Atomizer

By designing a atomizer containing a housing, atomization assembly, elastic parts and locking parts, the problems of easy self-starting and oil consumption of traditional atomizers are solved, and the effect of convenient activation and safe use of oil is achieved.

CN119999961APending Publication Date: 2025-05-16HUMBLE GRACE LTD
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Patent Information

Application Number
CN202311529697.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-11-15
Publication Date
2025-05-16

AI Technical Summary

Technical Problem

Traditional atomizers are prone to self-starting before use, resulting in dangerous events such as explosions and spontaneous combustion, and the oil is easily consumed, affecting the user experience.

Method used

A atomizer is designed, including a housing, an atomization assembly, an elastic member and a locking member. The atomization assembly is isolated from the liquid storage chamber in a locked state and is inconvenient to the liquid storage chamber in a working state. Through the cooperation of the locking member and the elastic member, the atomization assembly is achieved convenient activation.

Benefits of technology

It realizes convenient activation of the atomizer, reduces damage or activation failure caused by unstable user use force, and ensures the safe and effective use of the oil.

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Abstract

The invention provides an atomizer. The atomizer comprises a shell, an atomizing assembly, an elastic piece and a locking piece. A liquid storage bin is arranged in the shell; the atomization assembly at least comprises a locking state and a working state; when the atomization assembly is in the locking state, the atomization assembly is isolated from the liquid storage bin; when the atomization assembly is in the working state, the atomization assembly is communicated with the liquid storage bin; the locking piece is used for limiting the atomization assembly to be in a locking state and is configured to slide relative to the shell so as to release limitation on the atomization assembly; and the elastic piece is configured to drive the atomization assembly to move and switch to a working state when the locking piece relieves limitation on the atomization assembly, so that the atomization assembly is communicated with the liquid storage bin. The activation process of the atomizer is simple and convenient, the force borne by the atomizer when the atomizer is activated is proper, and the situation that the atomizer is damaged or the atomizer fails to be activated due to the fact that the use force of a user is unstable is reduced.
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Description

Technical Field

[0001] The present invention relates to the technical field of electronic atomization, and in particular to an atomizer. Background Art

[0002] The atomizer can atomize the oil to form smoke that can be inhaled by the user. In traditional atomizers, the oil can enter the atomization tube before use, which is prone to self-starting and causing dangerous events such as explosion and spontaneous combustion, especially during transportation and storage. In addition, it is also easy for the oil to be consumed before the atomizer is used, resulting in oil waste, and even consuming the e-liquid, and affecting the subsequent user experience.

[0003] To solve the above problems, the atomizer can separate the oil and the atomizer tube in advance, and then activate it when needed to allow the oil to enter the atomizer tube, so that normal suction can be achieved. At present, it is mainly activated by manually pushing up or pressing down the atomizer tube, but different users have different activation strengths. If the pressing force is not enough, the activation effect cannot be achieved, or if the atomizer is damaged by excessive force, etc. Summary of the invention

[0004] The present application provides an atomizer, which allows users to complete the activation process more conveniently. At the same time, the force applied to the atomizer when it is activated is more appropriate, which can reduce the situation where the atomizer is damaged or the activation of the cigarette cartridge fails due to unstable force used by the user.

[0005] To solve the above technical problems, the present application provides an atomizer, comprising: a shell, an atomizing assembly, an elastic member and a locking member; a liquid storage tank is arranged in the shell; the atomizing assembly at least comprises a locking state and a working state; when the atomizing assembly is in the locking state, the atomizing assembly is isolated from the liquid storage tank; when the atomizing assembly is in the working state, the atomizing assembly is connected to the liquid storage tank; the locking member is used to limit the atomizing assembly in the locking state, and the locking member is configured to be able to slide relative to the shell, thereby releasing the restriction on the atomizing assembly; the elastic member is configured to drive the atomizing assembly to move and switch to the working state when the locking member releases the restriction on the atomizing assembly, so as to make the atomizing tank and the liquid storage tank connected.

[0006] In some embodiments, the liquid storage tank stores oil, the atomizer assembly has an oil inlet hole, and the atomizer assembly is partially disposed in the liquid storage tank; when the atomizer assembly is in the locked state, the oil inlet hole is located at a portion of the atomizer assembly that is not in contact with the oil, so that the oil inlet hole is not connected to the liquid storage tank; when the atomizer assembly is in the working state, the oil inlet hole is located at a portion of the atomizer assembly that is in contact with the oil, so that the oil inlet hole is connected to the liquid storage tank.

