An intelligent and efficient plate-type ozone generator

By adopting a combined structure of trapezoidal blocks and ventilation holes in the plate ozone generator, the problem of difficulty in cutting off the gas is solved, and effective gas control and stability and efficiency of ozone generation are achieved.

CN119873750BActive Publication Date: 2025-06-24山东瑞华环保设备有限公司
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Patent Information

Application Number
CN202510364036.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-26
Publication Date
2025-06-24
Estimated Expiration
2045-03-26

AI Technical Summary

Technical Problem

The existing plate ozone generators are difficult to cut off when introducing and exporting gas, resulting in uneven gas flow, affecting the ozone generation efficiency and use effect.

Method used

An intelligent and efficient plate ozone generator is designed, using a combined structure of trapezoidal blocks and vent holes. The opening and closing of the vent holes is controlled by pressing the inclined surface of the trapezoidal blocks to avoid gas return.

Benefits of technology

Effective control of gas is achieved, gas reflux is avoided, ozone generation efficiency and use effect are improved, and the continuity and stability of ozone production are ensured.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the technical field of ozone manufacturing, specifically an intelligent and efficient plate-type ozone generator. On both sides of the reaction chamber, there are fixed connection with gas distribution plates. Inside the reaction chamber, there are fixedly connected with four cooling boxes. On the adjacent side of every two cooling boxes, there is fixedly connected with a reaction plate. On one side of the two reaction plates, there is fixedly connected with a sealing plate. On one side of the sealing plate, there is fixedly connected with a gas guide box. Inside the gas guide box, there are formed ventilation holes which are communicated with the gas distribution plates. There are two upper and lower rows of ventilation holes. Inside each ventilation hole, there is communicated with a trapezoidal groove. Inside the trapezoidal groove, there is a trapezoidal pressing block slidingly clamped. Inside the trapezoidal groove, there is a fixed bottom plate slidingly clamped. Through the unique design, not only the problems in the prior art such as difficult gas cutting, inappropriate installation of electronic devices inside and uneven ozone concentration distribution are solved, but also the generation efficiency and use effect of ozone are improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of ozone manufacturing, and particularly to an intelligent and efficient plate-type ozone generator. Background Art

[0002] The plate-type ozone generator relies on high-voltage glow discharge between two metal electrodes to decompose diatomic oxygen in the air into monatomic oxygen, and the monatomic oxygen recombines into triatomic oxygen to generate ozone. Using a plate design, it has a large discharge area and can improve the ozone generation efficiency.

[0003] In the prior art, when introducing and discharging gases in the plate-type ozone generator, it is difficult to cut off the gas, and due to the high voltage electricity, it is not easy to install electronic devices inside. If the gas after the reaction is extracted under high pressure, a vacuum will be generated, causing the reaction plate to be concave and damaged. Due to the unevenness of gas flow, the ozone concentration distribution is often uneven, affecting the ozone generation efficiency and usage effect. Therefore, the present invention provides an intelligent and efficient plate-type ozone generator. Summary of the Invention

[0004] The purpose of the present invention is to provide an intelligent and efficient plate-type ozone generator to solve the problems raised in the above background art.

