Atomization child lock structure and electronic atomizer
By designing an atomized child lock structure, utilizing the sliding contact between the base and the child lock components, as well as a specific track shape, the isolation and connection of the channels are achieved, solving the problem of high cost of traditional child lock chips, reducing production costs, and improving safety.
Patent Information
- Application Number
- CN202210996970.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-08-19
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2042-08-19
AI Technical Summary
Traditional child lock chips are expensive, leading to excessive production costs for electronic atomizers.
A child lock structure with atomization is designed, including a base and a child lock assembly. The isolation and connection of the channel are achieved by the sliding contact of the child lock air guide and the child lock switch. A specific track shape and multiple unlocking methods are used to increase the difficulty of unlocking and reduce the probability of accidental opening.
This effectively reduces production costs while increasing the difficulty of unlocking the atomized child lock structure, reducing accidental operation and ensuring safety.
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Figure CN115336798B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of electronic atomization, in particular to an atomization child lock structure and an electronic atomizer. BACKGROUND
[0002] With the rapid development of electronic atomizers, the sales of electronic atomizers in society have been increasing year by year. Electronic atomizers with good quality and good brand are very popular among consumers and occupy a large market share. In actual use, in order to prevent the misuse of minors, a child lock electronic chip is usually used for locking.
[0003] However, the traditional child lock chip is too expensive, which can easily lead to the production cost of the electronic atomizer exceeding the standard. SUMMARY
[0004] The purpose of the present application is to overcome the shortcomings in the prior art and provide an atomization child lock structure and an electronic atomizer which can effectively reduce the production cost.
[0005] The purpose of the present application is achieved by the following technical solutions:
[0006] An atomization child lock structure comprises a base and a child lock assembly. The base is used to connect with the shell of an electronic atomizer, and the base is provided with a child lock track through hole. The child lock assembly comprises a child lock air guide piece and a child lock switch piece. The child lock air guide piece is connected with the base, at least part of the child lock air guide piece is located in the shell, and the child lock air guide piece has a first child lock passage which is in communication with the inside of the shell. The child lock switch piece is movably connected with the base, and is located on the side of the base away from the child lock air guide piece and covers the child lock track through hole. The child lock switch piece is arranged in the child lock track through hole and is in sliding abutment with the child lock air guide piece. The child lock switch piece has a second child lock passage which is used to be isolated from the first child lock passage when locked.
[0007] In one embodiment, the projection area of the child lock switch piece on the base is greater than the through hole area of the child lock track through hole.
[0008] In one embodiment, the ratio of the projection area of the child lock switch piece on the base to the through hole area of the child lock track through hole is 5 to 10.
[0009] In one embodiment, the child lock switch piece has a sliding abutment surface which is arranged in parallel with the base, and the sliding abutment surface is arranged on the base in a fit manner.
[0010] In one of the embodiments, the child lock switch piece comprises a switch sliding plate and a switch sliding rod connected with each other, the switch sliding plate is slidably arranged on the base, and the switch sliding rod is arranged in the child lock track through hole and abuts against the child lock air guide piece.
[0011] In one of the embodiments, the switch sliding plate is provided with a first through hole, the switch sliding rod is provided with a second through hole in communication with the first through hole, and the first through hole and the second through hole form the second child lock channel.
[0012] In one of the embodiments, the second child lock channel is arranged on the switch sliding plate.
[0013] In one of the embodiments, the child lock air guide piece is provided with a sliding groove in communication with the first child lock channel and the child lock track through hole, and part of the switch sliding rod is slidably arranged in the sliding groove.
[0014] In one of the embodiments, the caliber of the sliding groove is equal to the diameter of the switch sliding rod.
[0015] An electronic atomizer comprising the atomizing child lock structure of any of the above embodiments.
[0016] Compared with the prior art, the present application has at least the following advantages:
[0017] In the locked state, the second child lock channel is not in communication with the first child lock channel, and in the unlocked state, the second child lock channel and the first child lock channel are aligned by moving the child lock switch piece to a specified position, so that the second child lock channel and the first child lock channel are in communication with each other, thereby forming an air inlet channel together, facilitating the communication between the inside and the outside of the electronic atomizer, and thus facilitating the introduction of gas into the inside of the electronic atomizer, and realizing the unlocking of the air passage of the electronic atomizer. BRIEF DESCRIPTION OF DRAWINGS
[0018] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following will briefly introduce the drawings needed to be used in the embodiments. It should be understood that the following drawings only show some embodiments of the present application, and therefore should not be regarded as a limitation on the scope, and for those skilled in the art, other related drawings can also be obtained without creative labor.
