Hydraulic lifting type automatic scale scraping electrochemical water treatment system
Through the combination of hydraulic lift design and spray pipe cleaning liquid, the problem of unsatisfactory cathode plate cleaning is solved, effective cleaning of cathode plates and uniform treatment of wastewater are achieved, and the efficiency of the water treatment system is improved.
Patent Information
- Application Number
- CN202422275935.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-18
- Publication Date
- 2025-07-22
- Estimated Expiration
- 2034-09-18
AI Technical Summary
The existing electrochemical water treatment device is not effective when cleaning the cathode plate, impurities are prone to re-adhesion, affecting the water treatment effect, and the wastewater treatment is uneven.
The hydraulic lifting design is adopted, and the cathode plate is moved through the hydraulic cylinder, combined with the spray pipe and scraper cleaning, the spray hole is used to spray cleaning liquid to prevent dirt from re-adhesion, and waste water is extracted through the piston box for uniform treatment.
It realizes effective cleaning of the cathode plate, prevents dirt from re-adhesion, improves the uniformity and efficiency of water treatment, and simplifies the cleaning process.
Smart Images

Figure CN223134202U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of water treatment, in particular to a hydraulic lifting type automatic scale scraping electro-chemical water treatment system. Background Technique
[0002] The methods of water treatment include physical treatment and chemical treatment. Since social production, life are closely related to water, the application scope involved in the field of water treatment is very wide, constituting a huge industrial application. In the existing electro-chemical water treatment device, the waste water that needs electro-chemical water treatment is introduced into the treatment device, the anode and cathode in the treatment device are electrified, and the harmful substances in the waste water that needs electro-chemical water treatment are electrolytically removed. During the treatment, under the action of the electric field force, they will migrate to the surface of the cathode plate, resulting in impurities mainly adhering to the cathode plate. The long-term adhesion of impurities on the surface of the cathode plate will affect the working efficiency of the cathode plate. The existing cleaning methods are mostly divided into: manual scale removal equipment, which requires opening the box body to remove scale, wasting manpower and time, and automatic scale removal equipment. The water treatment tank is cylindrical, and the scraper is driven by rotating around the axis. In the existing scale removal method, the scraper is placed in water, so that the scraper and the cathode plate are easily stuck together due to scale and cannot scrape the scale smoothly, and the failure rate is high, and it is not convenient to improve the water treatment capacity.
[0003] The publication number is: CN110844974B, which discloses a water treatment tank and an automatic scale scraping electro-chemical water treatment system. The system drives the lifting frame to move upward through hydraulic pressure, and the lifting drives the cathode plate to move. During the rising process of the cathode plate, the side surface contacts the scraper, so as to scrape the dirt on the surface of the cathode plate. The scraper is located above the water level and will not stick to the cathode plate due to scale. However, during the cleaning process, since all impurities will be scraped off by the scraper, but part of the scraped impurities will always adhere to the bottom end of the scraper. When the lifting frame drives the cathode plate to descend, the impurities attached to the bottom end of the scraper will still re-adhere to the cathode plate, resulting in an unsatisfactory cleaning effect. And during the water treatment, the waste water in the second chamber does not contact the cathode plate and the anode plate, so that the treatment effect is not as good as that in the first chamber, thus affecting the water treatment effect.
[0004] Based on this, a hydraulic lifting type automatic scale scraping electro-chemical water treatment system is now provided, which can eliminate the drawbacks of the existing device. Content of the Utility Model
[0005] The purpose of the utility model is to provide a hydraulic lifting type automatic scale scraping electro-chemical water treatment system to solve the problems of unsatisfactory cleaning effect and inconvenient uniform treatment of waste water in the background technique.