[0005] The technical solution of the present invention is: an intelligent and efficient plate-type ozone generator, including a reaction tank. Both sides of the reaction tank are fixedly connected with gas distribution plates. Four cooling boxes are fixedly connected inside the reaction tank. Reaction plates are fixedly connected to the adjacent sides of every two cooling boxes. A sealing plate is fixedly connected to one side of the two reaction plates. A gas guide box is fixedly connected to one side of the sealing plate. Ventilation holes are provided inside the gas guide box, and the ventilation holes are communicated with the gas distribution plates. There are two rows of ventilation holes, upper and lower. Each ventilation hole is internally communicated with a trapezoidal groove. A trapezoidal pressing block is slidably clamped inside the trapezoidal groove. A fixed bottom plate is slidably clamped inside the trapezoidal groove. A pressing spring is fixedly connected between the fixed bottom plate and the trapezoidal pressing block. A telescopic inner column is fixedly connected to the adjacent side of the fixed bottom plate and the trapezoidal pressing block. A telescopic outer cylinder is fixedly connected to the adjacent side of the trapezoidal pressing block and the fixed bottom plate. A telescopic outer ring is fixedly connected to the outside of the telescopic inner column. A telescopic inner ring is fixedly connected to the inside of the telescopic outer cylinder. The telescopic outer ring is slidably clamped inside the telescopic outer cylinder, and the telescopic inner ring is slidably clamped outside the telescopic inner column. Four rotating columns are rotatably connected inside the reaction tank, and the rotating columns are respectively located at both ends of the gas guide box. An inner mounting shaft is fixedly connected to the end of the fixed bottom plate away from the telescopic inner column. A synchronous connecting plate is fixedly connected to the end of the inner mounting shaft away from the fixed bottom plate. Six threads are provided on the outside of the rotating column, and the directions of adjacent two threads are opposite. Six threaded connection blocks are threadedly connected to the outside of the rotating column, and the threaded connection blocks are fixedly connected to the synchronous connecting plate. Two telescopic plates are slidably clamped inside the reaction tank. Outer tooth rings are fixedly connected to both ends of the rotating column. Two tooth rows are fixedly connected to the outside of the telescopic plate, and the outer tooth rings are respectively meshed with the tooth rows. A reset plate is fixedly connected to one end of the telescopic plate. Two reset shafts are movably clamped inside the reset plate, and the reset shafts are fixedly connected to the inside of the reaction tank. A reset spring is movably sleeved on the outside of the reset shaft. A connecting pull plate is fixedly connected to the side of the two telescopic plates away from the reset plate. A conducting handle is fixedly connected to the side of the connecting pull plate away from the telescopic plate;When in use: the air guide boxes on both sides correspond to the directions of air outlet and air inlet respectively. The inclined surface of the trapezoidal pressure block inside the air guide box in the air inlet direction faces outward, and the inclined surface of the trapezoidal pressure block inside the air guide box in the air outlet direction faces inward. When the gas squeezes the inclined surface of the trapezoidal pressure block through pressure, because the direction of the trapezoidal pressure block is fixed, the trapezoidal pressure block squeezes the pressing spring to approach the fixed bottom plate, so that the vent hole is connected and the gas passes through. On the contrary, when the gas squeezes the vertical surface of the trapezoidal pressure block, the pressure direction is parallel, so that the trapezoidal pressure block does not move, thereby blocking the vent hole, so the gas reacting inside When the injection is stopped, there will be no backflow, and similarly, there will be no backflow when the output is discharged. When all conduction and cleaning are required, the conduction handle can be pulled to make the reset plate squeeze the reset spring, the telescopic plate moves, and the outer gear ring rotates, so that the rotating column rotates. The threaded connection blocks at one end of the same air guide box move away from each other through two opposite threads, and the inner installation shafts are pulled away from each other, so that the fixed bottom plate moves up, and the telescopic outer ring is pulled through the telescopic inner column, and the telescopic inner ring is pulled upward, and the telescopic outer cylinder and the trapezoidal pressing block are pulled upward, and the trapezoidal pressing block is pulled out of the venting groove to open the venting groove. ;

