Mine water treatment system

By introducing stirring blades and scrapers into the mine water treatment system, the problem of floc accumulation interference system is solved, and efficient mine water treatment and filtration effect is achieved.

CN223239879UActive Publication Date: 2025-08-19ZHONG MEI DI ZHI JI TUAN YOU XIAN GONG SI BEI JING SHENG TAI HUAN JING FEN GONG SI
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Patent Information

Application Number
CN202422492312.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-15
Publication Date
2025-08-19
Estimated Expiration
2034-10-15

AI Technical Summary

Technical Problem

In the existing mine water treatment system, the flocs formed during flocculation will settle and accumulate to the bottom of the flocculation tank, which will interfere with the normal operation of the treatment system for a long time and reduce the treatment effect.

Method used

A mine water treatment system is designed, including a flocculation barrel, agitating shaft, agitating blade, a rotating rod, a connecting rod and a filter assembly. The suspension is gathered into a floc through the rotation of the stirring blade, and the floc is cleaned by a rotating rod and scraper, and the suspension is further removed in combination with the filter assembly to avoid accumulation and interference.

Benefits of technology

Effectively clean flocs, improve the efficiency of mine water treatment, reduce the content of suspended matter, ensure the normal operation of the system, and enhance the filtration effect.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model relates to the technical field of mine water treatment, in particular to a mine water treatment system which comprises a flocculation barrel, a stirring shaft, stirring blades, a rotating rod, a connecting rod and a filtering assembly, the stirring shaft is rotationally arranged in the flocculation barrel, the stirring blades are arranged on the circumferential wall of the stirring shaft, and the side wall of the rotating rod is fixedly connected with the lower end of the stirring shaft; a first partition plate is machined and formed in the flocculation barrel, a horizontal scraper is arranged on the rotating rod, the side wall of the horizontal scraper is attached to the surface of the first partition plate, the lower end of the connecting rod is fixedly connected to the end of the rotating rod, the length direction of the connecting rod is parallel to the length direction of the stirring shaft, and a vertical scraper is arranged on the connecting rod. The side wall of the vertical scraping plate is attached to the inner wall of the flocculation barrel, the filtering assembly is arranged on one side of the flocculation barrel, and the effects that floccules formed in the flocculation process are cleaned, the situation that the floccules are accumulated to interfere with normal work of a treatment system is avoided, and the treatment effect on mine water is improved are achieved.
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Description

Technical Field

[0001] The present application relates to the technical field of mine water treatment, and in particular to a mine water treatment system. Background Art

[0002] At present, during the coal mining process, groundwater comes into contact with coal seams and rock strata, and due to the influence of human activities, the groundwater quality has significant characteristics: it contains suspended matter, and the suspended matter content of mine water is much higher than that of surface water, and its sensory properties are poor; and the suspended matter contained in mine water has small particle size, light specific gravity, slow sedimentation rate, poor coagulation effect, and is difficult to filter.

[0003] The existing mine water treatment system uses a motor located on the top of the flocculation tank to drive the stirring blades to flocculate the suspended matter in the mine water. The treated mine water enters the filter barrel, which can further filter the suspended matter remaining in the mine water.

[0004] The above-mentioned prior art solutions have the following defects: flocs formed during the flocculation process will settle and accumulate at the bottom of the flocculation tank. Long-term accumulation will interfere with the normal operation of the treatment system and reduce the treatment effect on mine water. Utility Model Content

[0005] The present application provides a mine water treatment system in order to clean up the flocs formed during the flocculation process, avoid the accumulation of flocs interfering with the normal operation of the treatment system, and improve the treatment effect of mine water.

[0006] The above technical objectives of this application are achieved through the following technical solutions:

[0007] A mine water treatment system includes a flocculation barrel, a stirring shaft, stirring blades, a rotating rod, a connecting rod and a filter assembly, the stirring shaft is rotatably arranged in the flocculation barrel, the stirring blades are arranged on the peripheral wall of the stirring shaft, the side wall of the rotating rod is fixedly connected to the lower end of the stirring shaft, a first partition plate is formed in the flocculation barrel, a horizontal scraper is arranged on the rotating rod, the side wall of the horizontal scraper fits the surface of the first partition plate, the lower end of the connecting rod is fixedly connected to the end of the rotating rod, the length direction of the connecting rod is parallel to the length direction of the stirring shaft, a vertical scraper is arranged on the connecting rod, the side wall of the vertical scraper fits the inner wall of the flocculation barrel, and the filter assembly is arranged on one side of the flocculation barrel.

