Atomization device

By integrating multiple atomizers into the main body of the device, the atomizer can be quickly switched and multiple flavors can be enjoyed. This solves the problems of insufficient atomization matrix storage and inconvenient operation, thus improving the user experience.

CN224219479UActive Publication Date: 2026-05-12SHENZHEN GEEKVAPE TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHENZHEN GEEKVAPE TECH CO LTD
Filing Date
2025-04-28
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

Existing atomizing equipment has a limited storage capacity of atomizing matrix, is inconvenient to operate, and cannot meet users' needs for different flavors anytime and anywhere. Furthermore, spare atomizers are inconvenient to carry.

Method used

An atomizing device was designed, which adopts an integrated design of multiple atomizers and the main body of the device. The atomizer and mouthpiece components can be quickly switched by rotating the atomizing components, simplifying the operation and supporting the storage and replacement of multiple atomizers.

Benefits of technology

It enables quick switching of atomizers and multiple flavor experiences, eliminating the need to carry spare atomizers or atomizing media, thus improving the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of atomization equipment, and provides atomization equipment which comprises an equipment body, the front end of the equipment body is provided with an assembly hole extending in the first direction, the equipment body is provided with a mounting groove, and the mounting groove and the assembly hole are correspondingly arranged and communicate with each other; at least part of the suction nozzle assembly is arranged in the assembly hole in a sliding and penetrating mode; the atomization assembly is rotatably arranged in the mounting groove, the atomization assembly is provided with a plurality of atomizers, and any atomizer can be aligned to the assembly hole and communicate with the suction nozzle assembly. According to the technical scheme, the integrated design of the standby atomizer and the equipment body is adopted, different atomizers can be in butt joint with the suction nozzle assembly by rotating the atomization assembly, operation is easy and convenient, rapid switching can be achieved, a user can experience aerosol mixed gas of different tastes anytime and anywhere, and the user experience is improved. Or after the atomization substrate is used up, a new atomizer is replaced in time, a standby atomizer or atomization substrate does not need to be additionally carried, and the use experience is better.
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Description

Technical Field

[0001] This application relates to the field of atomization equipment technology, specifically to an atomization device. Background Technology

[0002] Currently, common electronic atomizing devices typically only have one atomizer. When the atomizing medium stored in the atomizer is depleted, a new atomizer or replenished atomizing medium is required. Alternatively, if users want to experience different flavors (e.g., aerosol mixtures with different nicotine, cooling, or sweetener contents), they also need to replace the atomizer with a different atomizing medium for continued use. However, atomizing devices with this structure have a limited storage capacity for a single atomizer, requiring frequent replacements, making operation inconvenient. Furthermore, spare atomizers or atomizing liquids need to be stored separately, which is cumbersome to carry. This makes it difficult to meet users' needs for different flavored atomizing media anytime, anywhere, resulting in insufficient flexibility and a negative impact on the user experience. Utility Model Content

[0003] To address the problems of limited atomizing matrix storage, inconvenient replacement operations, and the inconvenience of carrying spare atomizers in existing atomizing devices, which make it difficult to meet user needs anytime and anywhere, this application provides an atomizing device.

[0004] One embodiment of this application provides an atomizing device, comprising: a device body, wherein in a first direction, the front end of the device body has an assembly hole extending along the first direction, the device body has a mounting groove, and the mounting groove and the assembly hole are correspondingly disposed and connected in the first direction; a nozzle assembly, at least a portion of the nozzle assembly is disposed in the assembly hole, and the nozzle assembly is configured to slide along the first direction; and an atomizing assembly, the atomizing assembly is rotatably disposed in the mounting groove, and the rotation axis is disposed along the first direction, the atomizing assembly has a plurality of atomizers, any one of the atomizers can be aligned with the assembly hole and communicate with the nozzle assembly, and the atomizer is configured to heat the stored atomizing matrix to generate an aerosol in an energized state.

[0005] In a further embodiment of this application, the nozzle assembly includes: a nozzle body, which is inserted into the mounting hole, and in the initial state, both ends of the nozzle body extend out from the two ends of the mounting hole, and one end of the nozzle body facing the atomizing assembly is connected to the air outlet of a corresponding atomizer; a first driving mechanism, one end of which is connected to the device body and the other end of which is connected to the nozzle body, and the first driving mechanism is configured to drive the nozzle body to slide along a first direction.

[0006] In a further embodiment of this application, the first driving mechanism includes: a first fixing member connected to the device body near the mounting hole, the first fixing member having a first sliding hole at a position facing the front end of the device body in a first direction, and the first sliding hole having at least one first limiting groove on the side perpendicular to the first direction; a first elastic member disposed in the first limiting groove along the first direction, and the end of the first elastic member facing the front end of the device body abutting against the side wall of the first limiting groove; and a first sliding member, a portion of the structure of the first sliding member extending into the first sliding hole and slidingly engaging with the first sliding hole, the end of the first sliding member located in the first sliding hole being connected to the end of the first elastic member away from the front end of the device body, and the end of the first sliding member located outside the first sliding hole being connected to the suction nozzle body, the first sliding member being able to drive the suction nozzle body to slide forward along the first direction of the device body under the action of external force.

[0007] In a further embodiment of this application, the first sliding member includes a first sliding portion and a first connecting portion connected to each other; one end of the first sliding portion in a first direction extends into a first sliding hole, and the end of the first sliding portion extending into the first sliding hole has a first limiting protrusion, the first limiting protrusion extends in a direction perpendicular to the first direction to a corresponding first limiting groove, and abuts against the end of the first elastic member away from the front end of the device body; one end of the first connecting portion is connected to the end of the first sliding portion located outside the first sliding hole, and the other end of the first connecting portion extends in a second direction and is connected to the side wall of the suction nozzle body.

[0008] In a further embodiment of this application, the first driving mechanism further includes a first electric driving member, which is connected to the first fixing member or the main body of the device, and the output end of the first electric driving member is connected to the first sliding member for driving the first sliding member to slide along a first direction; and / or, the first fixing member has a first locking structure, which is correspondingly provided with the first sliding member for locking the first sliding member.

[0009] In a further embodiment of this application, the atomizing component includes: a rotating frame, which is arranged along a first direction and rotatably connected to the device body. The end of the rotating frame facing the front end of the device body has multiple assembly chambers, which are spaced apart circumferentially along the rotating frame. The radial distance from any assembly chamber to the rotation axis of the rotating frame is equal to the distance from the assembly hole to the rotation axis of the rotating frame. The number of atomizers is multiple, and the multiple atomizers are detachably assembled in their respective assembly chambers.