[0006] Preferably, the rear side of the reaction box is fixedly connected to a positive box and a ground box, one side of the positive box is fixedly connected to a positive guide plate, one side of the ground box is fixedly connected to a ground guide plate, the positive guide plate and the ground guide plate are respectively fixedly connected to three non-adjacent sealing plates, a cooling box is fixedly connected between the positive box and the ground box, one side of the cooling box is fixedly connected to two cooling ducts, the cooling ducts are respectively connected to four cooling boxes, the front side of the reaction box is fixedly connected to a mounting base, the top of the mounting base is fixedly connected to an extrusion electric cylinder, the output end of the extrusion electric cylinder is fixedly connected to an extrusion mounting plate, the side of the extrusion mounting plate away from the extrusion electric cylinder is fixedly connected to three extrusion plug-ins, the extrusion plug-ins are slidably connected between the two air guide boxes, one side of an air distributor is fixedly connected to an air outlet cylinder, one side of the other air distributor is connected to an air injection cylinder, one side of the air injection cylinder is connected to an air inlet pipe, one end of the air injection cylinder A compression motor is fixedly connected, and the output end of the compression motor is fixedly connected to a motor roller, and two limit columns are fixedly connected inside the gas injection cylinder, and an extrusion plug is movably connected to the outer side of the limit column, and a guide ball is fixedly connected to the inner side of the extrusion plug. A corrugated groove is provided on the outer side of the motor roller, and the guide ball is clamped in the corrugated groove; when in use: the gas is injected into the interior of the gas injection cylinder through the air inlet pipe, and the motor roller is driven to rotate by the compression motor, and one end of the guide ball is pushed through the corrugated groove, and one end of the extrusion plug is pushed, so that the extrusion plug respectively enters the air pipe and compresses the gas, and the gas enters the interior of the reaction box through the inclined surface of the extrusion trapezoidal pressing block, and a closed environment is formed through the air guide box, the sealing plate and the extrusion plug plate, and a conductive reaction is carried out through the positive electrode box and the ground electrode box to convert the gas, and the extrusion plug plate is pushed to squeeze the inner sides of the two air guide boxes by starting the extrusion electric cylinder, so that the gas is discharged through the air outlet cylinder, and the cooling protection is carried out through the cooling box and the cooling duct.

[0007] The present invention provides an intelligent and efficient plate-type ozone generator through improvement, which has the following improvements and advantages compared with the prior art:

[0008] First, in the intelligent and efficient plate-type ozone generator described in the present invention, the air guide boxes on both sides correspond to the directions of air outlet and air inlet respectively. The inclined surface of the trapezoidal pressing block inside the air guide box in the air inlet direction faces outward, and the inclined surface of the trapezoidal pressing block inside the air guide box in the air outlet direction faces inward. When the gas squeezes the inclined surface of the trapezoidal pressing block by pressure, because the direction of the trapezoidal pressing block is fixed, the trapezoidal pressing block squeezes the pressing spring to approach the fixed bottom plate, so that the vent is connected and the gas passes through. On the contrary, when the gas squeezes the vertical surface of the trapezoidal pressing block, the pressure direction is parallel, so that the trapezoidal pressing block does not move, thereby blocking the vent. Therefore, the gas of the internal reaction will not flow back when the injection stops, and the gas of the outlet will not flow back either. When all conduction and cleaning are required, the conduction handle can be pulled to make the reset plate squeeze the reset spring, the telescopic plate moves, and the outer gear ring is driven to rotate, so that the rotating column rotates. The threaded connection blocks at one end of the same air guide box are separated from each other through two opposite threads, and the inner mounting shafts are pulled away from each other to move the fixed bottom plate up. The telescopic outer ring is pulled through the telescopic inner column, and the telescopic inner ring is pulled upward, and the telescopic outer cylinder and the trapezoidal pressing block are pulled upward, and the trapezoidal pressing block is pulled out of the ventilation groove to open the ventilation groove.