[0008] By adopting the above technical solution, a flocculation barrel, a stirring shaft, stirring blades, a rotating rod, a connecting rod and a filter assembly are set up. The stirring shaft drives the stirring blades to rotate, so that the suspended matter in the mine water gathers to form flocs. The flocs can be removed by sedimentation or filtration, thereby reducing the suspended matter content in the mine water. The rotating rod and the horizontal scraper can clean the flocs deposited on the surface of the first partition plate. The connecting rod can clean the flocs attached to the inner wall of the flocculation barrel to avoid floc accumulation interfering with the normal operation of the treatment system, thereby improving the treatment efficiency of mine water. The filter assembly can further filter the suspended matter remaining in the mine water after the flocculation treatment is completed, thereby reducing the suspended matter content in the mine water.

[0009] Optionally, the treatment system also includes a sewage cover plate, a accommodating cavity is formed under the first partition plate, a collecting hole is opened on the first partition plate, the collecting hole connects the upper surface of the first partition plate and the accommodating cavity, a square hole is opened on the peripheral wall of the flocculation barrel, the square hole connects the outer wall of the flocculation barrel and the accommodating cavity, and the sewage cover plate is hinged on the wall of the square hole.

[0010] By adopting the above technical solution and setting up a sewage cover, the rotating rod and the horizontal scraper can collect the flocs settled on the first partition plate into the accommodating cavity through the collecting hole, and the collected flocs can be conveniently processed through the switchable sewage cover.

[0011] Optionally, the inner wall of the flocculation barrel is processed to form a limiting platform, a limiting groove is provided on the lower surface of the limiting platform, and a first roller is provided on the upper end of the connecting rod, which is adapted to the limiting groove and slidably arranged in the limiting groove.

[0012] By adopting the above technical solution and providing the limiting platform and the first roller, it is possible to prevent the connecting rod from tilting during long-term use, causing the vertical scraper to separate from the inner wall of the flocculation barrel and reducing the cleaning effect of the flocs.

[0013] Optionally, a ceramic layer is provided on the inner wall of the flocculation barrel.

[0014] By adopting the above technical solution and providing a ceramic layer, it is possible to avoid the corrosion of the inner wall of the flocculation barrel by mine water.

[0015] Optionally, the sewage discharge cover is locked on the flocculation barrel by a simple door lock. The simple door lock includes a lock block, a lock box and a lock rod. The lock block is fixed to the sewage discharge cover, and the side wall of the lock box is fixed to the peripheral wall of the flocculation barrel. A lock hole is provided on the lock block, and the lock rod is inserted into the lock box and slidably arranged in the lock box. One end of the lock rod can be inserted into the lock hole.

[0016] By adopting the above technical solution, the sewage cover can be locked on the flocculation barrel by setting a locking block, a locking box and a locking rod to prevent the sewage cover from detaching from the flocculation barrel. The locking is performed using the locking block, the locking box and the locking rod, which has a simple structure and is convenient and fast.

[0017] Optionally, one end of the locking rod inserted into the locking hole is processed to form a bevel.

[0018] By adopting the above technical solution, by providing the inclined surface, it is possible to install the sewage discharge cover plate on the flocculation barrel cover without manually pulling the locking rod downward.

[0019] Optionally, the filtration assembly includes a holding barrel, the flocculation barrel and the holding barrel are connected via a connecting pipe, and the connecting pipe is Z-shaped.

[0020] By adopting the above technical solution, the Z-shaped connecting pipe can prevent flocs generated during the flocculation process in the flocculation barrel from entering the filter barrel, thereby improving the filtration efficiency.

[0021] Optionally, a second partition plate is formed inside the containing barrel, and a turntable is rotatably embedded on the upper surface of the second partition plate. The turntable is coaxially arranged with the containing barrel. The filter assembly also includes a filter barrel and a second motor. The filter barrel is arranged on the turntable, and the second motor is arranged between the second partition plate and the bottom of the containing barrel. The output shaft of the second motor passes through the second partition plate and is coaxially fixed to the turntable.

