Sludge cleaning device for rhinestone processing pool
By designing a water drilling pool sludge cleaning device that combines a support frame and hoisting components, the sludge pump can be precisely positioned in the three-dimensional space of the pool. This solves the problems of low safety and efficiency of manual operation in water drilling pool sludge cleaning, and improves cleaning efficiency and safety.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- YAAN JINGAO JEWELRY CO LTD
- Filing Date
- 2025-04-15
- Publication Date
- 2026-05-05
AI Technical Summary
The cleaning of silt in the drilling pool relies on manual operation, which poses safety risks, is inefficient, and makes it difficult to guarantee the consistency and thoroughness of the cleaning results.
Design a device for cleaning sludge from a water drilling pool, including a support frame, a hoisting assembly, and a sludge pump. The support frame is movable, and the hoisting assembly can adjust the height and position of the sludge pump to achieve precise positioning of the sludge pump in the three-dimensional space of the pool.
It improves the efficiency and flexibility of sludge removal, reduces the intensity of manual labor, enhances safety, and ensures the accuracy and stability of the removal process.
Smart Images

Figure CN224199953U_ABST
Abstract
Description
Technical Field
[0001] This disclosure relates to the field of wastewater treatment equipment technology, specifically to a device for cleaning sludge from a water drilling pool. Background Technology
[0002] In the water drilling industry, water tanks are a crucial part of the production process, used for cooling and cleaning waste generated during operation. However, as the process continues, a large amount of silt and impurities gradually accumulate in the water tanks. These substances not only affect the normal function of the water tanks but may also damage production equipment, reduce production efficiency, and increase maintenance costs.
[0003] Traditional sludge removal methods usually rely on manual operation, such as workers having to go down to the bottom of the pool and use a sludge pump to remove the sludge. This method has many drawbacks: (1) Safety issues, as workers need to directly enter potentially dangerous environments (such as the risk of slipping, harmful gases, or confined spaces), increasing personal safety risks. (2) Inefficiency, as manual operation is not only time-consuming and labor-intensive, but also makes it difficult to ensure the consistency and thoroughness of the cleaning effect. Utility Model Content
[0004] The purpose of this disclosure is to provide a device for cleaning sludge from a water drilling pool, in order to solve the technical problems existing in the related art.
[0005] To achieve the above objectives, this disclosure provides a device for cleaning sludge from a water drilling pool, including a support frame, a hoisting assembly, and a sludge pump.
[0006] The bracket is used to be movably mounted on the pool along a first direction;
[0007] One end of the hoisting assembly is movably connected to the bracket along the second direction, and the other end of the hoisting assembly is connected to the sludge pump. The hoisting assembly is configured to adjust the height of the sludge pump.
[0008] Wherein, the first direction and the second direction are perpendicular.
[0009] Optionally, the water drilling pool sludge cleaning device further includes a connector, and the sludge pump includes a sludge pump body and mating parts;
[0010] The other end of the hoisting assembly is connected to the top of the connector, the bottom of the connector is detachably connected to one end of the mating part, and the other end of the mating part is connected to the top of the sludge pump body.
[0011] Optionally, the mating component includes a cylinder, a disk, and a plurality of first limiting blocks;
[0012] The column and the disk are constructed in a stepped structure. One end of the column is connected to the top of the sludge pump body, and the other end of the column is connected to the disk.
[0013] The connector has a receiving cavity, and the bottom of the connector has a through hole communicating with the receiving cavity. The disc and the cylinder are inserted into the receiving cavity in sequence through the through hole.
[0014] Multiple first limiting blocks are installed on the side wall of the disk and arranged at intervals along the circumference of the disk. The multiple first limiting blocks are used to prevent the disk from falling out of the through hole. The through hole has multiple notches in its wall so that the corresponding first limiting blocks can pass through the connector.
[0015] The first limiting block has a first position and a second position. In the first position, the first limiting block is located outside the connector, and the disk is separated from the connector. In the second position, the first limiting block abuts against the inner wall of the receiving cavity where the through hole is opened, and the disk is connected to the connector.
