Atomization device and atomization equipment

By providing a mounting cavity on the liquid storage component and directly installing the electrode assembly, the problems of low assembly efficiency and high cost of the electrode mounting component are solved, and efficient assembly and cost reduction of the atomization device are achieved.

CN223437889UActive Publication Date: 2025-10-17HG INNOVATION LTD
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Patent Information

Application Number
CN202422743920.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-11
Publication Date
2025-10-17
Estimated Expiration
2034-11-11

AI Technical Summary

Technical Problem

The assembly efficiency of the electrode mounting parts in the existing atomization device is low and the cost is high.

Method used

A mounting cavity is provided on the liquid storage component, and the electrode assembly is directly mounted in the mounting cavity, thereby eliminating the assembly steps and costs of the electrode mounting component.

Benefits of technology

The assembly efficiency of the atomizing device is improved and the cost is reduced.

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Abstract

The utility model provides an atomization device and atomization equipment. The atomization device comprises a shell assembly, an electrode assembly and an atomization core. The shell assembly comprises a liquid storage part, a liquid storage cavity and a mounting cavity are formed in the liquid storage part, and the liquid storage cavity is used for containing an aerosol matrix; the electrode assembly is assembled in the mounting cavity, and one end of the electrode assembly extends to the outer side surface of the shell assembly so as to be electrically connected with an external power supply; the atomizing core is used for atomizing the aerosol matrix to generate aerosol and comprises a lead wire, and the lead wire is electrically connected with the electrode assembly. According to the atomization device, the mounting cavity is formed in the liquid storage part for storing the aerosol matrix, the electrode assembly can be mounted in the mounting cavity, an electrode mounting part does not need to be additionally adopted for assembling an electrode, the assembling step of mounting the electrode mounting part can be omitted, the cost of the electrode mounting part is saved, and the assembly efficiency is improved. Therefore, the assembly efficiency and the cost of the atomization device are effectively improved.
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Description

TECHNICAL FIELD

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

[0002] The atomization equipment is a device capable of atomizing an aerosol substrate into an aerosol. In some related technologies, the atomization equipment includes an atomization device and a main machine, and the atomization device and the main machine are detachably connected, so that the atomization device can be replaced when the aerosol substrate of the atomization device is exhausted, and the user only needs to replace the atomization device, without replacing the main machine, so as to reduce the purchase cost of the user.

[0003] Since the main machine needs to supply power to the atomization device, an electrode needs to be electrically connected between the main machine and the atomization device, and the electrode needs to be fixed by using an electrode mounting piece. The setting of the electrode mounting piece can cause low assembly efficiency of the atomization device and high cost of the atomization device. CONTENT OF THE UTILITY MODEL

[0004] The present application provides an atomization device and an atomization equipment, which can solve the problems of low assembly efficiency and high cost caused by the use of an electrode mounting piece to mount an electrode.

[0005] In order to solve the above technical problems, the present application provides an atomization device, which includes a shell assembly, an electrode assembly and an atomization core. The shell assembly includes a liquid storage piece, the liquid storage piece is provided with a liquid storage cavity and a mounting cavity, the liquid storage cavity is used for accommodating an aerosol substrate; the electrode assembly is assembled in the mounting cavity, and one end of the electrode assembly extends to the outer side of the shell assembly for electrically connecting with an external power supply; the atomization core is used for atomizing the aerosol substrate to generate an aerosol, and the atomization core includes a lead wire, the lead wire is electrically connected with the electrode assembly.

[0006] In an embodiment, the mounting cavity has a first opening, the first opening faces the outer side of the shell assembly, and the electrode assembly is inserted into the mounting cavity through the first opening.

[0007] In an embodiment, the liquid storage piece is sequentially provided with a first accommodating cavity and a second accommodating cavity along a first direction, the liquid storage cavity and the atomization core are located in the first accommodating cavity, and the mounting cavity is located in the second accommodating cavity.

[0008] The lead wire extends to the mounting cavity through the second accommodating cavity, the lead wire located in the second accommodating cavity has at least one bending part, and the lead wire can be bent through the bending part to change the extension direction, so as to extend from the first accommodating cavity to the first opening.

