Support for waste liquid regeneration suction
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- MIANYANG MAORUI ENVIRONMENTAL PROTECTION CO LTD
- Filing Date
- 2025-06-06
- Publication Date
- 2026-07-21
AI Technical Summary
Existing technologies suffer from low recovery rates due to residual stripping waste liquid and metal precipitation inside the tank, making it difficult to completely extract the waste liquid.
A support for waste liquid regeneration suction was designed. The stability and safety of the tank are ensured by adjusting the tilt angle of the vertical plate and various connection structures, so as to achieve effective tilting of the tank and thus completely extract the waste liquid.
It achieves complete extraction of waste liquid, improves metal recovery rate, and ensures the safety and efficiency of the extraction process.
Smart Images

Figure CN224524046U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of waste liquid regeneration technology, and in particular to a support for waste liquid regeneration suction. Background Technology
[0002] Stripping waste liquid is a non-reusable stripping fluid generated after use. It contains a large amount of organic matter and metal ions, and direct discharge can easily pollute the environment. Therefore, regeneration is the best treatment method. These stripping waste liquid manufacturers typically use drums or tank trucks with drums for storage. Most use drums, and regeneration requires first extracting the stripping waste liquid from the drum before proceeding with the regeneration process. However, during extraction, there is always a problem of stripping waste liquid remaining in the drum, and some metals also settle at the bottom, thus reducing the recovery rate of metal particles. Utility Model Content
[0003] This invention provides a support for waste liquid regeneration suction, which overcomes the shortcomings of the prior art and solves the problem of inconvenience in completely extracting the stripped waste liquid, and has strong practicality.
[0004] In order to achieve the purpose of this utility model, the following technology is proposed to be adopted: A waste liquid regeneration suction support includes a base with a pair of L-shaped arms mounted on it. A rotating shaft is rotatably mounted on the upper vertical section of each L-shaped arm, and a V-shaped arm is rotatably mounted on the shaft. A vertical plate is welded to the inner end of each V-shaped arm. A concave plate is mounted on the lower end of the vertical plate via screws. A pair of vertical grooves are formed at the upper end of the vertical plate, and movable screws pass through these grooves. An outer plate is threaded to the outer end of each movable screw, and an inner plate is threaded to the inner end of each movable screw. A concave upper plate is formed at the lower end of the inner plate, and two pairs of guide screws are threaded to the outer end of the concave upper plate. Movable recesses are fitted onto the guide screws, and two pairs of oblong holes are formed on the movable recesses. The guide screws pass through these oblong holes. A locking block is formed on the outer end of the movable recess, and a locking groove is formed on the inner wall of the locking block.
[0005] Furthermore, a pair of limiting pins are symmetrically provided on the movable concave part, and a limiting screw is connected to the concave upper plate by a thread. A movable horizontal plate is movably provided on the limiting screw, and a strip hole is opened on the movable horizontal plate. The limiting screw passes through the strip hole. A limiting plate is formed on the inner end of the movable horizontal plate, and a U-shaped groove is opened on the inner side of the limiting plate. The limiting pin passes through the U-shaped groove.
[0006] Furthermore, a hanging pin is threadedly connected at the middle position along the length of the outer plate, and a rotating screw is threadedly connected to the vertical plate. A swing plate is rotatably mounted on the rotating screw, and a hanging plate is formed at the upper end of the swing plate. A hanging groove is opened on the hanging plate, and the hanging pin passes through the hanging groove.
[0007] Furthermore, a pair of concave seats are welded onto the vertical plate, and an arc-shaped clamp is connected to the concave seats via a rotating shaft. The other end of the arc-shaped clamp is formed into an end block, and a pull rod is inserted into the end block. An upper plate is provided at the upper end of the pull rod.
[0008] Furthermore, one of the vertical sections of the L-shaped arm has an outer seat that is rotatably mounted on the outer wall via a hinge shaft. An adjusting screw is rotatably mounted on the outer seat. One end of the adjusting screw is connected to a pair of constraint rings via pins. The constraint rings are located at both ends of the outer seat. One end of the adjusting screw is provided with a rotating head. A moving block is connected to the adjusting screw via a thread. A connecting inner shaft is welded to the inner end of the moving block. The connecting inner shaft is rotatably mounted on the outer end of the V-shaped arm.
[0009] The advantages of the above technical solution are: This invention places the waste liquid stripping container on a vertical plate with an adjustable tilt angle. When the waste liquid is being extracted, the container can be tilted to facilitate complete extraction. Furthermore, it ensures safety when tilting the container. Attached Figure Description
[0010] To make the objectives, technical solutions, and advantages of this utility model clearer, the following will provide a further detailed description of this utility model in conjunction with the accompanying drawings.
