Novel electronic atomizer with two-plus-ten liquid guide mode and structure

By using a dual-column guide tube and a silicone heating wire design, the problem of atomized liquid leakage during the disassembly process of the electronic atomizer is solved, realizing automatic introduction and blocking functions, simplifying the liquid filling operation, and ensuring the stability of the device and user convenience.

CN224140180UActive Publication Date: 2026-04-21GUANGDONG YUERAN BIOTECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUANGDONG YUERAN BIOTECHNOLOGY CO LTD
Filing Date
2025-04-27
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Existing detachable electronic atomizers are prone to structural gaps or poor sealing during the process of separating the atomizing chamber and the liquid container, leading to leakage of the liquid and contamination of internal components and the environment.

Method used

The design employs a double-long-column guide tube and a heating wire silicone to achieve automatic introduction and blocking of atomizing liquid. Combined with the design of the injection hole, it simplifies the injection operation and avoids leakage caused by disassembly.

Benefits of technology

It effectively prevents atomizing fluid leakage, protects the internal components of the electronic atomizer, reduces environmental pollution, and improves user convenience and device stability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an electronic atomizer with a novel two-plus-ten liquid guide mode and structure, and belongs to the field of electronic equipment. The device comprises a mist liquid container, an atomization bin, a liquid storage part, a double-long-column flow guide pipe, heating wire silica gel and an atomization assembly. The atomization assembly is arranged at the bottom of the heating wire silica gel and connected with the liquid storage component. The liquid storage component is fixed in the atomization bin through heating wire silica gel; the atomization bin is arranged in the mist liquid container, the double-long-column flow guide pipe is arranged in the atomization bin, and the double-long-column flow guide pipe is used for guiding the atomized liquid in the mist liquid container into the liquid storage component when the atomized liquid in the liquid storage component is in a consumed state and blocking guiding-in of the atomized liquid when the liquid storage component reaches a saturated state due to the fact that airflow cannot be converted; the heating wire silica gel is fixed to the bottom of the atomization bin, a liquid injection hole is formed in the bottom of the heating wire silica gel, and the liquid injection hole is used for externally puncturing the heating wire silica gel to penetrate through the double-long-column flow guide pipe to inject atomized liquid into the mist liquid container.
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Description

Technical Field

[0001] This application relates to the field of electronic devices, and in particular to a novel electronic atomizer with a two-plus-ten liquid guiding method and structure. Background Technology

[0002] With the rapid development of the e-cigarette market, consumers are increasingly demanding greater portability and ease of use. Detachable e-cigarettes, due to their ease of use in replacing e-liquid and maintaining cleanliness, are gradually becoming the mainstream in the market. These products typically feature a detachable atomizing chamber and e-liquid container structure, allowing users to easily separate the two for quick e-liquid replacement, greatly improving ease of use.

[0003] However, in the process of separating the atomizing chamber and the liquid container in existing detachable e-cigarettes, gaps may appear in the structure after disassembly or the seal may not be tight, which makes it very easy for the residual liquid in the atomizing chamber to leak. This not only contaminates the internal components of the e-cigarette, but may also pollute the surrounding environment and cause inconvenience to users. Utility Model Content

[0004] To solve the above-mentioned technical problems, this application provides a novel electronic atomizer with a two-plus-ten liquid guiding method and structure. The device includes: a liquid container, an atomizing chamber, a liquid storage component, a double-long-column guide tube, a heating wire silicone, and an atomizing assembly.

[0005] The atomizing component is disposed at the bottom of the heating wire silicone and connected to the liquid storage component;

[0006] The liquid storage component is fixed inside the atomizing chamber by the heating wire silicone;

[0007] The atomizing chamber is disposed inside the atomizing container, and the double-column guide tube is disposed inside the atomizing chamber. The double-column guide tube is used to introduce the atomizing liquid in the atomizing container into the storage component when the atomizing liquid in the storage component is in a state of consumption, and to block the introduction of atomizing liquid by means of airflow conversion when the storage component reaches a saturation state.

[0008] The heating wire silicone is fixed to the bottom of the atomizing chamber. The bottom of the heating wire silicone is provided with an injection hole. The injection hole is used to puncture the heating wire silicone from the outside and inject the atomizing liquid into the atomizing container through the double-column guide tube.

[0009] Optionally, the atomizing chamber is provided with a liquid tank sealing ring, which is fixed between the atomizing chamber and the atomizing liquid container to prevent leakage of the atomizing liquid.