[0019] Figure 1 FIG. 1 is a schematic view of an atomizing child lock structure in an embodiment;
[0020] Figure 2 FIG. 2 is a schematic view of the atomizing child lock structure in FIG. 1 along the direction of A-A; Figure 1 FIG. 3 is a sectional view of the atomizing child lock structure in FIG. 1 along the direction of A-A;
[0021] Figure 3 for Figure 1 Another cross-sectional view of the atomized child lock structure shown;
[0022] Figure 4 for Figure 1 Another cross-sectional view of the atomized child lock structure shown. Detailed Implementation
[0023] To facilitate understanding of the present invention, a more complete description will be given below with reference to the accompanying drawings. Preferred embodiments of the invention are shown in the drawings. However, the invention can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a thorough and complete understanding of the disclosure of the invention.
[0024] It should be noted that when an element is referred to as being "fixed to" another element, it can be directly attached to the other element or there may be an intervening element. When an element is referred to as being "connected to" another element, it can be directly connected to the other element or there may be an intervening element. The terms "vertical," "horizontal," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only possible implementation.
[0025] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used herein in the description of the invention is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.
[0026] The present application relates to an atomization child lock structure. In one embodiment, the atomization child lock structure comprises a base and a child lock assembly. The base is used to connect with the shell of an electronic atomizer, and the base is provided with a child lock track through hole. The child lock assembly comprises a child lock air guide piece and a child lock switch piece. The child lock air guide piece is connected with the base, at least part of the child lock air guide piece is located in the shell, and the child lock air guide piece has a first child lock channel which is in communication with the inside of the shell. The child lock switch piece is movably connected with the base, the child lock switch piece is located on the side of the base away from the child lock air guide piece and covers the child lock track through hole, the child lock switch piece is arranged in the child lock track through hole and is in sliding abutment with the child lock air guide piece, and the child lock switch piece has a second child lock channel. The second child lock channel is used to be isolated from the first child lock channel when locked. In the locked state, the second child lock channel is not communicated with the first child lock channel, and in the unlocked state, the second child lock channel needs to be aligned with the first child lock channel by moving the child lock switch piece to a specified position, so that the second child lock channel and the first child lock channel are in communication with each other, thereby forming an air inlet channel together, so as to facilitate the communication between the inside of the electronic atomizer and the outside environment, thereby facilitating the introduction of gas into the inside of the electronic atomizer and achieving the unlocking of the air passage of the electronic atomizer.
[0027] Please refer to Figure 1 , which is a structural schematic view of the atomization child lock structure of one embodiment of the present application.
[0028] The atomization child lock structure 10 of one embodiment comprises a base 100 and a child lock assembly 200. The base 100 is used to connect with the shell of an electronic atomizer, please refer to Figure 2 , and the base 100 is provided with a child lock track through hole 102. The child lock assembly 200 comprises a child lock air guide piece 210 and a child lock switch piece 220. The child lock air guide piece 210 is connected with the base 100, at least part of the child lock air guide piece 210 is located in the shell, and the child lock air guide piece 210 has a first child lock channel 202 which is in communication with the inside of the shell. The child lock switch piece 220 is movably connected with the base 100, the child lock switch piece 220 is located on the side of the base 100 away from the child lock air guide piece 210 and covers the child lock track through hole 102, the child lock switch piece 220 is arranged in the child lock track through hole 102 and is in sliding abutment with the child lock air guide piece 210, and the child lock switch piece 220 has a second child lock channel 204. The second child lock channel 204 is used to be isolated from the first child lock channel 202 when locked.
[0029] In the present embodiment, in the locked state, the second child lock passage 204 is not communicated with the first child lock passage 202; while in the unlocked state, the second child lock passage 204 needs to be aligned with the first child lock passage 202 by moving the child lock switch 220 to a specified position, so that the second child lock passage 204 and the first child lock passage 202 are communicated with each other, thereby forming an air inlet passage together, facilitating the communication between the inside and outside of the electronic atomizer, thereby facilitating the introduction of gas into the electronic atomizer, and realizing the unlocking of the airway of the electronic atomizer.