[0011] Figure 1 A three-dimensional structure of one embodiment is shown. Figure 1 .
[0012] Figure 2 A magnified view of point A is shown.
[0013] Figure 3 A three-dimensional structure of one embodiment is shown. Figure 2 .
[0014] Figure 4 A magnified view of point B is shown. Detailed Implementation
[0015] like Figures 1-4As shown, a waste liquid regeneration suction support includes a base 1, on which a pair of L-shaped arms 2 are mounted. A rotating shaft 20 is rotatably mounted on the upper end of the vertical section of each L-shaped arm 2. A V-shaped arm 26 is rotatably mounted on the rotating shaft 20. A vertical plate 27 is welded to the inner end of the V-shaped arm 26. An outer seat 21 is rotatably mounted on the outer wall of the vertical section of one of the L-shaped arms 2 via a hinge shaft. An adjusting screw 22 is rotatably mounted on the outer seat 21. One end of the adjusting screw 22 is connected to a pair of constraint rings 25 via pins. The constraint rings 25 are located at both ends of the outer seat 21. One end of the adjusting screw 22 is provided with a rotating head 24. A moving block 23 is connected to the adjusting screw 22 by a thread. A connecting inner shaft is welded to the inner end of the moving block 23. The connecting inner shaft is rotatably located at the outer end of the V-shaped arm 26. By adjusting the screw 22, the moving block 23 and the outer seat 21, the distance between the moving block 23 and the outer seat 21 can be adjusted when the adjusting screw 22 rotates, thereby achieving the purpose of adjusting the tilting posture of the vertical plate 27. Since the bucket is connected to the vertical plate 27, the purpose of tilting the bucket will also be achieved.
[0016] A concave plate 270 is screwed to the lower end of the vertical plate 27, providing support for the lower end of the bucket. A pair of vertical grooves 28 are formed at the upper end of the vertical plate 27, with movable screws 29 passing through them. An outer plate 30 is threaded to the outer end of the movable screw 29, and an inner plate 36 is threaded to the inner end of the movable screw 29. A concave upper plate 37 is formed at the lower end of the inner plate 36, limiting the upper end of the bucket to ensure safety when the bucket is tilted. A hanging pin 31 is threaded to the middle of the outer plate 30 along its length. A rotating screw 32 is threaded to the vertical plate 27, and a swing plate 33 is rotatably mounted on the rotating screw 32. A hanging plate 34 is formed at the upper end of the swing plate 33, with a hanging groove 35 on the hanging plate 34, into which the hanging pin 31 passes. When the concave upper plate 37 limits the upper end of the bucket, the position of the concave upper plate 37 can be locked by the hanging pin 31 and the hanging plate 34. The outer end of the concave upper plate 37 is connected by two pairs of guide screws 38 through threads. The guide screws 38 are fitted with movable recesses 39. The movable recesses 39 are provided with two pairs of waist-shaped holes 40. The guide screws 38 pass through the waist-shaped holes 40. The outer end of the movable recesses 39 is formed with a locking block 41. The inner wall of the locking block 41 is provided with a locking groove 42. The protruding edge at the upper end of the bucket is locked in the locking groove 42 to ensure safety when the bucket is tilted.
[0017] In order to improve the limiting effect of the slot 42 on the upper edge of the barrel, a pair of limiting pins 48 are symmetrically provided on the movable concave part 39. A limiting screw 45 is connected to the concave upper plate 37 by thread. A movable horizontal plate 43 is movably provided on the limiting screw 45. A strip hole 44 is opened on the movable horizontal plate 43. The limiting screw 45 passes through the strip hole 44. A limiting plate 46 is formed on the inner end of the movable horizontal plate 43. A U-shaped groove 47 is opened on the inner side of the limiting plate 46. The limiting pin 48 passes through the U-shaped groove 47.
[0018] In this embodiment, when placing the bucket, the operator uses a hoisting device to place the bucket on the concave plate 270, and then moves the concave upper plate 37 downward to limit the upper end of the bucket. Then, the swing plate 33 is rotated and the hanging pin 31 is inserted into the hanging groove 35. Then, the movable concave part 39 is moved inward so that the upper edge of the bucket is locked in the slot 42. At the same time, the limiting plate 46 is moved inward and the limiting pin 48 is inserted into the U-shaped groove 47. This completes the constraint of the bucket. Then, the suction pipe is inserted into the bucket for suction operation. During the suction process, the adjusting screw 22 is rotated by the rotating head 24. The rotation of the adjusting screw 22 will increase or decrease the distance between the moving block 23 and the outer seat 21, thereby causing the V-shaped arm 26 to rotate around the axis of the rotating shaft 20, thereby achieving the purpose of adjusting the tilt angle of the bucket. This facilitates the complete suction of the waste liquid in the bucket.