[0016] Optionally, the water drilling pool sludge cleaning device also includes multiple limiting structures;
[0017] The number of the limiting structures corresponds one-to-one with the number of the notches;
[0018] The limiting structure includes a rotating component and a second limiting block, the rotating component and the second limiting block being located on both sides of the notch respectively;
[0019] The rotating component is rotatably connected to the bottom of the connecting component;
[0020] The second limiting block is disposed on the bottom of the connector to circumferentially lock the rotating member onto the second limiting block in an unlockable manner.
[0021] Optionally, the second limiting block is provided with an arc-shaped groove on the side facing the notch;
[0022] The rotating component is constructed as a cam structure. The first end of the rotating component is rotatably connected to the bottom of the connecting component by a bolt. The second end of the rotating component is a semi-circular structure. The rotating component is configured such that when the second end of the rotating component is located in the arc-shaped groove, the rotating component covers the notch.
[0023] Optionally, the limiting structure further includes a baffle;
[0024] The baffle is provided on the side of the second limiting block away from the connecting member;
[0025] When the second end of the rotating component is located within the arc-shaped groove, the side of the baffle closest to the arc-shaped groove abuts against the second end of the rotating component.
[0026] Optionally, the support includes a crossbeam, two support frames, and a running track;
[0027] The support frame is installed at both ends of the crossbeam, and the two support frames are respectively set on opposite sides of the pool.
[0028] The bottom of the crossbeam is provided with the running track, which extends along the second direction;
[0029] The hoisting assembly is constructed as an electric hoist, with one end of the electric hoist slidingly engaged with the running rail and the other end of the electric hoist connected to the sludge pump.
[0030] Optionally, the water drilling pool sludge cleaning device further includes a guide rail assembly, and the bracket further includes two speed reducers;
[0031] The guide rail assembly includes two guide rails, which are arranged at a horizontal interval on the same side. The two guide rails are respectively used to install on opposite sides of the pool, and each guide rail extends along the first direction.
[0032] Each of the support frames is equipped with a roller at its bottom, and each roller slides in cooperation with the corresponding guide rail.
[0033] Each of the support frames is equipped with a speed reducer, which is configured to drive the support frame to move on the corresponding guide rail.
[0034] Through the above technical solution, since the support can move along the width direction (first direction) of the pool, the position of the sludge pump in the width direction of the pool can be adjusted. Since the hoisting assembly can move along the width direction (first direction) of the pool, the position of the sludge pump in the length direction of the pool can be adjusted. In other words, through the cooperation between the support and the hoisting assembly, precise control of the sludge pump at any position on the surface of the pool can be achieved. Furthermore, since the hoisting assembly also has the function of adjusting the height of the sludge pump, the sludge pump can be controlled to reach an appropriate depth for sludge extraction. The sludge cleaning device of this disclosure can achieve precise positioning of the sludge pump in the three-dimensional space of the pool, thereby effectively improving the efficiency and flexibility of cleaning sludge from water-drilled pools.
[0035] Compared with existing technologies where workers need to enter the bottom of the pool and manually pump sludge to remove it, the sludge cleaning device disclosed herein does not require workers to physically perform the task. It can not only locate the area to be cleaned more quickly and accurately, but also maintain a stable working state for a long time, thereby greatly improving the overall efficiency of sludge cleaning, reducing manual labor intensity and improving work safety.
[0036] Other features and advantages of this disclosure will be described in detail in the following detailed description section. Attached Figure Description
[0037] The accompanying drawings are provided to further illustrate the present disclosure and form part of the specification. They are used together with the following detailed description to explain the present disclosure, but do not constitute a limitation thereof. In the drawings:
[0038] Figure 1 This is a schematic diagram of the structure of a sludge removal device for a water drilling pool provided in an exemplary embodiment of the present disclosure;
[0039] Figure 2 This is a schematic diagram of the connection between the connector and the sludge pump of the water drilling pool sludge cleaning device provided in an exemplary embodiment of this disclosure;
[0040] Figure 3 yes Figure 2 Enlarged view of part A in the middle;
[0041] Figure 4 This is a cross-sectional view of the connection between the connector and the mating part of the water drilling pool sludge cleaning device provided in an exemplary embodiment of the present disclosure, wherein the first limiting block is in the second position;
[0042] Figure 5 This is a schematic diagram of the connection between the connector and the mating parts of the water drilling pool sludge cleaning device provided in an exemplary embodiment of the present disclosure, wherein the first limiting block is in the first position;
[0043] Figure 6 This is a schematic diagram of the limiting structure of a sludge removal device for a water drilling pool provided in an exemplary embodiment of this disclosure.
