Intelligent electronic atomizer structure

CN224806804UActive Publication Date: 2026-09-29GUANGDONG YUERAN BIOTECHNOLOGY CO LTD
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Patent Information

Application Number
CN202520926785.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Priority Date
2024-12-12
Filing Date
2025-05-12
Publication Date
2026-09-29
Estimated Expiration
2035-05-12

AI Technical Summary

Technical Problem

[0003]具体来说,当用户抽吸电子雾化器时,雾团往往会迅速散开,导致雾化效果不佳,口感体验大打折扣

Benefits of technology

[0027]1、通过支架组件与电池组件配合形成的弧形气腔体,出风体产生的气流能够更顺畅、更高效地输送到弧形气腔体内,提高了气流的稳定性,使得雾化效果更加均匀,从而提升了用户的使用体验。

✦ Generated by Eureka AI based on patent content.

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  • Figure CN224806804U_ABST
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Abstract

The application discloses an intelligent electronic atomizer structure. The application comprises a support assembly, an air outlet body, a battery assembly, a control assembly and a shell assembly; the air outlet body is connected with the support assembly; the support assembly is connected with the battery assembly; the control assembly is connected with the battery assembly; the support assembly, the battery assembly and the control assembly are all arranged in the shell assembly. The support assembly and the battery assembly cooperate to form an arc-shaped air cavity body, the air outlet body is arranged in the battery assembly, and the control assembly is used for controlling the air outlet body to generate upward airflow which is delivered into the arc-shaped air cavity body. Through the arc-shaped air cavity body formed by cooperation of the support assembly and the battery assembly, the airflow generated by the air outlet body can be smoothly and efficiently delivered into the arc-shaped air cavity body, the stability of the airflow is improved, the atomization effect is more uniform, and therefore the use experience of a user is improved.
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Description

Technical Field

[0001] This application relates to the field of medical device technology, and in particular to an intelligent electronic nebulizer structure. Background Technology

[0002] The current electronic atomizer industry offers a wide variety of products, but several issues commonly affect user experience and safety. The most significant problem is the dispersion of the vapor during inhalation.

[0003] Specifically, when users inhale from an e-cigarette, the vapor often disperses rapidly, resulting in poor atomization and a significantly diminished flavor experience. This phenomenon is primarily caused by the airflow being blocked or dispersed by various internal components after entering the e-cigarette body through the air inlet, before reaching the atomization components. This prevents the airflow from effectively converging, thus affecting the stability and uniformity of the vapor. Utility Model Content

[0004] This application provides an intelligent electronic atomizer structure, including: a support assembly, an air outlet, a battery assembly, a control assembly, and a housing assembly;

[0005] The air outlet is connected to the bracket assembly;

[0006] The bracket assembly is connected to the battery assembly;

[0007] The control component is connected to the battery component;

[0008] The bracket assembly, the battery assembly, and the control assembly are all disposed within the housing assembly;

[0009] The bracket assembly and the battery assembly cooperate to form an arc-shaped air cavity. The air outlet is disposed inside the battery assembly. The control assembly is used to control the air outlet to generate an upward airflow that is delivered into the arc-shaped air cavity.

[0010] Optionally, the support assembly includes: a spring electrode, a magnet ring, and a magnet support;

[0011] The magnet support is provided with a groove for mounting the spring electrode and an annular groove for mounting the magnet ring. The spring electrode is disposed in the groove on the magnet support, and the magnet ring is disposed in the annular groove.

[0012] Optionally, the battery assembly includes a battery and a battery bracket, with the battery disposed on one side of the battery bracket.

[0013] Optionally, the control components include: PCBA board, button silicone, button bracket, and button cover;

[0014] The PCBA board is located on the other side of the battery bracket;

[0015] The PCBA board is provided with buttons, and silicone sealant is applied to the buttons.

[0016] The button bracket is mounted on the PCBA board, and the button cover is connected to the button bracket.

[0017] Optionally, the battery bracket is provided with a control circuit, and the PCBA board is connected to the battery through the control circuit.

[0018] Optionally, the PCBA board is provided with a slot, and the button bracket is provided with a buckle corresponding to the slot. The button bracket is fastened into the slot by the buckle and connected to the PCBA board.

[0019] Optionally, the button cover is provided with a raised button, and the button bracket is provided with a limiting groove corresponding to the raised button. When the button cover is connected to the button bracket, the raised button cooperates with the limiting groove to prevent the button cover from moving.

