Intelligent pump station water supply equipment

By introducing shock absorption adjustment mechanism and flow monitor into the water supply equipment of the pump station, the problem of vibration damage of pipelines is solved, efficient energy-saving shock absorption and convenient maintenance are achieved, the device life is extended, and the water supply safety and efficiency are improved.

CN120331336APending Publication Date: 2025-07-18CHANGJIANG RIVER SCI RES INST CHANGJIANG WATER RESOURCES COMMISSION +1
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510648412.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-20
Publication Date
2025-07-18

AI Technical Summary

Technical Problem

When the existing pump station water supply equipment is supplying water, excessive water flow speed and excessive pressure will cause the pipeline to vibrate, damage the bolts and pipelines at the connection, and reduce the service life of the device.

Method used

The shock absorption adjustment mechanism is adopted to drive the spring group and arc-shaped elastic plate through the transmission fan, bevel gear and threaded rod to offset the shock force of the pipeline in real time, and clean it with the flow monitor and the air pump to ensure the cleaning and safety of the pipeline.

Benefits of technology

It extends the service life of the device, improves water supply efficiency and safety, and achieves efficient energy-saving and shock-absorbing and convenient maintenance.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120331336A_ABST
    Figure CN120331336A_ABST
Patent Text Reader

Abstract

The invention discloses intelligent pump station water supply equipment, and relates to the technical field of pump station water supply equipment.The intelligent pump station water supply equipment comprises a protective shell, a base plate is fixedly connected to the side edge of the upper portion of the protective shell, a damping adjusting mechanism is arranged outside the base plate and comprises a pipeline arranged outside the base plate, and a transmission rod is rotationally connected to the side edge of the pipeline; the side, close to the pipeline, of the transmission rod is fixedly connected with a transmission fan, the side, away from the transmission fan, of the transmission rod is fixedly connected with a first bevel gear, the side edge of the first bevel gear is in meshed connection with a second bevel gear, and the side, close to the first bevel gear, of the second bevel gear is fixedly connected with a threaded rod. The side, away from the second bevel gear, of the threaded rod is in threaded connection with a threaded cylinder, vibration force generated by the pipeline can be counteracted in real time according to the speed of water flow entering the pipeline, the situation that parts such as bolts at the connecting position and the pipeline are damaged easily due to too long vibration time of the pipeline is avoided, and the service life of the device is prolonged; and meanwhile, the efficient and energy-saving damping effect is achieved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of pumping station water supply equipment, and in particular to a smart pumping station water supply equipment. Background Art

[0002] A pumping station mainly consists of buildings such as intake, outlet, and pump house. Through equipment such as pump units, it uses power machinery to lift water from a lower place to a higher place, or increases the potential energy of water through pressurization to meet the needs of different uses. It plays a crucial role in water conservancy projects and undertakes multiple tasks such as regional irrigation, flood control and drainage, water supply, and hydropower generation. A smart pumping station improves the operation efficiency and reliability of the pumping station, reduces operating costs, improves energy utilization efficiency, reduces manual intervention, and realizes unattended operation of the pumping station through functions such as real-time monitoring, remote control, and data analysis. It can also achieve interconnection and interoperability with the urban water supply system, improving the safety and stability of the water supply system.

[0003] In the prior art, when the pumping station supplies water, water flows with different speeds and pressures enter the pipes inside the pumping station. Excessive speed and pressure can cause the pipes inside the pumping station to vibrate. Long-term pipe vibration is likely to damage parts such as bolts at the joints and the pipes themselves, reducing the service life of the device. Therefore, a smart pumping station water supply equipment is proposed. Summary of the Invention

[0004] The purpose of the present invention is to solve the drawbacks in the prior art that when the pumping station supplies water, water flows with different speeds and pressures enter the pipes inside the pumping station, and excessive speed and pressure can cause the pipes inside the pumping station to vibrate. Long-term pipe vibration is likely to damage parts such as bolts at the joints and the pipes themselves, reducing the service life of the device, and to propose a smart pumping station water supply equipment.