[0006] To achieve the above purpose, the utility model provides the following technical solutions:
[0007] A hydraulic lift type automatic scale scraping electro-chemical water treatment system, comprising a main box body and a cathode plate. A bottom box is provided at the bottom end of the main box body. An installation pipe is communicated and provided on one side of the bottom box. An alarm component for preventing the liquid level inside the main box body from being too high is provided inside the installation pipe. A water inlet pipe is communicated and provided on the main box body. An outlet pipe is communicated and provided at the bottom end of the bottom box. A plurality of the cathode plates are arranged in an array inside the main box body. A plurality of the cathode plates are fixedly provided at the bottom end of an installation frame. The installation frame is arranged on the output ends of two hydraulic cylinders. The hydraulic cylinders are fixedly provided at the upper ends of support plates. The support plates are fixedly provided on the main box body. Anode plates are provided on both sides of the cathode plate. The anode plates are fixedly provided inside the main box body. Scrapers are closely provided at both sides of the cathode plate inside the main box body. Spray pipes are provided below the scrapers. A plurality of spray holes are provided on the inclined surfaces of the spray pipes. The input ends of the spray pipes are respectively communicated with a shunt pipe. A conveying mechanism for conveying cleaning liquid into the shunt pipe is provided on the main box body.
[0008] On the basis of the above technical solution, the present utility model further provides the following optional technical solutions:
[0009] In an optional solution: The alarm component includes a button and a sliding plate. The button is fixedly provided at one end inside the installation pipe. The sliding plate is fixedly provided at the output end of a telescopic rod. The telescopic rod is fixedly provided at one end of the installation pipe. A pressing column is fixedly provided on one side of the sliding plate. The pressing column is coaxially arranged with the pressing end of the button. The sliding plate is slidably arranged inside the installation pipe. A return spring is provided between one side of the sliding plate and one end of the installation pipe.
[0010] In an optional solution: The conveying mechanism includes a piston box. The piston box is fixedly provided on one side of the main box body. A piston plate is slidably arranged inside the piston box. A rubber layer is provided at the upper end of the piston plate. Support rods are symmetrically provided at the bottom end of the piston plate. The support rods are fixedly provided at the upper ends of installation rods. A conveying pipe and two liquid suction pipes are respectively communicated and provided at the upper end of the piston box. The conveying pipe is communicated with the shunt pipe. Both of the liquid suction pipes are communicated with the inside of the main box body. First baffles are rotatably arranged inside the liquid suction pipes. First limiting plates are closely provided at the upper ends of the first baffles. The first limiting plates are fixedly provided inside the liquid suction pipes. A second baffle is rotatably arranged inside the conveying pipe. A second limiting plate is closely provided at the bottom end of the second baffle. The second limiting plates are fixedly provided inside the conveying pipe. Torsion springs are provided on the rotating shafts at both ends of the first baffle and the second baffle. Linkage components for driving the piston plate to slide are provided at the output ends of the hydraulic cylinders.
[0011] In an alternative embodiment: The linkage assembly includes second racks, and the two second racks are respectively fixed on the output ends of the two hydraulic cylinders. A second gear is meshed with the second rack, and the second gear is fixed on the worm rotating shaft. The second rack and the second gear are separated in the initial state. Rotating plates are rotatably provided on the rotating shafts at both ends of the worm, and the rotating plates are fixed on the main box body. A worm gear is meshed with the worm, and the worm gear is fixed on the fixed shaft. A first gear is provided on the fixed shaft, and a first rack is meshed with the first gear. The first rack is fixed at one end of the mounting rod. The fixed shaft is rotatably provided inside the rotating frame, and the rotating frame is fixed on one side of the main box body.
[0012] In an alternative embodiment: A filter screen is provided at one end of each liquid extraction pipe.
[0013] In an alternative embodiment: The bottom end inside the bottom box is inclined.
[0014] In an alternative embodiment: A mounting shaft is rotatably provided inside the bottom box, and a plurality of mixing fan blades are provided on the mounting shaft. The mounting shaft is fixed on the output end of the motor, and the motor is fixed on one side of the bottom box.
[0015] In an alternative embodiment: The mixing fan blades are composed of a plurality of mixing blades, and the mixing blades are arc-shaped.