[0010] Optionally, the atomizing container is provided with a nozzle and an atomizing tube;

[0011] The atomizing tube is disposed inside the atomizing container, and the bottom of the atomizing tube is connected to the atomizing chamber;

[0012] The nozzle is disposed on the top of the liquid container and communicates with the top of the atomizing tube;

[0013] The atomizing tube, the nozzle, and the mist container are integrally formed.

[0014] Optionally, the top of the atomizing chamber is provided with an atomizing port, one end of which is connected to the atomizing tube;

[0015] The other end of the atomizing port is connected to the liquid storage component.

[0016] Optionally, the atomizing port is provided with upper silicone, which is disposed at the connection between the atomizing port and the atomizing tube.

[0017] Optionally, a buckle is provided on the outside of the atomizing chamber;

[0018] The mist container is provided with a groove corresponding to the buckle;

[0019] The atomizing chamber is connected to the atomizing container by engaging with the groove via the buckle.

[0020] Optionally, the liquid storage component is provided with an atomizing core, one end of which is connected to the atomizing port, and the other end of which passes through the heating wire silicone and is electrically connected to the atomizing assembly.

[0021] Optionally, the atomizing component includes: a PCBA component, an air conditioning component, and a liquid bullet lower shell;

[0022] The PCBA assembly and the gas regulating assembly are disposed inside the lower shell of the liquid bomb.

[0023] The lower shell of the liquid bomb is detachably connected to the mist container;

[0024] One end of the PCBA assembly is connected to the air conditioning assembly, and the other end of the PCBA assembly is electrically connected to the atomizing core.

[0025] Optionally, the PCBA assembly includes a PCBA board, absorbent cotton, and a PCBA support.

[0026] The PCBA board and the absorbent cotton are fixed inside the lower shell of the liquid bomb by the PCBA bracket;

[0027] The absorbent cotton is disposed between the PCBA board and the heating wire silicone;

[0028] The PCBA board is connected to the air conditioning component and the atomizing core.

[0029] Optionally, the gas regulating component includes a gas regulating valve and a gas regulating switch;

[0030] The gas regulating valve is connected to the bottom of the gas regulating switch;

[0031] The top of the gas regulating switch is fixed to the bottom of the PCBA board by the PCBA bracket.

[0032] As can be seen from the above technical solutions, this application has the following advantages:

[0033] This application, by placing the atomizing chamber inside the liquid container and employing a dual-column guide tube design, achieves automatic and stable diversion of atomized liquid from the liquid container into the liquid storage component when the liquid in the storage component is consumed. Furthermore, it automatically stops diversion when the storage component is saturated, effectively preventing leakage caused by excessive diversion. In particular, the injection hole on the heating wire silicone allows for direct injection of atomized liquid from the outside without disassembling the atomizing chamber and liquid container. This simplifies the injection process, avoids structural gaps or poor sealing caused by disassembly, effectively prevents leakage of residual atomized liquid in the atomizing chamber, protects the internal components of the electronic atomizer, reduces environmental pollution, and brings great convenience to users. Attached Figure Description

[0034] Figure 1 This is a schematic diagram of the overall structure of the electronic atomizer with the novel two-plus-ten liquid guiding method and structure of this application;

[0035] Figure 2 This is an exploded structural diagram of the electronic atomizer with the novel two-plus-ten liquid guiding method and structure of this application;

[0036] Figure 3 This is a cross-sectional structural schematic diagram of the electronic atomizer with the novel two-plus-ten liquid guiding method and structure of this application;

[0037] Figure 4 This is a schematic diagram of the overall structure of the atomizing chamber of the electronic atomizer with the novel two-plus-ten liquid guiding method and structure of this application;

[0038] Figure 5 This is a schematic cross-sectional view of the atomizing chamber of the electronic atomizer with the novel two-plus-ten liquid guiding method and structure of this application;

[0039] Figure 6 This is a schematic diagram of the overall structure of the liquid container of the electronic atomizer with the novel two-plus-ten liquid guiding method and structure of this application. Detailed Implementation

[0040] To address the aforementioned technical problems, this application provides a novel electronic atomizer with a two-plus-ten liquid guiding method and structure, which solves the problem that in the process of separating the atomizing chamber and the liquid container in a detachable electronic atomizer, gaps appear in the structure after disassembly or the seal is not tight after disassembly, resulting in easy leakage of residual atomized liquid in the atomizing chamber.

[0041] 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.

[0042] 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.

[0043] 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.

[0044] 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.

[0045] 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.