[0010] In a further embodiment of this application, the rotating frame has a turntable structure, at least a portion of the outer edge of the turntable structure in the circumferential direction is located outside the mounting groove; the atomizing assembly also includes a turntable positioning mechanism, which is connected to the side wall of the device body near the turntable structure, at least a portion of the turntable positioning mechanism is telescopic and can abut against the turntable structure in the extended state so that the turntable structure remains in the current state.

[0011] In a further embodiment of this application, the turntable positioning mechanism includes: a second fixing member, which is connected to one side of the device body and corresponds to the portion of the turntable structure extending out of the mounting groove. The second fixing member has a second sliding hole at one end facing the turntable structure, and at least one second limiting groove is provided on the side of the second sliding hole; a second elastic member, which is disposed in the second limiting groove along a first direction, and the end of the second elastic member away from the turntable structure abuts against the side wall of the second limiting groove; and a second sliding member, which passes through the second sliding hole and slides with the second sliding hole. The second sliding member has a second limiting protrusion on its outer side wall, which extends into the second limiting groove and abuts against the end of the second elastic member facing the turntable structure. The second sliding member has a third limiting protrusion on its side wall away from the turntable structure, which is opposite to the end face of the second sliding hole. The second sliding member has a first mating structure near the turntable structure, and the turntable structure has a second mating structure near its circumferential outer side wall. The second mating structure can form a snap-fit ​​with the first mating structure to keep the turntable structure in its current state.

[0012] In a further embodiment of this application, in the first mating structure and the second mating structure, one is a slot structure and the other is a protrusion structure, or one is a pin structure and the other is a pin hole structure; and / or, the turntable positioning mechanism further includes a second electric drive component, which is connected to the second fixing component or the main body of the device, and the output end of the electric drive component is connected to the second sliding component to drive the second sliding component to slide along the first direction; and / or, the second fixing component has a second locking structure, which is correspondingly arranged with the second sliding component to lock the second sliding component.

[0013] In a further embodiment of this application, the main body of the device includes: a main housing, the main housing having a mounting groove on one side in a second direction, and in a first direction, a mounting hole is provided on the portion of the main housing located in front of the mounting groove, and a power supply compartment is provided on the portion of the main housing located in rear of the mounting groove; a power supply component, the power supply component being disposed in the power supply compartment, and the power supply component being used for electrical connection with the atomizer communicating with the mouthpiece assembly.

[0014] The beneficial effects of the above-mentioned technical solution of this application are as follows:

[0015] The atomizing device in this application, through structural improvements and optimizations, adopts an integrated design of the spare atomizer and the main body of the device. Multiple atomizers that can store atomizing substrate are set in the atomizing component, and different atomizers can be connected to the mouthpiece component by rotating the atomizing component. The operation is simple and can be quickly switched. Users can experience different flavors of aerosol mixtures anytime, anywhere, or replace the atomizer with a new one when the atomizing substrate is exhausted, without having to carry spare atomizers or atomizing substrate, resulting in a better user experience. Attached Figure Description

[0016] Figure 1 This is a perspective view of an atomizing device in one embodiment of this application;

[0017] Figure 2 This is a bottom view of an atomizing device in one embodiment of this application;

[0018] Figure 3 This is a cross-sectional view of a partial structure of an atomizing device in one embodiment of this application (the cutting plane is set along a first direction);

[0019] Figure 4 for Figure 3 An enlarged view of part A of the atomizing device in the image;

[0020] Figure 5 This is a schematic diagram of the front end (initial state) of an atomizing device in one embodiment of this application;

[0021] Figure 6 This is a schematic diagram of the front end of an atomizing device in one embodiment of this application (the atomizer is rotated to a detachable position);

[0022] Figure 7 This is a side view of an atomizing device in one embodiment of this application (the turntable positioning mechanism is engaged with the turntable structure);

[0023] Figure 8 This is a side view of an atomizing device in one embodiment of this application (the turntable positioning mechanism is engaged with the turntable structure);

[0024] Figure 9 This is a cross-sectional view of a turntable positioning mechanism in one embodiment of this application;

[0025] Figure 10 This is a schematic diagram showing the cooperation state between the turntable positioning mechanism and the turntable structure in one embodiment of this application;

[0026] Figure 11 This is a schematic diagram showing the cooperation state between the turntable positioning mechanism and the turntable structure in another embodiment of this application;

[0027] Figure 12This is a schematic diagram of the working state of the turntable positioning mechanism and the turntable structure in another embodiment of this application.

[0028] In the above figures, arrow F1 indicates the first direction, arrow F2 indicates the second direction, and arrow F3 indicates the third direction.

[0029] Figure 5 and Figure 6 The dashed circle in the image represents the rotation trajectory of the atomizer's center point;

[0030] Figure 7 and Figure 8 The dashed rectangle in the figure represents the outline of the power supply component.

[0031] Explanation of reference numerals in the attached figures:

[0032] 100 Atomizing device; 1 Device body, 11 Main unit housing, 111 Assembly hole, 112 Mounting slot, 113 Power supply compartment, 12 Power supply assembly, 121 Battery, 122 Electronic control board, 2 Nozzle assembly, 21 Nozzle body, 211 Suction end, 212 Connection end, 22 First drive mechanism, 221 First fixing component, 2211 First sliding hole, 2212 First limiting groove, 222 First elastic component, 223 First sliding component, 2231 First sliding part, 223 2 First connecting part, 2233 First limiting protrusion, 3 Atomizing component, 31 Rotating frame, 311 Rotating shaft, 312 Assembly chamber, 313 Turntable structure, 3131 Second mating structure, 32 Atomizer, 33 Turntable positioning mechanism, 331 Second fixing member, 3311 Second sliding hole, 3312 Second limiting groove, 332 Second elastic member, 333 Second sliding member, 3331 Second limiting protrusion, 3332 Third limiting protrusion, 3333 First mating structure. Detailed Implementation

[0033] The present application will now be described in further detail with reference to the accompanying drawings and specific embodiments. Similar elements in different embodiments are referred to by related similar element reference numerals. In the following embodiments, many details are described to facilitate a better understanding of the present application. However, those skilled in the art will readily recognize that some features may be omitted in different situations, or may be replaced by other elements, materials, or methods. In some cases, certain operations related to the present application are not shown or described in the specification. This is to avoid obscuring the core parts of the present application with excessive description. For those skilled in the art, detailed description of these related operations is not necessary; they can fully understand the related operations based on the description in the specification and general technical knowledge in the art.