[0019] In some embodiments, in order to further enhance the constraint effect on the barrel, a pair of concave seats 51 are welded on the vertical plate 27. An arc-shaped clamp 52 is connected to the concave seat 51 through a rotating shaft. An end block 53 is formed at the other end of the arc-shaped clamp 52. A pull rod is inserted into the end block 53, and an upper plate 54 is provided at the upper end of the pull rod.
[0020] In this embodiment, when limiting the barrel, the operator rotates the arc-shaped clamp 52 and then inserts the pull rod into the end block 53 to ensure the limiting effect on the barrel.
[0021] The above description is merely a preferred embodiment of this utility model and is not intended to limit the scope of this utility model. Obviously, those skilled in the art can make various modifications and variations to this utility model without departing from its spirit and scope. Therefore, if these modifications and variations of this utility model fall within the scope of the claims of this utility model and their equivalents, this utility model also intends to include these modifications and variations.
Claims
1. A support for waste liquid regeneration suction, characterized in that, Includes a base (1), on which a pair of L-shaped arms (2) are mounted. The upper end of the vertical section of the L-shaped arms (2) is rotatably provided with a rotating shaft (20). A V-shaped arm (26) is rotatably provided on the rotating shaft (20). A vertical plate (27) is welded to the inner end of the V-shaped arm (26). A concave plate (270) is installed at the lower end of the vertical plate (27) by screws. A pair of vertical grooves (28) are opened at the upper end of the vertical plate (27). A movable screw (29) passes through the vertical groove (28). An outer plate (30) is connected to the outer end of the movable screw (29) by threads. The inner end of the movable screw (29) is connected to the inner plate (36) by a thread. The lower end of the inner plate (36) is formed with a concave upper plate (37). The outer end of the concave upper plate (37) is connected to two pairs of guide screws (38) by a thread. The guide screws (38) are fitted with movable recesses (39). The movable recesses (39) are provided with two pairs of waist-shaped holes (40). The guide screws (38) pass through the waist-shaped holes (40). The outer end of the movable recesses (39) is formed with a locking block (41). The inner wall of the locking block (41) is provided with a locking groove (42).
2. The waste liquid regeneration suction support according to claim 1, characterized in that, A pair of limiting pins (48) are symmetrically provided on the movable concave part (39). A limiting screw (45) is connected to the concave upper plate (37) by a thread. A movable horizontal plate (43) is movably provided on the limiting screw (45). A strip hole (44) is opened on the movable horizontal plate (43). The limiting screw (45) passes through the strip hole (44). A limiting plate (46) is formed on the inner end of the movable horizontal plate (43). A U-shaped groove (47) is opened on the inner side of the limiting plate (46). The limiting pin (48) passes through the U-shaped groove (47).
3. The waste liquid regeneration suction support according to claim 1, characterized in that, A hanging pin (31) is threadedly connected to the middle position of the outer plate (30) along its length. A rotating screw (32) is threadedly connected to the vertical plate (27). A swing plate (33) is rotatably provided on the rotating screw (32). A hanging plate (34) is formed at the upper end of the swing plate (33). A hanging groove (35) is provided on the hanging plate (34). The hanging pin (31) passes through the hanging groove (35).
4. The waste liquid regeneration suction support according to claim 1, characterized in that, A pair of concave seats (51) are welded on the vertical plate (27). An arc-shaped clamp (52) is connected to the concave seat (51) via a rotating shaft. An end block (53) is formed at the other end of the arc-shaped clamp (52). A pull rod is inserted into the end block (53), and an upper plate (54) is provided at the upper end of the pull rod.
5. The waste liquid regeneration suction support according to claim 1, characterized in that, One of the L-shaped arms (2) has an outer seat (21) on its vertical section outer wall that is rotatably connected by a hinge shaft. An adjusting screw (22) is rotatably mounted on the outer seat (21). One end of the adjusting screw (22) is connected to a pair of constraint rings (25) by a pin. The constraint rings (25) are located at both ends of the outer seat (21). One end of the adjusting screw (22) is provided with a rotating head (24). A moving block (23) is connected to the adjusting screw (22) by a thread. A connecting inner shaft is welded to the inner end of the moving block (23). The connecting inner shaft is rotatably mounted on the outer end of the V-shaped arm (26).