[0016] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0017] In the present utility model, spray pipes are provided below the scraper, and the spray holes on the spray pipes are all arranged on the inclined surface of the spray pipes, so that it is convenient to clean the bottom end of the scraper and the surface of the cathode plate, preventing dirt from reattaching to the cathode plate. At the same time, the two hydraulic cylinders drive a plurality of cathode plates to move. When the scrapers on both sides of the cathode plate clean the surface of the cathode plate, the output end of the hydraulic cylinder can drive the piston plate to move through the linkage assembly, and the moving direction of the piston plate is opposite to the moving direction of the output end of the hydraulic cylinder. When the scraper cleans the cathode plate, the waste water inside the main box body is extracted into the piston box. When the hydraulic cylinder drives the cathode plate back to the initial position, the piston box conveys the waste water into the spray pipe to clean the cathode plate and the scraper. The structure of the present utility model is simple, and no additional drive is required to clean the cathode plate and the scraper. By arranging a plurality of mixing fan blades on the mounting shaft, it is convenient to uniformly treat the waste water inside the main box body and the bottom box, thereby increasing the practicability of the hydraulic lifting type automatic scale scraping electrochemical water treatment system. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 It is a structural schematic diagram of the present utility model.
[0019] Figure 2 This is a schematic diagram of the internal structure of the main box body of the present utility model.
[0020] Figure 3 This is a schematic diagram of the button installation of the present utility model.
[0021] Figure 4 This is a schematic diagram of the structure of the scraper and the spraying pipe of the present utility model.
[0022] Figure 5 This is a schematic diagram of the installation of the first baffle and the second baffle of the present utility model.
[0023] Figure 6 This is a schematic diagram of the piston plate installation of the present utility model.
[0024] Figure 7 This is a schematic diagram of the installation of the first rack and the second rack of the present utility model.
[0025] Annotation of reference numerals in the drawings: 11 main box body, 12 bottom box, 13 water inlet pipe, 14 water outlet pipe, 15 anode plate, 16 cathode plate, 17 mounting bracket, 18 hydraulic cylinder, 19 button, 20 sliding plate, 21 telescopic rod, 22 return spring, 23 mixing fan, 24 motor, 25 scraper, 26 spraying pipe, 27 piston box, 28 piston plate, 29 mounting rod, 30 liquid suction pipe, 31 first baffle, 32 delivery pipe, 33 second baffle, 34 torsion spring, 35 filter screen, 36 first rack, 37 worm gear, 38 worm, 39 second rack. Detailed implementation manners
[0026] In order to make the purpose, technical solutions and advantages of the present utility model clearer, the present utility model will be further described in detail below with reference to the drawings and embodiments.
[0027] Embodiment 1
[0028] In one embodiment, as Figures 1-7As shown in the figure, a hydraulic lift type automatic scale scraping electro-chemical water treatment system includes a main box body 11 and a cathode plate 16. A bottom box 12 is provided at the bottom end of the main box body 11. An installation pipe is communicated and provided on one side of the bottom box 12. An alarm component for preventing the liquid level inside the main box body 11 from being too high is provided inside the installation pipe. A water inlet pipe 13 is communicated and provided on the main box body 11. A water outlet pipe 14 is communicated and provided at the bottom end of the bottom box 12. A plurality of the cathode plates 16 are arranged in an array inside the main box body 11. A plurality of the cathode plates 16 are all fixedly arranged at the bottom end of an installation frame 17. The installation frame 17 is arranged on