Atomizer and electronic atomization device
By designing multiple atomizer brackets and rotating components in the electronic atomization device, the aerosol-generating matrix in the atomizer is automatically switched to another atomizer after exhaustion, which solves the problem of troublesome atomizer replacement operation in the prior art and improves the user experience.
Patent Information
- Application Number
- CN202421290472.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-06
- Publication Date
- 2025-05-20
- Estimated Expiration
- 2034-06-06
AI Technical Summary
After the existing electronic atomization device is exhausted from the aerosol-generating matrix in the atomizer, it is necessary to replace the atomizer, which is troublesome and inconvenient for users to use.
An atomizing device is designed, including an atomizer bracket, a power supply assembly and a rotating assembly. By switching the relative positions of the conductive structure and each atomizer, the automatic switching of multiple atomizers is realized.
After the aerosol-generating substrate is exhausted in one atomizer, it is automatically switched to another atomizer to continue to use, avoiding the step of replacing the atomizer and improving operational convenience.
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Figure CN222885217U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of atomization, and particularly relates to an atomization device and an electronic atomization device. Background Art
[0002] In the related art, an electronic atomization device can atomize an aerosol-forming substrate to form an aerosol for a user to inhale. In the related art, only one atomizer is equipped in a cartridge-type electronic atomization device. After the aerosol-forming substrate in the atomizer is exhausted, the atomizer needs to be replaced to replenish the aerosol-forming substrate, which is troublesome to operate and not convenient for users. Summary of the Utility Model
[0003] In view of this, the main purpose of the embodiments of the present application is to provide an atomization device and an electronic atomization device with convenient operation.
[0004] To achieve the above object, the technical solution of the embodiments of the present application is realized as follows:
[0005] The first aspect of the embodiments of the present application provides an atomization device, including an atomizer bracket, a power supply component and a rotating component;
[0006] The atomizer bracket is used for accommodating a plurality of atomizers;
[0007] The rotating component includes a rotating body and a conductive structure. The conductive structure is arranged on the rotating body. The conductive structure is electrically connected to the power supply component. The rotating body and the atomizer bracket can rotate relative to each other, and the rotating body and the power supply component can rotate relative to each other to switch the relative positions of the conductive structure and each atomizer.
[0008] In one embodiment, the rotating body has a connecting portion for connecting the atomizer bracket and the power supply component. Taking the connecting portion as the rotation center, the rotating body and the atomizer bracket can rotate relative to each other, and the rotating body and the power supply component can rotate relative to each other.
[0009] In one embodiment, the atomization device further includes a mouthpiece component. The rotating component further includes a first transmission component. The opposite ends of the first transmission component are respectively connected to the rotating body and the mouthpiece component, and drive one of the atomizer bracket, the rotating body and the mouthpiece component to move, so as to switch the relative positions of the conductive structure and each atomizer.
[0010] In one embodiment, the atomizer device further includes a bottom cover, which is located on the side of the power supply assembly away from the atomizer bracket, and the rotating assembly further includes a second transmission assembly, the opposite ends of which are respectively connected to the rotating body and the bottom cover, driving one of the atomizer bracket, the rotating body and the bottom cover to move, so as to switch the relative position of the conductive structure and each of the atomizers.
[0011] In one embodiment, the rotating assembly includes a group of the conductive structures, and the relative rotation of the rotating body and the atomizer bracket, and the relative rotation of the rotating body and the power supply assembly, switches the electrical connection state of the conductive structure with each of the atomizers.
[0012] In one embodiment, the rotating assembly includes a plurality of groups of the conductive structures, and the relative rotation of the rotating body and the atomizer bracket, and the relative rotation of the rotating body and the power supply assembly, switches the electrical connection state between the conductive structure and at least one of the atomizers.
[0013] In one embodiment, the rotating body has a flow port connected to the external atmosphere, the atomizer has an airway for air flow, and the relative rotation of the rotating body and the atomizer bracket, and the relative rotation of the rotating body and the power supply assembly, switches the flow port to be connected to the airway of each atomizer.
[0014] In one embodiment, the conductive structure can rotate relative to the atomizer support from a first position to a third position via a second position;
[0015] When the conductive structure is in the first position relative to the atomizer support, at least one of the atomizers is electrically connected to the conductive structure; when the conductive structure is in the second position relative to the atomizer support, the atomizer avoids the conductive structure; when the conductive structure is in the third position relative to the atomizer support, another atomizer is electrically connected to the conductive structure.