[0009] In an embodiment, the lead wire is inserted into the mounting cavity through the first opening, and the lead wire is clamped between the electrode assembly and the cavity wall of the mounting cavity.

[0010] In an embodiment, the liquid storage member comprises an assembly portion arranged in the second accommodating cavity, the assembly portion is formed with an extension channel and a mounting cavity in communication, and at least part of the extension channel is located on a side of the mounting cavity away from the first accommodating cavity, and at least part of the lead wire in the second accommodating cavity is arranged in the extension channel.

[0011] In an embodiment, the lead wire comprises a first extension portion, a second extension portion, a third extension portion and a fourth extension portion connected in sequence through the bending portion, the first extension portion extends along a first direction, the second extension portion and the third extension portion are arranged in the extension channel, the second extension portion extends along a direction perpendicular to the first direction, the third extension portion extends along a direction opposite to the first direction, the fourth extension portion is arranged in the mounting cavity, and the fourth extension portion extends along a direction opposite to the extending direction of the second extension portion.

[0012] In an embodiment, the liquid storage member further comprises an air passage portion arranged in the second accommodating cavity, the air passage portion is formed with an air inlet channel in communication with the atomizing core, and the assembly portion is arranged on the outer side wall of the air passage portion, and the outer surface of the assembly portion is formed with a slot forming the extension channel.

[0013] In an embodiment, the electrode assembly comprises a first electrode and a second electrode, the number of assembly portions and lead wires is two, the two assembly portions are arranged on the two opposite outer side walls of the air passage portion respectively, the mounting cavities of the two assembly portions are used for mounting the first electrode and the second electrode respectively, and the extension channels of the two assembly portions are used for assembling the two lead wires respectively.

[0014] In an embodiment, the shell assembly further comprises a shell, the liquid storage member is arranged in the interior of the shell, the shell is formed with a suction nozzle portion, the suction nozzle portion is formed with an air outlet channel, one end of the liquid storage member close to the suction nozzle portion is formed with the first accommodating cavity, one end of the liquid storage member away from the suction nozzle portion is formed with the air inlet channel, the first accommodating cavity is in communication with the air inlet channel, the atomizing core comprises an atomizing tube, the atomizing tube is arranged in the first accommodating cavity, the two ends of the atomizing tube are in communication with the air inlet channel and the air outlet channel respectively, and the atomizing tube and the cavity wall of the first accommodating cavity form a liquid storage cavity.

[0015] To solve the above technical problems, the present application provides an atomization device, comprising an atomization device and a host, the atomization device is any one of the above-mentioned atomization devices; the host comprises a connecting electrode group, the connecting electrode group is located on the side of the host, the host is detachably connected with the atomization device, and the electrode assembly is electrically connected with the connecting electrode group.

[0016] The application provides an atomization device, which comprises a shell assembly, an electrode assembly and an atomization core. The shell assembly comprises a liquid storage piece, which is provided with a liquid storage cavity and a mounting cavity. The liquid storage cavity is used for accommodating an aerosol substrate. The electrode assembly is assembled in the mounting cavity, and one end of the electrode assembly extends to the outer side of the shell assembly for electrical connection with an external power supply. The atomization core is used for atomizing the aerosol substrate to generate an aerosol, and comprises a lead wire, which is electrically connected with the electrode assembly. Since the mounting cavity is arranged on the liquid storage piece for storing the aerosol substrate, the electrode assembly can be mounted in the mounting cavity, and an electrode mounting piece is not needed to assemble the electrode, the assembly step of mounting the electrode mounting piece can be omitted, and the cost of the electrode mounting piece is saved, so that the assembly efficiency and cost of the atomization device are effectively improved. BRIEF DESCRIPTION OF DRAWINGS

[0017] Figure 1 A structural schematic diagram of an atomization device provided by an embodiment of the application is shown in FIG. 1.

