Power supply assembly and atomization device

CN224710528UActive Publication Date: 2026-09-04SHENZHEN GEEKVAPE TECH CO LTD
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Patent Information

Application Number
CN202522005571.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-17
Publication Date
2026-09-04
Estimated Expiration
2035-09-17

AI Technical Summary

Technical Problem

[0003]本申请实施例的目的在于提供一种供电组件及雾化装置,旨在解决相关技术中供电组件在电量用完之后会直接丢弃的技术问题

Benefits of technology

[0026]本申请提供的供电组件的有益效果在于:第一内壳与第二内壳均与第二外壳可拆卸连接,且供电件设置在第一内壳内,这一结构设计可带来多重效果:

✦ Generated by Eureka AI based on patent content.

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Abstract

The application is suitable for the technical field of aerosol generating equipment, and provides a power supply assembly and an atomization device. The power supply assembly comprises a power supply part and an air adjusting part which are detachably connected. The power supply part comprises a first inner shell and a power supply element. The power supply element is arranged in the first inner shell and is used for supplying power to an atomizer. The air adjusting part comprises a second inner shell and a second outer shell. At least part of the structure of the first inner shell is embedded into the second outer shell. The second inner shell is located on one side of the first inner shell and is detachably embedded into the second outer shell. The second inner shell has an air inlet channel which is used for communicating with an atomization channel of the atomizer. When the power supply element is out of power, the user does not need to discard the whole power supply assembly. By separating the second outer shell from the first inner shell and the second inner shell, the first inner shell with the power supply element can be separated from the second inner shell. Therefore, only the first inner shell with the power supply element needs to be replaced, and the remaining parts can still be reused, thereby effectively improving the use value of the power supply assembly.
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Description

Technical Field

[0001] This application belongs to the technical field of aerosol generation equipment, and more specifically, relates to a power supply component and an atomizing device. Background Technology

[0002] An atomizing device is a device used to convert an aerosol matrix into an aerosol. In related technologies, an atomizing device includes an atomizer and a power supply component. The atomizer is mounted on the power supply component, and the two are electrically connected to form a working circuit to ensure the normal operation of the atomizer. However, the aforementioned power supply component is discarded after its power is depleted. Utility Model Content

[0003] The purpose of this application is to provide a power supply component and an atomizing device, which aims to solve the technical problem in the related art that the power supply component is directly discarded after the power is used up.

[0004] To achieve the above objectives, according to one aspect of this application, a power supply assembly is provided, including a detachably connected power supply section and a gas regulating section; the power supply section includes a first inner shell and a power supply component, the power supply component being disposed within the first inner shell for supplying power to an atomizer; the gas regulating section includes a second inner shell and a second outer shell, at least a portion of the structure of the first inner shell being embedded within the second outer shell; the second inner shell is located on one side of the first inner shell and is detachably embedded within the second outer shell; the second inner shell has an air intake channel for communicating with the atomization channel of the atomizer.

[0005] Optionally, the second inner shell is detachably connected to the first inner shell.

[0006] Optionally, the power supply unit also includes a first housing, which is located on one side of the second housing; a portion of the structure of the first inner housing is detachably embedded in the first housing.

[0007] Optionally, one of the outer surface of the first inner shell and the inner wall surface of the second outer shell is provided with a first protruding structure, and the other is interference-fitted with the first protruding structure; and / or, one of the outer surface of the second inner shell and the inner wall surface of the second outer shell is provided with a second protruding structure, and the other is interference-fitted with the second protruding structure; and / or, one of the first inner shell and the second inner shell is provided with a first buckle, and the other is provided with a first slot, the first buckle being detachably snapped into the first slot; and / or, one of the outer surface of the first inner shell and the inner wall surface of the first outer shell is provided with a third protruding structure, and the other is interference-fitted with the third protruding structure.

[0008] Optionally, the power supply unit further includes a first mounting component and a first control component. A first opening is provided on the surface of the first inner shell away from the second inner shell. The power supply component is embedded into the first inner shell through the first opening. The first mounting component is detachably embedded into the first inner shell and blocks the first opening. The first control component is detachably mounted on the first mounting component and is electrically connected to the power supply component for electrical connection with the atomizer.

[0009] Optionally, the first mounting component includes a first mounting body, a first support structure, and a first limiting structure. The first support structure is disposed on the first mounting body and protrudes toward the second inner shell, and the first control component is mounted on the first support structure. The first limiting structure is disposed on the first mounting body and protrudes toward the second inner shell to prevent the first control component from moving toward the second inner shell.

[0010] Optionally, the first limiting structure includes a first limiting body and a first limiting hook. The first limiting body is disposed on the first mounting body and protrudes toward the second inner shell. The first limiting hook is disposed at one end of the first limiting body near the second inner shell, and the first control member is clamped between the first support structure and the first limiting hook.

[0011] Optionally, the first control member has a light-emitting element facing away from the second inner shell, and the first mounting member has a light-emitting hole extending to the side facing away from the second inner shell; the power supply unit also includes a light guide member, which is detachably mounted on the first mounting member and is used to guide the light emitted by the light-emitting element into the light-emitting hole.

[0012] Optionally, a first limiting ring is provided on the surface of the first mounting member near the second inner shell and protrudes toward the second inner shell, and the light-emitting hole communicates with the first limiting ring; one of the light guide member and the first limiting ring is provided with a limiting protrusion, and the other is provided with a limiting hole, and the limiting protrusion is inserted into the limiting hole.

[0013] Optionally, the first control member has a charging head facing away from the second inner shell, and the first mounting member has a limiting insertion hole extending to the side facing away from the second inner shell; the surface of the first mounting member near the second inner shell is provided with a second limiting ring, which protrudes towards the second inner shell, and the limiting insertion hole communicates with the second limiting ring; the charging head passes through the second limiting ring and is inserted into the limiting insertion hole.

[0014] Optionally, the power supply unit also includes an isolator, which is mounted on the first mounting member and covers the first control member; the power supply unit is detachably mounted on the surface of the isolator away from the first mounting member.

[0015] Optionally, a support structure is provided on the first inner shell, and the support structure and the first opening are arranged opposite to each other along the length direction of the first inner shell; the power supply unit also includes a second control component, which is detachably installed on the support structure and electrically connected to the first control component for electrical connection with the atomizer.

[0016] Optionally, the power supply unit also includes a protective element, which is detachably mounted on the surface of the second control element away from the load-bearing structure and covers the second control element.

[0017] Optionally, the air conditioning unit also includes a second mounting component and a third control component. A second opening is provided on the surface of the second inner shell near the first inner shell. The second mounting component is detachably embedded into the second inner shell through the second opening. The third control component is detachably mounted on the second mounting component and is electrically connected to the power supply unit for electrical connection with the atomizer.

[0018] Optionally, the second mounting component includes a second mounting body, a second support structure, and a second limiting structure. The second support structure is disposed on the second mounting body and protrudes away from the second opening. The third control component is mounted on the second support structure. The second limiting structure is disposed on the second mounting body and protrudes away from the second opening to prevent the third control component from moving away from the second opening.

[0019] Optionally, the second limiting structure includes a second limiting body and a second limiting hook. The second limiting body is disposed on the second mounting body and protrudes away from the second opening. The second limiting hook is disposed at the end of the second limiting body away from the second opening. The third control member is clamped between the second support structure and the second limiting hook.

[0020] Optionally, the air conditioning unit further includes: a first electrical connector, which is electrically connected to the power supply unit and the third control unit; and a second electrical connector, which is electrically connected to the third control unit and is used for electrical connection to the atomizer.

[0021] Optionally, the vapor adjustment unit also includes a magnetic ring, and a third limiting ring is provided on the surface of the second inner shell away from the first inner shell. The magnetic ring is interference-fitted into the third limiting ring. A second electrical connector passes through the inner hole of the magnetic ring. The atomizer has a third electrical connector. The second electrical connector is used for electrical connection with the third electrical connector, and the magnetic ring is used for magnetic connection with the third electrical connector, so that the vapor adjustment unit and the atomizer can be detachably connected.

[0022] Optionally, a microphone is provided on the surface of the third control component facing away from the second opening. The microphone is used to sense changes in airflow within the air intake channel. The microphone is fitted with a protective cover.

[0023] Optionally, the air regulating unit further includes an air regulating component for regulating the airflow rate into the air intake channel. The air regulating component includes a mounting body and an air regulating gas. The mounting body is detachably mounted to the second inner shell. A first air regulating hole communicating with the air intake channel is provided on the outer surface of the second inner shell. A second air regulating hole is provided on the air regulating gas. The air regulating gas is rotatably disposed on the mounting body around the axis of the mounting body and has an air-ventilated position and a blocked position. When the air regulating gas is in the air-ventilated position, the air intake channel is connected to the external environment through the first air regulating hole and the second air regulating hole. When the air regulating gas is in the blocked position, the air regulating gas blocks the first air regulating hole.

[0024] Optionally, the second inner shell is provided with mounting holes, and the mounting body is interference-fitted with the mounting holes.

[0025] According to another aspect of this application, an atomizing device is also provided, including an atomizer and the aforementioned power supply component. The atomizer has an atomization channel; the power supply unit is electrically connected to the atomizer and is used to supply power to the atomizer; the air regulating unit is disposed on the side of the power supply unit near the atomizer and is detachably connected to the atomizer; the air intake channel communicates with the atomization channel.

[0026] The beneficial effects of the power supply component provided in this application are as follows: both the first inner shell and the second inner shell are detachably connected to the second outer shell, and the power supply component is located inside the first inner shell. This structural design can bring multiple benefits: Firstly, when the power supply component runs out of power, the user does not need to discard the entire power supply component. Simply separate the second outer shell from the first inner shell and the second inner shell to separate the first inner shell containing the power supply component from the second inner shell. Thus, only the first inner shell containing the power supply component needs to be replaced, while the remaining components can still be reused, effectively improving the use value of the power supply component.

[0027] Secondly, when the power supply component is depleted, the power supply component can be recycled and reused by disassembling the first inner shell, the second inner shell, and the second outer shell. This not only reduces the long-term usage cost for users but also reduces the generation of electronic waste, thereby enhancing the environmental protection attributes of the power supply component.

