Atomization device

By designing atomization device with adjustment components, users can adjust the on and off of the liquid core according to their needs, solving the problem that users cannot adjust the liquid core in the prior art, and achieving more flexible use and higher user experience.

CN222853208UActive Publication Date: 2025-05-13HG INNOVATION LTD
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Patent Information

Application Number
CN202421519023.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-28
Publication Date
2025-05-13
Estimated Expiration
2034-06-28

AI Technical Summary

Technical Problem

When using electronic atomization equipment, users cannot adjust the on-off of the liquid core according to their needs, resulting in the possible leakage of the aerosol matrix and affecting the user experience.

Method used

Atomization device is designed, including a housing, a movable atomization core and an adjustment assembly. The atomization core has an atomization cavity and a liquid inlet channel. The atomization core is driven to move through the toggle, changing the relative position of the liquid inlet channel and the liquid storage cavity, and achieving selective communication or partition between the atomization cavity and the liquid storage cavity.

Benefits of technology

Users can independently adjust the on-off of the liquid core according to their usage needs to avoid leakage of the aerosol matrix, which improves the user experience and the flexibility of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of aerosol atomization, and provides an atomization device which is used for solving the problem that the on-off of a liquid core cannot be adjusted in the using process. The atomization device comprises a shell, an atomization core and an adjusting assembly, a liquid storage cavity is formed in the shell, the atomization core is movably arranged in the shell, the atomization core is provided with an atomization cavity and a liquid inlet channel communicated with the atomization cavity, the atomization core can drive the liquid inlet channel to move, the adjusting assembly comprises a shifting part, the shifting part is connected with the atomization core, and the liquid inlet channel is communicated with the liquid storage cavity. A stirring groove is formed in the shell, at least part of the stirring piece is exposed out of the stirring groove, and the stirring piece can be stirred to drive the atomization core to move so as to change the relative position of the liquid inlet channel and the liquid storage cavity, so that the atomization cavity and the liquid storage cavity can be selectively communicated or separated. The stirring piece is arranged on the shell, so that a user can autonomously adjust the stirring piece according to use requirements to drive the atomization core to move, the atomization cavity and the liquid storage cavity are communicated or separated, operation is easy and convenient, and the user experience is improved.
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Description

Technical Field

[0001] The present application relates to the technical field of aerosol atomization, and in particular to an atomization device. Background Art

[0002] Electronic atomization equipment can heat the aerosol matrix to generate aerosol by atomization. In order to avoid leakage of liquid aerosol matrix, some electronic atomization equipment has the function of liquid core separation, but it is only limited to before the product is activated to avoid leakage during transportation and storage. Once the product is activated and used, the liquid core separation function becomes invalid, resulting in the user being unable to adjust the liquid core according to usage needs during use, which greatly affects the user experience. Utility Model Content

[0003] The present application provides an atomization device, aiming to solve the technical problem that the user cannot adjust the on / off state of the liquid core during use.

[0004] In some embodiments of the present application, an atomization device is provided, comprising:

[0005] A shell body, wherein a liquid storage cavity is provided in the shell body;

[0006] an atomizer core, movably disposed in the housing, the atomizer core having an atomizer cavity and a liquid inlet channel connected to the atomizer cavity, and the atomizer core can drive the liquid inlet channel to move; and

[0007] The adjusting component includes a toggle member, the toggle member is connected to the atomizing core, the shell is provided with a toggle groove, at least a portion of the toggle member is exposed from the toggle groove, and the toggle member can be toggled to drive the atomizing core to move, so as to change the relative position of the liquid inlet channel and the liquid storage chamber, so that the atomizing chamber and the liquid storage chamber are selectively connected or isolated.

[0008] In some embodiments, a suction nozzle is disposed on the top of the shell, and the toggle groove is disposed on the side or bottom of the shell.

[0009] In some embodiments, a connecting pipe connected to the suction nozzle is provided in the housing;

[0010] The atomizer core is connected to the connecting tube and moves along the axial direction of the connecting tube. The toggle groove is extended along the axial direction of the connecting tube so that the toggle member can be toggled along the axial direction of the connecting tube.

[0011] In some embodiments, the adjustment assembly further includes a push-pull member disposed within the housing;

[0012] One end of the push-pull member is connected to one end of the atomizer core away from the connecting tube, and the other end of the push-pull member is connected to the toggle member. The toggle member slides in the toggle groove along the axial direction of the connecting tube to drive the push-pull member to push or pull the atomizer core to move.

