Sewage purification equipment based on electrolytic method

By adopting the synergistic effects of purification components, cleaning components, starting components and enhancing components in the sewage purification equipment, the problem of impurities deposited in electrolytic sewage on the electrode surface is solved, and the purification effect of electrolytic sewage and electrode reaction efficiency are improved.

CN120058064AInactive Publication Date: 2025-05-30JIANGSU OCEAN UNIV
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Patent Information

Application Number
CN202510346731.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-24
Publication Date
2025-05-30
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the existing electrolytic sewage purification technology, impurities in poultry sewage are easily physically adsorbed on the electrode surface, gradually forming thin films, hindering electron transfer and material diffusion, and reducing electrode activity and reaction efficiency.

Method used

A sewage purification equipment based on electrolysis is designed, and the purification components, cleaning components, starting components and enhancement components are used in combination. Through the synergy between rotating strips, rotating rods, down-pressing columns, scraping strips, adsorption plates and collection components, the adsorption, removal and collection of impurities are promoted to prevent impurities from depositing on the electrode surface.

Benefits of technology

It effectively improves the purification effect of electrolytic sewage, extends the service time of the equipment, reduces the frequency of manual cleaning, and improves the electrode reaction efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the field of sewage purification, in particular to sewage purification equipment based on an electrolytic process, which comprises a treatment shell, an equipment shell is fixedly connected to the bottom of the treatment shell, a lantern ring is fixedly connected to the outer side of the equipment shell, four supports are fixedly connected to the lantern ring, and an adsorption plate for adsorbing impurities in sewage is arranged in the treatment shell. An adsorption plate is arranged on the top of the adsorption column, a purification assembly used for electrolyzing sewage to preliminarily purify impurities is arranged on one side of the adsorption plate, a clearing assembly used for preventing the impurities from being accumulated on the adsorption plate is arranged on the top of the adsorption plate, and a collecting assembly used for being matched with the purification assembly is arranged on the linkage column. When the electrolytic sewage is primarily purified, impurities in the poultry sewage can be effectively filtered through cooperation of the rotating strip and the first rotating rod, the situation that the impurities are physically adsorbed and deposited on the surface of the electrode to gradually form a layer of thin film is avoided, the electrode reaction efficiency is guaranteed, and the sewage electrolysis effect is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of sewage purification, and particularly to a sewage purification device based on the electrolysis method. Background Art

[0002] Electrochemistry is a way to treat the wastewater of livestock and poultry farms. The electrolysis treatment method is a process of converting electrical energy into chemical energy to generate oxidation-reduction reactions near the electrodes in the electrolytic cell, thereby purifying the wastewater. At the present stage, when initially purifying impurities in electrolyzed sewage, organic matters and suspended matters in poultry sewage and other impurities will ionize or adsorb ions in water under the action of water, and these charged impurities are easily affected by the electrostatic attraction of the electrodes, and then approach the electrode surface and adsorb on it, gradually forming a thin film. Under the action of water flow, the impurities in poultry sewage will continuously collide and contact with the electrode surface, and some impurity particles will deposit on the electrode surface due to physical adsorption. Over time, a thin film will gradually form, thereby hindering electron transfer and mass diffusion, reducing the activity and reaction efficiency of the electrodes, and resulting in a poor electrolysis effect. Summary of the Invention

[0003] In order to overcome the deficiencies of the prior art, the present invention provides a sewage purification device based on the electrolysis method.

[0004] To solve the above technical problems, the present invention provides the following technical solutions: It includes a processing shell, the bottom of the processing shell is fixedly connected with an equipment shell, the outside of the equipment shell is fixedly connected with a collar, four supports are fixedly connected to the collar, the bottom of the processing shell is fixedly connected with a top plate, an adsorption plate for adsorbing impurities in sewage is arranged inside the processing shell, a purification component for electrolyzing sewage to initially purify impurities is arranged on one side of the adsorption plate, a rotating bar and a first rotating rod are arranged inside the purification component, and the cooperation of the rotating bar and the first rotating rod can promote the adsorption speed of impurities in sewage. A cleaning component for preventing impurities from accumulating on the adsorption plate is arranged on the top of the adsorption plate. A pressing column and a scraping bar are arranged inside the cleaning component, and the cooperation of the pressing column and the scraping bar can effectively scrape off the impurities accumulated on the adsorption plate. A linkage column is arranged inside the purification component, and a collection component for cooperating with the purification component is arranged on the linkage column. A storage shell and a blocking plate are arranged inside the collection component, and the cooperation of the storage shell and the blocking plate can collect the scraped impurities;