[0022] By adopting the above technical solution, by setting up a filter barrel, a turntable and a second motor, the second motor drives the turntable to drive the filter barrel to rotate, which can enhance the filtering effect. The filter barrel can further remove suspended matter from the flocculated mine water, thereby enhancing the treatment effect of the treatment system on the mine water.

[0023] Optionally, a limiting groove is provided on the upper surface of the turntable, and a limiting piece is formed on the outer wall of the bottom of the filter barrel, and the limiting piece is adapted to and inserted into the limiting groove.

[0024] By adopting the above technical solution and providing the limiting member and the limiting groove, the filter barrel can be prevented from slipping during rotation.

[0025] Optionally, a sliding platform is formed on the inner wall of the holding barrel, a sliding groove is provided on the upper surface of the sliding platform, a second roller is fixedly connected to the upper portion of the outer wall of the filter barrel, and the second roller is adapted to the sliding groove and is slidably arranged in the sliding groove.

[0026] By adopting the above technical solution and setting up a sliding platform and a second roller, the filter barrel can be supported, the pressure of the filter barrel on the second partition plate and the second motor can be reduced, and the second partition plate and the second motor can be protected.

[0027] In summary, this application has the following technical effects:

[0028] 1. The flocculation barrel, stirring shaft, stirring blades, rotating rod, connecting rod and filter assembly are provided. The stirring shaft drives the stirring blades to rotate, causing the suspended matter in the mine water to aggregate and form flocs. The flocs can be removed by sedimentation or filtration, thereby reducing the suspended matter content in the mine water. The rotating rod and horizontal scraper can clean the flocs deposited on the surface of the first partition plate. The connecting rod can clean the flocs attached to the inner wall of the flocculation barrel to prevent the accumulation of flocs from interfering with the normal operation of the treatment system, thereby improving the treatment efficiency of the mine water. The filter assembly can further filter the suspended matter remaining in the mine water after the flocculation treatment, thereby reducing the suspended matter content in the mine water.

[0029] 2. By setting up a sewage cover, the rotating rod and the horizontal scraper can collect the floccules that have settled on the first partition plate into the accommodating chamber through the collection hole. The sewage cover can be opened and closed to facilitate the processing of the collected floccules.

[0030] 3. By setting up a filter barrel, a turntable and a second motor, the second motor drives the turntable to drive the filter barrel to rotate, which can enhance the filtering effect. The filter barrel can further remove suspended matter from the flocculated mine water, thereby enhancing the treatment effect of the treatment system on the mine water. BRIEF DESCRIPTION OF THE DRAWINGS

[0031] Figure 1 It is the appearance structure diagram of this application;

[0032] Figure 2 It is a prominent structural diagram of the flocculation component and the cleaning component of the present application;

[0033] Figure 3 It is a prominent structural diagram of the simple door lock of this application;

[0034] Figure 4 It is a prominent structural diagram of the filter component of this application.

[0035] Explanation of Reference Numerals: 1. Base; 2. Flocculation Assembly; 21. Flocculation Tank; 211. Flocculation Water Inlet; 22. First Motor; 23. Stirring Shaft; 24. Stirring Blade; 25. First Partition Plate; 251. Collecting Hole; 3. Cleaning Assembly; 31. Rotating Rod; 311. Horizontal Scraper; 32. Connecting Rod; 321. Vertical Scraper; 33. Limiting Platform; 331. Limiting Groove; 34. First Roller; 35. Accommodating Chamber; 36. Drain cover; 37. Simple door lock; 371. Lock block; 372. Lock hole; 373. Lock box; 374. Lock rod; 4. Filter assembly; 41. Receiving barrel; 411. Filter drain outlet; 42. Connecting pipe; 43. Second partition plate; 44. Second motor; 45. Turntable; 451. Limiting groove; 46. Filter barrel; 461. Limiting member; 462. Second roller; 47. Sliding platform; 471. Sliding groove. DETAILED DESCRIPTION

[0036] The present application is further described in detail below with reference to the accompanying drawings.

[0037] The present application discloses a mine water treatment system. Figure 1 and Figure 2 The treatment system includes a base 1, a flocculation component 2, a cleaning component 3 and a filter component 4. The flocculation component 2 can flocculate the suspended matter contained in the mine water to reduce the suspended matter content in the mine water. The mine water after flocculation treatment enters the filter component 4. The filter component 4 further filters the suspended matter remaining in the mine water after flocculation treatment to reduce the suspended matter content in the mine water. The cleaning component 3 can clean the flocculation component 2 to prevent the flocs generated during the flocculation process from settling and accumulating, which interferes with the normal operation of the flocculation component 2 and the filter component 4.