[0044] Explanation of reference numerals in the attached figures
[0045] 10. Bracket; 11. Crossbeam; 12. Support frame; 13. Running track; 14. Reducer; 15. Roller; 20. Lifting assembly; 21. Hoist trolley; 22. Motor; 23. Reducer; 24. Drum; 25. Chain; 30. Sludge pump; 31. Sludge pump body; 32. Mating parts; 321. Column; 322. Disc; 323. First limiting block; 40. Water tank; 50. Connector; 51. Receiving cavity; 52. Through hole; 53. Notch; 60. Limiting structure; 61. Rotating part; 62. Second limiting block; 621. Arc-shaped groove; 63. Bolt; 64. Baffle; 70. Guide rail. Detailed Implementation
[0046] The specific embodiments of this disclosure will be described in detail below with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are for illustration and explanation only and are not intended to limit this disclosure.
[0047] In the description of this disclosure, it should be understood that the terms "upper," "lower," "left," "right," "top," "bottom," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this disclosure and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or a specific orientational structure and operation, and therefore should not be construed as a limitation of this disclosure. For example, see [link to relevant documentation]. Figure 1 , Figure 1 The area above the plane of the image is considered "above". Figure 1 The direction above in the drawing is "below," and "inside" and "outside" refer to the inside and outside of the corresponding structural outline. Furthermore, terms such as "first" and "second" are used only for descriptive distinction and should not be interpreted as indicating or implying relative importance.
[0048] In the description of this disclosure, it should also be noted that, unless otherwise expressly specified and limited, the terms "set up," "connect," "link," and "install" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this disclosure according to the specific circumstances.
[0049] like Figures 1 to 6 As shown, this disclosure provides a sludge cleaning device for a water drilling pool, including a support 10, a hoisting assembly 20, and a sludge pump 30. The support 10 is movably mounted on a water pool 40 along a first direction. One end of the hoisting assembly 20 is movably connected to the support 10 along a second direction, and the other end of the hoisting assembly 20 is connected to the sludge pump 30. The hoisting assembly 20 is configured to adjust the height of the sludge pump 30, wherein the first direction and the second direction are perpendicular.
[0050] It should be noted that the first direction refers to the width of the pool 40, and the second direction refers to the length of the pool 40.
[0051] The sludge pump 30 is used to extract sludge from the bottom of the pool 40.
[0052] Through the above technical solution, since the support 10 can move along the width direction (first direction) of the pool 40, the position of the sludge pump 30 in the width direction of the pool 40 can be adjusted. Since the hoisting assembly 20 can move along the width direction (first direction) of the pool 40, the position of the sludge pump 30 in the length direction of the pool 40 can be adjusted. In other words, through the cooperation between the support 10 and the hoisting assembly 20, precise control of the sludge pump 30 at any position on the surface of the pool 40 can be achieved. Furthermore, since the hoisting assembly 20 also has the function of adjusting the height of the sludge pump 30, the sludge pump 30 can be controlled to an appropriate depth for sludge extraction. The sludge cleaning device of this disclosure can achieve precise positioning of the sludge pump 30 in the three-dimensional space of the pool 40, thereby effectively improving the efficiency and flexibility of cleaning sludge from the water-drilling processing pool 40.
[0053] Compared with the existing technology where workers need to enter the bottom of the pool 40 and use a sludge pump 30 to extract sludge, the sludge cleaning device of this disclosure does not require workers to physically perform the task. It can not only locate the area to be cleaned more quickly and accurately, but also maintain a stable working state for a long time, thereby greatly improving the overall efficiency of sludge cleaning, reducing the intensity of manual labor and improving the safety of the work.
