Multi-chambered leak-controlled atomization device

By employing a multi-chamber structure and liquid guiding components in the electronic atomizer, the problem of atomized liquid leakage caused by air pressure changes is solved, achieving stable liquid supply and leak-proof effect under temperature difference environment.

CN122397983APending Publication Date: 2026-07-17SHENZHEN ZHUWU TECHNOLOGY CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
SHENZHEN ZHUWU TECHNOLOGY CO LTD
Filing Date
2026-06-12
Publication Date
2026-07-17

AI Technical Summary

Technical Problem

Existing electronic atomizers suffer from leakage of atomized liquid due to pressure changes in high and low temperature environments, and current technologies lack an effective pressure balancing structure.

Method used

It adopts a multi-compartment structure, including a liquid storage compartment and an auxiliary liquid storage compartment. The liquid guiding component drives the atomized liquid to be transferred between the two when the air pressure changes, so as to share and buffer the air pressure fluctuation.

Benefits of technology

This effectively avoids leakage of atomized liquid caused by sudden changes in air pressure, and improves the reliability and stability of the device in temperature difference environments.

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Abstract

This invention discloses a multi-compartment atomizing device with controllable leakage, comprising a liquid storage compartment, an auxiliary liquid storage compartment, a liquid guiding component, and an atomizing chamber. The liquid guiding component connects the liquid storage compartment and the auxiliary liquid storage compartment and communicates with the atomizing chamber. The liquid guiding component is configured to drive the atomized liquid to be transferred between the liquid storage compartment and the auxiliary liquid storage compartment when the air pressure in the liquid storage compartment changes. This invention utilizes a dual-compartment structure to share the burden of air pressure fluctuations within the compartments by setting up mutually cooperating liquid storage compartments and auxiliary liquid storage compartments, coupled with a liquid guiding component connecting the two. When the liquid storage compartment experiences air pressure compression due to temperature changes, excess atomized liquid can be diverted to the auxiliary liquid storage compartment for buffering. When negative pressure contraction occurs in the liquid storage compartment, the atomized liquid in the auxiliary liquid storage compartment can flow back to replenish it, effectively offsetting the effects of gas expansion and contraction caused by temperature changes. This fundamentally avoids the problem of atomized liquid leakage caused by sudden air pressure changes, significantly improving the reliability of the device in temperature difference environments.
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Description

Technical Field

[0001] This invention relates to the field of electronic atomization equipment technology, and more specifically to a multi-compartment atomization device with controllable leakage. Background Technology

[0002] Currently, the electronic atomizer industry generally uses a single reservoir structure to store atomized liquid. During actual use and transportation, when the ambient temperature changes significantly, the air inside the reservoir will experience significant pressure fluctuations due to thermal expansion and contraction. In high-temperature environments, the expansion of air will exert an outward compressive force on the atomized liquid inside the reservoir, while in low-temperature environments, the contraction of air will create an inward negative pressure. This pressure change can cause the atomized liquid to leak from the end of the atomizer core or from the sealing gaps, which not only wastes the atomized liquid but also contaminates the equipment and the operating environment. It also affects the normal e-liquid supply stability of the atomizer. However, existing technologies lack a reliable structure that can effectively balance the pressure changes inside the reservoir and prevent atomized liquid leakage caused by temperature differences. Summary of the Invention

[0003] The embodiments of the present invention provide a multi-compartment atomizing device with controllable leakage, which solves the technical problem of leakage of atomized liquid caused by gas compression and contraction in a single liquid storage compartment under high and low temperature difference environments.

[0004] To address the aforementioned problems, according to one aspect of this application, an embodiment of the present invention provides a leakage-controllable atomizing device with multiple compartments, including a liquid storage compartment, an auxiliary liquid storage compartment, a liquid guiding component, and an atomizing chamber; the liquid guiding component is connected between the liquid storage compartment and the auxiliary liquid storage compartment and communicates with the atomizing chamber, and the liquid guiding component is configured to drive the atomized liquid to be transferred between the liquid storage compartment and the auxiliary liquid storage compartment when the air pressure in the liquid storage compartment changes.

[0005] In some embodiments, the liquid storage tank and the auxiliary liquid storage tank are arranged separately.

