Atomization structure and atomization equipment
By using a standardized atomization structure and conductive interface, the problem of incompatible atomizer grid density is solved, enabling users to replace and insert the atomizer themselves, thus reducing costs and difficulty.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-25
- Publication Date
- 2026-03-31
AI Technical Summary
Commercially available nebulizers have a nebulizer plate mesh density that is incompatible with different medication requirements, and replacement is complicated, which means that users need to purchase additional equipment or find it difficult to replace the nebulizer plate themselves.
A standardized shell atomizing structure is designed, with built-in atomizing plates of different grid densities, which are electrically connected to a conductive interface through conductive components, allowing users to replace and insert them themselves.
It allows users to select nebulizers based on their medication needs, reducing procurement costs and replacement difficulties, and meeting the needs of different usage scenarios.
Smart Images

Figure CN224056400U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of atomizer equipment technology, and in particular to an atomizing structure and atomizing equipment. Background Technology
[0002] As a mature electronic component, atomizing plates are widely used in various equipment fields such as stem cell atomizers and eye massagers.
[0003] Depending on the mesh density of the product itself, the atomizing plate can transform prepared medication into atomized particles of the target diameter after being powered on, thus achieving different usage purposes. However, due to varying usage needs, commercially available atomizer devices often require the purchase of specialized atomizer equipment. When users want to use atomizer equipment to atomize different medications, the mesh density of the atomizing plate in the purchased atomizer equipment is often too large or too small, leading to incompatibility between the medication and the purchased atomizer equipment, forcing users to purchase additional equipment.
[0004] Moreover, commercially available nebulizers are often complicated to disassemble and assemble. After prolonged use, the mesh of the internal atomizing plate can become clogged by impurities in the medication, thus affecting the atomization effect. Users often find it difficult to replace the atomizing plate in the nebulizer themselves.
[0005] Therefore, designing a nebulizer product that allows users to easily replace the nebulizer plate based on their needs for nebulizing medication is a pressing technical problem that needs to be solved. Utility Model Content
[0006] The purpose of this utility model is to provide an atomizing structure and atomizing device to at least solve the technical problems existing in the above-mentioned commercially available atomizer devices.
[0007] To achieve the above objectives, this utility model provides the following technical solution:
[0008] The first aspect of this utility model provides an atomizing structure, which includes a housing, an atomizing plate, and a conductive element. The housing has a first accommodating space and a second accommodating space inside. A first slot and a second slot are respectively formed on opposite sides of the first accommodating space, and the first slot and the second slot communicate with the outside of the housing. A conductive interface communicating with the outside of the housing is formed on one side of the second accommodating space. The atomizing plate is built into the first accommodating space, and the working area of the atomizing plate at least partially covers the first slot and the second slot. The conductive element is built into the second accommodating space and is electrically connected to the atomizing plate. The conductive element at least partially covers the conductive interface so that the atomizing plate is in a working state when the conductive interface is energized.
[0009] Furthermore, in some embodiments of the above-mentioned atomizing structure, the housing includes a first outer shell and a second outer shell; the inner wall of the first outer shell is provided with a first isolation wall to isolate the interior of the first outer shell to form a first chamber and a second chamber, and the first isolation wall is provided with a through groove communicating with the first chamber and the second chamber; the inner wall of the second outer shell is provided with a second isolation wall to isolate the interior of the second outer shell to form a third chamber and a fourth chamber; the first outer shell and the second outer shell are fastened together, the first chamber and the third chamber together form a first accommodating space, and the second chamber and the fourth chamber together form a second accommodating space.
[0010] Furthermore, in some embodiments of the above-mentioned atomizing structure, the first slot is formed in the first housing and is close to the liquid inlet side of the atomizing plate; the second slot is formed in the second housing and is close to the mist outlet side of the atomizing plate; and the conductive interface is formed in the first housing.
[0011] Furthermore, in some embodiments of the above-mentioned atomizing structure, the atomizing structure further includes a first sealing element, which is built into a first chamber. The first sealing element has an installation groove on the side near the third chamber. The groove size of the installation groove is adapted to the outer size of the atomizing plate. The atomizing plate is built into the installation groove. A first channel is opened on the first sealing element. The two ends of the first channel are respectively connected to the installation groove and the first slot hole. The liquid inlet side at least partially covers the first channel.
