Novel piercing type electronic atomizer with two-plus-ten structure
By integrating the needle and atomization chamber into a single unit and combining them with a mist cartridge sealing structure, the leakage problem caused by the gap between the needle and atomization chamber is solved, achieving precise atomized liquid supply and efficient atomization effect, thus improving user experience and device stability.
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
In existing electronic atomizers, the gap between the needle and the atomization chamber causes leakage of the atomizing liquid, resulting in waste and safety hazards, and affecting the stability of use and user experience.
The first and second needles are integrated with the atomizing chamber to form an airtight seal, ensuring that the atomizing liquid is introduced synchronously when the liquid storage component is not saturated and the introduction is blocked when it is saturated, thus achieving precise supply. The sealing performance is further enhanced by the sealing silicone of the atomizing bullet and the bottom cover of the atomizing bullet.
It effectively prevents leakage, reduces usage costs, improves the mist saturation and efficiency of the atomizing fluid, and provides a better and safer user experience.
Smart Images

Figure CN224140183U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of electronic devices, and more particularly to a novel piercing-type two-plus-ten structure electronic atomizer. Background Technology
[0002] Electronic atomizers, as devices that generate aerosols by heating a liquid for user enjoyment, have core performance characteristics that directly impact user satisfaction. However, with continuous technological advancements, optimizing product structure and improving operational stability have become key industry focuses.
[0003] In existing electronic atomizer designs, the needle is a key component responsible for piercing the seal of the liquid container to deliver liquid. Traditional designs often employ a detachable needle structure, where the needle is disassembled from the atomizer body for easy replacement of the liquid container or for cleaning and maintenance.
[0004] However, this separate design creates a gap between the needle and the atomizing chamber, making it easy for the atomizing liquid to leak out during transport or use. Leakage not only wastes the atomizing liquid and increases operating costs, but can also corrode electronic components, affecting atomization performance and even posing safety hazards. Utility Model Content
[0005] To address the aforementioned technical problems, this application provides a novel piercing-type 2+10 structure electronic atomizer, the device comprising:
[0006] Atomizing container, atomizing cartridge assembly, atomizing chamber, liquid storage assembly, atomizing assembly, and atomizing cartridge shell;
[0007] The fog bullet assembly is disposed inside the fog liquid container, which is used to store the atomizing liquid and forms an airtight structure by cooperating with the fog bullet assembly.
[0008] The fog bullet shell is detachably connected to the fog liquid container;
[0009] The liquid storage component, the atomizing component, and the atomizing chamber are disposed inside the fog bullet shell, and the atomizing component is connected to the atomizing chamber through the liquid storage component;
[0010] The top of the atomizing chamber is provided with a first needle and a second needle, which are integrally formed with the atomizing chamber.
[0011] The first and second needles communicate with the mist container by piercing the mist bullet assembly. When the liquid storage assembly is not saturated, the first and second needles simultaneously introduce the atomized liquid in the mist container into the atomizing chamber. When the liquid storage assembly reaches saturation, the introduction of the atomized liquid in the mist container is blocked by the inability to exchange air with the atomizing chamber.
[0012] Optionally, the fog bullet assembly includes fog bullet sealing silicone and fog bullet bottom cover;
[0013] The sealing silicone of the fog bullet is disposed inside the atomizing chamber through the bottom cover of the fog bullet;
[0014] The first and second needles are connected to the mist container by piercing the sealing silicone of the mist bomb.
[0015] Optionally, the atomizing container is provided with an atomizing tube and a nozzle;
[0016] The atomizing tube is disposed inside the atomizing container, and the mouthpiece is connected to the atomizing chamber through the atomizing tube;
[0017] The atomizing tube, the nozzle, and the mist container are integrally formed.
[0018] Optionally, the atomizing chamber is provided with an atomizing channel, and the atomizing tube is connected to one end of the atomizing channel by passing through the sealing silicone of the atomizing bullet;
[0019] The other end of the atomizing channel is connected to the atomizing component.
[0020] Optionally, the fog bomb shell is provided with a liquid tank support;
[0021] The liquid tank support is located at the bottom of the fog bomb cover;
[0022] The atomizing chamber is fixed inside the outer shell of the fog bullet by the liquid tank bracket.
[0023] Optionally, the liquid tank support is provided with a buckle on the outside;
[0024] The fog bullet shell is provided with a groove corresponding to the buckle, and the liquid tank bracket is connected to the fog bullet shell by the buckle engaging with the groove.
