Liquid control electronic atomizer

CN224805897UActive Publication Date: 2026-09-29GUANGDONG YUERAN BIOTECHNOLOGY CO LTD
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Patent Information

Application Number
CN202522234122.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-22
Publication Date
2026-09-29
Estimated Expiration
2035-10-22

AI Technical Summary

Technical Problem

[0004]然而,当用户进行连续抽吸时,易因重力导致雾化液溢流,使雾化芯供液过量,引发雾化不充分,导致口感急剧变差,大幅度降低用户食用体验

Benefits of technology

本申请通过注液孔将雾化液输送至雾化仓时,会被高密度的第一储液棉先吸收和缓存,起到初步的缓冲与蓄积作用。然后,第一储液棉内的雾化液在毛细作用下自然地向下渗透至密度较低的第二储液棉。由于第二储液棉与雾化组件直接连接,它能持续而稳定地为雾化芯供应适量雾化液,确保初始阶段雾化的充分与口感的纯正。接着,当第二储液棉的液体达到饱和状态时,由于其密度低于上方的第一储液棉,其纤维间的毛细作用力无法完全克服来自上方高密度储液棉的更强持液力与雾化液重力,从而在第一储液棉与第二储液棉的接触界面形成临时的液阻,有效阻断了过量雾化液的继续向下导入,防止了雾化芯被过多雾化液淹没的情况,降低了因供液过量导致的漏液风险,确保了雾化芯始终在最佳雾化液量下工作,从而产生稳定且充分的雾气,极大提升了食用的口感。

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Abstract

The application discloses a liquid control type electronic atomizer, which is used in the field of electronic devices. The application comprises an atomization assembly, an atomization chamber, a liquid injection hole, a mist liquid container, a first liquid storage cotton and a second liquid storage cotton. The liquid injection hole is arranged on the top of the atomization chamber. The atomization chamber is arranged in the atomization assembly. The mist liquid container is communicated with the atomization chamber through the liquid injection hole, and the mist liquid container is used for storing atomization liquid. The first liquid storage cotton and the second liquid storage cotton are arranged in the atomization chamber. The bottom of the first liquid storage cotton is connected with the atomization assembly through the second liquid storage cotton. The top of the first liquid storage cotton is connected with the liquid injection hole. The density of the first liquid storage cotton is greater than that of the second liquid storage cotton. The first liquid storage cotton is used for absorbing the atomization liquid introduced into the atomization chamber through the liquid injection hole and penetrating downward to the second liquid storage cotton. When the second liquid storage cotton reaches the saturation state of the atomization liquid, the atomization liquid is blocked from being introduced downward due to the density of the first liquid storage cotton being greater than that of the second liquid storage cotton.
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Description

Technical Field

[0001] This application relates to the field of electronic devices, and more particularly to a liquid-controlled electronic atomizer. Background Technology

[0002] With the rapid development of the electronic atomizer industry, users' demands for the flavor of electronic atomizers are increasing day by day.

[0003] Currently, most electronic atomizers adopt a structure in which the liquid container and the atomization chamber are directly interconnected. The core liquid supply principle relies on the gravity of the liquid itself to make the liquid stored in the liquid container flow into the atomization chamber, thereby naturally wetting the atomizing core and providing a basic liquid supply for the subsequent atomization process.

[0004] However, when users vape continuously, gravity can easily cause the atomizing liquid to overflow, resulting in excessive liquid supply to the atomizing core, insufficient atomization, and a sharp deterioration in taste, significantly reducing the user's vaping experience. Utility Model Content

[0005] To address the aforementioned technical problems, this application provides a liquid-controlled electronic atomizer, comprising: Atomizing component, atomizing chamber, liquid injection port, liquid container, first liquid storage cotton and second liquid storage cotton; The injection port is located at the top of the atomizing chamber; The atomizing chamber is disposed within the atomizing assembly, and the atomizing liquid container is connected to the atomizing chamber through the liquid injection hole. The atomizing liquid container is used to store atomizing liquid. The first liquid storage cotton and the second liquid storage cotton are disposed in the atomizing chamber, and the bottom of the first liquid storage cotton is connected to the atomizing component through the second liquid storage cotton; The top of the first liquid storage cotton is connected to the injection hole, and the density of the first liquid storage cotton is greater than the density of the second liquid storage cotton. The first liquid storage cotton is used to absorb the atomizing liquid introduced into the atomizing chamber through the injection hole and permeate downwards into the second liquid storage cotton. When the second liquid storage cotton reaches the state of atomizing liquid saturation, the downward introduction of the atomizing liquid is blocked by the density of the first liquid storage cotton being greater than that of the second liquid storage cotton.