[0020] Optionally, the housing assembly includes: a housing shell and a shield;

[0021] The bracket assembly, the air outlet, the battery assembly, and the control assembly are disposed within the outer casing.

[0022] The shielding plate is connected to the outer shell, and the shielding plate and the outer shell cooperate to form a sealed outer structure to protect the parts inside the outer shell.

[0023] Optionally, the outer casing is provided with a first screw hole, and the battery bracket is provided with a second screw hole corresponding to the first screw hole;

[0024] A fixing screw is used to thread through the first screw hole and the second screw hole to fix the outer casing and the battery bracket.

[0025] Optionally, the spring electrode and the magnet ring are used to connect with an external atomizing bullet component, and the magnet ring is used to magnetically connect with the atomizing bullet component. The battery provides electrical energy to the atomizing bullet component through the spring electrode.

[0026] As can be seen from the above technical solutions, this application has the following advantages:

[0027] 1. The arc-shaped air cavity formed by the bracket assembly and battery assembly allows the airflow generated by the air outlet to be delivered more smoothly and efficiently into the arc-shaped air cavity, improving the stability of the airflow and making the atomization effect more uniform, thereby enhancing the user experience.

[0028] 2. The control component can control the airflow to generate an upward airflow, achieving efficient energy utilization. This not only extends the battery life but also reduces overall energy consumption and improves the energy efficiency ratio of the electronic atomizer. Attached Figure Description

[0029] Figure 1 A schematic diagram of the overall structure of an intelligent electronic atomizer provided in this application;

[0030] Figure 2 A schematic diagram of a support assembly structure for an intelligent electronic atomizer provided in this application;

[0031] Figure 3 A schematic diagram of a battery assembly structure for an intelligent electronic atomizer provided in this application;

[0032] Figure 4 A schematic diagram of the control component structure of an intelligent electronic atomizer provided in this application;

[0033] Figure 5 This is a schematic diagram of the housing assembly of an intelligent electronic atomizer structure provided in this application. Detailed Implementation

[0034] To address the aforementioned technical problems, this application provides an intelligent electronic nebulizer structure for use in the field of medical device technology. Through the arc-shaped air cavity formed by the cooperation of the support assembly and the battery assembly, the airflow generated by the exhaust fan can be delivered more smoothly and efficiently into the arc-shaped air cavity, improving airflow stability and resulting in a more uniform nebulization effect, thereby enhancing the user experience. The control assembly can control the upward airflow generated by the exhaust fan, achieving rational energy utilization. This not only extends the lifespan of the battery assembly but also reduces overall energy consumption and improves the energy efficiency ratio of the electronic nebulizer.

[0035] In this application, the terms "upper", "lower", "left", "right", "front", "rear", "top", "bottom", "inner", "outer", "middle", "vertical", "horizontal", "lateral", "longitudinal" and other terms indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only used to describe the relative positional relationship between the components or parts and do not specifically limit the specific installation orientation of each component or part.

[0036] Furthermore, in addition to indicating location or positional relationship, some of the aforementioned terms may also have other meanings. For example, the term "above" may also be used in some cases to indicate a certain dependency or connection relationship. Those skilled in the art can understand the specific meaning of these terms in this application based on the specific circumstances.

[0037] Furthermore, the terms "installation," "setup," "equipped with," "connection," and "linked" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral structure; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium, or an internal connection between two devices, components, or parts. Those skilled in the art can understand the specific meaning of these terms in this application based on the specific circumstances.

[0038] Furthermore, the structures, proportions, sizes, etc., drawn in the accompanying drawings of this application are only used to complement the content disclosed in the specification for those skilled in the art to understand and read, and are not intended to limit the conditions under which this application can be implemented. Therefore, they have no substantial technical significance. Any modification to the structure, change in the proportional relationship, or adjustment of the size, without affecting the effects and purposes that this application can produce, should still fall within the scope of the technical content disclosed in this application.