[0013] In some embodiments, the adjustment assembly further includes a connecting member disposed within the housing;

[0014] One end of the connecting piece is connected to the push-pull piece, and the other end of the connecting piece is provided with a connecting groove, and one end of the atomizing core away from the connecting pipe is inserted into the connecting groove.

[0015] In some embodiments, the housing further has a guide groove extending along the axial direction of the connecting pipe;

[0016] The push-pull member is slidably disposed in the guide groove, and the toggle member drives the push-pull member to move along the axial direction of the connecting pipe.

[0017] In some embodiments, the push-pull member is in the shape of a rod, and two ends of the push-pull member are respectively engaged with the toggle member and the connecting member.

[0018] In some embodiments, the atomizing device further comprises a bracket mounted in the housing;

[0019] The connecting member includes a limit head and a connecting column connected to each other, the connecting groove is arranged on the limit head, the atomizer core is connected to the limit head, the connecting column passes through the bracket and is connected to the push-pull member, the push-pull member drives the connecting column to move in the bracket, and the bracket is used to abut against the limit head to limit the connecting member.

[0020] In some embodiments, the atomizing device further comprises a sealing member;

[0021] The sealing member is disposed in the housing and connected to a side of the bracket close to the connecting pipe. The liquid storage cavity is defined between the housing and the sealing member. The atomizing core passes through the sealing member and is connected to the limiting head.

[0022] The atomizer core moves toward the connecting tube, and the sealing member is used to abut against the limiting head to limit the connecting member, and the liquid inlet channel is connected to the liquid storage chamber; the atomizer core moves toward the connecting tube, and the sealing member is used to block the liquid inlet channel.

[0023] In some embodiments, the atomizing device further comprises a reinforcing member;

[0024] The reinforcing member is arranged in the shell and is located at a side of the sealing member close to the connecting pipe, and the sealing member is connected to the reinforcing member.

[0025] In some embodiments, at least one of the bracket and the sealing member has a moving channel for allowing the connecting member to move;

[0026] The moving channel has at least one first plane, and the connecting member has at least one second plane. When the connecting member moves in the moving channel, the first plane abuts against the second plane, so that the connecting member moves along the axial direction of the connecting pipe.

[0027] In some embodiments, the housing includes an upper housing and a lower housing that are interlocked;

[0028] A first limiting portion is arranged in the upper shell, and the sealing member is limitedly connected to the first limiting portion. A second limiting portion is arranged in the lower shell, and the bracket is limitedly connected to the second limiting portion.

[0029] In some embodiments, the atomization device further includes a power supply component;

[0030] The power supply component is disposed in the shell and is electrically connected to the atomizer core.

[0031] According to the atomizing device in the above embodiment, the toggle piece is connected to the atomizing core so that the toggle piece can drive the atomizing core to move in the housing. When the atomizing core moves, the relative position between the liquid inlet channel and the liquid storage chamber changes, so that the user can selectively adjust the atomizing chamber to be connected or disconnected with the liquid storage chamber to realize the function of self-adjustable liquid core on and off. By arranging a toggle groove on the housing and exposing at least part of the toggle groove to the toggle piece, the user can drive the atomizing core to move by toggling the toggle piece on the housing. When the user needs to use the atomizing device, it is only necessary to adjust the toggle piece and connect the atomizing chamber to the liquid storage chamber. When the user does not need to use the atomizing device, the toggle piece can be adjusted and the atomizing chamber can be disconnected from the liquid storage chamber to avoid leakage of the aerosol matrix. As a result, the user can adjust according to the use requirements, the operation is simple, and the user experience is improved. BRIEF DESCRIPTION OF THE DRAWINGS

[0032] Figure 1 This is a schematic diagram of the three-dimensional structure of the atomization device in some embodiments of the present application;

[0033] Figure 2 for Figure 1 Schematic diagram of the exploded structure of the atomization device;

[0034] Figure 3 for Figure 1 A schematic cross-sectional view of the atomizing device when not in use;

[0035] Figure 4 for Figure 1 A schematic diagram of the cross-sectional structure of the atomizing device when in use;

[0036] Figure 5 for Figure 2 A schematic diagram of the three-dimensional structure of a toggle member in an atomization device;

[0037] Figure 6 for Figure 2 A schematic diagram of the three-dimensional structure of the push-pull member in the atomization device;

[0038] Figure 7 for Figure 2 A schematic diagram of the three-dimensional structure of the connecting piece in the atomization device;

[0039] Figure 8 for Figure 2 A schematic diagram of the three-dimensional structure of the bracket in the atomization device;

[0040] Fig. 9 for Figure 2 Schematic diagram of the three-dimensional structure of the seal in the atomization device.