[0009] Second: The intelligent and efficient plate-type ozone generator described in the present invention is injected into the interior of the gas injection cylinder through the air inlet pipe, and the motor roller is driven to rotate by the compression motor, and one end of the guide ball is pushed through the corrugated groove, and one end of the extrusion plug is pushed, so that the extrusion plug enters the air inlet pipe and compresses the gas, and the gas enters the interior of the reaction box through the inclined surface of the extrusion trapezoidal pressing block, and a closed environment is formed by the air guide box, the sealing plate and the extrusion plug plate, and the conductive reaction is carried out through the positive electrode box and the ground electrode box to convert the gas, and the extrusion plug plate is pushed by the extrusion electric cylinder to squeeze the inner sides of the two air guide boxes, so that the gas is discharged through the air outlet, and the cooling protection is carried out through the cooling box and the cooling duct;

[0010] Summary: The intelligent and efficient plate-type ozone generator described in the present invention, through a unique design, not only solves the problems in the prior art that gas is difficult to cut off, electronic devices are not suitable for installation inside, and ozone concentration is unevenly distributed, but also improves the ozone generation efficiency and use effect. By utilizing vents, trapezoidal grooves, and sliding card components, effective gas control is achieved, gas backflow is avoided, and the continuity and stability of ozone generation are guaranteed. BRIEF DESCRIPTION OF THE DRAWINGS

[0011] The present invention will be further explained below in conjunction with the accompanying drawings and embodiments:

[0012] Figure 1 It is a three-dimensional structural schematic diagram of the present invention;

[0013] Figure 2It is a schematic structural diagram of the reaction chamber of the present invention;

[0014] Figure 3 It is a schematic structural diagram of the cooling box of the present invention;

[0015] Figure 4 It is a schematic structural diagram of the air guide box of the present invention;

[0016] Figure 5 It is a schematic cross-sectional view of the air guide box of the present invention;

[0017] Figure 6 It is a schematic structural diagram of the trapezoidal pressing block of the present invention;

[0018] Figure 7 It is a schematic structural diagram of the telescopic plate of the present invention;

[0019] Figure 8 It is a schematic structural diagram of the cooling box of the present invention;

[0020] Figure 9 It is a schematic structural diagram of the reaction plate of the present invention;

[0021] Figure 10 It is a schematic structural diagram of the air injection cylinder of the present invention.

[0022] Explanation of reference numerals:

[0023] 1. Reaction chamber; 2. Gas distribution plate; 3. Air injection cylinder; 4. Exhaust cylinder; 5. Cooling box; 6. Air guide box; 7. Fixed bottom plate; 8. Pressing spring; 9. Trapezoidal pressing block; 10. Telescopic inner column; 11. Telescopic outer ring; 12. Telescopic outer cylinder; 13. Telescopic inner ring; 14. Rotating column; 15. Synchronous connecting plate; 16. Threaded connecting block; 17. Inner mounting shaft; 18. Outer gear ring; 19. Telescopic plate; 20. Reset plate; 21. Reset shaft; 22. Reset spring; 23. Tooth row; 24. Connecting pull plate; 25. Conducting handle; 26. Positive electrode box; 27. Ground electrode box; 28. Positive electrode guide plate; 29. Ground electrode guide plate; 30. Cooling box; 31. Cooling conduit; 32. Sealing plate; 33. Reaction plate; 34. Mounting base; 35. Extrusion electric cylinder; 36. Extrusion mounting plate; 37. Extrusion plug; 38. Intake pipe; 39. Compression motor; 40. Motor roller; 41. Extrusion plug; 42. Guide ball; 43. Limit post. Detailed implementation manners

[0024] The present invention will be described in detail below. The technical solutions in the embodiments of the present invention are clearly and completely described. 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 creative efforts shall fall within the protection scope of the present invention.

