Water pump anti-rotation device of integrated pump station
By using buffer and diversion structures in the integrated pump station, the problems of vortex and cavitation caused by rapid water flow are solved, improving the stability and service life of the pump.
Patent Information
- Application Number
- CN202520534668.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-25
- Publication Date
- 2025-12-23
- Estimated Expiration
- 2035-03-25
AI Technical Summary
When the pumps in an integrated pumping station are working, the water flow is turbulent, which makes the fluid flow near the pump suction port unstable. This can easily generate vortices or introduce gas, causing cavitation and vibration, and affecting the service life of the pump.
By employing structures such as buffer springs, buffer plates, diverting columns, buffer angles, and buffer columns, the impact force of water flow is reduced through diversion, buffering, and rebound effects, thus preventing the formation of vortices.
It effectively reduces the impact force of water flow, stabilizes the flow state at the pump's suction port, prevents cavitation and vibration, and extends the service life of the pump.
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Figure CN223708082U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to anti-rotation device technical field especially is related to a water pump anti-rotation device of integrated pump station. BACKGROUND
[0002] Integrated pump station is compact in structure, and the spacing between the pump in the pump station and the pump is small, and the number of pumps is generally two or more, and when the water level is high, each pump may be working, and since water is continuously collected into the pump when the pump is working, the vortex generated when the working pump draws water is unstable, thereby affecting the water absorption efficiency and water output of the pump, and the gravitational potential energy of the water flow will impact the device inside the cylinder, and the water flow around the pump is turbulent, which will cause the flow state of the fluid near the liquid suction port of the pump to be unstable, easily causing vortex or bringing in gas, causing the pump to cavitate or vibrate, etc.
[0003] Therefore, a water pump anti-rotation device for an integrated pump station is provided. SUMMARY
[0004] In order to improve the problem that the water flow around the pump is turbulent, which will cause the flow state of the fluid near the liquid suction port of the pump to be unstable, easily causing vortex or bringing in gas, causing the pump to cavitate or vibrate, etc., the utility model provides a water pump anti-rotation device for an integrated pump station.
[0005] The utility model provides a water pump anti-rotation device for an integrated pump station, which adopts the following technical scheme:
[0006] A water pump anti-rotation device for an integrated pump station, comprising a main body, a water inlet is embedded on one side of the top of the main body, and a water outlet is embedded on one side of the bottom of the main body
[0007] Buffer springs are arranged on both sides of the inner wall of the upper part of the main body, buffer plates are arranged at the other ends of the buffer springs, and a ball is arranged on one side of the buffer plates inside the main body.
[0008] A flow dividing column is arranged horizontally above the buffer springs inside the main body, two mirror image buffer angles are arranged between the buffer plates inside the main body, and a buffer column is arranged outside one of the buffer angles inside the main body.
[0009] By adopting the above technical scheme, the phenomenon of vortex of the water pump can be effectively avoided.
[0010] Optionally, the two buffer plates are both concave, buffer particles are arranged on the inner sides of the two buffer plates, the buffer particles are embedded into the buffer plates through grooves, and the buffer particles are circular steel structures.
[0011] By adopting the technical scheme, the water source can be effectively buffered.
[0012] Optionally, the shunt column comprises:
[0013] A shunt plate is arranged on both sides of the shunt column.
[0014] A shunt hole is arranged on the surface of the shunt plate.
[0015] The shunt hole is arranged in a conical shape.
[0016] By adopting the technical scheme, the water flow can be effectively shunted.
[0017] Optionally, the two buffering angles are arranged in a mirror image, the two buffering angles are arranged in a rhombus, and the surfaces of the two buffering angles are arranged at equal distances from the movable plate.
[0018] By adopting the technical scheme, the buffering effect of the water flow can be further achieved.
[0019] Optionally, the movable plate is arranged from large to small or from small to large, and the movable plate is of an elastic structure.
[0020] By adopting the technical scheme, the vortex caused by the turbulent water flow can be avoided.
[0021] Optionally, the buffering column comprises:
[0022] A rotating groove is arranged on both sides of the surface of the buffering column and is arranged vertically.
[0023] A connecting column is embedded in the rotating groove.
[0024] A horizontal rod is arranged vertically and at equal distances on the surface of the horizontal rod.
[0025] A rotating shaft is arranged at the top of the rotating groove and is connected to the connecting column at the bottom.
[0026] By adopting the technical scheme, the water flow can be effectively buffered.
[0027] Optionally, the spacing between the two groups of horizontal rods is different, the spacing between one group of horizontal rods is 5-10 cm, and the spacing between the other group of horizontal rods is 15-20 cm.
[0028] By adopting the technical scheme, the buffering effect of the water source can be further achieved.