[0039] The technical solutions of this application will now be clearly and completely described with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0040] Please see Figures 1 to 5 In one optional embodiment, this application provides an intelligent electronic atomizer structure, including: a support assembly 01, an air outlet 02, a battery assembly 03, a control assembly 04, and a housing assembly 05;

[0041] The air outlet 02 is connected to the bracket assembly 01;

[0042] The bracket assembly 01 is connected to the battery assembly 03;

[0043] The control component 04 is connected to the battery component 03;

[0044] The bracket assembly 01, the battery assembly 03 and the control assembly 04 are all disposed within the housing assembly 05;

[0045] The bracket assembly 01 and the battery assembly 03 cooperate to form an arc-shaped air cavity. The air outlet 02 is disposed inside the battery assembly 03. The control assembly 04 is used to control the air outlet 02 to generate an upward airflow that is delivered into the arc-shaped air cavity.

[0046] The support assembly 01 connects to the air outlet 02, ensuring the stability and normal operation of the air outlet 02. The support assembly 01 then connects to the battery assembly 03, which provides power to the entire e-atomizer unit. The control assembly 04 connects to the battery assembly 03 and controls its power output. The support assembly 01, air outlet 02, battery assembly 03, and control assembly 04 are all internal components, housed within the outer casing 05, forming a complete and compact e-atomizer unit structure. The cooperation between the support assembly 01 and the battery assembly 03 creates an arc-shaped air chamber. This arc-shaped air chamber serves as a channel for airflow during e-atomizer operation, ensuring smooth and efficient airflow. When the e-atomizer is activated, the control assembly 04 begins operation, controlling the battery assembly 03 to provide the necessary power to the air outlet 02. Upon receiving power, the air outlet 02 generates an upward airflow, which is delivered into the arc-shaped air chamber and transported along this arc-shaped channel. It helps stabilize and evenly distribute the airflow, and the arc-shaped structure also enhances the turbulence effect of the airflow, thereby improving atomization efficiency. As the airflow travels through the arc-shaped air chamber, it comes into contact with the atomizing liquid inside the atomizing cartridge component connected to the electronic atomizer main unit, and atomizes it to form smoke.

[0047] As can be seen from the above embodiments, the beneficial effects of this solution are as follows: The arc-shaped air cavity design formed by the support assembly 01 and the battery assembly 03 optimizes the airflow transmission path, making the airflow more stable during transmission, reducing airflow dispersion and loss, thereby improving atomization efficiency. Simultaneously, the arc-shaped air cavity structure enhances the turbulence effect of the airflow, further promoting the thorough mixing of the atomizing medium and the airflow, resulting in a finer and more uniform atomization effect. This allows users to experience a richer and finer vapor when using the electronic atomizer, thus improving the overall user experience.

[0048] In an optional embodiment, the support assembly 01 includes: a spring electrode 011, a magnet ring 012, and a magnet support 013;

[0049] The magnet bracket 013 is provided with a groove for mounting the spring electrode 011 and an annular groove for mounting the magnet ring 012. The spring electrode 011 is disposed in the groove on the magnet bracket 013, and the magnet ring 012 is disposed in the annular groove.

[0050] The support assembly 01 consists of a spring electrode 011, a magnet ring 012, and a magnet holder 013. The magnet holder 013 serves as a support structure, and it has specific grooves and annular grooves for mounting the spring electrode 011 and the magnet ring 012. The spring electrode 011 is installed in the groove on the magnet holder 013, providing electrical connection to the air outlet 02 and the atomizing cartridge component. During the operation of the electronic atomizer, the battery assembly 03 provides power to the air outlet 02 to drive it and generate an upward airflow. The magnet ring 012 is positioned within the annular groove of the magnet holder 013. The magnet ring 012 enables a magnetic connection between the support assembly 01 and the atomizing cartridge component. Using a magnetic connection simplifies the assembly process, makes the position of the support assembly 01 more stable within the electronic atomizer, and reduces the risk of damage due to vibration or impact. When the electronic atomizer is used, the control component 04 sends a command to the battery component 03. The battery component 03 responds to the command by connecting to the spring electrode 011 via a wire, transmitting power to the spring electrode 011. The spring electrode 011 then transmits the power to the atomizing cartridge component, causing the atomizing element within the cartridge to heat and atomize the vapor. Simultaneously, the required power is supplied to the air outlet 02. Upon receiving the power, the air outlet 02 begins to generate an upward airflow, which is delivered into the arc-shaped air chamber and transported along this arc-shaped channel.