[0018] Figure 2 A sectional view of the atomization device is shown in FIG. 2. Figure 1

[0019] Figure 3 An exploded view of the atomization device is shown in FIG. 3. Figure 1

[0020] Figure 4 A structural schematic diagram of a liquid storage piece provided by an embodiment of the application is shown in FIG. 4.

[0021] Figure 5 An exploded structural schematic diagram of an atomization core provided by an embodiment of the application is shown in FIG. 5.

[0022] Figure 6 A structural schematic diagram of a shell provided by an embodiment of the application is shown in FIG. 6.

[0023] Figure 7 Another sectional view of the atomization device is shown in FIG. 7. Figure 1

[0024] Figure 8 A structural schematic diagram of the liquid storage piece from another perspective provided by an embodiment of the application is shown in FIG. 8.

[0025] Figure 9 A structural schematic diagram of the liquid storage piece, the lead wire and the motor assembly provided by an embodiment of the application is shown in FIG. 9.

[0026] ​​​BRIEF DESCRIPTION OF DRAWINGS: The housing assembly 10, the liquid storage member 11, the liquid storage cavity 111, the mounting cavity 112, the first opening 1121, the liquid suction member 113, the first accommodating cavity 114, the air inlet channel 115, the second accommodating cavity 116, the air passage portion 117, the assembly portion 118, the extension channel 1181, the perforation 119, the outer shell 12, the second opening 121, the nozzle portion 122, the air outlet channel 1221, the air inlet portion 123, the air inlet hole 1231, the assembly cavity 124, the mounting port 1241, the base 13, the electrode assembly 20, the first electrode 21, the second electrode 22, the atomizing core 30, the atomizing tube 31, the liquid guide member 32, the heating member 33, the lead wire 34, the bending portion 341, the first extension portion 342, the second extension portion 343, the third extension portion 344, the fourth extension portion 345, the magnetic attraction member 40. DETAILED DESCRIPTION

[0027] The application will be further described in details by specific embodiments in conjunction with the accompanying drawings. In different embodiments, similar elements are denoted by similar reference signs. In the following embodiments, many details are described in order to make the application better understood. However, those skilled in the art can easily recognize that some features can be omitted in different cases, or can be replaced by other elements, materials, methods. In some cases, some operations related to the application are not shown or described in the specification, in order to avoid the core part of the application being overwhelmed by too much description, and it is not necessary for those skilled in the art to describe these related operations in detail according to the description in the specification and the general technical knowledge in the art.

[0028] In addition, the features, operations or characteristics described in the specification can be combined in any appropriate way to form various embodiments, and the operation steps involved in each embodiment can also be sequentially adjusted or adjusted in a manner that can be easily seen by those skilled in the art. Therefore, the specification and drawings are only for the purpose of clearly describing one embodiment, and do not mean that the composition and / or order is necessary.

[0029] In this paper, the serial numbers of components, such as "first", "second", etc., are only used to distinguish the described objects, and do not have any order or technical meaning. Unless otherwise specified, "connection" and "coupling" in this application include direct and indirect connections (couplings).

[0030] The terms "parallel", "perpendicular" and the like are defined in relation to the current process level, rather than the absolute strict definition in mathematics, and a small deviation is allowed, and approximately parallel, approximately perpendicular, etc. can be used. For example, A is parallel to B, which means that A is parallel to B or approximately parallel to B, and the included angle between A and B is between 0° and 10°. For example, A is perpendicular to B, which means that A is perpendicular to B or approximately perpendicular to B, and the included angle between A and B is between 80° and 100°. The orientation terms mentioned in the embodiments of the present application, such as "upper", "inner", "outer", "side" and the like, are only the directions of the drawings, therefore, the orientation terms are used to better and more clearly illustrate and understand the embodiments of the present application, and are not intended to indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the embodiments of the present application.

[0031] The present application provides an atomization device, which comprises an atomization device and a main machine. The main machine is detachably connected with the atomization device, and the main machine can be used to supply power to the atomization device and to control the atomization of the aerosol substrate by the atomization device. The atomization device can be any of the atomization devices described below.

