Jet device for ozone generator
By introducing a built-in flow guide mechanism and gas filter assembly into the ozone generator jet, the problem of insufficient liquid flow rate and spray range is solved, the stability of increasing liquid flow rate and gas-liquid mixing effect is achieved, and the efficiency of the ozone treatment system is improved.
Patent Information
- Application Number
- CN202422010324.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-20
- Publication Date
- 2025-07-29
- Estimated Expiration
- 2034-08-20
AI Technical Summary
The internal configuration design of the existing jet generators is not clever enough to increase the liquid flow rate and the liquid spraying range. The gas-liquid mixing effect is unstable, affecting the water treatment and disinfection and purification effects.
The built-in flow guide mechanism and gas filter assembly design include a symmetrical conical flow guide tube and mixing blades. The liquid flow rate is increased through the conical pipe structure, and the blade rotation is used to improve the gas-liquid mixing effect during the mixing process. At the same time, the gas filter assembly filters impurities to ensure ozone purity.
The liquid flow rate and spray range are improved, the gas-liquid mixing effect is enhanced, the purity and mixing efficiency of ozone are ensured, and the water treatment and disinfection and purification effect is improved.
Smart Images

Figure CN223159118U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the technical field of ejectors, and particularly relates to an ejector for an ozone generator. Background Art
[0002] The ozone generating ejector, as an important part of the ozone treatment system, is mainly used to mix ozone gas with water flow to improve the solubility and dispersion degree of ozone in water, so as to more effectively carry out water treatment, disinfection, purification and other process procedures.
[0003] Although the existing ejectors for ozone generators also have the effect of gas-liquid mixing, the internal configuration design is not ingenious enough, unable to improve the liquid flow rate and the liquid spraying range. At the same time, with the change of the liquid flow rate, the internal gas-liquid mixing effect cannot be steadily improved, and the actual application effect is not good. To solve the above problems, there is an urgent need for an ejector for an ozone generator to solve the above problems. Summary of the Utility Model
[0004] The purpose of the utility model is to provide an ejector for an ozone generator to solve the problem that although the existing ejectors for ozone generators also have the effect of gas-liquid mixing, the internal configuration design is not ingenious enough, unable to improve the liquid flow rate and the liquid spraying range. At the same time, with the change of the liquid flow rate, the internal gas-liquid mixing effect cannot be steadily improved, and the actual application effect is not good.
[0005] To achieve the above purpose, the utility model adopts the following technical scheme: An ejector for an ozone generator, including an outer tube, a first ozone suction pipe is longitudinally and fixedly installed at the middle position of the top surface of the outer tube, a filter component is arranged inside the first ozone suction pipe, an internal diversion mechanism is arranged inside the outer tube, and threads are arranged outside both ends of the outer tube.
[0006] As a further description of the above technical scheme:
[0007] The filter component includes a mounting plate, the mounting plate is movably installed inside the first ozone suction pipe, and two telescopic pull rods are fixedly installed on the top surface of the mounting plate.
[0008] As a further description of the above technical scheme:
[0009] A filter mesh is arranged inside the mounting plate, side mounting pieces are fixedly installed on the outside of the two telescopic pull rods, and the side mounting pieces are hung on the top end of the first ozone suction pipe.
[0010] As a further description of the above technical scheme:
[0011] The built-in flow guiding mechanism includes a liquid inlet conical tube and a liquid outlet conical tube. One end of the liquid inlet conical tube is fixedly installed with the liquid outlet conical tube, and a second ozone inhalation tube is longitudinally and fixedly installed at the top of the connection between the liquid inlet conical tube and the liquid outlet conical tube.
[0012] As a further description of the above technical solution:
[0013] The second ozone inhalation tube is located inside the first ozone inhalation tube, and the volume specifications of the liquid inlet conical tube and the liquid outlet conical tube are the same.
[0014] As a further description of the above technical solution:
[0015] Built-in mixing components are arranged inside both the liquid inlet conical tube and the liquid outlet conical tube. The built-in mixing components include a mounting shaft frame, which is fixedly installed inside the liquid inlet conical tube and the liquid outlet conical tube. A rotating shaft is rotatably installed inside the mounting shaft frame, and mixing blades are fixedly installed on the outside of the rotating shaft. The mixing blades are trapezoidal.