[0025] Optionally, the atomizing assembly includes an atomizing core, a heating wire silicone, a PCBA assembly, and a gas adjustment switch;
[0026] The PCBA assembly is mounted at the bottom of the heating wire silicone via the liquid tank support;
[0027] The atomizing core is fixed inside the liquid storage assembly by the heating wire silicone, and the atomizing core connects the PCBA assembly and the liquid storage assembly;
[0028] The bottom of the PCBA assembly is connected to the gas regulating switch.
[0029] Optionally, the liquid storage assembly includes liquid storage cotton, hardware fittings, and liquid tank sealing silicone;
[0030] The sealing silicone sealant for the liquid tank is disposed at the end of the atomization channel;
[0031] One end of the hardware fitting is sealed to the liquid tank with silicone sealant, the liquid storage cotton is disposed in the hardware fitting, and the atomizing core is placed in the liquid storage cotton.
[0032] Optionally, the hardware fitting is provided with a through hole, through which the atomizing liquid in the atomizing chamber flows into the liquid storage cotton, which is used to store the atomizing liquid to be atomized.
[0033] Optionally, the PCBA assembly includes: absorbent cotton, PCBA support, PCBA board, and microphone silicone.
[0034] The absorbent cotton is fixed between the PCBA board and the heating wire silicone by the PCBA bracket;
[0035] The PCBA bracket is connected to the liquid tank bracket;
[0036] The microphone silicone is fixed to the bottom of the PCBA board, and the microphone silicone is connected to the gas adjustment switch;
[0037] The PCBA board is electrically connected to the atomizing core.
[0038] As can be seen from the above technical solutions, this application has the following advantages:
[0039] This application effectively eliminates gaps between the first and second needles and the atomizing chamber by making them a single, integral structure. This prevents leakage caused by gaps, avoids waste of atomizing liquid, and reduces operating costs. Furthermore, the integrally formed first and second needles can simultaneously introduce atomizing liquid from the atomizing container into the atomizing chamber when the liquid storage component is not saturated. This allows the liquid storage component in the atomizing chamber to block air exchange and stop introducing atomizing liquid when saturated, achieving precise control of the atomizing liquid supply and further improving the saturation of the atomized mist. This design also improves the efficiency of the electronic atomizer, ensures atomization effect, and provides users with a better and safer user experience. Attached Figure Description
[0040] Figure 1 This is a schematic diagram of the overall structure of the novel piercing-type two-plus-ten structure electronic atomizer of this application;
[0041] Figure 2 This is an exploded structural diagram of the novel piercing-type two-plus-ten structure electronic atomizer of this application;
[0042] Figure 3 This is a schematic diagram of the overall structure of the vapor cartridge shell of the novel piercing-type two-plus-ten structure electronic atomizer of this application;
[0043] Figure 4 This is a cross-sectional structural schematic diagram of the novel piercing-type two-plus-ten structure electronic atomizer of this application. Detailed Implementation
[0044] To address the aforementioned technical problems, this application provides a novel piercing-type 2+10 structure electronic atomizer, which reduces the leakage rate of 2+10 type electronic atomizers and solves the problem of low vapor saturation caused by excessive atomizing liquid saturation in the atomizer core.
[0045] 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.
[0046] 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.
[0047] 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.
[0048] 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.
[0049] 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.
[0050] Please see Figures 1 to 4 In one optional embodiment, this application provides a novel piercing-type 2+10 structure electronic atomizer, comprising:
[0051] 1. Atomizing container, 2. Atomizing cartridge assembly, 3. Atomizing chamber, 4. Liquid storage assembly, 5. Atomizing assembly, and 6. Atomizing cartridge shell;
[0052] The fog bullet assembly 2 is disposed inside the fog liquid container 1. The fog liquid container 1 is used to store the atomizing liquid and forms an airtight structure by cooperating with the fog bullet assembly 2.
[0053] The fog bullet shell 6 is detachably connected to the fog liquid container 1;
[0054] The liquid storage component 4, the atomizing component 5, and the atomizing chamber 3 are disposed inside the fog bullet shell 6, and the atomizing component 5 is connected to the atomizing chamber 3 through the liquid storage component 4;
[0055] The top of the atomizing chamber 3 is provided with a first needle 7 and a second needle 8, and the first needle 7 and the second needle 8 are integrally formed with the atomizing chamber 3.
[0056] The first needle 7 and the second needle 8 communicate with the mist container 1 by piercing the mist bullet assembly 2. When the liquid storage assembly 4 is not saturated, the first needle 7 and the second needle 8 simultaneously introduce the atomizing liquid in the mist container 1 into the atomizing chamber 3. When the atomizing liquid in the liquid storage assembly 4 reaches saturation, the introduction of the atomizing liquid into the mist container 1 is blocked by the inability to exchange air with the atomizing chamber 3.
