Ozone generator
By designing components and magnetic connection structures in the ozone generator that facilitate sliding installation, the molecular sieve can be easily replaced, solving the problem of cumbersome molecular sieve replacement in existing technologies and achieving stable production of high-concentration ozone.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- TIANJIN TROPJOIN HEALTH TECH GRP
- Filing Date
- 2025-05-13
- Publication Date
- 2026-05-01
AI Technical Summary
The replacement of molecular sieves in existing ozone generators is cumbersome and difficult, affecting ease of use.
An ozone generator was designed, which features an ozone production component on top of a gas source treatment component. The component is installed using a sliding groove for easy sliding installation. The adsorption tower component alternately adsorbs and reduces nitrogen. The hinged seat at the bottom of the tower facilitates the replacement of the molecular sieve. The magnetic seat is connected to the magnetic block for easy fixation. Combined with the structure of fixed ball bearings, sliding sleeves, and guide sliders, the molecular sieve can be easily replaced.
The ability to easily replace molecular sieves has been achieved, improving the ease of use of the device and ensuring the production of high-concentration ozone.
Smart Images

Figure CN224185857U_ABST
Abstract
Description
An ozone generator Technical Field
[0001] This application relates to the field of disinfection equipment, and in particular to an ozone generator. Background Technology
[0002] An ozone generator is a device that converts oxygen into ozone. It produces ozone gas through methods such as corona discharge, ultraviolet irradiation, or water electrolysis. Ozone is a strong oxidant with powerful bactericidal and disinfecting capabilities, and its effects on humans and the environment are controllable at appropriate concentrations. Ozone generators in the pharmaceutical filling industry need to provide stable and precisely controlled ozone concentrations to ensure disinfection effectiveness while avoiding the risks of overuse. Typically, oxygen generators are used to produce oxygen to increase the ozone concentration.
[0003] Existing ozone generators require frequent replacement of molecular sieves to ensure sufficient oxygen concentration in order to achieve the required ozone concentration. However, replacing the molecular sieves in existing ozone generators is cumbersome and difficult, making them inconvenient to use. Summary of the Invention
[0004] In order to solve the problems mentioned in the background art, this application provides an ozone generator.
[0005] The above-mentioned technical objective of this application is achieved through the following technical solution:
[0006] An ozone generator includes a gas source processing component, an ozone production component on top of the gas source processing component, a first outer shell, a mounting groove on one side of the first outer shell, an installation component inside the mounting groove, two adsorption tower components inside the installation component, the installation component including a sliding seat, mounting plates fixedly mounted on the top and bottom sides of the sliding seat, the adsorption tower component including a tower body, a hinged seat fixedly mounted on the bottom of the tower body, the hinged seat being hinged to the mounting plate at the bottom of the sliding seat, a top cover on the top of the tower body, a magnetic block fixedly mounted on one side of the middle of the tower body, and a magnetic seat fixedly mounted on the middle of one side of the sliding seat, the magnetic seat being magnetically connected to the magnetic block.
[0007] By adopting the above scheme, an ozone production component is installed at the top of the gas source treatment component, which facilitates the treatment of air and the production of high-concentration ozone. The installation slide allows the installation component to slide along the slide, facilitating the replacement of the molecular sieve inside the adsorption tower component. Two adsorption tower components are installed inside the installation component, allowing them to work in conjunction with the gas source treatment component to treat the air. The two adsorption tower components alternately perform nitrogen adsorption and reduction steps. A hinged seat is fixedly installed at the bottom of the tower body, facilitating the storage of molecular sieve particles inside the tower body. This allows the gas source treatment component to adsorb nitrogen from the air, thereby producing high-concentration oxygen. The hinged seat is hinged to the mounting plate at the bottom of the sliding seat, allowing the tower body to be tilted when replacing the molecular sieve, facilitating the removal of the molecular sieve from the tower body. A magnetic connection between the magnetic seat and the magnetic block facilitates easy fixation of the tower body during installation and use, maintaining its vertical orientation and facilitating the production of high-concentration oxygen in conjunction with the gas source treatment component.
[0008] Furthermore, a fixing groove is provided on the outer side of the top of the tower body, and a ball bearing hole is provided at the bottom of the top cover, with a fixing ball bearing inside the ball bearing hole.
[0009] By adopting the above solution, the fixed ball bearings are designed to easily engage with the fixed groove, making it convenient to fix the top cover to the top of the tower.
[0010] Furthermore, a sliding groove is provided on the outer side of the top cover, and a sliding sleeve is slidably connected to the outside of the sliding groove.