[0051] As can be seen from the above embodiments, the beneficial effects of this solution are as follows: Through the spring electrode 011, the support assembly 01 can ensure good electrical conductivity with the air outlet 02 and the atomizing cartridge. The elasticity and adaptability of the spring electrode 011 allow for a stable electrical connection even during vibration or impact, ensuring that the electronic atomizer host provides power to the atomizing cartridge component for operation, thus helping to improve atomization efficiency and maintain the flavor of the vapor. The magnetic ring 012 enables a magnetic connection between the support assembly 01 and the atomizing cartridge. This connection method not only simplifies the assembly process and improves assembly efficiency, but also allows users to easily disassemble and replace the atomizing cartridge using magnetic attraction, enhancing ease of use.

[0052] In an optional embodiment, the battery assembly 03 includes a battery 031 and a battery bracket 032, wherein the battery 031 is disposed on one side of the battery bracket 032.

[0053] The control component 04 includes: PCBA board 041, button silicone 042, button bracket 043, and button cover 044;

[0054] The PCBA board 041 is disposed on the other side of the battery bracket 032;

[0055] A button is provided on the PCBA board 041, and the button silicone 042 is provided on the button;

[0056] The button bracket 043 is disposed on the PCBA board 041, and the button cover 044 is connected to the button bracket 043.

[0057] Battery 031 is placed in a predetermined position on battery holder 032. Battery holder 032 securely holds battery 031 in place via a specific groove to prevent battery 031 from falling out during use. PCBA board 041 receives and processes signals from button input and controls the power output of battery 031. When the user presses a button, PCBA board 041 receives the corresponding signal and controls the discharge of battery 031, thereby controlling the entire atomization process. Button silicone 042 utilizes the softness and elasticity of silicone material to achieve button pop-up and reset. When the user presses a button, button silicone 042 is compressed and deformed by external force, and the gap between the bottom of the button and the touch point is closed. When the external force is removed, the elasticity of the silicone restores its original shape, the button automatically pops up, and the gap reopens. During this process, the conductive material on the button connects or disconnects the circuit with the button, thereby achieving button response. Button holder 043, used to support and fix button cover 044, is mounted on PCBA board 041 and works in conjunction with button silicone 042. The button cover 044 is used to protect the buttons and is usually connected to the button bracket 043, covering the top of the buttons. The button cover 044 also serves to provide waterproofing and dustproofing, preventing impurities from entering the PCBA board 041, thereby improving the durability of the device and the user experience.

[0058] As can be seen from the above embodiments, the beneficial effects of this solution are as follows: The battery 031 is positioned on one side of the battery bracket 032, and the PCBA board 041 is positioned on the other side of the battery bracket 032, effectively utilizing the vertical space of the battery bracket 032 and saving space. The button is soldered onto the PCBA board 041, the button bracket 043 is positioned on the PCBA board 041, and the button cover 044 is connected to the button bracket 043. This ensures the button's feedback speed, protects the button, and makes the overall structure more compact, saving installation space. The button silicone 042 makes the button feel softer and more comfortable, improving the user experience. The button cover 044 protects the button and also increases the device's aesthetics and durability.

[0059] In an optional embodiment, a control circuit is provided on the battery bracket 032, and the PCBA board 041 is connected to the battery 031 through the control circuit.

[0060] The battery bracket 032 serves as a support structure for the battery 031. Besides housing the battery 031 and PCBA board 041, the battery bracket 032 also houses a control circuit. This control circuit is responsible for the power transfer between the battery 031 and the PCBA board 041. The battery 031, acting as an energy source, provides power to the air outlet 02 and to the atomizing cartridge via the spring electrode 011 through the control circuit on the battery bracket 032. When the battery 031 is mounted on the battery bracket 032, its positive and negative terminals contact the corresponding contacts in the control circuit, forming an electrical connection. The control circuit then transfers the power from the battery 031 to the PCBA board 041. When the user presses a button, the button signal is transmitted to the PCBA board 041, which then transfers the power from the battery 031 to the air outlet 02 and the spring electrode 011.

[0061] As can be seen from the above embodiments, the beneficial effects of this solution are as follows: The control circuit is directly integrated into the battery bracket 032, reducing the need for additional wires and connectors, simplifying the system wiring structure, improving the integration of the entire electronic device, making the device structure more compact and lightweight, and reducing production costs. The integrated design of the control circuit and the battery bracket 032 reduces the risk of failure due to poor connection or looseness. Through the cooperation of the PCBA board 041 and the control circuit, the charging and discharging process of the battery 031 is controlled, improving the stability of the power supply process and extending the service life of the battery 031. Stable power supply and optimized power management improve the device's battery life and enhance the user experience.