[0057] The functions of each component in this embodiment are described in detail below:
[0058] The atomizing container 1 is equipped with an atomizing cartridge assembly 2, and the atomizing container 1 is detachably connected to the atomizing cartridge shell 6. It primarily works in conjunction with the atomizing cartridge assembly 2 to form an airtight structure for storing atomized liquid, and the internal atomizing tube 11 is used to guide the atomized aerosol to the nozzle 12 for user use. When the user needs to replace the atomizing container 1, it can be replaced and maintained through the detachable connection design with the atomizing cartridge shell 6.
[0059] The fog bullet assembly 2 is installed inside the fog liquid container 1 and forms an airtight structure with the fog liquid container 1. When the first needle 7 and the second needle 8 are connected to the fog liquid container 1 by piercing the fog bullet assembly 2, it can prevent the atomized liquid from leaking from the fog liquid container 1 to other components.
[0060] The atomizing chamber 3 is fixed inside the outer shell 6 of the atomizing cartridge, and the top of the atomizing chamber 3 is provided with a first needle 7 and a second needle 8. The first needle 7 and the second needle 8, which are integrally formed on the top, pierce the atomizing liquid in the atomizing container 1 into the liquid storage component 4 in the atomizing chamber 3.
[0061] The liquid storage component 4 is installed in the atomizing chamber 3 to store atomizing liquid. In cooperation with the first needle 7 and the second needle 8, it replenishes the atomizing chamber 3 with atomizing liquid as needed to ensure a stable atomization process.
[0062] The atomizing component 5 is located inside the atomizing cartridge shell 6 and is connected to the atomizing chamber 3 via the liquid storage component 4. After the atomizing liquid is introduced into the liquid storage component 4 in the atomizing chamber 3, it is used to convert the atomizing liquid into an inhalable aerosol for the user.
[0063] The outer shell 6 of the fog bullet serves as an overall protective structure and is detachably connected to the fog liquid container 1, providing space for internal components such as the liquid storage component 4, the atomizing component 5, and the atomizing chamber 3, ensuring the stable operation of each component.
[0064] The first needle 7 is integrally formed with the atomizing chamber 3. It connects the atomizing chamber 3 and the atomizing liquid container 1 by simultaneously piercing the atomizing bullet assembly 2 with the second needle 8. When the atomizing liquid in the liquid storage component 4 of the atomizing chamber 3 is not saturated, the atomizing liquid is continuously introduced synchronously with the second needle 8. When the atomizing liquid in the liquid storage component 4 reaches saturation, causing the air exchange between the atomizing chamber 3 and the liquid storage component 4 to be blocked, the introduction of atomizing liquid into the atomizing chamber 3 can be stopped synchronously with the second needle 8.
[0065] The second needle 8 is integrally formed with the atomizing chamber 3. It connects the atomizing chamber 3 and the atomizing liquid container 1 by simultaneously piercing the atomizing bullet assembly 2 with the first needle 7. When the atomizing liquid in the liquid storage component 4 of the atomizing chamber 3 is not saturated, the atomizing liquid is continuously introduced synchronously with the first needle 7. When the atomizing liquid in the liquid storage component 4 reaches saturation, causing the air exchange between the atomizing chamber 3 and the liquid storage component 4 to be blocked, the introduction of atomizing liquid into the atomizing chamber 3 can be stopped synchronously with the first needle 7.
[0066] Working principle:
[0067] In this embodiment, when the atomizing liquid in the liquid storage component 4 is unsaturated, a pressure difference is formed between the air pressure in the liquid container 1 and the air pressure in the atomizing chamber 3. Under the action of this pressure difference, the atomizing liquid in the liquid container 1 flows towards the atomizing chamber 3 along the first needle 7 and the second needle 8, which are integrally formed with the top of the atomizing chamber 3. It should be noted that "integral forming" means that the connection between the first needle 7 and the second needle 8 and the atomizing chamber 3 is non-removable, such as an integral casting type, which is not specifically limited here. Then, as the atomizing liquid continues to flow into the atomizing chamber 3, the liquid storage component 4 in the atomizing chamber 3 continuously absorbs the atomizing liquid. When the liquid storage component 4 reaches saturation, the atomizing liquid absorbed in the liquid storage component 4 occupies the space where the air originally existed, causing the air in the liquid storage component 4 to be unable to be transferred to the outside of the atomizing chamber 3. This situation causes the air pressure between the atomizing container 1 and the atomizing chamber 3 to gradually reach equilibrium, and the pressure difference that drives the flow of the atomizing liquid is lost. As a result, the atomizing liquid in the atomizing container 1 stops flowing into the atomizing chamber 3, and the entire introduction process reaches a balanced state.