[0016] In one embodiment, the rotating assembly includes an electrically connected conductive ring, which is arranged on a side of the rotating body close to the power supply assembly, and the power supply assembly includes a conductive member, which is arranged on a side of the power supply assembly close to the rotating body, and the conductive ring is electrically connected to the conductive member.
[0017] The second aspect of the embodiment of the present application provides an electronic atomization device, which includes a plurality of atomizers and any of the above-mentioned atomization devices, at least one of the atomizers is accommodated in the atomization device.
[0018] Embodiments of the present application provide an atomization device and an electronic atomization device. The atomization device includes an atomizer bracket, a power supply assembly, and a rotating assembly. The atomizer bracket is used to accommodate a plurality of atomizers. The rotating assembly includes a rotating body and a conductive structure. The conductive structure is disposed on the rotating body and is electrically connected to the power supply assembly. The rotating body and the atomizer bracket can rotate relative to each other, and the rotating body and the power supply assembly can rotate relative to each other to switch the relative positions of the conductive structure and each atomizer. Thus, by providing a plurality of atomizers in the atomizer bracket, after the aerosol-generating matrix stored in one atomizer is used up, the relative rotation of the rotating body and the atomizer bracket can be used to switch to another atomizer for continuous use, without the need to replace the atomizer just because the aerosol-generating matrix in one atomizer is used up. Therefore, the operation of the electronic atomization device can be made more convenient and user-friendly. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 is a schematic structural diagram of an electronic atomization device according to an embodiment of the present application;
[0020] Figure 2 is Figure 1 an exploded view of;
[0021] Figure 3 is Figure 2 a schematic diagram of the cooperation relationship between the atomizer bracket and the atomizer in;
[0022] Figure 4 is Figure 1 a partial structural diagram of the electronic atomization device in;
[0023] Figure 5 is Figure 4 a partial enlarged view of part A in;
[0024] Figure 6 is Figure 4 a structural diagram of the device after removing one atomizer in;
[0025] Figure 7 is Figure 2 a structural diagram of the rotating body in;
[0026] Figure 8 is Figure 7 a structural diagram from another perspective;
[0027] Figure 9 is a schematic structural diagram of an electronic atomization device according to another embodiment of the present application;
[0028] Figure 10 is Figure 9 a partial structural diagram of the electronic atomization device in;
[0029] Figure 11 is Figure 10 a schematic structural diagram of the atomizer bracket in
[0030] Figure 12 is Figure 11 a partially enlarged view at position B in
[0031] Figure 13 is Figure 10 a schematic structural diagram of after removing one atomizer;
[0032] Figure 14 is Figure 13 a schematic structural diagram of the rotating assembly in
[0033] Figure 15 is Figure 14 a partially enlarged view at position C in .
[0034] Description of the reference numerals
[0035] 11. Atomizer bracket; 11a. First mating surface; 12. Atomizer; 20. Power supply assembly; 30. Rotating assembly; 31. Rotating body; 31a. Connecting part; 31b. Current-carrying port; 31c. Second mating surface; 31ca. First position; 31cb. Second position; 31cc. Third position; 31cd. Low surface; 31ce. High surface; 32. Conductive structure; 321. Conductive ring; 33. First transmission assembly; 34. First protrusion; 35. Second protrusion; 36. First magnetic attraction member; 40. Mouthpiece assembly; 41. Fixed cover; 42. Rotating cover. Detailed implementation manners
[0036] In the present application, the "axial" orientation or positional relationship is based on the orientation or positional relationship shown in the attached drawings. It should be understood that these orientation terms are only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus cannot be construed as a limitation to the present application. Figure 1
[0037] Figure 1 An embodiment of the present application provides an atomization device. Please refer to Figure 1 and Figure 2 , the atomization device includes an atomizer bracket 11, a power supply assembly 20 and a rotating assembly 30.
[0038] Please refer to Figure 3 , Figure 4 and Figure 10 , the atomizer bracket 11 is used to accommodate a plurality of atomizers 12.
[0039] Please refer to Figure 7 and Figure 8, the rotating assembly 30 includes a rotating body 31 and a conductive structure 32. The conductive structure 32 is disposed on the rotating body 31 and is electrically connected to the power supply assembly 20. The rotating body 31 and the atomizer bracket 11 can rotate relative to each other, and the rotating body 31 and the power supply assembly 20 can rotate relative to each other to switch the relative positions of the conductive structure 32 and each atomizer 12.