[0005] Inside the purification component, there is a bearing column. One end of the bearing column is fixedly connected to the inner wall of the processing shell, and the other end of the bearing column is fixedly connected to a bearing plate. The bearing plate is L-shaped. There is a bearing on the top of the bearing plate. The inner ring of the bearing on the bearing plate is connected to a linkage column. A rotating column is movably connected to the bearing plate. The two ends of the rotating column are respectively fixedly connected to a rotating bar and a second rotating rod. The end of the second rotating rod away from the rotating column is movably connected to a second connecting column. A translation block is fixedly connected to the second connecting column. One end of the bearing plate away from the linkage column is fixedly connected to a rotating shell. There is a bearing on the rotating shell. The inner ring of the bearing on the rotating shell is fixedly connected to a first single-headed gear column. One end of the first single-headed gear column close to the inside of the processing shell is fixedly connected to a first rotating rod. The end of the first rotating rod away from the first single-headed gear column is fixedly connected to a first connecting column. One end of the first connecting column is fixedly connected to a groove plate. The translation block is U-shaped, and the end of the translation block away from the second connecting column is inserted into the groove plate. One end of the linkage column corresponding to the rotating bar is fixedly connected to a limiting shell. A lifting column is inserted into the limiting shell. The bottom of the lifting column is fixedly connected to a rotating block. The rotating block is composed of a special-shaped block and a cylinder. The cylindrical part of the rotating block is movably connected to the rotating bar. A card slot for card connection of a card strip is provided at the end of the groove plate away from the second connecting column. The card strip is card-connected in the card slot of the groove plate. The end of the card strip away from the groove plate is fixedly connected to an adsorption plate. There are several round holes for filtering impurities on the adsorption plate;

[0006] Inside the cleaning component, there is a rotating column. There is a bearing on the adsorption plate. The rotating column is fixedly connected to the inner ring of the bearing on the adsorption plate. A rotating strip is fixedly connected to the rotating column. There are several telescopic cylinders on the rotating strip. And there is a pressing column inside each telescopic cylinder. A spring is sleeved on each pressing column. The two ends of each spring are respectively fixedly connected to the top inner wall of the corresponding telescopic cylinder and the top of a scraping strip. There are two scraping strips in total, and each scraping strip is in contact with the top of the adsorption plate. An enhancing component for improving the efficiency of the starting component is provided on the first connecting column;

[0007] The reinforcing component is provided with a positioning column inside the reinforcing component, the positioning column is fixedly connected to the first connecting column, and the end of the positioning column away from the first connecting column is fixedly connected to the positioning cylinder, and a stretching column is provided inside the positioning cylinder, the stretching column consists of a circular ring and a cylinder, the circular ring part of the stretching column is movably connected to the second connecting column, and the cylindrical part of the stretching column is sleeved with a tension spring, and the two ends of the tension spring are respectively fixedly connected to the limiting ring and the inner wall of the positioning cylinder, and the limiting ring is fixedly connected to the cylindrical part of the stretching column, and the translation block is provided with a starting component for starting the cleaning component, the top of the translation block is fixedly connected to a pressure plate, and the end of the pressure plate away from the translation block is fixedly connected to a receiving column, and the starting column is movably connected to the receiving column, the winding column consists of a long strip and a C-shaped block, and the C-shaped block of the starting column is fixedly connected to the winding column, and the top of the rotating column is correspondingly fixedly connected to two baffles, and a pull rope is provided in the middle of the two baffles, the pull rope is wound around the rotating column, and the other end of the pull rope is fixedly connected to the winding column.

[0008] Preferably, through the coordinated use of the purification component, the cleaning component, the starting component and the enhancement component, when the sewage enters from the top plate, the first single-headed gear column rotates, and the first single-headed gear column drives the first rotating rod to rotate when rotating, and the first rotating rod drives the first connecting column to rotate when rotating, and the first connecting column drives the adsorption plate to rotate through the groove plate when rotating, and then the adsorption plate filters the sewage in the treatment shell when rotating, and the first connecting column drives the tension spring to stretch when rotating, and then the positioning column moves in the direction away from the stretching column, and then the groove plate moves in the direction away from the translation block, and when the groove plate moves, the rotating column moves in the direction away from the receiving column, and then the pull rope on the rotating column begins to stretch under the influence of the winding column, and then the rotating column begins to rotate under the action of the pull rope, and the rotating column drives the rotating bar to fit and adsorb when rotating. When the first rotating rod rotates toward the second rotating rod, the stretched tension spring rebounds and drives the stretching column to move in the direction of the positioning column, and then the stretching column drives the pressure plate on the translation block to move when it moves, and the pressure plate drives the starting column to move in the direction of the rotating column when it moves, and then the stretched pull rope rebounds and resets, and the pull rope drives the rotating column to rotate in the opposite direction while resetting, and then the first rotating rod drives the second rotating rod to rotate when it rotates, and the second rotating rod drives the rotating bar to rotate when it rotates, and the first connecting column drives the rotating block to rotate in the direction of the first rotating rod when it rotates, and then the rotating block drives the lifting column to move toward the inside of the limit shell when it rotates.

[0009] As a preferred technical solution of the present invention, a positioning strip is provided inside the collection assembly. The linkage column is fixedly connected to the positioning strip, and the positioning strip corresponds to the position of the limiting shell. A storage shell is fixedly connected to the bottom of the positioning strip. A cavity for collecting impurities is provided inside the storage shell. Two windows for placing the blocking plates are provided on the cavity of the storage shell. Two blocking plates are shared, and each blocking plate is V-shaped. A pressure-bearing column is fixedly connected to each blocking plate. The two pressure-bearing columns are correspondingly movably connected to the windows of the storage shell. A number of small round holes for filtering sewage are provided on the storage shell. The window of the storage shell is semi-circular, and the two blocking plates are correspondingly distributed. A machine shell is fixedly connected to the outside of the treatment shell. A servo motor is provided inside the machine shell. The position of the treatment shell corresponding to the machine shell is movably connected to one end of the first single-headed gear column away from the first rotating rod. The output shaft of the servo motor is fixedly connected to the first single-headed gear column. A second single-headed gear column is provided inside the rotating shell. The second single-headed gear column is movably connected to the rotating shell, and the second single-headed gear column meshes with the first single-headed gear column. A trigger strip is fixedly connected to the bottom of the second single-headed gear column. The trigger strip is composed of a ring and a semi-circular block;

[0010] An intermittent component for linkage is provided inside the equipment shell. An activity column is provided on the intermittent component. The bottom of the activity column is movably connected to the bottom end of the inner wall of the equipment shell. A rotating gear is fixedly connected to the activity column. A turntable is provided at the bottom of the rotating gear. The turntable is fixedly connected to the activity column, and a number of corresponding stirring blades are fixedly connected to the turntable. Each stirring blade is composed of a cylinder and an inclined long piece, and the tooth blocks on the rotating gear correspond to the semi-circular block part of the trigger strip.