[0006] In some embodiments, at least a portion of the liquid guiding component is in communication with the liquid storage tank; at least another portion of the liquid guiding component is in communication with an auxiliary liquid storage tank.

[0007] In some embodiments, the liquid storage chamber is connected to at least a portion of the liquid guiding component through a first conductive notch; the auxiliary liquid storage chamber is connected to at least another portion of the liquid guiding component through a second conductive notch.

[0008] In some embodiments, one or more first conductive gaps are provided, and one or more second conductive gaps are provided.

[0009] In some embodiments, one or more liquid storage tanks are provided, and one or more auxiliary liquid storage tanks are provided.

[0010] In some embodiments, the liquid storage tank includes an outer tube, the atomizing chamber is disposed inside the outer tube, and the outer tube is sleeved on the outside of the liquid guiding assembly.

[0011] In some embodiments, the liquid guiding assembly includes a single-layer liquid guiding element or a multi-layer liquid guiding element.

[0012] In some embodiments, the auxiliary liquid storage tank is connected to the outside through a vent.

[0013] In some embodiments, the atomizing device further includes a liquid absorption chamber, wherein a liquid absorption cotton is disposed in the liquid absorption chamber.

[0014] Compared with the prior art, the multi-compartment leak-controllable atomizing device of the present invention has the following advantages: The present invention provides a multi-compartment atomizing device with controllable leakage, comprising a liquid storage compartment, an auxiliary liquid storage compartment, a liquid guiding component, and an atomizing chamber; the liquid guiding component is connected between the liquid storage compartment and the auxiliary liquid storage compartment and communicates with the atomizing chamber, and the liquid guiding component is configured to drive the atomized liquid to be transferred between the liquid storage compartment and the auxiliary liquid storage compartment when the air pressure in the liquid storage compartment changes.

[0015] This invention utilizes a dual-compartment structure to mitigate pressure fluctuations within the liquid storage chamber by setting up a mutually cooperating liquid storage chamber and an auxiliary liquid storage chamber, along with a liquid guiding component connecting the two. When the liquid storage chamber experiences pressure compression due to temperature changes, excess atomized liquid can be diverted to the auxiliary liquid storage chamber for buffering. When negative pressure contraction occurs within the liquid storage chamber, the atomized liquid in the auxiliary liquid storage chamber can flow back to replenish it. This effectively counteracts the effects of gas expansion and contraction caused by temperature changes, fundamentally preventing atomized liquid leakage caused by sudden pressure changes and significantly improving the reliability of the device in temperature-differential environments.

[0016] The above description is merely an overview of the technical solution of the present invention. In order to better understand the technical means of the present invention and to implement it in accordance with the contents of the specification, the preferred embodiments of the present invention are described in detail below with reference to the accompanying drawings. Attached Figure Description

[0017] To more clearly illustrate the technical solutions in the embodiments of the present invention, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on the structures shown in these drawings without creative effort.

[0018] Figure 1 A schematic diagram of the external structure of a multi-compartment leak-controllable atomizing device provided in an embodiment of the present invention; Figure 2 for Figure 1 A cross-sectional view at angle AA; Figure 3 This is a schematic diagram of the external structure of a multi-compartment leak-controllable atomizing device provided in an embodiment of the present invention from another angle. Figure 4 for Figure 3 A cross-sectional view at angle BB; Figure 5 for Figure 4 A magnified view of a section at point A in the middle; Figure 6 A cross-sectional view of a multi-compartment leak-controllable atomizing device provided in an embodiment of the present invention; Figure 7 for Figure 6 A cross-sectional view at the C-angle. Figure label explanation: 1. Liquid storage chamber; 11. Outer shell; 111. Outer shell body; 112. Nozzle; 12. Outer tube; 121. First through-hole; 122. Tube body; 123. Tube edge; 13. First seal; 14. First chamber; 2. Auxiliary liquid storage chamber; 21. Second seal; 211. Second through-hole; 22. Second chamber; 3. Liquid guiding assembly; 31. Support; 32. Liquid guiding component; 33. External liquid guiding component; 331. Third through-hole; 4. Atomizing chamber; 5. Base; 51. Sealing injection plug; 6. Absorbent cotton. Detailed Implementation

[0019] To further illustrate the technical means and effects adopted by the present invention to achieve the intended purpose, the specific embodiments, structures, features, and effects according to the present invention will be described in detail below with reference to the accompanying drawings and preferred embodiments. In the following description, different "an embodiment" or "an embodiment" do not necessarily refer to the same embodiment. Furthermore, specific features, structures, or characteristics in one or more embodiments can be combined in any suitable form.