[0028] Third, the power supply and gas regulation departments use the same second outer shell as a connection carrier, which reduces the number of connecting parts, thereby simplifying the number of parts and reducing the complexity of disassembly and assembly operations and manufacturing costs.

[0029] Fourth, at least a portion of the structure of the first inner shell is embedded within the second outer shell, and the second inner shell is embedded within the second outer shell. This embedded fit creates multiple constraints, enhancing the structural stability of the detachable connections of the components and simplifying assembly operations due to the guiding nature of the embedding. Furthermore, the aforementioned embedding structure allows the power supply unit and the gas regulating unit to partially overlap in space, effectively shortening the overall length of the power supply assembly and achieving a compact design. Attached Figure Description

[0030] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0031] Figure 1 This is a schematic diagram of the atomizing device provided in the embodiments of this application; Figure 2 This is a side view of the atomizing device provided in an embodiment of this application; Figure 3 for Figure 2 Schematic diagram of the cross section of AA; Figure 4 This is an exploded schematic diagram of the atomizing device provided in the embodiments of this application; Figure 5 for Figure 3 Enlarged view of point B in the middle; Figure 6 for Figure 3 Enlarged view of point C in the middle; Figure 7 for Figure 3 Enlarged view of point D; Figure 8 for Figure 3 Enlarged view of point E in the middle; Figure 9 A schematic diagram of the power supply section provided in an embodiment of this application; Figure 10 An exploded view of the power supply section provided in an embodiment of this application; Figure 11 A schematic diagram of the structure of the first outer shell provided in an embodiment of this application; Figure 12 This is a schematic diagram of the structure of the gas regulating unit provided in an embodiment of this application; Figure 13 An explosion diagram of the gas regulating section provided in an embodiment of this application; Figure 14 This is a schematic diagram of the structure of the second inner shell provided in an embodiment of this application from a first perspective; Figure 15 This is a schematic diagram of the structure of the second inner shell from a second perspective, provided in an embodiment of this application. Figure 16 This is a schematic diagram of the structure of the first mounting component provided in an embodiment of this application; Figure 17 A top view of the first mounting component provided in an embodiment of this application; Figure 18 This is a schematic diagram of the structure of the second mounting component provided in the embodiments of this application; Figure 19 This is a schematic diagram of the structure of the gas conditioning provided in an embodiment of this application; The details of the reference numerals used in the above figures are as follows: 100. Atomizer; 110. Third electrical connector; 200. Power supply unit; 210. First inner shell; 211. First protruding structure; 212. First buckle; 213. Third protruding structure; 214. First opening; 215. Second slot; 216. Bearing structure; 220. Power supply component; 230. First outer shell; 240. First mounting component; 241. First mounting body; 2411. Light-emitting hole; 242. First support structure; 243. First limiting structure; 2431. First limiting body; 2432. First limiting hook; 244. First guide structure; 245. First limiting ring; 2451. Limiting protrusion; 246. Second limiting ring; 247. Second buckle; 250, First control component; 251, First guide hole; 252, Charging head; 260, Light guide component; 261, Limiting hole; 270, Isolation component; 280, Second control component; 290, Protective component; 300. Air regulating section; 310. Second inner shell; 311. Air intake passage; 312. Second protruding structure; 313. First slot; 314. Receiving groove; 315. Second opening; 316. Third limiting ring; 317. Third slot; 318. First air regulating hole; 319. Second guide hole; 3101. Mounting hole; 320. Second outer shell; 330. Gas regulating component; 331. Mounting body; 3311. Limiting cap; 332. Gas regulating; 3321. Second gas regulating hole; 3322. Second guide structure; 3323. Mounting groove; 3324. Barrier groove wall; 333. Sealing body; 340. Sealing element; 350. Second mounting component; 351. Second mounting body; 352. Second support structure; 353. Second limiting structure; 3531. Second limiting body; 3532. Second limiting hook; 354. Third buckle; 360. Third control component; 370. First electrical connector; 380. Second electrical connector; 390. Magnetic ring; 3100. Microphone; 3110. Protective cover. Detailed Implementation

[0032] To make the technical problems, technical solutions, and beneficial effects to be solved by this application clearer, the following detailed description is provided in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and are not intended to limit the scope of this application.

[0033] It should be noted that when an element is referred to as being "fixed to" or "set on" another element, it can be directly or indirectly on that other element. When an element is referred to as being "connected to" another element, it can be directly or indirectly connected to that other element. Unless otherwise specified, the embodiments and features described in this application can be combined with each other. This application will now be described in detail with reference to the accompanying drawings and embodiments.

[0034] It should be understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.

[0035] In the description of this application, unless otherwise stated, " / " indicates that the objects before and after are in an "or" relationship. For example, A / B can mean A or B. "And / or" in this application is merely a description of the relationship between the related objects, indicating that there can be three relationships. For example, A and / or B can mean: A exists alone, A and B exist simultaneously, and B exists alone. A and B can be singular or plural.

[0036] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include one or more of that feature. In the description of this application, "multiple" means two or more, unless otherwise explicitly specified.

[0037] As described in the background section, an atomizing device is a device used to convert an aerosol matrix into an aerosol. In related technologies, an atomizing device includes an atomizer and a power supply component. The atomizer is mounted on the power supply component, and the two are electrically connected to form a working circuit to ensure the normal operation of the atomizer. However, the aforementioned power supply component is discarded after its power is depleted.

[0038] Reference Figures 1 to 8To address the aforementioned problems, according to one aspect of this application, an embodiment of this application provides a power supply assembly, which includes a detachably connected power supply unit 200 and an air regulating unit 300. The power supply unit 200 includes a first inner shell 210 and a power supply component 220, which is disposed within the first inner shell 210 and is used to supply power to the atomizer 100. The air regulating unit 300 includes a second inner shell 310 and a second outer shell 320, at least a portion of the structure of the first inner shell 210 is detachably embedded within the second outer shell 320, the second inner shell 310 is located on one side of the first inner shell 210 and is detachably embedded within the second outer shell 320, and the second inner shell 310 has an air intake channel 311 for communicating with an atomization channel.

[0039] In this embodiment, the power supply component is used in an atomizing device, which includes an atomizer 100; the airflow regulating part 300 is located on the side of the power supply part 200 near the atomizer 100. The power supply component 220 is a power supply battery, which is arranged along the length direction (i.e., axial direction) of the first inner shell 210 and is completely located inside the first inner shell 210. The second inner shell 310 is located on the side of the first inner shell 210 near the atomizer 100, and the length direction (i.e., axial direction) of the second inner shell 310 is parallel to the length direction of the first inner shell 210. The length direction (i.e., axial direction) of the second outer shell 320 is parallel to the length direction of the first inner shell 210. Part of the structure of the first inner shell 210 is embedded in the second outer shell 320 and can be detachably connected to the second outer shell 320 through a snap-fit ​​structure, screw structure, magnetic structure, or plug-in structure. The second outer shell 320 is used to restrict the axial movement and circumferential rotation of the first inner shell 210 within the second outer shell 320. The entire structure of the second inner shell 310 is embedded within the second outer shell 320 and can be detachably connected to the second outer shell 320 via a snap-fit ​​structure, screw connection structure, magnetic attraction structure, or plug-in structure. The second outer shell 320 is used to restrict the axial movement and circumferential rotation of the second inner shell 310 within the second outer shell 320. An air-adjusting groove is provided on the surface of the second inner shell 310 near the atomizer 100. The air-adjusting groove communicates with the atomization channel and can communicate with the external environment, forming an air intake channel 311. Furthermore, the air-adjusting unit 300 also includes an air-adjusting component 330, which is disposed on the first inner shell 210 and used to adjust the airflow rate entering the air intake channel 311.

[0040] Both the first inner shell 210 and the second inner shell 310 are detachably connected to the second outer shell 320, and the power supply component 220 is located inside the first inner shell 210. This structural design can bring multiple benefits: Firstly, when the power supply component 220 runs out of power, the user does not need to discard the entire power supply component. Simply by separating the second outer shell 320 from the first inner shell 210 and the second inner shell 310, the first inner shell 210 containing the power supply component 220 can be separated from the second inner shell 310. Thus, only the first inner shell 210 containing the power supply component 220 needs to be replaced, and the remaining components can still be reused, effectively improving the use value of the power supply component.

[0041] Secondly, when the power supply component 220 is depleted, the power supply component can be recycled and reused by disassembling the first inner shell 210, the second inner shell 310, and the second outer shell 320. This not only reduces the long-term usage cost for users but also reduces the generation of electronic waste, thereby enhancing the environmental protection attributes of the power supply component.

[0042] Third, the power supply unit 200 and the gas regulating unit 300 use the same second housing 320 as a connection carrier, which reduces the number of connecting parts, thereby simplifying the number of parts and reducing the complexity of disassembly and assembly operations and manufacturing costs.

[0043] Fourth, at least a portion of the structure of the first inner shell 210 is embedded within the second outer shell 320, and the second inner shell 310 is embedded within the second outer shell 320. This embedded fit creates multiple constraints, enhancing the structural stability of the detachable connections of the components and simplifying assembly operations due to the guiding nature of the embedding. Furthermore, the aforementioned embedding structure allows the power supply unit 200 and the air regulating unit 300 to partially overlap in space, effectively shortening the overall length of the power supply assembly and achieving a compact design.

[0044] Reference Figure 4 , Figure 5 as well as Figures 9 to 11 In one embodiment, one of the outer surface of the first inner shell 210 and the inner wall surface of the second outer shell 320 is provided with a first protruding structure 211, and the other is interference-fitted with the first protruding structure 211.

[0045] In this embodiment, the first protruding structure 211 is a ridge provided on the outer surface of the first inner shell 210 along the length direction of the first inner shell 210, and the inner wall surface of the second outer shell 320 is in interference contact with the first protruding structure 211. It can be understood that the first protruding structure 211 may also be a ridge provided on the inner wall surface of the second outer shell 320 along the length direction of the second outer shell 320, and the outer surface of the first inner shell 210 is in interference contact with the first protruding structure 211.

