal 224 is arranged between the driving push rod 221 and the inner wall of the active cavity 2221, and the size of the second groove 2222 is smaller than that of the second seal 225, so that part of the structure of the second seal 225 is arranged between the extrusion member 222 and the inner wall of the feeding cavity 120.

[0053] The above specific examples are used to illustrate the present application, which is only used to help understand the present application and is not intended to limit the present application. For technicians in the technical field to which the present application belongs, they can also make some simple deductions, deformations or substitutions based on the ideas of the present application.

Claims

1. An atomizer, characterized in that: include: A liquid storage bin, wherein an independent liquid storage cavity and a feeding cavity are provided in the liquid storage bin, wherein the liquid storage cavity is used to store the atomized matrix, and a feeding port is provided on the liquid storage cavity, and the feeding port is communicated with the feeding cavity; and a feeding component, wherein the feeding component is movably arranged in the feeding cavity, the feeding component comprises a flavoring component and a driving component, and the driving component can mix the flavoring component with the atomized matrix in the liquid storage cavity.

2. The atomizer according to claim 1, characterized in that The driving assembly comprises a driving push rod, which is movably arranged in the feeding chamber. The flavor enhancer is arranged between the driving push rod and the feeding port. The driving push rod can drive the flavor enhancer to mix with the atomized matrix in the liquid storage chamber.

3. The atomizer according to claim 2, characterized in that The driving assembly also includes an extruding piece, which is movably arranged in the feeding chamber. A movable chamber is arranged in the extruding piece. The driving push rod is arranged in the movable chamber. The driving push rod can drive the flavoring element to mix with the atomized matrix in the liquid storage chamber.

4. The atomizer according to claim 3, characterized in that The flavor enhancement element comprises a wrapping layer and a matrix, wherein the wrapping layer is used for wrapping and sealing the matrix.

5. The atomizer according to claim 4, characterized in that The driving assembly also includes a blocking member, which is arranged at one end of the extruding member close to the feeding port, and the flavoring member is arranged between the blocking member and the driving push rod. The blocking member and the driving push rod can squeeze the wrapping layer to release the matrix. The blocking member is provided with a flow hole, and the matrix passes through the flow hole and the feeding port in turn, flows into the liquid storage cavity, and is mixed with the atomized matrix.

6. The atomizer according to claim 5, characterized in that The driving push rod and the blocking member are both deformable components that can break through the wrapping layer.

7. The atomizer according to claim 5, characterized in that The blocking member is provided with a piercing portion at one end close to the driving push rod, and the piercing portion can pierce the wrapping layer to release the matrix.

8. The atomizer according to claim 3, characterized in that A first sealing member is provided between the extruding member and the feeding chamber, and a second sealing member is provided between the driving push rod and the active chamber.

9. The atomizer according to any one of claims 1 to 8, characterized in that The atomizer further comprises a sealing plug, which is arranged at the feeding port and used for sealing the feeding port. The feeding assembly can drive the sealing plug to move to release the feeding port.

10. An atomization device, characterized in that: Comprising an atomizer as described in any one of claims 1-9.