[0020] In the description of this invention, it should be clearly stated that the terms "first," "second," etc., in the specification, claims, and accompanying drawings are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence; the terms "vertical," "lateral," "longitudinal," "front," "rear," "left," "right," "up," "down," "horizontal," etc., indicate orientation or positional relationships based on the orientation or positional relationships shown in the accompanying drawings, and are merely for the convenience of describing this invention, and do not mean that the device or element referred to must have a specific orientation or position, and therefore should not be construed as a limitation of this invention.

[0021] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; 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. Those skilled in the art can understand the specific meaning of the above terms in this invention based on the specific circumstances.

[0022] To better understand the above technical solutions, the following will provide a detailed explanation of the technical solutions in conjunction with the accompanying drawings and specific implementation methods.

[0023] This embodiment provides a multi-compartment atomizing device with controllable leakage, such as... Figures 1-7 As shown, it includes a liquid storage tank 1, an auxiliary liquid storage tank 2, a liquid guiding component 3, and an atomizing chamber 4; the liquid guiding component 3 is connected between the liquid storage tank 1 and the auxiliary liquid storage tank 2, and communicates with the atomizing chamber 4. The liquid guiding component 3 is configured to drive the atomized liquid to be transferred between the liquid storage tank 1 and the auxiliary liquid storage tank 2 when the air pressure in the liquid storage tank 1 changes.

[0024] In this embodiment, the liquid storage chamber 1 is the main atomizing liquid storage structure, used to hold the atomizing liquid to be atomized under normal conditions. The auxiliary liquid storage chamber 2 works in conjunction with the liquid storage chamber 1, serving as a transfer and buffer structure for the atomizing liquid. The two are rationally arranged along the axial direction of the device. The liquid guiding component 3 is located between the liquid storage chamber 1 and the auxiliary liquid storage chamber 2, with its two ends connected to the auxiliary liquid storage chamber 2 and the liquid storage chamber 1 respectively, serving to guide the atomizing liquid. At the same time, the liquid guiding component 3 is also connected to the atomizing chamber 4, enabling it to continuously supply the atomizing liquid into the atomizing chamber 4. The atomizing chamber 4 is the core area of ​​the atomization operation, receiving the atomizing liquid transported by the liquid guiding component 3 and cooperating with the external power supply structure to complete the atomization operation, ultimately forming a usable aerosol.

[0025] During normal operation of the atomizing device, the internal pressure of the liquid storage chamber 1 dynamically changes with ambient temperature and suction action. When the internal pressure of the liquid storage chamber 1 increases, the atomized liquid inside the chamber is temporarily transported to the auxiliary liquid storage chamber 2 via the liquid guiding component 3 under the influence of pressure. When the internal pressure of the liquid storage chamber 1 decreases and forms a negative pressure, the atomized liquid originally temporarily stored in the auxiliary liquid storage chamber 2 flows back to the liquid storage chamber 1 via the liquid guiding component 3, thus realizing the dynamic flow of the atomized liquid between the two liquid storage chambers. At the same time, the liquid guiding component 3 continuously delivers the atomized liquid to the atomizing chamber 4, ensuring that the atomizing chamber 4 always has a sufficient amount of atomized liquid to complete continuous atomization. The entire structure relies on pressure changes to achieve bidirectional delivery of the atomized liquid, ensuring smooth and stable operation.