[0062] In an optional embodiment, the PCBA board 041 is provided with a slot, and the button bracket 043 is provided with a buckle corresponding to the slot. The button bracket 043 is fastened into the slot by the buckle and connected to the PCBA board 041.

[0063] The button cover 044 is provided with a raised button, and the button bracket 043 is provided with a limiting groove corresponding to the raised button. When the button cover 044 is connected to the button bracket 043, the raised button cooperates with the limiting groove to prevent the button cover 044 from moving.

[0064] The PCBA board 041 has a specific slot designed to engage with the snap-fit ​​mechanism on the button bracket 043. The button bracket 043 is equipped with snap-fit ​​mechanisms corresponding to the slots on the PCBA board 041. These snap-fit ​​mechanisms can be easily and securely inserted into the slots, providing a simple yet robust connection. When the button bracket 043 needs to be installed on the PCBA board 041, align the snap-fit ​​mechanism with the slot and apply pressure to allow the snap-fit ​​mechanism to spring into the slot. Once fully inserted, the snap-fit ​​mechanism locks in place, securely connecting the button bracket 043 to the PCBA board 041. The button cover 044 has raised buttons, which are integrally designed with the button cover 044 on both sides. These raised buttons engage with limiting slots on the button bracket 043. The button bracket 043 has corresponding limiting slots on the button cover 044, ensuring that the raised buttons can be accurately inserted. When the key cover 044 needs to be installed on the key bracket 043, align the raised key with the limiting groove and apply appropriate pressure to make the raised key enter the limiting groove. Once the raised key is fully in the limiting groove, a locking mechanism is formed to prevent the key cover 044 from shifting in the horizontal or vertical direction. By connecting the key bracket 043 to the PCBA board 041 via a snap-fit, and connecting the key cover 044 to the key bracket 043 via the raised key, the entire key assembly forms a stable and reliable structure. When the user presses the key cover 044 while simultaneously squeezing the key silicone 042, thereby pressing the key, the raised key on the key cover 044 will move within the limiting groove, thereby activating the control circuit.

[0065] As can be seen from the above embodiments, the beneficial effects of this solution are as follows: The design of the slot and buckle, and the raised key and limiting groove, makes the assembly process simpler and faster, eliminating the need for additional screws or other fasteners, thus reducing assembly difficulty. The cooperation between the slot on the PCBA board 041 and the buckle on the button bracket 043 ensures a firm connection between the button bracket 043 and the PCBA board 041, reducing loosening caused by vibration or impact. The design of the raised key and limiting groove prevents misalignment of the button cover 044 during use, improving the stability of button operation. Stable connection and precise button positioning provide users with smoother and more consistent tactile feedback, enhancing the user experience.

[0066] In an optional embodiment, the housing assembly 05 includes: a housing shell 051 and a shield 052;

[0067] The bracket assembly 01, the air outlet 02, the battery 031 assembly 03, and the control assembly 04 are disposed within the outer casing 051;

[0068] The shielding plate 052 is connected to the outer shell 051. The shielding plate 052 and the outer shell 051 cooperate to form a sealed outer structure to protect the parts inside the outer shell 051.

[0069] The outer casing assembly 05 consists of an outer casing 051 and a baffle plate 052. The outer casing 051 serves as the main structure, providing installation space and protection for internal components. The baffle plate 052 connects to the outer casing 051, forming a sealed external structure. The bracket assembly 01, air outlet 02, battery assembly 03, and control assembly 04 are assembled and installed inside the outer casing 051. The baffle plate 052 connects to the outer casing 051. When the baffle plate 052 and the outer casing 051 are connected, they form a sealed external structure, effectively preventing external dust, moisture, and other impurities from entering the outer casing 051, thereby protecting the internal components from damage.

[0070] As can be seen from the above embodiments, the beneficial effects of this solution are as follows: The airtight structure formed by the tight fit between the outer shell 051 and the shielding plate 052 effectively prevents dust, moisture, and other impurities from entering the interior, providing physical protection for the internal components, extending the service life of the equipment, and reducing failures and maintenance costs caused by external environmental factors. The airtight shell structure helps maintain a stable working environment for the internal components, reducing performance fluctuations caused by external factors such as temperature fluctuations and humidity changes, enabling the equipment to maintain stable performance output in various environments. The airtight structure creates a stable working environment for the internal components, helping to extend the service life of the components and improve the overall reliability of the equipment.