[0005] In order to achieve the above purpose, the present invention adopts the following technical solutions:

[0006] An intelligent pumping station water supply device includes a protective housing. A substrate is fixedly connected to the side above the protective housing. A shock absorption and adjustment mechanism is arranged outside the substrate. The shock absorption and adjustment mechanism includes a pipeline arranged outside the substrate. A transmission rod is rotatably connected to the side of the pipeline. A transmission fan is fixedly connected to the side of the transmission rod close to the pipeline. A first bevel gear is fixedly connected to the side of the transmission rod away from the transmission fan. A second bevel gear is meshed and connected to the side of the first bevel gear. A threaded rod is fixedly connected to the side of the second bevel gear close to the first bevel gear. A threaded barrel is threadedly connected to the side of the threaded rod away from the second bevel gear. A moving plate is fixedly connected to the side of the threaded barrel. A spring group is arranged below the moving plate. An arc-shaped elastic plate is fixedly connected to the side of the spring group close to the pipeline. The water flow inside the pipeline drives the transmission fan to rotate. The transmission fan drives the first bevel gear to rotate through the transmission rod. The first bevel gear drives the threaded rod to rotate through the second bevel gear. The threaded rod drives the moving plate and the spring group to move through the threaded barrel. The spring group drives the arc-shaped elastic plate to move outside the pipeline and compresses the spring group. The spring group applies the elastic potential energy prestress generated through the arc-shaped elastic plate to the outside of the pipeline for shock absorption.

[0007] The above technical solution further includes:

[0008] A square groove is opened inside the substrate. The threaded rod is rotatably connected to the square groove, and the threaded barrel is slidably connected to the square groove below.

[0009] A third bevel gear is meshed and connected to the side of the first bevel gear away from the second bevel gear. The same spring group and arc-shaped elastic plate are arranged on the side of the third bevel gear away from the first bevel gear.

[0010] Among them, the same group of spring group and arc-shaped elastic plate are arranged on the other side of the third bevel gear away from the first bevel gear, so that the two spring groups and arc-shaped elastic plates can simultaneously apply elastic potential energy prestress to the pipeline from the upper and lower sides.

[0011] A chute is opened inside the substrate. A connection component is slidably connected to the side of the chute. The connection component is fixedly connected to the moving plate.

[0012] A pump is arranged on the side of the pipeline. A water inlet pipe is fixedly connected to the side of the pump away from the pipeline. The water inlet pipe is fixedly connected to the protective housing.

[0013] A water outlet valve is fixedly connected to the side of the pipeline away from the pump. A water outlet pipe is fixedly connected to the side of the water outlet valve. The water outlet pipe is fixedly connected to the protective housing.

[0014] A flow monitor is arranged on the side of the water outlet valve away from the protective housing.

[0015] A liquid storage cylinder is fixedly installed above the protective housing. A feed inlet is provided at the top of the liquid storage cylinder. A connection valve is provided on one side of the feed inlet away from the feed port. A gas pump is fixedly connected to one side of the protective housing close to the liquid storage cylinder, and is fixedly connected between the gas pump and the connection valve.

[0016] One side of the connection valve away from the gas pump is fixedly connected with a connecting pipe, and the connecting pipe is fixedly connected to the pipeline.

[0017] A door panel is rotatably connected to the side of the protective housing. A handle is fixedly connected to one side of the door panel away from the protective housing, and a display screen is provided on the side of the door panel.

[0018] The present invention has the following beneficial effects:

[0019] 1. In the present invention, through the shock absorption adjustment mechanism provided, the water flow drives the transmission rod to rotate through the transmission fan. The transmission rod drives the second bevel gear to rotate through the first bevel gear. The second bevel gear drives the spring group to move through the threaded rod and the threaded cylinder, and can cancel the vibration force generated by the pipeline in real time according to the magnitude of the water flow velocity entering the pipeline, avoiding the damage to parts such as bolts at the joints and the pipeline itself caused by the long-term vibration of the pipeline, prolonging the service life of the device, and at the same time achieving an efficient and energy-saving shock absorption effect.

[0020] 2. In the present invention, the flow monitor is provided to monitor the water flow velocity passing through the water outlet valve in real time, facilitating the staff to understand the working state of the pumping station in real time and improving the water supply efficiency of the pumping station. Through the cleaning liquid and the gas pump provided, the pipeline can be cleaned regularly to prevent dirt or bacteria from growing inside the pipeline after long-term use, ensuring the safety and cleanliness of the water supply quality. Through the rotatable door panel and the display screen provided, it is convenient for the staff to repair and monitor the pumping station in real time, improving the operation convenience and safety of the pumping station. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 It is a schematic structural diagram of a smart pumping station water supply device proposed by the present invention;

[0022] Figure 2 It is an external structural diagram of the present invention;

[0023] Figure 3 It is an external side view three-dimensional structural diagram of the present invention;

[0024] Figure 4 It is a partial three-dimensional structural sectional view of the present invention;

[0025] Figure 5 It is a three-dimensional structural diagram of the shock absorption adjustment mechanism in the present invention;