[0030] In another embodiment, the child lock track through-hole has a specific track shape, for example, the child lock track through-hole has a "Z" shape structure; or for example, the child lock track through-hole has an "X" shape structure. In this way, only when the child lock switch moves to a specified position of the child lock track through-hole, i.e. moves along a specified track trajectory, can the second child lock passage be communicated with the first child lock passage, so as to improve the unlocking difficulty of the atomization child lock structure, and effectively reduce the probability of mistaken opening of the atomization child lock structure.
[0031] In one of the embodiments, referring to Figure 2 , the projection area of the child lock switch 220 on the base 100 is greater than the through-hole area of the child lock track through-hole 102. In the present embodiment, the child lock switch 220 is arranged on the base 100, and the child lock switch 220 slides on the base 100, and the child lock switch 220 is used to communicate with the first child lock passage 202 through the second child lock passage 204 thereon to form an air guide passage. Only one air guide passage is formed between the child lock switch 220 and the child lock air guide 210, i.e. formed when the child lock switch 220 moves to a specified position, and the child lock track through-hole 102 is also arranged on the base 100 and needs to be kept closed for a long time. The projection area of the child lock switch 220 on the base 100 is designed to be greater than the through-hole area of the child lock track through-hole 102, specifically, the child lock switch 220 always covers the child lock track through-hole 102 completely, at this time, the child lock switch 220 can also avoid the opening of the child lock track through-hole 102 when it slides on the base 100, thereby ensuring that the first child lock passage 202 is not communicated with the outside in the locked state.
[0032] In another embodiment, the projection area of the child lock switch piece 220 on the base 100 is much larger than the through hole area of the child lock track through hole 102, specifically, the ratio of the projection area of the child lock switch piece 220 on the base 100 to the through hole area of the child lock track through hole 102 is 5 to 10. In yet another embodiment, the ratio of the projection area of the child lock switch piece 220 on the base 100 to the through hole area of the child lock track through hole 102 is 8.3.
[0033] In one of the embodiments, referring to Figure 2 , the child lock switch piece 220 has a sliding abutting surface, which is arranged parallel to the base 100, and is attached to the base 100. In this embodiment, the sliding abutting surface is located on the side of the child lock switch piece 220 close to the base 100, and is used to slide against the base 100 to facilitate the movement of the child lock switch piece 220 on the base 100. The arrangement of the sliding abutting surface parallel to the base 100 ensures the smoothness of the movement of the child lock switch piece 220 on the base 100, further ensures that the child lock switch piece 220 is always attached to the base 100, and further ensures that the child lock switch piece 220 always completely covers the child lock track through hole 102.
[0034] In one of the embodiments, referring to Figure 2 , the child lock switch piece 220 includes a switch sliding plate 222 and a switch sliding rod 224 connected to each other, the switch sliding plate 222 slides against the base 100, and the switch sliding rod 224 is arranged in the child lock track through hole 102 and abuts against the child lock air guide piece 210. In this embodiment, the switch sliding plate 222 slides against the base 100, i.e. the switch sliding plate 222 is parallel to the base 100, which facilitates the movement of the switch sliding plate 222 and the switch sliding rod 224 in the child lock track through hole 102. Part of the switch sliding rod 224 is located in the child lock track through hole 102, i.e. the switch sliding rod 224 passes through the child lock track through hole 102, and the end of the switch sliding rod 224 slides against the child lock air guide piece 210. The switch sliding rod 224 serves as a sliding limiting rod for the switch sliding plate 222 on the base 100, which facilitates the limitation of the switch sliding rod 224 in the movable area of the child lock track through hole 102, and thus facilitates the limitation of the movement track of the child lock switch piece 220.
[0035] Further, referring to Figure 2The switch sliding plate 222 is provided with a first through hole 206, and the switch sliding rod 224 is provided with a second through hole 208 in communication with the first through hole 206, and the first through hole 206 and the second through hole 208 form the second child lock passage 204. In this embodiment, the first through hole 206 is located on the switch sliding plate 222, and the second through hole 208 is located on the switch sliding rod 224, and the second through hole 208 is in communication with the first through hole 206, so that the first through hole 206 and the second through hole 208 together form the second child lock passage 204, thereby facilitating the formation of an air passage in communication with the first child lock passage 202 in the child lock switch 220.
