Atomizer and atomizing device

By introducing a handle structure into the atomizer to drive the movement of the operating components, the slippage problem during the activation of electronic atomizing devices is solved, enabling convenient activation and improving the user experience.

CN223585262UActive Publication Date: 2025-11-25HG INNOVATION LTD
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Patent Information

Application Number
CN202422995356.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-05
Publication Date
2025-11-25
Estimated Expiration
2034-12-05

AI Technical Summary

Technical Problem

The related electronic atomizing devices are prone to slipping during activation, making it inconvenient for users to activate and affecting the user experience.

Method used

An atomizer is designed, including a housing assembly, an atomizing assembly, an isolator, and an operating component. The operating component is driven to move via a handle structure, which in turn causes the isolator to switch between a first state position and a second state position, thereby enabling the liquid inlet to be connected or closed to the liquid storage chamber, ensuring convenient activation by the user.

Benefits of technology

It improves the ease of user operation, reduces the occurrence of slippage, and enhances the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an atomizer and an atomizing device, and relates to the technical field of electronic atomization. The atomizer comprises a shell assembly, an atomization assembly, an isolation piece and an operation piece. A liquid storage cavity is formed in the shell assembly, the atomization assembly is arranged in the shell assembly, and liquid inlet holes communicating with the liquid storage cavity are formed in the peripheral side of the atomization assembly; the isolation piece slidably sleeves the periphery of the atomization assembly, one end of the operation piece is connected to the isolation piece, the operation piece is provided with a handle structure, and the handle structure is arranged at the bottom of the atomizer; the handle structure is configured to drive the operation piece to move and drive the isolation piece to move relative to the atomization assembly, and the isolation piece comprises a first state position and a second state position; when the isolation piece is in the first state position, the isolation piece is stopped between the liquid inlet hole and the liquid storage cavity; when the separator is in the second state position, the liquid inlet hole is communicated with the liquid storage cavity, and / or an airflow channel with the two ends communicated with the external environment is formed in the atomizer. The atomizer provided by the utility model can be conveniently activated by a user.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of electronic atomization, in particular to an atomizer and an atomization device. BACKGROUND

[0002] In an electronic atomization device, an atomization substrate can be heated to atomize the atomization substrate to generate an aerosol for a user to smoke. To prevent the electronic atomization device from leaking liquid during storage and transportation, the electronic atomization device can be in a wick separation state when not in use. When in use, the electronic atomization device can be activated.

[0003] However, the related electronic atomization device is prone to slipping when activated, which is inconvenient for the user to activate and affects the user experience. CONTENT OF THE UTILITY MODEL

[0004] The present application provides an atomizer and an atomization device to facilitate the pulling of the operation member to activate the atomizer.

[0005] The present application provides an atomizer, which comprises a shell assembly, an atomization assembly, a separation member, and an operation member; the shell assembly is configured with a liquid storage cavity, the atomization assembly is arranged in the shell assembly, and the atomization assembly is provided with a liquid inlet hole communicating with the liquid storage cavity; the separation member is slidably arranged on the periphery of the atomization assembly, one end of the operation member is connected to the separation member, the operation member is provided with a handle structure, and the handle structure is arranged at the bottom of the atomizer; the handle structure is configured to drive the movement of the operation member and the movement of the separation member relative to the atomization assembly, and the separation member comprises a first state position and a second state position; when the separation member is in the first state position, the separation member is stopped between the liquid inlet hole and the liquid storage cavity; when the separation member is in the second state position, the liquid inlet hole and the liquid storage cavity are in communication, and / or an airflow channel is formed in the atomizer, two ends of which are in communication with the external environment.

[0006] In some possible implementations, the handle structure is located on the side of the shell assembly away from the liquid storage cavity and protrudes relative to one end of the shell assembly; and / or the handle structure is configured with a driving direction, which is parallel to the sliding direction of the separation member.

[0007] In some possible implementations, the operation member and the separation member are detachably connected.

[0008] In some possible embodiments, the operation member further comprises at least one connecting arm, one end of the connecting arm being connected to the handle structure; the connecting arm is inserted into the shell assembly, and a first clamping portion is arranged at an end of the connecting arm away from the handle structure; a second clamping portion is arranged on one side of the isolation member facing the atomization assembly; when the operation member is connected to the isolation member, the first clamping portion is inserted between the isolation member and the atomization assembly and clamped with the second clamping portion.

[0009] In some possible embodiments, the operation member comprises two connecting arms, and the two connecting arms are symmetrically arranged with respect to a central axis of the atomizer; and / or, the first clamping portion comprises a clamping block and a first clamping groove, the first clamping groove faces away from the atomization assembly, and the clamping block is located at an end of the first clamping groove away from the handle structure; the second clamping portion comprises a limiting rim and a second clamping groove, the second clamping groove faces one side of the atomization assembly, and the limiting rim is located at an end of the second clamping groove facing the handle structure; when the first clamping portion is clamped with the second clamping portion, the clamping block is inserted into the second clamping groove and abuts against one side of the limiting rim away from the handle structure, and the limiting rim is inserted into the first clamping groove.

[0010] In some possible embodiments, one side of the first clamping portion away from the handle structure is provided with a tapered structure, and the tapered structure comprises a cross section perpendicular to a sliding direction of the isolation member; from an end of the tapered structure away from the handle structure to an end of the tapered structure close to the handle structure, the cross section area gradually increases.

[0011] In some possible embodiments, the shell assembly comprises a shell body and a support, the support is arranged in the shell body, the shell body and the support jointly define the liquid storage cavity, and the atomization assembly is arranged on one side of the support facing the liquid storage cavity; one side of the support facing the liquid storage cavity is provided with an assembly groove, the assembly groove is arranged around a circumferential side of the atomization assembly, the isolation member is slidingly inserted into the assembly groove, and a bottom plate of the assembly groove is provided with a first through hole for the operation member to pass through; when the isolation member is in the second state, an end surface of the isolation member facing the handle structure abuts against the bottom plate of the assembly groove, the operation member is separated from the isolation member and the first through hole, and the liquid inlet hole and the liquid storage cavity are in communication.

[0012] In some possible embodiments, the second clamping portion comprises a limiting rim and a second clamping groove, the second clamping groove faces one side of the atomization assembly, and the limiting rim is located on one side of the second clamping groove facing the first through hole; when the isolation member is in the second state, the limiting rim can be inclined to the first through hole and elastically deformed.