[0046] The interference fit structure design not only strengthens the connection strength and stability of the first inner shell 210 and the second outer shell 320, but also simplifies the structure and reduces the assembly difficulty.

[0047] Furthermore, to further reduce assembly difficulty, both end faces of the first protruding structure 211 along its length are guide slopes; the first inner shell 210 is a plastic part, and the second outer shell 320 is a metal part, and the first protruding structure 211 and the first inner shell 210 are integrally molded parts. To further enhance the connection strength and stability of the first inner shell 210 and the second outer shell 320, there are multiple first protruding structures 211, which are spaced apart circumferentially along the first inner shell 210.

[0048] Reference Figures 12 to 14 In one embodiment, one of the outer surface of the second inner shell 310 and the inner wall surface of the second outer shell 320 is provided with a second protruding structure 312, and the other is interference-fitted with the second protruding structure 312.

[0049] In this embodiment, the second protruding structure 312 is a protrusion provided on a certain outer surface of the second inner shell 310 along the length direction of the second inner shell 310, and the inner wall surface of the second outer shell 320 is in interference contact with the second protruding structure 312. It can be understood that the second protruding structure 312 may also be a protrusion provided on the inner wall surface of the second outer shell 320 along the length direction of the second outer shell 320, and the outer surface of the second inner shell 310 is in interference contact with the second protruding structure 312.

[0050] The interference fit design not only strengthens the connection strength and stability between the second inner shell 310 and the second outer shell 320, but also simplifies the structure and reduces assembly difficulty.

[0051] Furthermore, to further reduce assembly difficulty, both end faces of the second protruding structure 312 along its length are guide slopes; the second inner shell 310 is a plastic part, the second outer shell 320 is a metal part, and the second protruding structure 312 and the second inner shell 310 are integrally molded parts. To further enhance the connection strength and stability of the second inner shell 310 and the second outer shell 320, there are multiple second protruding structures 312, which are spaced apart circumferentially along the first inner shell 210.

[0052] Reference Figure 4 and Figure 7 In one embodiment, the second inner shell 310 is detachably connected to the first inner shell 210.

[0053] In this embodiment, the second inner shell 310 can be detachably connected to the first inner shell 210 via a snap-fit ​​structure, a screw-fit structure, a magnetic structure, or a plug-in structure.

[0054] The second inner shell 310 and the first inner shell 210 adopt a detachable connection structure design. Under the premise of ensuring that the two can be flexibly separated (meeting the requirements of independent disassembly and assembly), the direct cooperation between the two forms additional positioning and constraints, which further enhances the overall stability of the connection between the power supply unit 200 and the gas regulating unit 300.

[0055] Reference Figure 4 , Figure 7 as well as Figure 14 In one embodiment, one of the first inner shell 210 and the second inner shell 310 is provided with a first buckle 212, and the other is provided with a first slot 313. The first buckle 212 is detachably snapped into the first slot 313.

[0056] In this embodiment, the first buckle 212 is disposed on the first inner shell 210, and the first slot 313 is disposed on the second inner shell 310; it can be understood that the first buckle 212 may also be disposed on the second inner shell 310, and the first slot 313 may be disposed on the first inner shell 210; the first buckle 212 may also be a hook or a block.

[0057] The first buckle 212 and the first slot 313 used together can achieve a stable and convenient detachable connection through mechanical engagement; at the same time, they simplify the structural design and reduce costs. In addition, the first buckle 212 and the first slot 313 used together are reusable, which can meet the needs of multiple disassembly and assembly, thus extending the overall service life.

[0058] In addition, to enhance the stability of the connection between the first inner shell 210 and the second inner shell 310, there are multiple first buckles 212, which are spaced apart along the circumference of the first inner shell 210; the number of first slots 313 is the same as the number of first buckles 212, and the multiple first slots 313 are respectively set one-to-one with the multiple first buckles 212.

[0059] In addition, to further reduce the overall size of the atomizing device, a portion of the structure on the first inner shell 210 with a first buckle 212 is embedded into the second inner shell 310.

[0060] Reference Figure 3 , Figure 8 as well as Figure 13 In one embodiment, a sealing member 340 is clamped and pressed between the outer surface of the second inner shell 310 and the inner wall surface of the second outer shell 320, and the sealing member 340 is arranged along the circumference of the second inner shell 310.

[0061] In this embodiment, the sealing element 340 is a sealing ring or sealing ring, the outer surface of the second inner shell 310 is kept in contact with the sealing element 340, and the inner wall surface of the second outer shell 320 is kept in contact with the sealing element 340.

[0062] The sealing element 340 not only effectively blocks air leakage from the gap between the second inner shell 310 and the second outer shell 320, but also ensures that external airflow enters the atomization channel only through the air inlet channel 311, avoiding interference from unexpected airflow to the air regulating element 330, thereby affecting the air regulating element 330's regulation of airflow and ensuring the user's control precision over aerosol concentration and taste.

[0063] Simultaneously, it can prevent external dust, moisture, and other impurities from entering the air intake channel 311 through the gap between the second inner shell 310 and the second outer shell 320, thereby enhancing the sealing performance of the atomizing device and extending its service life. Furthermore, it can buffer vibrations and reduce abnormal noises, as well as compensate for assembly tolerances and improve production consistency.

[0064] Reference Figure 3 , Figure 8 as well as Figure 13 In one embodiment, the sealing element 340 is a sealing ring, and the outer surface of the second inner shell 310 is provided with a receiving groove 314, into which the sealing element 340 is embedded.

[0065] In this embodiment, the receiving groove 314 is arranged along the circumference of the second inner shell 310, and the sealing ring is kept in contact with the bottom of the receiving groove 314.

[0066] The provided receiving groove 314 not only provides a receiving space for the seal 340, ensuring that the seal 340 can be stably installed, but also limits the seal 340, ensuring that the seal 340 is always in the preset sealing position, thereby ensuring that the seal 340 stably performs its sealing function of blocking gaps and isolating impurities.

[0067] Reference Figure 1 , Figure 2 as well as Figure 4 In one embodiment, the power supply unit 200 further includes a first housing 230 located on one side of the second housing 320; a portion of the structure of the first inner housing 210 is detachably embedded in the first housing 230.

[0068] In this embodiment, the first outer shell 230 is located on the side of the second outer shell 320 away from the atomizer 100. The length direction (i.e., axial direction) of the first outer shell 230 is parallel to the length direction of the second outer shell 320. Part of the structure of the first inner shell 210 is embedded in the first outer shell 230 and can be detachably connected to the first outer shell 230 through a snap-fit ​​structure, screw structure, magnetic structure or plug-in structure. The first outer shell 230 is used to restrict the axial movement and circumferential rotation of the first inner shell 210 within the first outer shell 230.

[0069] The first outer shell 230 serves as the outer protective structure of the first inner shell 210, providing physical protection for the power supply component 220 inside the first inner shell 210. It works in conjunction with the second outer shell 320 to further enhance the overall structural strength and durability of the power supply unit 200.

[0070] Meanwhile, the first inner shell 210 and the first outer shell 230 adopt a detachable embedded design. On the one hand, this facilitates the quick separation of the first outer shell 230 and the first inner shell 210 when the power supply unit 200 needs to be disassembled, thereby enabling the disassembly of the first inner shell 210, the first outer shell 230, and the power supply component 220. On the other hand, the guiding nature of the embedded structure ensures accurate alignment during assembly, improving disassembly and assembly efficiency.

[0071] Reference Figure 1 , Figure 2 , Figure 4 , Figure 5 , Figure 10 as well as Figure 11 In one embodiment, one of the outer surface of the first inner shell 210 and the inner wall surface of the first outer shell 230 is provided with a third protruding structure 213, and the other is interference-fitted with the third protruding structure 213.

[0072] In this embodiment, the third protruding structure 213 is a protrusion provided on the outer surface of the first inner shell 210 along the length direction of the first inner shell 210, and the inner wall surface of the first outer shell 230 is in interference contact with the first protruding structure 211. It can be understood that the first protruding structure 211 may also be a protrusion provided on the inner wall surface of the first outer shell 230 along the length direction of the first outer shell 230, and the outer surface of the first inner shell 210 is in interference contact with the first protruding structure 211.

[0073] The interference fit structure design not only strengthens the connection strength and stability between the first inner shell 210 and the first outer shell 230, but also simplifies the structure and reduces the assembly difficulty.

[0074] Furthermore, to further reduce assembly difficulty, both end faces of the third protruding structure 213 along its length are guide slopes; the first inner shell 210 is a plastic part, the first outer shell 230 is a metal part, and the third protruding structure 213 and the first inner shell 210 are integrally molded parts. To further enhance the connection strength and stability between the first inner shell 210 and the first outer shell 230, there are multiple third protruding structures 213, which are spaced apart circumferentially along the first inner shell 210.

[0075] In addition, to further strengthen the connection between the power supply unit 200 and the gas regulating unit 300, the outer surface of the first housing 230 is in partial interference contact with the first protruding structure 211, and the outer surface of the second housing 320 is in partial interference contact with the first protruding structure 211.

[0076] Reference Figure 6 , Figure 10 as well as Figure 11 In one embodiment, the power supply unit 200 further includes a first mounting member 240 and a first control member 250. The surface of the first inner shell 210 away from the second inner shell 310 is provided with a first opening 214. The power supply member 220 is embedded in the first inner shell 210 through the first opening 214. The first mounting member 240 is detachably embedded in the first inner shell 210 and blocks the first opening 214. The first control member 250 is detachably mounted on the first mounting member 240 and is electrically connected to the power supply member 220 for electrical connection with the atomizer 100.

[0077] In this embodiment, the first mounting component 240 is a mounting bracket or mounting base, and the first control component 250 is a control circuit board. The power supply component 220 is located on the side of the first mounting component 240 near the second inner shell 310. A portion of the structure of the first mounting component 240 is embedded in the first inner shell 210 and can be detachably embedded in the first inner shell 210 through a snap-fit ​​structure, screw connection structure, magnetic attraction structure, or plug-in structure. Another portion of the structure of the first mounting component 240 is located outside the first inner shell 210 and completely blocks the first opening 214. The first control component 250 can be detachably mounted on the first mounting component 240 through a snap-fit ​​structure, screw connection structure, magnetic attraction structure, or plug-in structure. The first control component 250 is directly electrically connected to the power supply component 220 and electrically connected to the atomizer 100 through an intermediate component. It can be understood that the first control component 250 can also be directly electrically connected to the atomizer 100.