[0006] Optionally, the atomizing container includes: a liquid storage component, an atomizing tube, and a nozzle; The liquid storage component is connected to the atomizing chamber through the liquid injection hole; The suction nozzle is located on top of the liquid storage component; The atomizing tube is disposed inside the liquid storage component, and one end of the atomizing tube is connected to the nozzle; The other end of the atomizing tube passes through the atomizing chamber and is connected to the atomizing component.

[0007] Optionally, the liquid storage component includes: an injection channel, a liquid storage tank, and a sealing connection component; The nozzle is located at the top of the liquid storage tank, and the atomizing tube is located inside the liquid storage tank; The injection channel is disposed on the sealing connection component and connected to the injection hole; The sealing connection component is fixed to the bottom of the liquid storage tank.

[0008] Optionally, the sealing connection component includes a silicone seal and a sealing bracket; The injection channel passes through the sealing bracket and the silicone seal and is connected to the injection hole; The silicone seal is fixed to the bottom of the liquid storage tank by the sealing bracket.

[0009] Optionally, the atomizing chamber is provided with an atomizing port, one end of which is connected to the atomizing component; The other end of the atomizing port is connected to the atomizing tube.

[0010] Optionally, the atomizing component includes: a main body bottom cover, a heating wire component, a battery component, and a gas regulating component; The atomizing chamber is fixed inside the bottom cover of the main body by an atomizing bracket; The heating wire component is disposed inside the second liquid storage cotton and the first liquid storage cotton, and one end of the heating wire component is connected to the atomizing port; The other end of the heating wire component is disposed inside the second liquid storage cotton and connected to the gas regulating component; The battery component is disposed on the bottom cover of the main body and is electrically connected to the heating wire component.

[0011] Optionally, the heating wire component includes: an atomizing core, heating wire silicone, and a first PCBA board; The heating wire silicone is fixed to the bottom of the atomizing chamber; The atomizing core is fixed inside the first liquid storage cotton and the second liquid storage cotton by the heating wire silicone; One end of the atomizing core is connected to the atomizing port; The atomizing core is connected to the battery component via the first PCBA board.

[0012] Optionally, the first PCBA board is provided with absorbent cotton, which is located at the bottom of the heating wire silicone.

[0013] Optionally, the gas regulating component includes a gas regulating element and gas regulating silicone; The gas regulating component is disposed at the bottom of the main body bottom cover and is disposed at the bottom of the first PCBA board via the gas regulating silicone.

[0014] Optionally, the battery component includes: a bracket component, a USB interface, a battery cell, a second PCBA board, and a switch button; The bracket component is fixed to the bottom cover of the main body; The USB port and the switch button are mounted on the bracket component; The battery cell is electrically connected to the first PCBA board via the second PCBA board; The battery cell is electrically connected to the USB interface via the second PCBA board.