[0029] In summary, the utility model has the following beneficial effects:
[0030] 1. This utility model uses a buffer plate, a diversion plate, and a diversion hole. When the water flows into contact with the buffer plate, the impact force of the water flow is offset by the rebound force of the buffer spring, thereby reducing the impact force of the water flow. The diversion plate can divert most of the water flow, and the water flow passes through the inside of the diversion hole, which is tapered. When the water flows through, it can achieve a buffering effect on the water flow, greatly reducing the impact force of the water flow.
[0031] 2. This utility model utilizes buffer angles and buffer columns. When water flows to the buffer angle, it contacts the movable plate. The movable plate is an elastic structure, which bounces back the water the instant it contacts it, thus greatly reducing the impact force of the water flow and preventing vortices from forming. The diamond-shaped buffer angle not only diverts the water flow but also reduces the impact force as the water flows through its three surfaces. When the water reaches the buffer column, the impact force of the water flow strikes the crossbar, causing the crossbar to rotate inside the rotating groove via a pivot. The rotation of the crossbar further reduces the impact force of the water flow. Attached Figure Description
[0032] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0033] Figure 2 This is a schematic diagram of the diversion column structure of this utility model.
[0034] Figure 3 This is a schematic diagram of the buffer column structure of this utility model.
[0035] Figure 4 This is a utility model Figure 3 Enlarged structural diagram at point A in the middle.
[0036] Figure 5 This is a schematic diagram of the buffer angle structure of this utility model.
[0037] Figure 6 This is a schematic diagram of the buffer plate structure of this utility model.
[0038] Explanation of reference numerals in the attached figures:
[0039] 1. Main body; 101. Inlet; 102. Outlet; 103. Buffer spring; 104. Buffer plate; 105. Sphere; 106. Buffer pellet; 2. Diverter column; 201. Diverter plate; 202. Diverter hole; 3. Buffer angle; 301. Movable plate; 4. Buffer column; 401. Rotating groove; 402. Connecting column; 403. Crossbar; 404. Rotating shaft. Detailed Implementation
[0040] The following description, in conjunction with the embodiments of this utility model, includes appendices. Figures 1-6In order to make the technical solutions in the embodiments of the present application clear and complete, obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of the present application.
[0041] Please refer to Figures 1-6 A water pump anti-rotation device of an integrated pump station, comprising a main body 1, a water inlet 101 is embedded on one side of the top of the main body 1, and a water outlet 102 is embedded on one side of the bottom of the main body 1
[0042] The inner wall of the upper part of the main body 1 is provided with a buffer spring 103 on both sides, the other end of the buffer spring 103 is provided with a buffer plate 104, and a ball 105 is arranged on one side of the buffer plate 104 in the main body 1;
[0043] A shunt column 2 is arranged horizontally above the buffer spring 103 in the main body 1, two mirror image buffer angles 3 are arranged between the buffer plates 104 in the main body 1, and a buffer column 4 is arranged outside one of the buffer angles 3 in the main body 1;
[0044] When the water flow enters the inside of the main body 1 through the water inlet 101, the water flow is shunted through the shunt column 2 at this time, and the shunt column 2 can achieve the buffering effect of the water flow, and then the buffer plate 104 achieves the buffering effect of the water flow impact force;
[0045] Further, the buffer column 4 can further achieve the buffering of the water flow.
[0046] Refer to Figure 6 Both of the buffer plates 104 are arranged in a concave shape, and the buffer plates 104 are provided with buffer particles 106 on the inner sides, the buffer particles 106 are embedded into the inside of the buffer plates 104 through grooves, and the buffer particles 106 are circular steel structures;
[0047] When the water flow contacts the buffer plate 104, the buffer plate 104 arranged in a concave shape can achieve the buffering effect of the water flow, and because the flow rate of the water flow impacts the buffer particles 106, the buffer particles 106 roll in the inside of the buffer plate 104, and with the rolling effect of the buffer particles 106, the buffering effect of the water flow can be achieved.
[0048] Refer to Figure 2 The shunt column 2 comprises:
[0049] A shunt plate 201 arranged on both sides of the shunt column 2;
[0050] A shunt hole 202 penetratingly arranged on the surface of the shunt plate 201;
[0051] The shunt hole 202 is conical;
[0052] When the water flow enters the inside of the main body 1 through the water inlet 101, the water flow at this time contacts the shunt column 2, and most of the water flow can be shunted through the shunt plate 201, and the water flow passes through the inside of the shunt hole 202, which is conical, and can achieve the buffering effect of the water flow when the water flow passes through.
[0053] Referring to Figure 1 and Figure 5 , the two buffering angles 3 are mirror images, the two buffering angles 3 are rhombic, and the two buffering angles 3 are arranged with the movable plates 301 at equal distances on the surfaces;
[0054] The movable plates 301 are arranged from large to small or from small to large, and the movable plates 301 are of elastic structure;
[0055] When the water flow reaches the buffering angle 3, the water flow at this time contacts the movable plate 301, and the movable plate 301 is of elastic structure, which will be bounced back in an instant when the water flow contacts it, thereby greatly reducing the impact force of the water flow and avoiding the vortex of the water flow. The rhombic buffering angle 3 not only shunts the water flow, but also passes through three surfaces of the buffering angle 3, thereby reducing the impact force of the water flow.