[0007] In some embodiments, the atomization assembly includes: an atomization bin and a pushing portion, wherein the pushing portion is disposed on a side of the atomization bin away from the liquid storage bin, and the pushing portion is close to a side of the atomization bin to support the atomization bin to move from the locked state to the working state.

[0008] In some embodiments, the shell further includes a base; the pushing portion is disposed in the base, the pushing portion slides along a side wall of the base, and the base is configured to limit a lateral movement range of the pushing portion.

[0009] In some embodiments, the atomizer further includes a sealing seat; the atomization bin penetrates the sealing seat and moves relative to the sealing seat; the sealing seat blocks a side of the liquid storage bin close to the atomization assembly.

[0010] In some embodiments, the oil inlet hole is arranged in the atomization bin; the sealing seat is a silicone seat, and the atomization assembly is interference fit with the silicone seat; when the atomization assembly is in the locked state, the oil inlet hole is located in the sealing seat to achieve oil core isolation.

[0011] In some embodiments, the atomizer assembly is provided with a first mating portion, and the locking member is provided with a second mating portion, and the second mating portion is configured to be snap-fitted with the first mating portion and to slide relatively therewith; when the first mating portion and the second mating portion are snap-fitted, the locking member restricts the atomizer assembly to the locked state; when the first mating portion and the second mating portion slide relatively to separate from each other, the locking member releases the restriction on the atomizer assembly.

[0012] In some embodiments, the locking member is provided with a sliding groove, the sliding groove includes at least a snap-in section and a disengagement section, the snap-in section is provided with the second matching portion; the first matching portion slides in the sliding groove; when the first matching portion is located in the snap-in section, the first matching portion is snap-fitted with the second matching portion, and when the first matching portion slides away from the snap-in section, the first matching portion and the second matching portion are separated, and the locking member releases the restriction on the atomization assembly.

[0013] In some embodiments, when the atomizer assembly is in the locked state, the elastic member is compressed between the housing and the atomizer assembly, and two ends of the elastic member are respectively abutted against the housing and the atomizer assembly.

[0014] In some embodiments, the locking member is provided with a push plate for driving the locking member to slide, the push plate is partially exposed outside the shell, and a limiting structure for limiting the sliding range of the push plate is provided on the shell.

[0015] In some embodiments, a moving distance of the push plate relative to the housing is greater than a relative sliding distance of the first mating portion and the second mating portion when the atomizer assembly switches from the locked state to the working state.

[0016] The atomizer provided in the present application includes a housing, an atomizer assembly, an elastic member and a locking member, wherein the locking member is configured to slide relative to the housing, thereby releasing the position restriction on the atomizer assembly, and the elastic member is configured to drive the atomizer assembly to switch to the working state when the locking member releases the position restriction on the atomizer assembly. Before using the atomizer, the user only needs to turn the locking member so that the locking member slides relative to the housing to complete the activation of the atomizer and achieve a normal suction state. The user does not need to use much force, and the operation is relatively simple. At the same time, after the user turns the locking member, the atomizer relies on the elastic force of the elastic member to push the atomizer assembly to complete the activation, so that the force applied to the atomizer when it is activated is more appropriate, reducing the situation where the atomizer is damaged or the atomizer activation fails due to the unstable force used by the user. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work. Among them:

[0018] Figure 1 A schematic structural diagram of the front side of the atomizer provided in some embodiments of the present application when the atomizer is not activated;

[0019] Figure 2 A schematic diagram of the structure of the front side of the atomizer after the atomizer provided in some embodiments of the present application is activated;

[0020] Figure 3 An exploded view of a partial structure of an atomizer provided in some embodiments of the present application;

[0021] Figure 4 A schematic diagram of the structure of a pushing portion provided in some embodiments of the present application;

[0022] Figure 5 A schematic diagram of the structure of a locking member close to a pushing portion provided in some embodiments of the present application;

[0023] Figure 6 A schematic diagram of the structure of a locking member provided in some embodiments of the present application, which is away from the pushing portion;

[0024] Figure 7A schematic structural diagram of the side surface of the atomizer provided in some embodiments of the present application when the atomizer is not activated. DETAILED DESCRIPTION

[0025] The following will be combined with the drawings in the embodiments of the present application to clearly and completely describe the technical solutions in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of this application.

[0026] The terms "first" and "second" in this application are used for descriptive purposes only and should not be understood as indicating or implying relative importance or implicitly indicating the number of technical features indicated. Therefore, a feature defined as "first" or "second" may explicitly or implicitly include at least one of the features. In the description of this application, the meaning of "plurality" is at least two, such as two, three, etc., unless otherwise clearly and specifically defined.