[0032] As shown in FIG. 1, the present application provides an embodiment of an atomization device, which comprises a housing assembly 10, an electrode assembly 20 and an atomization core 30. Figures 1 to 3 As shown in FIG. 1, the housing assembly 10 comprises a liquid storage member 11, and the liquid storage member 11 is provided with a liquid storage cavity 111 and a mounting cavity 112. The liquid storage cavity 111 is used to contain the aerosol substrate, and the liquid storage cavity 111 can directly contain the aerosol substrate. The liquid storage cavity 111 can also be provided with a liquid absorbing member 113, which is made of a porous material. The liquid absorbing member 113 stores the aerosol substrate, so that the liquid storage cavity 111 contains the aerosol substrate. The material of the liquid absorbing member 113 can be cotton, porous ceramic or the like. The aerosol substrate is a liquid substrate, such as tobacco tar, medicinal liquid or the like.

[0033] Figures 2-4 As shown in FIG. 1, the atomization core 30 is arranged inside the housing assembly 10. Specifically, the atomization core 30 is used to atomize the aerosol substrate to generate aerosol. The atomization core 30 comprises an atomization tube 31, a liquid guiding member 32, a heating member 33 and a lead wire 34. The liquid guiding member 32 is arranged in the atomization tube 31 and is made of a porous material, such as cotton, porous ceramic or the like. The heating member 33 is arranged in the liquid guiding member 32. The liquid guiding member 32 is used to guide the aerosol substrate in the liquid storage cavity 111 to the heating member 33. The heating member 33 can atomize the aerosol substrate into aerosol after being powered.

[0034] As shown in FIG. 1, the atomization core 30 is arranged inside the housing assembly 10. Specifically, the atomization core 30 is used to atomize the aerosol substrate to generate aerosol. The atomization core 30 comprises an atomization tube 31, a liquid guiding member 32, a heating member 33 and a lead wire 34. The liquid guiding member 32 is arranged in the atomization tube 31 and is made of a porous material, such as cotton, porous ceramic or the like. The heating member 33 is arranged in the liquid guiding member 32. The liquid guiding member 32 is used to guide the aerosol substrate in the liquid storage cavity 111 to the heating member 33. The heating member 33 can atomize the aerosol substrate into aerosol after being powered. Figure 5

[0035] ​​The electrode assembly 20 is assembled in the mounting cavity 112 of the liquid storage element 11, and one end of the electrode assembly 20 extends to the outer side of the shell assembly 10, so that the electrode assembly 20 can be electrically connected with an external power source after the atomization device is connected with the host. Specifically, in an embodiment, the host includes a connecting electrode assembly located on the outer side of the host. The connecting electrode assembly is electrically connected with electronic components such as a circuit board and a power source, and the electrode assembly 20 can be electrically connected with the connecting electrode assembly of the host, so that the host can be electrically connected with the atomization device.

[0036] One end of the lead wire 34 is in contact with the electrode of the heating element 33, and the other end of the lead wire 34 is in contact with the electrode assembly 20, so that the heating element 33, the lead wire 34, the electrode assembly 20, and the connecting electrode assembly are sequentially electrically connected, so that the host can be electrically connected with the heating element 33, the host can supply power to the heating element 33, and the start and stop and heating parameters of the heating of the heating element 33 can be controlled. The electrode assembly 20 can extend to a position flush with the outer side of the shell assembly 10, or can extend to a position protruding outward from the outer side, or can extend to a position recessed from the outer side.

[0037] One end of the electrode assembly 20 of the present application extends to the outer side of the shell assembly 10 to be electrically connected with the connecting electrode assembly of the host. That is, with the air outlet direction of the atomization device as the reference, the atomization device and the host of the present application are connected left and right, and in an embodiment, the atomization device and the host of the present application are arranged side by side in the horizontal axis direction, and more specifically, in an embodiment, the atomization device and the host of the present application are equal in length in the vertical axis direction. Thus, compared with the way that the atomization device and the host are connected head to tail in the vertical axis direction, the length of the atomization device in the vertical direction can be reduced, so that the length-width ratio of the atomization device tends to be closer to 1:1, so as to facilitate the user to carry the atomization device in the pocket. Since the atomization device and the host are connected left and right, the power supply of the host needs to be supplied to the atomization device located on one side of the host, and the lead wire 34 of the atomization core 30 usually extends from top to bottom, so the lead wire 34 of the atomization core 30 needs to be led to the outer side of the atomization device. In some related technologies, this may require additional electrode mounting elements to mount the lead wire 34 and the electrode assembly 20, which undoubtedly increases the assembly steps and costs.