the output ends of two hydraulic cylinders 18. The hydraulic cylinders 18 are all fixedly arranged on the upper end of a support plate. The support plates are all fixedly arranged on the main box body 11. An anode plate 15 is provided on both sides of the cathode plate 16. The anode plates 15 are all fixedly arranged inside the main box body 11. Scrapers 25 are closely arranged on both sides of the cathode plate 16 inside the main box body 11. Spray pipes 26 are provided below the scrapers 25. A plurality of spray holes are provided on the inclined surfaces of the spray pipes 26. The input ends of the spray pipes 26 are all communicated with a shunt pipe. A conveying mechanism for conveying cleaning liquid into the shunt pipe is provided on the main box body 11. By means of the conveying mechanism, it is convenient to convey the cleaning liquid into the shunt pipe. When the shunt pipe conveys the cleaning liquid into a plurality of the spray pipes 26, it is convenient to clean the stains at the bottom ends of the plurality of scrapers 25;
[0029] The alarm component includes a button 19 and a sliding plate 20. The button 19 is fixedly arranged at one end inside the installation pipe. The sliding plate 20 is fixedly arranged at the output end of a telescopic rod 21. The telescopic rod 21 is fixedly arranged at one end of the installation pipe. A pressing column is fixedly arranged on one side of the sliding plate 20. The pressing column is coaxially arranged with the pressing end of the button 19. The sliding plate 20 is slidably arranged inside the installation pipe. A return spring 22 is arranged between one side of the sliding plate 20 and one end of the installation pipe. During use, when the waste water needs to be treated, the water inlet pipe 13 is communicated with the output end of an external water supply component. The water supply component conveys the waste water into the main box body 11 and the bottom box 12. As the waste water level inside the main box body 11 increases, the pressure inside the bottom box 12 increases. The sliding plate 20 slides inside the installation pipe. The upper sliding plate 20 drives the pressing column to move. When the water level inside the main box body 11 reaches the set water level, the pressing rod squeezes the pressing end of the button 19, so that the button 19 is electrically connected with an external control component, thereby enabling the external control component to issue an alarm to remind the staff. It should be noted that both the button 19 and the external control component adopt existing components, and the components are all mature, so no further description will be given here.
[0030] The conveying mechanism includes a piston box 27 which is fixedly arranged on one side of the main box body 11. A piston plate 28 is slidably arranged inside the piston box 27. A rubber layer is arranged at the upper end of the piston plate 28. Support rods are symmetrically arranged at the bottom end of the piston plate 28, and the support rods are fixedly arranged at the upper ends of the mounting rods 29. One conveying pipe 32 and two liquid suction pipes 30 are respectively communicated with the upper end of the piston box 27. The conveying pipe 32 is communicated with the shunt pipe. Both of the two liquid suction pipes 30 are communicated with the inside of the main box body 11. First baffles 31 are rotatably arranged inside the liquid suction pipes 30. First limiting plates are closely arranged at the upper ends of the first baffles 31, and the first limiting plates are fixedly arranged inside the liquid suction pipes 30. A second baffle 33 is rotatably arranged inside the conveying pipe 32. A second limiting plate is closely arranged at the bottom end of the second baffle 33, and the second limiting plate is fixedly arranged inside the conveying pipe 32. Torsion springs 34 are arranged on the rotating shafts at both ends of the first baffle 31 and the second baffle 33. The output ends of the hydraulic cylinders 18 are respectively provided with linkage components for driving the piston plate 28 to slide.
