Inverted container liquid molecule ion atomizer
By placing the bottle on the outer surface of the chamber in the molecular ion atomizer and optimizing the design of the liquid outlet pipe, air inlet pipe, and return pipe, the problem of limited storage bottle volume is solved, achieving a larger liquid capacity and higher atomization efficiency, improving the user experience and structural stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HANGZHOU CHISONG OPTOELECTRIC TECH CO LTD
- Filing Date
- 2025-04-25
- Publication Date
- 2026-05-08
AI Technical Summary
In existing molecular ion atomizers, the storage bottle is located inside the atomizer, which limits its volume and liquid capacity, affecting the user experience.
The bottle body is placed on the outer surface of the cavity. The liquid outlet pipe and the air inlet pipe are connected to the bottle body and the atomizing chamber, respectively. The air chamber design between the outer shell and the cavity body is combined with the pump valve for air filling. The inner diameter of the liquid outlet pipe and the air inlet pipe is gradually reduced to enhance the atomization effect. Liquid residue is prevented through the return pipe. The bottle body and the cavity body are threaded together for easy installation and sealing.
It increases liquid storage capacity, improves atomization efficiency, ensures precise liquid delivery and efficient gas introduction, prevents liquid waste and leakage, and enhances user experience and structural stability.
Smart Images

Figure CN224208339U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of atomizers, and in particular to an inverted container liquid molecular ion atomizer. Background Technology
[0002] Molecular ion atomizers are devices used to convert molecules in liquid samples into gaseous ions. Due to their small footprint and aesthetically pleasing appearance, they have broad market prospects and are currently widely used in indoor and in-vehicle environments.
[0003] A Chinese patent with publication number CN219941349U discloses a compact aromatherapy atomizer device. A sleeve and support base form a closed space to house the pump body, cutting off the noise transmission path and thus reducing pump noise and improving the user experience. Simultaneously, the sleeve restricts the pump body, reducing vibration during operation and minimizing the risk of loosening, while also reducing vibration-induced noise. However, the storage bottle is located inside the atomizer, limiting its volume and liquid capacity, which requires improvement. Utility Model Content
[0004] The purpose of this application is to provide an inverted container liquid molecular ion atomizer to increase the liquid's usable capacity.
[0005] This application provides an inverted container liquid molecular ion atomizer with the following technical solution: It includes a cavity, the cavity having an atomization chamber; a bottle is connected to the outer surface of the cavity; a liquid outlet pipe and an air inlet pipe are connected inside the cavity; both the bottle and the atomization chamber are connected to the liquid outlet pipe; a shell is connected to the cavity; an air chamber is formed between the shell and the cavity; both the air chamber and the atomization chamber are connected to the air inlet pipe; a pump valve is connected to the shell for filling the air chamber with air; the liquid outlet end of the liquid outlet pipe corresponds to the air outlet end of the air inlet pipe; and the cavity has an air outlet channel communicating with the atomization chamber.
[0006] By adopting the above technical solution, and placing the bottle on the outer surface of the cavity, the problem of limited volume and liquid capacity caused by the storage bottle being located inside the atomizer in existing technologies is effectively solved. Using a larger bottle increases the liquid storage capacity. The liquid outlet pipe and air inlet pipe inside the cavity connect to the bottle and the atomization chamber respectively, achieving precise liquid delivery and efficient gas introduction. The air chamber design between the outer shell and the cavity, combined with the pump valve inflation function, ensures that gas can enter the atomization chamber. The liquid outlet end of the liquid outlet pipe and the air outlet end of the air inlet pipe are arranged correspondingly, allowing the liquid and gas to mix thoroughly within the atomization chamber, further improving atomization efficiency. The air outlet channel on the cavity facilitates the discharge of the atomized gas.
[0007] Optionally, the liquid outlet pipe is provided with a liquid outlet end, the inner diameter of which gradually decreases in the direction away from the liquid outlet pipe, and the air inlet pipe is provided with an air outlet end, the inner diameter of which gradually decreases in the direction away from the air inlet pipe.