[0038] Combine Figure 1 and Figure 2The flocculation assembly 2 is mounted on the base 1 and includes a flocculation barrel 21 and a stirring blade 24. The flocculation barrel 21 is vertically mounted at one end of the upper surface of the base 1. The flocculation barrel 21 is a cylindrical barrel with a closed upper end. A ceramic layer is provided on the inner wall of the flocculation barrel 21 to prevent corrosion of the inner wall of the flocculation barrel 21 by the mine water. A flocculation water inlet 211 is provided on the upper end of the flocculation barrel 21. The flocculation water inlet 211 connects the inside and outside of the flocculation barrel 21 and is offset from the center of the upper end of the flocculation barrel 21. A first motor 22 is mounted on the upper portion of the flocculation barrel 21. The output shaft of the first motor 22 extends through the upper end of the flocculation barrel 21. A stirring shaft 23 is fixedly connected to the end face of the output shaft of the first motor 22. The stirring shaft 23 is cylindrical, with the end of the stirring shaft 23 facing away from the first motor 22 as the lower end. The stirring shaft 23, the output shaft of the first motor 22, and the flocculation barrel 21 are coaxially arranged. A stirring blade 24 is disposed within the flocculation barrel 21. One end of the stirring blade 24 is fixedly attached to the peripheral wall of the stirring shaft 23, with the longitudinal direction of the stirring blade 24 being perpendicular to the longitudinal direction of the stirring shaft 23. Multiple stirring blades 24 are disposed on the peripheral wall of the stirring shaft 23. A first motor 22 drives the stirring shaft 23, causing the stirring blades 24 to rotate, flocculating the mine water injected into the flocculation barrel 21. This causes suspended matter in the mine water to aggregate and form flocs, which are more easily removed through sedimentation or filtration, thereby reducing the suspended matter content in the mine water.

[0039] Combine Figure 1 and Figure 2 A first partition plate 25 is integrally formed on the inner wall of the flocculation barrel 21. The first partition plate 25 is coaxially arranged with the flocculation barrel 21. The first partition plate 25 is close to the bottom of the flocculation barrel 21 and is spaced apart from the bottom of the flocculation barrel 21. The cleaning assembly 3 is arranged in the flocculation barrel 21. The cleaning assembly 3 includes a rotating rod 31 and a horizontal scraper 311. The rotating rod 31 is arranged in the flocculation barrel 21. The rotating rod 31 is a square rod. The middle part of one side wall of the rotating rod 31 is fixed to the lower end of the stirring shaft 23. The length direction of the rotating rod 31 is perpendicular to the length direction of the stirring shaft 23. The rotating rod 31 is close to the first partition plate 25 and is spaced apart from the first partition plate 25. The rotating rod 31 can rotate along with the stirring shaft 23. The horizontal scraper 311 is set on the side wall of the rotating rod 31 away from the stirring shaft 23. The horizontal scraper 311 is strip-shaped. The length direction of the horizontal scraper 311 is parallel to the length direction of the rotating rod 31. The side wall of the horizontal scraper 311 away from the rotating rod 31 is in contact with the surface of the first partition plate 25. The rotation of the horizontal scraper 311 can clean the flocs attached to the upper surface of the first partition plate 25.

[0040] Combine Figure 1 and Figure 2The cleaning assembly 3 also includes a connecting rod 32 and a vertical scraper 321. The connecting rod 32 is vertically arranged in the flocculation barrel 21. The connecting rod 32 is a square rod. Two connecting rods 32 are provided. The lower ends of the two connecting rods 32 are respectively fixed to the two ends of the rotating rod 31. The connecting rod 32 and the stirring blade 24 and the inner wall of the flocculation barrel 21 are spaced apart. The length direction of the connecting rod 32 is parallel to the axis of the stirring shaft 23. A limited platform 33 is formed on the inner wall of the flocculation barrel 21 to limit The positioning platform 33 is annular, and an annular limiting groove 331 is provided on the lower surface of the limiting platform 33. The first roller 34 is fixedly connected to the end of the side wall of the connecting rod 32 opposite to the inner wall of the flocculation barrel 21. The first roller 34 is away from the rotating rod 31, and the axis of the first roller 34 is perpendicular to the length direction of the connecting rod 32. The first roller 34 is adapted to the limiting groove 331 and the first roller 34 is slidably set in the limiting groove 331. The peripheral wall of the first roller 34 fits the bottom of the limiting groove 331. The vertical scraper 321 is arranged on the side wall of the connecting rod 32 away from the stirring shaft 23. The vertical scraper 321 is strip-shaped, and the length direction of the vertical scraper 321 is parallel to the length direction of the connecting rod 32. The side wall of the vertical scraper 321 away from the connecting rod 32 is processed into an arc surface and fits with the inner wall of the flocculation barrel 21. The arc-shaped side wall of the vertical scraper 321 can avoid scratching the surface of the ceramic layer on the inner wall of the flocculation barrel 21. The vertical scraper 321 can clean the flocs attached to the inner wall of the flocculation barrel 21.

