Rubber ball collecting stirrer

By designing a rubber ball ball collecting stirrer, the combination of fine pore plates, coarse pore plates and water pumps is used to solve the problem of reducing cleaning effect due to accumulation of impurities on the surface of the rubber ball, and the effect of efficient cleaning of impurities is achieved and the service life of the rubber ball is extended.

CN222978688UActive Publication Date: 2025-06-13QINGDAO HAOZHOU ELECTRIC EQUIP CO LTD
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Patent Information

Application Number
CN202422195040.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-09
Publication Date
2025-06-13
Estimated Expiration
2034-09-09

AI Technical Summary

Technical Problem

After the existing rubber ball cleaning device increases the usage time of rubber balls, the impurities attached to the surface of rubber balls gradually increase, resulting in a reduction in cleaning effect and regular cleaning of impurities is required.

Method used

A rubber ball ball collecting agitator is designed. Through the cooperation of the fine-pore plate, the coarse-pore plate and the water pump, the water flow is used to drive the rubber ball and impurities to flow back and forth in the treatment tube. With the help of the water flow and mechanical structure design, the impurities are gradually removed from the surface of the rubber ball, and the impurities are discharged through the cooperation of the discharge valve and the fine-pore plate.

Benefits of technology

Effectively clean impurities attached to the surface of the rubber ball, improve the cleaning effect of the rubber ball, extend the service life of the rubber ball, and reduce the frequency of regular cleaning.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a rubber ball collecting stirrer, and relates to the technical field of rubber ball collecting. The rubber ball collecting stirrer comprises a main pipe and a treatment pipe, the treatment pipe is located above the main pipe, the two ends of the treatment pipe are both fixedly connected to the outer surface of the main pipe in an inserted mode, the two ends of the treatment pipe are bent downwards, the middle of the treatment pipe is a horizontal end, and a fine hole disc A is fixedly connected to the interior of the horizontal end of the treatment pipe in an inserted mode. And a slim-hole disc B is rotationally inserted into the horizontal end of the treatment pipe and located on the left side of the slim-hole disc A. According to the rubber ball collecting stirrer, by arranging the fine-hole disc A, the fine-hole disc B, the coarse-hole disc and the fine-hole plate, water flow flows back and forth in the treatment pipe, impurities attached to the surfaces of rubber balls are gradually separated under the impact of the water flow, the separated impurities flow between the fine-hole disc A and the fine-hole disc B, and the impurities are left between the fine-hole plate and the fine-hole disc A; and the thin-hole disc B is controlled to rotate to an open state, and water flow drives the rubber balls to flow into the main pipe again, so that the rubber balls can be continuously cleaned.
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Description

Technical Field

[0001] The utility model relates to the technical field of rubber ball collection, in particular to a rubber ball collection stirrer. Background Technique

[0002] The rubber ball cleaner is a special equipment for cleaning the dirt on the inner wall of pipelines such as condensers and heat exchangers, preventing the inner wall of the pipeline from scaling for a long time, which affects the heat exchange efficiency and corrodes the pipe wall. When cleaning, the rubber balls enter the pipeline along with the liquid flow, and the rubber balls clean the scale on the inner wall of the pipeline.

[0003] With the increase of the use time of rubber balls, the impurities attached to the surface of the rubber balls gradually increase, resulting in the reduction of the cleaning effect of the rubber balls. It is necessary to regularly clean the impurities attached to the surface of the rubber balls. Therefore, a rubber ball collection stirrer is proposed, which can clean the impurities attached to the surface of the rubber balls. Content of the Utility Model

[0004] (1) Technical Problem to be Solved

[0005] Aiming at the deficiencies of the prior art, the utility model provides a rubber ball collection stirrer, which solves the problems put forward in the background technique.