[0054] As one implementation method, such as Figures 1 to 5 As shown, the water drilling processing pool sludge cleaning device also includes a connector 50, and the sludge pump 30 includes a sludge pump body 31 and a mating part 32. The other end of the hoisting assembly 20 is connected to the top of the connector 50, the bottom of the connector 50 is detachably connected to one end of the mating part 32, and the other end of the mating part 32 is connected to the top of the sludge pump body 31.
[0055] The detachable connection between the connector 50 and the mating part 32 facilitates the installation, disassembly, and maintenance of the sludge pump 30. This not only improves operational convenience but also allows for quick replacement or repair of critical components, reducing downtime. Furthermore, it provides a more robust connection. This enhances the stability of the sludge pump 30 during operation, reducing inefficiencies caused by shaking or positional misalignment, minimizing the risk of personal injury or equipment damage due to accidental detachment, and allowing for more precise control of the sludge pump 30's position and depth.
[0056] As one implementation method, such as Figures 2 to 5 As shown, the mating component 32 includes a column 321, a disk 322, and a plurality of first limiting blocks 323. The column 321 and the disk 322 are constructed in a stepped structure. One end of the column 321 is connected to the top of the sludge pump body 31, and the other end of the column 321 is connected to the disk 322. A receiving cavity 51 is provided in the connecting component 50, and a through hole 52 communicating with the receiving cavity 51 is formed at the bottom of the connecting component 50. The disk 322 and the column 321 are inserted into the receiving cavity 51 through the through hole 52 in sequence. The plurality of first limiting blocks 323 are all installed on the side wall of the disk 322 and along the circular path. The discs 322 are arranged circumferentially, and multiple first limiting blocks 323 are used to prevent the discs 322 from falling out of the through holes 52. The through holes 52 have multiple notches 53 on their walls so that the corresponding first limiting blocks 323 can pass through the connector 50. The first limiting blocks 323 have a first position and a second position. In the first position, the first limiting blocks 323 are located outside the connector 50, and the discs 322 are separated from the connector 50. In the second position, the first limiting blocks 323 abut against the inner wall of the through holes 52 in the receiving cavity 51, and the discs 322 are connected to the connector 50.
[0057] The through hole 52 has multiple notches 53 on its wall, which allow the corresponding first limiting block 323 to pass through the connector 50, thereby enabling the first limiting block 323 to switch from the first position to the second position.
[0058] In the first position, the first limiting block 323 is located outside the connector 50. At this time, the disc 322 is separated from the connector 50, thus realizing the disassembly of the sludge pump 30 from the connector 50.
[0059] In the second position, the first limiting block 323 can be rotated so that it can abut against the inner wall of the through hole 52 in the receiving cavity 51, thereby locking the disc 322 in the connector 50 and preventing the disc 322 from slipping out or falling out of the through hole 52.
[0060] In other words, the connection or separation of the sludge pump 30 and the lifting assembly 20 can be completed through simple insertion and rotation operations, without the need for complex tools or lengthy operation processes. Furthermore, the design of the first limiting block 323 ensures that when the first limiting block 323 is in the second position, the disc 322 is firmly fixed within the connector 50, which greatly improves the safety and stability of the connection between the sludge pump 30 and the lifting assembly 20, thereby reducing the risk of the sludge pump 30 accidentally falling off.
[0061] During the hoisting process, the sludge pump 30 will rotate, which may cause the first limiting block 323 on the disc 322 to align with the notch 53. To prevent the first limiting block 323 from falling out of the corresponding notch 53, as one implementation method, such as... Figures 4 to 5 As shown, the water drilling processing pool sludge cleaning device also includes multiple limiting structures 60. The number of limiting structures 60 corresponds one-to-one with the number of notches 53. Each limiting structure 60 includes a rotating member 61 and a second limiting block 62. The rotating member 61 and the second limiting block 62 are located on both sides of the notch 53, respectively. The rotating member 61 is rotatably connected to the bottom of the connecting member 50. The second limiting block 62 is disposed on the bottom of the connecting member 50 to unlockably lock the rotating member 61 circumferentially onto the second limiting block 62.