[0041] Combine Figure 1 and Figure 2 The first partition plate 25 is provided with a square collection hole 251. A receiving chamber 35 is formed between the surface of the first partition plate 25 and the bottom of the mixing box. The collection hole 251 connects the upper surface of the first partition plate 25 and the receiving chamber 35. The collection hole 251 is offset from the center of the upper surface of the first partition plate 25. The cleaning assembly 3 also includes a sewage cover 36. A square hole is provided on the outer peripheral wall of the mixing box, connecting the outside of the flocculation barrel 21 and the receiving chamber 35. The sewage cover 36 is movably arranged at the square hole. The surface of the sewage cover 36 is processed into an arc surface. The surface of the sewage cover 36 is flush with the outer peripheral wall of the flocculation barrel 21. One end of the sewage cover 36 is hinged to the wall of the square hole. The rotating rod 31 and the horizontal scraper 311 can collect the floccules that settle on the first partition plate 25 through the collection hole 251 and into the receiving chamber 35. The sewage cover 36 can be opened and closed to facilitate the processing of the collected floccules.

[0042] Combine Figure 2 and Figure 3The cleaning assembly 3 also includes a simple door lock 37, which is located on the outer surface of the movable cover at one end away from the hinge. The simple door lock 37 includes a lock block 371, a lock box 373, a lock rod 374, and a spring. The lock block 371 is fixedly mounted on the outer surface of the movable cover. The lock block 371 is a square block and can be inserted into the accommodating cavity 35. The lock block 371 is provided with a lock hole 372, which connects the upper and lower surfaces of the lock block 371. The lock box 373 is fixedly mounted on the outer peripheral wall of the flocculation barrel 21, below the lock block 371. The lock box 373 is provided with a box opening that faces upward, and the length of the lock box 373 is perpendicular to the opening of the installation box.

[0043] Combine Figure 2 and Figure 3 The locking rod 374 is inserted upward into the lock box 373 and slidably arranged in the lock box 373. The locking rod 374 is adapted to the lock hole 372 and can be inserted into the lock hole 372. The upper end of the locking rod 374 is processed into an inclined surface, the inclined surface of the inclined surface is away from the flocculation barrel 21, and the peripheral wall of the other end of the locking rod 374 is processed to form an annular thickened portion. A square limit plate is fixedly connected to the peripheral wall of the locking rod 374 adjacent to the inclined surface. The square limit plate is adapted to the lock box 373 and slidably arranged in the lock box 373. The surface of the square limit plate is perpendicular to the length direction of the locking rod 374. A spring is fixedly arranged between the square limit plate and the bottom of the lock box 373. The spring is sleeved on the peripheral wall of the locking rod 374 and the two ends of the spring are respectively fixed to the square limit plate and the bottom of the lock box 373. In the static state, the upper surface of the square limit plate is flush with the surface of the box opening of the lock box 373.

[0044] Combine Figure 2 and Figure 3 When the sewage cover 36 is installed, the lower edge of the locking block 371 contacts the inclined surface of the locking rod 374 and slides on the inclined surface. The locking block 371 presses the locking rod 374 downward, compressing the spring. When the side wall of the locking block 371 contacts the outer wall of the flocculation barrel 21, the inclined surface of the locking rod 374 is inserted into the locking hole 372, locking the sewage cover 36 on the flocculation barrel 21. Gripping the annular thickened portion at the other end of the locking rod 374, pull the locking rod 374 downward to separate the inclined surface of the locking rod 374 from the locking block 371, thereby unlocking the sewage cover 36.