[0068] Subsequently, when the user activates the electronic atomizer, current is transmitted to the atomizing component 5, causing it to heat up. The heat generated by the atomizing component 5 acts on the atomized liquid adsorbed in the liquid storage component 4, causing the liquid to be heated and converted into tiny, mist-like particles. These atomized particles then aggregate. When the user inhales through the mouthpiece 12, external air enters the atomizing chamber 3 through a specific air intake channel. Furthermore, the incoming air carries the atomized particles, forming an inhalable aerosol, which then travels through the atomizing tube 11 to the mouthpiece 12 for the user to enjoy.
[0069] Specifically, during the operation of the electronic atomizer, the user's continuous inhalation causes the atomized liquid in the liquid storage component 4 to decrease, and the liquid storage component 4 is no longer saturated. The pressure difference between the liquid container 1 and the atomizing chamber 3 will reappear, and the atomized liquid will flow into the atomizing chamber 3 again along the first needle 7 and the second needle 8 to replenish the atomized liquid consumed by the liquid storage component 4, so as to maintain the continuous and stable operation of the electronic atomizer.
[0070] In practical applications, by integrating the first needle 7 and the second needle 8 with the atomizing chamber 3 into a single molded structure, gaps between the needles and the atomizing chamber 3 are effectively eliminated, preventing leakage caused by gaps at the source, avoiding waste of atomizing liquid, and reducing operating costs. Furthermore, the integrated first needle 7 and second needle 8 can simultaneously introduce atomizing liquid from the atomizing container 1 into the atomizing chamber 3 when the liquid storage component 4 is not saturated. This allows the liquid storage component 4 in the atomizing chamber 3 to block air conversion and stop the introduction of atomizing liquid from the atomizing container 1 when saturated, achieving precise control of the atomizing liquid supply and further improving the saturation of the atomized mist. This design also improves the efficiency of the electronic atomizer, ensures atomization effect, and provides users with a better and safer user experience.
[0071] In an optional embodiment, the fog bullet assembly 2 includes a fog bullet sealing silicone 9 and a fog bullet bottom cover 10;
[0072] The sealing silicone 9 of the fog bullet is disposed inside the atomizing chamber 3 through the bottom cover 10 of the fog bullet;
[0073] The first needle 7 and the second needle 8 are connected to the mist container 1 by piercing the mist bomb sealing silicone 9.
[0074] This embodiment provides a specific implementation of the fog bullet assembly 2, which consists of a fog bullet sealing silicone 9 and a fog bullet bottom cover 10. The fog bullet sealing silicone 9 is fixed to the top of the atomizing chamber 3 by the fog bullet bottom cover 10. Its main function is to ensure that the atomizing liquid in the atomizing container 1 is smoothly introduced into the atomizing chamber 3, preventing the atomizing liquid from leaking into the external environment during the introduction or storage process. When the fog bullet shell 6 is connected to the atomizing container 1, the first needle 7 and the second needle 8, which are integrally formed and located at the top of the atomizing chamber 3, will accurately pierce the fog bullet sealing silicone 9, thereby realizing the communication between the atomizing chamber 3 and the atomizing container 1.
[0075] Specifically, the main function of the bottom cover 10 of the fog bullet is to fix the position of the fog bullet sealing silicone 9, so that the fog bullet sealing silicone 9 can be placed in the atomization chamber, thereby providing a stable piercing base for the first piercing needle 7 and the second piercing needle 8, ensuring that the piercing needle can accurately pierce the fog bullet sealing silicone 9 and communicate with the fog liquid container 1, ensuring the normal operation of the electronic atomizer and realizing the transmission function of the atomized liquid.
[0076] In an optional embodiment, the atomizing container 1 is provided with an atomizing tube 11 and a nozzle 12;
[0077] The atomizing tube 11 is disposed inside the atomizing container 1, and the nozzle 12 is connected to the atomizing chamber 3 through the atomizing tube 11;
[0078] The atomizing tube 11, the nozzle 12, and the mist container 1 are integrally formed.
[0079] This embodiment provides a specific implementation of a liquid atomizer 1, in which the liquid atomizer 1 is provided with an atomizing tube 11 and a mouthpiece 12. The atomizing tube 11 is installed inside the liquid atomizer 1, and its bottom is connected to the atomizing chamber 3. The atomized liquid in the liquid atomizer 1 is introduced into the atomizing chamber 3 at an appropriate time through the first needle 7 and the second needle 8. Then, the atomizing component 5 heats and atomizes the atomized liquid into an aerosol. When the user inhales, the aerosol in the atomizing chamber 3 rises along the atomizing tube 11 and is finally inhaled by the user through the mouthpiece 12. In practical applications, this design makes the entire process of the liquid atomized liquid from storage to atomization to inhalation by the user seamless and efficient, providing users with a convenient user experience.