[0011] By adopting the above scheme, the sliding sleeve is designed to allow it to slide downwards to the outside of the narrow ball bearing hole, pushing the fixed ball bearing towards the inside of the fixing groove, thereby achieving a fixed connection between the top cover and the tower body.
[0012] Furthermore, a spring seat is provided on the inner side of the sliding sleeve, a push spring is fixedly installed on the top of the spring seat, a limit ring is fixedly installed on the top of the push spring, and the limit ring is fixedly connected to the top cover.
[0013] By adopting the above scheme, a limiting ring is fixedly installed on the top of the push spring. The limiting ring is fixedly connected to the top cover, which facilitates the limiting ring to limit the sliding of the sliding sleeve. The push spring provides elastic force to push the sliding sleeve downward and fix it to the outside of the ball hole. When the molecular sieve needs to be replaced, the sliding sleeve is pushed upward to move the sliding sleeve away from the ball hole, release the locking of the fixed ball, and facilitate the replacement of the molecular sieve.
[0014] Furthermore, an air source interface is provided on one side of the hinge seat, and a three-way valve is connected to the top of the top cover.
[0015] By adopting the above scheme, the gas source interface and three-way valve make it easy to cooperate with the gas source treatment component to introduce the dried, filtered and pressurized air into the tower body to produce oxygen, and then introduce the produced oxygen into the gas source treatment component to generate ozone.
[0016] Furthermore, guide grooves are provided on both sides of the mounting plate, and guide sliders are fixedly installed at the top and bottom of both sides of the mounting grooves. The guide grooves are slidably connected to the guide sliders.
[0017] By adopting the above scheme, the guide groove and the guide slider are slidably connected, which facilitates the sliding of the sliding seat and enables the installation component to slide stably inside the installation groove.
[0018] Furthermore, a spring-loaded latch is provided at the top of the inner side of the mounting groove, a handle groove is provided at the top of the sliding seat, and a locking hole is provided at the top of the handle groove, which engages with the spring-loaded latch.
[0019] By adopting the above solution, the locking hole and the spring clip are engaged and connected, which makes it easy for the spring clip to lock the mounting component and fix the mounting component inside the mounting slide.
[0020] Furthermore, an unlocking button is provided inside the lock hole, and limit blocks are fixedly installed at both ends of the inner side of the lock hole. Limiting grooves are opened at both ends of the unlocking button, and the limit blocks are slidably connected to the limiting grooves.
[0021] By adopting the above scheme, the limiting block and the limiting slide are slidably connected, which makes it easy for the unlocking button to slide downward under the action of gravity. When replacing the molecular sieve, the unlocking button is pressed upward, so that the unlocking button pushes the spring block out of the locking hole, thereby making it easy to pull out the installation component and replace the molecular sieve inside the adsorption tower component.
[0022] Furthermore, a drying filter is fixedly installed in the middle of one side of the first housing, and the ozone production assembly includes a second housing, a control panel is fixedly installed in one side of the second housing, and an air outlet is fixedly installed in the top of the second housing.
[0023] By adopting the above scheme, a dryer filter is fixedly installed in the middle of one side of the first outer shell, which facilitates the fixed installation of an air booster pump and a four-way valve inside the first outer shell. The air booster pump draws in external air after it has been dried and filtered by the dryer filter, and the four-way valve controls the high-pressure air to enter the tower body from the gas source interface for oxygen production or backflushing recovery. The second outer shell facilitates the control of the device using a control panel. An exhaust fan and an ozone generation system are fixedly installed inside the second outer shell, which facilitates the corona discharge of ozone from the oxygen produced by the gas source treatment components and the adsorption tower components. The exhaust fan discharges the ozone from the air outlet to the outside, facilitating the disinfection of the external environment.
[0024] In summary, this application has the following technical effects:
[0025] An ozone production component is located at the top of the gas source treatment assembly, facilitating air treatment and high-concentration ozone production. A sliding groove allows for easy sliding of the assembly, enabling convenient replacement of the molecular sieve inside the adsorption tower assembly. The assembly contains two adsorption towers, working in conjunction with the gas source treatment assembly to treat the air. The two towers alternately perform nitrogen adsorption and reduction steps. A hinged base is fixedly installed at the bottom of the tower, allowing for the storage of molecular sieve particles. This facilitates the adsorption of nitrogen from the air by the gas source treatment assembly, producing high-concentration oxygen. The hinged base connects to the mounting plate at the bottom of the sliding base, allowing the tower to be tilted for easy removal of the molecular sieve during replacement. A magnetic base connects to a magnetic block, facilitating easy fixation of the tower during installation and use, maintaining its longitudinal orientation for efficient high-concentration oxygen production. This invention achieves convenient molecular sieve replacement, improving the ease of use of the device. Attached Figure Description
[0026] Figure 1 is a three-dimensional structural schematic diagram of an ozone generator according to this application;
[0027] Figure 2 is a three-dimensional structural schematic diagram of the gas source processing component of this application;
[0028] Figure 3 is a three-dimensional structural diagram of the installation components of this application;
[0029] Figure 4 is a partial exploded view of the components installed in this application;
[0030] Figure 5 is a partial exploded view of the adsorption tower assembly of this application.