[0031] The linkage assembly includes a second rack 39. The two second racks 39 are respectively fixed on the output ends of two hydraulic cylinders 18. A second gear is meshed with the second rack 39. The second gear is fixed on the rotating shaft of a worm 38. The second rack 39 and the second gear are separated in the initial state. Rotating plates are rotatably arranged on the rotating shafts at both ends of the worm 38. The rotating plates are fixed on the main box body 11. A worm gear 37 is meshed with the worm 38. The worm gear 37 is fixed on a fixed shaft. A first gear is arranged on the fixed shaft. A first rack 36 is meshed with the first gear. The first rack 36 is fixed at one end of an installation rod 29. The fixed shaft is rotatably arranged inside a rotating frame. The rotating frame is fixed on one side of the main box body 11. When in use, when the anode plate 15 and the cathode plate 16 treat the wastewater inside the main box body 11, more dirt will adhere to the cathode plate 16. When it is necessary to treat the dirt on the cathode plate 16, the two hydraulic cylinders 18 are started. The output ends of the hydraulic cylinders 18 drive the installation frame 17 to move. The installation frame 17 drives a plurality of cathode plates 16 to move. The cathode plates 16 and the installation frame 17 can be fixedly connected by screws or in other ways. The anode plate 15 is fixedly connected to the inside of the main box body 11 by screws. When one end of the cathode plate 16 moves between the two scraping plates 25, the installation frame 17 drives the cathode plate 16 to move, so that the scraping plates 25 scrape off the dirt on the surface of the cathode plate 16, and the dirt falls to the bottom end inside the bottom box 12. At the same time, when the output end of the hydraulic cylinder 18 extends, the output end of the hydraulic cylinder 18 drives the second rack 39 to move. Since the second rack 39 is separated from the second gear in the initial state, when the second rack 39 meshes with the second gear, the second gear drives the worm 38 to rotate. The worm gear 37 meshes with the worm 38 to drive the fixed shaft to rotate. The fixed shaft drives the first gear to rotate. The first gear meshes with the first rack 36, so that the piston plate 28 is driven to slide inside the piston box 27 through the installation rod 29, and the moving direction of the piston plate 28 is opposite to that of the output end of the hydraulic cylinder 18. When the cathode plate 16 rises, the piston box 27 extracts the wastewater inside the main box body 11 through the liquid extraction pipe 30. When the surface of the cathode plate 16 is cleaned, the output end of the hydraulic cylinder 18 moves in the opposite direction. At this time, the piston plate 28 pushes the wastewater inside the piston box 27, so that the wastewater inside the piston box 27 reaches the inside of the diversion pipe. The diversion pipe conveys the wastewater to the inside of a plurality of spray pipes 26. The spray pipes 26 can wash the bottom end of the scraping plates 25 and the dirt on the surface of the cathode plate 16, so as to prevent the dirt from re-adhering to the cathode plate 16. At the same time, the first baffle 31 and the second baffle 33 can act as one-way valves when the piston plate 28 is working.
[0032] A filter screen 35 is arranged at one end of each liquid extraction pipe 30. When in use, it prevents the dirt inside the main box body 11 from entering the piston box 27.
[0033] The bottom end inside the bottom box 12 is inclined. When in use, it is convenient for the liquid and dirt to be discharged.
[0034] Example 2
[0035] The difference from Example 1 is that: an installation shaft is rotatably arranged inside the bottom box 12, several mixing blade fans 23 are arranged on the installation shaft, the installation shaft is fixedly arranged on the output end of the motor 24, and the motor 24 is fixedly arranged on one side of the bottom box 12. When in use, when it is necessary to treat the wastewater inside the main box body 11 and the bottom box 12, the motor 24 is started. The output end of the motor 24 drives the installation shaft to rotate, and the installation shaft drives several reset springs 22 to rotate. The reset springs 22 agitate the wastewater inside the bottom box 12, making it convenient to treat the wastewater inside the bottom box 12.
[0036] The mixing blade fan 23 is composed of several mixing blades, and the mixing blades are arranged in an arc shape. When in use, it is convenient to increase the mixing effect of the wastewater inside the bottom box 12.