[0040] Another embodiment of the present application provides an electronic atomization device, which includes a plurality of atomizers 12 and the atomization device described in any embodiment of the present application, and at least one atomizer 12 is received in the atomization device.
[0041] Specifically, the atomizer bracket 11 is used to mount the atomizer 12. An aerosol-forming substrate is stored in each atomizer 12 respectively. The atomizer 12 can atomize the aerosol-forming substrate to form an aerosol for the user to inhale in the working state.
[0042] The conductive structure 32 is a conductive structure, which can be an electrode post, an electrode elastic sheet, etc. By being electrically connected to the power supply assembly 20, it can be used to supply the power of the power supply assembly 20 to the atomizer 12, so that the atomizer 12 can atomize the aerosol-forming substrate by heating when powered on.
[0043] The rotating body 31 and the atomizer bracket 11 can rotate relative to each other. According to the actual situation, in some embodiments, the rotating body 31 can be rotated to enable the rotating body 31 and the atomizer bracket 11 to rotate relative to each other. In some other embodiments, the atomizer bracket 11 can be rotated to enable the rotating body 31 and the atomizer bracket 11 to rotate relative to each other. In still some other embodiments, either the atomizer bracket 11 or the rotating body 31 can be rotated to enable the rotating body 31 and the atomizer bracket 11 to rotate relative to each other.
[0044] The rotating body 31 and the power supply assembly 20 can rotate relative to each other. According to the actual situation, in some embodiments, the rotating body 31 can be rotated to enable the rotating body 31 and the power supply assembly 20 to rotate relative to each other. In some other embodiments, the power supply assembly 20 can be rotated to enable the rotating body 31 and the power supply assembly 20 to rotate relative to each other. In still some other embodiments, either the power supply assembly 20 or the rotating body 31 can be rotated to enable the rotating body 31 and the power supply assembly 20 to rotate relative to each other.
[0045] Moreover, since the conductive structure 32 is disposed on the rotating body 31, the conductive structure 32 can rotate relative to the atomizer bracket 11 and the power supply assembly 20, so that the relative position of the conductive structure 32 and the atomizer 12 can be changed.
[0046] By switching the relative positions of the conductive structure 32 and the atomizer 12, the atomizer 12 electrically connected to the power supply assembly 20 can be switched, that is, the power supply assembly 20 and the atomizer 12 can be selectively electrically connected as needed, and then different atomizers 12 can be switched to perform atomization work.
[0047] In the atomizing device according to the embodiment of the present application, the rotating body 31 and the atomizer bracket 11 can rotate relative to each other, and the rotating body 31 and the power supply assembly 10 can rotate relative to each other to switch the relative positions of the conductive structure 32 and each atomizer 12. Thus, by providing a plurality of atomizers 12 on the atomizer bracket 11, after the aerosol generating matrix stored in one atomizer 12 is used up, the relative rotation of the rotating body 31 and the atomizer bracket 11 can be used to switch to another atomizer 12 for continuous use, without the need to replace the atomizer 12 just because the aerosol generating matrix in one atomizer 12 is used up. Therefore, the operation of the electronic atomizing device can be made more convenient and user-friendly.
[0048] In one embodiment, please refer to Figure 6 、 Figure 7 and Figure 8 , the rotating body 31 has a connecting portion 31a for connecting the atomizer bracket 11 and the power supply assembly 20. With the connecting portion 31a as the rotation center, the rotating body 31 and the atomizer bracket 11 can rotate relative to each other, and the rotating body 31 and the power supply assembly 20 can rotate relative to each other.
[0049] Specifically, the atomizer bracket 11 and the power supply assembly 20 are connected together through the connecting portion 31a. On the one hand, it is convenient for the installation of the atomizer bracket 11, the rotating body 31 and the power supply assembly 20, and at the same time, it is convenient for the relative rotation between the structures.
[0050] In one embodiment, the user rotates the rotating body 31 to switch the relative positions of the conductive structure 32 and each atomizer 12. By forming the connecting portion 31a, it is convenient for the rotating body 31 to be exposed, which enables the user to directly rotate the rotating body 31, thus facilitating the switching of the atomizer 12 in the atomizing state.
[0051] The specific structural form of the connecting portion 31a is not limited. For example, the connecting portion 31a is a connecting hole or a connecting member with a mounting hole.