[0025] The present invention provides an intelligent and efficient plate-type ozone generator through improvement. The technical solution of the present invention is as follows:

[0026] Such as Figures 1 - 10As shown in the figure, an intelligent and efficient plate-type ozone generator includes a reaction tank 1. On both sides of the reaction tank 1, there are fixedly connected gas distribution plates 2. Inside the reaction tank 1, there are fixedly connected four cooling boxes 5. On the adjacent sides of every two cooling boxes 5, there is fixedly connected a reaction plate 33. On one side of the two reaction plates 33, there is fixedly connected a sealing plate 32. On one side of the sealing plate 32, there is fixedly connected a gas guide box 6. Inside the gas guide box 6, there are ventilation holes. The ventilation holes are communicated with the gas distribution plates 2. There are two rows of ventilation holes, upper and lower. Each ventilation hole is internally communicated with a trapezoidal groove. Inside the trapezoidal groove, there is a sliding and clamping trapezoidal pressing block 9. Inside the trapezoidal groove, there is a sliding and clamping fixed bottom plate 7. Between the fixed bottom plate 7 and the trapezoidal pressing block 9, there is fixedly connected a pressing spring 8. On the adjacent side of the fixed bottom plate 7 and the trapezoidal pressing block 9, there is fixedly connected a telescopic inner column 10. On the adjacent side of the trapezoidal pressing block 9 and the fixed bottom plate 7, there is fixedly connected a telescopic outer cylinder 12. On the outer side of the telescopic inner column 10, there is fixedly connected a telescopic outer ring 11. On the inner side of the telescopic outer cylinder 12, there is fixedly connected a telescopic inner ring 13. The telescopic outer ring 11 is slidably clamped inside the telescopic outer cylinder 12. The telescopic inner ring 13 is slidably clamped on the outer side of the telescopic inner column 10. Inside the reaction tank 1, there are rotatably connected four rotating columns 14. The rotating columns 14 are respectively located at both ends of the gas guide box 6. At the end of the fixed bottom plate 7 away from the telescopic inner column 10, there is fixedly connected an inner mounting shaft 17. At the end of the inner mounting shaft 17 away from the fixed bottom plate 7, there is fixedly connected a synchronous connecting plate 15. On the outer side of the rotating column 14, there are six threads. The directions of the adjacent two threads are opposite. On the outer side of the rotating column 14, there are threadedly connected six threaded connection blocks 16. The threaded connection blocks 16 are fixedly connected with the synchronous connecting plate 15. Inside the reaction tank 1, there are slidably clamped two telescopic plates 19. At both ends of the rotating column 14, there are fixedly connected outer tooth rings 18. On the outer side of the telescopic plate 19, there are fixedly connected two tooth rows 23. The outer tooth rings 18 are respectively meshed with the tooth rows 23. At one end of the telescopic plate 19, there is fixedly connected a reset plate 20. Inside the reset plate 20, there are movably clamped two reset shafts 21. The reset shafts 21 are fixedly connected to the inside of the reaction tank 1. On the outer side of the reset shafts 21, there is movably sleeved a reset spring 22. On the side of the two telescopic plates 19 away from the reset plate 20, there is fixedly connected a connecting pull plate 24. On the side of the connecting pull plate 24 away from the telescopic plate 19, there is fixedly connected a conducting handle 25;During use: The air guide boxes 6 on both sides correspond to the air outlet and air inlet directions respectively. The inclined surface of the trapezoidal pressing block 9 inside the air guide box 6 in the air inlet direction faces outward, and the inclined surface of the trapezoidal pressing block 9 inside the air guide box 6 in the air outlet direction faces inward. When the gas squeezes the inclined surface of the trapezoidal pressing block 9 through pressure, since the direction of the trapezoidal pressing block 9 is fixed, the trapezoidal pressing block 9 squeezes the pressing spring 8 to approach the fixed bottom plate 7, making the ventilation hole conduct and allowing the gas to pass through. On the contrary, when the gas squeezes the vertical surface of the trapezoidal pressing block 9, the pressure direction is parallel, so the trapezoidal pressing block 9 will not move, thus blocking the ventilation hole. Therefore, the gas inside the reaction will not flow back when the injection stops, and similarly, the export will not flow back either. When all conduction and cleaning are required, the conduction handle 25 can be pulled, so that the reset plate 20 squeezes the reset spring 22, the telescopic plate 19 moves, driving the outer tooth ring 18 to rotate, making the rotating column 14 rotate. The threaded connection blocks 16 at one end of the same air guide box 6 move away from each other through two opposite threads, pulling the inner mounting shafts 17 away from each other, making the fixed bottom plate 7 move upward. The telescopic outer ring 11 is pulled through the telescopic inner column 10, the telescopic inner ring 13 is pulled upward, the telescopic outer cylinder 12 and the trapezoidal pressing block 9 are pulled upward, and the trapezoidal pressing block 9 is pulled out of the ventilation groove, opening the ventilation groove.