[0078] The power supply component 220 is embedded in the first inner shell 210 through the first opening 214, and the first mounting component 240 is detachably embedded in the first inner shell 210 and seals the first opening 214. This facilitates the removal of the power supply component 220 from the first inner shell 210, thus enabling the separation of the power supply component 220 from the first inner shell 210. Furthermore, the first mounting component 240 effectively prevents external dust, moisture, and other impurities from entering the first inner shell 210 through the first opening 214, thereby reducing the risk of contamination or short circuit of the power supply component 220. It also helps to reduce the overall size of the atomizing device, achieving a compact design.

[0079] Meanwhile, the first mounting component 240 is detachably connected to the first inner shell 210, and the first control component 250 is detachably connected to the first mounting component 240. This structural design not only facilitates the disassembly of the first mounting component 240, the first control component 250, and the first inner shell 210 into independent parts, thereby enabling recycling and reuse, but also further enhances the overall value of the atomizing device. Furthermore, it facilitates the individual replacement of any malfunctioning first mounting component 240, the first control component 250, and the first inner shell 210, avoiding the need to replace the entire power supply unit 200 and reducing maintenance costs.

[0080] In addition, to improve the stability of the connection between the first outer shell 230 and the first inner shell 210, the first outer shell 230 is mounted on the first mounting member 240 on the part of the structure located outside the first inner shell 210.

[0081] Reference Figure 6 , Figure 10 , Figure 11 , Figure 16 as well as Figure 17 In one embodiment, the first mounting member 240 includes a first mounting body 241, a first support structure 242, and a first limiting structure 243. The first support structure 242 is disposed on the first mounting body 241 and protrudes toward the second inner shell 310. The first control member 250 is attached to the first support structure 242. The first limiting structure 243 is disposed on the first mounting body 241 and protrudes toward the second inner shell 310 to prevent the first control member 250 from moving toward the second inner shell 310.

[0082] In this embodiment, the first mounting body 241 blocks the first opening 214. The first support structure 242 is a support plate or support rod, and the first support structure 242 and the first mounting body 241 are integrally formed. To improve the stability of the support, there are multiple first support structures 242, which are spaced apart circumferentially along the first mounting body 241. The first control member 250 is mounted on the multiple first support structures 242. The first limiting structure 243 can be a limiting rib or boss provided along the circumference or edge of the first mounting body 241, and can undergo elastic deformation so that the first control member 250 can separate from the first limiting structure 243. To improve the limiting effect, there are multiple first limiting structures 243, which are spaced apart circumferentially along the first mounting body 241.

[0083] The first support structure 242 provides a stable support base for the first control component 250; at the same time, the first limiting structure 243 can prevent the first control component 250 from moving toward the atomizer 100, thus limiting the displacement of the first control component 250. The two work together to form a double limiting, effectively improving the installation stability and reliability of the first control component 250.

[0084] Reference Figure 1 , Figure 6 , Figure 10 , Figure 11 , Figure 16 as well as Figure 17 In one embodiment, the first limiting structure 243 includes a first limiting body 2431 and a first limiting hook 2432. The first limiting body 2431 is disposed on the first mounting body 241 and protrudes toward the second inner shell 310. The first limiting hook 2432 is disposed at one end of the first limiting body 2431 near the second inner shell 310. The first control member 250 is clamped between the first support structure 242 and the first limiting hook 2432.

[0085] In this embodiment, the first limiting structure 243 is a plastic part; the first limiting body 2431 is a limiting rod, and the first limiting body 2431 and the first mounting body 241 are integrally formed parts; the first limiting hook 2432 has a first limiting surface facing the first control member 250, and the first control member 250 is located between the surface of the first support structure 242 near the atomizer 100 and the first limiting surface.

[0086] When assembling the first control component 250 and the first mounting component 240, simply align the first control component 250 with the first support structure 242 and then use the hooking action of the first limiting hook 2432 to complete the fixation. No complicated alignment is required throughout the process, resulting in high assembly efficiency. When disassembling, simply apply external force to the first limiting hook 2432 to detach it from the first control component 250, and then move the first control component 250 away from the first support structure 242 to complete the separation. No cumbersome steps are required, making the operation simple and convenient.

[0087] Reference Figure 10 , Figure 11 , Figure 16 as well as Figure 17 In one embodiment, one of the first mounting body 241 and the first control member 250 is provided with a first guide structure 244, and the other is provided with a first guide hole 251, with the first guide structure 244 inserted into the first guide hole 251.

[0088] In this embodiment, the first guide structure 244 is a guide plate with guide posts. The first guide structure 244 and the first mounting body 241 are integrally formed. The first guide hole 251 is a through hole penetrating the first control member 250 and is disposed on the edge of the first control member 250. It can be understood that the first guide structure 244 can also be disposed on the first control member 250, and the first guide hole 251 can be disposed on the first mounting body 241.

[0089] The first guide structure 244 and the first guide hole 251 used in conjunction not only serve as guides, thereby improving the accuracy and efficiency of the assembly and alignment of the first control component 250 and the first mounting component 240, but also form auxiliary constraints to reduce the shaking of the first control component 250 and the first mounting body 241 caused by vibration and impact during use, and enhance the stability of the first control component 250 installed on the first mounting component 240.

[0090] Reference Figure 1 , Figure 6 , Figure 10 , Figure 11 , Figure 16 as well as Figure 17 In one embodiment, the first control member 250 has a light-emitting body disposed facing away from the second inner shell 310, and the first mounting member 240 is provided with a light-emitting hole 2411 extending to the side facing away from the second inner shell 310; the power supply unit 200 further includes a light guide member 260, which is detachably mounted on the first mounting member 240 and is used to guide the light emitted by the light-emitting body into the light-emitting hole 2411.

[0091] In this embodiment, the light-emitting element is an LED bead, which is electrically connected to the first control component 250. The light-emitting element is used to display the power supply of the power supply component 220 through changes in light. The full English name of LED is Light Emitting Diode. The light-emitting hole 2411 is a through hole, which extends from the surface of the first mounting body 241 near the second inner shell 310 to the surface of the first mounting body 241 away from the second inner shell 310 (i.e., the surface located in the external environment). The light guide 260 can be a light guide body, a light guide plate, or a light guide strip. The light guide 260 can be detachably mounted on the first mounting body 241 through a snap-fit ​​structure, a screw structure, a magnetic structure, or a plug-in structure.

[0092] The light guide 260 not only efficiently guides the light emitted by the light source to the light-emitting hole 2411, but also reduces the risk of light divergence or deviation through directional conduction, ensuring that the light is concentrated and emitted from the light-emitting hole 2411, significantly improving display clarity. Furthermore, the light guide 260 and the first mounting body 241 are designed to be detachably connected. This facilitates the separation of the light guide and the first mounting body 240 into independent components for recycling and reuse. Additionally, when the light guide 260 needs maintenance or replacement due to aging or damage, it can be operated independently without requiring the replacement of the first mounting body 241, simplifying the maintenance process and reducing costs.

[0093] Reference Figure 1 , Figure 6 , Figure 10 , Figure 11 , Figure 16 as well as Figure 17 In one embodiment, a first limiting ring 245 is provided on the surface of the first mounting member 240 near the second inner shell 310 and protrudes toward the second inner shell 310. The light-emitting hole 2411 communicates with the first limiting ring 245. One of the light guide member 260 and the first limiting ring 245 is provided with a limiting protrusion 2451, and the other is provided with a limiting hole 261. The limiting protrusion 2451 is inserted into the limiting hole 261.

[0094] In this embodiment, the first limiting ring 245 is disposed on the surface of the first mounting body 241 near the second inner shell 310; the light-emitting hole 2411 is located within the projection plane of the first limiting ring 245 onto the first mounting body 241. A limiting protrusion 2451 is disposed along the length direction of the first inner shell 210 on the inner wall surface of the first limiting ring 245, and a limiting hole 261 is disposed along the length direction of the first inner shell 210 on the light guide 260; it can be understood that the limiting protrusion 2451 may also be disposed along the length direction of the first inner shell 210 on the light guide 260, and the limiting hole 261 may be disposed along the length direction of the first inner shell 210 on the inner wall surface of the first limiting ring 245. Furthermore, the light guide 260 has a three-dimensional structure with a polygonal cross-section.

[0095] The matching limiting protrusion 2451 and limiting hole 261 not only form a physical limit, effectively restricting the left and right sway of the light guide 260 within the first limiting ring 245 through the interlocking of the protrusions and concave parts, thus improving the stability of the light guide 260 when inserted into the first limiting ring 245. Simultaneously, they also serve a guiding function, thereby improving the accuracy and efficiency of the assembly and alignment of the light guide 260 with the first limiting ring 245. Furthermore, this interlocking mechanism retains a detachable characteristic; simply applying a pulling force to the light guide 260 allows it to be quickly pulled out from within the first limiting ring 245, thus facilitating the disassembly of the power supply unit 200 and the maintenance and replacement of the light guide 260.

[0096] In addition, to ensure the limiting effect, there are multiple limiting protrusions 2451, which are spaced apart along the circumference of the first limiting ring 245; the number of limiting holes 261 is the same as the number of limiting protrusions 2451, and the multiple limiting protrusions 2451 are respectively set in correspondence with the multiple limiting holes 261.

[0097] Reference Figure 1 , Figure 6 , Figure 10 , Figure 11 , Figure 16 as well as Figure 17In one embodiment, the first control member 250 has a charging head 252 facing away from the second inner shell 310, and the first mounting member 240 is provided with a limiting insertion hole extending to the side facing away from the second inner shell 310; the surface of the first mounting member 240 near the second inner shell 310 is provided with a second limiting ring 246, which protrudes towards the second inner shell 310, and the limiting insertion hole communicates with the second limiting ring 246; the charging head 252 passes through the second limiting ring 246 and is inserted into the limiting insertion hole.