[0013] In some possible embodiments, the shell assembly comprises a shell body and a base connected to one end of the shell body, the liquid storage cavity is located in the shell body, and the atomization assembly and the isolation piece are arranged on one side of the base facing the liquid storage cavity; the handle structure is located on the side of the base away from the liquid storage cavity, and the handle structure is arranged with a gap on the side of the base away from the liquid storage cavity.

[0014] In some possible embodiments, the handle structure comprises a cover plate and an abutting portion, the abutting portion is protrudingly arranged on the side of the cover plate facing the base and abuts against the side of the base away from the liquid storage cavity, and the cover plate is arranged with a gap on the side of the base away from the liquid storage cavity; and / or, the side of the base facing the handle structure is arranged with a groove opposite to the handle structure.

[0015] In some possible embodiments, the base is provided with an air inlet hole for communicating with the external environment, the shell assembly further comprises a support arranged on the side of the base facing the liquid storage cavity, the atomization assembly is arranged on the side of the support away from the base, and the support is further provided with a second through hole communicating between the air inlet hole and the atomization channel in the atomization assembly, the atomizer comprises an inactivated state and an activated state; when the atomizer is in the inactivated state, the isolation piece is in the first state, the operating piece is inserted into the air inlet hole and blocks the air inlet hole; when the atomizer is in the activated state, the isolation piece is in the second state, the operating piece is separated from the air inlet hole, the air inlet hole communicates with the second through hole, the atomization channel and the external environment, and an airflow channel is formed in the atomizer and communicates with the external environment at both ends.

[0016] In addition, the application also provides an atomization device comprising a host and the atomizer provided in each of the above embodiments, the atomizer is detachably mounted on the host, the host is electrically connected with the atomizer and supplies power to the atomizer.

[0017] The atomizer provided by the application can improve the convenience of user operation and improve the user experience. BRIEF DESCRIPTION OF DRAWINGS

[0018] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings needed to be used in the embodiments will be briefly introduced as follows. It should be understood that the following drawings only show some of the embodiments of the present application, and therefore should not be regarded as a limitation to the scope, and for those of ordinary skill in the art, other related drawings can also be obtained without creative labor on the basis of these drawings.

[0019] Figure 1 A perspective structural schematic diagram of the atomizer in some embodiments is shown;

[0020] Figure 2 A sectional structural schematic diagram of the atomizer in some embodiments when in an inactivated state is shown;

[0021] Figure 3 Another sectional structural schematic diagram of the atomizer in some embodiments when in an inactivated state is shown;

[0022] Figure 4 A partial sectional structural schematic diagram of the atomizer in some embodiments when in an inactivated state is shown;

[0023] Figure 5 A partial sectional structural schematic diagram of the atomizer in some embodiments when in an inactivated state is shown; Figure 4 A partial enlarged structural schematic diagram of part A in the above figure is shown;

[0024] Figure 6 A partial enlarged structural schematic diagram of part B in the above figure is shown; Figure 4 A partial enlarged structural schematic diagram of part B in the above figure is shown;

[0025] Figure 7 A sectional structural schematic diagram of the atomizer in some embodiments when in an activation process is shown;

[0026] Figure 8 A sectional structural schematic diagram of the atomizer in some embodiments after activation is shown;

[0027] Figure 9 Another sectional structural schematic diagram of the atomizer in some embodiments after activation is shown;

[0028] Figure 10 A structural schematic diagram of the atomizing assembly in some embodiments is shown;

[0029] Figure 11 A structural schematic diagram of the spacer in some embodiments is shown;

[0030] Figure 12 A structural schematic diagram of the bracket in some embodiments is shown;

[0031] Figure 13 A structural schematic diagram of the operating member in some embodiments is shown;

[0032] Figure 14 Fig. 3 shows a schematic diagram of the airflow direction during use of the atomizer in some embodiments;

[0033] Figure 15 Fig. 4 shows a schematic diagram of the structure of the operating member in some other embodiments.

[0034] Main element symbol explanation:

[0035] 1000 - atomizer; 1001 - inactive state; 1002 - active state;

[0036] 100 - housing assembly; 101 - liquid storage cavity; 110 - housing body; 111 - opening structure; 112 - liquid injection hole; 113 - assembly hole; 120 - end cover; 121 - plunger part; 122 - connecting convex part; 123 - insertion hole; 124 - fourth via hole; 130 - base; 131 - air inlet hole; 132 - first positioning convex part; 133 - groove; 140 - bracket; 141 - positioning groove; 142 - second positioning convex part; 143 - assembly groove; 1431 - groove bottom plate; 144 - first via hole; 145 - second via hole;

[0037] 200 - atomization assembly; 210 - atomization tube; 211 - liquid inlet hole; 220 - atomization core; 221 - atomization channel;

[0038] 300 - isolation member; 301 - first state bit; 302 - second state bit; 310 - second clamping part; 311 - limiting rim; 312 - second clamping groove; 320 - convex rib;

[0039] 400 - operating member; 410 - handle structure; 411 - cover plate; 412 - abutment part; 420 - connecting arm; 430 - first clamping part; 431 - clamping block; 4311 - cone structure; 432 - first clamping groove; 440 - external thread part;

[0040] 500 - third sealing member;

[0041] 610 - air channel; 620 - first sealing member; 630 - second sealing member; 631 - first sealing part; 632 - second sealing part; 633 - third via hole; 640 - gap;

[0042] 700 - airflow passage;

[0043] L - central axis; M - driving direction. DETAILED DESCRIPTION

[0044] Embodiments of the present application are described below in detail, examples of which are shown in the drawings, wherein the same or similar notations represent the same or similar elements or elements having the same or similar functions throughout. The embodiments described below by reference to the drawings are exemplary only, and are merely for the purpose of explaining the present application, and should not be construed in a limiting sense.

[0045] In the description of the present application, it should be understood that the terms "center", "longitudinal", "lateral", "length", "width", "thickness", "upper", "lower", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the purpose of facilitating the description of the present application and simplifying the description, and therefore cannot be construed to indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be construed as limiting the present application.

[0046] In addition, the terms "first", "second" are only for the purpose of description, and cannot be construed as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. Therefore, the features defined with "first", "second" can explicitly or implicitly include one or more of the features. In the description of the present application, the meaning of "a plurality of" is two or more, unless otherwise explicitly specified and limited.