[0027] Further, a positive electrode box 26 and a ground electrode box 27 are fixedly connected to the rear side of the reaction box 1. A positive electrode guide plate 28 is fixedly connected to one side of the positive electrode box 26, and a ground electrode guide plate 29 is fixedly connected to one side of the ground electrode box 27. The positive electrode guide plate 28 and the ground electrode guide plate 29 are respectively fixedly connected to three non-adjacent sealing plates 32. A cooling box 30 is fixedly connected between the positive electrode box 26 and the ground electrode box 27. Two cooling conduits 31 are fixedly connected to one side of the cooling box 30. The cooling conduits 31 are respectively connected to four cooling boxes 5. An installation base 34 is fixedly connected to the front side of the reaction box 1. An extrusion electric cylinder 35 is fixedly connected to the top of the installation base 34. The output end of the extrusion electric cylinder 35 is fixedly connected to an extrusion mounting plate 36. Three extrusion plug boards 37 are fixedly connected to the side of the extrusion mounting plate 36 away from the extrusion electric cylinder 35. The extrusion plug boards 37 are slidably clamped between two air guide boxes 6. An air outlet cylinder 4 is fixedly connected to one side of one air distribution plate 2, and an air injection cylinder 3 is communicated with one side of the other air distribution plate 2. An air inlet pipe 38 is communicated with one side of the air injection cylinder 3. A compression motor 39 is fixedly connected to one end of the air injection cylinder 3. The output end of the compression motor 39 is fixedly connected to a motor roller 40. Two limiting columns 43 are fixedly connected to the inside of the air injection cylinder 3. An extrusion plug 41 is movably clamped to the outside of the limiting columns 43. A guiding ball 42 is fixedly connected to the inside of the extrusion plug 41. A corrugated groove is formed on the outside of the motor roller 40. The guiding ball 42 is clamped in the corrugated groove. When in use: Other substances are injected into the inside of the air injection cylinder 3 through the air inlet pipe 38. The compression motor 39 drives the motor roller 40 to rotate. One end of the guiding ball 42 is pushed through the corrugated groove, and one end of the extrusion plug 41 is pushed, so that the extrusion plug 41 approaches the air inlet pipe 38 and compresses the gas, and the gas enters the inside of the reaction box 1 through the inclined surface of the extrusion trapezoidal block 9. A closed environment is formed through the air guide box 6, the sealing plate 32 and the extrusion plug board 37. A conductive reaction is carried out through the positive electrode box 26 and the ground electrode box 27 to convert the gas. The extrusion electric cylinder 35 is started to push the extrusion plug board 37 to extrude the inner sides of the two air guide boxes 6, so that the gas is led out through the air outlet cylinder 4, and cooling protection is carried out through the cooling box 30 and the cooling conduits 31.