[0006] (2) Technical Solution

[0007] To achieve the above purposes, the utility model is realized through the following technical solutions: a rubber ball collection stirrer, including a main pipe and a processing pipe. The processing pipe is located above the main pipe, and both ends of the processing pipe are fixedly inserted on the outer surface of the main pipe. Both ends of the processing pipe are bent downward, the middle of the processing pipe is a horizontal end, a fine hole plate A is fixedly inserted inside the horizontal end of the processing pipe, a fine hole plate B is rotatably inserted on the left side of the fine hole plate A inside the horizontal end of the processing pipe, a thick hole plate is fixedly inserted between the fine hole plate A and the fine hole plate B inside the processing pipe, a fine hole plate is in contact with the right side of the thick hole plate. The holes of the thick hole plate are smaller than the ball diameter of the rubber ball. The upper end of the fine hole plate slides through the inner wall of the processing pipe. The upper end of the processing pipe is fixedly connected with a sleeve frame, the sleeve frame is slidably sleeved on the outer surface of the fine hole plate, the upper end of the fine hole plate is fixedly connected with a bent rod bent forward, a power structure is installed on the outer surface of the processing pipe, the upper end of the fine hole plate B is connected with the front end of the bent rod and the power structure, a water pump is fixedly inserted at the downwardly bent end on the right side of the processing pipe, and a drain valve is installed on the inner bottom wall of the processing pipe between the fine hole plate and the fine hole plate A.

[0008] Preferably, sealing plates are rotatably inserted at the joints of both ends of the processing pipe and the main pipe. A power telescopic rod A is fixedly connected to the outer surface of the processing pipe. Gear A is fixedly sleeved at one end in front of the processing pipe for both sealing plates. Tooth plate A is meshed above both gear A. Both tooth plate A are fixed to the telescopic ends of the power telescopic rod A. The water pump is located between the two sealing plates.

[0009] Preferably, the power structure includes a power telescopic rod B, a long rod, a fixed rod, a driving friction plate, and a driven friction plate. The driving friction plate is located in front of the driven friction plate. One end of the fine-hole disk B above the processing pipe is fixedly sleeved with a gear B. A rack B is meshed in front of the gear B. The front end of the rack B is fixed to the driven friction plate. The right side surface of the rack B is fixedly connected to a horizontal telescopic rod. The other end of the horizontal telescopic rod is fixed to the processing pipe. The driving friction plate is fixed to the long rod. The left end of the fixed rod is fixedly connected to the front surface of the sleeve frame. A sleeve block is slidably sleeved on the outer surface of the fixed rod. A short shaft is fixed to the front surface of the sleeve block. The front end of the short shaft is rotatably sleeved with a rotating plate. The other end of the rotating plate is rotatably sleeved at the front end of the bent rod. An auxiliary telescopic rod is arranged on the left side of the sleeve frame. The lower end of the auxiliary telescopic rod is fixed to the processing pipe. The upper end of the auxiliary telescopic rod is fixed to the bent rod. A plurality of elastic deflectors are arranged on the right side of the short shaft. The lower ends of the elastic deflectors are fixed to the long rod. One end of the power telescopic rod B is fixed to the long rod. The other end of the power telescopic rod B is fixed to the processing pipe.

[0010] Preferably, a plurality of elastic deflectors are equidistantly distributed on the upper surface of the long rod. The long rod is located in front of the rotating plate. The upper ends of the elastic deflectors are located above the short shaft.

[0011] Preferably, a plurality of vertical rods are arranged between the coarse-hole disk and the fine-hole disk B. The vertical rods are fixedly inserted into the interior of the processing pipe.

[0012] Preferably, both ends of the rack A are semi-circular. The number of teeth of the rack A is equal to one-fourth of the number of teeth of the gear A.

[0013] Preferably, both ends of the rack B are semi-circular. The number of teeth of the rack B is equal to half of the number of teeth of the gear B.