[0052] Moreover, the connection method of the atomizer bracket 11 and the power supply assembly 20 through the connecting portion 31a can be set according to the actual situation.
[0053] Exemplarily, the connecting portion 31a is a connecting hole, and the atomizer bracket 11 and the power supply assembly 20 are connected through a cross screw and a locknut passing through the connecting hole.
[0054] In addition, depending on the specific setting form of the electronic atomization device, the relative rotation between the rotating body 31 and the atomizer bracket 11, and the relative rotation between the rotating body 31 and the power supply assembly 20 can also adopt other rotation methods.
[0055] Exemplarily, please refer to Figure 13 , the electronic atomization device further includes a mouthpiece assembly 40, and the rotating assembly 30 further includes a first transmission assembly 33. The opposite ends of the first transmission assembly 33 are respectively connected to the rotating body 31 and the mouthpiece assembly 40, driving one of the atomizer bracket 11, the rotating body 31, and the mouthpiece assembly 40 to move, so as to switch the relative positions of the conductive structure 32 and each atomizer 12.
[0056] Specifically, the mouthpiece assembly 40 is a component for the electronic atomization device to export the generated aerosol, and it is the area for the user to suck. The mouthpiece assembly 40 is connected to the rotating body 31 through the first transmission assembly 33. Thus, the user can drive one of the atomizer bracket 11, the rotating body 31, and the mouthpiece assembly 40 to move, thereby realizing the switching of the atomizer 12 in the atomization state. Thus, the rotating body 31 can be accommodated inside the electronic atomization device without exposing the rotating body 31, which can improve the protection of the rotating body 31.
[0057] It should be noted that the mouthpiece assembly 40 can be an integrally formed structure.
[0058] According to the actual situation, the mouthpiece assembly 40 can also adopt a split structure.
[0059] For example, please refer to Figure 9 , the mouthpiece assembly 40 includes a fixed cover 41 and a rotating cover 42. The rotating cover 42 has a mist outlet and is rotatably arranged on the fixed cover 41. The fixed cover 41 is arranged on the atomizer bracket 11. The opposite ends of the first transmission assembly 33 are respectively connected to the rotating body 31 and the rotating cover 42. The atomizers 12 are arranged circumferentially around the first transmission assembly 33. The rotating cover 42 rotates to drive the rotating body 31 to rotate relative to the atomizer bracket 11. Thus, on the one hand, it is convenient for the rotating cover 42 to drive the rotating body 31 to rotate, and on the other hand, by setting the fixed cover 41, the installation stability of the rotating cover 42 can also be improved.
[0060] In addition, according to the actual situation, the electronic atomization device can also adopt other rotation methods to meet the actual needs.
[0061] Exemplarily, the electronic atomization device further includes a bottom cover, which is located on the side of the power supply assembly 20 away from the atomizer bracket 11. The rotating assembly 30 further includes a second transmission assembly, and the opposite ends of the second transmission assembly are respectively connected to the rotating body 31 and the bottom cover, driving one of the atomizer bracket 11, the rotating body 31 and the bottom cover to move, so as to switch the relative position of the conductive structure 32 and each atomizer 12. Thus, the atomizer 12 in the atomization state can be switched.
[0062] The number of the conductive structures 32 can be set according to actual conditions, and the way they cooperate with the atomizer 12 can also be set according to actual conditions.
[0063] For example, the rotating assembly 30 includes a group of conductive structures 32, and the relative rotation of the rotating body 31 and the atomizer bracket 11, and the relative rotation of the rotating body 31 and the power supply assembly 20, switches the electrical connection state of the conductive structure 32 and each atomizer 12.
[0064] Specifically, only one conductive structure 32 is used to selectively electrically connect one of the multiple atomizers 12, so that one atomizer 12 can be selectively electrically connected to the power supply assembly 20. The power supply assembly 20 supplies power to the atomizer 12, so that the atomizer 12 can atomize the aerosol generating substrate. Therefore, after the user has used up the aerosol generating substrate in one atomizer 12, the power supply assembly 20 can be electrically connected to another atomizer 12 by relative rotation of the rotating body 31 and the atomizer bracket 11, and relative rotation of the rotating body 31 and the power supply assembly 20, so that the other atomizer 12 can continue the atomization work.
[0065] For another example, the rotating assembly 30 includes a plurality of conductive structures 32, and the relative rotation of the rotating body 31 and the atomizer bracket 11, and the relative rotation of the rotating body 31 and the power supply assembly 20, switches the electrical connection state between the conductive structure 32 and at least one atomizer 12.