[0047] In the present application, unless otherwise explicitly specified and limited, the terms "mounting", "connection", "connection", "fixing" and the like should be understood broadly, for example, it can be fixed connection, or detachable connection, or integral; it can be mechanical connection, or electrical connection; it can be directly connected, or indirectly connected through intermediate medium; it can be the internal communication of two elements or the interaction relationship between two elements. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.

[0048] As shown in Figure 1 , an atomizer 1000 is provided in the embodiment, which can be applied to an atomizing device to provide atomizing function.

[0049] As shown in Figure 2 , Figure 4 , Figures 6 to 8 , Figure 14 , the atomizer 1000 can include an inactivated state 1001 and an activated state 1002. In addition, the atomizer 1000 includes a housing assembly 100, an atomizing assembly 200, a spacer 300 and an operating member 400.

[0050] The inside of the shell assembly 100 is a hollow structure, and is provided with a liquid storage cavity 101. The liquid storage cavity 101 can be used to hold an atomization substrate. The atomization substrate can be tobacco tar or the like.

[0051] The atomization assembly 200 is arranged in the shell assembly 100. The atomization assembly 200 is provided with a liquid inlet hole 211 on the side surface, which communicates with the liquid storage cavity 101. The atomization substrate in the liquid storage cavity 101 can enter the inside of the atomization assembly 200 through the liquid inlet hole 211, and the atomization assembly 200 atomizes the entering atomization substrate to generate aerosol.

[0052] The isolation piece 300 can be slidably arranged on the side surface of the atomization assembly 200. In some embodiments, the isolation piece 300 can include a first state position 301 and a second state position 302, and the first state position 301 and the second state position 302 can be arranged along the sliding direction of the isolation piece 300. In some embodiments, the sliding direction of the isolation piece 300 can be parallel to the axial direction of the atomizer 1000. The axial direction of the atomizer 1000 can refer to the extension direction of the central axis L.

[0053] In some embodiments, one end of the operating piece 400 can be connected to the isolation piece 300. In addition, the operating piece 400 is also provided with a handle structure 410. The handle structure 410 can be arranged at the bottom of the atomizer 1000. The handle structure 410 is configured to drive the operating piece 400 to move and drive the isolation piece 300 to move.

[0054] When the atomizer 1000 is in an inactivated state 1001, the isolation piece 300 is in the first state position 301, and the isolation piece 300 can be stopped between the liquid storage cavity 101 and the liquid inlet hole 211 to prevent the atomization substrate in the liquid storage cavity 101 from entering the inside of the atomization assembly 200 through the liquid inlet hole 211, thereby isolating the atomization substrate from the atomization assembly 200. Thus, during storage and transportation of the atomizer 1000, the probability of liquid leakage of the atomizer 1000 can be reduced, the probability of wick problem of the atomization assembly 200 can be reduced, and the possibility of deterioration and contamination of the atomization substrate in the liquid storage cavity 101 can be reduced.

[0055] When it is necessary to activate the atomizer 1000 to make the liquid inlet hole 211 communicate with the liquid storage cavity 101, the user can hook the handle structure 410 with his hand to pull the handle structure 410 to move along the axial direction of the atomizer 1000, and then the operating piece 400 can drive the isolation piece 300 to slide along the axial direction of the atomizer 1000, so that the isolation piece 300 is switched from the first state position 301 to the second state position 302. The handle structure 410 can provide a convenient holding position for the user, which facilitates the user to pull the operating piece 400 to drive the isolation piece 300 to move, and the slipping problem is not easy to occur during this process. Thus, the convenience of user operation can be obviously improved, and the user experience can be improved.

[0056] When the atomizer 1000 is in the active state 1002, the isolator 300 is in the second state position 302, and the isolator 300 can be misaligned with the liquid inlet 211. Correspondingly, the liquid inlet 211 can communicate with the liquid storage chamber 101, and the atomizing matrix in the liquid storage chamber 101 can enter the interior of the atomizing assembly 200 through the liquid inlet 211 so that it can be atomized by the atomizing assembly 200 to generate an aerosol.

[0057] In some embodiments, when the isolator 300 is in the second state position 302, an airflow channel 700 with both ends connected to the external environment can also be formed in the atomizer 1000.

[0058] like Figure 1 and Figure 2 As shown, in some embodiments, the housing assembly 100 may include a housing body 110, an end cap 120, and a base 130.

[0059] The shell body 110 can be roughly cylindrical in shape. The interior of the shell body 110 is hollow, and a liquid storage cavity 101 can be formed in the shell body 110. One end of the shell body 110 has an opening structure 111.

[0060] In some embodiments, the base 130 can be detachably connected to the shell body 110 via a snap-fit ​​connection or other means, and can close the opening structure 111. Additionally, the base 130 can be sealed to the shell body 110. In some embodiments, the atomizer 1000 further includes a first sealing member 620, which may be annular. The first sealing member 620 is sleeved around the periphery of the base 130 and compressed between the base 130 and the shell body 110, thereby achieving a seal at the connection point between the base 130 and the shell body 110.

[0061] In some embodiments, the base 130 and the shell body 110 can also be fixedly connected by means of adhesive or interference fit.

[0062] like Figure 4 and Figure 5 As shown, in some embodiments, the shell body 110 has an assembly hole 113 and an injection hole 112 at the end away from the opening structure 111. The assembly hole 113 is approximately located at the position of the central axis L. The injection hole 112 is located on one side of the assembly hole 113. In some embodiments, the injection hole 112 can communicate with the liquid storage chamber 101, thereby allowing the atomized matrix to be injected into the liquid storage chamber 101 through the injection hole 112.

[0063] In some embodiments, the end cap 120 can be detachably connected to the end of the housing body 110 away from the base 130 by means of a snap-fit ​​connection or other means. In the embodiments, the bottom of the atomizer 1000 can refer to the space on the side of the base 130 away from the end cap 120.

[0064] In some embodiments, the end cover 120 can be fixedly connected to the shell body 110 by means of adhesion or interference fit, etc.

[0065] As shown in FIG. 1, in some embodiments, the end cover 120 is provided with a plunger portion 121 protruding towards one side of the shell body 110. The plunger portion 121 is inserted into the liquid injection hole 112, and the plunger portion 121 can be sealingly fitted with the inner wall of the liquid injection hole 112 to achieve the closure of the liquid injection hole 112, preventing the aerosol substrate in the liquid storage cavity 101 from leaking through the liquid injection hole 112. Figure 4 Figure 5 In addition, the end cover 120 is also provided with a connecting protrusion 122 protruding towards one side of the shell body 110, which can be inserted into the assembly hole 113, and the peripheral side of the connecting protrusion 122 can be sealingly fitted with the inner wall of the assembly hole 113.