[0014] (III) Beneficial effects

[0015] The utility model provides a rubber ball collecting and stirring device. It has the following beneficial effects:

[0016] 1. For this rubber ball collecting and stirring device, by setting the fine-hole plate A, fine-hole plate B, coarse-hole plate and fine-hole plate, first control the rotation of the fine-hole plate B to disengage from blocking the treatment pipe, then pull up the fine-hole plate to disengage from blocking the coarse-hole plate, start the water pump, and drive the rubber balls into the space between the fine-hole plate B and the coarse-hole plate through the water flow. Then control the fine-hole plate B to block the treatment pipe again, so that the rubber balls are located between the fine-hole plate B and the coarse-hole plate. Then start the water pump with forward and reverse rotation to make the water flow back and forth inside the treatment pipe. Under the impact of the water flow, the impurities attached to the surface of the rubber balls are gradually separated. The separated impurities flow between the fine-hole plate A and the fine-hole plate B. Finally, the water pump drives the impurities through the coarse-hole plate to move between the fine-hole plate A and the fine-hole plate, and then pushes the fine-hole plate downward to leave the impurities between the fine-hole plate and the fine-hole plate A. Control the fine-hole plate B to rotate to the open state, and the water flow drives the rubber balls to flow back into the main pipe, so that the rubber balls can continue to clean.

[0017] 2. For this rubber ball collecting and stirring device, by setting the sealing plate, when the rubber balls clean the dirt on the inner wall of the pipeline, control the sealing plate to block both ends of the treatment pipe, so that the rubber balls will not enter the inside of the treatment pipe. After opening the two sealing plates, the water flow can flow inside the treatment pipe. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 is a schematic structural diagram of the present utility model;

[0019] Figure 2 is a front view structural schematic diagram of the present utility model;

[0020] Figure 3 is a schematic connection diagram of the sealing plate and the treatment pipe of the present utility model;

[0021] Figure 4 is a partial top view structural schematic diagram of the present utility model;

[0022] Figure 5 is a schematic internal structure diagram of the treatment pipe of the present utility model;

[0023] Figure 6 is a schematic structural diagram of the coarse-hole plate of the present utility model.

[0024] In the figure: 1 - main pipe; 2 - treatment pipe; 3 - fine-hole plate A; 4 - fine-hole plate B; 5 - power structure; 501 - power telescopic rod B; 502 - long rod; 503 - driven friction plate; 504 - driving friction plate; 505 - toothed plate B; 506 - fixed rod; 507 - horizontal telescopic rod; 508 - gear B; 509 - short shaft; 510 - sleeve block; 511 - elastic dial; 512 - rotating plate; 513 - auxiliary telescopic rod; 6 - fine-hole plate; 7 - coarse-hole plate; 8 - sleeve frame; 9 - bent rod; 10 - water pump; 11 - drain valve; 12 - sealing plate; 13 - power telescopic rod A; 14 - gear A; 15 - toothed plate A; 16 - vertical rod. Detailed implementation mode

[0025] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without making creative efforts belong to the protection scope of the present invention.

[0026] The embodiment of the present invention provides a rubber ball collecting and stirring device, as Figures 1-6 shown, which includes a main pipe 1 and a processing pipe 2. The processing pipe 2 is located above the main pipe 1. Both ends of the processing pipe 2 are fixedly inserted on the outer surface of the main pipe 1. Both ends of the processing pipe 2 are bent downward, the middle of the processing pipe 2 is a horizontal end, and sealing plates 12 are rotatably inserted at the connections between both ends of the processing pipe 2 and the main pipe 1. A power telescopic rod A13 is fixedly connected to the outer surface of the processing pipe 2. Gear A14 is fixedly sleeved at one end of both sealing plates 12 in front of the processing pipe 2. Tooth plate A15 is engaged above both gear A14. Both tooth plates A15 are fixed to the telescopic ends of the power telescopic rod A13. The water pump 10 is located between both sealing plates 12. Both ends of the tooth plate A15 are semi-circular arcs, and the number of teeth of the tooth plate A15 is equal to one-fourth of the number of teeth of the gear A14. When both sealing plates 12 block both ends of the processing pipe 2, the liquid flow cannot drive the rubber balls to move into the processing pipe 2. The power telescopic rod A13 drives the tooth plate A15 to engage with the gear A14, which can drive both sealing plates 12 to rotate synchronously.