[0034] Furthermore, the features, operations, or characteristics described in the specification can be combined in any suitable manner to form various embodiments, and the operational steps involved in each embodiment can also be rearranged or adjusted in a manner that is obvious to those skilled in the art. Therefore, the specification and drawings are only for clearly describing a particular embodiment and do not imply that they represent the necessary components and / or order.

[0035] The serial numbers assigned to components in this document, such as "first" and "second," are used only to distinguish the described objects and have no sequential or technical meaning. The terms "connection" and "linkage" used in this application, unless otherwise specified, include both direct and indirect connections (linkages).

[0036] The atomizing device provided in this application adopts an integrated design of multiple atomizers and the main body of the device. Multiple detachable atomizers are set in the atomizing component. The atomizer stores the atomizing matrix and can heat the atomizing matrix to generate aerosol when powered on. During use, the atomizing component can be rotated to connect different atomizers with the mouthpiece component, thereby switching between different atomizers. The atomizers that are not connected can be used as backups.

[0037] The following describes some embodiments of the atomizing device provided in this application with reference to the accompanying drawings.

[0038] An embodiment of the first aspect of this application provides an atomizing device 100, such as... Figure 1 , Figure 2 ,and Figure 3 As shown, the atomizing device 100 includes a device body 1, a nozzle assembly 2, and an atomizing assembly 3. The device body 1 serves as a mounting base and has a front end and a rear end opposite each other in a first direction. The device body 1 has a mounting groove for mounting the atomizing assembly 3. The front end of the device body 1 has a mounting hole 111 extending along the first direction. The mounting groove and the mounting hole 111 are correspondingly arranged and communicate with each other. The nozzle assembly 2 is correspondingly arranged at the front end of the device body 1, and at least a portion of the nozzle assembly 2 passes through the mounting hole 111. The portion of the nozzle assembly 2 extending from the front end of the mounting hole 111 is a suction end 211 for user inhalation. The end of the nozzle assembly 2 away from the suction end 211 is a connecting end 212, and the nozzle assembly 2 can slide relative to the mounting hole 111 along the first direction, so that the connecting end 212 of the nozzle assembly 2 extends into the mounting groove or retracts into the mounting hole 111. Correspondingly, the atomizing component 3 is rotatably disposed in the mounting slot, the rotation axis of the atomizing component 3 extends along the first direction, and the atomizing component 3 includes a plurality of atomizers 32, each atomizer 32 storing an atomizing matrix and capable of heating the atomizing matrix in the power-on state to generate an aerosol; any atomizer 32 can rotate with the atomizing component 3 to align with the mounting hole 111 and connect to the mouthpiece component 2, realizing the switching between different atomizers 32.

[0039] In practical applications, different atomizers can store the same atomizing matrix. When the atomizing matrix of one atomizer is exhausted, the mouthpiece assembly can be slid forward to disconnect it from the current atomizer. Then, the atomizer assembly can be rotated to align another atomizer with the mounting hole, and the mouthpiece assembly can be slid backward to connect with the corresponding atomizer, thus changing the atomizer. Alternatively, different atomizers can store different flavored atomizing matrices (e.g., different nicotine, cooling, or sweetener contents). Users can then change atomizers to experience different flavored aerosol mixtures.

[0040] It is understandable that existing atomizers are limited by their structural design and can generally only be equipped with one atomizer. Replacing an atomizer requires a relatively complicated disassembly operation. Some products can be equipped with two atomizers at the same time, but they require two sets of airways and two electrical connectors, which are connected to the mouthpiece and the power supply component respectively, so that one or both can be turned on as needed. The structure is relatively complex and it is difficult to achieve quick switching between atomizers.

[0041] The atomizing device in this embodiment, through structural improvements and optimizations, adopts an integrated design of the spare atomizer and the main body of the device. Multiple atomizers capable of storing atomizing matrix are incorporated into the atomizing assembly, and different atomizers can be connected to the mouthpiece assembly by rotating the atomizing assembly. This simple operation allows for rapid switching, enabling users to experience different flavors of aerosol mixtures anytime, anywhere. Users can also easily replace the atomizer when its atomizing matrix is ​​depleted, eliminating the need to carry spare atomizers or atomizing matrix, resulting in a better user experience. Furthermore, the device requires no additional airways or electrical connections, making its structure relatively simple and easy to manufacture.

[0042] It should be noted that, in practical applications, the number of atomizers 32 is not limited to... Figures 1 to 3 The three shown can be set to other quantities according to actual usage needs; in addition, the main body 1 of the device is not limited to the structural form shown in the figure, and different structural forms can be adopted as needed, as long as it is convenient for users to use.

[0043] In further embodiments of this application, such as Figures 1 to 3As shown, in the atomizing device 100, the mouthpiece assembly 2 includes a mouthpiece body 21 and a first drive mechanism 22. The mouthpiece body 21 can adopt a tube structure as shown in the figure, with specific dimensions adapted to the mounting hole 111. The mouthpiece body 21 passes through the mounting hole 111 and forms a sliding fit with the mounting hole 111. In the initial state, both ends of the mouthpiece body 21 extend from both ends of the mounting hole 111, that is, the suction end 211 of the mouthpiece body 21 is located outside the mounting hole 111 to facilitate suction. The connecting end 212 of the mouthpiece body 21 extends rearward from the mounting hole 111 into the mounting groove and connects to the air outlet of one of the atomizers 32 of the atomizing assembly 3, so that the aerosol mixture generated in the atomizer 32 can flow to the suction section of the mouthpiece body 21. One end of the first drive mechanism 22 is connected to the main body 1 of the device, and the other end of the first drive mechanism 22 is connected to the mouthpiece body 21. The first drive mechanism 22 can drive the mouthpiece body 21 to slide along the first direction, so that the connecting end 212 of the mouthpiece body 21 can be retracted into the assembly hole 111 or extended into the mounting groove to cooperate with the rotation operation of the atomizing component 3 and realize the replacement operation of the atomizer 32.