[0031] In the diagram, 1. Gas source treatment component; 11. First outer shell; 12. Mounting slide; 13. Guide slider; 14. Spring clip; 15. Dryer filter; 2. Ozone production component; 21. Second outer shell; 22. Control panel; 23. Air outlet; 3. Mounting component; 31. Sliding seat; 32. Mounting plate; 33. Guide slide; 34. Handle groove; 35. Lock hole; 36. Limiting block; 37. Unlock button; 38. Limiting slide; 39. Magnetic seat; 4. Adsorption tower component; 401. Tower body; 402. Hinge seat; 403. Gas source interface; 404. Magnetic block; 405. Fixing groove; 406. Top cover; 407. Sliding groove; 408. Ball bearing hole; 409. Fixing ball bearing; 410. Sliding sleeve; 411. Spring seat; 412. Push spring; 413. Limiting ring; 414. Three-way valve. Detailed Implementation
[0032] The present application will be further described in detail below with reference to the accompanying drawings.
[0033] Example:
[0034] As shown in Figures 1 to 5:
[0035] This utility model provides an ozone generator, including a gas source treatment component 1. An ozone production component 2 is mounted on the top of the gas source treatment component 1. The ozone production component 2 facilitates the gas source treatment component 1's air treatment and enables the ozone production component 2 to produce high-concentration ozone. The gas source treatment component 1 includes a first outer shell 11, with a mounting groove 12 on one side. The mounting groove 12 allows for the sliding of a mounting component 3 along its length, facilitating the replacement of the molecular sieve inside the adsorption tower component 4. The mounting groove 12 houses the mounting component 3, which contains two adsorption tower components 4. The two adsorption tower components 4 work in conjunction with the gas source treatment component 1 to treat the air. The two adsorption tower components 4 alternately perform nitrogen adsorption and reduction steps. The mounting component 3 includes a sliding seat 31, with mounting plates 32 fixedly mounted on its top and bottom sides. Component 4 includes a tower body 401, with a hinge seat 402 fixedly installed at the bottom. This hinge seat 402 facilitates the storage of molecular sieve particles inside the tower body 401, allowing it to work in conjunction with the gas source treatment component 1 to adsorb nitrogen from the air, thereby producing a high concentration of oxygen. The hinge seat 402 is hinged to the mounting plate 32 at the bottom of the sliding seat 31. This hinge allows the tower body 401 to be tilted when replacing the molecular sieve. 1. To facilitate the pouring out of the molecular sieve inside the tower body 401, the top of the tower body 401 is provided with a top cover 406, a magnetic block 404 is fixedly installed on one side of the middle of the tower body 401, and a magnetic seat 39 is fixedly installed on the middle of one side of the sliding seat 31. The magnetic seat 39 is magnetically connected to the magnetic block 404. The magnetic connection between the magnetic seat 39 and the magnetic block 404 makes it easy to fix the tower body 401 during installation and use, so that the tower body 401 is kept in a vertical position, which is convenient for cooperating with the gas source treatment component 1 to produce high concentration oxygen.
[0036] The tower body 401 has a fixing groove 405 on the outer side of the top, and the top cover 406 has a ball hole 408 at the bottom. The ball hole 408 has a fixing ball 409 inside. The fixing ball 409 can be easily inserted into the fixing groove 405, so that the top cover 406 can be fixedly installed on the top of the tower body 401.
[0037] The top cover 406 has a sliding groove 407 on its outer side, and a sliding sleeve 410 is slidably connected to the outside of the sliding groove 407. The sliding sleeve 410 facilitates the sliding sleeve 410 to slide downward to the outside of the narrow ball hole 408, pushing the fixed ball 409 towards the inside of the fixed groove 405, thereby achieving a fixed connection between the top cover 406 and the tower body 401.