[0026] Existing atomizing devices using a single liquid storage chamber are prone to leakage in environments with significant temperature differences. The gas inside the chamber expands as the temperature rises and contracts as the temperature falls, and these drastic pressure changes can easily compress the atomized liquid, leading to leakage. This embodiment addresses this by using a dual-chamber structure: a liquid storage chamber 1 and an auxiliary liquid storage chamber 2 that work together, connected by a liquid guiding component 3. This dual-chamber structure mitigates pressure fluctuations within the chambers. When the liquid storage chamber experiences pressure compression due to temperature changes, excess atomized liquid is diverted to the auxiliary liquid storage chamber 2 for buffering. Conversely, when negative pressure contraction occurs in the liquid storage chamber, the atomized liquid in the auxiliary liquid storage chamber 2 flows back to replenish it, offsetting the effects of gas expansion and contraction caused by temperature changes. This prevents leakage caused by sudden pressure changes and improves the reliability of the device in environments with large temperature differences.

[0027] like Figure 2 As shown, the liquid storage chamber 1 and the auxiliary liquid storage chamber 2 are separated and arranged sequentially along the axial extension direction of the atomizing device, and are vertically separated from each other. The liquid storage chamber 1 occupies the upper half of the device, while the auxiliary liquid storage chamber 2 is located in the lower half, forming a complete integrated structure. The liquid guiding component 3 extends axially and intersects at the connection point between the liquid storage chamber 1 and the auxiliary liquid storage chamber 2, simultaneously connecting to the internal cavities of both chambers, thus creating a continuous liquid and gas path between the two chambers. This coaxial, vertically separated layout not only makes the overall structure more compact and the relative positions of the components more stable, but also allows the atomizing liquid and air pressure to be smoothly transmitted along the axial direction, further improving the smoothness of the atomizing liquid flow between the two chambers.

[0028] At least a portion of the liquid guiding component 3 is connected to the liquid storage chamber 1; at least another portion of the liquid guiding component is connected to the auxiliary liquid storage chamber 2. This connection allows the atomizing liquid to flow smoothly between the two chambers, and the complete connection path ensures the continuity of gas and liquid transmission, making the delivery process of the atomizing liquid always stable and controllable.

[0029] like Figure 2 As shown, the liquid storage chamber 1 includes an outer shell 11 and an outer tube 12. The outer tube 12 is integrally disposed inside the outer shell 11, and the two are assembled in a nested configuration. The side walls of the outer shell 11 and the outer tube 12 enclose a sealed cavity, which is the first chamber 14 for storing the atomizing liquid. The liquid storage chamber 1 is also provided with a first sealing element 13, which is assembled at the connection position between the outer tube 12 and the outer shell 11 to fill the assembly gap, further improve the sealing performance of the first chamber 14, and prevent the atomizing liquid from leaking from the assembly gap.

[0030] The outer casing 11 includes an outer casing body 111 and a suction nozzle 112, such as Figure 3As shown, the outer shell 111 is a cylindrical main structure that forms the outer contour of the liquid storage chamber 1, serving as an overall encapsulation and protection. The suction nozzle 112 is connected to the top of the outer shell 111, serving as both the mist outlet structure of the entire atomizing device and sealing the upper end of the outer shell 111 to ensure the airtightness of the first chamber 14. The outer tube 12 includes a tube body 122 and a tube edge 123. The tube body 122 is the main cylindrical structure of the outer tube 12, and the tube edge 123 is integrally connected to the end of the tube body 122, used for positioning and assembly limiting of the outer tube 12.

[0031] The outer tube 12 is axially inserted inside the outer casing 11, and the liquid guiding assembly 3 is sleeved on the inner side of the outer tube 12. The atomizing chamber 4 is also arranged in the internal space of the outer tube 12. The outer tube 12 radially limits the liquid guiding assembly 3 and the atomizing chamber 4, fixing their relative positions and preventing displacement of the components during use. On the other hand, it separates the inner atomizing and liquid guiding area from the outer first chamber 14, realizing functional zoning and allowing the liquid storage, liquid guiding, and atomizing areas to operate independently, effectively improving the overall stability and sealing of the device.