[0044] The first drive mechanism 22 can be a manual operation mechanism, in which the user can manually pull or push the first drive mechanism 22 to drive the nozzle body 21 to slide along the first direction. Of course, the first drive mechanism 22 can also be an automatic operation mechanism, in which the first drive mechanism 22 can output power on its own to drive the nozzle body 21 to slide along the first direction.

[0045] Furthermore, in a specific implementation, such as Figure 1 , Figure 3 , Figure 4In the example, the first drive mechanism 22 includes a first fixing member 221, a first elastic member 222, and a first sliding member 223. The first fixing member 221 is fixedly connected to the device body 1 and is close to the mounting hole 111. The first fixing member 221 has a first sliding hole 2211 at a position facing the front end of the device body 1 in a first direction, and the first slider extends along the first direction. A portion of the structure of the first sliding member 223 extends into the first sliding hole 2211 to form a sliding fit with the first sliding hole 2211, so as to guide and limit the first sliding member 223 through the first sliding hole 2211. One end of the first sliding member 223 located outside the first sliding hole 2211 is connected to the nozzle body 21 so as to drive the nozzle body 21 to slide together when sliding. In the lateral direction perpendicular to the first direction, a first limiting groove 2212 is provided on the side of the first sliding hole 2211. The first limiting groove 2212 extends along the first direction and is provided with a first elastic element 222. The end of the first elastic element 222 facing the front end of the device body 1 abuts against the side wall of the first limiting groove 2212, and the end of the first elastic element 222 away from the front end of the device body 1 is connected to the end of the first sliding element 223 located in the first sliding hole 2211. When the first sliding element 223 slides towards the front end of the device body 1, the first elastic element 222 is compressed and tends to return to its original shape. When the driving force of the first sliding element 223 is removed, the first sliding element 223 can slide along the first direction away from the front end of the device body 1 under the elastic force of the first elastic element 222, so as to drive the nozzle body 21 to move towards the atomizing component 3, thereby achieving automatic reset.

[0046] The first elastic element 222 includes, but is not limited to, a spring and an elastic block; the number of the first limiting grooves 2212 can be one or more, and the number of the first elastic elements 222 matches the number of the first limiting grooves 2212.

[0047] It should be noted that in practical applications, when a first limiting groove 2212 is provided, the first limiting groove 2212 can be located entirely on one side of the first sliding hole 2211, and the first elastic member 222 can be located entirely in the first limiting groove 2212; of course, the first limiting groove 2212 can also be arranged around the circumference of the first sliding hole 2211, in which case the first elastic member 222 can be sleeved on the circumferential outside of the first sliding member 223, for example, the spring can be sleeved entirely on the outside of the first sliding member 223.

[0048] Furthermore, such as Figure 3 and Figure 4In the example, the first sliding member 223 specifically includes a first sliding portion 2231 and a first connecting portion 2232. The first sliding portion 2231 is disposed along a first direction, with one end extending into the first sliding hole 2211, and the end of the first sliding portion 2231 extending into the first sliding hole 2211 has a first limiting protrusion 2233; the first limiting protrusion 2233 extends in a direction perpendicular to the first direction and extends into the corresponding first limiting groove 2212 to abut against one end of the first elastic member 222 in the first limiting groove 2212. When the first sliding portion 2231 extends outward from the first sliding hole 2211, the first limiting protrusion 2233 compresses the first elastic member 222. Correspondingly, the first connecting part 2232 is arranged along the second direction. One end of the first connecting part 2232 is connected to the end of the first sliding part 2231 located outside the first sliding hole 2211, and the other end of the first connecting part 2232 is connected to the side wall of the nozzle body 21, so that when the first sliding part 2231 slides, the nozzle body 21 is driven to move synchronously through the first connecting part 2232.

[0049] Among them, such as Figure 3 In the example, the second direction is perpendicular to the first direction. By setting the first connecting part 2232 to extend along the second direction, the size of the first connecting part 2232 can be shortened, which is beneficial to simplify the structure and reduce space occupation. Of course, the first connecting part 2232 can also be set to extend along other directions as needed, as long as it can meet the connection of the nozzle body 21 and not interfere with the suction end 211 of the nozzle body 21. For example, the first connecting part 2232 can be set to be inclined to the first direction.

[0050] In a further embodiment of this application, the first driving mechanism 22 may also include a first electric driving component. The first electric driving component may be connected to the first fixing member 221 or to the device body 1. The output end of the first electric driving component is connected to the first sliding member 223 to drive the first sliding member 223 to slide along a first direction, thereby driving the suction nozzle body 21 to achieve telescopic movement. Specifically, the first electric driving component may be an electric strut, an electric cylinder, a motor-driven lead screw slider mechanism, a linear motor, or other electric driving mechanism capable of linear motion. The first electric driving component is electrically connected to the power supply component 12 to supply power to the first electric driving component.

[0051] In a further embodiment of this application, a first locking structure may be provided on the first fixing member 221, so that when the first sliding member 223 slides towards the front end of the device body 1 to the target position, the first locking structure cooperates with the first sliding member 223 to lock the first sliding member 223 and the suction nozzle structure at the target position. Specifically, the first locking structure may be a pin hole and pin shaft, a snap-fit ​​and slot structure, a positioning screw hole and screw, or other structural forms that can lock the first sliding member 223.

[0052] In further embodiments of this application, such as Figure 1 and Figure 2 As shown, the atomizing assembly 3 includes a rotating frame 31 and multiple atomizers 32. The rotating frame 31 is located in the mounting slot of the device body 1 and is rotatably connected to the device body 1. Its rotation axis extends along a first direction, allowing the rotating frame 31 to rotate in a plane perpendicular to the first direction. The rotating frame 31 has multiple assembly chambers 312 at its end facing the front end of the device body 1, each assembly chamber 312 having a removably mounted atomizer 32. The multiple assembly chambers 312 are spaced circumferentially along the rotating frame 31, and the radial distance from any assembly chamber 312 to the rotation axis of the rotating frame 31 is equal to the distance from the mounting hole 111 to the rotation axis of the rotating frame 31. That is, in a plane perpendicular to the first direction, the multiple assembly chambers 312 are located on a circular trajectory centered on the rotation axis. When the rotating frame 31 rotates, any assembly chamber 312 can align and engage with the mounting hole 111, allowing the atomizer 32 in the assembly chamber 312 to connect with the mouthpiece body 21.