[0098] In this embodiment, the charging head 252 is electrically connected to the first control component 250; the limiting socket extends from the surface of the first mounting body 241 near the atomizer 100 to the surface of the first mounting body 241 away from the atomizer 100 (i.e., the surface located in the external environment). The second limiting ring 246 is disposed on the surface of the first mounting body 241 near the second inner shell 310 and is integrally formed with the first mounting body 241. The limiting socket is located within the projection plane of the second limiting ring 246 onto the first mounting body 241. The limiting socket and the second limiting ring 246 are coaxially arranged, and the diameter of the limiting socket is equal to the inner diameter of the second limiting ring 246.

[0099] The second limiting ring 246 not only provides a physical limit, effectively restricting the left-right wobbling of the charging head 252 and thus improving the stability of the charging head 252 when inserted into the second limiting ring 246, but also serves as a guide, thereby improving the accuracy and efficiency of the assembly and alignment of the charging head 252 and the second limiting ring 246. Furthermore, the second limiting ring 246 retains a detachable feature; by simply applying a pulling force to the first control member 250, the charging head 252 can be quickly pulled out from within the second limiting ring 246, thus facilitating the disassembly of the power supply unit 200 and the maintenance and replacement of the charging head 252.

[0100] In addition, the limiting socket not only physically limits the charging head 252, but also allows the charging head 252 to be plugged into external components, ensuring the smooth realization of the external connection function of the first control component 250.

[0101] Reference Figure 6 , Figure 10 as well as Figure 16 In one embodiment, the power supply unit 200 further includes an isolation member 270, which is mounted on the first mounting member 240 and covers the first control member 250; the power supply member 220 is detachably mounted on the surface of the isolation member 270 away from the first mounting member 240.

[0102] In this embodiment, the isolating element 270 is an isolating foam, isolating pad, or isolating sheet. The isolating element 270 is directly mounted on the end face of the first limiting structure 243 away from the first mounting body 241. The isolating element 270 completely covers the first control element 250, that is, the projection surface of the isolating element 270 onto the first mounting body 241 completely covers the projection surface of the first control element 250 onto the first mounting body 241. The power supply element 220 is detachably mounted on the surface of the isolating element 270 away from the first mounting body 241 using removable adhesive or removable double-sided adhesive.

[0103] The isolator 270 serves two purposes: firstly, it isolates the first control component 250 and the power supply component 220, preventing direct contact and reducing the risk of short circuits between them. Secondly, it acts as a buffer, reducing the impact force exerted by the power supply component 220 on the first control component 250 when the atomizing device falls, thus extending the service life of both components. Furthermore, the power supply component 220 is detachably mounted on the isolator 270, a design that facilitates the separation of the isolator 270 and the power supply component 220 into independent parts, enabling recycling and reuse.

[0104] Reference Figure 6 , Figure 16 as well as Figure 17 In one embodiment, one of the first mounting member 240 and the first inner shell 210 is provided with a second buckle 247, and the other is provided with a second slot 215. The second buckle 247 is detachably snapped into the second slot 215.

[0105] In this embodiment, the second buckle 247 is disposed on the first mounting member 240, and the second slot 215 is disposed on the first inner shell 210; it can be understood that the second buckle 247 may also be disposed on the first inner shell 210, and the second slot 215 may be disposed on the first mounting member 240; the second buckle 247 may also be a hook or a block.

[0106] The second latch 247 and the second slot 215 used in conjunction provide a stable and convenient detachable connection through mechanical engagement, while also simplifying the structural design and reducing costs. Furthermore, the second latch 247 and the second slot 215 are reusable, allowing for multiple assembly and disassembly cycles and extending the overall service life.

[0107] In addition, to enhance the stability of the connection between the first mounting component 240 and the first inner shell 210, there are multiple second buckles 247, which are spaced apart along the circumference of the first mounting component 240; the number of second slots 215 is the same as the number of second buckles 247, and the multiple second slots 215 are respectively set one-to-one with the multiple second buckles 247.

[0108] Reference Figure 1 , Figure 7 , Figure 10 as well as Figure 11 In one embodiment, a support structure 216 is provided on the first inner shell 210, and the support structure 216 and the first opening 214 are arranged opposite to each other along the length direction of the first inner shell 210; the power supply unit 200 also includes a second control member 280, which is detachably installed on the support structure 216, and is electrically connected to the first control member 250 for electrical connection with the atomizer 100.

[0109] In this embodiment, the supporting structure 216 is a support platform or support plate, and is integrally formed with the first inner shell 210. To reduce the overall size of the atomizing device, the supporting structure 216 is located inside the first inner shell 210, and the second control component 280 is also located inside the first inner shell 210. The second control component 280 can be directly mounted onto the supporting structure 216, or it can be detachably mounted onto the supporting structure 216 via a snap-fit ​​structure, screw connection structure, magnetic attraction structure, or plug-in structure. The second control component 280 is a control circuit board, and it is directly electrically connected to the first control component 250. The second control component 280 is also electrically connected to the atomizer 100 through an intermediate component. It can be understood that the second control component 280 can also be directly electrically connected to the first control component 250.

[0110] On the one hand, the supporting structure 216 provides a stable support and installation foundation for the second control component 280; and the design of the second control component 280 being detachably installed on the supporting structure 216 facilitates quick disassembly and assembly, which is beneficial to the overall disassembly of the power supply unit 200 and also provides convenience for the maintenance or replacement of the second control component 280 itself.

[0111] On the other hand, the separate design of the first control component 250 and the second control component 280 can reasonably separate the multiple control functions of the atomizing device, avoid the structural complexity and failure risk caused by integrating too many functions into a single control component, thereby reducing the design and manufacturing difficulty of a single component and improving the stability and fault tolerance of the system operation.

[0112] Reference Figure 7 as well as Figures 9 to 11 In one embodiment, the power supply unit 200 further includes a protective member 290, which is detachably mounted on the surface of the second control member 280 away from the support structure 216 and covers the second control member 280.

[0113] In this embodiment, the protective component 290 is a protective foam, protective pad, or protective sheet. The protective component 290 can be directly attached to the surface of the second control component 280 away from the supporting structure 216, or it can be detachably installed on the second control component 280 or the second inner shell 310 via a snap-fit ​​structure, screw connection, magnetic connection, or plug-in connection. The protective component 290 completely covers the second control component 280; that is, the projection surface of the protective component 290 onto the first mounting body 241 completely covers the projection surface of the second control component 280 onto the first mounting body 241.

[0114] The protective element 290 serves two purposes: firstly, it covers and protects the second control element 280; secondly, it acts as a buffer, reducing the impact force exerted on the second control element 280 by components located near the atomizer 100 on the protective element 290 when the atomizer is dropped, thus extending the service life of the second control element 280. Furthermore, the protective element 290 is detachably mounted on the second control element 280, a design that facilitates the separation of the protective element 290 and the second control element 280 into independent components, enabling recycling and reuse.

[0115] Reference Figure 7 , Figure 9 as well as Figure 10 In one embodiment, the second control element 280 is detachably connected to the support structure 216 via an adhesive structure.

[0116] In this embodiment, the adhesive structure is a removable backing adhesive or a removable double-sided adhesive. The adhesive structure simplifies the assembly and disassembly process and eliminates the need for drilling, slotting, or other machining processes on the load-bearing structure 216 of the first inner shell 210 or the second control component 280, thereby reducing the risk of structural damage caused by machining.

[0117] Reference Figure 7 , Figure 9 as well as Figure 10 In one embodiment, the protective member 290 is detachably connected to the second control member 280 via an adhesive structure.

[0118] In this embodiment, the adhesive structure is a removable backing adhesive or a removable double-sided adhesive. This adhesive structure simplifies assembly and disassembly, and eliminates the need for drilling, slotting, or other machining processes on the protective component 290 or the second control component 280, thus reducing the risk of structural damage caused by machining.

[0119] Reference Figure 1 , Figure 7 , Figure 8 , Figures 12 to 14 as well as Figure 18In one embodiment, the air regulating unit 300 further includes a second mounting member 350 and a third control member 360. The second inner shell 310 has a second opening 315 on the surface away from and close to the first inner shell 210. The second mounting member 350 is detachably embedded in the second inner shell 310 through the second opening 315. The third control member 360 is detachably mounted on the second mounting member 350 and is electrically connected to the power supply unit 200 for electrical connection with the atomizer 100.

[0120] In this embodiment, the second mounting component 350 is a mounting bracket or mounting base, and the third control component 360 is a control circuit board. The entire structure of the second mounting component 350 is completely embedded within the second inner shell 310, and can be detachably embedded within the first inner shell 210 via a snap-fit ​​structure, screw connection, magnetic attraction structure, or plug-in structure. A portion of the structure on the first inner shell 210 that is embedded within the second opening 315 blocks the second opening 315, thereby reducing the overall length of the atomizing device. The third control component 360 can be detachably mounted on the second mounting component 350 via a snap-fit ​​structure, screw connection, magnetic attraction structure, or plug-in structure. The third control component 360 is electrically connected to the second control component 280 via an intermediate component and is directly electrically connected to the atomizer 100; it is understood that the third control component 360 can also be directly electrically connected to the second control component 280.

[0121] On the one hand, the detachable connection between the second mounting component 350 and the second inner shell 310, and the detachable connection between the third control component 360 and the second mounting component 350, facilitates the disassembly of the second mounting component 350, the third control component 360, and the second inner shell 310 into independent parts, thereby enabling recycling and reuse and further enhancing the overall value of the atomizing device. It also facilitates the individual replacement of any malfunctioning components, avoiding the need to replace the entire power supply unit 200 and reducing maintenance costs. Furthermore, the embedding of the second mounting component 350 within the second inner shell 310 helps to reduce the overall size of the atomizing device, achieving a compact design.

[0122] On the other hand, the separate first control component 250, second control component 280 and third control component 360 can further decompose the multiple control functions of the atomizing device, further avoid the structural complexity and failure risk caused by integrating too many functions in a single control component, thereby further reducing the design and manufacturing difficulty of a single component and further improving the stability and fault tolerance of the system operation.