[0011] Preferably, by the combined use of the collection component and the intermittent component, the servo motor is started. The servo motor drives the first single-headed gear column to rotate. When the first single-headed gear column rotates, it drives the engaged second single-headed gear column to rotate. When the second single-headed gear column rotates, it drives the trigger bar to rotate. When the trigger bar rotates to a position corresponding to the rotating gear, the semi-circular block on the trigger bar drives the rotating gear to rotate. When the rotating gear rotates, it drives the movable column to rotate. Further, when the movable column rotates, it drives the turntable to rotate. When the turntable rotates, it drives the stirring blades on the turntable to rotate. When the stirring blades rotate, they stir the sewage in the equipment shell. When the rotating block rotates, it drives the limiting shell to rotate. When the limiting shell rotates, it drives the linkage column to rotate. When the linkage column rotates, it drives the positioning bar to rotate towards the adsorption plate. When the positioning bar rotates towards the adsorption plate, the blocking plate at one end close to the adsorption plate rotates. Further, the corresponding blocking plate rotates to form a gap to collect the impurities scraped off the adsorption plate. When the positioning bar rotates away from the adsorption plate, the blocking plate away from the adsorption plate rotates to form a gap to collect the impurities, and one of the blocking plates close to the adsorption plate is reset under the influence of the impact force. Further, the blocking plate close to the adsorption plate rotates so that the bottom of the blocking plate fits with the window on the storage shell. Further, the gap formed by the blocking plate and the storage shell is closed.

[0012] Compared with the prior art, the beneficial effects that the present invention can achieve are:

[0013] 1. By the combined use of the purification component and the cleaning component, when initially purifying the electrolyzed sewage, through the cooperation of the rotating bar and the first rotating rod, the impurities in the poultry sewage can be effectively filtered, avoiding the situation that impurities are physically adsorbed and deposited on the electrode surface to gradually form a film, ensuring the electrode reaction efficiency and improving the effect of electrolyzing sewage.

[0014] 2. By the combined use of the cleaning component and the starting component, when initially purifying the electrolyzed sewage, through the cooperation of the pressing column and the scraping bar, the impurities accumulated on the adsorption plate can be effectively scraped off, avoiding the accumulation of impurities, increasing the service life of the equipment, and reducing the frequency of manual cleaning.

[0015] 3. By the combined use of the purification component, the cleaning component and the collection component, when initially purifying the electrolyzed sewage, through the cooperation of the adsorption plate, the scraping bar and the storage shell, the impurities can be collected while filtering the impurities, improving the efficiency of electrolyzing sewage. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 It is a schematic structural diagram of the equipment shell of the present invention;

[0017] Figure 2 It is a schematic structural diagram of the adsorption plate of the present invention;

[0018] Figure 3is a schematic diagram of the second rotating rod structure of the present invention;

[0019] Figure 4 It is a schematic diagram of the structure of the second single-head gear column of the present invention;

[0020] Figure 5 It is a schematic diagram of the rotating shell structure of the present invention;

[0021] Figure 6 It is a schematic diagram of the limiting shell structure of the present invention;

[0022] Figure 7 It is a schematic diagram of the rotating bar structure of the present invention;

[0023] Figure 8 It is a schematic diagram of the pressure plate structure of the present invention;

[0024] Figure 9 It is a schematic diagram of the pull rope structure of the present invention;

[0025] Figure 10 It is a schematic diagram of the storage shell structure of the present invention;

[0026] Figure 11 It is a schematic diagram of the structure of the blocking plate of the present invention;

[0027] Figure 12 It is a schematic diagram of the stirring blade structure of the present invention.

[0028] Among them: 1. Processing shell; 2. Equipment shell; 3. Ring; 4. Support; 5. Casing; 6. Top plate; 7. Bearing column; 8. Bearing plate; 9. Rotating column; 10. Rotating bar; 11. Rotating block; 12. Limiting shell; 13. Lifting column; 14. Linkage column; 15. Rotating shell; 16. First single-head gear column; 17. First rotating rod; 18. Second rotating rod; 19. First connecting column; 20. Positioning column; 21. Stretching column; 22. Limiting ring; 23. Tension spring; 24. Positioning cylinder; 25. Second connecting column; 26. Translation block; 27. Groove plate; 28. Card strip; 29. ​​Adsorption plate; 30. Pressure plate; 31. Receiving column; 32. Starting column; 33. Winding column; 34. Rotating column; 35. Baffle; 36. Pull rope; 37. Rotating bar; 38. Telescopic cylinder; 39. Pressing column; 40. Spring; 41. Scraping bar; 42. Storage shell; 43. Pressure column; 44. Blocking plate; 45. Positioning bar; 46. Rotating gear; 47. Turntable; 48. Agitator; 49. Second single-head gear column; 50. Trigger bar; 51. Servo motor; 52. Movable column. DETAILED DESCRIPTION

[0029] In order to make the technical means, creative features, achieved purposes and effects realized by the present invention easy to understand, the present invention will be further described below in conjunction with specific embodiments. However, the following embodiments are only the preferred embodiments of the present invention, not all of them. Based on the embodiments in the implementation manners, other embodiments obtained by those skilled in the art without creative efforts all belong to the protection scope of the present invention. The experimental methods in the following embodiments are all conventional methods unless otherwise specified, and the materials, reagents, etc. used in the following embodiments can all be obtained from commercial channels unless otherwise specified.