[0008] By adopting the above technical solution, the inner diameter of the liquid outlet end of the liquid outlet pipe is gradually reduced, which can form a finer liquid flow, thereby improving the atomization effect and making it easier for liquid molecules to be converted into gaseous ions. The inner diameter of the gas outlet end of the air inlet pipe is gradually reduced, which can accelerate the gas flow, enhance the impact of the gas on the liquid flow, and further improve the atomization effect.
[0009] Optionally, the cavity is connected to a return pipe, one end of which is located at the bottom of the atomizing cavity, and the other end passes through the cavity and is located inside the bottle. The inlet of the liquid outlet pipe is located between the two ends of the return pipe.
[0010] By adopting the above technical solution, the gas enters the atomizing chamber through the air inlet pipe, making the air pressure inside the atomizing chamber greater than the air pressure inside the bottle. This forces the un-atomized liquid at the bottom of the atomizing chamber to flow back to the essential oil bottle through the return pipe, avoiding liquid residue and waste. The liquid inlet of the liquid outlet pipe is located between the two ends of the return pipe, ensuring a reasonable liquid circulation path.
[0011] Optionally, the bottle body is threadedly connected to the cavity, and the cavity is provided with a threaded groove for engaging with the threaded part of the bottle body.
[0012] By adopting the above technical solution, the bottle body and the cavity are connected by threads, making the installation and disassembly of the bottle body more convenient and facilitating cleaning or replacement by the user. At the same time, the cavity is equipped with threaded grooves that mate with the threads of the bottle body, which improves the connection stability between the bottle body and the cavity, preventing loosening or leakage during use, thereby ensuring the normal operation of the atomizer and good sealing performance.
[0013] Optionally, the cavity is connected to a first sealing ring, and the cavity is provided with a mounting ring groove for engaging with the first sealing ring, the mounting ring groove communicating with the threaded groove.
[0014] By adopting the above technical solution, the cooperation between the first sealing ring and the mounting ring groove can effectively improve the sealing performance between the cavity and the bottle body, preventing liquid leakage. At the same time, the design of the mounting ring groove connecting with the threaded groove ensures accurate positioning of the first sealing ring during assembly, allowing it to be precisely installed in the appropriate position.
[0015] Optionally, the cavity includes a housing and a bottom cover snapped onto the housing. The atomizing cavity is disposed on the housing, and the bottom cover is used to cover the opening of the atomizing cavity. The housing is provided with a snap-fit groove for engaging with the bottom cover, and the snap-fit groove communicates with the atomizing cavity.
[0016] By adopting the above technical solution, the snap-fit between the shell and the bottom cover enables the assembly of the atomizing chamber, which simplifies the structural design, reduces production costs and assembly difficulty, and the bottom cover can be disassembled to facilitate cleaning of the inside of the shell.
[0017] Optionally, the bottom cover is provided with a positioning block, and the housing is provided with a positioning groove for cooperating with the positioning block, and the snap-fit groove communicates with the positioning groove.
[0018] By adopting the above technical solution, the positioning block on the bottom cover cooperates with the positioning groove on the housing, enabling the bottom cover to be quickly and accurately aligned during installation, improving assembly efficiency and ensuring a precise connection between the bottom cover and the housing. Simultaneously, the interconnected design of the snap-fit groove and the positioning groove further ensures a stable snap-fit between the bottom cover and the housing, enhancing the reliability of the overall structure and effectively preventing the bottom cover from shifting or loosening during use.
[0019] Optionally, the bottom cover is connected to a second sealing ring, the bottom cover is provided with a first limiting ring groove for cooperating with the second sealing ring, and the housing is provided with a second limiting ring groove for cooperating with the second sealing ring, the second limiting ring groove communicating with the snap-fit groove.
[0020] By adopting the above technical solution, the first limiting ring groove and the second limiting ring groove work together to ensure the stable installation and effective compression of the second sealing ring. The second sealing ring improves the sealing performance of the atomizer and prevents liquid leakage or external impurities from entering the atomization chamber.