[0012] Furthermore, in some embodiments of the above-mentioned atomizing structure, the atomizing structure further includes a second sealing element, which is built into the third chamber. The second sealing element has a second channel, and the two ends of the second channel are respectively connected to the second slot and the mist outlet side.
[0013] Furthermore, in some embodiments of the atomizing structure described above, a limiting portion is provided on the side of the second seal, the limiting portion extends into the first chamber, and the limiting surface of the limiting portion abuts against the side of the first seal.
[0014] Furthermore, in some embodiments of the above-mentioned atomizing structure, the first sealing member has a first protrusion structure on the side away from the second chamber. The outer dimensions of the first protrusion structure are adapted to the hole size of the first slot. The first protrusion structure passes through and fills the first slot and protrudes towards the outer side of the first outer shell. The first channel is opened in the first protrusion structure. The second sealing member has a second protrusion structure on the side away from the atomizing sheet. The second protrusion structure is arranged around the second channel. A sealing groove is provided on the inner side of the second outer shell corresponding to the position of the second protrusion structure. The groove size of the sealing groove is adapted to the outer dimensions of the second protrusion structure. The second protrusion structure fills the sealing groove.
[0015] Furthermore, in some embodiments of the above-mentioned atomizing structure, a first connecting part is provided in the first chamber, and a second connecting part is provided in the third chamber at the position corresponding to the first connecting part, and the first outer shell and the second outer shell are fastened together by the first connecting part and the second connecting part.
[0016] Furthermore, in some embodiments of the above-mentioned atomizing structure, the conductive component includes a first conductive component and a second conductive component, the conductive interface includes a first interface and a second interface, and a first slot and a second slot are provided in the second cavity; the two ends of the first interface are respectively connected to the first slot and the outside of the first shell, the first conductive component is inserted into the first slot and at least partially covers the first interface; the two ends of the second interface are respectively connected to the second slot and the outside of the first shell, the second conductive component is inserted into the second slot and at least partially covers the second interface.
[0017] The second aspect of this utility model provides an atomizing device, which includes: a device body and the atomizing structure provided in any of the first aspects of this utility model. The device body is provided with a liquid supply port, a mist outlet, a connector slot, and an electrode interface. The two opposite sides of the connector slot are respectively connected to the liquid supply port and the mist outlet, and the electrode interface is located on one side of the connector slot. The atomizing structure is detachably connected to the connector slot. When the atomizing structure is inserted into the connector slot, the power-on interface of the atomizing structure is electrically connected to the electrode interface. The first slot of the atomizing structure is connected to the liquid supply port, and the second slot of the atomizing structure is connected to the mist outlet.
[0018] Analysis reveals that this utility model discloses an atomizing structure and atomizing device. The housing of the atomizing structure adopts a standardized design, and the interior of the standardized housing can be fitted with atomizing plates of different mesh densities to meet the atomization needs of different types of liquid medications. The atomizing plates inside the atomizing structure are connected to a conductive component via wires. The conductive component can be electrically connected to the atomizing device via a conductive interface and used in conjunction with the atomizing device. The conductive component can also be electrically connected to a power supply via a conductive interface for independent use, thus meeting the needs of users in different usage scenarios. Users can purchase atomizing structures with different mesh densities according to their atomization needs. When atomization is required or the atomizing plate needs to be replaced, only the corresponding atomizing structure needs to be replaced. Furthermore, the atomizing structure and atomizing device disclosed in this utility model only require simple plug-in connection for power supply, which reduces the user's procurement costs and greatly simplifies the difficulty of replacing the atomizing plate. Attached Figure Description
[0019] The accompanying drawings, which form part of this application, are used to provide a further understanding of the present invention. The illustrative embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an undue limitation of the present invention. Wherein:
[0020] Figure 1This is a schematic diagram of the atomization structure from one angle according to Embodiment 1 of this utility model;
[0021] Figure 2 This is a schematic diagram of the atomization structure proposed in Embodiment 1 of this utility model from another angle;
[0022] Figure 3 This is an exploded structural diagram of the atomization structure proposed in Embodiment 1 of this utility model;
[0023] Figure 4 This is a cross-sectional schematic diagram of the atomization structure proposed in Embodiment 1 of this utility model;
[0024] Figure 5 This is a schematic diagram of the structure of the first outer shell of the atomizing structure proposed in Embodiment 1 of this utility model;
[0025] Figure 6 This is a schematic diagram of the structure of the second shell of the atomizing structure proposed in Embodiment 1 of this utility model;
[0026] Figure 7 This is a schematic diagram of the structure of the first sealing element of the atomizing structure proposed in Embodiment 1 of this utility model;
[0027] Figure 8 This is a schematic diagram of the structure of the second sealing element of the atomizing structure proposed in Embodiment 1 of this utility model;
[0028] Figure 9 This is a schematic diagram of the atomizing device proposed in Embodiment 2 of this utility model.