[0066] In some embodiments, the atomizer 1000 further comprises a second sealing member 630. The second sealing member 630 can comprise a first sealing portion 631 in the form of a ring. The first sealing portion 631 is sleeved on the peripheral side of the connecting protrusion 122 and compressed between the connecting protrusion 122 and the inner wall of the assembly hole 113, thereby achieving the sealing between the connecting protrusion 122 and the inner wall of the assembly hole 113.

[0067] As shown in FIG. 1, the shell assembly 100 further comprises a bracket 140, which can be fixedly arranged on one side of the base 130 facing the liquid storage cavity 101. The bracket 140 and the shell body 110 jointly define the liquid storage cavity 101. In embodiments, the atomization assembly 200 can be installed in the shell assembly 100 through the bracket 140.

[0068] As shown in FIG. 1, the shell assembly 100 further comprises a bracket 140, which can be fixedly arranged on one side of the base 130 facing the liquid storage cavity 101. The bracket 140 and the shell body 110 jointly define the liquid storage cavity 101. In embodiments, the atomization assembly 200 can be installed in the shell assembly 100 through the bracket 140. Figure 4 In some embodiments, the base 130 is provided with a first positioning protrusion 132 protruding towards one side of the bracket 140. The bracket 140 is provided with a positioning groove 141 matching the first positioning protrusion 132 on one side facing the base 130. The first positioning protrusion 132 can be positioned and inserted into the positioning groove 141, which can achieve the positioning installation of the bracket 140 and the base 130, and improve the reliability of the installation of the bracket 140.

[0069] In embodiments, the number of groups of the first positioning protrusion 132 and the positioning groove 141 can be set as needed, for example, the first positioning protrusion 132 and the positioning groove 141 can be provided in one group, two groups or four groups, etc., which is not specifically limited herein.

[0070]

[0071] ​​In some embodiments, the first seal 620 may have a certain extension length along the axial direction of the atomizer 1000. The end of the first seal 620 facing the end cap 120 may be inserted between the shell body 110 and the bracket 140 and compressed between the shell body 110 and the bracket 140 to achieve a seal at the connection position between the shell body 110 and the bracket 140.

[0072] like Figure 4 and Figure 5 As shown, in some embodiments, the atomizing assembly 200 includes an atomizing tube 210 and an atomizing core 220. One end of the atomizing tube 210 can be fixedly mounted on the side of the bracket 140 opposite to the base 130. In some embodiments, a second positioning protrusion 142 is provided on the side of the bracket 140 opposite to the base 130. One end of the atomizing tube 210 can be sleeved around the periphery of the second positioning protrusion 142, and the inner wall of the atomizing tube 210 and the second positioning protrusion 142 can be connected by interference fit, adhesive, or threaded connection, so that the atomizing tube 210 and the bracket 140 remain relatively fixed.

[0073] In some embodiments, the end of the atomizing tube 210 away from the bracket 140 can be connected to the end cap 120 and kept relatively fixed to the end cap 120. Thus, the atomizing tube 210 can be securely installed in the housing assembly 100, that is, the atomizing assembly 200 can be securely installed inside the housing assembly 100.

[0074] In some embodiments, a insertion hole 123 is formed on the connecting protrusion 122 of the end cap 120, and the insertion hole 123 may face the liquid storage chamber 101. One end of the atomizing tube 210 away from the second positioning protrusion 142 may be inserted into the insertion hole 123. In some embodiments, the second sealing member 630 further includes a second sealing portion 632 with a generally annular structure. The second sealing portion 632 is sleeved on the periphery of the atomizing tube 210 and compressed between the atomizing tube 210 and the inner wall of the insertion hole 123. On the one hand, it can achieve a seal at the connection position between the atomizing tube 210 and the end cap 120. On the other hand, it can achieve a relatively fixed connection between the atomizing tube 210 and the end cap 120, preventing relative movement between the atomizing tube 210 and the end cap 120, thereby achieving a connection between the atomizing tube 210 and the end cap 120. In embodiments, the first sealing portion 631 and the second sealing portion 632 may be an integral structure.

[0075] In some embodiments, the second seal 630 is further provided with a third through hole 633 communicating with the atomizing tube 210. The end cap 120 is provided with a fourth through hole 124 coaxial with and communicating with the third through hole 633. The end of the atomizing tube 210 away from the bracket 140 can communicate with the external environment through the third through hole 633 and the fourth through hole 124 in sequence.

[0076] like Figure 4 ,Figure 6 and Figure 10 As shown, in some embodiments, the liquid inlet 211 may be opened on the periphery of the atomizing tube 210 near the support 140, and the liquid inlet 211 may communicate with the interior of the atomizing tube 210.

[0077] In some embodiments, the atomizing core 220 may be fixedly disposed within the atomizing tube 210 and located at one end of the atomizing tube 210 near the support 140. The liquid inlet 211 may be disposed opposite to the atomizing core 220. In this embodiment, the atomizing core 220 is also provided with an atomizing channel 221 communicating with the atomizing tube 210.

[0078] When the atomizer 1000 is activated, the atomizing matrix in the liquid storage chamber 101 enters the atomizing tube 210 through the liquid inlet 211 and is absorbed and atomized by the atomizing core 220 to generate an aerosol. The aerosol can then exit the atomizer 1000 sequentially through the atomizing channel 221, the atomizing tube 210, the third through hole 633, and the fourth through hole 124 for the user to inhale.

[0079] like Figure 4 , Figure 6 , Figure 8 and Figure 11 As shown, in some embodiments, the isolator 300 may be generally in the form of a circular tubular structure. The isolator 300 is slidably sleeved on the periphery of the atomizing tube 210, that is, the isolator 300 is located on the side of the atomizing tube 210 away from the atomizing core 220.

[0080] In some embodiments, the isolator 300 may be a flexible isolator made of silicone. The inner wall of the isolator 300 may be interference-fitted with the side of the atomizing tube 210 opposite to the atomizing core 220. On the one hand, when the isolator 300 is not subjected to external force, the isolator 300 and the atomizing tube 210 can be kept relatively fixed, thereby maintaining the isolator 300 in the first state position 301 or the second state position 302 when not subjected to external force. On the other hand, a sealed connection between the isolator 300 and the atomizing tube 210 can also be achieved, preventing the atomizing matrix in the liquid storage chamber 101 from leaking through the gap between the isolator 300 and the atomizing tube 210, thereby reducing the occurrence of leakage problems in the atomizer 1000.