[0053] Among them, such as Figure 1 and Figure 2 In the example shown, a rotating shaft 311 can be positioned at the central axis of the rotating frame 31 to form a rotatable connection with the front and rear sidewalls of the mounting groove; the rotating shaft 311 can be adopted as follows: Figure 1 The diagram shows a single full-axis configuration; however, it can also be implemented using two short axes, one at the front and one at the back.

[0054] Furthermore, in a specific example, such as Figure 5 and Figure 6 In the example shown, a portion of the circular rotation trajectory of multiple atomizers 32 is located outside the mounting slot. That is, during the rotation of the rotating frame 31, any atomizer 32 is partially obscured by the device body 1 when it is on a portion of the circular rotation trajectory. Figure 5 The state shown in the figure, while in another part of the area it is not obscured by the device body 1, such as Figure 6 As shown in the diagram, the front end of the atomizer 32 is exposed to facilitate the disassembly and assembly of the atomizer 32, so that a new atomizer 32 can be replaced after the atomizing medium is used up, or an atomizer 32 with a different flavored atomizing medium can be replaced.

[0055] Furthermore, in one specific embodiment, such as Figure 1 , Figure 7 and Figure 8As shown, the rotating frame 31 has a turntable structure 313, which is perpendicular to the rotation axis. At least a portion of the outer edge of the turntable structure 313 in the circumferential direction is located outside the mounting groove, that is, a portion of the outer edge of the turntable structure 313 extends outside the mounting groove. Correspondingly, the atomizing assembly 3 also includes a turntable positioning mechanism 33, which is fixedly connected to the side wall of the device body 1 and located near the turntable structure 313. At least a portion of the structure of the turntable positioning mechanism 33 is telescopic, so that it abuts against the turntable structure 313 in the extended state, keeping the turntable structure 313 in its current state and positioning the turntable structure 313 so that the corresponding atomizer 32 can be stably connected to the mouthpiece body 21, preventing the turntable structure 313 from accidentally rotating and colliding or interfering with the mouthpiece body 21.

[0056] Furthermore, such as Figures 7 to 9 For example, the turntable positioning mechanism 33 specifically includes a second fixing member 331, a second elastic member 332, and a second sliding member 333. The second fixing member 331 is connected to one side of the main body 1 of the equipment, and the second fixing member 331 corresponds to the part of the turntable structure 313 that extends out of the mounting groove; the second fixing member 331 has a second sliding hole 3311 at one end facing the turntable structure 313, and the second sliding member 333 passes through the second sliding hole 3311 and slides with the second sliding hole 3311 to form a cooperation; there is a second limiting groove 3312 on the side inside the second sliding hole 3311, and a second elastic member 332 is provided in the second limiting groove 3312. The end of the second elastic member 332 away from the turntable structure 313 abuts against the side wall of the second limiting groove 3312. The second sliding member 333 has a second limiting protrusion 3331 on the outer side wall of the part of the second sliding member 333 located inside the second sliding hole 3311. The second limiting protrusion 3331 extends into the corresponding second limiting groove 3312 and abuts against the end of the second elastic member 332 facing the turntable structure 313. When the second sliding member 333 slides away from the turntable structure 313, the second limiting protrusion 3331 compresses the second elastic member 332, causing the second elastic member 332 to tend to return to its original state. When the driving force of the second sliding member 333 is removed, the second sliding member 333 can slide towards the turntable structure 313 under the elastic force of the second elastic member 332, thus achieving automatic reset.

[0057] The second sliding member 333 has one end away from the turntable structure 313 located outside the second sliding hole 3311, and has a third limiting protrusion 3332. The third limiting protrusion 3332 faces the end face of the second sliding hole 3311 away from the turntable structure 313 and can abut against the end face of the second sliding hole 3311 to limit the movement of the second sliding member 333. The second sliding member 333 has a first mating structure 3333 near the turntable structure 313. Correspondingly, the turntable structure 313 has a second mating structure 3131 near the circumferential outer wall. The second mating structure 3131 can engage with the first mating structure 3333 to keep the turntable structure 313 in its current state, thus achieving positioning of the turntable structure 313. Preferably, as... Figure 8 and Figure 9 In the example shown, the turntable positioning mechanism 33 is located on the third-direction side of the device body 1, near the rear end of the rotating frame 31, and is arranged along the first direction. The second direction is perpendicular to the first direction, and the third direction is perpendicular to both the second and third directions. This arrangement allows for adaptation to the turntable structure 313, facilitating its fixing, and also keeps the turntable positioning mechanism 33 away from the front end of the rotating frame 31, preventing interference with the operation of the nozzle body 21 during operation. Especially during manual operation, the nozzle body 21 and the turntable positioning mechanism 33 are located at the front and rear ends of the device body 1, respectively, facilitating two-handed operation.

[0058] Furthermore, such as Figure 10 and Figure 11 In the example, in the first assembly structure and the second assembly structure, one is a slot structure and the other is a protrusion structure, so that the slot structure and the protrusion structure form a snap-fit ​​engagement through the sliding of the first sliding member 223, so that the turntable structure 313 remains in a fixed state. The number of slot structures and protrusion structures can be one or more, for example... Figure 10 In the example, the circumferential outer wall of the turntable structure 313 has multiple continuously arranged slot structures, and the side wall of the first sliding member 223 near the end of the turntable structure 313 has multiple protruding structures. Alternatively, multiple protruding structures can be continuously arranged on the circumferential outer wall of the turntable structure 313, while multiple slot structures can be arranged on the side wall of the second sliding member 333 near the end of the turntable structure 313. Alternatively, both the first mating structure 3333 and the second mating structure 3131 can be configured to include protruding structures and slot structures, which are staggered so that the corresponding protruding structures and slot structures engage with each other. Of course, only one slot structure and one protruding structure can be provided, for example... Figure 11In the example, the first slider 223 has a locking protrusion on the side wall near the turntable structure 313, and the turntable structure 313 has a locking groove on the circumferential outer side wall. Alternatively, the two can be interchanged to achieve a locking fit.

[0059] Furthermore, such as Figure 12 In the example, the second sliding member 333 has a pin structure on the side wall near the turntable structure 313, and the turntable structure 313 has a pin hole structure near the circumferential outer side wall. The pin structure can slide under the drive of the second sliding member 333 to extend into the small hole structure to form a snap-fit; or, the positions of the pin structure and the pin hole structure can be interchanged, which will not be elaborated here.