[0038] The atomization device of the present application sets a mounting cavity 112 on the liquid storage element 11 storing the aerosol substrate, and the electrode assembly 20 can be mounted in the mounting cavity 112, without the need for additional electrode mounting elements to assemble the electrode. The assembly step of mounting the electrode mounting element in the shell assembly 10 can be omitted, and the cost of configuring the electrode mounting element can be saved, thereby effectively improving the assembly efficiency and cost of the atomization device.

[0039] In an embodiment, as Figure 4As shown, the mounting cavity 112 has a first opening 1121 facing the outer side of the shell assembly, and the electrode assembly 20 is inserted into the mounting cavity 112 through the first opening 1121. By arranging the first opening 1121 to face the outer side of the shell assembly 10, on the one hand, it is convenient for the electrode assembly 20 to be arranged on the outer side of the shell assembly through the first opening 1121, and on the other hand, it is convenient for the electrode assembly 20 to be mounted.

[0040] As shown in Figure 2 , Figure 4 and Figure 6 , in an embodiment, the shell assembly 10 further comprises a housing 12, and the liquid storage member 11 is arranged inside the housing 12. The side wall of the housing 12 is provided with a second opening 121, and the first opening 1121 of the mounting cavity 112 is arranged opposite to the second opening 121. One end of the electrode assembly 20 is mounted in the mounting cavity 112, and the other end extends into the second opening 121 through the first opening 1121. Specifically, the electrode assembly 20 extends to the outer surface of the side wall of the housing 12, so as to be electrically connected with the connecting electrode of the host through the second opening 121 of the housing 12.

[0041] As shown in Figure 2 , in an embodiment, the lead wire 34 is inserted into the mounting cavity 112 through the first opening 1121, and the lead wire 34 is clamped between the electrode assembly 20 and the cavity wall of the mounting cavity 112. In this way, the lead wire 34 can be in contact with the electrode assembly 20, and the lead wire 34 can be fixed in the mounting cavity 112 to prevent poor contact between the lead wire 34 and the electrode assembly 20. The assembly method is simple and convenient to operate.

[0042] As shown in Figures 3 to 6 , in an embodiment, the electrode assembly 20 comprises a first electrode 21 and a second electrode 22. The liquid storage member 11 is provided with two spaced mounting cavities 112, and the two mounting cavities 112 are respectively used for mounting the first electrode 21 and the second electrode 22. The side wall of the housing 12 is provided with two second openings 121, and the first electrode 21 and the second electrode 22 respectively extend to different second openings 121. Of course, the electrode assembly 20 can comprise two electrodes, or more than two electrodes. For example, in an embodiment, when the atomizing core comprises two heating components, the electrode assembly 20 can comprise three or four electrodes.

[0043] In an embodiment, as shown in Figures 6-8As shown, the housing 12 is provided with a mouthpiece 122, and the mouthpiece 122 is provided with an air outlet passage 1221. The liquid storage member 11 is provided with a first accommodating cavity 114 at one end close to the mouthpiece 122, and is provided with an air inlet passage 115 at one end away from the mouthpiece 122. The first accommodating cavity 114 is in communication with the air inlet passage 115. The atomizing core 30 is arranged in the first accommodating cavity 114, and the two ends of the atomizing tube 31 are in communication with the air inlet passage 115 and the air outlet passage 1221, respectively. The atomizing tube 31 and the cavity wall of the first accommodating cavity 114 form a liquid storage cavity 111. The air inlet passage 115 is in communication with the atmosphere. When a user inhales, airflow can enter the atomizing tube 31 from the air inlet passage 115, and carry aerosol in the atomizing tube 31 to flow out of the atomizing device from the air outlet passage 1221 for the user to use. By arranging the air inlet passage 115 on the liquid storage member 11, it is not necessary to additionally arrange a gas guide member in the atomizing device. The air inlet passage 115 is integrated on the liquid storage member 11, so as to improve assembly efficiency and reduce cost.