[0071] In an optional embodiment, the outer casing 051 is provided with a first screw hole, and the battery bracket 032 is provided with a second screw hole corresponding to the first screw hole;

[0072] A fixing screw is used to thread through the first screw hole and the second screw hole to fix the outer casing 051 and the battery bracket 032.

[0073] The outer casing 051 serves as the mounting container, with a first screw hole on its outer surface. This first screw ensures that the battery bracket 032 can be securely fixed inside the outer casing 051 or in a designated location. The battery bracket 032 supports and secures the battery assembly 031. It has a second screw hole corresponding to the first screw hole on the outer casing 051. The position, size, and thread specification of the second screw hole must match the first screw hole to allow for smooth insertion and threaded connection of the fixing screw. During assembly, fixing screws matching the thread specifications of the first and second screw holes are passed one by one through the first screw hole on the outer casing 051 and accurately screwed into the second screw hole on the battery bracket 032. Once the fixing screws are tightened, a stable mechanical connection is formed between the outer casing 051 and the battery bracket 032. This effectively prevents the battery bracket 032 from shaking during device use and ensures the stability and safety of the battery assembly 031. When it is necessary to disassemble or replace the battery bracket 032, simply loosen and remove the fixing screws in reverse order to easily separate the battery bracket 032 from the outer casing 051. This not only improves the convenience of maintenance but also reduces maintenance costs and time.

[0074] As can be seen from the above embodiments, the beneficial effects of this solution are as follows: By using fixing screws to firmly mechanically connect the outer casing 051 and the battery bracket 032, the shaking or detachment of the battery bracket 032 during use is effectively prevented, thereby improving the structural stability of the entire device. The stable fixing of the battery bracket 032 ensures the stable position of the battery 031 assembly 03 within the device, reducing safety hazards caused by battery 031 loosening or displacement, such as short circuits or leakage due to damage, thus enhancing the safety performance of the device. The threaded connection method is relatively simple and easy to operate, requiring no complex assembly tools or skills, thereby simplifying the assembly process and improving production efficiency. When it is necessary to disassemble or replace the battery bracket 032, simply loosening the screws allows for easy separation without the need for additional disassembly tools or destructive methods, facilitating subsequent maintenance and replacement operations. The rear fixing of the battery bracket 032 ensures the stable operation of the battery 031 assembly 03 within the device, reducing device malfunctions or performance degradation caused by battery 031 issues, thereby improving the overall user experience. Threaded connections offer high reliability and durability, and can withstand certain vibrations and impacts, thereby improving the overall reliability and service life of the product.

[0075] In an optional embodiment, the spring electrode 011 and the magnet ring 012 are used to connect with an external atomizing bullet component, and are magnetically connected to the atomizing bullet component. The battery 031 provides electrical energy to the atomizing bullet component through the spring electrode 011.

[0076] The magnet ring 012 on the magnet holder 013 has a specific magnetic pole configuration for attracting and connecting with the corresponding magnetic parts of the external atomizing cartridge component. When the external atomizing cartridge component approaches the device, the magnetic force of the magnet ring 012 causes them to automatically align and fit tightly together, forming a stable and easily detachable magnetic connection. One end of the spring electrode 011 is connected to the positive or negative terminal of the battery 031, and the other end is mounted on the magnet holder 013 for contact with the electrode of the external atomizing cartridge component. The spring electrode 011 has a certain degree of elasticity and conductivity, ensuring good contact with the electrode of the external atomizing cartridge component during connection, thereby enabling the transfer of electrical energy. After the external atomizing cartridge component is connected and secured to the device via the magnet ring 012, the spring electrode 011 contacts the electrode of the external atomizing cartridge component, forming a conductive path. At this time, the battery 031 transfers electrical energy to the external atomizing cartridge component through the spring electrode 011, providing the necessary power to its internal atomizing components. Upon receiving electrical energy from battery 031, the atomizing component inside the external atomizing cartridge begins to operate, heating the atomizing liquid to produce vapor. The user can activate the air outlet 02 via a button on PCBA board 041, supplying airflow to the atomizing cartridge, causing the heated atomizing liquid to mix with the air to form vapor, which is then delivered to the user. When replacing the external atomizing cartridge, the user simply detaches it from the device and inserts the new cartridge. Thanks to the design of the magnet ring 012 and spring electrode 011, the entire process is simple and quick, requiring no additional tools or complex operations.