[0016] In summary, due to the adoption of the above technical solution, the beneficial effects of the present utility model are as follows:
[0017] In the present utility model, by internally providing a built-in flow guiding mechanism, the main body of which is a symmetrical conical flow guiding tube. When the injector is in use, the liquid enters through the liquid inlet conical tube and is discharged through the liquid outlet conical tube. Due to the conical shape of the liquid inlet conical tube, as the channel area decreases, the liquid flow rate increases, and finally it is sprayed out through the large-area outlet of the liquid outlet conical tube. During this process, the peripheral ozone is inhaled into the ozone inhalation tube by the high-speed airflow and finally mixed with the liquid. During the flow of the liquid, the mixing blades will rotate under the pressure of the liquid, and as the flow rate of the introduced liquid increases, the rotation speed of the mixing blades will also increase synchronously. When the mixing blades rotate, the mixing effect of the liquid and ozone can be improved. Through this design, not only can a good acceleration effect on the introduced liquid be achieved, but also the spraying range of the released liquid can be increased. When the injector is in use, the internal mixing structure can automatically rotate, achieving a good mixing effect of gas and liquid and improving the actual application effect of the structure.
[0018] In the present utility model, by providing a filter gas component, when ozone is inhaled through the ozone inhalation tube, it can be well filtered by the filter gas component to prevent some impurities in the ozone from entering the tube, ensuring the purity of the ozone. At the same time, the filter gas component can be quickly taken out for treatment through the telescopic pull rod, which is convenient and fast to use. Description of the Drawings
[0019] Figure 1 It is a three-dimensional structural schematic diagram of an injector for an ozone generator.
[0020] Figure 2 Exploded three-dimensional structure diagram of an ejector for an ozone generator.
[0021] Figure 3 Exploded three-dimensional structure diagram of an internal flow guiding mechanism in an ejector for an ozone generator.
[0022] Figure 4 Three-dimensional structure diagram of a gas filtering component in an ejector for an ozone generator.
[0023] Figure 5 Three-dimensional structure diagram of an internal mixing component in an ejector for an ozone generator.
[0024] Legend:
[0025] 1. Outer tube; 2. First ozone suction tube; 3. Gas filtering component; 31. Side mounting piece; 32. Telescopic pull rod; 33. Gas filtering net; 34. Mounting disc; 4. Internal flow guiding mechanism; 41. Second ozone suction tube; 42. Liquid inlet conical tube; 43. Liquid outlet conical tube; 44. Internal mixing component; 441. Mixing blade; 442. Mounting shaft frame; 443. Rotating shaft. Detailed implementation manners
[0026] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the protection scope of the present invention.
[0027] Please refer to Figures 1-5 , the present invention provides a technical solution: an ejector for an ozone generator, including an outer tube 1, a first ozone suction tube 2 is longitudinally and fixedly installed at the middle position of the top surface of the outer tube 1, a gas filtering component 3 is arranged inside the first ozone suction tube 2, an internal flow guiding mechanism 4 is arranged inside the outer tube 1, and threads are arranged on the outer parts of both ends of the outer tube 1;
[0028] The gas filtering component 3 includes a mounting disc 34, the mounting disc 34 is movably installed inside the first ozone suction tube 2, two telescopic pull rods 32 are fixedly installed on the top surface of the mounting disc 34, a gas filtering net 33 is arranged inside the mounting disc 34, side mounting pieces 31 are fixedly installed on the outer parts of both telescopic pull rods 32, and the side mounting pieces 31 are hung on the top end of the first ozone suction tube 2.
[0029] The specific implementation method is as follows: when ozone is inhaled through the second ozone inhalation tube 41, it can be well filtered through the air filter assembly 3 to prevent some impurities in the ozone from entering the tube, ensuring the purity of the ozone. At the same time, the air filter assembly 3 can be quickly removed and processed through the telescopic pull rod 32;
[0030] The built-in diversion mechanism 4 includes an inlet liquid conical tube 42 and an outlet liquid conical tube 43. One end of the inlet liquid conical tube 42 is fixedly installed with the outlet liquid conical tube 43. The top of the connection between the inlet liquid conical tube 42 and the outlet liquid conical tube 43 is longitudinally fixedly installed with a second ozone inhalation tube 41. The second ozone inhalation tube 41 is located inside the first ozone inhalation tube 2. The volume specifications of the inlet liquid conical tube 42 and the outlet liquid conical tube 43 are the same;
[0031] The inside of the inlet liquid conical tube 42 and the outlet liquid conical tube 43 are both provided with a built-in mixing assembly 44. The built-in mixing assembly 44 includes a mounting shaft frame 442. The mounting shaft frame 442 is fixedly installed inside the inlet liquid conical tube 42 and the outlet liquid conical tube 43. A rotating shaft 443 is rotatably installed inside the mounting shaft frame 442. A mixing blade 441 is fixedly installed on the outside of the rotating shaft 443. The mixing blade 441 is trapezoidal;
[0032] The specific implementation method is as follows: when the ejector is in use, the liquid enters through the inlet liquid conical tube 42 and is discharged through the outlet liquid conical tube 43. Due to the conical shape of the inlet liquid conical tube 42, as the channel area decreases, the liquid flow rate increases, and finally it is ejected through the large-area outlet of the outlet liquid conical tube 43. During this process, the peripheral ozone is inhaled into the second ozone inhalation tube 41 by the high-speed air flow and finally mixed with the liquid. During the liquid flow process, the mixing blade 441 will rotate under the pressure of the liquid, and as the flow rate of the introduced liquid increases, the rotation speed of the mixing blade 441 will also increase synchronously. When the mixing blade 441 rotates, the mixing effect of the liquid and ozone can be improved.