[0036] Further, referring to Figure 3 The second child lock passage 204 is provided on the switch sliding plate 222. In this embodiment, the switch sliding plate 222 is provided with the second child lock passage 204, that is, the switch sliding plate 222 is provided with an air passage in communication with the first child lock passage 202. Specifically, when locked, the second child lock passage 204 is always isolated from the first child lock passage 202; and when unlocked, the second child lock passage 204 is in communication with the first child lock passage 202. In this way, when the switch sliding plate 222 is not moved to the designated position, the second child lock passage 204 is misaligned with the first child lock passage 202 to block the air inlet passage of the atomization child lock structure; when the switch sliding plate 222 is moved to the designated position, the second child lock passage 204 is aligned with the first child lock passage 202 to open the air inlet passage of the atomization child lock structure.
[0037] Further, referring to Figure 2The child lock guide 210 is provided with a sliding groove 201 in communication with the first child lock passage 202 and the child lock track through hole 102, and a part of the switch sliding rod 224 is slidingly arranged in the sliding groove 201. In this embodiment, the sliding groove 201 is located on the child lock guide 210, and the opening of the sliding groove 201 faces the child lock switch 220, so as to facilitate the accommodation of a part of the switch sliding rod 224 therein. The sliding groove 201 is in communication with the child lock track through hole 102, so that when the switch sliding rod 224 moves in the child lock track through hole 102, the sliding groove 201 serves as a movable space for the end of the switch sliding rod 224, that is, the sliding groove 201 serves as a movable area of the switch sliding rod 224, and the child lock track through hole 102 limits the movement of the switch sliding rod 224. In another embodiment, the child lock switch 220 further comprises a pressing plate connected with the switch sliding rod 224, the pressing plate is arranged opposite to the switch sliding plate 222, the pressing plate and the switch sliding plate 222 jointly clamp the base 100, and the pressing plate is located in the sliding groove 201. The opening of the sliding groove 201 is larger than the hole diameter of the child lock track through hole 102.
[0038] Further, the diameter of the sliding groove 201 is equal to the diameter of the switch sliding rod 224. In this embodiment, the end of the switch sliding rod 224 moves in the sliding groove 201, and the diameter of the switch sliding rod 224 is equal to the diameter of the sliding groove 201, so that the switch sliding rod 224 slidingly abuts against the side wall of the sliding groove 201, and the side wall of the sliding groove 201 clamps the switch sliding rod 224, so as to improve the stability of the switch sliding rod 224 sliding in the sliding groove 201.
[0039] It can be understood that, during the movement of the child lock switch 220, there is a possibility of movement track, that is, under the limitation of the child lock track through hole 102, there is a certain probability of mistakenly opening the child lock, which is easy to cause the atomization child lock structure to be opened unintentionally, thereby causing the unlocking difficulty to be low.
[0040] In order to improve the unlocking difficulty of the atomization child lock structure, please refer to Figure 4The switch slide rod 224 comprises a first slide rod 2242 connected with the switch slide plate 222 and a second slide rod 2244, one end of the first slide rod 2242 away from the switch slide plate 222 is in sliding abutment with the child lock air guide piece 210, the first end of the second slide rod 2244 is connected with the first slide rod 2242, and the second end of the second slide rod 2244 is in sliding abutment with the child lock air guide piece 210. The first slide rod 2242 is provided with a first air guide hole 203 in communication with the first through hole 206, and the second slide rod 2244 is provided with a second air guide hole 205 in communication with the first air guide hole 203, and the first air guide hole 203 and the second air guide hole 205 jointly form the second through hole 208. In the embodiment, the first slide rod 2242 serves as the main slide rod of the switch slide rod 224, that is, the first slide rod 2242 is used for supporting the switch slide plate 222 to slide on the base 100, so that the switch slide plate 222 always covers the child lock track through hole 102, and the first slide rod 2242 is provided with the first air guide hole 203 in communication with the first through hole 206, so as to facilitate the introduction of external air into the first slide rod 2242. The second slide rod 2244 serves as the auxiliary slide rod of the switch slide rod 224, that is, the second slide rod 2244 is used for assisting the switch slide plate 222 to slide on the base 100, so as to further ensure that the switch slide plate 222 always covers the child lock track through hole 102, and the second slide rod 2244 is provided with the second air guide hole 205 in communication with the first air guide hole 203, so as to facilitate the introduction of external air into the first child lock passage 202 through the first air guide hole 203 and the second air guide hole 205. Since the air outlet end of the second slide rod 2244 is away from the first slide rod 2242, that is, one end of the second slide rod 2244 away from the first slide rod 2242 is in abutment with the child lock air guide piece 210, specifically, the switch slide rod 224 has an "h" shape structure, and the second air guide hole 205 of the second slide rod 2244 introduces external air. In this way, after the switch slide rod 224 moves to a specified position, the first slide rod 2242 needs to be rotated, so that the second slide rod 2244 rotates around the first slide rod 2242 as the center axis, so as to align the second slide rod 2244 with the first child lock passage 202, so that the second child lock passage 204 communicates with the first child lock passage 202, thereby realizing unlocking in two modes of movement and rotation, improving the unlocking difficulty of the atomization child lock structure, and effectively reducing the probability of accidental opening.