[0081] In some embodiments, the isolation member 300 may also be a flexible isolation member made of a flexible material such as rubber.

[0082] In some embodiments, the isolation piece 300 can be provided with at least one protrusion 320 protruding towards one side of the atomization tube 210. The protrusion 320 can be provided in a ring around the side of the isolation piece 300, i.e. the protrusion 320 can have a ring structure. In embodiments, the protrusion 320 can abut against the surface of the side of the atomization tube 210 away from the atomization core 220. Thus, the sealing effect between the atomization tube 210 and the isolation piece 300 can be improved, and the probability of liquid leakage can be further reduced. When the side of the isolation piece 300 away from the atomization tube 210 is provided with a plurality of protrusions 320, the plurality of protrusions 320 can be arranged in sequence along the axial direction of the atomizer 1000, and the sealing path between the isolation piece 300 and the atomization tube 210 can be further prolonged, and the probability of liquid leakage can be further reduced.

[0083] As shown in Figure 4 , Figures 6 to 9 and Figure 12 , in some embodiments, the bracket 140 can be further provided with an annular assembly groove 143 on the side away from the base 130. The assembly groove 143 can be provided around the side of the atomization tube 210, and the surface of the side of the atomization tube 210 away from the atomization core 220 can be exposed to the assembly groove 143.

[0084] In embodiments, the isolation piece 300 can be slidably arranged in the assembly groove 143. The surface of the side of the isolation piece 300 away from the atomization tube 210 can be in interference fit with the surface of the side of the assembly groove 143 towards the atomization tube 210. Thus, the sealing connection between the surface of the side of the assembly groove 143 towards the atomization tube 210 and the isolation piece 300 can be achieved, and the liquid leakage can be prevented.

[0085] In addition, the side of the isolation piece 300 away from the atomization tube 210 can also be provided with at least one protrusion 320 protruding. The protrusion 320 can abut against the surface of the side of the assembly groove 143 towards the atomization tube 210. Thus, the sealing effect between the surface of the side of the assembly groove 143 towards the atomization tube 210 and the isolation piece 300 can be ensured, and the probability of liquid leakage can be reduced.

[0086] When the side of the isolation piece 300 away from the atomization tube 210 is provided with a plurality of protrusions 320, the plurality of protrusions 320 can be arranged in sequence along the axial direction of the atomizer 1000, and thus, the sealing path between the surface of the side of the assembly groove 143 towards the atomization tube 210 and the isolation piece 300 can be further prolonged, the sealing effect can be further improved, and the probability of liquid leakage can be further reduced.

[0087] In this embodiment, the end of the assembly groove 143 near the base 130 can be a closed structure and is equipped with a groove bottom plate 1431. When the isolator 300 is in the second state position 302, the end of the isolator 300 facing the base 130 can abut against the groove bottom plate 1431, which can prevent the isolator 300 from detaching from the bracket 140 and the atomizing tube 210, ensure the sealing function between the isolator 300 and the atomizing tube 210, and the sealing function between the isolator 300 and the surface of the assembly groove 143 facing the atomizing tube 210, thereby reducing the occurrence of leakage problems.

[0088] like Figures 2 to 4 , Figure 7 and Figure 13 As shown, in some embodiments, the handle structure 410 may include a cover plate 411 and two abutment portions 412. The two abutment portions 412 may protrude from the side of the cover plate 411 facing the base 130, and the two abutment portions 412 may be respectively disposed at both ends of the cover plate 411.

[0089] When the isolator 300 is in the first state position 301, the side of the abutment portion 412 opposite to the cover plate 411 can abut against the side of the base 130 opposite to the bracket 140. The cover plate 411 and the side of the base 130 opposite to the bracket 140 are spaced apart and form a cavity. When the user needs to pull the handle structure 410, the user's fingers can pass through the cavity between the cover plate 411 and the base 130, thus facilitating the user's grip on the handle structure 410 and enabling the user to pull it.

[0090] In some embodiments, the base 130 is further provided with a groove 133 on the side facing the handle structure 410. The groove 133 can communicate with the cavity between the cover plate 411 and the base 130. The groove 133 can also cooperate with the cavity to form a gap 640, thereby expanding the cavity. This provides more space for the user's fingers, allowing them to easily insert between the cover plate 411 and the base 130, enabling the user to easily grip the handle structure 410 and further improving the ease of operation.

[0091] In some embodiments, the handle structure 410 may also be a ring-shaped structure such as a circular ring, a square ring, or an elliptical ring, and the handle structure 410 may protrude from the side of the base 130 away from the bracket 140 so that the user can easily hold the handle structure 410 to pull the operating component 400.

[0092] In some embodiments, a receiving groove is provided on the side of the base 130 opposite to the bracket 140. A handle structure 410 can be disposed in the receiving groove, that is, the handle structure 410 can be embedded in the side of the base 130 opposite to the bracket 140. The surface of the handle structure 410 opposite to the connecting arm 420 can be flush with the surface of the base 130 opposite to the bracket 140, or recessed relative to the surface of the base 130 opposite to the bracket 140.

[0093] In some embodiments, the handle structure 410 is further configured with a driving direction M. During the activation of the atomizer 1000, the user can pull the handle structure 410 along the driving direction M, and move the isolator 300 through the operating member 400, so that the isolator 300 switches from a first state position 301 to a second state position 302. During this process, the force applied by the user to the handle structure 410 can be parallel to the sliding direction of the isolator 300.

[0094] In the atomizer 1000, the user needs to apply pressure perpendicular to the sliding direction of the isolator 300 to the operating member 400, and the friction between the user's hand and the operating member 400 drives the operating member 400 to move the isolator 300. However, during this process, the user needs to apply a significant force to the operating member 400 to move it. Furthermore, slippage is likely to occur between the user's hand and the operating member 400 during operation.

[0095] In this embodiment, the user can directly apply a force parallel to the sliding direction of the isolator 300 to the operating member 400 via the handle structure 410. Therefore, the total force applied by the user to the operating member 400 in this embodiment is significantly less than the total force required by the user in the related atomizer 1000. Compared to the atomizer 1000 in related technologies, the atomizer 1000 provided in this embodiment is easier for the user to activate and less prone to slippage, significantly improving user convenience and user experience.