[0027] All directional indications in the embodiments of the present application (such as up, down, left, right, front, back, top, bottom...) are only used to explain the relative position relationship, movement status, etc. between the components in a certain specific posture (as shown in the accompanying drawings). If the specific posture changes, the directional indication will also change accordingly.

[0028] In addition, the terms "include" and "have" and any variations thereof are intended to cover non-exclusive inclusions. For example, a process, method, system, product or device comprising a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products or devices.

[0029] Unless otherwise defined, the term “substantially” mentioned in this application, with respect to numerical quantities or quantitative relationships, can be understood as a range of approximately ±15% of a certain numerical value.

[0030] Reference to "embodiments" herein means that a particular feature, structure, or characteristic described in conjunction with the embodiments may be included in at least one embodiment of the present application. The appearance of the phrase in various locations in the specification does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment that is mutually exclusive with other embodiments. It is explicitly and implicitly understood by those skilled in the art that the embodiments described herein may be combined with other embodiments.

[0031] The "atomizer" mentioned in this article does not limit the type of atomization device it is used for, that is, the "atomizer" mentioned in this article can be used for an oil-filled atomization device, a cartridge-changing atomization device, or other types of atomization devices.

[0032] In the prior art, before using the atomizer, the user needs to manually push the base upward or press the nozzle downward to activate the oil core separation structure, connect the oil inlet hole and the oil tank, and then allow the oil to enter the atomization tube for atomization, so that normal suction can be achieved. However, this activation method is inconvenient to operate, and it is easy to cause the atomizer to fail to activate due to improper pushing or pressing. On the other hand, when the pushing or pressing force is too strong, it is easy to cause hidden dangers or damage to the atomizer.

[0033] Reference Figure 1-3 , Figure 1 A schematic structural diagram of the front side of the atomizer provided in some embodiments of the present application when the atomizer is not activated; Figure 2 A schematic diagram of the structure of the front side of the atomizer after the atomizer provided in some embodiments of the present application is activated; Figure 3 Exploded diagram of the partial structure of the atomizer provided in some embodiments of the present application. To solve the above problems, the present application provides an atomizer 100, including a housing 110, an atomizer assembly 120, an elastic member 130 and a locking member 140. The housing 110 is provided with a liquid storage tank 111, and the liquid storage tank 111 stores oil. The atomizer assembly 120 includes Figure 1 The locked state shown and Figure 2 In the working state shown, when the atomizer assembly 120 is in the locked state, the atomizer assembly 120 is isolated from the liquid storage tank 111, and when the atomizer assembly 120 is in the working state, the atomizer assembly 120 is connected to the liquid storage tank 111. The locking member 140 is used to limit the atomizer assembly 120 in the locked state. The elastic member 130 is configured to drive the atomizer assembly 120 to switch to the working state when the locking member 140 releases the restriction on the atomizer assembly 120, so that the atomizer assembly 120 is connected to the liquid storage tank 111. In this embodiment, the locking member 140 can move relative to the housing 110 in the y direction, thereby releasing the restriction on the atomizer assembly 120; the elastic member 130 pushes the atomizer assembly 120 to move relative to the housing 110 in the z direction, switching from the locked state to the working state. In other embodiments, the locking member 140 , the elastic member 130 , and the atomizing assembly 120 may also be in other cooperative movement relationships, as long as the atomizing assembly 120 can be switched from the locking state to the working state.

[0034] See also Figure 1-2In some embodiments, the atomizer assembly 120 has an oil inlet hole 121 , and a portion of the atomizer assembly 120 is disposed in the liquid storage tank 111 . Before the user uses the atomizer 100, that is, when the atomizer 100 is not activated, the atomizer assembly 120 is in a locked state, and the oil inlet hole 121 is located on the side of the liquid storage tank 111 away from the oil, and is not connected to the liquid storage tank 111; when the user turns the locking member 140 to move the locking member 140 relative to the shell 110 along the y direction, the locking member 140 releases the position restriction on the atomizer assembly 120, and the elastic member 130 pushes the atomizer assembly 120 to move along the z direction, so that the atomizer assembly 120 switches to the working state, so that the oil inlet hole 121 is located on the side of the liquid storage tank 111 where the oil is stored, and is connected to the liquid storage tank 111, so that the oil in the liquid storage tank 111 can enter the atomizer assembly 120 from the liquid storage tank 111 through the oil inlet hole 121, thereby activating the atomizer 100. In other embodiments, the locking member 140 and the atomizer assembly 120 may also move relative to the housing 110 in other directions, and the moving directions of the locking member 140 and the atomizer assembly 120 relative to the housing 110 are not limited herein.