[0062] like Figure 4 As shown, when the rotating member 61 is in the locked state, the rotating member 61 can block the first limiting block 323, preventing the first limiting block 323 from coming out of the notch 53.
[0063] like Figure 5 As shown, when the rotating part 61 is in the unlocked state, the first limiting block 323 can freely pass through the notch 53, thereby realizing the separation of the disc 322 from the connector 50.
[0064] As one implementation method, such as Figure 4 and Figure 6 As shown, the second limiting block 62 has an arc-shaped groove 621 on the side facing the notch 53. The rotating member 61 is constructed as a cam structure. The first end of the rotating member 61 is rotatably connected to the bottom of the connecting member 50 by a bolt 63. The second end of the rotating member 61 has a semi-circular structure. The rotating member 61 is configured such that when the second end of the rotating member 61 is located in the arc-shaped groove 621, the rotating member 61 covers the notch 53.
[0065] The combination of the arc-shaped groove 621 and the semi-circular structure ensures that the rotating part 61 will not come loose due to vibration or external force when locked, thereby improving the safety of the entire device.
[0066] Regarding the installation process, specifically, firstly, align the first limiting block 323 of the disc 322 with the notch 53, so that the disc 322 and the column 321 can be inserted sequentially into the receiving cavity 51 of the connector 50. Then, rotate the sludge pump body 31, so that the first limiting block 323 moves to the position of the inner wall of the receiving cavity 51. Finally, rotate the second end (semi-circular structure) of the rotating member 61 into the arc-shaped groove 621. At this time, the second limiting block 62 can restrict the rotating member 61 from continuing to rotate during the hoisting process, thereby locking the rotating member 61. In this way, the rotating member 61 can completely cover the notch 53, which can block the first limiting block 323 located at the notch 53, thereby preventing the first limiting block 323 from coming out of the notch 53.
[0067] Regarding the disassembly process, specifically, firstly, rotate the rotating component 61 so that its second end (semi-circular structure) disengages from the arc-shaped groove 621, at which point the notch 53 is unobstructed. Then, rotate the sludge pump 30 until the first limiting block 323 is repositioned around the notch 53. Finally, remove the disc 322 and the column 321 from the connector 50, completing the disassembly.
[0068] As one implementation method, such as Figure 6 As shown, the limiting structure 60 also includes a baffle 64. The baffle 64 is provided on the side of the second limiting block 62 away from the connecting member 50. When the second end of the rotating member 61 is located in the arc-shaped groove 621, the side of the baffle 64 near the arc-shaped groove 621 abuts against the second end of the rotating member 61.
[0069] When the rotating member 61 rotates until its second end (semi-circular structure) is completely within the arc-shaped groove 621, the side of the baffle 64 closest to the arc-shaped groove 621 contacts the second end of the rotating member 61. This arrangement ensures that even if the first limiting block 323 is stuck at the notch 53, the rotating member 61 can still provide support, and the baffle 64 further enhances this support effect. In other words, the baffle 64 not only prevents the rotating member 61 from accidentally rotating and becoming loose, but also provides a support point for the second end of the rotating member 61, increasing the stability of the rotating member 61 in the locked position.
[0070] As one implementation method, such as Figure 1As shown, the bracket 10 includes a crossbeam 11, two support frames 12, and a running rail 13. The support frames 12 are installed at both ends of the crossbeam 11. The two support frames 12 are respectively set on opposite sides of the water tank 40. The running rail 13 is provided at the bottom of the crossbeam 11 and extends along the second direction. The hoisting assembly 20 is constructed as an electric hoist. One end of the electric hoist is slidably engaged with the running rail 13, and the other end of the electric hoist (referring to the end of the chain 25 away from the drum 24) is connected to the sludge pump 30 (specifically, the top of the connector 50).
[0071] The position of the sludge pump 30 along the length (second direction) of the water tank 40 can be easily adjusted by sliding the electric hoist on the track 13. This allows the sludge pump 30 to cover the entire length of the water tank 40 for sludge cleaning operations.