[0046] Please see Figures 1 to 6In one optional embodiment, this application provides a novel electronic atomizer with a two-plus-ten liquid guiding method and structure, comprising:

[0047] 1. Liquid container; 2. Atomizing chamber; 3. Liquid storage component; 4. Double long column guide tube; 5. Heating wire silicone; and 6. Atomizing assembly.

[0048] The atomizing component 6 is disposed at the bottom of the heating wire silicone 5 and connected to the liquid storage component 3;

[0049] The liquid storage component 3 is fixed inside the atomizing chamber 2 by the heating wire silicone 5;

[0050] The atomizing chamber 2 is disposed inside the atomizing container 1, and the double long column guide tube 4 is disposed inside the atomizing chamber 2. The double long column guide tube 4 is used to introduce the atomizing liquid in the atomizing container 1 into the atomizing component 3 when the atomizing liquid in the storage component 3 is in a state of consumption, and to block the introduction of atomizing liquid by means of airflow conversion when the storage component 3 reaches a saturated state.

[0051] The heating wire silicone 5 is fixed to the bottom of the atomizing chamber 2. The bottom of the heating wire silicone 5 is provided with a liquid injection hole 7. The liquid injection hole 7 is used to puncture the heating wire silicone 5 from the outside and inject the atomizing liquid into the atomizing container 1 through the double long column guide tube 4.

[0052] The functions of each component in this embodiment are described in detail below:

[0053] The atomizing container 1 is equipped with an atomizing chamber 2 and a component for transmitting atomizing gas, and it stores a large amount of atomizing liquid inside, which provides the basic raw material for atomizing the atomizing liquid inside the atomizing chamber 2.

[0054] The atomizing chamber 2 is embedded inside the atomizing container 1. It is equipped with a double long column guide tube 4 and a liquid storage component 3, and together with the heating wire and silicone 5, it forms a sealed environment. It mainly serves as the chamber for the atomizing liquid to react.

[0055] The liquid storage component 3 is fixed in the atomizing chamber 2 by the heating wire silicone 5 and connected to the atomizing assembly 6. It is used to receive the atomized liquid guided out of the atomizing container 1 by the double long column guide tube 4. It is equipped with a component for atomizing the atomized liquid.

[0056] A dual-column guide tube 4 is installed inside the atomizing chamber 2, with its two ends connected to the atomizing container 1 and the liquid storage component 3, respectively. When the atomizing liquid in the liquid storage component 3 is consumed, the dual-column guide tube 4 uses its own guiding properties to guide the atomizing liquid from the atomizing container 1 into the liquid storage component 3, replenishing the liquid storage component 3. When the liquid storage component 3 reaches saturation, the dual-column guide tube 4 can prevent the continued introduction of atomizing liquid by utilizing the principle that airflow cannot be converted.

[0057] The heating wire silicone 5 is fixed to the bottom of the atomizing chamber 2 to fix the liquid storage component 3 inside the atomizing chamber 2 and prevent the liquid storage component 3 from moving or shaking during the atomization process.

[0058] The atomizing component 6 is located at the bottom of the heating wire silicone 5 and is connected to the liquid storage component 3, which is used to transmit electrical energy to the heating and atomizing component in the liquid storage component 3.

[0059] The injection hole 7 is located on the heating wire silicone 5 and is a key channel for replenishing the atomizing liquid into the atomizing container 1 from the outside. When the atomizing liquid in the atomizing container 1 is insufficient, the user can use a special tool for injecting atomizing liquid, such as a syringe, to inject the atomizing liquid into the atomizing container 1 by piercing the injection hole 7 on the heating wire silicone 5 and then following the double-column guide tube 4.

[0060] Working principle:

[0061] In this embodiment, when it is necessary to replenish the atomizing liquid in the atomizing container 1, the user needs to align the needle of the injection tool with the preset injection hole 7 at the bottom of the heating wire silicone 5, and then insert the needle vertically into the injection hole 7 with appropriate force, and penetrate the sealing layer of the heating wire silicone 5 and the tube wall structure of the double long column guide tube 4 in sequence. Then, the injection tool and the inside of the double long column guide tube 4 form a temporary channel, and the user can directly inject a fixed amount of atomizing liquid into the atomizing container 1 through the injection tool. After the injection is completed, the user slowly pulls out the injection needle, and the heating wire silicone 5 restores its sealing state due to its own elasticity.