[0029] Explanation of reference numerals in the attached figures:
[0030] 1. Atomization structure;
[0031] 101, First outer casing; 101a, First slot; 101b, First chamber; 101c, Second chamber; 101d, First partition wall; 101e, Through slot; 101f, First connecting part; 101g, First slot; 101h, Second slot; 101i, First interface; 101j, Second interface;
[0032] 102. Second outer casing; 102a. Second slot; 102b. Third chamber; 102c. Fourth chamber; 102d. Second partition wall; 102e. Sealing groove; 102f. Second connecting part;
[0033] 103. Atomizing plate;
[0034] 104, First seal; 104a, Mounting groove; 104b, First protrusion structure; 104c, First channel; 104d, First clearance groove;
[0035] 105. Second seal; 105a. Second channel; 105b. Second protrusion structure; 105c. Limiting part; 105d. Limiting surface; 105e. Second clearance groove;
[0036] 106. First conductive component;
[0037] 107. Second conductive component;
[0038] 2. Atomizing device; 201. Liquid supply port; 202. Mist outlet; 203. Connecting slot; 204. Electrode interface;
[0039] A. First direction; B. Second direction. Detailed Implementation
[0040] The present invention will now be described in detail with reference to the accompanying drawings and embodiments. Various examples are provided by way of explanation of the present invention and not by way of limitation. In fact, those skilled in the art will recognize that modifications and variations can be made to the present invention without departing from the scope or spirit of the invention. For example, a feature shown or described as part of one embodiment may be used in another embodiment to produce yet another embodiment. Therefore, it is desirable that the present invention encompass such modifications and variations that fall within the scope of the appended claims and their equivalents.
[0041] In the description of this utility model, the terms "longitudinal," "lateral," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," and "bottom," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this utility model and do not require that this utility model be constructed and operated in a specific orientation; therefore, they should not be construed as limitations on this utility model. The terms "connected," "linked," and "set up" used in this utility model should be interpreted broadly. For example, they can refer to a fixed connection or a detachable connection; a direct connection or an indirect connection through intermediate components; a wired connection, a radio connection, or a wireless communication signal connection. Those skilled in the art can understand the specific meaning of the above terms according to the specific circumstances.
[0042] The accompanying drawings illustrate one or more examples of the present invention. The detailed description uses numerals and letters to refer to features in the drawings. Similar or analogous reference numerals in the drawings and description have been used to refer to similar or analogous parts of the present invention. As used herein, the terms “first,” “second,” and “third,” etc., are used interchangeably to distinguish one component from another and are not intended to indicate the location or importance of individual components.
[0043] Example 1
[0044] like Figures 1 to 8 As shown, Embodiment 1 of this utility model provides an atomizing structure 1, which includes a shell, an atomizing plate 103, and a conductive component.
[0045] Preferably, such as Figures 3 to 6 As shown, the housing includes a first outer shell 101 and a second outer shell 102, both of which can be integrally molded using injection molding. A first partition wall 101d is formed on the inner wall of the first outer shell 101 using injection molding, dividing the inner side of the first outer shell 101 into a first chamber 101b and a second chamber 101c. A second partition wall 102d is formed on the inner wall of the second outer shell 102 using injection molding, dividing the inner side of the second outer shell 102 into a third chamber 102b and a fourth chamber 102c. A first connecting portion 101f is formed in the first chamber 101b by injection molding, and a second connecting portion 102f is formed in the third chamber 102b by injection molding. The first outer shell 101 and the second outer shell 102 are detachably fastened together by the first connecting portion 101f and the second connecting portion 102f, so that the first chamber 101b and the third chamber 102b together form a first accommodating space, and the second chamber 101c and the fourth chamber 102c together form a second accommodating space. The first accommodating space is used to install the atomizing plate 103, and the second accommodating space is used to install conductive components. The first shell and the second shell have a first slot 101a and a second slot 102a respectively at the positions corresponding to the atomizing area of the atomizing plate 103. The two ends of the first slot 101a are respectively connected to the outside of the first shell and the liquid inlet side of the atomizing plate 103, so that external liquid medicine can be supplied to the atomizing plate 103 through the first slot 101a. The two ends of the second slot 102a are respectively connected to the outside of the second housing and the mist outlet side of the atomizing plate 103, so that the mist after atomization by the atomizing plate 103 can flow out through the second slot 102a.