[0072] Since the electric hoist itself has a lifting function, the height of the sludge pump 30 can be adjusted by controlling the electric hoist, so that the sludge pump 30 can go into different depths of the water tank 40 to extract sludge.
[0073] By cooperating with the running track 13 on the set crossbeam 11 and the electric hoist, the sludge pump 30 can be adjusted in the length direction on the plane of the water tank 40, and accurately positioned at different depths, thereby efficiently completing the sludge cleaning task.
[0074] Optionally, such as Figure 1 As shown, an electric hoist may include a hoist carriage 21, a motor 22, a reducer 23, a drum 24, a chain guide cover, a chain 25, and a control panel.
[0075] Among them, the hoist carriage 21 allows the electric hoist to move along the predetermined guide rail 70, increasing the flexibility and applicability of the electric hoist.
[0076] Among them, motor 22 serves as the core power source for the electric hoist, driving the operation of the entire device.
[0077] The reducer 23 is used to connect the motor 22 and the drum 24, and converts the high-speed rotation of the motor 22 into a speed and torque suitable for lifting operations by reducing speed and increasing torque.
[0078] The drum 24 is used to wind the chain 25 or the chain 25, and the lifting and lowering of the heavy object is achieved by the drive of the motor 22 and the reducer 23.
[0079] The chain 25 is used to connect the top of the connector 50.
[0080] The chain guide cover is used to protect the chain 25, ensuring that the chain 25 is correctly arranged on the drum 24 and avoiding safety hazards caused by tangling and confusion.
[0081] The operator uses a control panel to control the operation of the electric hoist. This can be a button-type control panel installed on the equipment or a wireless remote control, providing more flexible operation methods.
[0082] As one implementation method, such as Figure 1 As shown, the water drilling processing pool sludge cleaning device also includes a guide rail assembly, and the bracket 10 also includes two reducers 14. The guide rail assembly includes two guide rails 70, which are arranged at the same horizontal interval. The two guide rails 70 are respectively used to install on opposite sides of the pool 40. Each guide rail 70 extends along a first direction. Each support frame 12 has a roller 15 installed at its bottom. Each roller 15 slides with the corresponding guide rail 70. Each support frame 12 has a reducer 14 installed on it. The reducer 14 is configured to drive the support frame 12 to move on the corresponding guide rail 70.
[0083] Among them, the roller 15 at the bottom of the support frame 12 slides with the guide rail 70, and the reducer 14 drives the roller 15 to move along the guide rail 70, thereby driving the entire bracket 10 and the hoisting assembly 20 to move along the first direction (width direction) of the pool 40.
[0084] The speed reducer 14 can ensure the speed controllability and stability of the support 10 during movement, and can avoid the impact or instability that may be caused by rapid movement.
[0085] The preferred embodiments of this disclosure have been described in detail above with reference to the accompanying drawings. However, this disclosure is not limited to the specific details of the above embodiments. Within the scope of the technical concept of this disclosure, various simple modifications can be made to the technical solutions of this disclosure, and these simple modifications all fall within the protection scope of this disclosure.
[0086] It should also be noted that the various specific technical features described in the above specific embodiments can be combined in any suitable manner without contradiction. In order to avoid unnecessary repetition, this disclosure will not describe the various possible combinations separately.
[0087] Furthermore, various different embodiments of this disclosure can be combined in any way, as long as they do not violate the spirit of this disclosure, they should also be regarded as the content disclosed in this disclosure.
Claims
1. A device for cleaning sludge from a water drilling pool, characterized in that, Includes a support frame (10), a hoisting assembly (20), and a sludge pump (30); The bracket (10) is movably mounted on the pool (40) along a first direction; One end of the hoisting assembly (20) is movably connected to the bracket (10) in a second direction, and the other end of the hoisting assembly (20) is connected to the sludge pump (30). The hoisting assembly (20) is configured to adjust the height of the sludge pump (30). Wherein, the first direction and the second direction are perpendicular.
2. The water drilling pool sludge cleaning device according to claim 1, characterized in that, The water drilling pool sludge cleaning device also includes a connector (50), and the sludge pump (30) includes a sludge pump body (31) and a fitting part (32). The other end of the hoisting assembly (20) is connected to the top of the connector (50), the bottom of the connector (50) is detachably connected to one end of the mating part (32), and the other end of the mating part (32) is connected to the top of the sludge pump body (31).