[0062] Next, the electronic atomizer, after being filled with atomizing liquid, is assembled and placed upright. When upright, since the atomizing container 1 is located at the top of the atomizing chamber 2, and both ends of the double-column guide tube 4 are connected to the liquid storage component 3 inside the atomizing container 1 and the atomizing chamber 2 respectively, the atomizing liquid can flow from the atomizing container 1 along the double-column guide tube 4 to the liquid storage component 3 inside the atomizing chamber 2 under its own gravity. As the atomizing liquid is continuously introduced, the amount of atomizing liquid in the liquid storage component 3 gradually increases. When the liquid storage component 3 reaches saturation, its internal space is filled with atomizing liquid. At this point, the liquid storage component 3 can no longer store excess atomizing liquid, and the double-column guide tube 4 will stop airflow due to the saturation of the liquid storage component 3, causing excess atomizing liquid to stop within the double-column guide tube 4 due to airtightness.

[0063] When the electronic atomizer is activated, current is transmitted through the atomizing component 6 to the atomizing component in the liquid storage component 3, causing the atomizing component in the liquid storage component 3 to heat up. When the heat generated by the atomizing component acts on the atomized liquid adsorbed in the liquid storage component 3, the atomized liquid is heated and converted into tiny mist particles. The atomized tiny particles then gather. When the user begins to inhale, external gas enters the atomizing chamber 2 through a specific air intake channel. Furthermore, the entering gas carries the atomized particles, forming an inhalable aerosol. The aerosol is then delivered to the user through the component in the liquid container 1.

[0064] Specifically, during the operation of the electronic atomizer, continuous inhalation by the user will reduce the amount of atomized liquid in the liquid storage component 3, causing the liquid storage component 3 to no longer be saturated. The liquid storage space in the liquid storage component 3 will be emptied, and external air can flow again through the liquid storage component 3 and the double long column guide tube 4, and continue to introduce the atomized liquid in the liquid container 1 into the liquid storage component 3 to form a new saturated state for the next user to enjoy.

[0065] In practical applications, by placing the atomizing chamber 2 inside the liquid container 1 and using the design of the double-column guide tube 4, the atomizing liquid in the liquid storage component 3 can be automatically and stably introduced into the liquid storage component 3 when the liquid in the liquid storage component 3 is consumed. Furthermore, the introduction of liquid is automatically stopped when the liquid storage component 3 is saturated, effectively avoiding leakage problems caused by excessive introduction. In particular, the injection hole 7 on the heating wire silicone 5 allows for direct injection of atomizing liquid by puncturing the heating wire silicone 5 from the outside without disassembling the atomizing chamber 2 and the liquid container 1. This simplifies the injection operation, avoids structural gaps or poor sealing caused by disassembly, effectively prevents leakage of residual atomizing liquid in the atomizing chamber 2, protects the internal components of the electronic atomizer, reduces environmental pollution, and brings great convenience to users.

[0066] In an optional embodiment, the atomizing chamber 2 is provided with a liquid tank sealing ring 11, which is fixed between the atomizing chamber 2 and the atomizing liquid container 1 to prevent leakage of the atomizing liquid.

[0067] This embodiment provides a specific implementation of a liquid tank sealing ring 11. In this implementation, the liquid tank sealing ring 11 is disposed on the atomizing chamber 2 and fixed between the atomizing chamber 2 and the atomizing container 1 assembly. It is mainly used to tightly fit between the contact interface of the atomizing chamber 2 and the atomizing container 1, and with its good elasticity and sealing performance, effectively fills any small gaps that may exist between them, constructing a robust barrier. This barrier can prevent the atomized liquid from leaking out from the connection between the atomizing chamber 2 and the atomizing container 1 during normal operation or under accidental shaking or tilting, thereby preventing atomized liquid leakage, ensuring that the internal components of the electronic atomizer are not contaminated, avoiding adverse effects on the surrounding environment, ensuring the safety and convenience of the user during use, and maintaining the stable operation and good performance of the electronic atomizer.

[0068] In an optional embodiment, the atomizing container 1 is provided with a nozzle 8 and an atomizing tube 9;

[0069] The atomizing tube 9 is disposed inside the atomizing container 1, and the bottom of the atomizing tube 9 is connected to the atomizing chamber 2;

[0070] The nozzle 8 is disposed on the top of the mist container 1 and is connected to the top of the atomizing tube 9;

[0071] The atomizing tube 9, the nozzle 8, and the mist container 1 are integrally formed.