[0041] in:

[0042] 1-atomizing device; 10-housing; 11-liquid storage chamber; 12-sliding groove; 13-connecting pipe; 14-guide groove; 15-upper housing; 151-first limiting part; 16-lower housing; 161-second limiting part; 17-sucking nozzle; 20-atomizing core; 21-liquid inlet channel; 22-atomizing chamber; 30-adjusting assembly; 31-sliding member; 311-first connector; 312-anti-slip pattern; 322-second connector Connecting slot; 32-push-pull member; 321-first connecting slot; 33-connecting member; 331-second connecting head; 332-second plane; 333-limiting head; 334-connecting column; 335-connecting slot; 40-bracket; 41-first lower plane; 50-sealing member; 51-first upper plane; 60-reinforcement member; 70-movable channel; 71-first plane; 80-power supply assembly; 81-circuit board; 82-battery. DETAILED DESCRIPTION

[0043] The present application is further described in detail below by specific embodiments in conjunction with the accompanying drawings. Wherein similar elements in different embodiments adopt associated similar element numbers. In the following embodiments, many detailed descriptions are for making the present application better understood. However, those skilled in the art can effortlessly recognize that some features can be omitted in different situations, or can be replaced by other elements, materials, methods. In some cases, some operations related to the present application are not shown or described in the specification, and this is to avoid the core part of the present application being overwhelmed by too much description, and for those skilled in the art, it is not necessary to describe these related operations in detail, and they can fully understand the related operations according to the description in the specification and the general technical knowledge in the art.

[0044] In addition, the features, operations or characteristics described in the specification can be combined in any appropriate manner to form various embodiments, and the operation steps involved in each embodiment can also be replaced or adjusted in order in a manner that is obvious to those skilled in the art. Therefore, the specification and drawings are only for the purpose of clearly describing a certain embodiment, and do not mean that the composition and / or order are necessary.

[0045] The serial numbers of the components herein, such as "first", "second", etc., are only used to distinguish the objects described and do not have any order or technical meaning. The "connection" and "coupling" mentioned in this application, unless otherwise specified, include direct and indirect connections (couplings).

[0046] In order to realize the function that the liquid core separation can be adjusted during use, the present application provides an atomization device 1, such as Figures 1 to 4 As shown, the atomizer device 1 may include a shell 10, an atomizer core 20 and an adjusting assembly 30. A liquid storage chamber 11 is provided in the shell 10. The atomizer core 20 is movably provided in the shell 10. The atomizer core 20 has an atomizer chamber 22 and a liquid inlet channel 21 connected to the atomizer chamber 22. The atomizer core 20 can drive the liquid inlet channel 21 to move. The adjusting assembly 30 may include a toggle member 31, which is connected to the atomizer core 20. A toggle groove 12 is provided on the shell 10. At least part of the toggle member 31 is exposed from the toggle groove 12. The toggle member 31 can be toggled and drive the atomizer core 20 to move, so as to change the relative position of the liquid inlet channel 21 and the liquid storage chamber 11, so that the atomizer chamber 22 and the liquid storage chamber 11 are selectively connected or isolated.

[0047] In this way, the toggle member 31 is connected to the atomizer core 20, so that the toggle member 31 can drive the atomizer core 20 to move in the shell 10. When the atomizer core 20 moves, the relative position between the liquid inlet channel 21 and the liquid storage chamber 11 changes, so that the user can selectively adjust the connection or isolation between the atomizer chamber 22 and the liquid storage chamber 11 to achieve the function of self-regulating the liquid core connection. By providing a toggle groove 12 on the shell 10 and exposing at least part of the toggle member 31 from the toggle groove 12, the user can drive the atomizer core 20 to move by toggling the toggle member 31 on the shell 10. Figure 4 As shown, when the user needs to use the atomizing device 1, he only needs to adjust the toggle member 31 to connect the atomizing chamber 22 with the liquid storage chamber 11. Figure 3 As shown, when the user does not need to use the atomizing device 1, the toggle member 31 can be adjusted to isolate the atomizing chamber 22 from the liquid storage chamber 11, thereby preventing the aerosol matrix from leaking out. Thus, the user can adjust according to the use requirements, the operation is simple, and the user experience is improved.