[0015] As can be seen from the above technical solutions, this application has the following beneficial effects: When the atomizing liquid is delivered to the atomizing chamber through the injection port, it is first absorbed and buffered by the high-density first reservoir cotton, playing an initial buffering and accumulation role. Then, the atomizing liquid in the first reservoir cotton naturally permeates downwards to the lower-density second reservoir cotton under capillary action. Since the second reservoir cotton is directly connected to the atomizing component, it can continuously and stably supply an appropriate amount of atomizing liquid to the atomizing core, ensuring sufficient atomization and pure taste in the initial stage. Next, when the liquid in the second reservoir cotton reaches saturation, because its density is lower than that of the first reservoir cotton above, the capillary force between its fibers cannot completely overcome the stronger liquid-holding force from the high-density reservoir cotton above and the gravity of the atomizing liquid. This creates a temporary liquid resistance at the contact interface between the first and second reservoir cotton, effectively preventing the continued downward flow of excess atomizing liquid. This prevents the atomizing core from being submerged by too much atomizing liquid, reduces the risk of leakage due to excessive liquid supply, and ensures that the atomizing core always operates at the optimal amount of atomizing liquid, thereby producing stable and sufficient mist and greatly improving the taste of food. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the overall structure of the top-opening liquid inlet electronic atomizer of this application; Figure 2 This is an exploded structural diagram of the top-opening liquid inlet electronic atomizer of this application; Figure 3 This is a schematic cross-sectional view of the atomizing container of the top-opening liquid inlet electronic atomizer of this application. Figure 4 This is a schematic diagram of the atomizing chamber structure of the top-opening liquid inlet electronic atomizer of this application. Detailed Implementation

[0017] 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.

[0018] 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.

[0019] 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.

[0020] 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.

[0021] 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.

[0022] Please see Figures 1 to 4 This application provides a liquid-controlled electronic atomizer, which includes: Atomizing component 1, atomizing chamber 2, liquid injection hole 3, liquid container 4, first liquid storage cotton 5, and second liquid storage cotton 6; The injection port is located at the top of the atomizing chamber. The atomizing chamber 2 is located inside the atomizing component 1, and the atomizing liquid container 4 is connected to the atomizing chamber 2 through the liquid injection hole 3. The atomizing liquid container 4 is used to store the atomizing liquid. The first liquid storage cotton 5 and the second liquid storage cotton 6 are installed in the atomizing chamber 2, and the bottom of the first liquid storage cotton 5 is connected to the atomizing component 1 through the second liquid storage cotton 6. The top of the first liquid storage cotton 5 is connected to the injection hole 3, and the density of the first liquid storage cotton 5 is greater than the density of the second liquid storage cotton 6. The first liquid storage cotton 5 is used to absorb the atomizing liquid introduced into the atomizing chamber 2 through the injection hole 3 and permeate downwards to the second liquid storage cotton 6. When the second liquid storage cotton 6 reaches the state of atomizing liquid saturation, the downward introduction of atomizing liquid is blocked by the density of the first liquid storage cotton 5 being greater than the density of the second liquid storage cotton 6.

[0023] The components of this embodiment are described in detail below: The atomizing assembly 1 contains an atomizing chamber 2, which is connected to the first liquid storage cotton 5 via a second liquid storage cotton 6. Its main function is to convert the atomizing liquid in the liquid storage cotton into an atomized gas.

[0024] The atomizing chamber 2 is located inside the atomizing component 1, and is provided with a first liquid storage cotton 5 and a second liquid storage cotton 6 inside. It is also provided with an injection hole 3 at the top, which is used to guide the atomizing liquid in the atomizing container 4 to the first liquid storage cotton 5 through the injection hole 3.

[0025] The injection port 3 is located at the top of the atomizing chamber 2, with one end connected to the atomizing container 4 and the other end connected to the first liquid storage cotton 5. It is mainly used to introduce the atomizing liquid stored in the atomizing container 4 into the atomizing chamber 2, so that the atomizing liquid can smoothly reach the first liquid storage cotton 5.

[0026] The atomizing container 4 is connected to the atomizing chamber 2 through the injection hole 3, and is mainly used to store the atomizing liquid.

[0027] The first liquid storage cotton 5 is placed inside the atomizing chamber 2, with the top connected to the injection hole 3 and the bottom connected to the second liquid storage cotton 6. It has a higher density than the second liquid storage cotton 6 and is mainly used to absorb the atomizing liquid introduced by the injection hole 3 and permeate it downwards to the second liquid storage cotton 6. When the second liquid storage cotton 6 reaches the state of atomizing liquid saturation, it blocks the atomizing liquid from being introduced downwards due to its own higher density.