[0072] This embodiment provides a specific implementation of a liquid atomizer 1, which includes an atomizing tube 9 and a mouthpiece 8. The atomizing tube 9 is installed inside the liquid atomizer 1, and its bottom is connected to the atomizing chamber 2. When the atomizing component in the liquid storage component 3 within the atomizing chamber 2 converts the liquid into an aerosol, the aerosol in the atomizing chamber 2 rises along the atomizing tube 9 and is eventually inhaled through the mouthpiece 8. In practical applications, the atomizing tube 9 is directly connected to the atomizing chamber 2, ensuring efficient and smooth aerosol transmission. After the liquid atomizes into an aerosol within the liquid storage component 3, it can quickly and stably rise along the atomizing tube 9 to the mouthpiece 8, improving the user experience. This design not only optimizes the aerosol flow path and reduces energy loss but also improves the purity and taste of the aerosol. Furthermore, the liquid atomizer 1 integrates the functions of storing liquid atomized material and transmitting atomized gas, making it easy to carry and use, meeting the modern consumer's demand for convenience and efficiency.

[0073] It should be noted that the integrated molding setting means that the connection between the atomizing tube 9, the nozzle 8, and the atomizing container 1 is a non-detachable connection, such as integral casting molding. No specific limitation is made here. The connection between the atomizing tube 9, the nozzle 8, and the atomizing container 1 avoids problems such as loosening, falling off, or poor sealing that may occur due to the separation of parts. It also avoids the potential risk of leakage of atomizing liquid and atomizing gas, improves the sealing performance of the atomizing container 1, and simplifies the manufacturing process and reduces assembly steps.

[0074] In an optional embodiment, the top of the atomizing chamber 2 is provided with an atomizing port 10, one end of which is connected to the atomizing tube 9;

[0075] The other end of the atomizing port 10 is connected to the liquid storage component 3.

[0076] This embodiment provides a specific implementation of the atomizing port 10. In this implementation, the atomizing port 10 is located at the top of the atomizing chamber 2, with one end connected to the atomizing tube 9 and the other end connected to the liquid storage component 3. When the user performs an inhalation action, external air enters the liquid storage component 3 along a preset path under the action of air pressure difference. Guided by the atomizing port 10, a stable and orderly airflow is formed. At the same time, the atomized liquid stored in the atomizing container 1 is transferred to the liquid storage component 3 in the atomizing chamber 2 through the double-column guide tube 4. Since the liquid storage component 3 is equipped with a component for atomizing the atomized liquid, the atomized liquid in the liquid storage component 3 is heated after the atomizing component 6 transmits electrical energy to the atomizing component. The atomized liquid rapidly vaporizes after being heated, forming a large number of tiny droplet particles. These particles are fully mixed with the incoming airflow. As the airflow flows, the airflow mixed with atomized particles gradually gathers, forming an aerosol that can be inhaled by the user. Next, the aerosol travels along the atomizing port 10 to the atomizing tube 9 and is inhaled by the user through the mouthpiece 8.

[0077] In practical applications, the atomizing port 10 is located at the top of the atomizing chamber 2 and is reasonably connected to the atomizing tube 9 and the liquid storage component 3. With the preset airflow path, it can allow the outside air to enter stably and orderly and mix fully with the atomized particles, ensuring the uniformity and stability of aerosol formation and improving the enjoyment of the electronic atomizer.

[0078] In an optional embodiment, the atomizing port 10 is provided with an upper silicone 14, which is disposed at the connection between the atomizing port 10 and the atomizing tube 9.

[0079] In this embodiment, a specific implementation of the upper silicone 14 is provided. In this implementation, the upper silicone 14 is disposed at the connection between the atomizing port 10 and the atomizing tube 9. When the aerosol enters the atomizing tube 9 through the atomizing port 10, the upper silicone 14 will tightly wrap the connection between the atomizing port 10 and the atomizing tube 9, ensuring that the heated aerosol can only enter the atomizing tube 9 through the atomizing port 10, preventing the aerosol from leaking into other components. At the same time, it can also prevent the atomizing liquid from leaking into the atomizing port 10 and the atomizing tube 9, thereby improving the user experience.

[0080] In an optional embodiment, a buckle 12 is provided on the outside of the atomizing chamber 2;

[0081] The mist container 1 is provided with a groove 13 corresponding to the buckle 12;

[0082] The atomizing chamber 2 is connected to the atomizing container 1 by engaging with the groove 13 via the buckle 12.