[0066] Specifically, the rotating assembly 30 includes at least one set of conductive structures 32. In the electrically connected state, one set of conductive structures 32 may be electrically connected to only one atomizer 12, so that only one atomizer 12 works.
[0067] According to the actual situation, multiple groups of conductive structures 32 can be electrically connected to at least two atomizers 12, so that multiple atomizers 12 can work simultaneously in the electrically connected state. In this way, the amount of mist output can be increased when the electronic atomization device is working. Different aerosol generating matrices can also be stored in different atomizers 12, thereby satisfying the user's needs for inhaling aerosols of mixed flavors. Of course, the same aerosol generating matrix can also be stored in different atomizers 12.
[0068] In one embodiment, please refer to Figure 7 , the rotating body 31 has a flow-through port 31b communicating with the external atmosphere, the atomizer 12 has an air passage for air flow, and the relative rotation of the rotating body 31 and the atomizer bracket 11, and the relative rotation of the rotating body 31 and the power supply assembly 20 switch the communication state between the flow-through port 31b and the air passages of the respective atomizers 12.
[0069] Specifically, the flow-through port 31b can allow the external air flow to pass through, so that after passing through the atomizer 12 in the atomized state, the aerosol formed by atomizing the atomizer 12 is carried out for the user to inhale.
[0070] It should be noted that when the user switches the atomizer 12 in the atomized state by relatively rotating the rotating body 31 and the atomizer bracket 11, and relatively rotating the rotating body 31 and the power supply assembly 20, the air passage of the atomizer 12 connected to the flow-through port 31b will also be switched accordingly. That is to say, when the user rotates to switch the power supply assembly 20 from being electrically connected to one atomizer 12 to being electrically connected to another atomizer 12, the flow-through port 31b will also be connected to the air passage of the atomizer 12 in the electrically connected state after switching. Thus, it is convenient for the air flow to carry out the aerosol generated by the atomizer 12 in the atomized state.
[0071] In one embodiment, the conductive structure 32 can rotate relative to the atomizer bracket 11 from a first orientation through a second orientation to a third orientation.
[0072] When the conductive structure 32 is in the first orientation relative to the atomizer bracket 11, at least one atomizer 12 is electrically connected to the conductive structure 32. When the conductive structure 32 is in the second orientation relative to the atomizer bracket 11, the atomizer 12 is arranged to avoid the conductive structure 32. When the conductive structure 32 is in the third orientation relative to the atomizer bracket 11, another atomizer 12 is electrically connected to the conductive structure 32.
[0073] Specifically, the relative rotation of the rotating body 31 and the atomizer bracket 11, and the relative rotation of the rotating body 31 and the power supply assembly 20 can drive the conductive structure 32 to rotate relative to the atomizer bracket 11, and its position is switched from the first orientation through the second orientation to the third orientation.
[0074] Among them, the first orientation, the second orientation and the third orientation are the relative positions of the conductive structure 32 and the atomizer bracket 11. Taking Figure 3 as an example, when the conductive structure 32 is at Figure 3 at a in Figure 3 to be electrically connected to the atomizer 12 at a, the conductive structure 32 is in the first orientation relative to the atomizer bracket 11. When the conductive structure 32 is atFigure 3 Between point a and point c, such as at point b, the conductive structure 32 is not electrically connected to any of the atomizers 12. That is to say, when the conductive structure 32 is in the first position and the third position respectively, the conductive structure 32 is electrically connected to the atomizers 12, but the conductive structure 32 is electrically connected to different atomizers 12. When the conductive structure 32 is in the second position, the conductive structure 32 avoids the atomizers 12, that is, the conductive structure 32 is not electrically connected to all the atomizers 12.
[0075] Thus, during the relative rotation of the rotating body 31 and the atomizer bracket 11, when the conductive structure 32 is in the second position, since it is separated from the atomizer bracket 11, friction between the conductive structure 32 and the atomizer bracket 11 can be avoided. On the one hand, the frictional resistance during the rotation of the rotating body 31 can be reduced, making the rotation labor-saving. On the other hand, the risk of loss caused by the friction between the conductive structure 32 and the atomizer bracket 11 can also be reduced.