[0060] It should be noted that, in practical applications, the installation position of the turntable positioning mechanism 33 is not limited to the position shown in the image. Figure 1 and Figure 8 The device body 1 shown is located on one side in the third direction, or it can be located on one side in the second direction; the specific position of the turntable positioning mechanism 33 is not limited to the position corresponding to the rear end of the rotating frame 31, but can also be located at the position corresponding to the front end of the rotating frame 31.

[0061] In a further embodiment of this application, a second electric drive component may be provided in the turntable positioning mechanism 33. The second electric drive component may be connected to the second fixing component 331 or to the device body 1. The output end of the second electric drive component is connected to the second sliding component 333 to drive the second sliding component 333 to slide relative to the second sliding hole 3311, thereby causing the first mating structure 3333 and the second mating structure 3131 to form a snap-fit ​​or release the snap-fit. Specifically, the second electric drive component may be an electric strut, an electric cylinder, a motor-driven lead screw slider mechanism, a linear motor, or other electric drive mechanism capable of linear motion. The second electric drive component is electrically connected to the power supply component 12 to supply power to the second electric drive component.

[0062] In a further embodiment of this application, a second locking structure may be provided on the second fixing member 331. When the second sliding member 333 slides towards the rear end of the device body 1 to the target position, the second locking structure cooperates with the second sliding member 333 to keep the second sliding member 333 locked at the target position, and the first cooperating structure 3333 and the second cooperating structure 3131 are in a separated state. Specifically, the second locking structure may adopt a pin hole and pin shaft, a snap and slot structure, a positioning screw hole and screw, or other structural forms that can lock the second sliding member 333.

[0063] In further embodiments of this application, such as Figure 1 , Figure 7 and Figure 8As shown, the main body 1 of the device includes a main housing 11 and a power supply component 12. The main housing 11 has a mounting groove on one side in the second direction, and the atomizing component 3 is disposed in the mounting groove. In the first direction, the main housing 11 is divided into a front part, a rear part, and a connecting part by the mounting groove. The mounting hole 111 is disposed in the front part of the main housing 11 located in the mounting groove and extends through this part in the first direction to communicate with the mounting groove. The rear part of the main housing 11 located in the mounting groove has a power supply chamber 113. The power supply component 12 is disposed in the power supply chamber 113 and can be electrically connected to an atomizer 32 that is connected to the mouthpiece component 2. That is, any atomizer 32 in the state of being connected to the mouthpiece component 2 can be electrically connected to the power supply component 12 to supply power to the atomizer 32 through the power supply component 12.

[0064] The following describes a specific example of the atomizing device 100 of this application with reference to the accompanying drawings.

[0065] like Figures 1 to 12 As shown, the atomizing device 100 includes a device body 1, a mouthpiece assembly 2, an atomizing assembly 3, and a turntable positioning mechanism 33.

[0066] like Figure 1 , Figure 7 and Figure 8 As shown, taking the main body 1 of the device as a reference, its length direction is the first direction, its height direction is the second direction, and its thickness direction is the third direction. The main body shell 11 of the main body 1 has a mounting groove at its center in the first direction. The mounting groove faces downwards in the second direction and is connected to the mounting groove on both sides in the third direction. In the first direction, the front and rear portions of the main body shell 11 are connected to the mounting groove via a central connecting portion. The nozzle assembly 2 is located on the front portion of the main body shell 11, the atomizing assembly 3 is located in the mounting groove, and the turntable positioning mechanism 33 is located on the rear portion of the main body shell 11. The rear portion of the main body shell 11 contains a power supply chamber 113, and the power supply assembly 12 is located within the power supply chamber 113.

[0067] like Figure 1 and Figure 2As shown, the atomizing assembly 3 includes a rotating frame 31 and three atomizers 32. The rotating frame 31 is located in the mounting slot of the main body 1 and includes two turntable structures 313 spaced apart in a first direction, three assembly chambers 312 extending along the first direction, and a rotating shaft 311. The rotating shaft 311 is coaxially arranged with the two turntable structures 313, and both ends of the rotating shaft 311 are respectively connected and fixed to the two turntable structures 313, and are rotatably connected to the front and rear parts of the main housing 11 respectively. The three atomizing chambers are spaced apart from the rotating shaft 311 in the radial direction and are evenly arranged along the circumference of the rotating shaft 311. The radial distance between the three atomizing chambers and the rotating shaft 311 is equal, so that the three atomizing chambers are in the same circular trajectory. The atomizing chamber has an opening at the front end facing the main body 1, and each atomizing chamber contains an atomizer 32. The atomizer 32 contains a corresponding atomizing core, airflow structure, and stores an atomizing matrix. The atomizer 32 has a corresponding air inlet and outlet, with the outlet located at the front end of the atomizer 32 in the first direction. The rear end of the atomizer 32 has a corresponding conductive structure. The rotating frame 31 can drive the atomizer 32 to rotate around the rotating shaft 311.

[0068] like Figures 1 to 4As shown, the front portion of the main housing 11 has a through-hole 111 along a first direction, and the through-hole 111 is opposite to the vertex of the circular rotation trajectory of the atomizing chamber. The nozzle assembly 2 includes a nozzle body 21 and a first drive mechanism 22. The nozzle body 21 is a tubular structure, which passes through the through-hole 111 along the first direction and forms a sliding fit with the through-hole 111; the front end of the nozzle body 21 is the suction end 211, and the rear end is the connecting end 212. The first drive mechanism 22 includes a first fixing member 221, a first elastic member 222, and a first sliding member 223. The first fixing member 221 is fixedly connected to the top of the main housing 11 near the front end. The first fixing member 221 has a first sliding hole 2211 at the position facing the front end of the main body 1 in a first direction. The first sliding member 223 includes a first sliding part 2231 arranged in the first direction and a first connecting part 2232 arranged in the second direction. One end of the first sliding part 2231 extends into the first sliding hole 2211 to form a sliding fit with the first sliding hole 2211. One end of the first connecting part 2232 is connected to the first sliding part 2231, and the other end is connected to the nozzle body 21 at the front end of the assembly hole 111, so that the nozzle body 21 can slide together when the first sliding part 2231 slides. There is a certain distance between the second connecting part and the front end of the nozzle body 21 to reserve suction space. In the second direction, a first limiting groove 2212 is provided above and below the first sliding hole 2211. The first limiting groove 2212 extends along the first direction and is provided with a first elastic element 222. The first elastic element 222 is specifically elastic. The end of the first elastic element 222 facing the front end of the device body 1 abuts against the side wall of the first limiting groove 2212. The end of the first sliding part 2231 located in the first sliding hole 2211 has a first limiting protrusion 2233. The first limiting protrusion 2233 protrudes along the second direction and extends into the corresponding first limiting groove 2212, and abuts against the end of the corresponding first elastic element 222 away from the front end of the device body 1. When the first sliding member 223 slides toward the front end of the device body 1, the first elastic member 222 is compressed and tends to return to its original state. When the driving force of the first sliding member 223 is removed, the first sliding member 223 can slide away from the front end of the device body 1 along the first direction under the elastic force of the first elastic member 222, so as to drive the nozzle body 21 to move toward the atomizing component 3 and realize automatic reset.