[0044] In one embodiment, as shown in Figure 2 , Figure 5 and Figure 9 , the first accommodating cavity 114 and the second accommodating cavity 116 are arranged in the liquid storage member 11 in sequence along a first direction. For example, in Figure 2 and Figure 9 , the first accommodating cavity 114 and the second accommodating cavity 116 are arranged in sequence from top to bottom. The liquid storage member 11 is provided with the second accommodating cavity 116 at one end away from the mouthpiece 122. The liquid storage cavity 111 and the atomizing core 30 are located in the first accommodating cavity 114, and the mounting cavity 112 is located in the second accommodating cavity 116.

[0045] The lead wire 34 extends to the mounting cavity 112 through the second accommodating cavity 116. The first direction is different from the direction of the first opening 1121, so the lead wire 34 located in the second accommodating cavity 116 has at least one bending portion 341. The lead wire 34 can bend through the bending portion 341 to change the extension direction, so as to extend from the first accommodating cavity 114 to the first opening 1121. For example, in the embodiment of Figure 5 , the lead wire 34 has three bending portions, which can bend the lead wire by ninety degrees in each direction. By arranging the bending portion 341, the lead wire extending vertically downward from the first accommodating cavity 114 to the second accommodating cavity 116 can be bent to the direction of the first opening 1121 of the mounting cavity 112, so as to be electrically connected with the electrode assembly 20 in the mounting cavity 112.

[0046] In an embodiment, the liquid storage member 11 comprises an assembly portion 118 disposed in the second accommodating cavity 116, the assembly portion 118 is formed with a continuous extension channel 1181 and the mounting cavity 112, at least a portion of the extension channel 1181 is located on the side of the mounting cavity 112 away from the first accommodating cavity 114, and at least a portion of the lead wire in the second accommodating cavity 116 is disposed in the extension channel 1181. By providing the assembly portion 118 and the extension channel 1181, the extension channel 1181 can guide the routing of the lead wire 34 in the second accommodating cavity 116, and the size of the extension channel 1181 can be slightly larger than the size of the lead wire 34, so that the lead wire 34 can also be fixed in the extension channel 1181.

[0047] Specifically, the shape of the extension channel 1181 can be set according to the specific extension and bending form of the lead wire 34, for example, the extension channel 1181 can also be provided with a bending structure, and the bending structure is provided corresponding to the bending portion 341 of the lead wire 34.

[0048] In an embodiment, as Figure 5 and Figure 9 , the lead wire 34 comprises a first extension portion 342, a second extension portion 343, a third extension portion 344 and a fourth extension portion 345 connected in sequence through the bending portions 341, that is, the first extension portion 342 and the second extension portion 343 are connected through one bending portion 341, the second extension portion 343 and the third extension portion 344 are connected through another bending portion 341, and the third extension portion 344 and the fourth extension portion 345 are connected through another bending portion 341. The first extension portion 342, the second extension portion 343, the third extension portion 344 and the fourth extension portion 345 extend approximately along a straight line direction, specifically, the first extension portion 342 extends along a first direction, the second extension portion 343 and the third extension portion 344 are disposed in the extension channel 1181, the second extension portion 343 extends along a direction perpendicular to the first direction, the third extension portion 344 extends along a direction opposite to the first direction, the fourth extension portion 345 is disposed in the mounting cavity 112, and the fourth extension portion 345 extends along a direction opposite to the extension direction of the second extension portion 343. In other embodiments, the lead wire 34 can also be designed with different numbers of extension portions, bending portions and extension directions according to the relative positions of the mounting cavity 112, the atomizing core 30 and the assembly portion 118.