[0080] It should be noted that the integrated molding design means that the connection between the atomizing tube 11, the nozzle 12, 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 11, the nozzle 12, 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 atomized aerosol, improves the sealing performance of the atomizing container 1, and simplifies the manufacturing process and reduces assembly steps.
[0081] In an optional embodiment, the atomizing chamber 3 is provided with an atomizing channel 13, and the atomizing tube 11 is connected to one end of the atomizing channel 13 by passing through the sealing silicone 9 of the atomizing bullet;
[0082] The other end of the atomizing channel 13 is connected to the atomizing component 5.
[0083] This embodiment provides a specific implementation of the atomizing channel 13. In this implementation, the atomizing channel 13 is disposed on the atomizing chamber 3, with one end connected to the atomizing tube 11 and the other end connected to the atomizing component 5. When the user inhales, external air enters the atomizing chamber 3 along a preset path under the action of air pressure difference. Guided by the atomizing channel 13, a stable and orderly airflow is formed. At the same time, the atomized liquid stored in the liquid container 1 is transferred to the liquid storage component 4 in the atomizing chamber 3 through a needle. Since the atomizing component 5 is connected to the liquid storage component 4, the heat generated when the atomizing component 5 is powered on will heat the atomized liquid in the liquid storage component 4. The atomized liquid rapidly vaporizes after being heated, forming a large number of tiny mist particles. These particles are fully mixed with the incoming airflow. As the airflow flows, the airflow mixed with atomized particles gradually gathers, eventually forming an aerosol that can be inhaled by the user. Then, the aerosol travels along the atomizing channel 13 to the atomizing tube 11. Finally, the aerosol in the atomizing tube 11 is inhaled by the user through the mouthpiece 12.
[0084] Specifically, when the aerosol enters the atomizing tube 11 through the atomizing channel 13, the sealing silicone 9 of the atomizing cartridge will tightly wrap the connection between the atomizing channel 13 and the atomizing tube 11, ensuring that the aerosol heated by the atomizing component 5 can only enter the atomizing tube 11 through the atomizing channel 13, preventing the aerosol from leaking into other components, and also preventing the atomizing liquid from leaking into the connection between the atomizing channel 13 and the atomizing tube 11, thus improving the user experience.
[0085] In an optional embodiment, the fog shell 6 is provided with a liquid tank support 14;
[0086] The liquid tank support 14 is disposed at the bottom of the fog bomb bottom cover 10;
[0087] The atomizing chamber 3 is fixed inside the fog bullet shell 6 by the liquid tank bracket 14.
[0088] This embodiment provides a specific implementation of the liquid tank bracket 14, in which the liquid tank bracket 14 is disposed inside the fog cartridge shell 6 and at the bottom of the fog cartridge bottom cover 10. When installing the fog cartridge shell 6, it is only necessary to first install the atomizing chamber 3 and the atomizing component 5 inside the fog cartridge shell 6, and then match the liquid tank bracket 14 according to the preset installation position inside the fog cartridge shell 6 to complete the fixed installation of the atomizing chamber 3 inside the fog cartridge shell 6.
[0089] In practical applications, the liquid tank bracket 14 stably mounts the atomizing chamber 3 inside the atomizing cartridge shell 6, ensuring that the atomizing chamber 3 remains stable during use and will not shift due to shaking, collisions, or other factors. This ensures accurate docking between the needle and the atomizing cartridge assembly 2, precise communication between the atomizing channel 13 and other components, and guarantees the normal introduction of atomizing liquid and the smooth operation of the atomization process. Furthermore, when disassembling the atomizing container 1 to replenish the atomizing liquid, the atomizing chamber 3 will not loosen during the disassembly process, ensuring the reliability and durability of the electronic atomizer.
[0090] In an optional embodiment, a buckle 15 is provided on the outer side of the liquid tank support 14;
[0091] The fog shell 6 is provided with a groove 16 corresponding to the buckle 15. The liquid tank bracket 14 is connected to the fog shell 6 by the buckle 15 engaging with the groove 16.
[0092] In this embodiment, another specific implementation of the liquid tank support 14 is provided. In this implementation, the outer side of the liquid tank support 14 is designed with a buckle 15 to ensure a secure connection with the atomizer shell 6. The atomizer shell 6 is provided with a groove 16 corresponding to the buckle 15. The shape and size of the groove 16 match the buckle 15 so that the two can be tightly joined together. When assembling the electronic atomizer, the user aligns the buckle 15 of the liquid tank support 14 with the groove 16 of the atomizer shell 6 and applies appropriate pressure. The buckle 15 undergoes slight elastic deformation after being pressed, allowing it to slide smoothly into the groove 16. Once the buckle 15 is fully inserted into the groove 16, it returns to its original shape and locks in place within the groove 16, thereby achieving the connection between the liquid tank support 14 and the atomizer shell 6.