[0048] Among them, Figure 3 and Figure 4 As shown, the adjustment component 30 can be configured as a push structure that drives the atomizing core 20 to move along the aa axis, so that the liquid inlet channel 21 moves along the aa axis to the position where the atomizing chamber 22 is connected or disconnected from the liquid storage chamber 11. At this time, the toggle groove 12 and the toggle member 31 can be arranged on the side of the housing 10. In other embodiments, the adjustment component 30 can also be configured as a rotating structure that drives the atomizing core 20 to rotate around the aa axis, so that the liquid inlet channel 21 rotates around the aa axis to the position where the atomizing chamber 22 is connected or disconnected from the liquid storage chamber 11. At this time, the toggle groove 12 and the toggle member 31 can be arranged at the bottom of the housing 10. The present application does not impose any special restrictions on the specific manner in which the adjustment component 30 drives the atomizing core 20 to move and the specific positions where the toggle groove 12 and the toggle member 31 are arranged.

[0049] In addition, the liquid inlet channel 21 can be set to a hole-shaped or slit-shaped structure, and the shell 10 can be set to a box-shaped, columnar or strip-shaped structure. The present application does not impose any special restrictions on the specific shapes of the liquid inlet channel 21 and the shell 10.

[0050] It should be noted that the present application will adopt the following methods for hollow components such as channels, cavities, grooves, holes, etc. Figure 1 The arrowed marking lines shown in the middle toggle slot 12 are used for marking, and the other parts are marked with arrow-free marking lines. The same marking method will be used in the drawings of the following embodiments, and will not be repeated.

[0051] In some embodiments, Figures 1 to 4 As shown, a suction nozzle 17 is disposed on the top of the housing 10 , and the toggle slot 12 can be disposed on the side or bottom of the housing 10 .

[0052] Among them, the suction nozzle 17 can be integrally formed with the shell 10. When the atomizer core 20 is configured to move along the aa axis, the toggle groove 12 can be provided on the side of the shell 10. For example, the toggle member 31 can be provided as a paddle structure, so that the user can toggle the paddle on the side of the shell 10 to move the atomizer core 20. When the atomizer core 20 is configured to rotate around the aa axis, the toggle groove 12 can be provided at the bottom of the shell 10. For example, the toggle member 31 can be provided as a wheel structure, so that the user can rotate the wheel at the bottom of the shell 10 to move the atomizer core 20. In addition, the present application toggles the separately provided toggle member 31, and can also prevent the suction nozzle 17 from being contaminated by fingers. At the same time, adjusting the toggle member 31 does not cause changes in the overall appearance of the atomizer device 1.

[0053] In some embodiments, Figures 1 to 4 As shown, a connecting tube 13 connected to the suction nozzle 17 may be provided in the housing 10, and the atomizer core 20 may be connected to the connecting tube 13 and may be moved along the axial direction ( Figure 3 The toggle groove 12 can be extended along the axial direction of the connecting tube 13 so that the toggle member 31 can be toggled along the axial direction of the connecting tube 13.

[0054] Thus, the aerosol generated after the aerosol matrix is ​​atomized can flow into the mouthpiece 17 through the connecting tube 13. One end of the atomizer core 20 is movably sleeved in the connecting tube 13, so that the user can toggle the toggle member 31 along the axial direction of the connecting tube 13 to control the movement of the atomizer core 20. Of course, in other embodiments, one end of the atomizer core 20 can also be rotatably sleeved in the connecting tube 13, so that the user can rotate the toggle member 31 around the aa axis to control the rotation of the atomizer core 20. Among them, the toggle groove 12 can also be set on the surface of the shell 10 in a direction perpendicular to the aa axis, so that the user can toggle the toggle member 31 in a direction perpendicular to the aa axis. Alternatively, the toggle member 31 can also rotate in the toggle groove 12. The present application does not impose any special restrictions on the direction in which the toggle groove 12 is set. In addition, if Figure 5 As shown, anti-skid patterns 312 may be provided on the toggle member 31 so that the user can better toggle the toggle member 31 and avoid slipping during the toggle operation.

[0055] When the toggle groove 12 is arranged along the axial direction of the connecting pipe 13, as shown in FIG. Figure 3 and Figure 4As shown, the adjustment assembly 30 may further include a push-pull member 32 disposed in the housing 10, one end of the push-pull member 32 may be connected to an end of the atomizer core 20 away from the connecting tube 13, and the other end of the push-pull member 32 may be connected to a toggle member 31, and the toggle member 31 slides in the toggle groove 12 along the axial direction of the connecting tube 13 to drive the push-pull member 32 to push or pull the atomizer core 20 to move.