[0035] In some embodiments, the atomization assembly 120 includes an atomization bin 122 and a pushing portion 123. The pushing portion 123 is disposed on a side of the atomization bin 122 away from the liquid storage bin 111. The pushing portion 123 supports the atomization bin 122 on a side close to the atomization bin 122 to move from a locked state to a working state.

[0036] In some embodiments, when the atomizer assembly 120 is in the locked state, the elastic member 130 is compressed between the housing 110 and the atomizer assembly 120, and two ends of the elastic member 130 are respectively abutted against the housing 110 and the atomizer assembly 120. Figure 1-4 , Figure 4A schematic diagram of the structure of the pushing portion provided for some embodiments of the present application. In some embodiments, the atomization bin 122 is partially disposed in the liquid storage bin 111, and the portion of the atomization bin 122 disposed in the liquid storage bin 111 is in contact with the oil in the liquid storage bin 111. In the present embodiment, the pushing portion 123 includes a supporting portion 1231 and a vent pipe 1232. The supporting portion 1231 is provided with an annular groove 01 on one side close to the atomization bin 122, and the width and diameter of the annular groove 01 are adapted to the width and diameter of the atomization bin 122, so that the atomization bin 122 is disposed in the annular groove 01 at one end close to the pushing portion 123, and the annular groove 01 supports the atomization bin 122 to move. The supporting portion 1231 abuts against the elastic member 130 on the side away from the atomization tube 122. In the present embodiment, the elastic member 130 is a spring. To facilitate the fixing of the position of the spring against the pusher 123, a first limiting portion 02 is provided on the side of the support portion 1231 away from the atomization bin 122. The first limiting portion 02 is an arc structure and extends in the direction of the support portion 1231 away from the atomization bin 122. The inner diameter of the first limiting portion 02 is adapted to the outer diameter of the spring. The first limiting portion 02 surrounds the spring near one end of the atomization bin 122. When the spring deforms and pushes the atomization assembly 120 to move, the position of the spring will not move relative to the pusher 123, so that the direction of the thrust generated by the spring is consistent with the direction of movement of the atomization assembly 120, thereby making the activation process more stable. The vent pipe 1232 is a hollow structure and is connected to the atomization bin 122, and the vent pipe 1232 partially extends into the atomization bin 122. The vent pipe 1232 is locked with the locking member 140 at one end away from the support portion 1231. In other embodiments, the atomization chamber 122 and the pushing portion 123 of the atomization assembly 120 may also be configured as other matching structures as long as they do not affect the switching of the atomization assembly 120 from the locked state to the working state.

[0037] Continue to see Figure 1-3In some embodiments, the housing 110 further includes a base 112, the base 112 is arranged on the side of the housing 110 away from the liquid storage tank 111, the pusher 123 is arranged in the base 112, and the pusher 123 slides along the side wall of the base 112 in the z direction, and the base 112 is configured to limit the lateral movement range of the pusher 112. In this embodiment, the elastic member 130 is a spring. In order to facilitate the fixing of the position of the spring against the base 112, the base 112 is provided with a second limiting portion 1121 on the side close to the spring. The outer diameter of the second limiting portion 1121 is adapted to the inner diameter of the spring. Similarly, when the spring deforms and pushes the atomizer assembly 120 to move, the position of the spring will not move relative to the base 112, so that the direction of the thrust generated by the spring is consistent with the direction of movement of the atomizer assembly 120, thereby making the activation process more stable. Therefore, the spring limit is between the first limiting portion 02 and the second limiting portion 1121, that is, the spring limit is between the base 112 and the supporting portion 1231. In other embodiments, the elastic member 130 may be configured as other elastic structures, and the position and movement relationship between the elastic member 130 and the atomizer assembly 120 may also be configured as other structures as long as the atomizer assembly 120 is not affected from switching from the locked state to the working state.

[0038] Continue to see Figure 1-4 In some embodiments, the atomizer 100 further includes a sealing seat 160, the atomization chamber 122 passes through the sealing seat 160 and moves relative to the sealing seat 160, and the sealing seat 160 blocks the side of the liquid storage chamber 111 close to the atomization assembly 120, thereby preventing the oil from overflowing from between the side walls of the liquid storage chamber 111 and the atomization chamber 122 into the base 112.

[0039] In some embodiments, the oil inlet hole 121 is arranged in the atomization bin 122, the sealing seat 160 is a silicone seat, the atomization assembly 120 is interference fit with the silicone seat, and the silicone seat has good sealing, high and low temperature resistance and other properties. When the atomization assembly 120 is in a locked state, the oil inlet hole 121 is located in the sealing seat 160, which can achieve oil core isolation.