[0049] In an embodiment, the liquid storage member 11 further comprises an air passage portion 117 disposed in the second accommodating cavity 116, and the air passage portion 117 is provided with the air inlet channel 115. Specifically, the assembly portion 118 is disposed on the outer side wall of the air passage portion 117, and a slot is formed on the outer surface of the assembly portion 118, and the slot forms an extension channel 1181. By configuring the extension channel 1181 as a slot structure, the lead wire 34 can be installed in the extension channel 1181. More specifically, the side wall of one side of the slot is the side wall of the air passage portion 117, and thus the side wall of the assembly portion 118 and the side wall of the air passage portion 117 define the extension channel 118.

[0050] The first accommodating cavity 114 and the second accommodating cavity 116 are further communicated through a through hole 119, and the through hole 119 is not communicated with the air inlet channel 115. The lead wire 34 can extend from the first accommodating cavity 114 to the second accommodating cavity 116 through the through hole 119. Preferably, after the lead wire 34 passes through the through hole 119, it extends along the outer wall of the air passage portion 117, then passes through the extension channel 1181, and finally is disposed in the mounting cavity 112. By providing the extension channel 1181, the lead wire 34 can be routed more neatly, and the lead wire 34 can be guided to the mounting cavity 112 through the extension channel 1181.

[0051] In an embodiment, the electrode assembly 20 comprises a first electrode 21 and a second electrode 22, and the number of assembly portions 118 and lead wires 34 is two. The two assembly portions 118 are respectively disposed on the two opposite outer sides of the air passage portion 117, and the mounting cavities 112 of the two assembly portions 118 are respectively used for mounting the first electrode 21 and the second electrode 22. The extension channels 1181 of the two assembly portions 118 are respectively used for assembling the two lead wires 34.

[0052] In an embodiment, as shown in Figure 6 The side wall of the shell 12 is provided with an air inlet portion 123, and the air inlet portion 123 is provided with an air inlet hole 1231 communicated with the air inlet channel 115. The air inlet portion 123 is used for detachable connection with the recessed portion of the host, and the air inlet portion 123 can be inserted into the recessed portion of the host to be detachably connected with the host. The air inlet hole 1231 is used for communication with the airflow channel of the host. In this way, the airflow can enter the air inlet channel 115 from the air inlet channel 115 of the host through the air inlet hole 1231. By providing the air inlet portion 123, the air inlet portion 123 can cooperate with the recessed portion of the host to realize physical connection between the two, and after the shell 12 is connected with the host, the air inlet hole 1231 of the shell 12 is also oppositely disposed with the airflow channel of the host, so that the shell 12 can intake air through the air inlet hole 1231.

[0053] In an embodiment, as shown in Figure 3As shown, the shell assembly 10 further comprises a base 13, the outer shell 12 has an assembly cavity 124 therein, the liquid storage member 11 is arranged in the assembly cavity 124, one side of the assembly cavity 124 has a mounting opening 1241, and the base 13 is detachably connected with the outer shell 12 and covers the mounting opening 1241. During assembly, the atomizing core 30 can be assembled in the liquid storage member 11 first, then the liquid storage member 11 is assembled in the assembly cavity 124 through the mounting opening 1241, the mounting opening 1241 is covered by the base 13, and then the electrode assembly 20 is inserted into the mounting cavity 112.

[0054] In an embodiment, as shown, Figure 3 The atomizing device further comprises a magnetic member 40, which is arranged on the side surface of the shell assembly 10 and is used for magnetic adsorption connection with the host. The shell of the host can be made of ferromagnetic material, or the host can be provided with an iron block or a magnet at a position opposite to the magnetic member 40 for magnetic adsorption with the magnetic member 40. By arranging the magnetic member 40, the atomizing device and the host can be quickly connected and detached, and the user does not need to manually align the atomizing device and the host, which is convenient for the user to use the atomizing device.

[0055] The above application of specific examples is used to help understand the present application and does not limit the present application. For those skilled in the art to which the present application belongs, according to the idea of the present application, a number of simple deductions, deformations or substitutions can be made.