[0056] In this way, if Figure 3 As shown, when the toggle member 31 moves downward, the toggle member 31 can drive the push-pull member 32 to pull the atomizing core 20 downward, thereby isolating the atomizing chamber 22 from the liquid storage chamber 11. At this time, leakage of the aerosol matrix can be avoided. Figure 4 As shown, when the toggle member 31 moves upward, the toggle member 31 can drive the push-pull member 32 to push the atomizing core 20 upward, so that the atomizing chamber 22 is connected with the liquid storage chamber 11. At this time, the user can use the atomizing device 1 normally.

[0057] Among them, Figure 3 , Figure 4 and Figure 7 As shown, the adjustment assembly 30 may further include a connector 33 disposed in the housing 10 , one end of the connector 33 may be connected to the push-pull member 32 , the other end of the connector 33 may be provided with a connecting groove 335 , and the end of the atomizer core 20 away from the connecting tube 13 may be inserted into the connecting groove 335 .

[0058] The atomizer core 20 and the connector 33 are plugged in, so that the assembly between the atomizer core 20 and the connector 33 is simple and convenient. Of course, in other embodiments, the connector 33 and the atomizer core 20 can also be connected by screw connection or buckle connection, and the present application does not impose any special restrictions on the connection method between the connector 33 and the atomizer core 20.

[0059] In addition, in other embodiments, the adjustment component 30 can also be configured as a structure in which a roller and a rack are matched. For example, the rack can be connected to the atomizer core 20, and the roller can be rotatably arranged in the toggle groove 12 as a toggle member 31 and meshed with the rack. When the toggle roller rotates, the roller can drive the rack to move, so that the rack drives the atomizer core 20 to move. The present application does not impose any special restrictions on the specific structure of the adjustment component 30.

[0060] In particular, such as Figure 3 and Figure 4 As shown, the housing 10 may further include a guide groove 14 extending along the axial direction of the connecting tube 13 , the push-pull member 32 may be slidably disposed in the guide groove 14 , and the toggle member 31 may drive the push-pull member 32 to move along the axial direction of the connecting tube 13 .

[0061] Therefore, the setting of the guide groove 14 can limit the moving direction of the push-pull member 32, so as to avoid the problem of the push-pull member 32 being stuck during the shifting process due to displacement. The guide groove 14 can be formed between two limit baffles arranged in the housing 10, or in a guide tube arranged in the housing 10. The present application does not impose any special restrictions on the structure of the guide groove 14.

[0062] In some embodiments, Figures 5 to 7 As shown, the push-pull member 32 can be configured to be rod-shaped, and both ends of the push-pull member 32 can be respectively engaged with the toggle member 31 and the connecting member 33 .

[0063] For example, one end of the push-pull member 32 may have one of the first connection groove 321 and the first connector 311, the other end of the push-pull member 32 may have one of the second connection groove 322 and the second connector 331, the toggle member 31 may have the other of the first connection groove 321 and the first connector 311, the first connection groove 321 may be engaged with the first connector 311, so that the toggle member 31 is connected to the push-pull member 32. The connector 33 may have the other of the second connection groove 322 and the second connector 331, the second connection groove 322 may be engaged with the second connector 331, so that the connector 33 is connected to the push-pull member 32.

[0064] Specifically, the first connection groove 321 and the second connection groove 322 can be set at both ends of the push-pull member 32, the first connector 311 can be set on the toggle member 31, and the second connector 331 can be set on the connector 33. The first connector 311 is connected to the first connection groove 321, and the second connector 331 is connected to the second connection groove 322, so that the toggle member 31, the push-pull member 32 and the connector 33 are connected to each other. Of course, the first connector 311 and the second connector 331 can also be set on the push-pull member 32, the first connection groove 321 can also be set on the toggle member 31, and the second connection groove 322 can also be set on the connector 33. The present application does not impose any special restrictions on the specific positions of the first connection groove 321, the second connection groove 322, the first connector 311 and the second connector 331.

[0065] Among them, the first connection groove 321 and the second connection groove 322 can be set as a hollow hole-shaped structure, and correspondingly, the first connector 311 and the second connector 331 can be set as a connector structure with a buckle, so that the connector can be snapped into the hole-shaped structure. Of course, in other embodiments, the first connection groove 321 and the second connection groove 322 can also be set as threaded holes, and the first connector 311 and the second connector 331 can also be set as threaded heads, so that the threaded heads can be threadedly connected in the threaded holes. This application does not impose any special restrictions on the specific structures of the first connection groove 321, the second connection groove 322, the first connector 311 and the second connector 331.