[0040] Continue to see Figure 1-4 In some embodiments, the atomizer assembly 120 is provided with a first matching portion 03. In this embodiment, the first matching portion 03 is provided at an end of the vent pipe 1232 away from the supporting portion 1231. Figure 5 , Figure 5A schematic diagram of the structure of the locking member close to the pushing portion provided in some embodiments of the present application. In some embodiments, the locking member 140 is provided with a second matching portion 143. The first matching portion 03 and the second matching portion 143 can be snap-fitted and relatively slidable. When the first matching portion 03 and the second matching portion 143 are snap-fitted, the locking member 140 restricts the atomizer assembly 120 in a locked state. When the first matching portion 03 and the second matching portion 143 slide relatively to separate from each other, the locking member 140 releases the restriction on the atomizer assembly 120.

[0041] Continue to see Figure 5 In some embodiments, the locking member 140 is provided with a sliding groove 145, and the sliding groove 145 at least includes a clamping section 1451 and a disengagement section 1452. The clamping section 1451 is provided with a second matching portion 143. The first matching portion 03 slides in the sliding groove 145. When the first matching portion 03 is located in the clamping stage 1451, the first matching portion 03 is clamped and matched with the second matching portion 143. When the first matching portion 03 slides off the clamping section 1451 and is located in the disengagement section 1452, the first matching portion 03 is separated from the second matching portion 143. At this time, the locking member 140 releases the restriction on the atomization assembly 120. In this embodiment, the locking member 140 includes a fixing plate 141 and a supporting plate 142. The shape of the fixing plate 141 is roughly rectangular, and the two sides with narrower width are arc structures. In other embodiments, in order to match the structure of the atomizer 100, the fixing plate 141 can also be a shaped structure. The support plate 142 is disposed on the same surface of the fixed plate 141 and extends in the same direction, the second matching portion 143 is disposed on the opposite surface of the support plate 142, and the space defined by the fixed plate 141 and the support plate 142 forms a sliding groove 145. In this embodiment, in order to improve the stability of the connection between the fixed plate 141 and the support plate 142, a side support plate 144 is further disposed on the side of the support plate 142 away from the second matching portion 143. The side support plate 144 is in the shape of a right triangle, and the two sides forming the right angle are respectively connected to the fixed plate 141 and the side of the support plate 142 away from the second matching portion 143, so as to prevent the support plate 142 from tilting during the activation process, thereby preventing the position of the second matching portion 143 from being offset.

[0042] See also Figure 1-2, the first matching portion 03 and the second matching portion 143 are adapted to achieve snap-fitting, and the second matching portion 143 can slide relative to the first matching portion 03 in the y direction. In some embodiments, when the atomizer assembly 120 is in the locked state, the first matching portion 03 is located in the snap-fit ​​section 1451, and snap-fits with the second matching portion 143, and the end of the vent pipe 1232 away from the supporting portion 1231 is located in the sliding groove 145. At this time, the elastic member 130 is in a compressed state, the oil inlet hole 121 is not connected to the liquid storage tank 111, and the oil in the liquid storage tank 111 cannot enter the atomizer tank 122 through the oil inlet hole 121 for atomization. When the locking member 140 slides relative to the housing 110 along the y direction, and the second matching portion 143 slides relative to the first matching portion 03 along the y direction, the first matching portion 03 disengages from the second matching portion 143 and moves from the clamping section 1451 to the disengaging section 1452. The elastic member 130 generates elastic force due to the compression and storage force, pushing the atomization assembly 120 to move along the z direction. At this time, the atomizer 100 switches to the working state, the elastic member 130 is in a relatively extended state, the vent pipe 1232 moves away from one end of the supporting portion 1231 to the base 112, the oil inlet hole 121 and the liquid storage tank 111 are in conduction, and the oil in the liquid storage tank 111 can enter the atomization tank 122 through the oil inlet hole 121 for atomization.