[0077] As can be seen from the above embodiments, the beneficial effects of this solution are as follows: The magnet ring 012 makes the connection between the external atomizing cartridge component and the main device simple and quick. Users can easily connect and disconnect without complicated operations or tools, improving the convenience of replacing the atomizing cartridge. The magnetic force of the magnet ring 012 ensures a stable connection between the external atomizing cartridge component and the device, preventing easy detachment and thus guaranteeing safety and stability in use. The design of the spring electrode 011 gives it good conductivity and elasticity, ensuring close contact with the electrodes of the external atomizing cartridge component, reducing losses and interference during power transmission, and improving the efficiency and stability of power transmission. The convenient connection method and stable power transmission provide users with a better experience during use, eliminating the need for frequent battery replacements 031 or concerns about connection issues. The combined design of the magnet ring 012 and the spring electrode 011 has high reliability and durability, able to withstand certain wear and vibration impacts, thereby extending the product's service life and reliability. This design can adapt to different models and specifications of external atomizing cartridge components, exhibiting high flexibility and adaptability.

[0078] It should be noted that the above description of the disclosed embodiments enables those skilled in the art to implement or use this application. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the scope of this application. Therefore, this application is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. An intelligent electronic atomizer structure, characterized in that, include: Support assembly, air outlet, battery assembly, control assembly, and housing assembly; The air outlet is connected to the bracket assembly; The bracket assembly is connected to the battery assembly; The control component is connected to the battery component; The bracket assembly, the battery assembly, and the control assembly are all disposed within the housing assembly; The bracket assembly and the battery assembly cooperate to form an arc-shaped air cavity. The air outlet is disposed inside the battery assembly. The control assembly is used to control the air outlet to generate an upward airflow that is delivered into the arc-shaped air cavity.

2. The intelligent electronic atomizer structure according to claim 1, characterized in that, The support assembly includes: a spring electrode, a magnet ring, and a magnet support; The magnet support is provided with a groove for mounting the spring electrode and an annular groove for mounting the magnet ring. The spring electrode is disposed in the groove on the magnet support, and the magnet ring is disposed in the annular groove.

3. The intelligent electronic atomizer structure according to claim 2, characterized in that, The battery assembly includes a battery and a battery bracket, with the battery disposed on one side of the battery bracket.

4. The intelligent electronic atomizer structure according to claim 3, characterized in that, The control components include: PCBA board, key silicone, key bracket and key cover; The PCBA board is located on the other side of the battery bracket; The PCBA board is provided with buttons, and silicone sealant is applied to the buttons. The button bracket is mounted on the PCBA board, and the button cover is connected to the button bracket.

5. The intelligent electronic atomizer structure according to claim 4, characterized in that, The battery bracket is equipped with a control circuit, and the PCBA board is connected to the battery through the control circuit.

6. The intelligent electronic atomizer structure according to claim 5, characterized in that, The PCBA board is provided with a slot, and the button bracket is provided with a buckle corresponding to the slot. The button bracket is fastened into the slot by the buckle and connected to the PCBA board.

7. The intelligent electronic atomizer structure according to claim 6, characterized in that, The button cover is provided with a raised button, and the button bracket is provided with a limiting groove corresponding to the raised button. When the button cover is connected to the button bracket, the raised button cooperates with the limiting groove to prevent the button cover from moving.

8. The intelligent electronic atomizer structure according to claim 3, characterized in that, The housing assembly includes: a housing shell and a shielding plate; The bracket assembly, the air outlet, the battery assembly, and the control assembly are disposed within the outer casing. The shielding plate is connected to the outer shell, and the shielding plate and the outer shell cooperate to form a sealed outer structure to protect the parts inside the outer shell.

9. The intelligent electronic atomizer structure according to claim 8, characterized in that, The outer casing is provided with a first screw hole, and the battery bracket is provided with a second screw hole corresponding to the first screw hole; A fixing screw is used to thread through the first screw hole and the second screw hole to fix the outer casing and the battery bracket.

10. The intelligent electronic atomizer structure according to claim 3, characterized in that, The spring electrode and the magnet ring are used to connect with the external atomizing bullet component, and are magnetically connected to the atomizing bullet component. The battery provides electrical energy to the atomizing bullet component through the spring electrode.