[0066] The above embodiment is a detailed introduction to the specific structure of the adjustment component 30. In order to better adjust the movement of the atomizer core 20, Figure 3 , Figure 4 and Figure 7 As shown, the atomizer 1 may further include a bracket 40 installed in the shell 10, the connecting member 33 may include a limit head 333 and a connecting column 334 connected to each other, the connecting groove 335 may be provided on the limit head 333, the atomizer core 20 is connected to the limit head 333, the connecting column 334 may pass through the bracket 40 and be connected to the push-pull member 32, the push-pull member 32 drives the connecting column 334 to move in the bracket 40, and the bracket 40 is used to abut against the limit head 333 to limit the connecting member 33.

[0067] When the push-pull member 32 drives the connecting member 33 to move downward, the connecting member 33 can be limited by the contact between the limiting head 333 and the bracket 40, so that the liquid inlet channel 21 is separated from the liquid storage chamber 11. In addition, the connecting column 334 slides in the bracket 40, and the bracket 40 can also guide the movement of the connecting column 334, thereby avoiding the problem of the connecting member 33 being stuck due to displacement. The setting of the bracket 40 can also reinforce the adjustment component 30, so as to avoid the problem of instability caused by the adjustment component 30 when pushing and pulling due to the excessive length along the aa axis.

[0068] In addition, a mounting groove may be provided in the bracket 40, and the mounting groove may be used to install a liquid absorbent to absorb the aerosol matrix and prevent leakage of the aerosol matrix. The present application does not impose any special restrictions on the specific shape of the bracket 40 and the accessories provided on the bracket 40.

[0069] In more embodiments, Figure 3 and Figure 4As shown, the atomizer 1 may further include a sealing member 50, which may be disposed in the housing 10 and connected to a side of the bracket 40 close to the connecting tube 13. A liquid storage chamber 11 may be defined between the housing 10 and the sealing member 50. The atomizer core 20 may pass through the sealing member 50 and be connected to the limiting head 333. The atomizer core 20 moves toward the connecting tube 13, and the sealing member 50 is used to abut against the limiting head 333 to limit the connecting member 33, and the liquid inlet channel 21 is connected to the liquid storage chamber 11. The atomizer core 20 moves toward the connecting tube 13, and the sealing member 50 is used to block the liquid inlet channel 21.

[0070] When the push-pull member 32 drives the connecting member 33 to move upward, the connecting member 33 can be limited by the contact between the limiting head 333 and the sealing member 50, so that the liquid inlet channel 21 is connected to the liquid storage chamber 11. In addition, the atomizer core 20 slides in the sealing member 50, and the sealing member 50 can also guide the movement of the atomizer core 20, thereby avoiding the problem of the atomizer core 20 being stuck due to the displacement. When the push-pull member 32 drives the connecting member 33 to move downward, the inner side wall of the sealing member 50 can block the liquid inlet channel 21. Among them, a plug-in groove can be provided on the sealing member 50, and a plug-in connector can be provided on the bracket 40, so that the sealing member 50 and the bracket 40 are plugged in. In other embodiments, the sealing member 50 and the bracket 40 can also be connected by screwing or bonding, and the present application does not impose any special restrictions on the connection method between the sealing member 50 and the bracket 40.

[0071] Of course, in other embodiments, the seal 50 can also be configured as a liquid-isolating sleeve in the housing 10, and the atomizer core 20 can be rotatably sleeved in the liquid-isolating sleeve, and a connecting hole can be provided on the liquid-isolating sleeve. The adjustment component 30 can be configured as a rotating structure that drives the atomizer core 20 to rotate. When the atomizer core 20 rotates, the liquid inlet channel 21 can be connected by aligning with the connecting hole and blocked by staggering with the connecting hole. The present application does not impose any special restrictions on the specific structure of the seal 50.

[0072] In addition, if Figures 2 to 4 As shown, the atomizing device 1 may further include a reinforcing member 60 . The reinforcing member 60 may be disposed in the housing 10 and located on a side of the sealing member 50 close to the connecting pipe 13 . The sealing member 50 is connected to the reinforcing member 60 .

[0073] When the atomizer core 20 moves in the seal 50, the seal 50 is soft and easily deformed, which leads to the problem of leakage of the aerosol matrix. The provision of the reinforcement 60 can enhance the anti-deformation performance of the seal 50, so that the seal 50 can maintain a fixed shape under the joint constraint of the bracket 40 and the reinforcement 60, thereby reducing the deformation of the seal 50. Among them, the reinforcement 60 can be set as a sheet structure of materials such as metal or hard plastic. Holes can be opened on the reinforcement 60, and convex columns can be set on the seal 50, so that the reinforcement 60 is snap-connected with the seal 50. Of course, the reinforcement 60 and the seal 50 can also be bonded, and this application does not impose any special restrictions on the material, shape and connection method between the reinforcement 60 and the seal 50.