3. The sludge removal device for water drilling pools according to claim 2, characterized in that, The mating component (32) includes a column (321), a disk (322), and a plurality of first limiting blocks (323); The column (321) and the disk (322) are constructed in a stepped structure. One end of the column (321) is connected to the top of the sludge pump body (31), and the other end of the column (321) is connected to the disk (322). The connector (50) is provided with a receiving cavity (51), and the bottom of the connector (50) is formed with a through hole (52) communicating with the receiving cavity (51). The disc (322) and the column (321) are inserted into the receiving cavity (51) through the through hole (52) in sequence. Multiple first limiting blocks (323) are installed on the side wall of the disk (322) and arranged at intervals along the circumference of the disk (322). The multiple first limiting blocks (323) are used to restrict the disk (322) from falling out of the through hole (52). The through hole (52) has multiple notches (53) on its hole wall so that the corresponding first limiting block (323) can pass through the connector (50). The first limiting block (323) has a first position and a second position. In the first position, the first limiting block (323) is located outside the connector (50), and the disc (322) is separated from the connector (50). In the second position, the first limiting block (323) abuts against the inner wall of the through hole (52) in the receiving cavity (51), and the disc (322) is connected to the connector (50).
4. The sludge removal device for water drilling pools according to claim 3, characterized in that, The water drilling pool sludge cleaning device also includes multiple limiting structures (60). The number of the limiting structures (60) corresponds one-to-one with the number of the notches (53); The limiting structure (60) includes a rotating component (61) and a second limiting block (62), wherein the rotating component (61) and the second limiting block (62) are located on both sides of the notch (53); The rotating member (61) is rotatably connected to the bottom of the connecting member (50); The second limiting block (62) is disposed on the bottom of the connector (50) for unlockably locking the rotating member (61) circumferentially onto the second limiting block (62).
5. The sludge removal device for water drilling pools according to claim 4, characterized in that, The second limiting block (62) has an arc-shaped groove (621) on the side facing the notch (53); The rotating component (61) is constructed as a cam structure. The first end of the rotating component (61) is rotatably connected to the bottom of the connecting component (50) by a bolt (63). The second end of the rotating component (61) is a semi-circular structure. The rotating component (61) is configured such that when the second end of the rotating component (61) is located in the arc-shaped groove (621), the rotating component (61) covers the notch (53).
6. The sludge removal device for water drilling pools according to claim 5, characterized in that, The limiting structure (60) also includes a baffle (64). The second limiting block (62) has the baffle (64) on the side away from the connector (50); When the second end of the rotating member (61) is located in the arc-shaped groove (621), the baffle (64) abuts against the second end of the rotating member (61) on the side near the arc-shaped groove (621).
7. The water drilling pool sludge cleaning device according to claim 1, characterized in that, The bracket (10) includes a crossbeam (11), two support frames (12) and a running track (13). The two ends of the crossbeam (11) are respectively equipped with the support frame (12), and the two support frames (12) are respectively set on the opposite sides of the pool (40); The bottom of the crossbeam (11) is provided with the running track (13), which extends along the second direction; The hoisting assembly (20) is constructed as an electric hoist, one end of which is slidably engaged with the running rail (13), and the other end of which is connected to the sludge pump (30).
8. The water drilling pool sludge cleaning device according to claim 7, characterized in that, The water drilling processing pool sludge cleaning device also includes a guide rail (70) group, and the bracket (10) also includes two reducers (14). The guide rail (70) group includes two guide rails (70) arranged at the same horizontal interval. The two guide rails (70) are respectively used to be installed on opposite sides of the pool (40), and each guide rail (70) extends along the first direction. Each of the support frames (12) is equipped with a roller (15) at its bottom, and each roller (15) is slidably engaged with the corresponding guide rail (70); Each of the support frames (12) is equipped with a speed reducer (14), which is configured to drive the support frame (12) to move on the corresponding guide rail (70).