[0032] Specifically, in conjunction with the assembly structure of the outer tube 12 described above, a first conductive notch 121 is provided on the tube wall of the outer tube 12, such as... Figure 2 As shown, the liquid storage chamber 1 is connected to at least a portion of the liquid guiding component 3 through a first conductive notch 121. This first conductive notch 121 directly penetrates the wall of the outer tube 12, allowing the first chamber 14 between the outer shell 11 and the outer tube 12 to be connected to at least a portion of the liquid guiding component 3 through the first conductive notch 121. The first conductive notch 121 serves as a dedicated flow port between the first chamber 14 and the liquid guiding component 3, allowing the atomized liquid in the first chamber 14 to flow smoothly into the liquid guiding component 3, and also transmitting real-time changes in internal air pressure, providing a basic pathway for the flow of atomized liquid between different chambers. Furthermore, setting the conductive structure to a notch shape precisely limits the flow position and flow area, making the transmission process of the atomized liquid and airflow more stable and orderly.

[0033] Specifically, such as Figure 2 As shown, the auxiliary liquid storage tank 2 includes a second sealing element 21 and a second chamber 22. The second chamber 22 is a cavity space inside the auxiliary liquid storage tank 2 used to temporarily store the atomized liquid. The second sealing element 21 is assembled at the end of the second chamber 22 and serves to seal the cavity and define the space boundary.

[0034] The auxiliary liquid storage chamber 2 is connected to at least another part of the liquid guiding component 3 through a second conductive notch 211. The second conductive notch 211 is formed on the second sealing member 21 and penetrates through the second sealing member 21, allowing the second chamber 22 to be connected to at least another part of the liquid guiding component 3 through the second conductive notch 211. The second conductive notch 211 serves as a flow interface between the auxiliary liquid storage chamber 2 and the liquid guiding component 3, enabling the mutual transmission of atomizing liquid and air pressure. In conjunction with the first conductive notch 121, a complete gas-liquid circulation path is formed between the liquid storage chamber 1, the auxiliary liquid storage chamber 2, and the liquid guiding component 3. When the air pressure inside the liquid storage chamber 1 changes, the atomizing liquid can complete bidirectional flow through the two conductive notches.

[0035] The liquid guiding component 3 is a single-layer liquid guiding element, which is arranged axially inside the outer tube 12 and includes a support 31 and a liquid guiding element 32. The support 31 serves as the supporting base for the entire liquid guiding component 3, and has an axially extending columnar structure. It plays a role in overall positioning and supporting other components, ensuring the structural stability of the liquid guiding component 3 during long-term use, preventing deformation or displacement. The liquid guiding element 32 is sleeved on the outside of the support 31 and radially fixed by the support 31. The liquid guiding element 32 is the core component for the adsorption and conduction of the atomized liquid, relying on its material properties to receive and transport the atomized liquid. In actual operation, the atomizing liquid flowing in through the first conduction gap 121 will enter the liquid guiding component 32. The bracket 31 provides stable support for the liquid guiding structure, ensuring that the atomizing liquid can flow smoothly along the axis of the liquid guiding component 3. At the same time, the air pressure in the chamber can also be transmitted synchronously through the gaps between the components. The change in air pressure will drive the atomizing liquid to be directionally transported in the liquid guiding component 3, and finally flow into the auxiliary liquid storage chamber 2 through the second conduction gap 211.

[0036] The liquid guiding component 3 is a multi-layered liquid guiding element. In addition to the single-layer liquid guiding element, the liquid guiding component 3 also includes an outer liquid guiding element 33. The outer liquid guiding element 33 is further fitted over the outer side of the liquid guiding element 32, and the inner wall of the outer liquid guiding element 33 is tightly fitted with the outer wall of the liquid guiding element 32, forming an integrated conductive structure. At this time, the atomizing liquid flowing in through the first conductive notch 121 will sequentially enter the outer liquid guiding element 33 and the interior of the liquid guiding element 32, and finally flow into the auxiliary liquid storage chamber 2 through the second conductive notch 211. This entire three-layer nested liquid guiding structure not only improves the conduction efficiency and uniformity of the atomizing liquid, but the multi-layered, fitted layout also effectively prevents leakage of the atomizing liquid, further enhancing the sealing and leak-proof performance of the device.