Claims

1. An atomizing device, characterized in that: include: A housing assembly, the housing assembly comprising a liquid storage member, wherein the liquid storage member is provided with a liquid storage cavity and a mounting cavity, the liquid storage cavity being used to accommodate an aerosol matrix; an electrode assembly, the electrode assembly being assembled in the mounting cavity, and one end of the electrode assembly extending to the outer side surface of the shell assembly for being electrically connected to an external power source; and an atomizing core, wherein the atomizing core is used to atomize the aerosol matrix to generate an aerosol, and the atomizing core comprises a lead wire, and the lead wire is electrically connected to the electrode assembly.

2. The atomizing device according to claim 1, characterized in that The installation cavity has a first opening, the first opening faces the outer side of the shell assembly, and the electrode assembly is inserted into the installation cavity through the first opening.

3. The atomizing device according to claim 2, characterized in that The liquid storage component has a first accommodating cavity and a second accommodating cavity arranged in sequence along a first direction. The liquid storage cavity and the atomizer core are located in the first accommodating cavity, and the installation cavity is located in the second accommodating cavity. The lead extends to the mounting cavity through the second accommodating cavity. The lead located in the second accommodating cavity has at least one bending portion. The lead can be bent through the bending portion to change the extension direction to extend from the first accommodating cavity to the first opening.

4. The atomizing device according to claim 2 or 3, characterized in that: The lead wire is inserted into the installation cavity through the first opening, and the lead wire is clamped between the electrode assembly and the cavity wall of the installation cavity.

5. The atomizing device according to claim 3, characterized in that The liquid storage component includes an assembly portion arranged in the second accommodating cavity, and an extension channel and the installation cavity are formed on the assembly portion. At least a portion of the extension channel is located on a side of the installation cavity away from the first accommodating cavity, and at least a portion of the lead in the second accommodating cavity is arranged in the extension channel.

6. The atomizing device according to claim 5, characterized in that The lead includes a first extension portion, a second extension portion, a third extension portion and a fourth extension portion which are sequentially connected through the bending portion, the first extension portion extends along the first direction, the second extension portion and the third extension portion are arranged in the extension channel, the second extension portion extends in a direction perpendicular to the first direction, the third extension portion extends in a direction opposite to the first direction, the fourth extension portion is arranged in the mounting cavity, and the fourth extension portion extends in a direction opposite to the extension direction of the second extension portion.

7. The atomizing device according to claim 5, characterized in that The liquid storage component also includes an airway portion arranged in the second accommodating cavity, an air inlet channel is provided in the airway portion, and the air inlet channel is connected to the atomizer core; the assembly portion is arranged on the outer wall of the airway portion, and a groove is provided on the outer surface of the assembly portion, and the groove forms the extension channel.

8. The atomizing device according to claim 7, characterized in that The electrode assembly includes a first electrode and a second electrode, and the number of the assembly parts and the lead wires is two. The two assembly parts are respectively arranged on the two opposite outer sides of the airway part. The installation cavities of the two assembly parts are respectively used to install the first electrode and the second electrode, and the extension channels of the two assembly parts are respectively used to assemble two leads.

9. The atomizing device according to claim 3, characterized in that The shell assembly also includes an outer shell, the liquid storage member is arranged inside the outer shell, a suction nozzle portion is provided on the outer shell, an air outlet channel is provided in the suction nozzle portion, a first accommodating chamber is provided at one end of the liquid storage member close to the suction nozzle portion, an air inlet channel is provided at one end of the liquid storage member away from the suction nozzle portion, and the first accommodating chamber is communicated with the air inlet channel; the atomizer core includes an atomizer tube, the atomizer tube is arranged in the first accommodating chamber, two ends of the atomizer tube are respectively communicated with the air inlet channel and the air outlet channel, and the liquid storage chamber is formed between the atomizer tube and the cavity wall of the first accommodating chamber.

10. An atomizing device, characterized in that: include: An atomizing device, wherein the atomizing device is the atomizing device according to any one of claims 1 to 9; and a host, the host comprising a connecting electrode group, the connecting electrode group being located on the side of the host, the host being detachably connected to the atomizing device, and the electrode assembly being electrically connected to the connecting electrode group.

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