[0123] Reference Figure 1 , Figure 7 , Figure 8 , Figure 13 as well as Figure 18In one embodiment, the second mounting member 350 includes a second mounting body 351, a second support structure 352, and a second limiting structure 353. The second support structure 352 is disposed on the second mounting body 351 and protrudes in a direction away from the second opening 315. The third control member 360 is attached to the second support structure 352. The second limiting structure 353 is disposed on the second mounting body 351 and protrudes in a direction away from the second opening 315 to prevent the third control member 360 from moving in a direction away from the second opening 315.

[0124] In this embodiment, the second support structure 352 is a support plate or support rod, and the second support structure 352 and the second mounting body 351 are integrally formed. To improve the stability of the support, there are multiple second support structures 352, which are spaced apart circumferentially along the second mounting body 351. The third control member 360 is mounted on the multiple second support structures 352. The second limiting structure 353 can be a limiting rib or boss provided along the circumference or edge of the second mounting body 351, and can undergo elastic deformation so that the third control member 360 can separate from the second limiting structure 353. To improve the limiting effect, there are multiple second limiting structures 353, which are spaced apart circumferentially along the second mounting body 351.

[0125] The second support structure 352 provides a stable support base for the third control component 360. Simultaneously, the second limiting structure 353 prevents the third control component 360 from moving away from the second opening 315, thus limiting its displacement. These two components work together to form a double limiting mechanism, effectively improving the installation stability and reliability of the third control component 360.

[0126] Reference Figure 1 , Figure 7 , Figure 8 , Figure 13 as well as Figure 18 In one embodiment, the second limiting structure 353 includes a second limiting body 3531 and a second limiting hook 3532. The second limiting body 3531 is disposed on the second mounting body 351 and protrudes in a direction away from the second opening 315. The second limiting hook 3532 is disposed at the end of the second limiting body 3531 away from the second opening 315. The third control member 360 is clamped between the second support structure 352 and the second limiting hook 3532.

[0127] In this embodiment, the second limiting structure 353 is a plastic part; the second limiting body 3531 is a limiting rod, and the second limiting body 3531 and the second mounting body 351 are integrally molded parts; the second limiting hook 3532 has a second limiting surface disposed toward the third control member 360, and the third control member 360 is located between the surface of the second support structure 352 away from the second opening 315 and the second limiting surface.

[0128] When assembling the third control component 360 and the second mounting component 350, simply align the third control component 360 with the second support structure 352 and then use the hooking action of the second limiting hook 3532 to complete the fixation. No complicated alignment is required throughout the process, resulting in high assembly efficiency. When disassembling, simply apply external force to the second limiting hook 3532 to detach it from the third control component 360, and then move the third control component 360 away from the second support structure 352 to complete the separation. No cumbersome steps are required, making the operation simple and convenient.

[0129] Reference Figure 1 , Figure 7 , Figure 8 as well as Figure 13 In one embodiment, the air regulating unit 300 further includes a first electrical connector 370 and a second electrical connector 380, wherein the first electrical connector 370 is electrically connected to the power supply unit 200 and the third control unit 360; the second electrical connector 380 is electrically connected to the third control unit 360 and is used to electrically connect to the atomizer 100.

[0130] In this embodiment, the first electrical connector 370 is electrically connected to the second control component 280. The first electrical connector 370 is an electrode pin, and there are two first electrical connectors 370. One of the two first electrical connectors 370 is formed as a positive electrode, and the other is formed as a negative electrode. The second electrical connector 380 is an electrode pin, and there are two second electrical connectors 380. One of the two second electrical connectors 380 is formed as a positive electrode, and the other is formed as a negative electrode.

[0131] The second mounting body 351 has two first mounting through holes, and two first electrical connectors 370 are respectively inserted into the two first mounting through holes and both contact the second control component 280 to achieve electrical connection. The third control component 360 has two first mounting holes, and two first electrical connectors 370 are respectively inserted into the two first mounting holes and both contact the third control component 360 to achieve electrical connection.

[0132] The third control component 360 has two second mounting holes, and two second electrical connectors 380 are respectively inserted into the two second mounting holes and are in contact with the third control component 360 to achieve electrical connection. The second inner shell 310 has a second mounting through hole that extends into the air intake channel 311, and two second electrical connectors 380 are respectively inserted into the two second mounting through holes and are electrically connected to the side opposite to the second opening 315.

[0133] The first electrical connector 370 and the second electrical connector 380 each perform different electrical connection functions, reducing mutual interference during signal transmission and improving the stability and reliability of signal transmission. Furthermore, if either the first electrical connector 370 or the second electrical connector 380 fails, only the faulty connector needs to be replaced, eliminating the need to replace the entire electrical connector system, thus reducing maintenance difficulty and cost.

[0134] In addition, the protective member 290 has three spaced limiting grooves on its surface near the second opening 315. Electrode pieces are embedded in the three limiting grooves. All three electrode pieces are electrically connected to the second control member 280. The two first electrical connectors 370 contact two of the three electrode pieces respectively to achieve electrical connection.

[0135] Reference Figure 1 , Figure 8 , Figure 12 , Figure 13 as well as Figure 15 In one embodiment, the air regulating unit 300 further includes a magnetic ring 390. A third limiting ring 316 is provided on the surface of the second inner shell 310 away from the first inner shell 210. The magnetic ring 390 is interference-fitted into the third limiting ring 316. A second electrical connector 380 passes through the inner hole of the magnetic ring 390. The atomizer 100 has a third electrical connector 110. The second electrical connector 380 is used to electrically connect with the third electrical connector 110, and the magnetic ring 390 is used to magnetically connect with the third electrical connector 110, so that the air regulating unit 300 and the atomizer 100 are detachably connected.

[0136] In this embodiment, the second mounting through hole communicates with the third limiting ring 316, and the second mounting through hole is located within the projection surface of the third limiting ring 316 onto the second mounting body 351. The second electrical connector 380 is inserted into the inner hole of the magnetic ring 390 through a clearance fit. There are two magnetic rings 390 and two third limiting rings 316, with the two magnetic rings 390 respectively inserted into the two third limiting rings 316, and the two third electrical connectors 110 respectively inserted into the inner holes of the two magnetic rings 390. The third electrical connector 110 is an electrode, and there are two third electrical connectors 110, one of which is formed as a positive electrode and the other as a negative electrode; the two second electrical connectors 380 are electrically connected by contacting the two third electrical connectors 110 respectively.

[0137] The third limiting ring 316 serves to limit the wobbling of the magnetic ring 390. At the same time, the magnetic ring 390 is interference-fitted into the third limiting ring 316, which facilitates the quick separation of the magnetic ring 390 and the third limiting ring 316 when the power supply unit 200 is disassembled. It also allows for independent operation when the magnetic ring 390 needs maintenance or replacement due to aging or damage, without having to replace the second inner shell 310, further simplifying the maintenance process and reducing costs.

[0138] In addition, the third electrical connector 110 serves as an intermediate node, enabling the second electrical connector 380, the third control unit 360, and the atomizer 100 to form a stable electrical connection, ensuring smooth transmission of current and signals. Furthermore, the magnetic attraction between the third electrical connector 110 and the magnetic ring 390 allows the atomizer 100 to be quickly aligned with the air regulating unit 300 via magnetic force, enabling disassembly and assembly to be completed without complicated operations, thus greatly improving the ease of operation for users.

[0139] Reference Figure 7 , Figure 15 as well as Figure 18 In one embodiment, one of the second mounting member 350 and the second inner shell 310 is provided with a third buckle 354, and the other is provided with a third slot 317. The third buckle 354 is detachably snapped into the third slot 317.

[0140] In this embodiment, the third buckle 354 and the second mounting body 351 are integrally formed, and the third slot 317 is disposed on the inner wall surface of the second inner shell 310; it can be understood that the third buckle 354 may also be disposed on the inner wall surface of the second inner shell 310, and the third slot 317 may be disposed on the second mounting body 351.

[0141] The third clip 354 and the third slot 317 used in conjunction provide a stable and convenient detachable connection through mechanical engagement, while also simplifying the structural design and reducing costs. Furthermore, the third clip 354 and the third slot 317 are reusable, allowing for multiple disassembly and assembly, thus extending the overall service life.

[0142] In addition, to enhance the stability of the connection between the second mounting component 350 and the second inner shell 310, there are multiple third buckles 354, which are spaced apart along the circumference of the second mounting body 351; the number of third slots 317 is the same as the number of third buckles 354, and the multiple third slots 317 are respectively set one-to-one with the multiple third buckles 354.

[0143] Reference Figure 1 , Figure 8 , Figure 12 as well as Figure 13 In one embodiment, a microphone 3100 is provided on the surface of the third control member 360 opposite to the second opening 315. The microphone 3100 is used to sense changes in airflow within the air intake channel 311. The microphone 3100 is fitted with a protective cover 3110.

[0144] In this embodiment, the microphone 3100 is fixedly mounted on the surface of the third control member 360 opposite to the second opening 315 and is electrically connected to the third control member 360. The microphone 3100 is located inside the air intake channel 311. The protective cover 3110 has an air intake hole communicating with the air intake channel 311 on its surface away from the microphone 3100, so that the microphone 3100 can sense changes in airflow within the air intake channel 311.

[0145] The protective cover 3110 not only protects the microphone 3100, but also, because it is interference-fitted onto the microphone 3100, it facilitates quick separation of the protective cover 3110 and the microphone 3100 when the power supply unit 200 is disassembled. Furthermore, it allows for independent operation when the protective cover 3110 needs maintenance or replacement due to aging or damage, without requiring the microphone 3100 to be replaced as well, thus further simplifying the maintenance process and reducing costs.

[0146] Reference Figure 1 , Figure 4 , Figure 8 as well as Figures 12 to 14In one embodiment, the air regulating unit 300 further includes an air regulating component 330, which is used to regulate the airflow rate entering the air intake channel 311. The air regulating component 330 includes a mounting body 331 and an air regulating gas 332. The mounting body 331 is detachably mounted to the second inner shell 310. A first air regulating hole 318 communicating with the air intake channel 311 is provided on the outer surface of the second inner shell 310. A second air regulating hole 3321 is provided on the air regulating gas 332. The air regulating gas 332 is rotatably disposed on the mounting body 331 around the axis of the mounting body 331 and has an air-ventilated position and a blocked position. When the air regulating gas 332 is in the air-ventilated position, the air intake channel 311 is connected to the external environment through the first air regulating hole 318 and the second air regulating hole 3321. When the air regulating gas 332 is in the blocked position, the air regulating gas 332 blocks the first air regulating hole 318.