[0028] The second liquid storage cotton 6 is placed inside the atomizing chamber 2 and is connected to the bottom of the atomizing component 1 and the first liquid storage cotton 5. Its density is less than that of the first liquid storage cotton 5. It is mainly used to receive the atomized liquid that permeates down from the first liquid storage cotton 5. When it reaches the state of saturation of atomized liquid, the first liquid storage cotton 5 will block the atomized liquid from permeating downward.

[0029] Working principle: In this embodiment, when the electronic atomizer is working, the atomized liquid stored in the atomizer container 4 is delivered to the top of the first liquid storage cotton 5 in the atomization chamber 2 through the injection hole 3. Then, the high-density first liquid storage cotton 5 absorbs and buffers the atomized liquid, playing a preliminary buffering and accumulation role. Next, the atomized liquid naturally permeates downwards to the lower-density second liquid storage cotton 6 under the capillary action of the high-density first liquid storage cotton 5. Then, when the second liquid storage cotton 6 reaches saturation, because the density of the second liquid storage cotton 6 is less than that of the first liquid storage cotton 5, the capillary force between the fibers of the second liquid storage cotton 6 cannot completely overcome the stronger liquid-holding force from the high-density first liquid storage cotton 5 above and the gravity of the atomized liquid. Therefore, a temporary liquid resistance is formed at the contact interface between the first liquid storage cotton 5 and the second liquid storage cotton 6. This liquid resistance prevents the continued downward permeation of excess atomized liquid, avoiding excessive liquid from flowing into the atomization assembly 1. After the atomizing component 1 consumes some of the atomizing liquid and the second liquid storage cotton 6 is no longer saturated, the fiber cavity of the second liquid storage cotton 6 regains its liquid holding capacity. At this time, the capillary permeation between the first liquid storage cotton 5 and the second liquid storage cotton 6 is restored, and the first liquid storage cotton 5 resumes supplying liquid to the second liquid storage cotton 6.

[0030] In practical applications, when the atomizing liquid is delivered to the atomizing chamber 2 through the injection hole 3, it is first absorbed and buffered by the high-density first storage cotton 5, playing an initial buffering and accumulation role. Then, the atomizing liquid in the first storage cotton 5 naturally permeates downwards to the lower-density second storage cotton 6 under capillary action. Since the second storage cotton 6 is directly connected to the atomizing component 1, it can continuously and stably supply an appropriate amount of atomizing liquid to the atomizing core 20, ensuring sufficient atomization and pure taste in the initial stage. Next, when the liquid in the second liquid storage cotton 6 reaches saturation, because its density is lower than that of the first liquid storage cotton 5 above, the capillary force between its fibers cannot completely overcome the stronger liquid holding force from the high-density liquid storage cotton above and the gravity of the atomizing liquid. As a result, a temporary liquid resistance is formed at the contact interface between the first liquid storage cotton 5 and the second liquid storage cotton 6, which effectively blocks the continued downward introduction of excess atomizing liquid, prevents the atomizing core 20 from being submerged by too much atomizing liquid, reduces the risk of leakage caused by excessive liquid supply, and ensures that the atomizing core 20 always works at the optimal amount of atomizing liquid, thereby producing stable and sufficient mist and greatly improving the taste of food.

[0031] In an optional embodiment, the atomizing container 4 includes: a liquid storage component 7, an atomizing tube 8, and a nozzle 9; The liquid storage component 7 is connected to the atomizing chamber 2 through the liquid injection hole 3; The suction nozzle 9 is located on top of the liquid storage component 7; The atomizing tube 8 is installed inside the liquid storage component 7, and one end of the atomizing tube 8 is connected to the nozzle 9; The other end of the atomizing tube 8 passes through the atomizing chamber 2 and is connected to the atomizing component 1.

[0032] This embodiment provides a specific implementation of the atomizing container 4, which comprises a liquid storage component 7, an atomizing tube 8, and a mouthpiece 9. When the electronic atomizer is working, the liquid storage component 7 guides the stored atomizing liquid through the injection hole 3 into the liquid storage cotton inside the atomizing chamber 2. Then, the atomizing liquid in the liquid storage cotton is heated by the atomizing assembly 1 and converted into atomized gas. The atomized gas then flows upward along the atomizing tube 8 and is finally discharged from the mouthpiece 9 for the user to consume.