[0074] In particular, such as Figure 3 , Figure 4 , Figures 7 to 9 As shown, at least one of the bracket 40 and the seal 50 may have a movable channel 70 for the connector 33 to move, the movable channel 70 may have at least one first plane 71, and the connector 33 may have at least one second plane 332. When the connector 33 moves in the movable channel 70, the first plane 71 abuts against the second plane 332 to enable the connector 33 to move axially along the connecting tube 13.

[0075] For example, a first lower plane 41 may be provided in the bracket 40, and a first upper plane 51 may be provided in the sealing member 50. When the bracket 40 is connected to the sealing member 50, the first lower plane 41 and the first upper plane 51 may be combined to form a first plane 71. In this way, when the connecting member 33 moves in the moving channel 70, the first plane 71 and the second plane 332 always maintain a planar contact, thereby ensuring that the connecting member 33 can move along the axial direction of the connecting tube 13, so as to avoid the rotation of the connecting member 33 in the moving channel 70.

[0076] The moving channel 70 may have one, two or more first planes 71, and correspondingly, a corresponding number of second planes 332 may be provided on the connecting member 33. The present application does not impose any special restrictions on the specific number of the first planes 71 and the second planes 332. Of course, the first plane 71 may also be provided in the bracket 40 or in the sealing member 50, and the present application does not impose any special restrictions on the specific location of the first plane 71.

[0077] In order to facilitate the assembly of the atomizing device 1, as Figures 2 to 4As shown, the shell 10 may include an upper shell 15 and a lower shell 16 that are interlocked. A first limiting portion 151 may be provided in the upper shell 15, and the seal 50 may be limitedly connected to the first limiting portion 151. A second limiting portion 161 may be provided in the lower shell 16, and the bracket 40 may be limitedly connected to the second limiting portion 161.

[0078] During assembly, the seal 50 can be assembled in the upper housing 15 and limited by the first limiting portion 151, and the bracket 40 can be assembled in the lower housing 16 and limited by the second limiting portion 161. When the upper housing 15 and the lower housing 16 are buckled, the seal 50 and the bracket 40 are connected and are limited between the first limiting portion 151 and the second limiting portion 161, so that the seal 50 and the bracket 40 can be fixed in the housing 10 to ensure the stability of the structure of the atomization device 1.

[0079] The first limiting portion 151 and the second limiting portion 161 can be configured as limiting steps or limiting grooves, and the present application does not impose any special restrictions on the specific structures of the first limiting portion 151 and the second limiting portion 161. In addition, a liquid injection channel can be provided on the surface of the upper shell 15, and the liquid injection channel is connected to the liquid storage chamber 11, so that the aerosol matrix can be injected into the liquid storage chamber 11 through the liquid injection channel.

[0080] In more embodiments, Figure 3 and Figure 4 As shown, the atomizer device 1 may further include a power supply assembly 80 , which is disposed in the housing 10 and electrically connected to the atomizer core 20 .

[0081] The power supply assembly 80 can supply power to the atomizer core 20 to heat the aerosol matrix. Among them, a power supply compartment can be provided in the housing 10, and the power supply compartment is separated from the atomizer core 20 and the adjustment assembly 30. The power supply assembly 80 may include an electrically connected circuit board 81 and a battery 82. The circuit board 81 can be connected to the side of the bracket 40 away from the connecting tube 13, and the battery 82 can be connected in the power supply compartment. In this way, the heating wire in the atomizer core 20 can be electrically connected to the circuit board 81 through a wire, and the wire can pass through the connector 33 and the bracket 40, so that the connection length of the wire can be shortened. Among them, the wire can have a surplus length to avoid the problem of disconnection between the wire and the circuit board 81 when the atomizer core 20 moves. In addition, the circuit board 81 can also be connected to the side of the bracket 40 close to the connecting tube 13 or to the inner side wall of the housing 10. The present application does not impose any special restrictions on the specific position of the circuit board 81.