[0043] See also Figure 4 In some embodiments, the first matching portion 03 is a groove structure formed by the side wall of one end of the vent pipe 1232 away from the supporting portion 1231 being recessed into the vent pipe 1232. In this embodiment, the groove structure is arranged on two opposite sides of the vent pipe 1232. In other embodiments, the groove structure can also be arranged around the vent pipe 1232, or form other distributed structures, as long as it does not affect the snap-fitting of the first matching portion 03 and the second matching portion 143. Figure 5In some embodiments, the second matching portion 143 is a protruding structure extending relatively on the surface opposite to the support plate 142. Wherein, the length of the second matching portion 143 in the y direction can be adjusted according to the different structures of the atomizer 100, as long as it is ensured that when the locking member 140 slides relative to the housing 110, the first matching portion 03 is disengaged from the second matching portion 143, so that the spring 130 pushes the atomization assembly 120 to move. In other embodiments, the first matching portion 03 is a protruding structure extending from the side wall of one end of the vent pipe 1232 away from the support portion 1231 to the outside of the vent pipe 1232. Similarly, the protruding structure can be arranged on the opposite sides of the vent pipe 1232, and other distributed structures can also be formed according to different needs. Correspondingly, the second matching portion 143 is a groove structure formed by being recessed into the inside of the support plate 142 on the surface opposite to the support plate 142. The groove structure has the same length as the support plate 142 in the y direction. Similarly, the length of the support plate 142 in the y direction can be adjusted according to different structures of the atomizer 100, as long as it is ensured that when the locking member 140 slides relative to the housing 110, the first matching portion 03 is disengaged from the second matching portion 143, so that the spring 130 pushes the atomizer assembly 120 to move. In other embodiments, the first matching portion 03 and the second matching portion 143 can also be set to other structures, as long as they can achieve snap-fit ​​and can slide relative to each other.

[0044] See also Figure 6 , Figure 6 A schematic diagram of the structure of the locking member away from the side of the pushing portion provided for some embodiments of the present application. In some embodiments, the locking member 140 is provided with a push plate 146 for driving the locking member 140 to slide, and the push plate 146 is partially exposed to the outside of the housing 110. A limiting structure that limits the sliding range of the push plate 146 is provided on the housing 110. The user drives the locking member 140 to move relative to the housing 110 by toggling the push plate 146, thereby switching the atomizer assembly 120 from the locked state to the working state. In the present embodiment, the push plate 146 further includes a first push plate 1461 and a second push plate 1462. The first push plate 1461 is arranged on the surface of the fixed plate 141 away from the support plate 142, and the second push plate 1462 is arranged on the surface of the first push plate 1461 away from the fixed plate 141. In some embodiments, in order to increase the friction between the user's hand and the locking member 140, so as to facilitate the user to turn the locking member 140 to activate the atomizer 100, a non-slip stripe structure is provided on the side of the second push plate 1462 away from the first push plate 1461. Figure 7 , Figure 7 A schematic diagram of the structure of the side of the atomizer when the atomizer is not activated provided in some embodiments of the present application. In some embodiments, the width of the first push plate 1461 in the x direction is greater than that of the second push plate 1462, so that the locking member 140 is limited in the housing 110 and then slides relative to the housing 110. Figure 3 In this embodiment, the housing 110 further includes a limiting hole 113 for limiting the sliding range of the push plate 146, and is disposed at the bottom of the housing 110 near the base 112. In other embodiments, the push plate 146 may also be configured as other structures to slide with the housing 110, and the housing 110 may also be configured with other limiting structures to limit the sliding distance of the push plate 146, as long as it does not affect the switching of the atomizer assembly 120 from the locked state to the working state.

[0045] In some embodiments, the moving distance of the push plate 146 relative to the housing 110 is greater than the relative sliding distance of the first matching portion 03 and the second matching portion 143 when the atomizer assembly 120 switches from the locked state to the working state. This ensures that the sliding of the push plate 146 relative to the housing 110 can move the first matching portion 03 from the engaging section 1451 to the disengaging section 1452, thereby switching the atomizer assembly 120 to the working state. Figure 1-2 and Figure 7 In this embodiment, the shape of the fixing plate 141 is roughly rectangular, and the two narrower sides are arc structures. As can be seen from the figure, the x direction is the narrower side of the limiting hole 113 in the extension direction of the plane where the fixing plate 141 is located, and the y direction is the wider side of the limiting hole 113 in the extension direction of the plane where the fixing plate 141 is located. The width of the limiting hole 113 in the x direction is less than the width of the first push plate 1461 in the x direction, and is greater than or equal to the width of the second push plate 1462 in the x direction, so that the second push plate 1462 can slide in the y direction in the limiting hole 113, and then the locking member 140 slides relative to the housing 110 in the y direction within a limited width range. The widths of the first push plate 1461 and the second push plate 1462 in the y direction are the same, and are less than the width of the limiting hole 113 in the y direction. It should be noted that the difference between the width of the limiting hole 113 in the y direction and the width of the first push plate 1461 and the second push plate 1462 in the y direction is the range in which the locking member 140 can slide relative to the shell 110. The sliding range must satisfy the requirement that when the locking member 140 slides relative to the shell 110, the first matching portion 03 disengages from the second matching portion 143, thereby allowing the elastic member 130 to push the atomizer assembly 120 to move and achieve activation.