[0056] Referring to Figure 3 and Figure 4 , the buffering column 4 comprises:
[0057] The rotating groove 401 is provided on both sides of the surface of the buffering column 4 and is vertically provided;
[0058] The connecting column 402 is embedded in the inside of the rotating groove 401;
[0059] The cross bars 403 are vertically and equally arranged on the surface of the cross bars 403;
[0060] The rotating shaft 404 is arranged in the rotating groove 401 at the top and connected with the connecting column 402 at the bottom;
[0061] The spacing between the two groups of cross bars 403 is different, the spacing between one group of cross bars 403 is 5-10 cm, and the spacing between the other group of cross bars 403 is 15-20 cm;
[0062] When the water flow reaches the buffering column 4, the impact force of the water flow hits the cross bars 403, so that the cross bars 403 rotate in the inside of the rotating groove 401 through the rotating shaft 404, and the rotation of the cross bars 403 can reduce the impact force of the water flow;
[0063] Secondly, the spacing between the two groups of cross bars 403 is different, which can avoid the collision phenomenon of the two groups of cross bars 403 in rotation.
[0064] The implementation principle of the utility model is: first, water source enters the inside of main body 1 through water inlet 101, water flow contacts with the shunt plate 201 at this time in the shunt column 2, through the shunt column 2 to the water flow is shunted, reduce the impact force of water flow, then water flow contacts with the buffer plate 104, the impact force of water flow is offset through the rebounding force of buffer spring 103, further reach the reduction of water flow's impact force, water flow enters the buffer angle 3 at this time, through the buffer angle 3 can further reach the buffering effect to water flow, and through the buffer column 4 can better buffer the impact force generated by water flow, avoid the vortex phenomenon of water flow.
[0065] The above is only the preferred embodiment of the utility model, and is not used to limit the utility model, although the utility model is described in detail with reference to the foregoing embodiment, for the person skilled in the art, it still can modify the technical scheme recorded in the foregoing each embodiment, or equivalent replacement to part technical feature. Any modification, equivalent replacement, improvement etc. that is made within the spirit and principle of the utility model, should be contained in the protection scope of the utility model.
Claims
1. An anti-rotation device for an integrated pumping station, comprising a main body (1), wherein an inlet (101) is embedded in one side of the top of the main body (1), and an outlet (102) is embedded in one side of the bottom of the main body (1). Its features are: The upper part of the main body (1) is provided with buffer springs (103) on both sides of the inner wall, and the other end of the buffer spring (103) is provided with a buffer plate (104). Inside the main body (1), a ball (105) is provided on one side of the buffer plate (104). Inside the main body (1), a diversion column (2) is arranged horizontally above the buffer spring (103). Inside the main body (1), two mirror-arranged buffer corners (3) are located between the buffer plates (104). Inside the main body (1), a buffer column (4) is located outside one of the buffer corners (3).
2. The anti-rotation device for an integrated pumping station according to claim 1, characterized in that: Both buffer plates (104) are concave in shape, and buffer particles (106) are provided on the inner side of both buffer plates (104). The buffer particles (106) are embedded into the interior of the buffer plates (104) through grooves. The buffer particles (106) are circular steel structures.
3. The anti-rotation device for an integrated pumping station according to claim 1, characterized in that: The diversion column (2) includes: Diverter plate (201), which is disposed on both sides of diverter column (2); The flow divider hole (202) is formed through the surface of the flow divider plate (201); The diversion hole (202) is tapered.
4. The anti-rotation device for an integrated pumping station according to claim 1, characterized in that: The two buffer corners (3) are set in a mirror image and are set in a rhombus shape. Movable plates (301) are arranged at equal distances on the surfaces of the two buffer corners (3).
5. The anti-rotation device for an integrated pumping station according to claim 4, characterized in that: The movable plate (301) is arranged from large to small or from small to large, and the movable plate (301) is an elastic structure.
6. The anti-rotation device for an integrated pumping station according to claim 1, characterized in that: The buffer column (4) includes: Rotary groove (401) is formed on both sides of the surface of buffer column (4) and is formed vertically; A connecting post (402) is embedded inside a rotating groove (401); The crossbars (403) are arranged vertically at equal intervals on the surface of the crossbars (403); The rotating shaft (404) has a rotating groove (401) at its top and is connected to the connecting column (402) at its bottom.
7. The anti-rotation device for an integrated pumping station according to claim 6, characterized in that: The spacing between the two sets of crossbars (403) is different. The spacing between the crossbars (403) in one set is 5cm-10cm, and the spacing between the crossbars (403) in the other set is 15cm-20cm.