[0026] Figure 6 is Figure 5 The enlarged schematic diagram of the structure at position A in

[0027] Figure 7 is Figure 5 The enlarged schematic diagram of the structure at position B in

[0028] In the figure: 1. Protective housing; 2. Substrate; 3. Pipeline; 4. Driving fan; 5. Driving rod; 6. First bevel gear; 7. Second bevel gear; 8. Threaded rod; 9. Threaded barrel; 10. Moving plate; 11. Spring group; 12. Arc-shaped elastic plate; 13. Square groove; 14. Third bevel gear; 15. Chute; 16. Connection component; 17. Pump; 18. Water inlet pipe; 19. Water outlet valve; 20. Water outlet pipe; 21. Flow monitor; 22. Liquid storage cylinder; 23. Feed inlet; 24. Connection valve; 25. Air pump; 26. Connecting pipe; 27. Door panel; 28. Handle; 29. Display screen. Specific embodiments

[0029] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with 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. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0030] Embodiment 1

[0031] Such as Figures 1-7As shown in the figure, a smart pumping station water supply device proposed by the present invention includes a protective housing 1. A substrate 2 is fixedly connected to the side of the upper part of the protective housing 1. A shock absorption and adjustment mechanism is arranged outside the substrate 2. The shock absorption and adjustment mechanism includes a pipeline 3 arranged outside the substrate 2. A transmission rod 5 is rotatably connected to the side of the pipeline 3. A transmission fan 4 is fixedly connected to the side of the transmission rod 5 close to the pipeline 3. A first bevel gear 6 is fixedly connected to the side of the transmission rod 5 far from the transmission fan 4. A second bevel gear 7 is meshed and connected to the side of the first bevel gear 6. A threaded rod 8 is fixedly connected to the side of the second bevel gear 7 close to the first bevel gear 6. A threaded barrel 9 is threadedly connected to the side of the threaded rod 8 far from the second bevel gear 7. A moving plate 10 is fixedly connected to the side of the threaded barrel 9. A spring group 11 is arranged below the moving plate 10. An arc-shaped elastic plate 12 is fixedly connected to the side of the spring group 11 close to the pipeline 3. The water flow inside the pipeline 3 drives the transmission fan 4 to rotate. The transmission fan 4 drives the first bevel gear 6 to rotate through the transmission rod 5. The first bevel gear 6 drives the threaded rod 8 to rotate through the second bevel gear 7. The threaded rod 8 drives the moving plate 10 and the spring group 11 to move through the threaded barrel 9. The spring group 11 drives the arc-shaped elastic plate 12 to move outside the pipeline 3 and compresses the spring group 11. The spring group 11 applies the elastic potential energy prestress generated through the arc-shaped elastic plate 12 to the outside of the pipeline 3 for shock absorption.

[0032] A square groove 13 is opened inside the substrate 2. The threaded rod 8 is rotatably connected to the square groove 13. The lower part of the threaded barrel 9 is slidably connected to the square groove 13.

[0033] A third bevel gear 14 is meshed and connected to the side of the first bevel gear 6 far from the second bevel gear 7. The same spring group 11 and arc-shaped elastic plate 12 are arranged on the side of the third bevel gear 14 far from the first bevel gear 6.

[0034] A chute 15 is opened inside the substrate 2. A connection component 16 is slidably connected to the side of the chute 15. The connection component 16 is fixedly connected to the moving plate 10.

[0035] In this embodiment, a substrate 2 is fixedly connected to the side of the inner wall of the protective housing 1. When the shock absorption adjustment mechanism arranged outside the substrate 2 is started, when the water flow velocity inside the pipeline 3 gradually increases, the water flow will drive the transmission fan 4 arranged inside the pipeline 3 to rotate. When the transmission fan 4 rotates, it drives the transmission rod 5 to rotate through the inside of the pipeline 3. When the other end of the transmission rod 5 rotates, it drives the first bevel gear 6 fixedly connected thereto to rotate. When the first bevel gear 6 rotates, it drives the second bevel gear 7 meshed with its side to rotate. When the second bevel gear 7 rotates, it drives the threaded rod 8 fixedly connected to its side to rotate. The other end of the threaded rod 8 rotates on the inner wall of the square groove 13 formed inside the substrate 2. The threaded rod 8 rotates through the inside of the threaded barrel 9 and generates a spiral force. Since the threaded barrel 9 is slidably connected to the inner wall of the square groove 13, at this time, the threaded barrel 9 will slide on the inner wall of the square groove 13 and will not rotate therewith. When the threaded barrel 9 slides, it drives the moving plate 10 fixedly connected to its side to start moving. A spring group 11 is arranged below the moving plate 10. The spring group 11 includes multiple springs. When the moving plate 10 moves, it drives the spring group 11 to move. Since the arc-shaped elastic plate 12 fixedly connected to the other end of the spring group 11 fits the outside of the pipeline 3, the spring group 11 begins to be gradually compressed and generates elastic potential energy. The elastic potential energy prestress generated by the spring group 11 is offset by the vibration force transmitted through the arc-shaped elastic plate 12 and the pipeline 3. On the other side of the first bevel gear 6, a third bevel gear 14 is meshed. When the first bevel gear 6 rotates, it drives the third bevel gear 14 to rotate. The third bevel gear 14 will drive the same set of spring group 11 and arc-shaped elastic plate 12 to shock-absorb the pipeline 3 according to the same principle, and adjust the shock-absorbing force in real time according to the magnitude of the water flow velocity, so as to achieve an efficient and energy-saving shock-absorbing effect.