[0030] Embodiment: As Figure 1 , Figure 2 , Figure 4 , Figure 6 , Figure 7 , Figure 8 , Figure 9 , Figure 10 , Figure 11 and Figure 12 shown, a sewage purification device based on the electrolysis method includes a treatment shell 1. A device shell 2 is fixedly connected to the bottom of the treatment shell 1. A collar 3 is fixedly connected to the outside of the device shell 2. Four supports 4 are fixedly connected to the collar 3. A top plate 6 is fixedly connected to the bottom of the treatment shell 1. An adsorption plate 29 for adsorbing impurities in sewage is provided inside the treatment shell 1. A purification component for electrolyzing sewage to preliminarily purify impurities is provided on one side of the adsorption plate 29. A rotating bar 10 and a first rotating rod 17 are provided inside the purification component. The cooperation of the rotating bar 10 and the first rotating rod 17 can promote the adsorption speed of impurities in sewage. A cleaning component for preventing impurities from accumulating on the adsorption plate 29 is provided on the top of the adsorption plate 29. A pressing column 39 and a scraping bar 41 are provided inside the cleaning component. The cooperation of the pressing column 39 and the scraping bar 41 can effectively scrape off the impurities accumulated on the adsorption plate 29. A linkage column 14 is provided inside the purification component. A collection component for cooperating with the purification component is provided on the linkage column 14. A storage shell 42 and a blocking plate 44 are provided inside the collection component. The cooperation of the storage shell 42 and the blocking plate 44 can collect the scraped impurities;

[0031] When preliminarily purifying electrolyzed sewage by adsorbing impurities in the sewage through the adsorption plate 29 inside the treatment shell, the sewage enters the inside of the treatment shell 1 from the upper inlet of the treatment device. The rotating bar 10 and the first rotating rod 17 rotate. This rotational movement promotes the adsorption speed of impurities in the sewage, making it easier for the impurities to adhere to the adsorption plate, effectively filtering the impurities in the poultry sewage, avoiding the situation where impurities are physically adsorbed and deposited on the electrode surface to gradually form a thin film, ensuring the electrode reaction efficiency, and improving the effect of electrolyzing sewage.

[0032] As Figure 1 , Figure 3 , Figure 6 andFigure 7 As shown, a bearing column 7 is provided inside the purification component. One end of the bearing column 7 is fixedly connected to the inner wall of the processing shell 1, and the other end of the bearing column 7 is fixedly connected to a bearing plate 8. The bearing plate 8 is L-shaped. A bearing is provided on the top of the bearing plate 8. The inner ring of the bearing of the bearing plate 8 is connected to a linkage column 14. A rotating column 9 is movably connected to the bearing plate 8. Rotating bars 10 and a second rotating rod 18 are respectively and fixedly connected to both ends of the rotating column 9. The end of the second rotating rod 18 away from the rotating column 9 is movably connected to a second connecting column 25. A translation block 26 is fixedly connected to the second connecting column 25. A rotating shell 15 is fixedly connected to the end of the bearing plate 8 away from the linkage column 14. A bearing is provided on the rotating shell 15. The inner ring of the bearing on the rotating shell 15 is fixedly connected to a first single-headed gear column 16. A first rotating rod 17 is fixedly connected to the end of the first single-headed gear column 16 close to the inside of the processing shell 1. A first connecting column 19 is fixedly connected to the end of the first rotating rod 17 away from the first single-headed gear column 16. A groove plate 27 is fixedly connected to one end of the first connecting column 19. The translation block 26 is U-shaped, and the end of the translation block 26 away from the second connecting column 25 is inserted into the groove plate 27. A limiting shell 12 is fixedly connected to the end of the linkage column 14 corresponding to the rotating bar 10. A lifting column 13 is inserted into the limiting shell 12. A rotating block 11 is fixedly connected to the bottom of the lifting column 13. The rotating block 11 is composed of a special-shaped block and a cylinder. The cylindrical part of the rotating block 11 is movably connected to the rotating bar 10. A card slot for a card strip 28 to be snapped into is provided at the end of the groove plate 27 away from the second connecting column 25. The card strip 28 is snapped into the card slot of the groove plate 27. An adsorption plate 29 is fixedly connected to the end of the card strip 28 away from the groove plate 27. A number of round holes for filtering impurities are provided on the adsorption plate 29.