[0021] Optionally, the housing is connected to a liquid-blocking plate, which is located at the air inlet of the air outlet channel.
[0022] By adopting the above technical solution, the liquid blocking plate can effectively prevent the liquid in the atomization chamber from entering the gas outlet channel with the gas, thus avoiding liquid leakage or splashing.
[0023] Optionally, the liquid blocking plate is detachably connected to the housing, the housing is provided with two limiting plates, the liquid blocking plate is located between the two limiting plates, the housing is connected with a clamping rod, the bottom cover is provided with a clamping plate, and the liquid blocking plate is clamped by the clamping rod and the clamping plate.
[0024] By adopting the above technical solution, the detachable connection between the liquid-blocking plate and the housing facilitates the replacement and cleaning of the liquid-blocking plate, thereby ensuring the hygienic performance and long-term effectiveness of the atomizer. The design of the two limiting plates effectively positions the liquid-blocking plate, preventing it from shifting during operation and ensuring the stability of the airflow channel and the atomization effect. The cooperation between the clamping rod and the clamping plate further enhances the fixing effect of the liquid-blocking plate, preventing loosening due to vibration or airflow impact.
[0025] In summary, this application includes at least one of the following beneficial technical effects:
[0026] 1. By placing the bottle on the outer surface of the cavity, the problem of limited volume and liquid capacity caused by the storage bottle being located inside the atomizer in the existing technology is effectively solved. The use of a larger bottle increases the liquid storage capacity.
[0027] 2. The gradually decreasing inner diameter of the liquid outlet end of the liquid outlet pipe creates a finer liquid flow, thereby improving the atomization effect and making it easier for liquid molecules to be converted into gaseous ions. The gradually decreasing inner diameter of the gas outlet end of the air inlet pipe accelerates gas flow, enhances the impact of gas on the liquid flow, and further improves the atomization effect. Attached Figure Description
[0028] Figure 1 This is a schematic diagram of the overall structure of an embodiment of this application.
[0029] Figure 2 yes Figure 1 A sectional view.
[0030] Figure 3 yes Figure 2 An enlarged view of region A.
[0031] Figure 4 This is a partial structural schematic diagram of an embodiment of this application.
[0032] Figure 5 yes Figure 4 A magnified view of region B.
[0033] Figure 6 yes Figure 4 A sectional view.
[0034] Figure 7 yes Figure 6 A magnified view of region C.
[0035] Explanation of reference numerals in the attached drawings: 1. Cavity; 11. Shell; 111. Atomizing chamber; 112. Threaded groove; 113. Mounting ring groove; 114. Snap-fit groove; 115. Positioning groove; 116. Second limiting ring groove; 117. Air outlet channel; 118. Limiting plate; 119. Clamping rod; 12. Bottom cover; 121. Positioning block; 122. First limiting ring groove; 123. Clamping plate; 2. Bottle body; 3. First sealing ring; 4. Shell; 41. Air chamber; 5. Liquid outlet pipe; 6. Air inlet pipe; 7. Return pipe; 8. Second sealing ring; 9. Liquid blocking plate. Detailed Implementation
[0036] The following is in conjunction with the appendix Figure 1 -Appendix Figure 7 This application will be described in further detail.
[0037] This application discloses an inverted container liquid molecular ion atomizer.
[0038] Combination Figure 1 , Figure 2 and Figure 3 As shown, the device includes a cavity 1, which comprises a housing 11 and a bottom cover 12 snapped onto the bottom of the housing 11. The housing 11 has an atomizing chamber 111. When the bottom cover 12 is installed on the housing 11, it covers the atomizing chamber 111. A bottle 2 is threadedly connected to the top of the cavity 1. The outer surface of the housing 11 has a threaded groove 112 for threaded engagement with the bottle 2. A first sealing ring 3 is installed on the outer surface of the housing 11. The housing 11 has an installation ring groove 113 for the first sealing ring 3, which communicates with the threaded groove 112. When the bottle 2 is installed on the housing 11, the bottle 2 abuts against the first sealing ring 3, and the first sealing ring 3 is clamped by the bottle 2 and the housing 11, surrounding the opening of the bottle 2.