[0093] In practical applications, the engagement of the clip 15 and the groove 16 simplifies and streamlines the assembly process of the liquid tank support 14 and the atomizer shell 6. Users simply align the clip 15 with the groove 16 and apply appropriate pressure to connect the two, significantly reducing assembly time. The engagement of the clip 15 and the groove 16 ensures a secure connection between the liquid tank support 14 and the atomizer shell 6, effectively improving the overall structural stability of the electronic atomizer and preventing the liquid tank support 14 from detaching or loosening.
[0094] In an optional embodiment, the atomizing assembly 5 includes an atomizing core 17, a heating wire silicone 18, a PCBA assembly 19, and a gas adjustment switch 20.
[0095] The PCBA assembly 19 is disposed at the bottom of the heating wire silicone 18 via the liquid tank bracket 14;
[0096] The atomizing core 17 is fixed inside the liquid storage assembly 4 by the heating wire silicone 18, and the atomizing core 17 connects the PCBA assembly 19 and the liquid storage assembly 4;
[0097] The bottom of the PCBA assembly 19 is connected to the gas regulating switch 20.
[0098] This embodiment provides a specific implementation of an atomizing component 5, which consists of an atomizing core 17, a heating wire silicone 18, a PCBA assembly 19, and a gas flow control switch 20. When the user uses the electronic atomizer, the gas flow control switch 20 opens, providing an opening for air to enter the atomizing chamber 3. Since the gas flow control switch 20 is connected to the bottom of the PCBA assembly 19, its opening action triggers the PCBA assembly 19 to start working. The PCBA assembly 19, as the control core of the entire atomizing component 5, is securely mounted on the bottom of the heating wire silicone 18 via the liquid tank bracket 14. It receives electrical energy from the battery, processes and distributes it, providing power assurance for the operation of the electronic atomizer. Then, after the gas flow control switch 20 is opened, the PCBA assembly 19 delivers a suitable current to the atomizing core 17 according to a preset circuit. Then, the atomizing core 17, fixed inside the liquid storage assembly 4 by the heating wire silicone 18, heats up, causing the surrounding atomized liquid to rapidly vaporize, changing from a liquid state to a gaseous state, generating a large number of tiny droplet particles.
[0099] Meanwhile, under the influence of air pressure difference, outside air enters the atomizing chamber 3 through the channel opened by the air regulating switch 20. The incoming air mixes thoroughly with the tiny droplets produced by atomization, forming an inhalable aerosol. Propelled by the airflow, the aerosol travels along the atomization channel 13, through the atomization tube 11, and is discharged from the mouthpiece 12 for the user to inhale.
[0100] When the user stops using the e-cigarette, the vapor control switch 20 will close, the air intake channel will be blocked, the PCBA assembly 19 will also stop transmitting electrical energy to the atomizer core 17, and the atomization process will stop.
[0101] In practical applications, the PCBA assembly 19 is precisely positioned at the bottom of the heating wire silicone 18 via the liquid tank bracket 14, providing stable support for the overall circuit layout, reducing shaking and displacement during use, and ensuring the reliability of the circuit connection. Regarding atomization, the atomizing core 17 is securely fixed within the liquid storage assembly 4 via the heating wire silicone 18, and is tightly connected to both the PCBA assembly 19 and the liquid storage assembly 4. This design ensures a stable and smooth supply of atomizing liquid from the liquid storage assembly 4 to the atomizing core 17. Under the control of the PCBA assembly 19, the atomizing core 17 heats efficiently, allowing the atomizing liquid to be fully atomized, providing a better user experience. In addition, the airflow control switch 20 can flexibly adjust the airflow volume according to different inhalation intensities when the user is inhaling. For example, when resting and inhaling lightly, the airflow control switch 20 precisely controls a small amount of gas to enter and mix with the atomizing liquid, so that the atomizing core 17 generates a soft and delicate mist, which satisfies the user's needs without producing too much mist to disturb others. When relaxing and inhaling deeply, the airflow control switch 20 greatly increases the airflow volume, which promotes the full atomization of the atomizing liquid, bringing the user a rich and full mist and allowing them to enjoy a sense of satisfaction.
[0102] In an optional embodiment, the liquid storage assembly 4 includes a liquid storage cotton 21, a hardware fitting 22, and a liquid tank sealing silicone 23;
[0103] The liquid tank sealing silicone 23 is disposed at the end of the atomization channel 13;
[0104] One end of the hardware fitting 22 is sealed to the liquid tank sealing silicone 23, the liquid storage cotton 21 is disposed in the hardware fitting 22, and the atomizing core 17 is placed in the liquid storage cotton 21.