[0076] It should be noted that the specific implementation manner of the relative rotation of the rotating assembly 30 and the atomizer bracket 11 to realize the switching of the conductive structure 32 between the first position, the second position and the third position can be set according to the actual situation.
[0077] Exemplarily, please refer to Figure 14 and Figure 15 , the atomizer bracket 11 has a first mating surface 11a, the rotating body 31 has a second mating surface 31c that slidably mates with the first mating surface 11a, and the first mating surface 11a and the second mating surface 31c are disposed opposite to each other along the axial direction of the electronic atomization device;
[0078] The second mating surface 31c has a first position 31ca, a second position 31cb and a third position 31cc. When the first mating surface 11a is at the first position 31ca, the conductive structure 32 is in the first position relative to the atomizer bracket 11; when the first mating surface 11a is at the second position 31cb, the conductive structure 32 is in the second position relative to the atomizer bracket 11; when the first mating surface 11a is at the third position 31cc, the conductive structure 32 is in the third position relative to the atomizer bracket 11.
[0079] Among them, the first position 31ca, the second position 31cb, and the third position 31cc are the positions corresponding to the second mating surface 31c relative to the atomizer bracket 11 when rotating from the first orientation to the third orientation. The first position 31ca, the second position 31cb, and the third position 31cc are sequentially distributed along the circumference of the atomizer bracket 11. During the process of the atomizer bracket 11 and the rotating body 31 rotating relative to each other by a preset angle, the first mating surface 11a slides from the first position 31ca of the second mating surface 31c to the second position 31cb, and slides from the second position 31cb to the third position 31cc. By changing the relative mating positions of the first mating surface 11a and the second mating surface 31c, the rotating body 31 and the atomizer bracket 11 approach or move away along the axial direction of the atomizer bracket 11, so as to avoid the conductive structure 32.
[0080] Of course, in other embodiments, the second mating surface 31c may also be formed on the atomizer bracket 11, and the first mating surface 11a may be formed on the rotating body 31.
[0081] In one embodiment, please refer to Figure 11 、 Figure 12 、 Figure 14 and Figure 15 , the second mating surface 31c has a plurality of low-level surfaces 31cd arranged at intervals along the circumference, and high-level surfaces 31ce are connected between adjacent low-level surfaces 31cd; when the first mating surface 11a cooperates with the low-level surface 31cd, the conductive structure 32 is located at the first orientation or the third orientation relative to the atomizer bracket 11; when the first mating surface 11a cooperates with the high-level surface 31ce, the conductive structure 32 is located at the second orientation relative to the atomizer bracket 11.
[0082] Among them, it should be noted that during the process of the conductive structure 32 rotating from the first orientation to the third orientation relative to the atomizer bracket 11 via the second orientation, the first mating surface 11a slides from one of the low-level surfaces 31cd of the second mating surface 31c through one of the high-level surfaces 31ce to the next low-level surface 31cd. One of the low-level surfaces 31cd here is the first position 31ca of the second mating surface 31c, the next low-level surface 31cd is the third position 31cc of the second mating surface 31c, and one of the high-level surfaces 31ce is the second position 31cb of the second mating surface 31c, that is, the sequentially connected low-level surface 31cd, high-level surface 31ce, and low-level surface 31cd just correspond to the first position 31ca, the second position 31cb, and the third position 31cc of one unit.
[0083] In this embodiment, by setting the low surface 31cd and the high surface 31ce, when the first mating surface 11a slides to the low surface 31cd, the atomizer bracket 11 and the rotating body 31 abut against each other along the axial direction of the electronic atomization device, so that the atomizer abuts against the conductive structure 32 to form an electrical connection. When the first mating surface 11a slides to the high surface 31ce, the atomizer bracket 11 and the rotating body 31 slide relative to each other along the axial direction of the electronic atomization device, so that the atomizer bracket 11 avoids the conductive structure 32.
[0084] The high level surface 31ce may also be triangular, or the high level surface 31ce may also be curved or wavy, which is not the only limitation. In one embodiment, please refer to Figure 3 and Figure 5 The second mating surface 31c includes a first protrusion 34 and a second protrusion 35, and the first protrusion 34 and the second protrusion 35 are respectively located on opposite sides of the conductive structure 32 along the rotation direction.
[0085] When the first mating surface 11a is located at the first position, the first protrusion 34 and the second protrusion 35 are located on opposite sides of an atomizer 12 along the rotation direction, and the conductive structure 32 is in the first position relative to the atomizer bracket 11.