[0069] like Figure 5 and Figure 6 In the example shown, a portion of the circular rotation path containing multiple atomizers 32 is located outside the mounting slot. Specifically, the bottom of the circular rotation path is located below the front portion of the main unit housing 11. During the rotation of the rotating frame 31, any atomizer 32 is partially obscured by the front portion of the main unit housing 11 when it is on a portion of the circular rotation path. Figure 5 The state shown in the figure, while in another part of the area, is not obscured by the front part of the main unit casing 11, such as Figure 6 As shown in the diagram, the front end of the atomizer 32 is exposed, allowing for the installation and removal of the atomizer 32.

[0070] like Figure 1 , Figure 7 and Figure 8 As shown, at least a portion of the outer edge of the turntable structure 313 located at the rear end of the rotating frame 31 is located outside the mounting groove in the third direction. The turntable positioning mechanism 33 is connected and fixed to the side wall of the rear portion of the main housing 11 and is positioned towards the turntable structure 313. Figures 8 to 10 In the example shown, the turntable positioning mechanism 33 specifically includes a second fixing member 331, a second elastic member 332, and a second sliding member 333. The second fixing member 331 is fixedly connected to the side wall of the rear part of the main housing 11, and the second fixing member 331 corresponds to the part of the turntable structure 313 that extends out of the mounting groove; the second fixing member 331 has a second sliding hole 3311 at one end facing the turntable structure 313 in the first direction, and the second sliding member 333 passes through the second sliding hole 3311 and slides with the second sliding hole 3311 to form a cooperation; in the second direction, a second limiting groove 3312 is provided above and below the second sliding hole 3311. A second elastic element 332, specifically a spring, is provided in the second limiting groove 3312 and is arranged along the first direction. The end of the second elastic element 332 away from the turntable structure 313 abuts against the side wall of the second limiting groove 3312. The second sliding element 333 has a second limiting protrusion 3331 on the outer side wall of the portion of the second sliding hole 3311. The second limiting protrusion 3331 extends into the corresponding second limiting groove 3312 and abuts against the end of the second elastic element 332 facing the turntable structure 313. When the second sliding element 333 slides away from the turntable structure 313 along the first direction, the second limiting protrusion 3331 compresses the second elastic element 332, causing the second elastic element 332 to tend to return to its original state. When the driving force of the second sliding element 333 is removed, the second sliding element 333 can slide towards the turntable structure 313 under the elastic force of the second elastic element 332, achieving automatic reset.

[0071] The second sliding member 333 has one end away from the turntable structure 313 located outside the second sliding hole 3311, and has a third limiting protrusion 3332. The third limiting protrusion 3332 faces the end face of the end of the second sliding hole 3311 away from the turntable structure 313 and can abut against the end face of the second sliding hole 3311 to limit the movement of the second sliding member 333. The second sliding member 333 has a first mating structure 3333 near the turntable structure 313, and correspondingly, the turntable structure 313 has a second mating structure 3131 near the circumferential outer wall. Figure 10 and Figure 11 In the example, in the first assembly structure and the second assembly structure, one is a slot structure and the other is a protrusion structure, so that the slot structure and the protrusion structure can be engaged by sliding the first sliding member 223, so that the turntable structure 313 can be kept in a fixed state.

[0072] like Figure 7 and Figure 8 As shown, the power supply assembly 12 includes a battery 121 and an electronic control board 122 that are electrically connected to each other. The battery 121 has corresponding battery electrodes, one end of which is located on the rear part of the main housing 11 facing the atomizing assembly 3, for connecting to the conductive structure of the corresponding atomizer 32, so that the power supply assembly 12 is electrically connected to the atomizer 32.

[0073] In the initial state, one assembly chamber 312 of the rotating frame 31 is located at the top and is connected to the assembly hole 111; the rear end of the nozzle structure extends out of the assembly hole 111 and is connected to the air outlet of the atomizer 32 in the corresponding assembly chamber 312; at the same time, the front end of the second sliding member 333 of the turntable positioning mechanism 33 extends out and engages with the second mating structure 3131 on the outer circumferential wall of the turntable structure 313 through the first mating structure 3333, so that the turntable structure 313 and the rotating frame 31 as a whole maintain the current state.

[0074] In use, the power supply component 12 supplies power to the atomizer 32 connected to the mouthpiece structure, so as to heat the atomizing matrix through the atomizing core inside the atomizer 32, so that the atomizing matrix is ​​atomized to generate an aerosol mixture. The user can perform a suction action through the mouthpiece structure, so that the aerosol mixture in the atomizer 32 flows to the suction end 211 of the mouthpiece structure under negative pressure.

[0075] When the atomizer 32 needs to be replaced, the first sliding member 223 can be slid to retract the mouthpiece structure into the mounting hole 111 to separate it from the atomizer 32. At the same time, the second sliding member 333 can be slid to disengage the first mating structure 3333 from the second mating structure 3131. At this time, the angle of the rotating frame 31 can be adjusted by rotating the rotating frame 31 so that the other atomizer 32 is aligned with the mounting hole 111. Then, the first sliding member 223 and the second sliding member 333 are released. The first sliding member 223 extends under the elastic force of the first elastic member 222 and connects with the adjusted atomizer 32. At the same time, the second sliding member 333 extends under the elastic force of the second elastic member 332 so that the first mating structure 3333 engages with the corresponding second mating structure 3131, so that the rotating frame 31 remains in its current state.