[0033] Working principle: When the ejector is in use, the liquid enters through the liquid inlet conical tube 42 and is discharged through the liquid outlet conical tube 43. Due to the conical shape of the liquid inlet conical tube 42, as the channel area decreases, the liquid flow rate increases, and finally it is ejected through the large-area outlet of the liquid outlet conical tube 43. During this process, the ozone in the periphery is inhaled into the second ozone inhalation tube 41 by the high-speed air flow and finally mixed with the liquid. During the flow of the liquid, the mixing blade 441 will rotate under the pressure of the liquid, and as the flow rate of the introduced liquid increases, the rotation speed of the mixing blade 441 will also increase synchronously. When the mixing blade 441 rotates, it can improve the mixing effect of the liquid and ozone; when the ozone is inhaled through the second ozone inhalation tube 41, it can be filtered well through the air filtration component 3 to prevent some impurities in the ozone from entering the tube and ensure the purity of the ozone. At the same time, the air filtration component 3 can be quickly taken out for treatment through the telescopic pull rod 32.
[0034] The above is only the preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution of the present invention and its inventive concept, makes equivalent substitutions or changes, and all should be covered by the protection scope of the present invention.
Claims
1. A ejector for an ozone generator, comprising an outer tube (1), characterized in that: At the middle position of the top surface of the outer tube (1), a first ozone inhalation tube (2) is longitudinally and fixedly installed. A gas filtering assembly (3) is arranged inside the first ozone inhalation tube (2). An internal flow guiding mechanism (4) is arranged inside the outer tube (1). Threads are arranged on the outer parts of both ends of the outer tube (1).
2. The ejector for an ozone generator according to claim 1, characterized in that, The gas filtering assembly (3) includes a mounting disc (34). The mounting disc (34) is movably installed inside the first ozone inhalation tube (2). Two telescopic pull rods (32) are fixedly installed on the top surface of the mounting disc (34).
3. The ejector for an ozone generator according to claim 2, characterized in that, A gas filtering net (33) is arranged inside the mounting disc (34). Side mounting pieces (31) are fixedly installed on the outer parts of the two telescopic pull rods (32). The side mounting pieces (31) are hung on the top end of the first ozone inhalation tube (2).
4. The ejector for an ozone generator according to claim 3, characterized in that, The internal flow guiding mechanism (4) includes an inlet liquid conical tube (42) and an outlet liquid conical tube (43). One end of the inlet liquid conical tube (42) is fixedly installed with the outlet liquid conical tube (43). A second ozone inhalation tube (41) is longitudinally and fixedly installed at the top of the connection part between the inlet liquid conical tube (42) and the outlet liquid conical tube (43).
5. The ejector for an ozone generator according to claim 4, characterized in that, The second ozone inhalation tube (41) is located inside the first ozone inhalation tube (2). The volume specifications of the inlet liquid conical tube (42) and the outlet liquid conical tube (43) are the same.
6. The ejector for an ozone generator according to claim 5, characterized in that, Internal mixing assemblies (44) are arranged inside both the inlet liquid conical tube (42) and the outlet liquid conical tube (43). The internal mixing assembly (44) includes a mounting shaft frame (442). The mounting shaft frame (442) is fixedly installed inside the inlet liquid conical tube (42) and the outlet liquid conical tube (43). A rotating shaft (443) is rotatably installed inside the mounting shaft frame (442). Mixing blades (441) are fixedly installed on the outer part of the rotating shaft (443). The mixing blades (441) are trapezoidal.