[0041] Further, when the atomization child lock structure is locked idle, although the second child lock channel 204 is isolated from the first child lock channel 202, the second child lock channel 204 is still in long-term communication with the external environment, which is easy to cause dust in the external environment to enter the interior through the first air guide hole 203 and the second air guide hole 205, resulting in deposition of stains in the interior of the atomization child lock structure to block the second child lock channel 204.
[0042] In order to reduce the blockage of the second child lock channel 204, please refer to Figure 4 The first sliding rod 2242 has a dust collection accommodation groove 207 in communication with the first air guide hole 203, the opening of the dust collection accommodation groove 207 faces away from one side of the child lock air guide piece 210, the dust collection accommodation groove 207 is aligned with the first air guide hole 203, and the dust collection accommodation groove 207 is used to collect dust in the external environment. In this embodiment, the dust collection accommodation groove 207 is opened in the first sliding rod 2242, the dust collection accommodation groove 207 is in communication with the first air guide hole 203, and the dust collection accommodation groove 207 and the first air guide hole 203 form a dust collection channel, that is, the dust collection accommodation groove 207 is in communication with the outside through the first air guide hole 203, and dust from the outside can fall into the dust collection accommodation groove 207 through the first air guide hole 203, so that the dust collection accommodation groove 207 can collect dust in the external environment, so that dust entering the interior of the atomization child lock structure is mainly deposited in the dust collection accommodation groove 207, effectively reducing the probability of external dust entering the second air guide hole 205, thereby effectively reducing the blockage of the second child lock channel 204.
[0043] Further, after the first sliding rod 2242 moves to the designated position, the switch sliding plate 222 also needs to be rotated so that the second air guide hole 205 of the second sliding rod 2244 is in communication with the first child lock channel 202. In order to facilitate identification of the rotation angle of the switch sliding plate 222, so that the rotation of the switch sliding plate 222 is more convenient, please refer to Figure 1 The switch sliding plate 222 includes a plate body 2222 and a first identification part 2224, the plate body 2222 is slidingly arranged on the base 100, the first identification part 2224 is connected with the plate body 2222, the first identification part 2224 is arranged away from the first sliding rod 2242, and the first identification part 2224 corresponds to the second sliding rod 2244, and the atomization child lock structure 10 further includes a second identification part 300 connected with the base 100, the second identification part 300 is located between the base 100 and the plate body 2222, the second identification part 300 is arranged corresponding to the first child lock channel 202, and the second identification part 300 is used to be exposed when the first sliding rod 2242 moves to the designated position.
[0044] In the embodiment, the first identification part 2224 is located on the side of the plate body 2222 away from the base 100, facilitating the first identification part 2224 to be identified and found. The first identification part 2224 corresponds to the second slide rod 2244, so that when the plate body 2222 rotates, the rotation angle of the first identification part 2224 is equal to that of the second slide rod 2244, ensuring that the first identification part 2224 rotates the same as the second slide rod 2244. The second identification part 300 is arranged on the side of the base 100 close to the plate body 2222. The second identification part 300 corresponds to the first child lock passage 202, and the second identification part 300 is the equivalent position of the first child lock passage 202 on the base 100. When locked, the second identification part 300 is covered by the plate body 2222, and there is no need to display the second identification part 300. When the first slide rod 2242 moves to the specified position, i.e. when unlocking, the plate body 2222 no longer covers the second identification part 300, so that the second identification part 300 is exposed, facilitating the alignment with the first identification part 2224, thereby facilitating the quick rotation of the plate body 2222 according to the relative position between the first identification part 2224 and the second identification part 300, so that the second guide hole 205 of the second slide rod 2244 communicates with the first child lock passage 202, realizing the quick rotation and unlocking of the atomization child lock structure. The atomization child lock structure is unlocked by the double modes of movement and rotation, so that the unlocking difficulty of the atomization child lock structure is further increased, and the probability of false unlocking of the atomization child lock structure is further reduced.