[0039] Combination Figure 2 and Figure 3 As shown, the shell 11 is fixedly connected to a liquid outlet pipe 5 and an air inlet pipe 6. The bottle body 2 and the atomizing chamber 111 are both connected to the liquid outlet pipe 5. The end of the liquid outlet pipe 5 away from the bottle body 2 is provided with a liquid outlet end, and the inner diameter of the liquid outlet end gradually decreases in the direction away from the bottle body 2. An outer shell 4 is snapped onto the outer surface of the shell 11. The outer shell 4 surrounds the shell 11 and the bottom cover 12. An air chamber 41 is formed between the outer shell 4 and the chamber 1. The air chamber 41 and the atomizing chamber 111 are both connected to the air inlet pipe 6. A pump valve (not shown in the attached figure) is fixedly connected to the outer shell 4, and air is pumped into the air chamber 41 through the pump valve. The air inlet pipe 6 is inclined. The end of the air inlet pipe 6 away from the air chamber 41 is provided with an air outlet end, and the inner diameter of the air outlet end gradually decreases in the direction away from the air chamber 41. The end of the air inlet pipe 6 near the air chamber 41 is higher than the end of the air inlet pipe 6 away from the air chamber 41. The liquid outlet end of the liquid outlet pipe 5 corresponds to the air outlet end of the air inlet pipe 6. The housing 11 is fixedly connected to a return pipe 7. One end of the return pipe 7 is located at the bottom of the atomizing chamber 111, and the other end passes through the upper surface of the housing 11 and is located inside the bottle 2. The inlet of the liquid outlet pipe 5 is located between the two ends of the return pipe 7.
[0040] Combination Figure 4 , Figure 5 , Figure 6 and Figure 7As shown, the housing 11 has a snap-fit groove 114 for engaging with the bottom cover 12, and the snap-fit groove 114 communicates with the atomizing chamber 111. A positioning block 121 is provided on the side of the bottom cover 12 near the housing 11. The positioning block 121 is integrally formed with the bottom cover 12. The housing 11 has a positioning groove 115 for engaging with the positioning block 121, and the positioning groove 115 communicates with the snap-fit groove 114. A second sealing ring 8 is installed on the bottom cover 12. The bottom cover 12 has a first limiting ring groove 122 for engaging with the second sealing ring 8. The housing 11 has a second limiting ring groove 116 for engaging with the second sealing ring 8, and the second limiting ring groove 116 communicates with the snap-fit groove 114. The housing 11 has an air outlet channel 117 communicating with the atomizing chamber 111. A liquid-blocking plate 9 is detachably connected inside the housing 11, located at the air inlet of the air outlet channel 117. Two limiting plates 118 are arranged opposite each other inside the housing 11, integrally formed with the housing 11. The liquid-blocking plate 9 is located between the two limiting plates 118, which limit its position, ensuring precise installation. Three clamping rods 119 are spaced apart on the housing 11, integrally formed with the housing 11, and located at the air inlet of the air outlet channel 117. A clamping plate 123 is provided on the side of the bottom cover 12 near the atomizing chamber 111, integrally formed with the bottom cover 12. When the bottom cover 12 is installed on the housing 11, the liquid-blocking plate 9 is clamped by the clamping rods 119 and the clamping plate 123.
[0041] The implementation principle of an inverted container liquid molecular ion atomizer according to an embodiment of this application is as follows:
[0042] By placing the bottle 2 on the outer surface of the cavity 1, the problem of limited volume and liquid capacity caused by the storage bottle being located inside the atomizer in the prior art is effectively solved. By using a larger bottle 2, the liquid storage capacity is increased.