[0083] This embodiment provides another specific implementation of the atomizing chamber 2. In this implementation, a snap fastener 12 is provided on the outer side of the atomizing chamber 2 to ensure a secure connection with the liquid container 1. The liquid container 1 has a groove 13 corresponding to the snap fastener 12. The shape and size of the groove 13 match the snap fastener 12 so that the two can fit together tightly. When assembling the electronic atomizer, the user aligns the snap fastener 12 of the atomizing chamber 2 with the groove 13 of the liquid container 1 and applies appropriate pressure. The snap fastener 12 undergoes slight elastic deformation under pressure, allowing it to slide smoothly into the groove 13. Once the snap fastener 12 is fully inserted into the groove 13, it returns to its original shape and locks into the groove 13, thereby achieving the connection between the atomizing chamber 2 and the liquid container 1.

[0084] In practical applications, the engagement of the clip 12 and the groove 13 simplifies and streamlines the assembly process of the atomizing chamber 2 and the liquid container 1. Users simply align the clip 12 with the groove 13 and apply appropriate pressure to connect the two, significantly reducing assembly time. The engagement of the clip 12 and the groove 13 ensures a secure connection between the atomizing chamber 2 and the liquid container 1, effectively enhancing the overall structural stability of the electronic atomizer and preventing the atomizing chamber 2 from detaching or loosening.

[0085] In an optional embodiment, the liquid storage component 3 is provided with an atomizing core 16, one end of which is connected to the atomizing port 10, and the other end of which passes through the heating wire silicone 5 and is electrically connected to the atomizing assembly 6.

[0086] This embodiment provides a specific implementation of the atomizing core 16. In this implementation, the atomizing core 16 is disposed in the liquid storage component 3, with one end connected to the atomizing port 10 and the other end passing through the heating wire silicone 5 and electrically connected to the atomizing assembly 6. When the user performs an inhalation action on the electronic atomizer, external air enters the liquid storage component 3 along a specific path under the action of air pressure difference, and then forms a stable airflow under the guidance of the atomizing port 10. At the same time, the atomized liquid stored in the atomizing container 1 is guided to the liquid storage component 3 through the double long column guide tube 4. One end of the atomizing core 16 is connected to the atomizing port 10 to ensure that the airflow and atomized particles are smoothly discharged; the other end passes through the heating wire silicone 5 and is electrically connected to the atomizing assembly 6. When the atomizing assembly 6 receives electrical energy, it transmits current to the atomizing core 16. After being powered on, the atomizing core 16 heats up rapidly and heats the surrounding atomized liquid. The atomized liquid vaporizes rapidly after being heated, forming a large number of tiny droplet particles. These particles mix thoroughly with the incoming airflow to form an aerosol that the user can inhale. The aerosol then enters the atomizing tube 9 through the atomizing port 10 and is finally inhaled by the user through the mouthpiece 8.

[0087] In practical applications, one end of the atomizing core 16 is connected to the atomizing port 10, and the other end is electrically connected to the atomizing assembly 6 via the heating wire silicone 5. This allows for efficient and rapid power transfer to the atomizing core 16, providing stable power support for the atomization process. Furthermore, the insulating properties of the heating wire silicone 5 effectively prevent leakage, ensuring the safety of the device.

[0088] In an optional embodiment, the atomizing component 6 includes: a PCBA component 15, an air conditioning component 17, and a liquid bullet lower shell 18;

[0089] The PCBA assembly 15 and the gas regulating assembly 17 are disposed inside the lower shell 18 of the liquid bomb.

[0090] The lower shell 18 of the liquid bomb is detachably connected to the mist container 1;

[0091] One end of the PCBA assembly 15 is connected to the air conditioning assembly 17, and the other end of the PCBA assembly 15 is electrically connected to the atomizing core 16.

[0092] In this embodiment, a specific implementation of the atomizing component 6 is provided. In this implementation, the atomizing component 6 consists of a PCBA component 15, a gas regulating component 17, and a liquid cartridge lower shell 18. When installing the atomizing component 6 of the electronic atomizer, the user first positions and fixes the gas regulating component 17 to the bottom of the PCBA component 15, ensuring a stable connection and accurate positioning. Then, the fixed PCBA component 15 and gas regulating component 17 are smoothly placed into the liquid cartridge lower shell 18. Using a connecting buckle structure or other suitable fixing method, they are tightly fastened and fixed in the liquid cartridge lower shell 18, ensuring that the PCBA component 15 and gas regulating component 17 do not shake or shift within the liquid cartridge lower shell 18. Finally, the atomizing container 1, which has been filled with atomizing liquid, is connected to the liquid cartridge lower shell 18, where the PCBA component 15 and gas regulating component 17 have been assembled and fixed, so that the two are tightly joined. This completes the assembly of the atomizing component 6 of the electronic atomizer.