[0028] Working principle: The air guide boxes 6 on both sides correspond to the air outlet and air inlet directions respectively. The inclined surface of the trapezoidal pressing block 9 inside the air guide box 6 in the air inlet direction faces outward, and the inclined surface of the trapezoidal pressing block 9 inside the air guide box 6 in the air outlet direction faces inward. When the gas presses the inclined surface of the trapezoidal pressing block 9 through pressure, since the direction of the trapezoidal pressing block 9 is fixed, the trapezoidal pressing block 9 presses the pressing spring 8 and approaches the fixed base plate 7, making the ventilation hole conduct and allowing the gas to pass through. On the contrary, when the gas presses the vertical surface of the trapezoidal pressing block 9, the pressure direction is parallel, so the trapezoidal pressing block 9 will not move, thus blocking the ventilation hole. Therefore, the gas inside the reaction will not flow back when the injection stops, and similarly, the exported gas will not flow back either. When all need to be conducted for cleaning, the conduction handle 25 can be pulled, so that the reset plate 20 presses the reset spring 22, the telescopic plate 19 moves, drives the outer gear ring 18 to rotate, makes the rotating column 14 rotate, the threaded connection blocks 16 at one end of the same air guide box 6 move away from each other through two opposite threads, pulls the inner mounting shafts 17 away from each other, makes the fixed base plate 7 move upward, pulls the telescopic outer ring 11 through the telescopic inner column 10, pulls the telescopic inner ring 13 upward, pulls the telescopic outer cylinder 12 and the trapezoidal pressing block 9 upward, pulls the trapezoidal pressing block 9 away from the ventilation groove, opens the ventilation groove, and other gas is injected into the inside of the injection cylinder 3 through the air inlet pipe 38. The compression motor 39 drives the motor roller 40 to rotate, pushes one end of the guide ball 42 through the corrugated groove, pushes one end of the extrusion plug 41, makes the extrusion plug 41 enter the air inlet pipe 38 respectively and compresses the gas, so that the gas enters the inside of the reaction tank 1 through the inclined surface of the extrusion trapezoidal pressing block 9, forms a closed environment through the air guide box 6, the sealing plate 32 and the extrusion plug plate 37, conducts an electrical reaction through the positive electrode box 26 and the ground electrode box 27, converts the gas, starts the extrusion electric cylinder 35 to push the extrusion plug plate 37 to squeeze the inner sides of the two air guide boxes 6, makes the gas be exported through the air outlet cylinder 4, and conducts cooling protection through the cooling box 30 and the cooling conduit 31.

[0029] The above description enables those skilled in the art to implement or use the present invention. Various modifications to these embodiments will be obvious to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention will not be limited to these embodiments shown herein, but rather to the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. An intelligent and efficient plate-type ozone generator, comprising a reaction box (1), characterized in that: The reaction box (1) is fixedly connected to gas separation plates (2) on both sides, and the reaction box (1) is fixedly connected to four cooling boxes (5) inside. Each adjacent side of two cooling boxes (5) is fixedly connected to a reaction plate (33). One side of the two reaction plates (33) is fixedly connected to a sealing plate (32). One side of the sealing plate (32) is fixedly connected to an air guide box (6). The air guide box (6) is provided with air holes inside. The air holes are connected to the gas separation plates (2). The air holes have two rows, one above the other. Each air hole is connected to a trapezoidal groove inside. A trapezoidal pressing block (9) is slidably connected to the inside of the trapezoidal groove. A fixed bottom plate (7) is slidably connected to the inside of the trapezoidal groove. A pressing spring (8) is fixedly connected between the fixed base plate (7) and the trapezoidal pressure block (9); a telescopic inner column (10) is fixedly connected to the side of the fixed base plate (7) adjacent to the trapezoidal pressure block (9); a telescopic outer cylinder (12) is fixedly connected to the side of the trapezoidal pressure block (9) adjacent to the fixed base plate (7); a telescopic outer ring (11) is fixedly connected to the outer side of the telescopic inner column (10); a telescopic inner ring (13) is fixedly connected to the inner side of the telescopic outer cylinder (12); the telescopic outer ring (11) is slidably engaged with the inside of the telescopic outer cylinder (12); and the telescopic inner ring (13) is slidably engaged with the outer side of the telescopic inner column (10); The reaction box (1) is internally rotatably connected with four rotating columns (14), the rotating columns (14) are respectively located at two ends of the air guide box (6), one end of the fixed base plate (7) away from the telescopic inner column (10) is fixedly connected with an inner mounting shaft (17), and one end of the inner mounting shaft (17) away from the fixed base plate (7) is fixedly connected with a synchronous connecting plate (15), the outer side of the rotating column (14) is provided with six threads, and the directions of two adjacent threads are opposite, the outer side of the rotating column (14) is threadedly connected with six threaded connection blocks (16), and the threaded connection blocks (16) are fixedly connected to the synchronous connecting plate (15); Two telescopic plates (19) are slidably clamped inside the reaction box (1), two ends of the rotating column (14) are fixedly connected to external toothed rings (18), the outer side of the telescopic plate (19) is fixedly connected to two toothed rows (23), the external toothed rings (18) are respectively meshed with the toothed rows (23), one end of the telescopic plate (19) is fixedly connected to a reset plate (20), the inner side of the reset plate (20) is movably clamped to two reset shafts (21), the reset shaft (21) is fixedly connected to the inside of the reaction box (1), the outer side of the reset shaft (21) is movably sleeved with a reset spring (22), the two telescopic plates (19) are fixedly connected to a connecting pull plate (24) on one side away from the reset plate (20), and the connecting pull plate (24) is fixedly connected to a conducting handle (25) on one side away from the telescopic plate (19); The inclined surface of the trapezoidal pressing block (9) inside the air guide box (6) in the air inlet direction faces outwards, and the inclined surface of the trapezoidal pressing block (9) inside the air guide box (6) in the air outlet direction faces inwards.