[0046] See also Figure 3-4In some embodiments, a first vent hole 114 is provided at the bottom of the housing 110 near the base 112, and the limiting hole 113 and the first vent hole 114 are located on the same side of the housing 110. A second vent hole 1122 is provided on the side of the base 112 away from the liquid storage bin 111. A third vent hole 04 is provided on the side wall of the vent pipe 1232. A nozzle 115 is formed at the end of the housing 110 away from the limiting hole 113, and a channel 1151 is formed inside the housing 110 for the nozzle 115, and the channel 1151 is connected to the atomization bin 122. When the atomizer 100 is in working condition, when the user uses the atomizer 100 to inhale gas, the gas enters the shell 110 through the first vent hole 114, enters the base 112 from the shell 110 through the second vent hole 1122, enters the ventilation pipe 1232 from the base 112 through the third vent hole 04, enters the atomization bin 122 through the ventilation pipe 1232, and finally enters the channel 1151 from the atomization bin 122 and is discharged from the channel 1151.

[0047] See also Figure 1-2 In some embodiments, the atomization bin 122 includes an oil storage cotton 1221, an oil guide cotton 1222, and a heating net 1223. The oil storage cotton 1221 is disposed on the inner wall of the atomization bin 122 and is connected to the oil inlet 121. The oil guide cotton 1222 is connected to the oil storage cotton 1221 and is disposed on the side of the oil storage cotton far away from the atomization tube 122. The heating net 1223 is connected to the oil guide cotton 1222 and is disposed on the side of the oil guide cotton far away from the oil storage cotton 1221. When the atomizer 100 is in working state, the liquid storage tank 111 is connected with the oil inlet hole 121, and the oil in the liquid storage tank 111 is sucked into the oil storage cotton 1221 through the oil inlet hole 121, and then sucked into the oil guide cotton 1222 through the oil storage cotton 1221. The oil in the oil guide cotton 1222 is heated and atomized by the heating net 1223, and finally enters the channel 1151 from the atomization tank 122, and is sucked from the channel 1151 by the user.

[0048] See also Figure 1-3 In some embodiments, to ensure the sealing of the atomizer 100, the atomizer 100 further includes a sealing sleeve 150 and a sealing ring 170. The sealing sleeve 150 is arranged between the end of the atomization bin 122 away from the base 112 and the channel 1151, and moves with the atomization bin 122. The sealing sleeve 150 can prevent the oil from overflowing between the liquid storage bin 111 and the end of the atomization bin 122 away from the base 112. The sealing ring 170 is arranged on the side of the base 112 away from the liquid storage bin 111, and the vent pipe 1232 passes through the sealing ring 170 and moves relative to the sealing ring 170. The sealing ring 170 can prevent the gas from entering the base 112 from the housing 110 between the base 112 and the vent pipe 1232. In this embodiment, the sealing ring 170 is arranged between the second limiting portion 1121 and the vent pipe 1232. In some embodiments, the sealing sleeve 150 is a silicone sleeve, and the sealing ring 170 is a silicone ring.

[0049] In some embodiments, the atomizer 100 further includes a battery cell 180, a gas sensing component 191, and a gas sensing component sealing sleeve 192. The battery cell 180 is disposed in the housing 110, the battery cell 180 provides electrical energy for the atomizer 100, and the battery cell 180 is electrically connected to the heating network 1223. The gas sensing component 191 is disposed in the base 112 and connected to the battery cell 180. When the user uses the atomizer 100, the gas sensing component 191 can sense the flow of gas and trigger the atomizer 100 to work. The gas sensing component sealing sleeve 192 is disposed around the gas sensing component 191 to ensure the airtightness of the gas sensing component 191. In some embodiments, the gas sensing component sealing sleeve 192 is a sealing sleeve.

[0050] The atomizer 100 provided in some embodiments of the present application is not activated when it leaves the factory, the atomizer 100 is in a locked state, the first matching portion 03 is engaged with the second matching portion 143, the elastic member 130 is in a compressed state, and the locking member 140 limits the position of the atomizer assembly 120, so that the oil inlet hole 121 is not connected to the liquid storage tank 111, and the oil in the liquid storage tank 111 cannot enter the atomizer tank 122 through the oil inlet hole 121 for atomization. When the user wants to use the atomizer 100, he only needs to turn the locking member 140 to make the locking member 140 slide relative to the housing 110, so that the first matching portion 03 is disengaged from the second matching portion 143, and the elastic member 130 generates elastic force due to compression and storage, pushing the atomizer assembly 120 to move, thereby making the oil inlet hole 121 connected to the liquid storage tank 111, that is, the atomizer assembly 120 is switched to the working state, and the atomizer 100 is activated. Therefore, the activation process of the atomizer 100 provided by the present application is relatively simple, and the user does not need to use much strength. At the same time, after the user turns the locking member 140, the atomizer 100 relies on the elastic force of the elastic member 130 to push the atomizing assembly 120 to complete the activation, so that the force applied to the atomizer 100 when being activated is relatively appropriate, reducing the situation where the atomizer 100 is damaged or the atomizer 100 fails to be activated due to the unstable strength of the user.