[0045] Combine Figure 1 and Figure 4The filter assembly 4 includes a receiving barrel 41 and a connecting pipe 42. The receiving barrel 41 is vertically arranged on the upper surface of the base 1 at one end away from the flocculation barrel 21. The receiving barrel 41 is a round barrel with a closed upper end. A ceramic layer is provided on the inner wall of the receiving barrel 41 to reduce the corrosion of the mine water. The connecting pipe 42 is arranged between the receiving barrel 41 and the flocculation barrel 21. The connecting pipe 42 is Z-shaped. The Z-shaped connecting pipe 42 can prevent the flocs generated during the flocculation process in the flocculation barrel 21 from entering the filter barrel 46, thereby reducing the filtration efficiency. The connecting pipe 42 connects the flocculation barrel 21 and the receiving barrel 41. One end of the connecting pipe 42 is fixed to the lower portion of the outer peripheral wall of the flocculation barrel 21 adjacent to the receiving barrel 41, and the other end of the connecting pipe 42 is fixed to the upper end surface of the receiving barrel 41.

[0046] Combine Figure 1 and Figure 4 The filter assembly 4 also includes a second partition plate 43, a second motor 44 and a turntable 45. The second partition plate 43 is arranged in the accommodating barrel 41, the second partition plate 43 is close to the bottom of the accommodating barrel 41, the second partition plate 43 and the accommodating barrel 41 are integrally formed, the second partition plate 43 and the accommodating barrel 41 are coaxially arranged, and the surface of the second partition plate 43 is spaced apart from the bottom of the accommodating barrel 41. The second motor 44 is arranged between the second partition plate 43 and the bottom of the accommodating barrel 41, the output shaft of the second motor 44 passes through the second partition plate 43, and the second motor 44 is arranged in the same manner as the second partition plate 43. The turntable 45 is arranged on the side of the second partition plate 43 away from the bottom of the accommodating barrel 41, the turntable 45 is rotatably embedded in the second partition plate 43, the turntable 45 is a disc and is coaxially arranged with the second partition plate 43, and the end of the output shaft of the second motor 44 is fixedly connected to the surface of the turntable 45.

[0047] Combine Figure 1 and Figure 4The filter assembly 4 also includes a filter barrel 46, which is rotatably disposed within the accommodating barrel 41. The filter barrel 46 is provided with an opening, and the opening faces away from the second partition plate 43. The filter barrel 46 is placed on a turntable 45, and the filter barrel 46 and the turntable 45 are coaxially arranged. The second motor 44 drives the turntable 45 to drive the filter barrel 46 to rotate. A limiting groove 451 is formed on the surface of the turntable 45 away from the second partition plate 43. A limiting member 461 is formed on the outer wall of the bottom of the filter barrel 46. The limiting member 461 is adapted to the limiting groove 451 and can be inserted into the limiting groove 451. The limiting member 461 and the limiting groove 451 can prevent the filter barrel 46 from slipping during rotation. An annular sliding platform 47 is machined into the inner wall of the container 41. The sliding platform 47 is coaxial with the container 41 and has a sliding groove 471 defined on its surface facing away from the second partition plate 43. Second rollers 462 are fixedly attached to opposite sides of the upper outer wall of the filter barrel 46. The axis of the second rollers 462 is perpendicular to the axis of the filter barrel 46. The second rollers 462 fit into and slide within the sliding grooves 471, with the outer wall of the second rollers 462 fitting into the bottom of the sliding grooves 471. The sliding platform 47 supports the filter barrel 46, reducing the pressure exerted by the filter barrel 46 on the second partition plate 43 and the second motor 44, thereby protecting them. A filtered drain outlet 411 is defined on the outer wall of the container 41, connecting the inside and outside of the container 41. The filtered drain outlet 411 is located on the side of the second partition plate 43 facing away from the bottom of the container 41 and is spaced apart from the second partition plate 43.

[0048] This specific embodiment is merely an explanation of the present application and is not a limitation of the present application. After reading this specification, those skilled in the art may make non-creative modifications to the present embodiment as needed, but as long as they are within the scope of the claims of the present application, they are protected by the patent law.