[0147] In this embodiment, the mounting body 331 is a mounting shaft or mounting pin, and can be detachably mounted on the second inner shell 310 via a snap-fit ​​structure, screw structure, magnetic structure, or plug-in structure. The gas regulating ring 332 is a gas regulating ring coaxially arranged with the mounting body 331, and is sleeved and rotatably mounted on the mounting body 331. The first gas regulating hole 318 is an arc hole arranged around the axis of the mounting body 331. The second gas regulating hole 3321 extends from the surface of the gas regulating ring 332 away from the second inner shell 310 to the surface of the gas regulating ring 332 near the second inner shell 310, and is also an arc hole arranged around the axis of the mounting body 331. The second gas regulating hole 3321 and the first gas regulating hole 318 are concentrically arranged.

[0148] When the gas regulating 332 rotates around the axis of the mounting body 331, the relative position change of the second gas regulating hole 3321 and the first gas regulating hole 318 (complete alignment, partial overlap, or complete offset) can precisely adjust the connection state between the air intake channel 311 and the outside world: when in the ventilation position, the air intake volume can be flexibly controlled (such as adjusting the overlapping area of ​​the air holes by rotating the angle) to adapt to different atomization needs (such as a small air intake volume for a rich taste and a large air intake volume for a refreshing taste); when in the blocking position, the airflow can be cut off by blocking the first gas regulating hole 318 (such as preventing condensate leakage when not in use), thus improving the adaptability of the usage scenario.

[0149] Meanwhile, the mounting body 331 is detachably mounted on the second inner shell 310, which facilitates the quick separation of the mounting body 331 and the second inner shell 310 when the power supply unit 200 is disassembled; it also allows for independent operation when the mounting body 331 or the second inner shell 310 needs maintenance or replacement due to aging or damage, without the need to replace the second inner shell 310 or the mounting body 331, further simplifying the maintenance process and reducing costs.

[0150] Reference Figure 8 , Figures 12 to 14 as well as Figure 19In one embodiment, one of the gas regulating 332 and the second inner shell 310 is provided with a second guide structure 3322, and the other is provided with a second guide hole 319. The second guide structure 3322 passes through the second guide hole 319 and can slide around the axis of the mounting body 331 within the second guide hole 319.

[0151] In this embodiment, the second guide structure 3322 is a guide post, which is disposed on the surface of the gas regulating 332 near the second inner shell 310 and is integrally formed with the gas regulating 332; the second guide hole 319 is an arc hole arranged around the axis of the mounting body 331. It can be understood that the second guide structure 3322 can also be disposed on the second inner shell 310, and the second guide hole 319 can be disposed on the gas regulating 332.

[0152] The second guide structure 3322 and the second guide hole 319 used in conjunction not only serve as guides, thereby improving the stability of the gas regulating 332 rotating on the mounting body 331, but also form an auxiliary constraint, reducing the risk of the gas regulating 332 shaking during rotation and enhancing the stability of the gas regulating 332 rotation.

[0153] Reference Figure 8 as well as Figures 12 to 14 In one embodiment, the second inner shell 310 is provided with a mounting hole 3101, and the mounting body 331 is interference-fitted with the mounting hole 3101.

[0154] In this embodiment, the mounting hole 3101 is a through hole extending from the outer surface of the second inner shell 310 to the interior of the second inner shell 310. The second inner shell 310 is a plastic part, and the mounting body 331 is a metal part. The mounting body 331 is interference-fitted into the mounting hole 3101 and is tightly pressed against the wall of the mounting hole 3101.

[0155] The interference fit between the mounting body 331 and the mounting hole 3101 not only enhances the installation strength and stability of the mounting body 331 on the second inner shell 310, but also simplifies the structure and reduces the assembly difficulty.

[0156] Reference Figure 8 as well as Figures 12 to 14 In one embodiment, the regulating gas 332 is provided with a mounting groove 3323 that passes through the regulating gas 332, and the mounting body 331 is inserted into the mounting groove 3323; the mounting body 331 has a limiting cap 3311, and the mounting groove 3323 has a blocking groove wall 3324, which is used to prevent the limiting cap 3311 from moving toward the second inner shell 310.

[0157] In this embodiment, the mounting groove 3323 extends from the surface of the self-regulating gas 332 away from the second inner shell 310 to the surface of the self-regulating gas 332 near the second inner shell 310. The mounting groove 3323 is a stepped groove and includes a first groove segment and a second groove segment. The first groove segment is disposed on the surface of the self-regulating gas 332 away from the second inner shell 310, and the second groove segment is disposed at the bottom of the first groove segment and extends to the surface of the self-regulating gas 332 near the second inner shell 310. The first groove segment and the second groove segment are coaxially arranged, and the diameter of the first groove segment is larger than the diameter of the second groove segment. The limiting cap 3311 is located in the first groove segment and is blocked by the bottom of the first groove segment. The bottom of the first groove segment forms a blocking groove wall 3324.

[0158] After the mounting body 331 is inserted into the mounting groove 3323, the limiting cap 3311 and the blocking groove wall 3324 form an axial blocking engagement; the blocking groove wall 3324 can effectively restrict the movement of the limiting cap 3311 towards the second inner shell 310, thereby constraining the axial displacement of the regulating gas 332, preventing it from axially shifting or falling off during rotation adjustment or use, and ensuring the stability of the rotation of the regulating gas 332.

[0159] Meanwhile, during assembly, the mounting body 331 is simply inserted into the mounting groove 3323 of the gas regulating 332, and the axial positioning of the gas regulating 332 is completed by the natural cooperation between the limit cap 3311 and the barrier groove wall 3324. No additional fasteners (such as clips or screws) are required, which simplifies the assembly process.

[0160] Reference Figure 8 as well as Figures 12 to 14 In one embodiment, a sealing body 333 is clamped and pressed between the limiting cap 3311 and the blocking groove wall 3324.

[0161] In this embodiment, the sealing body 333 is a sealing ring, which is arranged circumferentially along the barrier groove wall 3324. The sealing body 333 not only effectively blocks air leakage from the gap between the limiting cap 3311 and the barrier groove wall 3324, but also ensures that external airflow enters the atomization channel only through the air inlet channel 311, avoiding interference from unexpected airflow on the air regulating component 330, thereby affecting the airflow regulation of the air regulating component 330 and ensuring the user's control accuracy of aerosol concentration and taste.

[0162] Simultaneously, it can prevent external dust, moisture, and other impurities from entering the air intake channel 311 through the gap between the limit cap 3311 and the barrier groove wall 3324, thereby enhancing the sealing performance of the atomizing device and extending its service life. Furthermore, it can buffer vibrations and reduce abnormal noises, as well as compensate for assembly tolerances and improve production consistency.

[0163] Reference Figures 1 to 19The assembly process of the power supply component of this application is as follows: the light guide 260 is assembled into the first limiting ring 245; then the first control component 250 is installed onto the first mounting component 240, at which time the charging head 252 of the first control component 250 passes through the second limiting ring 246 and is inserted into the limiting socket.

[0164] The power supply component 220 is embedded into the first inner shell 210, and then the isolation component 270 is placed on the first limiting structure 243. The first mounting component 240, the light guide component 260 and the first control component 250 assembled together are pushed into the first inner shell 210.

[0165] The second control element 280 is installed onto the support structure 216, and then the protective element 290 is installed onto the second control element 280.

[0166] The third control component 360 is installed onto the second mounting component 350, and then the first electrical connector 370 and the second electrical connector 380 are respectively installed at preset positions; then the second mounting component 350 is embedded into the first inner shell 210 through the second opening 315; finally, the first inner shell 210 and the second inner shell 310 are connected.

[0167] The second outer shell 320 is fitted onto the outer periphery of the first inner shell 210 and the second inner shell 310, and then the first outer shell 230 is fitted onto the outer periphery of the first inner shell 210.

[0168] Finally, the gas 332 is fitted onto the mounting body 331, and then the mounting body 331 is inserted into the mounting hole 3101 to complete the assembly of the power supply component.

[0169] After the power supply components are assembled, the atomizer 100 and the gas regulating unit 300 can be connected by magnetic attraction between the magnetic ring 390 and the third electrical connector 110.

[0170] The disassembly process of the power supply component in this application is the reverse of the assembly process.

[0171] Reference Figures 1 to 19 According to another aspect of this application, embodiments of this application also provide an atomizing device, which includes an atomizer 100 and a power supply assembly, wherein the atomizer 100 has an atomization channel; the power supply unit 200 is electrically connected to the atomizer 100 and is used to supply power to the atomizer 100; the air regulating unit 300 is disposed on the side of the power supply unit 200 near the atomizer 100 and is detachably connected to the atomizer 100; and the air intake channel 311 communicates with the atomization channel.

[0172] In this embodiment, the atomizer 100 includes a liquid reservoir and a heating wire. The liquid reservoir stores the aerosol matrix, and the heating wire atomizes the aerosol matrix into an aerosol. The power supply unit 200 and the gas regulating unit 300 can be detachably connected via a snap-fit ​​structure, a screw connection, a magnetic attraction structure, or a plug-in structure; the gas regulating unit 300 and the atomizer 100 can also be detachably connected via a snap-fit ​​structure, a screw connection, a magnetic attraction structure, or a plug-in structure.

[0173] The atomizer 100 and the vapor adjustment unit 300 are detachably connected, and the power supply unit 200 and the vapor adjustment unit 300 are detachably connected. This structural design can bring multiple benefits: Firstly, after the aerosol in the atomizer 100 of this application is depleted or fails (e.g., the heating wire reaches the end of its lifespan), the original power supply component can continue to be used by replacing the atomizer 100, thereby effectively extending the service life of the power supply component and enhancing its usability. Secondly, after the aerosol in the atomizer 100 of this application is depleted or fails (e.g., the heating wire reaches the end of its lifespan), the power supply unit 200 and the gas regulating unit 300 can be disassembled and recycled for reuse. This not only reduces the long-term operating costs for users but also reduces the generation of electronic waste, thereby enhancing the environmental friendliness of the atomizing device.