[0096] like Figure 4 , Figures 6 to 8 as well as Figure 11 and Figure 13 As shown, in some embodiments, the operating member 400 further includes at least one connecting arm 420. One end of the connecting arm 420 may be fixedly connected to the handle structure 410. In some embodiments, the connecting arm 420 may be integral with the handle structure 410.

[0097] In some embodiments, the connecting arm 420 is configured with a first clamping portion 430 at an end away from the handle structure 410. The side of the isolating piece 300 facing the atomizing tube 210 can be configured with a second clamping portion 310 adapted to the first clamping portion 430. When the atomizer 1000 is in the inactivated state 1001, the connecting arm 420 can be inserted between the base 130 and the support 140, the first clamping portion 430 can be inserted between the atomizing tube 210 and the isolating piece 300, and the first clamping portion 430 can be clamped with the second clamping portion 310 to achieve detachable connection between the operating piece 400 and the isolating piece 300.

[0098] In some embodiments, the operating piece 400 can include two connecting arms 420 symmetrically arranged about the central axis L of the atomizer 1000. In some embodiments, the two connecting arms 420 can be arranged one by one on the side of the two abutting portions 412 away from the cover plate 411. Correspondingly, the side of the isolating piece 300 facing the atomizing tube 210 can be configured with two symmetrically arranged second clamping portions 310. The two first clamping portions 430 of the operating piece 400 are inserted between the isolating piece 300 and the atomizing tube 210, and clamped one by one with the two second clamping portions 310.

[0099] In some embodiments, the operating piece 400 can also include one, three or four connecting arms 420, and the end of each connecting arm 420 away from the handle structure 410 is configured with a first clamping portion 430. The side of the isolating piece 300 facing the atomizing tube 210 can be configured with a number of second clamping portions 310 equal to the number of first clamping portions 430, and arranged one by one with the first clamping portions 430.

[0100] In some embodiments, the first clamping portion 430 includes a clamping block 431 and a first clamping groove 432, and the first clamping groove 432 can face the side of the isolating piece 300. The clamping block 431 can be located on the side of the first clamping groove 432 away from the handle structure 410. The second clamping portion 310 includes a limiting rim 311 and a second clamping groove 312, and the second clamping groove 312 can face the side of the atomizing tube 210. The limiting rim 311 is located at the end of the second clamping groove 312 facing the handle structure 410. When the first clamping portion 430 is clamped with the second clamping portion 310, the clamping block 431 can be inserted into the second clamping groove 312, and the clamping block 431 can abut against the side of the limiting rim 311 away from the handle structure 410, and the limiting rim 311 can be inserted into the first clamping groove 432.

[0101] As Figures 7 to 9 and Figure 12 , Figure 13As shown, in some embodiments, the bracket 140 is further provided with a first through hole 144 at one end thereof towards the base 130, which can be in communication with the assembly groove 143. In embodiments, the first through hole 144 can be used for the first clamping portion 430 to pass through. In embodiments, the number of the first through hole 144 can be equal to that of the first clamping portion 430.

[0102] In the process of activating the atomizer 1000, when the spacer 300 abuts against the groove bottom plate 1431, the limiting rim 311 in the spacer 300 can elastically deform under the extrusion effect in the direction of the first through hole 144, which can make the first clamping portion 430 gradually disengage from the second clamping portion 310, and the first clamping portion 430 can continue to pass through the first through hole 144, so that the operating member 400 disengages from the bracket 140.

[0103] In some embodiments, the clamping block 431 is further provided with a tapered structure 4311 on the side thereof away from the handle structure 410. The tapered structure 4311 is configured with a cross section perpendicular to the sliding direction of the spacer 300. From the end of the tapered structure 4311 away from the handle structure 410 to the end thereof close to the handle structure 410, the cross-sectional area of the tapered structure 4311 can gradually increase. Thus, in the process of assembling the atomizer 1000, the tapered structure 4311 can play a guiding role, facilitating the first clamping portion 430 to be smoothly inserted between the spacer 300 and the atomizing tube 210, so as to be smoothly clamped with the second clamping portion 310.

[0104] As shown in Figure 4 , Figure 7 and Figure 8 , in some embodiments, the base 130 is further provided with an air inlet hole 131 in communication with the external environment. The base 130 and the bracket 140 are further provided with an air channel 610 in communication with the air inlet hole 131. When the atomizer 1000 is in the inactivated state 1001, i.e., the spacer 300 is in the first state 301, the connecting arm 420 of the operating member 400 can be inserted into the air inlet hole 131. Correspondingly, the number of the air inlet hole 131 can be equal to that of the connecting arm 420.

[0105] In the process of activating the atomizer 1000, the operating member 400 disengages from the spacer 300 and the bracket 140 under the action of external force, and can be pulled out of the air inlet hole 131. When the operating member 400 disengages from the air inlet hole 131, the air inlet hole 131 can be in communication with the external environment and the air channel 610.

[0106] In some embodiments, the bracket 140 is further provided with a second through hole 145, which can penetrate the second positioning protrusion 142 along the axial direction of the atomizer 1000. In embodiments, the second through hole 145 can be in communication with the atomizing tube 210 and the air channel 610.

[0107] As shown in Figures 2 to 4and Figure 8 As shown in FIG. 10, the atomizer 1000 further comprises a third sealing member 500. In some embodiments, the third sealing member 500 can have a columnar structure. When the atomizer 1000 is in the inactivated state 1001, the third sealing member 500 can be sequentially inserted into the atomization passage 221 of the atomization tube 210 and the atomization core 220, and the third sealing member 500 can be sealingly fitted with the inner wall of the side of the atomization core 220 facing the atomization passage 221. When the atomizer 1000 is in the activated state 1002, the third sealing member 500 can be extracted from the atomization assembly 200.

[0108] As shown in FIG. 10, the atomizer 1000 further comprises a third sealing member 500. In some embodiments, the third sealing member 500 can have a columnar structure. When the atomizer 1000 is in the inactivated state 1001, the third sealing member 500 can be sequentially inserted into the atomization passage 221 of the atomization tube 210 and the atomization core 220, and the third sealing member 500 can be sealingly fitted with the inner wall of the side of the atomization core 220 facing the atomization passage 221. When the atomizer 1000 is in the activated state 1002, the third sealing member 500 can be extracted from the atomization assembly 200. Figure 2 and Figure 14 As shown in FIG. 10, when the atomizer 1000 is in the inactivated state 1001, the isolating member 300 can be in the first state position 301, and the isolating member 300 is stopped between the liquid inlet hole 211 and the liquid storage cavity 101. That is, the atomizer 1000 is in a state in which the atomization substrate is separated from the atomization core 220, and the atomization substrate can be prevented from entering the atomization core 220 through the liquid inlet hole 211, thereby reducing the probability of the atomization core 220 being blocked and reducing the probability of the liquid leakage problem.