Claims

1. A mine water treatment system, characterized by: The treatment system comprises a flocculation barrel (21), a stirring shaft (23), a stirring blade (24), a rotating rod (31), a connecting rod (32) and a filter assembly (4), wherein the stirring shaft (23) is rotatably arranged in the flocculation barrel (21), the stirring blade (24) is arranged on the peripheral wall of the stirring shaft (23), the side wall of the rotating rod (31) is fixedly connected to the lower end of the stirring shaft (23), a first partition plate (25) is formed in the flocculation barrel (21), and a connecting rod (32) is arranged on the rotating rod (31). A horizontal scraper (311) is provided, and the side wall of the horizontal scraper (311) is in contact with the surface of the first partition plate (25). The lower end of the connecting rod (32) is fixed to the end of the rotating rod (31). The length direction of the connecting rod (32) is parallel to the length direction of the stirring shaft (23). A vertical scraper (321) is provided on the connecting rod (32). The side wall of the vertical scraper (321) is in contact with the inner wall of the flocculation barrel (21). The filter assembly (4) is provided on one side of the flocculation barrel (21).

2. A mine water treatment system according to claim 1, characterized in that: The treatment system also includes a sewage cover plate (36), a receiving cavity (35) is formed below the first partition plate (25), a collecting hole (251) is opened on the first partition plate (25), and the collecting hole (251) connects the upper surface of the first partition plate (25) and the receiving cavity (35), a square hole is opened on the peripheral wall of the flocculation barrel (21), and the square hole connects the outer wall of the flocculation barrel (21) and the receiving cavity (35), and the sewage cover plate (36) is hinged on the hole wall of the square hole.

3. A mine water treatment system according to claim 2, characterized in that: The inner wall of the flocculation barrel (21) is processed to form a limiting platform (33), and a limiting groove (331) is provided on the lower surface of the limiting platform (33). A first roller (34) is provided at the upper end of the connecting rod (32), and the first roller (34) is adapted to the limiting groove (331) and is slidably arranged in the limiting groove (331).

4. A mine water treatment system according to claim 3, characterized in that: A ceramic layer is provided on the inner wall of the flocculation barrel (21).

5. A mine water treatment system according to claim 4, characterized in that: The sewage discharge cover (36) is locked on the flocculation barrel (21) through a simple door lock (37). The simple door lock (37) includes a lock block (371), a lock box (373) and a lock rod (374). The lock block (371) is fixed on the sewage discharge cover (36). The side wall of the lock box (373) is fixed on the peripheral wall of the flocculation barrel (21). A lock hole (372) is provided on the lock block (371). The lock rod (374) penetrates the lock box (373) and is slidably arranged in the lock box (373). One end of the lock rod (374) can be inserted into the lock hole (372).

6. A mine water treatment system according to claim 5, characterized in that: One end of the locking rod (374) inserted into the locking hole (372) is processed to form an inclined surface.

7. A mine water treatment system according to claim 1, characterized in that: The filtering assembly (4) comprises a holding barrel (41), the flocculation barrel (21) and the holding barrel (41) are connected via a connecting pipe (42), and the connecting pipe (42) is Z-shaped.

8. A mine water treatment system according to claim 7, characterized in that: A second partition plate (43) is machined and formed in the accommodating barrel (41), and a turntable (45) is rotatably embedded on the upper surface of the second partition plate (43). The turntable (45) is coaxially arranged with the accommodating barrel (41). The filtering assembly (4) also includes a filtering barrel (46) and a second motor (44). The filtering barrel (46) is arranged on the turntable (45). The second motor (44) is arranged between the second partition plate (43) and the bottom of the accommodating barrel (41). The output shaft of the second motor (44) penetrates the second partition plate (43) and is coaxially fixed to the turntable (45).

9. A mine water treatment system according to claim 8, characterized in that: A limiting groove (451) is provided on the upper surface of the turntable (45), and a limiting member (461) is formed on the outer wall of the bottom of the filter barrel (46), and the limiting member (461) is adapted to the limiting groove (451) and inserted into the limiting groove (451).

10. A mine water treatment system according to claim 9, characterized in that: A sliding platform (47) is machined and formed on the inner wall of the accommodating barrel (41), and a sliding groove (471) is provided on the upper surface of the sliding platform (47). A second roller (462) is fixedly connected to the upper portion of the outer peripheral wall of the filter barrel (46), and the second roller (462) is adapted to the sliding groove (471) and is slidably arranged in the sliding groove (471).