[0033] When the sewage enters from the top plate 6, the first single-headed gear column 16 rotates. When the first single-headed gear column 16 rotates, it drives the first rotating rod 17 to rotate. When the first rotating rod 17 rotates, it drives the first connecting column 19 to rotate. When the first connecting column 19 rotates, it drives the adsorption plate 29 to rotate through the groove plate 27. Thus, when the adsorption plate 29 rotates, it filters the sewage in the processing shell 1. When the first connecting column 19 rotates, it drives the tension spring 23 to stretch. Thus, the positioning column 20 moves in a direction away from the stretching column 21. Thus, the groove plate 27 moves in a direction away from the translation block 26. Thus, when the first rotating rod 17 rotates, it drives the second rotating rod 18 to rotate. When the second rotating rod 18 rotates, it drives the rotating bar 10 to rotate. When the first connecting column 19 rotates, it drives the rotating block 11 to rotate in the direction of the first rotating rod 17. Thus, when the rotating block 11 rotates, it drives the lifting column 13 to move into the limiting shell 12, which can effectively accelerate the speed of filtering impurities in the poultry sewage.

[0034] As Figure 2 、 Figure 8 and Figure 9As shown, a rotating column 34 is provided inside the cleaning component. A bearing is provided on the adsorption plate 29. The rotating column 34 is fixedly connected to the inner ring of the bearing on the adsorption plate 29. A rotating bar 37 is fixedly connected to the rotating column 34. A number of telescopic cylinders 38 are provided on the rotating bar 37. And a pressing column 39 is provided inside each telescopic cylinder 38. A spring 40 is sleeved on each pressing column 39. Two ends of each spring 40 are respectively fixedly connected to the top inner wall of the corresponding telescopic cylinder 38 and the top of a scraping bar 41. There are two scraping bars 41 in total, and each scraping bar 41 is in contact with the top of the adsorption plate 29. An enhancing component for improving the efficiency of the starting component is provided on the first connecting column 19;

[0035] When the groove plate 27 moves and the rotating column 34 moves away from the receiving column 31, the pulling rope 36 on the rotating column 34 starts to stretch under the influence of the winding column 33. Then the rotating column 34 starts to rotate under the action of the pulling rope 36. When the rotating column 34 rotates, it drives the rotating bar 37 to rotate along the surface of the adsorption plate 29. Then the scraping bar 41 at the lower end of the adsorption plate 29 scrapes off the impurities attached to the surface of the adsorption plate 29. When the scraping bar 41 is worn, the compressed spring 40 rebounds to drive the scraping bar 41 to always be in contact with the surface of the adsorption plate 29, which can remove the impurities on the surface of the adsorption plate 29.

[0036] As Figure 3 、 Figure 7 、 Figure 8 And Figure 9 As shown, a positioning column 20 is provided inside the enhancing component. The positioning column 20 is fixedly connected to the first connecting column 19. One end of the positioning column 20 away from the first connecting column 19 is fixedly connected to a positioning cylinder 24. A stretching column 21 is provided inside the positioning cylinder 24. The stretching column 21 is composed of a ring and a cylinder. The ring part of the stretching column 21 is movably connected to the second connecting column 25. A tension spring 23 is sleeved on the cylinder part of the stretching column 21. Two ends of the tension spring 23 are respectively fixedly connected to a limiting ring 22 and the inner wall of the positioning cylinder 24, and the limiting ring 22 is fixedly connected to the cylinder part of the stretching column 21. A starting component for starting the cleaning component is provided on the translation block 26. A bearing plate 30 is fixedly connected to the top of the translation block 26. One end of the bearing plate 30 away from the translation block 26 is fixedly connected to a receiving column 31. A starting column 32 is movably connected to the receiving column 31. The winding column 33 is composed of a long strip and a C-shaped block. The C-shaped block of the starting column 32 is fixedly connected to the winding column 33. Two baffles 35 are correspondingly fixedly connected to the top of the rotating column 34, and a pulling rope 36 is provided between the two baffles 35. The pulling rope 36 is wound around the rotating column 34, and the other end of the pulling rope 36 is fixedly connected to the winding column 33;

[0037] When the first rotating rod 17 rotates towards the second rotating rod 18, the stretched tension spring 23 rebounds to drive the stretching column 21 to move towards the positioning column 20. Furthermore, when the stretching column 21 moves, it drives the bearing plate 30 on the translation block 26 to move. When the bearing plate 30 moves, it drives the starting column 32 to move towards the rotating column 34. Furthermore, the stretched pulling rope 36 rebounds and resets. While the pulling rope 36 resets, it drives the rotating column 34 to rotate in the opposite direction, which can effectively enhance the strength of removing impurities on the surface of the adsorption plate 29.

[0038] As Figure 6 , Figure 7 , Figure 10 and Figure 11 shown, a positioning strip 45 is provided inside the collection assembly. The linkage column 14 is fixedly connected to the positioning strip 45, and the positioning strip 45 corresponds to the position of the limit shell 12. A storage shell 42 is fixedly connected to the bottom of the positioning strip 45. A cavity for collecting impurities is provided inside the storage shell 42. Two windows for placing the blocking plates 44 are provided on the cavity of the storage shell 42. The two blocking plates 44 are shared, and each blocking plate 44 is V-shaped. A pressure-bearing column 43 is fixedly connected to each blocking plate 44. The two pressure-bearing columns 43 are correspondingly movably connected to the windows of the storage shell 42. A number of small round holes for filtering sewage are provided on the storage shell 42. The window of the storage shell 42 is semi-circular, and the two blocking plates 44 are correspondingly distributed. A machine shell 5 is fixedly connected to the outside of the processing shell 1. A servo motor 51 is provided inside the machine shell 5. The position of the processing shell 1 corresponding to the machine shell 5 is movably connected to the end of the first single-headed gear column 16 away from the first rotating rod 17. The output shaft of the servo motor 51 is fixedly connected to the first single-headed gear column 16. A second single-headed gear column 49 is provided inside the rotating shell 15. The second single-headed gear column 49 is movably connected to the rotating shell 15, and the second single-headed gear column 49 meshes with the first single-headed gear column 16. A trigger strip 50 is fixedly connected to the bottom of the second single-headed gear column 49. The trigger strip 50 is composed of a ring and a semi-circular block;