[0093] When the atomizing liquid in the atomizing container 1 is gradually depleted, the user can separate the atomizing component 6 from the atomizing container 1 based on the design principle of the detachable connection between the liquid cartridge lower shell 18 and the atomizing container 1. It should be noted that the detachable connection refers to a connection method or structure that allows the liquid cartridge lower shell 18 and the atomizing container 1 to be connected and separated without damaging their respective structures. After the liquid cartridge lower shell 18 is separated from the atomizing container 1, the PCBA component 15 and the gas regulating component 17, originally installed inside the liquid cartridge lower shell 18, are exposed. The user can then directly inject atomizing liquid into the atomizing container 1 while simultaneously disassembling, replacing, or maintaining the atomizing component 6.

[0094] When a user uses the electronic atomizer, the PCBA assembly 15, as the core control and power transmission unit, begins to operate. One end of it connects to the airflow adjustment assembly 17, which flexibly adjusts the airflow according to different inhalation intensities. For example, during quiet, restful light inhalation, the airflow adjustment assembly 17 precisely controls a small amount of air to enter, finely mixing with the atomizing liquid, resulting in a soft and delicate mist generated by the atomizer coil 16, satisfying the user's needs without producing excessive aerosol that might disturb others. During relaxed, deep inhalation, the airflow adjustment assembly 17 significantly increases the airflow, promoting full atomization of the atomizing liquid and delivering a rich, full mist for a satisfying experience. The other end of the PCBA assembly 15 is electrically connected to the atomizer coil 16. Upon receiving external power, the PCBA assembly 15 processes and distributes the electrical energy, stably transmitting appropriate current and voltage to the atomizer coil 16. After being powered on, the atomizing core 16 heats up rapidly, heating the atomizing liquid delivered from the liquid container 1 to the liquid storage component 3 near the atomizing core 16. This causes the atomizing liquid to vaporize instantly, forming a large number of tiny particles. These particles mix thoroughly with the incoming airflow, forming an aerosol that can be inhaled by the user. Finally, the atomizing port 10 and other structures are inhaled by the user, realizing the normal atomization function of the electronic atomizer.

[0095] In practical applications, the detachable liquid cartridge lower shell 18 and the atomizing container 1 allow users to easily separate them after the atomizing liquid is consumed. This not only facilitates liquid refilling but also allows for the disassembly, replacement, and maintenance of the atomizing component 6, greatly improving ease of use and flexibility. The PCBA component 15 precisely controls the power transmission and, together with the air regulating component 17, flexibly adjusts the air intake to meet the user's inhalation needs in different scenarios.

[0096] In an optional embodiment, the PCBA assembly 15 includes a PCBA board 19, absorbent cotton, and a PCBA support 21;

[0097] The PCBA board 19 and the absorbent cotton are fixed inside the liquid bullet lower shell 18 by the PCBA bracket 21;

[0098] The absorbent cotton is disposed between the PCBA board 19 and the heating wire silicone 5;

[0099] The PCBA board 19 is connected to the air conditioning assembly 17 and the atomizing core 16.

[0100] This embodiment provides a specific implementation of a PCBA component 15, which consists of a PCBA board 19, absorbent cotton, and a PCBA bracket 21. When the atomizing liquid begins to atomize, electrical energy is conducted to the atomizing core 16 through the PCBA board 19, causing the atomizing core 16 to heat up rapidly according to the electrical energy, thus atomizing the liquid. The absorbent cotton is fixed between the PCBA board 19 and the heating wire silicone 5 by the PCBA bracket 21 to prevent the atomizing liquid from leaking and affecting the circuit, ensuring the normal operation of the PCBA board 19. When the atomizing liquid is atomized in the atomizing core 16, if some condensation flows back, the absorbent cotton can absorb it again, preventing the atomizing liquid from interfering with the atomization effect. The PCBA bracket 21 is fixed inside the liquid cartridge lower shell 18, which strengthens the stability of the entire atomizing component 6 structure and also ensures that the components of the electronic atomizer work together.

[0101] In an optional embodiment, the gas regulating assembly 17 includes a gas regulating valve 23 and a gas regulating switch 24;

[0102] The gas regulating valve 23 is connected to the bottom of the gas regulating switch 24;

[0103] The top of the gas regulating switch 24 is fixed to the bottom of the PCBA board 19 by the PCBA bracket 21.