[0105] This embodiment provides a specific implementation of the liquid storage component 4, which consists of a liquid storage cotton 21, a hardware fitting 22, and a liquid tank sealing silicone 23. One end of the hardware fitting 22 is sealed to the liquid tank sealing silicone 23 to ensure that the atomizing liquid and the atomized aerosol do not leak from the connection and to ensure the airtightness of the electronic atomizer device. The liquid storage cotton 21 is disposed inside the hardware fitting 22. The atomizing liquid in the atomization chamber 3 flows into the liquid storage cotton 21 through the hardware fitting 22. The liquid storage cotton 21 is used to store the atomizing liquid to be atomized. The atomizing core 17 is disposed in the liquid storage cotton 21 and is used to heat and atomize the atomizing liquid. When the user uses it, electrical energy is transferred to the atomizing core 17 through the PCBA component 19, causing the atomizing core 17 to heat up rapidly. This heats the atomizing liquid in the storage cotton 21 to the temperature required for atomization. The heated atomizing liquid is then rapidly atomized to form an aerosol, which is transferred to the atomizing tube 11 through the atomization channel 13 and finally inhaled by the user through the mouthpiece 12.
[0106] The sealed connection between the liquid tank sealing silicone 23 and the hardware fitting 22 effectively prevents leakage of the atomizing liquid and the atomized aerosol during use. The liquid storage cotton 21 stores the atomizing liquid to be atomized and also filters and purifies it to a certain extent, removing impurities. This helps improve the taste and purity of the aerosol, enhancing the user experience. The liquid tank sealing silicone 23 and the hardware fitting 22 enhance the product's sealing performance and, as an isolation layer, effectively prevent direct contact between leaking atomizing liquid and other electronic components, avoiding safety hazards such as short circuits and electrical leakage.
[0107] In an optional embodiment, the hardware fitting 22 is provided with a through hole 24, through which the atomizing liquid in the atomizing chamber 3 flows into the liquid storage cotton 21, which is used to store the atomizing liquid to be atomized.
[0108] In this embodiment, a specific implementation of the hardware fitting 22 is provided. In this implementation, the through hole 24 on the hardware fitting 22 allows the atomizing liquid in the atomizing chamber 3 to flow slowly and steadily into the liquid storage cotton 21 through the through hole 24 on the hardware fitting 22 via a siphon effect when the atomizing chamber 3 is filled with atomizing liquid. The liquid storage cotton 21 not only stores the atomizing liquid to be atomized, but also plays a guiding role, ensuring that the atomizing liquid can be evenly distributed and preventing it from directly submerging the atomizing core 17.
[0109] The ability of the liquid storage cotton 21 to absorb the atomizing liquid ensures that the atomizing liquid can be absorbed evenly and fully. The presence of the liquid storage cotton 21 also prevents the atomizing liquid from directly contacting the atomizing core 17, avoiding safety problems such as short circuits, overheating or damage to the atomizing core 17 caused by excessive atomizing liquid grinding.
[0110] In an optional embodiment, the PCBA assembly 19 includes: absorbent cotton 25, PCBA support 26, PCBA board 27, and microphone silicone 28;
[0111] The absorbent cotton 25 is fixed between the PCBA board 27 and the heating wire silicone 18 by the PCBA bracket 26;
[0112] The PCBA bracket 26 is connected to the liquid tank bracket 14;
[0113] The microphone silicone 28 is fixed to the bottom of the PCBA board 27, and the microphone silicone 28 is connected to the gas adjustment switch 20;
[0114] The PCBA board 27 is electrically connected to the atomizing core 17.
[0115] This embodiment provides a specific implementation of a PCBA assembly 19, which consists of an absorbent cotton 25, a PCBA support 26, a PCBA board 27, and a microphone silicone 28. When the electronic atomizer starts working, the power supply provides electrical energy to the PCBA board 27. Then, according to the circuit design, the PCBA board 27 conducts the electrical energy to the atomizing core 17, enabling the atomizing core 17 to heat up according to the electrical energy and atomize the liquid into an aerosol.