[0039] When the rotating block 11 rotates, the rotating block 11 drives the limit shell 12 to rotate. When the limit shell 12 rotates, it drives the linkage column 14 to rotate. When the linkage column 14 rotates, it drives the positioning strip 45 to rotate towards the adsorption plate 29. When the positioning strip 45 rotates towards the adsorption plate 29, the blocking plate 44 at one end close to the adsorption plate 29 rotates. Then, the corresponding blocking plate 44 rotates to form a gap to collect the impurities scraped off the adsorption plate 29. When the positioning strip 45 rotates away from the adsorption plate 29, the blocking plate 44 away from the adsorption plate 29 rotates to form a gap to collect the impurities, and one blocking plate 44 close to the adsorption plate 29 is reset under the influence of the impact force. Then, the blocking plate 44 close to the adsorption plate 29 rotates so that the bottom of the blocking plate 44 fits the window on the storage shell 42. Then, the gap formed by the blocking plate 44 and the storage shell 42 is closed, and the scraped impurities can be collected.

[0040] As Figure 1 、 Figure 3 、 Figure 4 、 Figure 5 、 Figure 7 and Figure 12 shown, an intermittent component for linkage is provided inside the equipment shell 2. An activity column 52 is provided on the intermittent component. The bottom of the activity column 52 is movably connected to the bottom end of the inner wall of the equipment shell 2. A rotating gear 46 is fixedly connected to the activity column 52. A turntable 47 is provided at the bottom of the rotating gear 46. The turntable 47 is fixedly connected to the activity column 52, and a number of corresponding stirring blades 48 are fixedly connected to the turntable 47. Each stirring blade 48 is composed of a cylinder and an inclined long piece, and the tooth blocks on the rotating gear 46 correspond to the semi-circular block part of the trigger strip 50;

[0041] When purifying impurities, the servo motor 51 needs to be started. The servo motor 51 drives the first single-headed gear column 16 to rotate. When the first single-headed gear column 16 rotates, it drives the engaged second single-headed gear column 49 to rotate. When the second single-headed gear column 49 rotates, it drives the trigger strip 50 to rotate. When the trigger strip 50 rotates to a position corresponding to the rotating gear 46, the semi-circular block on the trigger strip 50 drives the rotating gear 46 to rotate. When the rotating gear 46 rotates, it drives the activity column 52 to rotate. Then, when the activity column 52 rotates, it drives the turntable 47 to rotate. When the turntable 47 rotates, it drives the stirring blades 48 on the turntable 48 to rotate. When the stirring blades 48 rotate, they stir the sewage in the equipment shell 2. When the stirring blades 48 rotate, they will fully stir the sewage in the equipment shell 1, making the impurities in the sewage more evenly distributed. The continuous stirring action can prevent heavier impurities from settling at the bottom of the equipment, improve the purification efficiency, and contribute to the process of impurity adsorption and filtration.

[0042] Working principle:

[0043] First step, when the sewage enters from the top plate 6, start the servo motor 51. The servo motor 51 drives the first single-headed gear column 16 to rotate. Then, the first single-headed gear column 16 rotates, and when it rotates, it drives the first rotating rod 17 to rotate. When the first rotating rod 17 rotates, it drives the first connecting column 19 to rotate. When the first connecting column 19 rotates, it drives the adsorption plate 29 to rotate through the groove plate 27. Then, when the adsorption plate 29 rotates, it filters the sewage in the treatment shell 1. When the first connecting column 19 rotates, it drives the tension spring 23 to stretch. Then, the positioning column 20 moves away from the stretching column 21, and then the groove plate 27 moves away from the translation block 26. When the groove plate 27 moves, the rotating column 34 moves away from the receiving column 31. Then, the pull rope 36 on the rotating column 34 starts to stretch under the influence of the winding column 33;

[0044] Second step, the pull rope 36 on the rotating column 34 starts to stretch under the influence of the winding column 33. The rotating column 34 starts to rotate under the action of the pull rope 36. When the rotating column 34 rotates, it drives the rotating strip 37 to rotate along the surface of the adsorption plate 29. Then, the scraping strip 41 at the lower end of the adsorption plate 29 scrapes off the impurities attached to the surface of the adsorption plate 29. When the scraping strip 41 is worn, the compressed spring 40 rebounds to drive the scraping strip 41 to always fit the surface of the adsorption plate 29. Then, when the first rotating rod 17 rotates towards the second rotating rod 18, the stretched tension spring 23 rebounds to drive the stretching column 21 to move towards the positioning column 20. Then, when the stretching column 21 moves, it drives the bearing plate 30 on the translation block 26 to move. When the bearing plate 30 moves, it drives the starting column 32 to move towards the rotating column 34. Then, the stretched pull rope 36 rebounds and resets;