[0109] When the atomizer 1000 is in the inactivated state 1001, the isolating member 300 is in the first state position 301, and the operating member 400 can be sequentially inserted into the air inlet hole 131 and the first through hole 144, and inserted between the isolating member 300 and the atomization tube 210, and clamped with the isolating member 300, thereby achieving the plugging of the air inlet hole 131. In addition, the third sealing member 500 can be inserted into the atomization assembly 200, thereby achieving the isolation of the inside of the atomization assembly 200 from the outside environment. Thus, the inside of the atomizer 1000 can be isolated from the outside environment, that is, the atomization substrate can be isolated from the outside environment, thereby reducing the probability of the atomization substrate in the liquid storage cavity 101 being leaked due to changes in air pressure, shaking, or misoperation.

[0110] When it is needed to activate the atomizer 1000, the user can hold the handle structure 410 of the operating member 400 and pull the handle structure 410 in the driving direction M to pull the operating member 400 to move away from the end cover 120. The isolation member 300 can be synchronously moved under the driving of the operating member 400 and gradually move from the first state position 301 to the second state position 302. When the isolation member 300 moves to the second state position 302, the isolation member 300 can abut against the groove bottom plate 1431 of the assembly groove 143, so that the isolation member 300 can be limited to continue to move by the groove bottom plate 1431. At the same time, the isolation member 300 can be dislocated from the liquid inlet hole 211, the liquid storage cavity 101 can be communicated with the atomizing core 220 through the liquid inlet hole 211, and the atomizing substrate in the liquid storage cavity 101 can be delivered to the atomizing core 220 through the liquid inlet hole 211 and atomized by the atomizing core 220. Then, the user can continue to pull the handle structure 410, and the second clamping part 310 can be elastically deformed under the extrusion action, so that the first clamping part 430 gradually separates from the second clamping part 310, that is, the operating member 400 can gradually separate from the isolation member 300. Then, the operating member 400 can sequentially separate from the support 140 and the base 130, that is, the operating member 400 can be pulled out relative to the shell assembly 100, so that the atomizer 1000 is switched to the activated state 1002. Correspondingly, the air inlet hole 131 can be communicated with the outside environment and the air channel 610. In addition, the third sealing member 500 can be pulled out from the atomizing assembly 200 by one end of the fourth through hole 124, so that one end of the atomizing channel 221 away from the base 130 is communicated with the outside environment.

[0111] That is, when the atomizer 1000 is in the activated state 1002, the isolation member 300 is in the second state position 302, and the liquid storage cavity 101 can be communicated with the atomizing core 220 through the liquid inlet hole 211. One end of the atomizing channel 221 towards the base 130 can be sequentially communicated with the outside environment through the second through hole 145, the air channel 610 and the air inlet hole 131. The other end of the atomizing channel 221 can be sequentially communicated with the outside environment through the atomizing tube 210, the third through hole 633 and the fourth through hole 124, that is, the airflow channel 700 can be formed in the atomizer 1000 and communicated with the outside environment at both ends. When the user performs the suction action, the outside gas can enter the atomizing channel 221 sequentially through the air inlet hole 131, the air channel 610 and the second through hole 145, the atomizing substrate in the liquid storage cavity 101 can enter the atomizing core 220 through the liquid inlet hole 211 under the action of air pressure, the atomizing core 220 can heat and atomize the atomizing substrate to generate aerosol, and the aerosol can be output sequentially through the atomizing tube 210, the third through hole 633 and the fourth through hole 124.

[0112] In some embodiments, the diameter of the connecting arm 420 can be smaller than the inner diameter of the air inlet hole 131. When the isolation piece 300 is in the second position 302, the isolation piece 300 can be stopped between the liquid storage cavity 101 and the liquid inlet hole 211, the operating piece 400 is not separated from the isolation piece 300, and there is still a gap between the isolation piece 300 and the groove bottom plate 1431 in the support 140. The air channel 610 can be in communication with the external environment through the gap between the connecting arm 420 and the inner wall of the air inlet hole 131. At the same time, the third sealing piece 500 is extracted from the atomization assembly 200, and the airflow passage 700 in the atomizer 1000 can be formed, which is in communication with the external environment at both ends. When it is necessary to further activate the atomizer 1000, the operating piece 400 can be continuously pulled to dislocate the isolation piece 300 from the liquid inlet hole 211, so that the liquid inlet hole 211 is in communication with the liquid storage cavity 101, and the operating piece 400 is separated from the isolation piece 300, the support 140 and the base 130.

[0113] As shown in Figure 4 and Figure 15 In some embodiments, one end of the connecting arm 420 can be rotatably connected to the handle structure 410. In the axial direction of the atomizer 1000, the connecting arm 420 is limitingly connected to the handle structure 410. That is, in the axial direction of the atomizer 1000, the connecting arm 420 and the handle structure 410 can be relatively fixed or allowed to produce a relatively small distance of relative movement. The end of the connecting arm 420 away from the handle structure 410 can be provided with an external threaded portion 440. The side of the isolation piece 300 facing the base 130 can be provided with an internal threaded hole (not shown in the figure), and the external threaded portion 440 can be screwed into the internal threaded hole. After the user pulls the isolation piece 300 from the first position 301 to the second position 302 through the operating piece 400, the connecting arm 420 can be continuously rotated relative to the handle structure 410, and the external threaded portion 440 is rotated out of the internal threaded hole, so that the operating piece 400 is separated from the isolation piece 300. Subsequently, the user can continue to pull the handle structure 410, so that the operating piece 400 is completely separated from the shell assembly 100, and the activation of the atomizer 1000 is realized.

[0114] In some embodiments, the end of the connecting arm 420 away from the handle structure 410 can also be connected to the isolation piece 300 through a connecting strip. That is, in the inactivated state of the atomizer 1000, the connecting strip can be an integral structure with the connecting arm 420 and the isolation piece 300. When the connecting strip is broken, the operating piece 400 can be separated from the isolation piece 300, and the user can continue to pull the operating piece 400 until the operating piece 400 is extracted from the shell assembly 100.