[0027] Inside the horizontal end of the treatment pipe 2, a fine-hole disk A3 is fixedly inserted. Inside the horizontal end of the treatment pipe 2 and on the left side of the fine-hole disk A3, a fine-hole disk B4 is rotatably inserted. Inside the treatment pipe 2 and between the fine-hole disk A3 and the fine-hole disk B4, a thick-hole disk 7 is fixedly inserted. A fine-hole plate 6 is arranged in contact with the right side of the thick-hole disk 7. The fine-hole plate 6, the fine-hole disk A3, and the fine-hole disk B4 can only pass water flow, but will block impurities. The holes of the thick-hole disk 7 are smaller than the diameter of the rubber ball, so that the rubber ball cannot move to the right side of the thick-hole disk 7, and impurities can move to the right side of the thick-hole disk 7. The upper end of the fine-hole plate 6 slidably penetrates through the inner wall of the treatment pipe 2. The upper end of the treatment pipe 2 is fixedly connected with a sleeve frame 8. The sleeve frame 8 is slidably sleeved on the outer surface of the fine-hole plate 6. The upper end of the fine-hole plate 6 is fixedly connected with a bent rod 9 that bends forward. A power structure 5 is installed on the outer surface of the treatment pipe 2. The upper end of the fine-hole disk B4 is connected to the front end of the bent rod 9 and the power structure 5. The power structure 5 includes a power telescopic rod B501, a long rod 502, a fixed rod 506, a driving friction plate 504, and a driven friction plate 503. The driving friction plate 504 is located in front of the driven friction plate 503. One end of the fine-hole disk B4 located above the treatment pipe 2 is fixedly sleeved with a gear B508. A toothed plate B505 is meshed in front of the gear B508. The front end of the toothed plate B505 is fixed to the driven friction plate 503. The right side surface of the toothed plate B505 is fixedly connected with a horizontal telescopic rod 507. The horizontal telescopic rod 507 enables the toothed plate B505 to only move in the horizontal direction. Both ends of the toothed plate B505 are semi-circular arcs. The number of teeth of the toothed plate B505 is equal to half of the number of teeth of the gear B508. By meshing with the gear B508, the toothed plate B505 enables the fine-hole disk B4 to rotate half a circle. The other end of the horizontal telescopic rod 507 is fixed to the treatment pipe 2. The driving friction plate 504 is fixed to the long rod 502. The left end of the fixed rod 506 is fixedly connected to the front surface of the sleeve frame 8. When the long rod 502 drives the driving friction plate 504 to contact the driven friction plate 503, the driving friction plate 504 drives the toothed plate B505 to move by contacting the driven friction plate 503.

[0028] A sleeve block 510 is slidably sleeved on the outer surface of the fixed rod 506. A short shaft 509 is fixed to the front surface of the sleeve block 510. The front end of the short shaft 509 is rotatably sleeved with a rotating plate 512. The other end of the rotating plate 512 is rotatably sleeved on the front end of the bent rod 9. An auxiliary telescopic rod 513 is arranged on the left side of the sleeve frame 8. The lower end of the auxiliary telescopic rod 513 is fixed to the treatment pipe 2, and the upper end of the auxiliary telescopic rod 513 is fixed to the bent rod 9. A plurality of elastic flap plates 511 are arranged on the right side of the short shaft 509. The lower end of the elastic flap plate 511 is fixed to the long rod 502. One end of the power telescopic rod B501 is fixed to the long rod 502, and the other end of the power telescopic rod B501 is fixed to the treatment pipe 2. The plurality of elastic flap plates 511 are equidistantly distributed on the upper surface of the long rod 502. The long rod 502 is located in front of the rotating plate 512. The upper end of the elastic flap plate 511 is located above the short shaft 509. When the elastic flap plate 511 drives the sleeve block 510 to move to the left end of the fixed rod 506 by pushing the short shaft 509, the rotating plate 512 rotates to the vertical state. When the long rod 502 continues to move to the left, the elastic flap plate 514 can be displaced from the short shaft 509 through elastic deformation, and the fine hole plate 6 is pushed upward through the bent rod 9. When the long rod 502 moves to the right, the rightmost elastic flap plate 511 is first pushed to the right to push the short shaft 509, so that the fine hole plate 6 re-seals the coarse hole plate 7. One end of the treatment pipe 2 that is bent downward on the right side is fixedly inserted with a water pump 10. The positive and reverse rotation of the water pump 10 can drive the water flow to flow reciprocally. A drain valve 11 is installed on the inner bottom wall of the treatment pipe 2 and between the fine hole plate 6 and the fine hole plate A3. Opening the drain valve 11 can discharge the impurities between the fine hole plate 6 and the fine hole plate A3.