[0045] Third step, and through the rebound and reset of the stretched pull rope 36, when the pull rope 36 resets, it drives the rotating column 34 to rotate in the opposite direction. Then, when the first rotating rod 17 rotates, it drives the second rotating rod 18 to rotate. When the second rotating rod 18 rotates, it drives the rotating bar 10 to rotate. When the first connecting column 19 rotates, it drives the rotating block 11 to rotate towards the first rotating rod 17. Then, when the rotating block 11 rotates, it drives the lifting column 13 to move inside the limit shell 12. The first single-headed gear column 16 rotates to drive the engaged second single-headed gear column 49 to rotate. When the second single-headed gear column 49 rotates, it drives the trigger bar 50 to rotate. When the trigger bar 50 rotates to the position corresponding to the rotating gear 46, the semi-circular block on the trigger bar 50 drives the rotating gear 46 to rotate. When the rotating gear 46 rotates, it drives the movable column 52 to rotate. Then, when the movable column 52 rotates, it drives the turntable 47 to rotate. When the turntable 47 rotates, it drives the stirring blades 48 on the turntable 47 to rotate. When the stirring blades 48 rotate, they stir the sewage in the equipment shell 2;

[0046] Fourthly, when the rotating block 11 rotates, the rotating block 11 drives the limiting shell 12 to rotate. When the limiting shell 12 rotates, it drives the linkage column 14 to rotate. When the linkage column 14 rotates, it drives the positioning strip 45 to rotate towards the adsorption plate 29. When the positioning strip 45 rotates towards the adsorption plate 29, the blocking plate 44 at one end close to the adsorption plate 29 rotates. Then, the corresponding blocking plate 44 rotates to form a gap to collect the impurities scraped from the adsorption plate 29. When the positioning strip 45 rotates away from the adsorption plate 29, the blocking plate 44 away from the adsorption plate 29 rotates to form a gap to collect the impurities, and one blocking plate 44 close to the adsorption plate 29 is reset under the influence of the impact force. Then, the blocking plate 44 close to the adsorption plate 29 rotates so that the bottom of the blocking plate 44 fits with the window on the storage shell 42. Thus, the gap formed by the blocking plate 44 and the storage shell 42 is closed.

[0047] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited thereto. Various changes can be made without departing from the spirit of the present invention within the scope of knowledge possessed by those skilled in the art to which the present invention pertains.

Claims

1. A sewage purification device based on electrolysis, comprising a treatment shell (1), the bottom of the treatment shell (1) is fixedly connected to a device shell (2), the outer side of the device shell (2) is fixedly connected to a collar (3), the collar (3) is fixedly connected to four supports (4), the bottom of the treatment shell (1) is fixedly connected to a top plate (6), characterized in that: An adsorption plate (29) for adsorbing impurities in sewage is provided inside the treatment shell (1), a purification component for electrolyzing sewage to preliminarily purify impurities is provided on one side of the adsorption plate (29), a rotating bar (10) and a first rotating rod (17) are provided inside the purification component, and the cooperation of the rotating bar (10) and the first rotating rod (17) can promote the adsorption speed of impurities in sewage, a cleaning component for preventing impurities from accumulating on the adsorption plate (29) is provided on the top of the adsorption plate (29), a pressing column (39) and a scraping bar (41) are provided inside the cleaning component, and the impurities accumulated on the adsorption plate (29) can be effectively scraped off by the cooperation of the pressing column (39) and the scraping bar (41), a linkage column (14) is provided inside the purification component, and a collection component for cooperating with the purification component is provided on the linkage column (14), a storage shell (42) and a blocking plate (44) are provided inside the collection component, and the scraped impurities can be collected by the cooperation of the storage shell (42) and the blocking plate (44).

2. The sewage purification equipment based on electrolysis according to claim 1 is characterized in that: The purification component is provided with a bearing column (7) inside, one end of the bearing column (7) is fixedly connected to the inner wall of the processing shell (1), the other end of the bearing column (7) is fixedly connected to a bearing plate (8), the bearing plate (8) is L-shaped, a bearing is provided on the top of the bearing plate (8), the inner ring of the bearing of the bearing plate (8) is connected to a linkage column (14), a rotating column (9) is movably connected to the bearing plate (8), and the two ends of the rotating column (9) are respectively fixedly connected to a rotating bar (10) and a second rotating rod (18), and the second rotating rod ( The end of the bearing plate (8) away from the rotating column (9) is movably connected to the second connecting column (25), and the second connecting column (25) is fixedly connected to the translation block (26). The end of the bearing plate (8) away from the linkage column (14) is fixedly connected to the rotating shell (15), and the rotating shell (15) is provided with a bearing. The inner ring of the bearing on the rotating shell (15) is fixedly connected to the first single-head gear column (16). The end of the first single-head gear column (16) close to the inside of the processing shell (1) is fixedly connected to the first rotating rod (17). The first rotating rod (17) 7) One end away from the first single-head gear column (16) is fixedly connected to a first connecting column (19), one end of the first connecting column (19) is fixedly connected to a groove plate (27), the translation block (26) is in a U shape, and one end of the translation block (26) away from the second connecting column (25) is plugged into the groove plate (27), the end of the linkage column (14) corresponding to the rotating bar (10) is fixedly connected to the limit housing (12), the limit housing (12) is plugged with a lifting column (13), and the bottom of the lifting column (13) is fixedly connected to the limit housing (12). A rotating block (11) is fixedly connected, the rotating block (11) is composed of a special-shaped block and a cylinder, the cylindrical part of the rotating block (11) is movably connected to the rotating bar (10), one end of the groove plate (27) away from the second connecting column (25) is provided with a slot for the clamping bar (28), the clamping bar (28) is clamped in the slot of the groove plate (27), one end of the clamping bar (28) away from the groove plate (27) is fixedly connected with an adsorption plate (29), and the adsorption plate (29) is provided with a plurality of circular holes for filtering impurities.