[0104] This embodiment provides a specific implementation of the gas regulating component 17, which consists of a gas regulating valve 23 and a gas regulating switch 24. The gas regulating valve 23 is connected to the bottom of the gas regulating switch 24, and the two work together. The top of the gas regulating switch 24 is securely fixed to the bottom of the PCBA board 19 via a PCBA bracket 21, ensuring the overall structural stability of the gas regulating component 17. When the user operates the electronic atomizer, the gas regulating switch 24 acts as an intermediate hub between the user's operation and the adjustment of the gas regulating valve 23, sensing changes in the user's inhalation intensity. If the user is in a quiet resting state and inhaling lightly, the gas regulating switch 24 transmits a signal to the gas regulating valve 23, which precisely controls the inhalation to allow a small amount of gas to enter and mix finely with the atomizing liquid. The atomizing core 16 then generates a soft and delicate mist that meets the user's needs without disturbing others. When taking a deep, relaxing inhalation, the air control switch 24 sends a signal to the air control valve 23 to significantly increase the air intake, causing the atomizing liquid to be fully atomized, bringing users a rich and full mist and a sense of satisfaction, thus flexibly adapting to different inhalation scenarios.

[0105] 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. A novel electronic atomizer with a two-plus-ten liquid guiding method and structure, characterized in that, include: Atomizing container, atomizing chamber, liquid storage component, double long column guide tube, heating wire silicone and atomizing assembly; The atomizing component is disposed at the bottom of the heating wire silicone and connected to the liquid storage component; The liquid storage component is fixed inside the atomizing chamber by the heating wire silicone; The atomizing chamber is disposed inside the atomizing container, and the double long column guide tube is disposed inside the atomizing chamber. The double long column guide tube is used to introduce the atomizing liquid in the atomizing container into the storage component when the atomizing liquid in the storage component is in a state of consumption, and to block the introduction of atomizing liquid by means of airflow conversion when the storage component reaches a saturation state. The heating wire silicone is fixed to the bottom of the atomizing chamber. The bottom of the heating wire silicone is provided with an injection hole. The injection hole is used to puncture the heating wire silicone from the outside and inject the atomizing liquid into the atomizing container through the double-column guide tube.

2. The electronic atomizer of claim 1, wherein, The atomizing chamber is equipped with a liquid tank sealing ring, which is fixed between the atomizing chamber and the atomizing liquid container to prevent leakage of the atomizing liquid.

3. The electronic atomizer of claim 1, wherein, The mist container is equipped with a nozzle and an atomizing tube; The atomizing tube is disposed inside the atomizing container, and the bottom of the atomizing tube is connected to the atomizing chamber; The nozzle is disposed on the top of the liquid container and communicates with the top of the atomizing tube; The atomizing tube, the nozzle, and the mist container are integrally formed.

4. The electronic atomizer of claim 3, wherein, The top of the atomizing chamber is provided with an atomizing port, one end of which is connected to the atomizing tube; The other end of the atomizing port is connected to the liquid storage component.

5. The electronic atomizer of claim 4, wherein, The atomizing port is provided with upper silicone, which is located at the connection between the atomizing port and the atomizing tube.

6. The electronic atomizer of claim 5, wherein, The atomizing chamber is equipped with a buckle on its outer side; The mist container is provided with a groove corresponding to the buckle; The atomizing chamber is connected to the atomizing container by engaging with the groove via the buckle.

7. The electronic atomizer of claim 6, wherein, The liquid storage component is provided with an atomizing core, one end of which is connected to the atomizing port, and the other end of which passes through the heating wire silicone and is electrically connected to the atomizing assembly.

8. The electronic atomizer of claim 7, wherein, The atomizing component includes: a PCBA component, a gas regulation component, and a liquid bullet lower shell; The PCBA assembly and the gas regulating assembly are disposed inside the lower shell of the liquid bomb. The lower shell of the liquid bomb is detachably connected to the mist container; One end of the PCBA assembly is connected to the air conditioning assembly, and the other end of the PCBA assembly is electrically connected to the atomizing core.

9. The electronic atomizer of claim 8, wherein, The PCBA assembly includes a PCBA board, absorbent cotton, and a PCBA support; The PCBA board and the absorbent cotton are fixed inside the lower shell of the liquid bomb by the PCBA bracket; The absorbent cotton is disposed between the PCBA board and the heating wire silicone; The PCBA board is connected to the air conditioning component and the atomizing core.

10. The electronic atomizer of claim 9, wherein, The gas regulating component includes a gas regulating valve and a gas regulating switch; The gas regulating valve is connected to the bottom of the gas regulating switch; The top of the gas regulating switch is fixed to the bottom of the PCBA board by the PCBA bracket.