[0086] When the first mating surface 11a is located at the second position, the first protrusion 34 and the second protrusion 35 push the adjacent atomizer 12 along the axial direction, and the conductive structure 32 is in the second position relative to the atomizer bracket 11.
[0087] When the first mating surface 11a is located at the third position, the first protrusion 34 and the second protrusion 35 are located on opposite sides of the other atomizer 12 along the rotation direction, and the conductive structure 32 is in the third position relative to the atomizer bracket 11.
[0088] Specifically, the rotation direction refers to the direction in which the rotating body 31 rotates around the rotation axis, and the opposite sides along the rotation direction refer to the front side along the rotation direction and the rear side along the rotation direction.
[0089] The rotating body 30 rotates relative to the atomizer bracket 11, so that the first matching surface 11a can be switched between the first position, the second position and the third position. When the first matching surface 11a rotates from the first position to the third position, it will pass through the second position.
[0090] When the first mating surface 11a is at the first position and the third position respectively, the first protrusion 34 and the second protrusion 35 do not contact the atomizer 12, which can facilitate the electrical connection between the atomizer 12 and the conductive structure 32.
[0091] When the first mating surface 11a is in the second position, the first protrusion 34 and the second protrusion 35 axially push the adjacent atomizer 12, whereby the atomizer 12 can be separated from the conductive structure 32, so that the two are not in contact, and further, the conductive structure 32 can be electrically disconnected from all the atomizers 12.
[0092] In one embodiment, please refer to Figure 7 and Figure 8 , the rotating assembly 30 includes an electrically connected conductive ring 321, the conductive ring 321 is disposed on one side of the rotating body 31 close to the power supply assembly 20, the power supply assembly 20 includes a conductive member, the conductive member is disposed on one side of the power supply assembly 20 close to the rotating body 30, and the conductive ring 321 is electrically connected to the conductive member.
[0093] Specifically, a conductive ring 321 is disposed on one side of the rotating body 31 close to the power supply assembly 20, and the conductive ring 321 is used for electrically connecting with the conductive member of the power supply assembly 20. The conductive ring 321 is an annular conductive structure 32 extending along the rotation direction. By using the conductive ring 321 to electrically connect with the conductive member of the power supply assembly 20, it can ensure that the conductive member of the power supply assembly 20 always maintains an electrical signal connection with the conductive ring 321 during the relative rotation of the rotating body 30 and the power supply assembly 20, and can ensure the stability of current transmission.
[0094] In one embodiment, the conductive structure 32 is a conductive spring needle that is telescopically disposed on the rotating body 31. Thereby, the friction state between the conductive structure 32 and the atomizer bracket 11 can be improved.
[0095] The conductive structure 32 is electrically connected to the atomizer 12, and its specific implementation manner can be set according to the actual situation.
[0096] For example, a signal contact is formed at one end of the atomizer 12 close to the rotating assembly 30. When the rotating body 31 rotates, the conductive structure 32 is in electrical signal connection with the corresponding atomizer 12 by contacting any one of the signal contacts. Thus, the conductive structure 32 can selectively contact the signal contacts of each atomizer 12 to achieve electrical signal connection with the corresponding atomizer 12.
[0097] In one embodiment, please refer to Figure 7 , the rotating assembly 30 further includes a first magnetic member 36 disposed on one side of the rotating body 31 close to the atomizer bracket 11. A second magnetic member is formed at one end of the atomizer bracket 11 close to the rotating assembly 30. The first magnetic member 36 rotates with the rotating body 31 to switch between magnetic attraction fits with the respective second magnetic members.
[0098] Specifically, the first magnetic member 36 and the second magnetic member are structures capable of magnetic attraction fit. For example, the first magnetic member 36 is a magnet, and the second magnetic member is a metal material capable of magnetic attraction fit with the magnet.
[0099] By providing the first magnetic member 36 and the second magnetic member, when the conductive structure 32 is in the first orientation and the third orientation, the electrical connection stability between the conductive structure 32 and the atomizer 12 can be improved, and the atomization process of the atomization core can be made more stable.
[0100] When the conductive structure 32 is in the second orientation, the first magnetic member 36 and the second magnetic member are separated from each other.