[0043] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. An inverted container liquid molecular ion atomizer, characterized in that: The device includes a cavity (1), which is provided with an atomizing chamber (111). A bottle (2) is connected to the outer surface of the cavity (1). An outlet pipe (5) and an air inlet pipe (6) are connected inside the cavity (1). The bottle (2) and the atomizing chamber (111) are both connected to the outlet pipe (5). The cavity (1) is connected to a shell (4). An air chamber (41) is formed between the shell (4) and the cavity (1). The air chamber (41) and the atomizing chamber (111) are both connected to the air inlet pipe (6). The shell (4) is connected to a pump valve, which is used to fill the air chamber (41) with air. The outlet end of the outlet pipe (5) corresponds to the outlet end of the air inlet pipe (6). The cavity (1) is provided with an air outlet channel (117) that is connected to the atomizing chamber (111).
2. The inverted container liquid molecular ion atomizer according to claim 1, characterized in that: The liquid outlet pipe (5) is provided with a liquid outlet end, and the inner diameter of the liquid outlet end gradually decreases in the direction away from the liquid outlet pipe (5). The air inlet pipe (6) is provided with an air outlet end, and the inner diameter of the air outlet end gradually decreases in the direction away from the air inlet pipe (6).
3. The inverted container liquid molecular ion atomizer according to claim 1, characterized in that: The cavity (1) is connected to a return pipe (7). One end of the return pipe (7) is located at the bottom of the atomizing chamber (111), and the other end passes through the cavity (1) and is located inside the bottle (2). The inlet of the liquid outlet pipe (5) is located between the two ends of the return pipe (7).
4. The inverted container liquid molecular ion atomizer according to claim 1, characterized in that: The bottle body (2) is threadedly connected to the cavity (1), and the cavity (1) is provided with a threaded groove (112) for threaded engagement with the bottle body (2).
5. The inverted container liquid molecular ion atomizer according to claim 4, characterized in that: The cavity (1) is connected to a first sealing ring (3), and the cavity (1) is provided with an mounting ring groove (113) for the first sealing ring (3) to engage, and the mounting ring groove (113) communicates with the threaded groove (112).
6. The inverted container liquid molecular ion atomizer according to claim 1, characterized in that: The cavity (1) includes a housing (11) and a bottom cover (12) snapped onto the housing (11). The atomizing cavity (111) is disposed on the housing (11). The bottom cover (12) is used to cover the opening of the atomizing cavity (111). The housing (11) is provided with a snap-fit groove (114) for snap-fitting with the bottom cover (12). The snap-fit groove (114) is connected to the atomizing cavity (111).
7. The inverted container liquid molecular ion atomizer according to claim 6, characterized in that: The bottom cover (12) is provided with a positioning block (121), and the housing (11) is provided with a positioning groove (115) for cooperating with the positioning block (121). The snap-fit groove (114) is connected to the positioning groove (115).
8. The inverted container liquid molecular ion atomizer according to claim 6, characterized in that: The bottom cover (12) is connected to a second sealing ring (8). The bottom cover (12) is provided with a first limiting ring groove (122) for cooperating with the second sealing ring (8). The housing (11) is provided with a second limiting ring groove (116) for cooperating with the second sealing ring (8). The second limiting ring groove (116) is connected to the snap-fit groove (114).
9. The inverted container liquid molecular ion atomizer according to claim 6, characterized in that: The housing (11) is connected to a liquid blocking plate (9), which is located at the air inlet of the air outlet channel (117).
10. The inverted container liquid molecular ion atomizer according to claim 9, characterized in that: The liquid blocking plate (9) is detachably connected to the housing (11). The housing (11) is provided with two limiting plates (118). The liquid blocking plate (9) is located between the two limiting plates (118). The housing (11) is connected with a clamping rod (119). The bottom cover (12) is provided with a clamping plate (123). The liquid blocking plate (9) is clamped by the clamping rod (119) and the clamping plate (123).
Citation Information
Patent Citations
Compact aromatherapy atomizer device
CN219941349U