[0051] The above are only implementation methods of the present application, and are not intended to limit the patent scope of the present application. Any equivalent structure or equivalent process transformation made using the contents of the present application specification and drawings, or directly or indirectly used in other related technical fields, are also included in the patent protection scope of the present application.

Claims

1. An atomizer, characterized in that: include: A shell, an atomizing assembly, an elastic member and a locking member; a liquid storage tank is provided in the shell; The atomizer assembly at least includes a locked state and a working state; when the atomizer assembly is in the locked state, the atomizer assembly is isolated from the liquid storage tank; when the atomizer assembly is in the working state, the atomizer assembly is connected to the liquid storage tank; The locking member is used to limit the atomizer assembly to the locked state, and the locking member is configured to slide relative to the shell to release the restriction on the atomizer assembly; the elastic member is configured to drive the atomizer assembly to move and switch to the working state when the locking member releases the restriction on the atomizer assembly, so that the atomizer assembly is connected to the liquid storage tank.

2. The atomizer according to claim 1, characterized in that The liquid storage tank stores oil, the atomizing assembly has an oil inlet hole, and the atomizing assembly is partially disposed in the liquid storage tank; When the atomizer assembly is in the locked state, the oil inlet hole is located at a position of the atomizer assembly that is not in contact with the oil, so that the oil inlet hole is not connected to the liquid storage tank; when the atomizer assembly is in the working state, the oil inlet hole is located at a position of the atomizer assembly that is in contact with the oil, so that the oil inlet hole is connected to the liquid storage tank.

3. The atomizer according to claim 2, characterized in that The atomizing assembly comprises: An atomization bin and a pushing part, wherein the pushing part is arranged on a side of the atomization bin away from the liquid storage bin, and the pushing part is close to the atomization bin to support the atomization bin to move from the locked state to the working state.

4. The atomizer according to claim 3, characterized in that: The housing further includes a base; the pushing portion is disposed in the base, the pushing portion slides along a side wall of the base, and the base is configured to limit a lateral movement range of the pushing portion.

5. The atomizer according to claim 3, characterized in that It also includes a sealing seat; the atomization bin penetrates the sealing seat and moves relative to the sealing seat; the sealing seat blocks the side of the liquid storage bin close to the atomization assembly.

6. The atomizer according to claim 5, characterized in that The oil inlet hole is arranged in the atomization bin; the sealing seat is a silicone seat, and the atomization assembly is interference fit with the silicone seat; when the atomization assembly is in the locked state, the oil inlet hole is located in the sealing seat to achieve oil core isolation.

7. The atomizer according to any one of claims 1 to 6, characterized in that: The atomizing assembly is provided with a first matching portion, and the locking member is provided with a second matching portion, wherein the second matching portion is configured to be snap-fitted with and relatively slidable with the first matching portion; When the first matching portion and the second matching portion are engaged with each other, the locking member restricts the atomizer assembly in the locked state; when the first matching portion and the second matching portion slide relative to each other to separate from each other, the locking member releases the restriction on the atomizer assembly.

8. The atomizer according to claim 7, characterized in that The locking member is provided with a sliding groove, and the sliding groove at least includes a snap-in section and a disengagement section, and the snap-in section is provided with the second matching portion; the first matching portion slides in the sliding groove; when the first matching portion is located in the snap-in section, the first matching portion is snap-fitted with the second matching portion, and when the first matching portion slides away from the snap-in section, the first matching portion and the second matching portion are separated, and the locking member releases the restriction on the atomization assembly.

9. The atomizer according to any one of claims 1 to 6, characterized in that: When the atomizer assembly is in the locked state, the elastic member is compressed between the housing and the atomizer assembly, and two ends of the elastic member are respectively abutted against the housing and the atomizer assembly.

10. The atomizer according to any one of claims 1 to 6, characterized in that: The locking member is provided with a push plate for driving the locking member to slide, the push plate is partially exposed outside the shell, and the shell is provided with a limiting structure for limiting the sliding range of the push plate.

11. The atomizer according to claim 10, characterized in that The moving distance of the push plate relative to the housing is greater than the relative sliding distance of the first matching portion and the second matching portion when the atomizer assembly switches from the locking state to the working state.

Citation Information

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