[0033] In practical applications, the liquid storage component 7 continuously supplies liquid to the atomizing chamber 2 through the injection hole 3, ensuring a stable supply of raw materials to the atomizing component 1 and preventing atomization stagnation caused by liquid supply interruption, thus guaranteeing continuous use. The atomizing tube 8, with its two ends connected to the atomizing component 1 and the mouthpiece 9 respectively, shortens the mist delivery path, reduces mist loss, and prevents contact between the atomized gas and the atomized liquid in the storage component 7, ensuring the taste of the atomized gas. The mouthpiece 9, located at the top of the storage component 7, works in conjunction with the atomizing tube 8 to deliver air in a directional manner, allowing users to inhale more smoothly without any airflow obstruction.

[0034] In an optional embodiment, the liquid storage component 7 includes: a liquid injection channel 10, a liquid storage tank 11, and a sealing connection component 12; The nozzle 9 is located on top of the liquid storage tank 11, and the atomizing tube 8 is located inside the liquid storage tank 11; The injection channel 10 is provided on the sealing connection component 12 and is connected to the injection hole 3; The sealing connection component 12 is fixed to the bottom of the liquid storage tank 11.

[0035] This embodiment provides a specific implementation of the liquid storage component 7, which comprises a liquid injection channel 10, a liquid storage chamber 11, and a sealing connection component 12. When the electronic atomizer is operating, the atomizing liquid in the liquid storage chamber 11 flows along the liquid injection channel 10 within the sealing connection component 12 to the liquid injection hole 3, and is then delivered to the atomizing chamber 2 for use by the atomizing assembly 1. Next, the atomizing tube 8 inside the liquid storage chamber 11 transports the mist generated by the atomizing assembly 1 upwards along the atomizing tube 8 and exits from the mouthpiece 9.

[0036] In practical applications, the sealing connection component 12 is fixed to the bottom of the liquid storage tank 11, providing a stable installation foundation for the liquid injection channel 10 and ensuring precise alignment between the liquid injection channel 10 and the liquid injection hole 3. This prevents liquid supply interruption due to component displacement and ensures stable delivery of the atomized liquid. The liquid injection channel 10 can guide the flow of the atomized liquid in a directional manner, and together with the sealing performance of the sealing connection component 12, it prevents leakage of the atomized liquid, reducing equipment contamination and liquid waste. The atomizing tube 8 inside the liquid storage tank 11 connects to the top nozzle 9, which can shorten the mist delivery path and reduce losses.

[0037] In an optional embodiment, the sealing connection component 12 includes a silicone seal 13 and a sealing bracket 14; The injection channel 10 passes through the sealing bracket 14 and the silicone seal 13 and is connected to the injection hole 3; The silicone seal 13 is fixed to the bottom of the liquid storage tank 11 by the sealing bracket 14.

[0038] This embodiment provides a specific implementation of the sealing connection component 12, which consists of a silicone seal 13 and a sealing bracket 14. The sealing bracket 14 fixes the silicone seal 13 to the bottom of the liquid storage chamber 11, and the design of the injection channel 10 passing through both ensures precise alignment between the injection channel 10 and the injection hole 3, and also prevents misalignment and jamming during liquid supply. The silicone seal 13 elastically fits the injection channel 10 and the sealing bracket 14, filling gaps to prevent atomized liquid leakage, significantly improving the durability and reliability of the electronic atomizer.

[0039] In an optional embodiment, the atomizing chamber 2 is provided with an atomizing port 15, one end of which is connected to the atomizing component 1; The other end of the atomizing port 15 is connected to the atomizing tube 8.

[0040] In this embodiment, a specific implementation of the atomizing chamber 2 is provided, wherein the atomizing chamber 2 component is provided with an atomizing port 15. The atomizing port 15 is mainly used to establish a connection channel between the atomizing component 1 and the atomizing tube 8, so that the atomizing component 1 can be connected to the atomizing tube 8 through the atomizing port 15, laying the structural foundation for subsequent atomized gas delivery.