[0037] The above embodiment discloses a hydraulic lift type automatic scale scraping electro-chemical water treatment system. When treating wastewater, the water inlet pipe 13 is connected to the output end of an external water supply component, and the water supply component conveys wastewater into the main box body 11 and the bottom box 12. As the wastewater level in the main box body 11 increases, the pressure inside the bottom box 12 increases, and the sliding plate 20 slides inside the installation pipe. The upper sliding plate 20 drives the pressing column to move. When the water level in the main box body 11 reaches the set water level, the pressing rod squeezes the pressing end of the button 19, causing the button 19 to be electrically connected to an external control component, so that the external control component issues an alarm to remind the staff. When the anode plate 15 and the cathode plate 16 treat the wastewater in the main box body 11, the motor 24 is started. The output end of the motor 24 drives the installation shaft to rotate, and the installation shaft drives several reset springs 22 to rotate. The reset springs 22 agitate the wastewater inside the bottom box 12 to facilitate the treatment of the wastewater inside the bottom box 12. During this process, a large amount of dirt will adhere to the cathode plate 16. When it is necessary to treat the dirt on the cathode plate 16, two hydraulic cylinders 18 are started. The output end of the hydraulic cylinder 18 drives the installation frame 17 to move, and the installation frame 17 drives several cathode plates 16 to move. When one end of the cathode plate 16 moves between the two scraping plates 25, the installation frame 17 drives the cathode plate 16 to move, so that the scraping plates 25 scrape off the dirt on the surface of the cathode plate 16, and the dirt falls to the bottom end inside the bottom box 12. At the same time, when the output end of the hydraulic cylinder 18 extends, the output end of the hydraulic cylinder 18 drives the second rack 39 to move. Since the second rack 39 is separated from the second gear in the initial state, when the second rack 39 meshes with the second gear, the second gear drives the worm 38 to rotate. The worm gear 37 meshes with the worm 38 to drive the fixed shaft to rotate, and the fixed shaft drives the first gear to rotate. The first gear meshes with the first rack 36, so that the piston plate 28 is driven to slide inside the piston box 27 through the installation rod 29, and the moving direction of the piston plate 28 is opposite to that of the output end of the hydraulic cylinder 18. When the cathode plate 16 rises, the piston box 27 extracts the wastewater inside the main box body 11 through the liquid suction pipe 30. When the surface of the cathode plate 16 is cleaned, the output end of the hydraulic cylinder 18 moves in the opposite direction. At this time, the piston plate 28 pushes the wastewater inside the piston box 27, so that the wastewater inside the piston box 27 reaches the inside of the shunt pipe. The shunt pipe conveys the wastewater into several spray pipes 26, and the spray pipes 26 can wash the dirt at the bottom of the scraping plates 25 and the surface of the cathode plate 16.
[0038] The above is only the specific implementation manner of the present application, but the protection scope of the present application is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present application can easily think of changes or substitutions, which should all be covered within the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.
Claims
1. A hydraulic lift type automatic scale scraping electro-chemical water treatment system, comprising a main box body (11) and a cathode plate (16). A bottom box (12) is provided at the bottom end of the main box body (11). An installation pipe is communicated and provided on one side of the bottom box (12). An alarm component for preventing the liquid level inside the main box body (11) from being too high is provided inside the installation pipe. A water inlet pipe (13) is communicated and provided on the main box body (11). A water outlet pipe (14) is communicated and provided at the bottom end of the bottom box (12). A plurality of the cathode plates (16) are arranged in an array inside the main box body (11). A plurality of the cathode plates (16) are fixedly provided at the bottom end of an installation frame (17). The installation frame (17) is arranged on the output ends of two hydraulic cylinders (18). The hydraulic cylinders (18) are fixedly provided on the upper ends of support plates. The support plates are fixedly provided on the main box body (11). An anode plate (15) is provided on both sides of the cathode plate (16). The anode plates (15) are fixedly provided inside the main box body (11). It is characterized in that, Inside the main box body (11) and on both sides of the cathode plate (16), scraping plates (25) are tightly arranged. Below the scraping plates (25), spraying pipes (26) are arranged. On the inclined surfaces of the spraying pipes (26), a number of spraying holes are arranged. The input ends of the spraying pipes (26) are all communicated with a shunt pipe. On the main box body (11), a conveying mechanism is provided for conveying cleaning liquid into the shunt pipe.