[0036] When the moving plate 10 moves, it drives the connection component 16 fixedly connected to its lower side to move. A sliding groove 15 is formed inside the substrate 2. The other end of the connection component 16 is slidably connected to the inner wall of the sliding groove 15, and multiple groups of the sliding groove 15 and the connection component 16 are provided, mainly to ensure the stability of the shock absorption adjustment mechanism during operation.

[0037] Embodiment Two

[0038] As Figures 1-7 shown, based on Embodiment One, a pump 17 is arranged on the side of the pipeline 3. One side of the pump 17 away from the pipeline 3 is fixedly connected with a water inlet pipe 18, and the water inlet pipe 18 is fixedly connected with the protective housing 1.

[0039] One side of the pipeline 3 away from the pump 17 is fixedly connected with a water outlet valve 19. The side of the water outlet valve 19 is fixedly connected with a water outlet pipe 20, and the water outlet pipe 20 is fixedly connected with the protective housing 1.

[0040] A flow monitor 21 is provided on the side of the water outlet valve 19 away from the protective housing 1.

[0041] A liquid storage cylinder 22 is fixedly installed above the protective housing 1. A feed inlet 23 is provided at the top of the liquid storage cylinder 22. A connection valve 24 is provided on the side of the feed inlet 23 away from the feed inlet 23. A gas pump 25 is fixedly connected to the side of the protective housing 1 close to the liquid storage cylinder 22, and is fixedly connected between the gas pump 25 and the connection valve 24.

[0042] The side of the connection valve 24 away from the gas pump 25 is fixedly connected to a connection pipe 26, and the connection pipe 26 is fixedly connected to the pipeline 3.

[0043] A door panel 27 is rotatably connected to the side of the protective housing 1. A handle 28 is fixedly connected to the side of the door panel 27 away from the protective housing 1. A display screen 29 is provided on the side of the door panel 27.

[0044] In this embodiment, a pump 17 is fixedly connected to the side of the pipeline 3. The pump 17 starts to operate, and conveys water through the water inlet pipe 18 fixedly connected to the side of the pump 17. The other end of the water inlet pipe 18 is arranged outside the protective housing 1. When the pump 17 operates, it conveys water into the pipeline 3. The end of the pipeline 3 away from the pump 17 is fixedly connected to a water outlet valve 19. The water source is transmitted through the water outlet valve 19. The other end of the water outlet valve 19 is fixedly connected to a water outlet pipe 20. The other end of the water outlet pipe 20 is arranged outside the protective housing 1. The water outlet valve 19 conveys the water source through the water outlet pipe 20. A flow monitor 21 is provided above the water outlet valve 19. The flow monitor 21 can monitor the water flow rate inside the water outlet valve 19 in real time. A cleaning liquid for cleaning the inside of the pipeline 3 is stored in the liquid storage cylinder 22 fixedly installed above the protective housing 1. The gas pump 25 provided above the protective housing 1 drives the cleaning liquid inside the liquid storage cylinder 22 to be conveyed into the connection valve 24. The side of the connection valve 24 away from the gas pump 25 is fixedly connected to a connection pipe 26, and the connection pipe 26 is fixedly connected to the inside of the pipeline 3. The connection valve 24 transmits the cleaning liquid into the pipeline 3 through the connection pipe 26 for cleaning, preventing dirt or bacteria from growing inside the pipeline 3 after long-term use. A door panel 27 is rotatably connected to the side of the protective housing 1. The staff can drive the door panel 27 to rotate outside the protective housing 1 by pulling the handle 28 fixedly installed on the side of the door panel 27, so that the enclosed space inside the protective housing 1 is opened, facilitating the staff to perform maintenance. The display screen 29 provided on the side of the door panel 27 is used to display various real-time information of the pumping station.