[0046] Specifically, such as Figures 3 to 6 As shown, the first outer shell 101 has a hole-shaped first connecting portion 101f formed by injection molding at the inner wall of the first chamber 101b, and the second outer shell 102 has a column-shaped second connecting portion 102f formed by injection molding at the inner wall of the third chamber 102b. The number and position of the first connecting portions 101f and the second connecting portions 102f correspond one-to-one, and their dimensions are matched. The first outer shell 101 and the second outer shell 102 can be detachably fastened together through the first connecting portions 101f and the second connecting portions 102f.
[0047] Preferably, such as Figures 1 to 5As shown, a conductive interface is provided on the first housing at the position corresponding to the second chamber 101c. The conductive interface is used for electrical connection between the external power source and the conductive component. The conductive component and the atomizing plate 103 are electrically connected by a wire. The through groove 101e opened on the first isolation wall 101d is used to pass the wire through, thereby realizing the electrical connection between the atomizing plate 103 and the external power source.
[0048] Preferably, such as Figures 3 to 8 As shown, in some embodiments of the atomizing structure 1 provided in Embodiment 1 of this utility model, the atomizing structure 1 further includes a first sealing member 104 and a second sealing member 105 made of silicone material.
[0049] Specifically, the first chamber 101b has a circular groove structure, and the first sealing member 104 is filled inside the first chamber 101b. The first sealing member 104 has a mounting groove 104a on the side opposite to the first slot 101a, which is adapted to the external dimensions of the atomizing plate 103, so that the atomizing plate 103 can be installed in the mounting groove 104a. The first sealing member 104 has a first protrusion structure 104b on the side near the first slot 101a. The external dimensions of the first protrusion structure 104b are adapted to the groove dimensions of the first slot 101a, so that it can be filled into the first slot 101a, and after being filled into the first slot 101a, the first protrusion structure 104b can protrude in a direction away from the atomizing plate 103. A first channel 104c is formed on the first protrusion structure 104b, and the two ends of the first channel 104c are respectively connected to the outside of the first outer shell 101 and the liquid inlet side of the atomizing plate 103. The first seal 104 and the first protrusion 104b thereon can prevent the liquid from flowing into the second chamber 101c from the gap when the liquid flows to the liquid inlet side of the atomizing plate 103, causing a short circuit.
[0050] Specifically, the third chamber 102b has a circular groove structure, and the second seal 105 is filled inside the third chamber 102b. The second seal 105 has a second channel 105a, the two ends of which connect to the outside of the second outer shell 102 and the mist-exit side of the atomizing plate 103, respectively. The surface of the second seal 105 near the second groove 102a has an annular second protrusion structure 105b, which surrounds the second channel 105a. The inner wall of the second outer shell 102 has an annular sealing groove 102e with matching dimensions to the second protrusion structure 105b, allowing the second protrusion structure 105b to fill the annular sealing groove 102e. The second seal 105 and its second protrusion structure 105b prevent the atomized mist from flowing from the mist-exit side of the atomizing plate 103 to the outside of the second outer shell 102, thus preventing short circuits caused by the mist flowing into the fourth chamber 102c through gaps.