[0116] The absorbent cotton 25 is fixed between the PCBA board 27 and the heating wire silicone 18 via the PCBA bracket 26. This prevents atomized liquid leakage from affecting the circuitry and ensures the normal operation of the PCBA board 27. When the atomized liquid is atomized in the atomizer core 17, any condensation or backflow can be absorbed again by the absorbent cotton 25, preventing the atomized liquid from interfering with the atomization effect. The PCBA bracket 26 connects to the liquid tank bracket 14, strengthening the overall stability of the electronic atomizer structure and ensuring the coordinated operation of all components. The microphone silicone 28 is fixed to the bottom of the PCBA board 27 and connected to the vapor adjustment switch 20. Changes in airflow caused by variations in the user's inhalation intensity are transmitted to the vapor adjustment switch 20 via the microphone silicone 28, allowing the switch to adjust the airflow accordingly. Simultaneously, the microphone silicone 28 provides a certain degree of sealing and protection for the PCBA board 27, preventing external impurities from entering and ensuring stable operation of the PCBA board 27 in complex environments, providing strong support for the stable operation of the electronic atomizer.
[0117] 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 of a two-plus-ten structure of a piercing type, characterized in that, include: Atomizing container, atomizing cartridge assembly, atomizing chamber, liquid storage assembly, atomizing assembly, and atomizing cartridge shell; The fog bullet assembly is disposed inside the fog liquid container, which is used to store the atomizing liquid and forms an airtight structure by cooperating with the fog bullet assembly. The fog bullet shell is detachably connected to the fog liquid container; The liquid storage component, the atomizing component, and the atomizing chamber are disposed inside the fog bullet shell, and the atomizing component is connected to the atomizing chamber through the liquid storage component; The top of the atomizing chamber is provided with a first needle and a second needle, which are integrally formed with the atomizing chamber. The first and second needles communicate with the mist container by piercing the mist bullet assembly. When the liquid storage assembly is not saturated, the first and second needles simultaneously introduce the atomized liquid in the mist container into the atomizing chamber. When the liquid storage assembly reaches saturation, the introduction of the atomized liquid in the mist container is blocked by the inability to exchange air with the atomizing chamber.
2. The electronic atomizer of claim 1, wherein, The fog bullet assembly includes fog bullet sealing silicone and fog bullet bottom cover; The sealing silicone of the fog bullet is disposed inside the atomizing chamber through the bottom cover of the fog bullet; The first and second needles are connected to the mist container by piercing the sealing silicone of the mist bomb.
3. The electronic atomizer according to claim 2, characterized in that, The mist container is equipped with an atomizing tube and a nozzle; The atomizing tube is disposed inside the atomizing container, and the mouthpiece is connected to the atomizing chamber through the atomizing tube; The atomizing tube, the nozzle, and the mist container are integrally formed.
4. The electronic atomizer of claim 3, wherein, The atomizing chamber is provided with an atomizing channel, and the atomizing tube is connected to one end of the atomizing channel by passing through the sealing silicone of the atomizing bullet; The other end of the atomizing channel is connected to the atomizing component.
5. The electronic atomizer of claim 4, wherein, The fog bomb shell is equipped with a liquid tank support; The liquid tank support is located at the bottom of the fog bomb cover; The atomizing chamber is fixed inside the outer shell of the fog bullet by the liquid tank bracket.
6. The electronic atomizer of claim 5, wherein, The liquid tank support is equipped with buckles on the outside; The fog bullet shell is provided with a groove corresponding to the buckle, and the liquid tank bracket is connected to the fog bullet shell by the buckle engaging with the groove.
7. The electronic atomizer of claim 6, wherein, The atomizing component includes an atomizing core, a heating wire silicone, a PCBA assembly, and a gas adjustment switch; The PCBA assembly is mounted at the bottom of the heating wire silicone via the liquid tank support; The atomizing core is fixed inside the liquid storage assembly by the heating wire silicone, and the atomizing core connects the PCBA assembly and the liquid storage assembly; The bottom of the PCBA assembly is connected to the gas regulating switch.
8. The electronic atomizer of claim 7, wherein, The liquid storage assembly includes liquid storage cotton, hardware fittings, and liquid tank sealing silicone. The sealing silicone sealant for the liquid tank is disposed at the end of the atomization channel; One end of the hardware fitting is sealed to the liquid tank with silicone sealant, the liquid storage cotton is disposed in the hardware fitting, and the atomizing core is placed in the liquid storage cotton.
9. The electronic atomizer of claim 8, wherein, The hardware fitting is provided with a through hole, and the atomizing liquid in the atomizing chamber flows into the liquid storage cotton through the through hole. The liquid storage cotton is used to store the atomizing liquid to be atomized.
10. The electronic atomizer of claim 9, wherein, The PCBA assembly includes: absorbent cotton, PCBA support, PCBA board, and microphone silicone. The liquid absorbing cotton is fixed between the PCBA plate and the heating wire silica gel through the PCBA support; The PCBA support is connected with the liquid tank support; The microphone silica gel is fixed at the bottom of the PCBA plate, and the microphone silica gel is connected with the air adjusting switch; The PCBA plate is electrically connected with the atomizing core.