[0029] A plurality of vertical rods 16 are arranged between the coarse hole plate 7 and the fine hole plate B4. The vertical rods 16 are fixedly inserted inside the treatment pipe 2. When the rubber balls collide with the vertical rods 16, the speed of separating the impurities on the surface of the rubber balls is increased.

[0030] Working principle: When it is necessary to clean the impurities attached to the surface of the rubber balls, control the two sealing plates 12 to open so that water can flow in the treatment pipe 2. The power telescopic rod B501 drives the long rod 502 to move to the left. The long rod 502 first drives the toothed plate B505 to move to the left through the active friction plate 504 and the driven friction plate 503, controls the gradual opening of the fine hole plate B4, and starts the water pump 10 to move the rubber balls to between the fine hole plate B4 and the coarse hole plate 7 through the water flow. Then, during the continuous movement of the long rod 502, the gear B508 moves to the right end of the toothed plate B505, so that the fine hole plate B4 seals the treatment pipe 2 again. The elastic dial 511 pushes the short shaft 509 to rotate the rotating plate 512, drives the fine hole plate 6 to move upward to release the blockage of the coarse hole plate 7, starts the water pump 10 to rotate forward and backward, so that the water flow flows back and forth inside the treatment pipe 2. The impurities attached to the surface of the rubber balls are gradually separated under the impact of the water flow. The separated impurities flow between the fine hole plate A3 and the fine hole plate B4. Finally, when the water pump 10 drives the impurities to move to between the fine hole plate A3 and the fine hole plate 6 through the coarse hole plate 7 through the water flow, the power telescopic rod B501 drives the long rod 502 to move to the right, and the elastic dial 511 pushes the lower end of the short shaft 509 and the rotating plate 512 to move to the right, so that the fine hole plate 6 moves downward to leave the impurities between the fine hole plate 6 and the fine hole plate A3. The active friction plate 504 moves to the right and drives the fine hole plate B4 to rotate to the open state through contact friction with the driven friction plate 503. When the water flow flows to the left, the water flow drives the rubber balls to flow back into the main pipe 1, and then rotate the two sealing plates 12 to seal the two ends of the treatment pipe 2.

[0031] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A rubber ball collecting agitator, comprising a main pipe (1) and a processing pipe (2), characterized in that: The processing tube (2) is located above the main tube (1), and both ends of the processing tube (2) are fixedly plugged into the outer surface of the main tube (1). The two ends of the processing tube (2) are bent downward, and the middle of the processing tube (2) is a horizontal end. A fine-pore disk A (3) is fixedly plugged into the inside of the horizontal end of the processing tube (2), and a fine-pore disk B (4) is rotatably plugged into the horizontal end of the processing tube (2) and located on the left side of the fine-pore disk A (3). A coarse-pore disk (7) is fixedly plugged into the inside of the processing tube (2) and located between the fine-pore disk A (3) and the fine-pore disk B (4). The right side of the coarse-pore disk (7) is contacted with a fine-pore plate (6), and the holes of the coarse-pore disk (7) are smaller than the rubber ball. The upper end of the fine-pore plate (6) slides through the inner wall of the processing tube (2), the upper end of the processing tube (2) is fixedly connected to a sleeve frame (8), the sleeve frame (8) is slidably sleeved on the outer surface of the fine-pore plate (6), the upper end of the fine-pore plate (6) is fixedly connected to a bent rod (9) bent forward, the outer surface of the processing tube (2) is installed with a power structure (5), the upper end of the fine-pore disk B (4) is connected to the front end of the bent rod (9) and the power structure (5), the right end of the processing tube (2) bent downward is fixedly plugged with a water pump (10), and the inner bottom wall of the processing tube (2) and located between the fine-pore plate (6) and the fine-pore disk A (3) is installed with a drain valve (11).