[0045] In one of the embodiments, the application further provides an electronic atomizer comprising the atomizing child lock structure as described in any of the above embodiments. In this embodiment, the atomizing child lock structure comprises a base and a child lock assembly. The base is configured to be connected with a housing of the electronic atomizer, and the base is provided with a child lock track through hole. The child lock assembly comprises a child lock air guide member and a child lock switch member. The child lock air guide member is connected with the base, at least a part of the child lock air guide member is located in the housing, and the child lock air guide member has a first child lock passage which is in communication with the inside of the housing. The child lock switch member is movably connected with the base, and the child lock switch member is located on a side of the base which is away from the child lock air guide member and covers the child lock track through hole. The child lock switch member is arranged in the child lock track through hole and is in sliding abutment with the child lock air guide member. The child lock switch member has a second child lock passage. The second child lock passage is configured to be isolated from the first child lock passage when the child lock is locked. In the locked state, the second child lock passage is not in communication with the first child lock passage. When unlocked, the child lock switch member needs to be moved to a specified position to align the second child lock passage with the first child lock passage, so that the second child lock passage and the first child lock passage are in communication with each other, thereby forming an air inlet passage together, which facilitates the communication between the inside of the electronic atomizer and the outside environment, thereby facilitating the introduction of gas into the inside of the electronic atomizer and achieving the unlocking of the air passage of the electronic atomizer.
[0046] The above embodiments only express several embodiments of the application, and the description is more specific and detailed, but it cannot be understood as a limitation on the scope of the patent. It should be noted that for ordinary skilled in the art, without departing from the concept of the application, a number of modifications and improvements can be made, which are within the scope of the application. Therefore, the protection scope of the patent of the application should be subject to the appended claims.
Claims
1. A misting child lock structure, characterized in that, include: A base for connecting to the housing of an electronic atomizer, the base having a child lock track through hole; A child lock assembly includes a child lock vent and a child lock switch. The child lock vent is connected to the base, and at least a portion of the vent is located within the housing. The vent has a first child lock channel communicating with the interior of the housing. The child lock switch is movably connected to the base, located on the side of the base opposite to the vent and covering the child lock track through-hole. The switch passes through the track through-hole and slides against the vent. The switch has a second child lock channel, which is isolated from the first channel when locked. The switch also has a sliding contact surface, which is parallel to the base and fits against it. The child lock switch includes a switch slide plate and a switch slide rod connected to each other. The switch slide plate slides against the base, and the switch slide rod passes through the child lock track through hole and abuts against the child lock air guide. The second child lock channel is opened on the switch slide plate. The switch slide plate has a first through hole, and the switch slide rod has a second through hole communicating with the first through hole. The first through hole and the second through hole form the second child lock channel.
2. The atomizing child lock structure according to claim 1, characterized in that, The projected area of the child lock switch on the base is larger than the through-hole area of the child lock track through hole.
3. The atomizing child lock structure according to claim 2, characterized in that, The ratio of the projected area of the child lock switch on the base to the through area of the child lock track through hole is 5 to 10.
4. The atomizing child lock structure according to claim 1, characterized in that, The child lock air guide is provided with a sliding groove that communicates with the first child lock channel. The sliding groove is also communicated with the child lock track through hole. Part of the switch slide rod is slidably disposed in the sliding groove.
5. The atomizing child lock structure according to claim 4, characterized in that, The diameter of the sliding groove is equal to the diameter of the switch slide rod.
6. An electronic atomizer, characterized in that, Includes the atomized child lock structure as described in any one of claims 1 to 5.
Citation Information
Patent Citations
Atomization child lock structure and electronic atomizer
CN217958758U