3. The sewage purification equipment based on electrolysis according to claim 2 is characterized in that: The cleaning component is provided with a rotating column (34), a bearing is provided on the adsorption plate (29), the rotating column (34) is fixedly connected to the inner ring of the bearing on the adsorption plate (29), the rotating column (34) is fixedly connected to a rotating bar (37), a plurality of telescopic cylinders (38) are provided on the rotating bar (37), and a downward pressure column (39) is provided inside each telescopic cylinder (38), and a spring (40) is sleeved on each downward pressure column (39), and the two ends of each spring (40) are respectively fixedly connected to the inner wall of the corresponding telescopic cylinder (38) and the top of a scraper (41), there are two scrapers (41) in total, and each scraper (41) is in contact with the top of the adsorption plate (29).

4. The sewage purification equipment based on electrolysis according to claim 3 is characterized in that: The first connecting column (19) is provided with a reinforcement component for improving the efficiency of the starting component, and a positioning column (20) is provided inside the reinforcement component. The positioning column (20) is fixedly connected to the first connecting column (19), and one end of the positioning column (20) away from the first connecting column (19) is fixedly connected to a positioning cylinder (24), and a stretching column (21) is provided inside the positioning cylinder (24). The stretching column (21) consists of a circular ring and a circular cylinder, and the circular ring part of the stretching column (21) is movably connected to the second connecting column (25). The cylindrical part of the stretching column (21) is sleeved with a tension spring (23), and the two ends of the tension spring (23) are respectively fixedly connected to a limiting ring (22) and the inner wall of the positioning cylinder (24), and the limiting ring (22) is fixedly connected to the cylindrical part of the stretching column (21).

5. The sewage purification equipment based on electrolysis method according to claim 4 is characterized in that: The translation block (26) is provided with a starting component for starting the cleaning component, the top of the translation block (26) is fixedly connected with a pressure plate (30), one end of the pressure plate (30) away from the translation block (26) is fixedly connected with a receiving column (31), the receiving column (31) is movably connected with a starting column (32), the winding column (33) is composed of a long strip and a C-shaped block, the C-shaped block of the starting column (32) is fixedly connected with the winding column (33), the top of the rotating column (34) is correspondingly fixedly connected with two baffles (35), and a pull rope (36) is provided in the middle of the two baffles (35), the pull rope (36) is wound around the rotating column (34), and the other end of the pull rope (36) is fixedly connected to the winding column (33).

6. The sewage purification equipment based on electrolysis according to claim 1, characterized in that: The collecting component is provided with a positioning bar (45), the linkage column (14) is fixedly connected to the positioning bar (45), and the position of the positioning bar (45) corresponds to the position of the limiting shell (12), the bottom of the positioning bar (45) is fixedly connected to a storage shell (42), a cavity for collecting impurities is provided inside the storage shell (42), two windows for placing blocking plates (44) are provided on the cavity of the storage shell (42), two blocking plates (44) are shared, and each blocking plate (44) is V-shaped, each blocking plate (44) is fixedly connected to a pressure-bearing column (43), the two pressure-bearing columns (43) are correspondingly movably connected to the window of the storage shell (42), and the storage shell (42) is provided with a plurality of small circular holes for filtering sewage, the window of the storage shell (42) is semi-arc-shaped, and the two blocking plates (44) are correspondingly distributed.

7. The sewage purification equipment based on electrolysis according to claim 1 is characterized in that: The outer side of the processing shell (1) is fixedly connected to the housing (5), and a servo motor (51) is provided inside the housing (5). The position corresponding to the processing shell (1) and the housing (5) is movably connected to an end of the first single-headed gear column (16) away from the first rotating rod (17). The output shaft of the servo motor (51) is fixedly connected to the first single-headed gear column (16). A second single-headed gear column (49) is provided inside the rotating shell (15). The second single-headed gear column (49) is movably connected to the rotating shell (15), and the second single-headed gear column (49) is meshed with the first single-headed gear column (16). A trigger bar (50) is fixedly connected to the bottom of the second single-headed gear column (49), and the trigger bar (50) is composed of a circular ring and a semi-arc block.

8. The sewage purification equipment based on electrolysis according to claim 1, characterized in that: An intermittent assembly for linkage is provided inside the device shell (2), and a movable column (52) is provided on the intermittent assembly. The bottom of the movable column (52) is movably connected to the bottom end of the inner wall of the device shell (2). A rotating gear (46) is fixedly connected to the movable column (52). A rotating disk (47) is provided at the bottom of the rotating gear (46). The rotating disk (47) is fixedly connected to the movable column (52), and a plurality of corresponding stirring blades (48) are fixedly connected to the rotating disk (47). Each stirring blade (48) is composed of a cylinder and an inclined long piece, and the tooth block on the rotating gear (46) corresponds to the semi-arc block part of the trigger bar (50).