2. The rubber ball collecting and stirring device according to claim 1, characterized in that: Sealing disks (12) are rotatably plugged into the connection points between the two ends of the treatment tube (2) and the main tube (1); a power telescopic rod A (13) is fixedly connected to the outer surface of the treatment tube (2); a gear A (14) is fixedly sleeved on one end of the two sealing disks (12) located in front of the treatment tube (2); a toothed plate A (15) is meshed above the two gears A (14); the two toothed plates A (15) are fixed to the telescopic ends of the power telescopic rod A (13); and the water pump (10) is located between the two sealing disks (12).

3. The rubber ball collecting and stirring device according to claim 1, characterized in that: The power structure (5) comprises a power telescopic rod B (501), a long rod (502), a fixed rod (506), an active friction plate (504) and a driven friction plate (503), wherein the active friction plate (504) is located in front of the driven friction plate (503), one end of the fine-mesh plate B (4) located above the processing tube (2) is fixedly sleeved with a gear B (508), a toothed plate B (505) is meshed in front of the gear B (508), the front end of the toothed plate B (505) is fixed to the driven friction plate (503), the right side of the toothed plate B (505) is fixedly connected to a horizontal telescopic rod (507), the other end of the horizontal telescopic rod (507) is fixed to the processing tube (2), the active friction plate (504) is fixed to the long rod (502), the left end of the fixed rod (506) is fixed to the front side of the sleeve frame (8), and the toothed plate B (505) is meshed with the front side of the gear B (508). The fixed connection is that the outer surface of the fixed rod (506) is slidably sleeved with a sleeve block (510), the front side of the sleeve block (510) is fixed with a short shaft (509), the front end of the short shaft (509) is rotatably sleeved with a rotating plate (512), the other end of the rotating plate (512) is rotatably sleeved on the front end of the bent rod (9), an auxiliary telescopic rod (513) is arranged on the left side of the sleeve frame (8), the lower end of the auxiliary telescopic rod (513) is fixed to the processing tube (2), the upper end of the auxiliary telescopic rod (513) is fixed to the bent rod (9), a plurality of elastic dial plates (511) are arranged on the right side of the short shaft (509), the lower end of the elastic dial plates (511) is fixed to the long rod (502), one end of the power telescopic rod B (501) is fixed to the long rod (502), and the other end of the power telescopic rod B (501) is fixed to the processing tube (2).

4. The rubber ball collecting and stirring device according to claim 3, characterized in that: A plurality of elastic plates (511) are equidistantly distributed on the upper surface of the long rod (502), the long rod (502) is located in front of the rotating plate (512), and the upper ends of the elastic plates (511) are located above the short shaft (509).

5. The rubber ball collecting and stirring device according to claim 1, characterized in that: A plurality of vertical rods (16) are arranged between the coarse-pore disk (7) and the fine-pore disk B (4), and the vertical rods (16) are fixedly inserted into the interior of the processing tube (2).

6. The rubber ball collecting and stirring device according to claim 2, characterized in that: The two ends of the tooth plate A (15) are semicircular arc-shaped, and the number of teeth of the tooth plate A (15) is equal to one-fourth of the number of teeth of the gear A (14).

7. The rubber ball collecting and stirring device according to claim 3, characterized in that: Both ends of the tooth plate B (505) are semicircular arc-shaped, and the number of teeth of the tooth plate B (505) is equal to half the number of teeth of the gear B (508).