[0051] Preferably, such as Figures 1 to 5As shown, the first outer shell 101 is approximately L-shaped. The second chamber 101c is located on one side of the first chamber 101b, and the two are perpendicular to each other. A first slot 101g and a second slot 101h are formed by injection molding on the inner wall of the first outer shell 101 corresponding to the second chamber 101c. A first interface 101i and a second interface 101j are respectively provided on the first outer shell 101 at positions corresponding to the first slot 101g and the second slot 101h. Both the first interface 101i and the second interface 101j are conductive interfaces. The conductive components are divided into a first conductive component 106 and a second conductive component 107, which correspond to the positive and negative electrodes of the atomizing sheet 103, respectively. The first conductive element 106 and the second conductive element 107 are both columnar parts made of conductive material, and are respectively inserted into the first slot 101g and the second slot 101h. The first conductive element 106 and the second conductive element 107 are electrically connected to the positive and negative poles of the atomizing plate 103 through wires, thereby ensuring that the external power supply electrically connected to the first interface 101i and the second interface 101j can supply power to the atomizing plate 103.
[0052] Optionally, such as Figure 7 and Figure 8 As shown, the first sealing member 104 has a first clearance groove 104d, and the second sealing member 105 has a second clearance groove 105e. The first clearance groove 104d and the second clearance groove 105e are respectively used to avoid the solder joints between the wire and the positive and negative poles of the atomizing plate 103.
[0053] Preferably, such as Figures 3 to 8 As shown, the side of the second sealing member 105 is provided with a limiting part 105c of the same material. After the atomizing structure 1 is installed, the limiting surface 105d of the limiting part 105c can abut against the circumferential side surface of the first sealing member 104. The limiting part 105c can not only prevent the atomizing plate 103 from being misaligned due to vibration during operation, but also reduce the installation gap between the first housing 101 and the second housing 102, further improving the sealing effect of the second sealing member 105.
[0054] Example 2
[0055] like Figure 9 As shown, Embodiment 2 of this utility model provides an atomizing device 2, which includes a device body and the atomizing structure 1 provided in Embodiment 1 of this utility model.
[0056] Specifically, the atomizing device 2 has a liquid supply port 201, a mist outlet 202, a connector slot 203, and an electrode interface 204 on its main body. The two opposite sides of the connector slot 203 are connected to the liquid supply port 201 and the mist outlet 202, respectively. The electrode interface 204 is located on one side of the connector slot 203. The atomizing structure 1 can be detachably connected to the main body via the connector slot 203. When the atomizing structure 1 is inserted into the connector slot 203 along the first direction A, the first interface 101i and the second interface 101j of the atomizing structure 1 are simultaneously electrically connected to the electrode interface 204. The first slot 101a of the atomizing structure 1 is connected to the liquid supply port 201, and the second slot 102a of the atomizing structure 1 is connected to the mist outlet 202. At this time, turning on the power to the main body activates the atomizing structure 1, putting it into operation. When the user needs to replace the atomizing structure 1, they only need to remove it along the second direction B.
[0057] As can be seen from the above description, the embodiments of this utility model achieve the following technical effects:
[0058] Compared with the prior art, the atomizing structure 1 proposed in the embodiment of this utility model adopts a standardized design for its shell. The standardized shell can be fitted with atomizing plates 103 with different mesh densities to meet the atomization requirements of different types of liquid medicines. The atomizing plates 103 inside the atomizing structure 1 are electrically connected to the first conductive element 106 and the second conductive element 107 respectively via wires. The first conductive element 106 and the second conductive element 107 are electrically connected to the atomizing device 2 respectively via the first interface 101i and the second interface 101j to cooperate with the atomizing device 2. The first conductive element 106 and the second conductive element 107 can also be electrically connected to an external power source for independent use via the first interface 101i and the second interface 101j, thereby meeting the needs of users in different usage scenarios. Users can choose to purchase atomizing structures 1 with different mesh density specifications according to their needs for atomizing the medicine. When atomization is required or the atomizing plate 103 needs to be replaced, only the corresponding atomizing structure 1 needs to be replaced. Furthermore, the atomizing structure 1 disclosed in this utility model can be powered on simply by plugging it in with the atomizing device 2, which can reduce the user's procurement costs and greatly reduce the difficulty of replacing the atomizing plate 103.
[0059] The above description is merely a preferred embodiment of this utility model and is not intended to limit the scope of this utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of this utility model should be included within the protection scope of this utility model.