[0037] The first conductive notch can be set to one or more: when a single first conductive notch is set, a set of notches is opened on the outer tube 12, which is simple in structure and can meet the gas-liquid flow requirements under normal working conditions; when multiple first conductive notches are set, in addition to the notch structure opened on the wall of the outer tube 12, a conductive structure (third conductive notch 331) is also opened at the corresponding position on the outer liquid guide 33. The two notches are radially aligned and cooperate with each other to form a complete first conductive notch passage. According to the actual design requirements, multiple sets of mutually aligned notches are opened in sequence along the circumference on the outer tube 12 and the outer liquid guide 33, which can increase the overall flow area and improve the transmission efficiency of atomized liquid and gas pressure.

[0038] Similarly, the second conductive notch 211 on the second seal 21 can be set to one or more depending on the usage requirements. Multiple second conductive notches arranged in parallel can match multiple sets of first conductive notches, ensuring that the flow capacity on both sides is mutually adapted; a single second conductive notch is suitable for miniaturized, conventional flow scenarios. Regardless of the arrangement of single or multiple notches, the passage between the liquid storage chamber 1, the liquid guiding component 3, and the auxiliary liquid storage chamber 2 can be guaranteed to be smooth, allowing the atomized liquid to stably complete bidirectional flow under air pressure.

[0039] The liquid storage tank 1 can be configured as one or more units, depending on the overall size of the equipment, the liquid storage capacity, and the atomization flow rate design requirements. When only a single liquid storage tank 1 is used, the structural layout is simple and compact, suitable for small atomizing devices. When multiple liquid storage tanks 1 are deployed, each tank operates independently yet collaboratively, effectively increasing the total liquid storage capacity and extending the continuous usage time after a single filling of atomizing liquid. Correspondingly, auxiliary liquid storage tanks 2 can also be configured as one or more units, with the number of auxiliary tanks 2 matching that of the liquid storage tanks 1. A single auxiliary liquid storage tank 2 can meet the buffering and transfer needs of the atomizing liquid under normal operating conditions; multiple auxiliary liquid storage tanks 2 can divert and carry the atomizing liquid from the corresponding liquid storage tank 1, dispersing the impact of air pressure fluctuations. This multi-tank combination further enhances the overall buffering effect, ensuring stable and continuous atomizing liquid flow even in environments with drastic temperature changes, reducing the risk of leakage from multiple dimensions.

[0040] The auxiliary liquid storage chamber 2 is equipped with a vent that connects it to the outside atmosphere. This vent balances the air pressure inside the second chamber 22 with the outside air. When the air pressure inside the liquid storage chamber 1 increases and the atomized liquid flows into the auxiliary liquid storage chamber 2, the gas inside the second chamber 22 can be smoothly discharged through the vent, preventing back pressure buildup and hindering liquid transport. Conversely, when negative pressure forms inside the liquid storage chamber 1 and the atomized liquid flows back, outside air can be replenished into the second chamber 22 through the vent, ensuring smooth and unobstructed atomized liquid return process. This structure ensures that the bidirectional liquid transport between the two chambers is never hindered by air pressure, further improving the stability and leak-proof effect of the device.

[0041] In addition, this atomizing device is also equipped with a liquid absorption chamber, which is an independent receiving space and is equipped with absorbent cotton 6 inside. Figure 2 As shown. During device operation, even with precise design of each sealing and conductive structure, a small amount of atomizing liquid may still leak. The leaked atomizing liquid will collect inside the suction chamber. The absorbent cotton 6 has excellent adsorption capacity, which can promptly and fully absorb and retain the leaked atomizing liquid, preventing the liquid from overflowing inside the device. This structure can centrally handle minute leaks, completely eliminating the problem of liquid overflow, further improving the cleanliness and reliability of the entire machine, and also effectively preventing leaked liquid from affecting the normal operation of other functional components.

[0042] like Figure 2 and Figure 7 As shown, a base 5 is also provided at the bottom of the device. The base 5 supports the auxiliary liquid storage chamber 2 and the lower structure of the whole machine, which plays a role in stabilizing the placement and protecting the internal components. A sealing liquid injection plug 51 is installed on the base 5. The sealing liquid injection plug 51 is used to block the liquid injection channel, which can both open to complete the injection of atomizing liquid and ensure the sealing effect inside the cavity after closing.