[0038] The sliding sleeve 410 has a spring seat 411 on its inner side. A push spring 412 is fixedly installed on the top of the spring seat 411. A limit ring 413 is fixedly installed on the top of the push spring 412. The limit ring 413 is fixedly connected to the top cover 406. The limit ring 413 is fixedly installed on the top of the push spring 412 and fixedly connected to the top cover 406, which facilitates the limit ring 413 to limit the sliding of the sliding sleeve 410. The push spring 412 provides elastic force to push the sliding sleeve 410 downward and fix it to the outside of the ball hole 408. When the molecular sieve needs to be replaced, push the sliding sleeve 410 upward to move the sliding sleeve 410 away from the ball hole 408 and release the lock of the fixed ball 409, which facilitates the replacement of the molecular sieve.
[0039] The hinged seat 402 has a gas source interface 403 on one side, and the top of the top cover 406 is connected to a three-way valve 414. The gas source interface 403 and the three-way valve 414 facilitate the use of the gas source processing component 1 to introduce the dried, filtered and pressurized air into the tower body 401 to produce oxygen, and then introduce the produced oxygen into the gas source processing component 1 to generate ozone.
[0040] The mounting plate 32 has guide grooves 33 on both sides. Guide sliders 13 are fixedly installed at the top and bottom of both sides inside the mounting groove 12. The guide grooves 33 and guide sliders 13 are slidably connected. The sliding connection between the guide grooves 33 and guide sliders 13 facilitates the sliding of the sliding seat 31, so that the mounting component 3 can slide stably inside the mounting groove 12.
[0041] The mounting slide 12 has a spring block 14 at the top of its inner side, and the sliding seat 31 has a handle groove 34 at the top. The handle groove 34 has a locking hole 35 at the top. The locking hole 35 engages with the spring block 14. The engagement of the locking hole 35 with the spring block 14 makes it easy for the spring block 14 to lock the mounting component 3 and fix the mounting component 3 inside the mounting slide 12.
[0042] The lock hole 35 is equipped with an unlocking button 37 inside. Limiting blocks 36 are fixedly installed at both ends of the lock hole 35. Limiting grooves 38 are opened at both ends of the unlocking button 37. The limiting blocks 36 and the limiting grooves 38 are slidably connected. The sliding connection between the limiting blocks 36 and the limiting grooves 38 makes it easy for the unlocking button 37 to slide downward under the action of gravity. When replacing the molecular sieve, the unlocking button 37 is pressed upward, so that the unlocking button 37 pushes the spring block 14 out of the lock hole 35, thereby facilitating the removal of the installation component 3 and the replacement of the molecular sieve inside the adsorption tower component 4.
[0043] A dryer filter 15 is fixedly installed on one side of the first outer shell 11. The dryer filter 15 allows for the installation of an air booster pump and a four-way valve inside the first outer shell 11. The air booster pump draws in external air after it has been dried and filtered by the dryer filter 15, and the four-way valve controls the high-pressure air to enter the tower body 401 from the gas source interface 403 for oxygen production or backflushing recovery. The ozone production component 2 includes a second outer shell 21. A control panel 22 is fixedly installed on one side of the second outer shell 21, and an air outlet 23 is fixedly installed on the top of the second outer shell 21. The second outer shell 21 allows for easy control of the device using the control panel 22. An exhaust fan and an ozone generation system are fixedly installed inside the second outer shell 21, facilitating the corona discharge of the oxygen produced by the gas source treatment component 1 in conjunction with the adsorption tower component 4 to generate ozone. The exhaust fan discharges the ozone from the air outlet 23 to the outside, facilitating the disinfection of the external environment.