[0041] Before the atomizing component 1 operates, the atomizing liquid in the liquid storage chamber 11 flows into the atomizing chamber 2 through the liquid injection channel 10 and the liquid injection hole 3. It is absorbed by the first liquid storage cotton 5 and the second liquid storage cotton 6 below and evenly supplied to the atomizing component 1. Then, after the atomizing component 1 is powered on and converts the atomizing liquid into a mist gas, since the atomizing component 1 is connected to the atomizing tube 8 through the atomizing port 15, the generated mist gas will directly and quickly enter the atomizing tube 8 through the atomizing port 15, and finally be stably delivered to the mouthpiece 9 along the atomizing tube 8, realizing a smooth connection between "atomization and gas delivery".

[0042] In an optional embodiment, the atomizing component 1 includes: a main body bottom cover 16, a heating wire component 17, a battery component 18, and a gas regulating component 19; The atomizing chamber 2 is fixed inside the main body bottom cover 16 by the atomizing bracket 31; The heating wire component 17 is disposed in the second liquid storage cotton 6 and the first liquid storage cotton 5, and one end of the heating wire component 17 is connected to the atomizing port 15. The other end of the heating wire component 17 is disposed inside the second liquid storage cotton 6 and connected to the gas regulating component 19; The battery component 18 is mounted on the bottom cover 16 of the main body and is electrically connected to the heating wire component 17.

[0043] This embodiment provides a specific implementation of an atomizing component 1, which comprises a main body bottom cover 16, a heating wire component 17, a battery component 18, and a gas regulating component 19. When the atomizing component 1 starts working, the battery component 18 transmits power to the heating wire component 17, causing the heating wire component 17 to heat and atomize the atomizing liquid stored in the second liquid storage cotton 6 into a mist gas. Simultaneously, the gas regulating component 19 controls the entry of external gas into the heating wire component 17, ensuring thorough mixing with the mist gas generated by the heating wire component 17 heating the atomizing liquid. Then, the mixed mist gas passes through the atomizing port 15 and is conveyed along the atomizing tube 8 to the mouthpiece 9.

[0044] In practical applications, the atomizing chamber 2 is fixed to the main body bottom cover 16 by the atomizing bracket 31. Together with the support of the main body bottom cover 16 for the battery component 18, this ensures the stability of the overall structure of the electronic atomizer and prevents component displacement from affecting use. The heating wire component 17 is located within the first liquid storage cotton 5 and the second liquid storage cotton 6, continuously receiving atomized liquid and electrically connected to the battery component 18 to obtain power, ensuring stable liquid and power supply and preventing atomization interruptions. One end of the heating wire component 17 is connected to the airflow regulating component 19, which can adjust the airflow to precisely mix the mist and airflow, improving the taste.

[0045] In an optional embodiment, the heating wire component 17 includes: an atomizing core 20, a heating wire silicone 21, and a first PCBA board 22; The heating wire silicone 21 is fixed to the bottom of the atomizing chamber 2; The atomizing core 20 is fixed inside the first liquid storage cotton 5 and the second liquid storage cotton 6 by the heating wire silicone 21. One end of the atomizer core 20 is connected to the atomizer port 15; The atomizing core 20 is connected to the battery component 18 via the first PCBA board 22.

[0046] This embodiment provides a specific implementation of the heating wire component 17, which consists of an atomizing core 20, a heating wire silicone 21, and a first PCBA board 22. When the electronic atomizer is working, the electrical energy from the battery component 18 is delivered to the atomizing core 20 through the first PCBA board 22. Then, the atomizing core 20, fixed within the first and second liquid storage cotton 5 and 6 by the heating wire silicone 21, heats up after being energized, vaporizing the atomized liquid around the second liquid storage cotton 6 to generate a mist. The mist then flows along the atomization port 15 connected to the atomizing core 20 to the atomization tube 8, and finally along the atomization tube 8 to the mouthpiece 9 for the user to consume. The heating wire silicone 21, serving as a carrier for the atomizing core 20, is located at the bottom of the atomization chamber 2, fixing the atomizing core 20 within the first and second liquid storage cotton 5 and 6. This prevents displacement of the atomizing core 20 and ensures sufficient contact between the atomizing core 20 and the second liquid storage cotton 6 to obtain the atomized liquid.