[0115] In some embodiments, an atomization device is also provided, which comprises a main machine and the atomizer 1000 provided in the embodiments. The atomizer 1000 is detachably installed in the main machine, and the atomizer 1000 can be electrically connected to the main machine and powered by the main machine.

[0116] In the description of the specification, the description of the terms "one embodiment", "some embodiments", "an example", "a specific example", or "some examples" etc. means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are contained in at least one embodiment or example of the present application. In the specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any appropriate manner in any one or more embodiments or examples. In addition, the person skilled in the art can combine and combine the different embodiments or examples described in the specification and the features of the different embodiments or examples without contradiction.

[0117] Although the embodiments of the present application have been shown and described above, it is understood that the above embodiments are exemplary and are not to be construed as limiting the present application, and the person skilled in the art can make changes, modifications, replacements and variations to the above embodiments within the scope of the present application.

Claims

1. An atomizer, characterized in that, The atomizer includes a housing assembly, an atomizing assembly, an isolator, and an operating component; The housing assembly is provided with a liquid storage chamber, the atomizing component is disposed in the housing assembly, and the atomizing component has a liquid inlet hole on its periphery that communicates with the liquid storage chamber; The isolating component is slidably sleeved on the periphery of the atomizing component, one end of the operating component is connected to the isolating component, the operating component is provided with a handle structure, and the handle structure is located at the bottom of the atomizer; The handle structure is configured to drive the operating member to move and drive the isolator to move relative to the atomizing component, and the isolator includes a first state position and a second state position; When the isolator is in the first state position, the isolator stops between the liquid inlet and the liquid storage cavity; When the isolator is in the second state position, the liquid inlet and the liquid storage chamber are connected, and / or, an airflow channel with both ends connected to the external environment is formed in the atomizer.

2. The atomizer according to claim 1, characterized in that, The handle structure is located on the side of the housing assembly away from the liquid storage cavity, and protrudes from one end of the housing assembly; And / or, the handle structure is configured with a driving direction that is parallel to the sliding direction of the isolator.

3. The atomizer according to claim 1, characterized in that, The operating component is detachably connected to the isolating component.

4. The atomizer according to claim 3, characterized in that, The operating component further includes at least one connecting arm, one end of which is connected to the handle structure; The connecting arm is inserted into the housing assembly, and a first snap-fit ​​portion is provided at the end of the connecting arm away from the handle structure, and a second snap-fit ​​portion is provided on the side of the isolator facing the atomizing assembly; When the operating component is connected to the isolating component, the first snap-fit ​​portion is inserted between the isolating component and the atomizing component, and snaps into the second snap-fit ​​portion.

5. The atomizer according to claim 4, characterized in that, The operating component includes two connecting arms, which are symmetrically arranged with respect to the central axis of the atomizer; And / or, the first latching part includes a latching block and a first latching slot, the first latching slot being away from the atomizing component, the latching block being located at one end of the first latching slot away from the handle structure, the second latching part includes a limiting edge and a second latching slot, the second latching slot being towards the atomizing component, the limiting edge being located at one end of the second latching slot towards the handle structure, when the first latching part and the second latching part are latched together, the latching block is inserted into the second latching slot and abuts against the limiting edge on the side away from the handle structure, the limiting edge is inserted into the first latching slot.

6. The atomizer according to claim 4 or 5, characterized in that, The first snap-fit ​​portion has a conical structure on the side opposite to the handle structure, and the conical structure includes a cross section perpendicular to the sliding direction of the isolator. The cross-sectional area of ​​the cone structure gradually increases from the end furthest from the handle structure to the end closest to the handle structure.

7. The atomizer according to claim 4 or 5, characterized in that, The housing assembly includes a housing body and a support, the support is disposed in the housing body, the housing body and the support together define the liquid storage chamber, and the atomizing component is disposed on the side of the support facing the liquid storage chamber; The bracket is provided with an assembly groove on the side facing the liquid storage chamber. The assembly groove is arranged around the periphery of the atomizing component. The isolator is slidably inserted into the assembly groove. The bottom plate of the assembly groove has a first through hole for the operating component to pass through. When the isolator is in the second state position, the end surface of the isolator facing the handle structure abuts against the bottom plate of the tank, the operating member disengages from the isolator and the first through hole, and the liquid inlet and the liquid storage chamber are connected.

8. The atomizer according to claim 7, characterized in that, The second latching portion includes a limiting edge and a second latching groove, the second latching groove facing the atomizing component, and the limiting edge located on the side of the second latching groove facing the first through hole; When the isolator is in the second state position, the limiting edge can tilt towards the first through hole and undergo elastic deformation.

9. The atomizer according to claim 1, characterized in that, The housing assembly includes a housing body and a base connected to one end of the housing body. The liquid storage chamber is located in the housing body, and the atomizing component and the isolating component are disposed on the side of the base facing the liquid storage chamber. The handle structure is located on the side of the base away from the liquid storage cavity, and there is a gap between the handle structure and the side of the base away from the liquid storage cavity.

10. The atomizer according to claim 9, characterized in that, The handle structure includes a cover plate and an abutment portion. The abutment portion protrudes from the side of the cover plate facing the base and abuts against the side of the base away from the liquid storage cavity. The cover plate and the side of the base away from the liquid storage cavity are spaced apart. And / or, the base is provided with a groove on the side facing the handle structure that is opposite to the handle structure.

11. The atomizer according to claim 9 or 10, characterized in that, The base has an air inlet for connecting to the external environment. The housing assembly also includes a bracket, which is located on the side of the base facing the liquid storage chamber. The atomizing assembly is located on the side of the bracket away from the base. The bracket also has a second through hole, which connects the air inlet and the atomizing channel in the atomizing assembly. The atomizer includes an inactive state and an active state. When the atomizer is in the inactive state, the isolator is in the first state position, the operating member is inserted into the air inlet and blocks the air inlet; When the atomizer is in the activated state, the isolator is in the second state position, the operating member is disengaged from the air inlet, the air inlet is connected to the second through hole, the atomization channel and the external environment, and an airflow channel with both ends connected to the external environment is formed in the atomizer.

12. An atomizing device, characterized in that, The device includes a main unit and an atomizer as described in any one of claims 1 to 11, wherein the atomizer is detachably mounted on the main unit, the main unit is electrically connected to the atomizer, and supplies power to the atomizer.