Claims
1. An atomizing structure, characterized by, The atomization structure comprises: a shell having a first accommodating space and a second accommodating space inside, opposite sides of the first accommodating space being respectively provided with a first slot hole and a second slot hole, the first slot hole and the second slot hole being respectively communicated with the outside of the shell, one side of the second accommodating space being provided with a conductive interface communicated with the outside of the shell; an atomization piece built in the first accommodating space, a working area of the atomization piece at least partially covering the first slot hole and the second slot hole; and a conductive piece built in the second accommodating space and electrically connected with the atomization piece, the conductive piece at least partially covering the conductive interface, so that the atomization piece is in a working state when the conductive interface is powered.
2. The atomization structure according to claim 1, wherein the shell comprises a first shell and a second shell; an inner wall of the first shell is provided with a first partition wall, so that the inside of the first shell is partitioned to form a first chamber and a second chamber, the first partition wall being provided with a through slot communicated with the first chamber and the second chamber; an inner wall of the second shell is provided with a second partition wall, so that the inside of the second shell is partitioned to form a third chamber and a fourth chamber; the first shell and the second shell are buckled, the first chamber and the third chamber being combined to form the first accommodating space, and the second chamber and the fourth chamber being combined to form the second accommodating space.
3. The atomization structure according to claim 2, wherein the first slot hole is provided in the first shell and is close to a liquid inlet side of the atomization piece; the second slot hole is provided in the second shell and is close to a mist outlet side of the atomization piece; the conductive interface is provided in the first shell.
4. The atomizing structure of claim 3, wherein Further comprising: a first sealing piece built in the first chamber, one side of the first sealing piece close to the third chamber being provided with a mounting slot, a slot type size of the mounting slot being matched with an outer shape size of the atomization piece, the atomization piece being built in the mounting slot, the first sealing piece being provided with a first channel, two ends of the first channel being respectively communicated with the mounting slot and the first slot hole, and the liquid inlet side at least partially covering the first channel.
5. The atomizing structure of claim 4, wherein Further comprising: a second sealing piece built in the third chamber, the second sealing piece being provided with a second channel, two ends of the second channel being respectively communicated with the second slot hole and the mist outlet side.
6. The atomization structure according to claim 5, wherein a limiting part is provided on a side of the second sealing piece, the limiting part extending to the first chamber, and a limiting surface of the limiting part abutting against a side of the first sealing piece.
7. The atomization structure according to claim 5, wherein a first protruding structure is provided on a side of the first sealing piece away from the second chamber, an outer shape size of the first protruding structure being matched with a hole type size of the first slot hole, the first protruding structure being provided through and filled in the first slot hole and protruding towards an outside of the first shell, and the first channel being provided in the first protruding structure. The second sealing member has a second protruding structure on the side away from the atomizing sheet, the second protruding structure is annularly arranged in the second channel, the inner side of the second shell is provided with a sealing groove corresponding to the position of the second protruding structure, the groove size of the sealing groove is matched with the outer size of the second protruding structure, and the second protruding structure is filled in the sealing groove.
8. The atomizing structure according to claim 2, characterized in that, The first connecting part is arranged in the first chamber, the second connecting part is arranged in the third chamber corresponding to the position of the first connecting part, and the first shell and the second shell are buckled through the first connecting part and the second connecting part.
9. The atomizing structure according to claim 2, characterized in that, The conductive member includes a first conductive member and a second conductive member, the conductive interface includes a first interface and a second interface, and the second chamber is provided with a first insertion slot and a second insertion slot; Both ends of the first interface are respectively in communication with the first insertion slot and the outside of the first shell, the first conductive member is inserted into the first insertion slot and at least partially covers the first interface; Both ends of the second interface are respectively in communication with the second insertion slot and the outside of the first shell, the second conductive member is inserted into the second insertion slot and at least partially covers the second interface.
10. An atomising device characterised in that, Comprise: a device body, a liquid supply port, a mist outlet, an insertion slot and an electrode interface are arranged on the device body, the opposite sides of the insertion slot are respectively in communication with the liquid supply port and the mist outlet, and the electrode interface is located on one side of the insertion slot; and The atomizing structure according to any one of claims 1-9; wherein the atomizing structure is detachably inserted into the insertion slot, when the atomizing structure is inserted into the insertion slot, the power connection interface of the atomizing structure is electrically connected with the electrode interface, the first slot hole of the atomizing structure is in communication with the liquid supply port, and the second slot hole of the atomizing structure is in communication with the mist outlet.