[0045] Although embodiments of the present invention have been shown and described, those of ordinary skill in the art will understand that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. An intelligent pumping station water supply device, including a protective housing (1), characterized in that A substrate (2) is fixedly connected to the upper side of the protective housing (1). A shock absorption and adjustment mechanism is arranged outside the substrate (2). The shock absorption and adjustment mechanism includes a pipe (3) arranged outside the substrate (2). A transmission rod (5) is rotatably connected to the side of the pipe (3). A transmission fan (4) is fixedly connected to the side of the transmission rod (5) close to the pipe (3). A first bevel gear (6) is fixedly connected to the side of the transmission rod (5) far from the transmission fan (4). A second bevel gear (7) is meshed and connected to the side of the first bevel gear (6). A threaded rod (8) is fixedly connected to the side of the second bevel gear (7) close to the first bevel gear (6). A threaded barrel (9) is threadedly connected to the side of the threaded rod (8) far from the second bevel gear (7). A moving plate (10) is fixedly connected to the side of the threaded barrel (9). A spring group (11) is arranged below the moving plate (10). An arc-shaped elastic plate (12) is fixedly connected to the side of the spring group (11) close to the pipe (3). The water flow inside the pipe (3) drives the transmission fan (4) to rotate. The transmission fan (4) drives the first bevel gear (6) to rotate through the transmission rod (5). The first bevel gear (6) drives the threaded rod (8) to rotate through the second bevel gear (7). The threaded rod (8) drives the moving plate (10) and the spring group (11) to move through the threaded barrel (9). The spring group (11) drives the arc-shaped elastic plate (12) to move outside the pipe (3) and compresses the spring group (11). The spring group (11) applies the elastic potential energy prestress generated through the arc-shaped elastic plate (12) outside the pipe (3) for shock absorption.

2. The intelligent pumping station water supply equipment according to claim 1, characterized in that, A square groove (13) is formed inside the substrate (2). The threaded rod (8) is rotatably connected to the square groove (13). The lower part of the threaded barrel (9) is slidably connected to the square groove (13).

3. The intelligent pumping station water supply equipment according to claim 1, characterized in that, A third bevel gear (14) is meshed and connected to the side of the first bevel gear (6) far from the second bevel gear (7). The same spring group (11) and arc-shaped elastic plate (12) are arranged on the side of the third bevel gear (14) far from the first bevel gear (6).

4. The water supply equipment for an intelligent pumping station according to claim 1, characterized in that, A chute (15) is formed inside the substrate (2). A connection component (16) is slidably connected to the side of the chute (15). The connection component (16) is fixedly connected to the moving plate (10).

5. A smart pumping station water supply device according to claim 1, characterized in that, A pump (17) is arranged on the side of the pipe (3). A water inlet pipe (18) is fixedly connected to the side of the pump (17) far from the pipe (3). The water inlet pipe (18) is fixedly connected to the protective housing (1).

6. The intelligent pumping station water supply device according to claim 5, characterized in that, A water outlet valve (19) is fixedly connected to the side of the pipe (3) far from the pump (17). A water outlet pipe (20) is fixedly connected to the side of the water outlet valve (19). The water outlet pipe (20) is fixedly connected to the protective housing (1).

7. The intelligent pumping station water supply equipment according to claim 6, characterized in that, A flow monitor (21) is arranged on the side of the water outlet valve (19) far from the protective housing (1).

8. The intelligent pumping station water supply device according to claim 1, characterized in that, A liquid storage cylinder (22) is fixedly installed above the protective housing (1). A feed inlet (23) is provided at the top of the liquid storage cylinder (22). A connection valve (24) is provided on one side of the feed inlet (23) away from the feed inlet (23). An air pump (25) is fixedly connected to one side of the protective housing (1) close to the liquid storage cylinder (22). The air pump (25) is fixedly connected to the connection valve (24).

9. The water supply equipment for an intelligent pumping station according to claim 8, characterized in that, A connection pipe (26) is fixedly connected to one side of the connection valve (24) away from the air pump (25). The connection pipe (26) is fixedly connected to the pipe (3).

10. A smart pumping station water supply device according to claim 1, characterized in that, A door panel (27) is rotatably connected to the side of the protective housing (1). A handle (28) is fixedly connected to one side of the door panel (27) away from the protective housing (1). A display screen (29) is provided on the side of the door panel (27).