2. According to claim 1, an intelligent and efficient plate-type ozone generator is characterized in that: The rear side of the reaction box (1) is fixedly connected to a positive electrode box (26) and a ground electrode box (27); one side of the positive electrode box (26) is fixedly connected to a positive electrode guide plate (28); one side of the ground electrode box (27) is fixedly connected to a ground electrode guide plate (29); the positive electrode guide plate (28) and the ground electrode guide plate (29) are respectively fixedly connected to three non-adjacent sealing plates (32).

3. The intelligent and efficient plate-type ozone generator according to claim 2 is characterized in that: A cooling box (30) is fixedly connected between the positive electrode box (26) and the ground electrode box (27), and two cooling ducts (31) are fixedly connected to one side of the cooling box (30), and the cooling ducts (31) are respectively connected to the four cooling boxes (5).

4. The intelligent and efficient plate-type ozone generator according to claim 3 is characterized in that: The front side of the reaction box (1) is fixedly connected to a mounting base (34), the top of the mounting base (34) is fixedly connected to an extrusion electric cylinder (35), the output end of the extrusion electric cylinder (35) is fixedly connected to an extrusion mounting plate (36), the side of the extrusion mounting plate (36) away from the extrusion electric cylinder (35) is fixedly connected to three extrusion plug plates (37), the extrusion plug plates (37) are slidably connected between two air guide boxes (6), one side of an air distribution plate (2) is fixedly connected to an air outlet cylinder (4), and one side of the other air distribution plate (2) is connected to an air injection cylinder (3).

5. The intelligent and efficient plate-type ozone generator according to claim 4 is characterized in that: One side of the gas injection cylinder (3) is connected to an air inlet pipe (38), one end of the gas injection cylinder (3) is fixedly connected to a compression motor (39), the output end of the compression motor (39) is fixedly connected to a motor roller (40), the inside of the gas injection cylinder (3) is fixedly connected to two limit columns (43), the outer sides of the limit columns (43) are movably connected to an extrusion plug (41), the inside of the extrusion plug (41) is fixedly connected to a guide ball (42), the outer side of the motor roller (40) is provided with a corrugated groove, and the guide ball (42) is engaged in the corrugated groove.

Citation Information

Patent Citations

  • High-concentration ceramic plate type oxygen generator

    CN202864912U