[0044] Specifically, a dryer filter 15 is fixedly installed in the middle of one side of the first outer shell 11, facilitating the fixed installation of an air booster pump and a four-way valve inside the first outer shell 11. The air booster pump draws in external air after it has been dried and filtered by the dryer filter 15, and the four-way valve controls the high-pressure air to enter the tower body 401 from the gas source interface 403 for oxygen production or backflushing recovery. A hinge seat 402 is fixedly installed at the bottom of the tower body 401, facilitating the storage of molecular sieve particles inside the tower body 401, which is convenient for use with the gas source treatment component 1 to adsorb nitrogen from the air, thereby producing oxygen. High-concentration oxygen is magnetically connected to magnetic block 404 via magnetic base 39, facilitating easy fixation of tower body 401 during installation and use, ensuring its vertical orientation. This facilitates the production of high-concentration oxygen in conjunction with gas source treatment component 1. The second outer shell 21 allows for easy control of the device via control panel 22. An exhaust fan and ozone generation system are fixedly installed inside the second outer shell 21, enabling the corona discharge of ozone from the oxygen produced by gas source treatment component 1 in conjunction with adsorption tower component 4. The exhaust fan discharges the ozone to the outside through outlet 23, facilitating environmental monitoring. For disinfection, the guide slide 33 is slidably connected to the guide slider 13, which facilitates the sliding of the sliding seat 31, allowing the installation component 3 to slide stably inside the installation slide 12. The locking hole 35 engages with the spring latch 14, allowing the spring latch 14 to lock the installation component 3 and fix it inside the installation slide 12. The limiting block 36 is slidably connected to the limiting slide 38, allowing the unlocking button 37 to slide downwards under gravity. When replacing the molecular sieve, pressing the unlocking button 37 upwards causes it to push the spring latch 14 out of the locking hole. 35, which facilitates the removal of the installation component 3 and the replacement of the molecular sieve inside the adsorption tower component 4. A limiting ring 413 is fixedly installed on the top of the push spring 412. The limiting ring 413 is fixedly connected to the top cover 406, which facilitates the limiting ring 413 to limit the sliding of the sliding sleeve 410. The push spring 412 provides elastic force to push the sliding sleeve 410 downward and fix it outside the ball hole 408. When it is necessary to replace the molecular sieve, push the sliding sleeve 410 upward to move the sliding sleeve 410 away from the ball hole 408, release the lock of the fixing ball 409, and facilitate the replacement of the molecular sieve.
[0045] This specific embodiment is merely an explanation of this application and is not intended to limit it. After reading this specification, those skilled in the art can make modifications to this embodiment without contributing any inventive step, but such modifications are protected by patent law as long as they fall within the scope of the claims of this application.
Claims
1. An ozone generator, characterized in that, The system includes a gas source treatment component (1), an ozone production component (2) on top of the gas source treatment component (1), a first outer shell (11) with a mounting groove (12) on one side of the first outer shell (11), an installation component (3) inside the mounting groove (12), two adsorption tower components (4) inside the installation component (3), and a sliding seat (31) with mounting plates (3) fixedly installed on the top and bottom sides of the sliding seat (31). 2) The adsorption tower assembly (4) includes a tower body (401), a hinge seat (402) is fixedly installed at the bottom of the tower body (401), the hinge seat (402) is hinged to the mounting plate (32) at the bottom of the sliding seat (31), a top cover (406) is provided at the top of the tower body (401), a magnetic block (404) is fixedly installed on one side of the middle of the tower body (401), a magnetic seat (39) is fixedly installed on the middle of one side of the sliding seat (31), and the magnetic seat (39) is magnetically connected to the magnetic block (404).
2. An ozone generator according to claim 1, characterized in that, The top outer side of the tower body (401) is provided with a fixing groove (405), and the bottom end of the top cover (406) is provided with a ball hole (408), and a fixing ball (409) is provided inside the ball hole (408).
3. An ozone generator according to claim 2, characterized in that, The top cover (406) has a sliding groove (407) on its outer side, and a sliding sleeve (410) is slidably connected to the outside of the sliding groove (407).
4. An ozone generator according to claim 3, characterized in that, A spring seat (411) is provided on the inner side of the sliding sleeve (410). A push spring (412) is fixedly installed on the top of the spring seat (411). A limit ring (413) is fixedly installed on the top of the push spring (412). The limit ring (413) is fixedly connected to the top cover (406).
5. An ozone generator according to claim 4, characterized in that, The hinge seat (402) has an air source interface (403) on one side, and the top of the top cover (406) is connected to a three-way valve (414).
6. An ozone generator according to claim 1, characterized in that, The mounting plate (32) has guide grooves (33) on both sides. Guide sliders (13) are fixedly installed at the top and bottom of both sides of the mounting groove (12). The guide groove (33) and the guide sliders (13) are slidably connected.
7. An ozone generator according to claim 6, characterized in that, The mounting groove (12) has a spring block (14) at the top of its inner side, and the sliding seat (31) has a handle groove (34) at the top. The handle groove (34) has a lock hole (35) at the top. The lock hole (35) engages with the spring block (14).
8. An ozone generator according to claim 7, characterized in that, The lock hole (35) is provided with an unlock button (37) inside. Limiting blocks (36) are fixedly installed at both ends of the lock hole (35). Limiting grooves (38) are opened at both ends of the unlock button (37). The limiting blocks (36) are slidably connected to the limiting grooves (38).
9. An ozone generator according to claim 1, characterized in that, A drying filter (15) is fixedly installed in the middle of one side of the first housing (11). The ozone production assembly (2) includes a second housing (21). A control panel (22) is fixedly installed in one side of the second housing (21). An air outlet (23) is fixedly installed on the top of the second housing (21).