[0043] The atomizing device provided in this embodiment operates as follows in actual use: First, open the sealing injection plug 51 to complete the filling of the atomizing liquid. After filling, close the sealing injection plug 51 to keep all chambers sealed. When the device is working normally, the atomizing liquid in the storage chamber 1 flows continuously into the liquid guiding assembly 3 through the conductive structure, and part of the atomizing liquid is transported to the atomizing chamber 4 to continuously supply liquid for atomization operations.

[0044] When changes in ambient temperature or suction cause an increase in internal pressure in storage chamber 1, the atomizing liquid flows to auxiliary storage chamber 2 for temporary storage under pressure. Auxiliary storage chamber 2 is connected to the outside through a vent, allowing gas inside to escape promptly and preventing obstruction of liquid flow. When negative pressure forms inside storage chamber 1, outside air enters auxiliary storage chamber 2 through the vent, and the temporarily stored atomizing liquid flows back to storage chamber 1, achieving bidirectional flow of the atomizing liquid between storage chamber 1 and auxiliary storage chamber 2, preventing leakage caused by pressure fluctuations.

[0045] This device can be configured with one or more sets of liquid storage chambers 1 and auxiliary liquid storage chambers 2 according to operating conditions, and can also be equipped with one or more conductive notches to adapt to different delivery flow rates. If a small amount of leakage occurs during device operation, the leaked atomized liquid will collect in the suction chamber and be absorbed and retained by the absorbent cotton 6 to prevent liquid overflow. The device continuously circulates to complete the liquid supply, buffering, return, and leak prevention processes, ensuring stable atomization operation.

[0046] The above description is merely a specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any person skilled in the art can easily conceive of various equivalent modifications or substitutions within the technical scope disclosed in the present invention, and these modifications or substitutions should all be covered within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the scope of the claims.

Claims

1. A leak-controllable atomizing device with multiple compartments, characterized in that, It includes a liquid storage tank, an auxiliary liquid storage tank, a liquid guiding component, and an atomizing chamber; the liquid guiding component is connected between the liquid storage tank and the auxiliary liquid storage tank and communicates with the atomizing chamber, and the liquid guiding component is configured to drive the atomized liquid to be transported between the liquid storage tank and the auxiliary liquid storage tank when the air pressure in the liquid storage tank changes.

2. The atomizing device with controllable leakage and multiple compartments as described in claim 1, characterized in that, The liquid storage tank and the auxiliary liquid storage tank are set up separately.

3. The atomizing device with multi-compartment leak-controllable liquid distribution according to claim 1, characterized in that, At least a portion of the liquid guiding component is in communication with the liquid storage tank; at least another portion of the liquid guiding component is in communication with the auxiliary liquid storage tank.

4. The atomizing device with controllable leakage and multiple compartments according to claim 3, characterized in that, The liquid storage chamber is connected to at least a portion of the liquid guiding component through a first conductive notch; the auxiliary liquid storage chamber is connected to at least another portion of the liquid guiding component through a second conductive notch.

5. The atomizing device with multi-compartment leak-controllable liquid distribution according to claim 4, characterized in that, One or more first conductive gaps are provided, and one or more second conductive gaps are provided.

6. The atomizing device with controllable leakage and multiple compartments according to claim 1, characterized in that, One or more liquid storage tanks are provided, and one or more auxiliary liquid storage tanks are provided.

7. The atomizing device with controllable leakage and multiple compartments according to claim 1, characterized in that, The liquid storage chamber includes an outer tube, the atomizing chamber is disposed inside the outer tube, and the outer tube is sleeved on the outside of the liquid guiding assembly.

8. The atomizing device with controllable leakage and multiple compartments according to claim 1, characterized in that, The liquid guiding component includes a single-layer liquid guiding element or a multi-layer liquid guiding element.

9. The atomizing device with controllable leakage and multiple compartments according to claim 1, characterized in that, The auxiliary liquid storage tank is connected to the outside through a vent.

10. The atomizing device with controllable leakage and multiple compartments according to claim 1, characterized in that, The atomizing device also includes a liquid absorption chamber, and the liquid absorption chamber is provided with liquid-absorbing cotton.