[0101] In a specific embodiment, the electronic atomization device further includes a pressure sensor and an airway silicone disposed between the power supply assembly 20 and the rotating assembly 30. The pressure sensor is disposed on a side of the airway silicone facing away from the rotating assembly 30. The airway silicone has a first airway port and a second airway port. The first airway port communicates with the through-flow port 31b, and the second airway port extends to the pressure sensor. When the user inhales to cause the pressure sensor to sense the inhalation airflow, the electronic atomization device is activated so that the power supply assembly 20 supplies power to the atomizer 12.
[0102] In the description of the present application, the description with reference to terms such as "in an embodiment", "in some embodiments", "in a specific embodiment", or "exemplary" means that the specific features, structures, materials, or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the embodiments of the present application. In the present application, the schematic representations of the above terms are not necessarily directed to the same embodiment or example. Moreover, the specific features, structures, materials, or characteristics described can be combined in any one or more embodiments or examples in a suitable manner. In addition, without conflict, those skilled in the art can combine the different embodiments or examples described in the present application and the features of the different embodiments or examples.
[0103] The above description is only a preferred embodiment of the present application and is not intended to limit the present application. For those skilled in the art, various changes and modifications can be made to the present application. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application are included in the protection scope of the present application.
Claims
1. An atomizing device, characterized in that: It includes an atomizer bracket, a power supply component and a rotating component; The atomizer bracket is used to accommodate multiple atomizers; The rotating assembly includes a rotating body and a conductive structure, wherein the conductive structure is arranged on the rotating body, and the conductive structure is electrically connected to the power supply assembly. The rotating body and the atomizer bracket can rotate relative to each other, and the rotating body and the power supply assembly can rotate relative to each other to switch the relative position of the conductive structure and each atomizer.
2. The atomizing device according to claim 1, characterized in that: The rotating body has a connecting portion for connecting the atomizer bracket and the power supply assembly, and the connecting portion is used as a rotation center.
3. The atomizing device according to claim 1, characterized in that: The atomizer device also includes a nozzle assembly, and the rotating assembly also includes a first transmission assembly, wherein opposite ends of the first transmission assembly are respectively connected to the rotating body and the nozzle assembly, driving one of the atomizer bracket, the rotating body and the nozzle assembly to move, so as to switch the relative position of the conductive structure and each of the atomizers.
4. The atomizing device according to claim 1, characterized in that: The atomizer device also includes a bottom cover, which is located on a side of the power supply assembly away from the atomizer bracket. The rotating assembly also includes a second transmission assembly, and the opposite ends of the second transmission assembly are respectively connected to the rotating body and the bottom cover to drive one of the atomizer bracket, the rotating body and the bottom cover to move, so as to switch the relative position of the conductive structure and each atomizer.
5. The atomizing device according to any one of claims 1 to 4, characterized in that: The rotating assembly includes a group of the conductive structures. The relative rotation of the rotating body and the atomizer bracket and the relative rotation of the rotating body and the power supply assembly switches the electrical connection state between the conductive structures and each of the atomizers.
6. The atomizing device according to any one of claims 1 to 4, characterized in that: The rotating assembly includes a plurality of groups of the conductive structures. The relative rotation of the rotating body and the atomizer bracket and the relative rotation of the rotating body and the power supply assembly switches the electrical connection state between the conductive structure and at least one of the atomizers.
7. The atomizing device according to claim 5, characterized in that: The rotating body has a flow port connected to the external atmosphere, and the atomizer has an airway for air flow. The relative rotation of the rotating body and the atomizer bracket, and the relative rotation of the rotating body and the power supply assembly switch the flow port to the airway connection state of each atomizer.
8. The atomizing device according to any one of claims 1 to 4, characterized in that: The conductive structure can rotate relative to the atomizer support from a first position to a third position via a second position; When the conductive structure is in the first position relative to the atomizer support, at least one of the atomizers is electrically connected to the conductive structure; When the conductive structure is in the second position relative to the atomizer support, the atomizer is arranged to avoid the conductive structure; when the conductive structure is in the third position relative to the atomizer support, another atomizer is electrically connected to the conductive structure.
9. The atomizing device according to any one of claims 1 to 4, characterized in that: The rotating component includes an electrically connected conductive ring, which is arranged on a side of the rotating body close to the power supply component. The power supply component includes a conductive member, which is arranged on a side of the power supply component close to the rotating body, and the conductive ring is electrically connected to the conductive member.
10. An electronic atomization device, characterized in that: The invention comprises a plurality of atomizers and an atomizing device as claimed in any one of claims 1 to 9, wherein at least one of the atomizers is accommodated in the atomizing device.