[0047] In an optional embodiment, the first PCBA board 22 is provided with absorbent cotton 23, which is located at the bottom of the heating wire silicone 21.

[0048] This embodiment provides a specific implementation of the first PCBA board 22. In this implementation, the first PCBA board 22 is provided with absorbent cotton 23, which is located at the bottom of the heating wire silicone 21. During the process of fixing the atomizing core 20, if a small amount of atomizing liquid seeps into the heating wire silicone 21 due to long-term use, the absorbent cotton 23 can quickly absorb the seeped atomizing liquid, forming a physical barrier to prevent the liquid from directly contacting the circuit components of the first PCBA board 22. This effectively avoids circuit failures such as short circuits and leakage, and ensures the stability of power supply to the atomizing core 20. At the same time, the absorption effect of the absorbent cotton 23 can prevent the seeped atomizing liquid from spreading to other components inside the main body bottom cover 16, reducing the risk of component corrosion and extending the overall service life of the electronic atomizer.

[0049] In an optional embodiment, the gas regulating component 19 includes a gas regulating element 24 and a gas regulating silicone 25; The air regulating component 24 is located at the bottom of the main body bottom cover 16 and is located at the bottom of the first PCBA board 22 via the air regulating silicone 25.

[0050] This embodiment provides a specific implementation of the airflow regulating component 19, which consists of an airflow regulating element 24 and airflow regulating silicone 25. When a user operates the electronic atomizer, the airflow regulating element 24 acts as an intermediate hub between user operation and electronic atomizer adjustment, sensing changes in the user's inhalation intensity. If the user is in a quiet resting state and inhaling lightly, the airflow regulating element 24 allows a small amount of gas to enter and mix finely with the atomizing liquid, causing the atomizing core 20 to generate a soft and delicate mist, satisfying the user's needs without disturbing others. When inhaling deeply for relaxation, the airflow regulating element 24 significantly increases the air intake, promoting full atomization of the atomizing liquid and providing the user with a rich and full mist for a satisfying experience, thus flexibly adapting to different inhalation scenarios. The airflow regulating silicone 25 is mainly used to fix the airflow regulating element 24 and simultaneously transmit the rotation or sliding motion of the airflow regulating element 24, allowing the airflow regulation operation to directly act on the airflow inlet of the atomizing core 20, ensuring precise and controllable airflow gap adjustment.

[0051] In an optional embodiment, the battery component 18 includes: a bracket component 26, a USB interface 27, a battery cell 28, a second PCBA board 29, and a switch button 30; The bracket component 26 is fixed to the main body bottom cover 16; The USB port 27 and the switch button 30 are mounted on the bracket component 26; Battery cell 28 is electrically connected to first PCBA board 22 via second PCBA board 29; The battery cell 28 is electrically connected to the USB interface 27 via the second PCBA board 29.

[0052] This embodiment provides a specific implementation of the battery component 18, which consists of a bracket component 26, a USB interface 27, a battery cell 28, a second PCBA board 29, and a switch button 30. The bracket component 26 is fixed to the bottom cover 16 of the main body, providing mounting support for the USB interface 27 and the switch button 30, ensuring their stable position. When charging is required, an external power source is connected through the USB interface 27, and the current is transmitted through the USB interface 27 to the second PCBA board 29, and then guided by the second PCBA board 29 to the battery cell 28 to complete the energy storage. Simultaneously, the second PCBA board 29 can protect the charging process, preventing overcharging and other problems. When the user presses the switch button 30, the battery cell 28 forms a power circuit with the first PCBA board 22 through the second PCBA board 29. The energy stored in the battery cell 28 is transmitted through the second PCBA board 29 to the first PCBA board 22, thereby powering the atomizing core 20 and triggering the atomization process, achieving a complete functional connection from power supply to atomization initiation.