[0076] The atomizing device 100 in this embodiment adopts an integrated design of the spare atomizer 32 and the main body 1. Different atomizers 32 can be connected to the mouthpiece assembly 2 by rotating the atomizing component 3. The operation is simple and can be quickly switched. Users can experience different flavors of aerosol mixtures anytime and anywhere, or replace the atomizer 32 with a new one when the atomizing matrix of the atomizer 32 is exhausted. There is no need to carry spare atomizers 32 or atomizing matrix, resulting in a better user experience. Moreover, the device does not require an increase in the number of air channels and electrical connections, making the structure relatively simple and easy to manufacture.

[0077] The above examples illustrate this application only to aid understanding and are not intended to limit its scope. Those skilled in the art to which this application pertains can make various simple deductions, modifications, or substitutions based on the ideas presented.

Claims

1. An atomizing device, characterized in that, include: The equipment body has an assembly hole extending along the first direction at its front end in the first direction, and the equipment body has a mounting groove, which is correspondingly arranged and connected to the assembly hole in the first direction. A suction nozzle assembly, at least a portion of which passes through the mounting hole, and the suction nozzle assembly is configured to slide along the first direction; An atomizing assembly is rotatably disposed in the mounting slot, with the rotation axis arranged along a first direction. The atomizing assembly has multiple atomizers, any one of which can be aligned with the mounting hole and communicate with the mouthpiece assembly. The atomizer is configured to heat the stored atomizing matrix to generate an aerosol when energized.

2. The atomizing device according to claim 1, characterized in that, The suction nozzle assembly includes: The mouthpiece body is inserted into the mounting hole, and in the initial state, both ends of the mouthpiece body extend out from both ends of the mounting hole, and the end of the mouthpiece body facing the atomizing component is connected to the air outlet of a corresponding atomizer. A first driving mechanism, one end of which is connected to the main body of the device and the other end of which is connected to the nozzle body, is configured to drive the nozzle body to slide along a first direction.

3. The atomizing device according to claim 2, characterized in that, The first driving mechanism includes: A first fastener is connected to the main body of the device near the mounting hole. The first fastener has a first sliding hole at a position facing the front end of the main body of the device in a first direction, and the first sliding hole has at least one first limiting groove on the side perpendicular to the first direction. A first elastic element is disposed in the first limiting groove along a first direction, and one end of the first elastic element facing the front end of the main body of the device abuts against the side wall of the first limiting groove. The first sliding member has a portion of its structure extending into the first sliding hole and slidingly engaging with it. One end of the first sliding member located inside the first sliding hole is connected to the end of the first elastic member away from the front end of the device body. The other end of the first sliding member located outside the first sliding hole is connected to the suction nozzle body. The first sliding member can drive the suction nozzle body to slide forward along a first direction towards the front of the device body under the action of an external force.

4. The atomizing device according to claim 3, characterized in that, The first slider includes a first sliding part and a first connecting part that are connected to each other; One end of the first sliding part extends into the first sliding hole in the first direction, and the end of the first sliding part extending into the first sliding hole has a first limiting protrusion. The first limiting protrusion extends into the corresponding first limiting groove in a direction perpendicular to the first direction and abuts against the end of the first elastic member away from the front end of the device body. One end of the first connecting part is connected to the end of the first sliding part located outside the first sliding hole, and the other end of the first connecting part extends along the second direction and is connected to the side wall of the suction nozzle body.

5. The atomizing device according to claim 3, characterized in that, The first driving mechanism further includes a first electric driving component, which is connected to the first fixing component or the main body of the device, and the output end of the first electric driving component is connected to the first sliding component for driving the first sliding component to slide along a first direction; And / or, The first fixing member has a first locking structure, which is correspondingly arranged with the first sliding member and is used to lock the first sliding member.

6. The atomizing device according to any one of claims 1 to 5, characterized in that, The atomizing component includes: A rotating frame is provided along a first direction and is rotatably connected to the main body of the equipment. The end of the rotating frame facing the front end of the main body of the equipment has multiple assembly compartments. The multiple assembly compartments are spaced apart along the circumference of the rotating frame, and the radial distance from any assembly compartment to the rotation axis of the rotating frame is equal to the distance from the assembly hole to the rotation axis of the rotating frame. The number of atomizers is multiple, and each atomizer is detachably assembled into a corresponding assembly chamber.

7. The atomizing device according to claim 6, characterized in that, The rotating frame has a turntable structure, and at least a portion of the outer edge of the turntable structure in the circumferential direction is located outside the mounting groove; The atomizing component also includes a turntable positioning mechanism, which is connected to the side wall of the device body near the turntable structure. At least a portion of the turntable positioning mechanism is telescopic and can abut against the turntable structure in the extended state to keep the turntable structure in its current state.

8. The atomizing device according to claim 7, characterized in that, The turntable positioning mechanism includes: The second fixing member is connected to one side of the main body of the equipment and corresponds to the part of the turntable structure that extends out of the mounting groove. The second fixing member has a second sliding hole at one end facing the turntable structure, and at least one second limiting groove is provided on the side inside the second sliding hole. The second elastic element is disposed in the second limiting groove along the first direction, and the end of the second elastic element away from the turntable structure abuts against the side wall of the second limiting groove. The second sliding member passes through the second sliding hole and slides in cooperation with the second sliding hole. The outer side wall of the second sliding member has a second limiting protrusion that extends into the second limiting groove and abuts against the end of the second elastic member facing the turntable structure. The side wall of the end of the second sliding member away from the turntable structure has a third limiting protrusion that faces the end face of the second sliding hole. The second sliding member has a first mating structure near the turntable structure. The turntable structure has a second mating structure near the outer circumferential wall. The second mating structure can engage with the first mating structure to keep the turntable structure in its current state.

9. The atomizing device according to claim 8, characterized in that, In the first and second mating structures, one is a slot structure and the other is a protrusion structure; or, one is a pin structure and the other is a pin hole structure; and / or, The turntable positioning mechanism further includes a second electric drive component, which is connected to the second fixing component or the device body, and the output end of the electric drive component is connected to the second sliding component to drive the second sliding component to slide along a first direction; and / or, The second fixing member has a second locking structure, which is correspondingly arranged with the second sliding member and is used to lock the second sliding member.

10. The atomizing device according to any one of claims 1 to 5, characterized in that, The main body of the device includes: The main housing has the mounting groove on one side in the second direction, and the mounting hole is provided on the portion of the main housing located in front of the mounting groove in the first direction. The power supply compartment is provided on the portion of the main housing located behind the mounting groove. A power supply component is provided inside the power supply compartment and is used to electrically connect to the atomizer that is connected to the mouthpiece assembly.