2. The hydraulic lift type automatic scale scraping electro-chemical water treatment system according to claim 1, characterized in that, The alarm component includes a button (19) and a sliding plate (20). The button (19) is fixedly arranged at one end inside the installation pipe. The sliding plate (20) is fixedly arranged at the output end of the telescopic rod (21). The telescopic rod (21) is fixedly arranged at one end of the installation pipe. On one side of the sliding plate (20), a pressing column is fixedly arranged. The pressing column is coaxially arranged with the pressing end of the button (19). The sliding plate (20) is slidably arranged inside the installation pipe. A return spring (22) is arranged between one side of the sliding plate (20) and one end of the installation pipe.
3. A hydraulic lift type automatic scale scraping electro-chemical water treatment system according to claim 1, characterized in that, The conveying mechanism includes a piston box (27). The piston box (27) is fixedly arranged on one side of the main box body (11). Inside the piston box (27), a piston plate (28) is slidably arranged. On the upper end of the piston plate (28), a rubber layer is arranged. At the bottom end of the piston plate (28), support rods are symmetrically arranged. The support rods are all fixedly arranged at the upper ends of the installation rods (29). At the upper end of the piston box (27), a conveying pipe (32) and two liquid suction pipes (30) are respectively communicated. The conveying pipe (32) is communicated with the shunt pipe. Both of the two liquid suction pipes (30) are communicated with the inside of the main box body (11). Inside the liquid suction pipes (30), first baffles (31) are rotatably arranged. On the upper end of the first baffle (31), a first limiting plate is tightly arranged. The first limiting plate is fixedly arranged inside the liquid suction pipe (30). Inside the conveying pipe (32), a second baffle (33) is rotatably arranged. On the bottom end of the second baffle (33), a second limiting plate is tightly arranged. The second limiting plate is fixedly arranged inside the conveying pipe (32). On the rotating shafts at both ends of the first baffle (31) and the second baffle (33), torsion springs (34) are arranged. On the output ends of the hydraulic cylinders (18), linkage components are arranged for driving the piston plate (28) to slide.
4. A hydraulic lift type automatic descaling electro-chemical water treatment system according to claim 3, characterized in that, The linkage components include second racks (39). The two second racks (39) are respectively fixedly arranged on the output ends of the two hydraulic cylinders (18). On the second racks (39), second gears are meshed. The second gears are fixedly arranged on the rotating shafts of the worm gears (38). The second racks (39) and the second gears are separated in the initial state. On the rotating shafts at both ends of the worm gear (38), rotating plates are rotatably arranged. The rotating plates are all fixedly arranged on the main box body (11). On the worm gear (38), a worm wheel (37) is meshed. The worm wheel (37) is fixedly arranged on a fixed shaft. On the fixed shaft, a first gear is arranged. On the first gear, a first rack (36) is meshed. The first rack (36) is fixedly arranged at one end of the installation rod (29). The fixed shaft is rotatably arranged inside the rotating frame. The rotating frame is fixedly arranged on one side of the main box body (11).
5. The hydraulic lifting type automatic scale scraping electro-chemical water treatment system according to claim 3, wherein A filter net (35) is provided at one end of each of the liquid extraction tubes (30).
6. The hydraulic lift type automatic scale scraping electro-chemical water treatment system according to claim 1, wherein The inner bottom end of the bottom box (12) is inclined.
7. A hydraulic lift type automatic scale scraping electrochemistry water treatment system according to claim 1, characterized in that, An installation shaft is rotatably provided inside the bottom box (12). A plurality of mixing blade fans (23) are provided on the installation shaft. The installation shaft is fixedly arranged at the output end of a motor (24), and the motor (24) is fixedly arranged on one side of the bottom box (12).
8. A hydraulic lift type automatic scale scraping electro-chemical water treatment system according to claim 7, characterized in that, The mixing blade fan (23) is composed of a plurality of mixing blades, and the mixing blades are arranged in an arc shape.
Citation Information
Patent Citations
A water treatment tank and an automatic scale-scraping electrochemical water treatment system
CN110844974B
Cited By
Industrial circulating water comprehensive treatment device and method based on electrochemical reaction
CN120646977A