[0053] 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 liquid-controlled electronic atomizer, characterized in that, include: Atomizing component, atomizing chamber, liquid injection port, liquid container, first liquid storage cotton and second liquid storage cotton; The injection port is located at the top of the atomizing chamber; The atomizing chamber is disposed within the atomizing assembly, and the atomizing liquid container is connected to the atomizing chamber through the liquid injection hole. The atomizing liquid container is used to store atomizing liquid. The first liquid storage cotton and the second liquid storage cotton are disposed in the atomizing chamber, and the bottom of the first liquid storage cotton is connected to the atomizing component through the second liquid storage cotton; The top of the first liquid storage cotton is connected to the injection hole, and the density of the first liquid storage cotton is greater than the density of the second liquid storage cotton. The first liquid storage cotton is used to absorb the atomizing liquid introduced into the atomizing chamber through the injection hole and permeate downwards into the second liquid storage cotton. When the second liquid storage cotton reaches the state of atomizing liquid saturation, the downward introduction of the atomizing liquid is blocked by the density of the first liquid storage cotton being greater than that of the second liquid storage cotton.

2. The liquid-controlled electronic atomizer according to claim 1, characterized in that, The atomizing container includes: a liquid storage component, an atomizing tube, and a nozzle; The liquid storage component is connected to the atomizing chamber through the liquid injection hole; The suction nozzle is located on top of the liquid storage component; The atomizing tube is disposed inside the liquid storage component, and one end of the atomizing tube is connected to the nozzle; The other end of the atomizing tube passes through the atomizing chamber and is connected to the atomizing component.

3. The liquid-controlled electronic atomizer according to claim 2, characterized in that, The liquid storage component includes: a liquid injection channel, a liquid storage tank, and a sealing connection component; The nozzle is located at the top of the liquid storage tank, and the atomizing tube is located inside the liquid storage tank; The injection channel is disposed on the sealing connection component and connected to the injection hole; The sealing connection component is fixed to the bottom of the liquid storage tank.

4. The liquid-controlled electronic atomizer according to claim 3, characterized in that, The sealing connection component includes a silicone seal and a sealing bracket; The injection channel passes through the sealing bracket and the silicone seal and is connected to the injection hole; The silicone seal is fixed to the bottom of the liquid storage tank by the sealing bracket.

5. The liquid-controlled electronic atomizer according to claim 4, characterized in that, The atomizing chamber is provided with an atomizing port, one end of which is connected to the atomizing component; The other end of the atomizing port is connected to the atomizing tube.

6. The liquid-controlled electronic atomizer according to claim 5, characterized in that, The atomizing component includes: a main body bottom cover, a heating wire component, a battery component, and a gas regulating component; The atomizing chamber is fixed inside the bottom cover of the main body by an atomizing bracket; The heating wire component is disposed inside the second liquid storage cotton and the first liquid storage cotton, and one end of the heating wire component is connected to the atomizing port; The other end of the heating wire component is disposed inside the second liquid storage cotton and connected to the gas regulating component; The battery component is disposed on the bottom cover of the main body and is electrically connected to the heating wire component.

7. The liquid-controlled electronic atomizer according to claim 6, characterized in that, The heating wire component includes: an atomizing core, heating wire silicone, and a first PCBA board; The heating wire silicone is fixed to the bottom of the atomizing chamber; The atomizing core is fixed inside the first liquid storage cotton and the second liquid storage cotton by the heating wire silicone; One end of the atomizing core is connected to the atomizing port; The atomizing core is connected to the battery component via the first PCBA board.

8. The liquid-controlled electronic atomizer according to claim 7, characterized in that, The first PCBA board is provided with absorbent cotton, which is located at the bottom of the heating wire silicone.

9. The liquid-controlled electronic atomizer according to claim 8, characterized in that, The gas regulating component includes a gas regulating element and gas regulating silicone; The gas regulating component is disposed at the bottom of the main body bottom cover and is disposed at the bottom of the first PCBA board via the gas regulating silicone.

10. The electronic atomizer according to claim 9, characterized in that, The battery component includes: a bracket component, a USB interface, a battery cell, a second PCBA board, and a switch button; The bracket component is fixed to the bottom cover of the main body; The USB port and the switch button are mounted on the bracket component; The battery cell is electrically connected to the first PCBA board via the second PCBA board; The battery cell is electrically connected to the USB interface via the second PCBA board.