[0082] Of course, in other embodiments, the heating wire in the atomizer core 20 can also be electrically connected to the electrode needle, and an electrode that can be connected to the electrode needle can be provided on the circuit board 81. The electrode needle and the circuit board 81 can be configured as follows: when the atomizer core 20 moves upward, the liquid inlet channel 21 is connected to the liquid storage chamber 11, and at the same time, the electrode needle contacts and conducts with the electrode on the circuit board 81, and the user can use the atomizer device 1 normally; when the atomizer core 20 moves downward, the liquid inlet channel 21 is separated from the liquid storage chamber 11, and at the same time, the electrode needle is separated from the electrode on the circuit board 81. In this way, the atomizer device 1 can also adjust the toggle member 31 to enable the atomizer core 20 to realize the function of automatically atomizing or automatically stopping atomizing. The present application does not impose any special restrictions on the specific method of electrical connection between the atomizer core 20 and the circuit board 81.

[0083] The above specific examples are used to illustrate the present invention, which are only used to help understand the present invention and are not intended to limit the present invention. For those skilled in the art of the present invention, some simple deductions, deformations or substitutions can be made based on the idea of ​​the present invention.

Claims

1. An atomizing device, characterized in that: include: A shell body, wherein a liquid storage cavity is provided in the shell body; an atomizer core, movably disposed in the housing, the atomizer core having an atomizer cavity and a liquid inlet channel connected to the atomizer cavity, and the atomizer core can drive the liquid inlet channel to move; and The adjusting component includes a toggle member, the toggle member is connected to the atomizing core, the shell is provided with a toggle groove, at least a portion of the toggle member is exposed from the toggle groove, and the toggle member can be toggled to drive the atomizing core to move, so as to change the relative position of the liquid inlet channel and the liquid storage chamber, so that the atomizing chamber and the liquid storage chamber are selectively connected or isolated.

2. The atomizing device according to claim 1, characterized in that A suction nozzle is arranged on the top of the shell, and the toggle groove is arranged on the side or bottom of the shell.

3. The atomizing device according to claim 2, characterized in that A connecting pipe connected to the suction nozzle is arranged in the shell; The atomizer core is connected to the connecting tube and moves along the axial direction of the connecting tube, and the shifting groove is extended along the axial direction of the connecting tube.

4. The atomizing device according to claim 3, characterized in that The adjustment assembly also includes a push-pull member disposed in the housing; One end of the push-pull member is connected to one end of the atomizer core away from the connecting tube, and the other end of the push-pull member is connected to the toggle member. The toggle member slides in the toggle groove along the axial direction of the connecting tube to drive the push-pull member to push or pull the atomizer core to move.

5. The atomizing device according to claim 4, characterized in that: The adjustment assembly also includes a connecting member disposed in the housing; One end of the connecting piece is connected to the push-pull piece, and the other end of the connecting piece is provided with a connecting groove, and one end of the atomizing core away from the connecting pipe is inserted into the connecting groove.

6. The atomizing device according to claim 4, characterized in that: The housing also has a guide groove extending along the axial direction of the connecting pipe; The push-pull member is slidably disposed in the guide groove, and the toggle member drives the push-pull member to move along the axial direction of the connecting pipe.

7. The atomizing device according to claim 5, characterized in that: The atomizing device further comprises a bracket installed in the housing; The connecting member includes a limit head and a connecting column connected to each other, the connecting groove is arranged on the limit head, the atomizer core is connected to the limit head, the connecting column passes through the bracket and is connected to the push-pull member, the push-pull member drives the connecting column to move in the bracket, and the bracket is used to abut against the limit head to limit the connecting member.

8. The atomizing device according to claim 7, characterized in that: The atomizing device further comprises a sealing member; The sealing member is disposed in the housing and connected to a side of the bracket close to the connecting pipe. The liquid storage cavity is defined between the housing and the sealing member. The atomizing core passes through the sealing member and is connected to the limiting head. The atomizer core moves toward the connecting tube, and the sealing member is used to abut against the limiting head to limit the connecting member, and the liquid inlet channel is connected to the liquid storage chamber; the atomizer core moves toward the connecting tube, and the sealing member is used to block the liquid inlet channel.

9. The atomizing device according to claim 8, characterized in that: The atomizing device further comprises a reinforcing member; The reinforcing member is arranged in the shell and is located at a side of the sealing member close to the connecting pipe, and the sealing member is connected to the reinforcing member.

10. The atomizing device according to claim 8, characterized in that At least one of the bracket and the sealing member has a moving channel for allowing the connecting member to move; The moving channel has at least one first plane, and the connecting member has at least one second plane. When the connecting member moves in the moving channel, the first plane abuts against the second plane, so that the connecting member moves along the axial direction of the connecting pipe.