[0174] Third, if any component in the power supply unit 200 or the airflow regulating unit 300 malfunctions, the faulty component can be replaced, while other intact components such as the atomizer 100 can continue to be used. This avoids the complete abandonment of the device due to a partial failure, further enhancing the overall usability of the atomizing device. Fourth, the independent design of the atomizer 100, power supply unit 200, and airflow regulating unit 300 separates the atomization, power supply, and airflow regulation functions of the atomizing device. Users or designers can individually replace the atomizer 100, power supply unit 200, and airflow regulating unit 300 with different specifications according to actual needs, improving the flexibility and adaptability of the atomizing device.

[0175] In summary, implementing the power supply component and atomizing device provided in this embodiment has at least the following beneficial technical effects: both the first inner shell 210 and the second inner shell 310 are detachably connected to the second outer shell 320, and the power supply component 220 is disposed inside the first inner shell 210. This structural design can bring multiple benefits: Firstly, when the power supply component 220 runs out of power, the user does not need to discard the entire power supply component. Simply by separating the second outer shell 320 from the first inner shell 210 and the second inner shell 310, the first inner shell 210 containing the power supply component 220 can be separated from the second inner shell 310. Thus, only the first inner shell 210 containing the power supply component 220 needs to be replaced, and the remaining components can still be reused, effectively improving the use value of the power supply component.

[0176] Secondly, when the power supply component 220 is depleted, the power supply component can be recycled and reused by disassembling the first inner shell 210, the second inner shell 310, and the second outer shell 320. This not only reduces the long-term usage cost for users but also reduces the generation of electronic waste, thereby enhancing the environmental protection attributes of the power supply component.

[0177] Third, the power supply unit 200 and the gas regulating unit 300 use the same second housing 320 as a connection carrier, which reduces the number of connecting parts, thereby simplifying the number of parts and reducing the complexity of disassembly and assembly operations and manufacturing costs.

[0178] Fourth, at least a portion of the structure of the first inner shell 210 is embedded within the second outer shell 320, and the second inner shell 310 is embedded within the second outer shell 320. This embedded fit creates multiple constraints, enhancing the structural stability of the detachable connections of the components and simplifying assembly operations due to the guiding nature of the embedding. Furthermore, the aforementioned embedding structure allows the power supply unit 200 and the air regulating unit 300 to partially overlap in space, effectively shortening the overall length of the power supply assembly and achieving a compact design.

[0179] The above are merely preferred embodiments of this application and are not intended to limit this application. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of this application should be included within the protection scope of this application.

Claims

1. A power supply component, characterized in that, It includes a detachably connected power supply unit and a gas regulating unit; the power supply unit includes a first inner shell and a power supply component, the power supply component being disposed inside the first inner shell and used to supply power to the atomizer; The air regulating unit includes a second inner shell and a second outer shell, at least a portion of the structure of the first inner shell is embedded in the second outer shell; the second inner shell is located on one side of the first inner shell and is detachably embedded in the second outer shell; the second inner shell has an air inlet channel for communicating with the atomization channel of the atomizer.

2. The power supply component according to claim 1, characterized in that, The second inner shell is detachably connected to the first inner shell.

3. The power supply component according to claim 2, characterized in that, The power supply unit also includes a first housing, which is located on one side of the second housing; a portion of the structure of the first inner housing is detachably embedded in the first housing.

4. The power supply component according to claim 3, characterized in that, One of the outer surface of the first inner shell and the inner wall surface of the second outer shell is provided with a first protruding structure, and the other is interference-fitted with the first protruding structure; and / or, One of the outer surface of the second inner shell and the inner wall surface of the second outer shell is provided with a second protruding structure, and the other is interference-fitted with the second protruding structure; and / or, One of the first inner shell and the second inner shell is provided with a first buckle, and the other is provided with a first slot, wherein the first buckle is detachably engaged into the first slot; and / or, One of the outer surface of the first inner shell and the inner wall surface of the first outer shell is provided with a third protruding structure, and the other is interference-fitted with the third protruding structure.

5. The power supply component according to claim 1, characterized in that, The power supply unit further includes a first mounting component and a first control component. The surface of the first inner shell away from the second inner shell is provided with a first opening. The power supply component is embedded into the first inner shell through the first opening. The first mounting component is detachably embedded into the first inner shell and blocks the first opening. The first control component is detachably mounted on the first mounting component, and the first control component is electrically connected to the power supply component for electrical connection with the atomizer.

6. The power supply component according to claim 5, characterized in that, The first mounting component includes a first mounting body, a first support structure, and a first limiting structure. The first support structure is disposed on the first mounting body and protrudes toward the second inner shell. The first control component is attached to the first support structure. The first limiting structure is disposed on the first mounting body and protrudes toward the second inner shell to prevent the first control component from moving toward the second inner shell.

7. The power supply component according to claim 6, characterized in that, The first limiting structure includes a first limiting body and a first limiting hook. The first limiting body is disposed on the first mounting body and protrudes toward the second inner shell. The first limiting hook is disposed at one end of the first limiting body near the second inner shell, and the first control component is clamped between the first support structure and the first limiting hook.

8. The power supply component according to claim 5, characterized in that, The first control member has a light-emitting body facing away from the second inner shell, and the first mounting member has a light-emitting hole extending to the side facing away from the second inner shell. The power supply unit also includes a light guide, which is detachably mounted on the first mounting component and is used to guide the light emitted by the light-emitting body into the light-emitting hole.

9. The power supply component according to claim 8, characterized in that, The first mounting component has a first limiting ring on its surface near the second inner shell, and protrudes toward the second inner shell; the light-emitting hole communicates with the first limiting ring. One of the light guide and the first limiting ring is provided with a limiting protrusion, and the other is provided with a limiting hole, with the limiting protrusion inserted into the limiting hole.

10. The power supply component according to claim 5, characterized in that, The first control member has a charging head facing away from the second inner shell, and the first mounting member has a limiting insertion hole extending to the side facing away from the second inner shell. The first mounting component has a second limiting ring on its surface near the second inner shell, and protrudes toward the second inner shell. The limiting hole communicates with the second limiting ring. The charging head passes through the second limiting ring and is inserted into the limiting hole.

11. The power supply component according to claim 5, characterized in that, The power supply unit also includes an isolation component, which is mounted on the first mounting component and covers the first control component; the power supply component is detachably mounted on the surface of the isolation component away from the first mounting component.

12. The power supply component according to claim 5, characterized in that, The first inner shell is provided with a support structure, and the support structure is arranged opposite to the first opening along the length direction of the first inner shell; The power supply unit also includes a second control component, which is detachably mounted on the supporting structure. The second control component is electrically connected to the first control component and is used for electrical connection with the atomizer.

13. The power supply component according to claim 12, characterized in that, The power supply unit also includes a protective component, which is detachably mounted on the surface of the second control component away from the supporting structure and covers the second control component.

14. The power supply component according to any one of claims 1 to 13, characterized in that, The gas regulating unit also includes a second mounting component and a third control component. The second inner shell has a second opening on its surface near the first inner shell. The second mounting component is detachably embedded into the second inner shell through the second opening. The third control component is detachably mounted on the second mounting component, and is electrically connected to the power supply unit for electrical connection with the atomizer.

15. The power supply component according to claim 14, characterized in that, The second mounting component includes a second mounting body, a second support structure, and a second limiting structure. The second support structure is disposed on the second mounting body and protrudes away from the second opening. The third control component is erected onto the second support structure; The second limiting structure is disposed on the second mounting body and protrudes away from the second opening to prevent the third control member from moving away from the second opening.

16. The power supply component according to claim 15, characterized in that, The second limiting structure includes a second limiting body and a second limiting hook. The second limiting body is disposed on the second mounting body and protrudes away from the second opening. The second limiting hook is disposed at the end of the second limiting body away from the second opening; the third control component is clamped between the second support structure and the second limiting hook.

17. The power supply component according to claim 14, characterized in that, The gas regulating unit also includes: A first electrical connector is electrically connected to the power supply unit and the third control unit; The second electrical connector is electrically connected to the third control component and is used for electrical connection with the atomizer.

18. The power supply component according to claim 17, characterized in that, The gas regulating part also includes a magnetic ring, and a third limiting ring is provided on the surface of the second inner shell away from the first inner shell. The magnetic ring is interference-fitted into the third limiting ring; the second electrical connector passes through the inner hole of the magnetic ring. The atomizer has a third electrical connector, the second electrical connector is used to electrically connect with the third electrical connector, and the magnetic ring is used to magnetically connect with the third electrical connector, so that the air regulating part is detachably connected to the atomizer.

19. The power supply component according to claim 14, characterized in that, The third control component has a microphone on its surface opposite to the second opening. The microphone is used to sense changes in airflow within the air intake channel. The microphone is fitted with a protective cover.

20. The power supply component according to any one of claims 1 to 13, characterized in that, The air regulating unit also includes an air regulating component, which is used to regulate the airflow rate into the air intake channel; The air regulating component includes a mounting body and an air regulating gas. The mounting body is detachably installed to the second inner shell. A first air regulating hole communicating with the air intake channel is provided on the outer surface of the second inner shell. A second air regulating hole is provided on the air regulating gas. The regulating gas is rotatably disposed on the mounting body around the axis of the mounting body, and has a ventilation position and a blocking position; when the regulating gas is in the ventilation position, the air inlet channel is connected to the external environment through the first regulating gas hole and the second regulating gas hole; when the regulating gas is in the blocking position, the regulating gas blocks the first regulating gas hole.

21. The power supply component according to claim 20, characterized in that, The second inner shell is provided with a mounting hole, and the mounting body is interference-fitted with the mounting hole.

22. An atomizing device, characterized in that, Includes an atomizer and a power supply assembly according to any one of claims 1 to 21, wherein the atomizer has an atomization channel; The power supply unit is electrically connected to the atomizer and is used to supply power to the atomizer; the air regulating unit is located on the side of the power supply unit near the atomizer and is detachably connected to the atomizer; the air intake channel is connected to the atomization channel.