High-strength resin concrete pump station

By introducing pump body protective covers, shock absorbers, and support damping devices into the resin concrete pump station, combined with an air circulation device, the problems of cylinder wall damage and vibration were solved, achieving high-strength protection and heat dissipation effects for the pump station.

CN116733064BActive Publication Date: 2026-02-24JIANGSU MERCODOR ENVIRONMENTAL TECH CO LTD
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Patent Information

Application Number
CN202310399073.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-07-24
Publication Date
2026-02-24
Estimated Expiration
2043-07-24

AI Technical Summary

Technical Problem

Existing resin concrete pump stations suffer from easily damaged cylinder walls and poor rigidity during landfilling. They also exhibit poor vibration and heat dissipation during operation and lack effective protection and heat dissipation measures.

Method used

It adopts a combination structure of pump body protective cover, shock absorber and support damping device, combined with internal air circulation device, to provide protection, shock absorption and heat dissipation functions.

Benefits of technology

It effectively protects the pump station cylinder wall from damage, reduces the impact of vibration, improves seismic resistance, and achieves deodorization and heat dissipation through air circulation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of pump stations, and more particularly discloses a high-strength resin concrete pump station which comprises a pump station base, the top of the pump station base is fixedly connected with an integrated pump station, a damping ring is fixedly installed on the outer side of the top of the pump station base and located on the integrated pump station, the top of the damping ring is fixedly connected with a damping rod, a supporting damping device is bolt-connected on the outer side of the top of the pump station base and located on the inner side of the damping ring, and a pump body protective cover is fixedly connected on the top of the outer side of the integrated pump station and located on the inner side of the supporting damping device; the pump body protective cover is arranged, which is beneficial to providing protection measures in combination with the damping rod during landfill of the integrated pump station, protecting the outer wall of the integrated pump station from being damaged due to collision of large soil or bricks, realizing the effect of deodorization of the internal space in combination with the internal air circulation device after the landfill, and realizing the damping effect in combination with the damping plate by using the self weight, so that the purpose of damping is achieved.
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Description

Technical Field

[0001] This invention relates to the field of pump station technology, and more specifically to a high-strength resin concrete pump station. Background Technology

[0002] Resin concrete pumping stations refer to integrated pumping stations made of resin concrete. In municipal engineering, pumping stations are devices and projects that can provide hydraulic and pneumatic power with certain pressure and flow, and are called pump and pumping station projects to control the inflow and outflow of water in buildings.

[0003] Currently, pumping stations typically consist of an oil tank, motor, and pump as the main components, followed by water filling equipment, oil supply equipment, compressed air equipment, water supply and drainage equipment, ventilation equipment, and lifting equipment. Traditional pumping stations require a dedicated control room and personnel for management. Both initial investment and ongoing management costs are relatively high.

[0004] Currently, pumping stations generally use a new type of integrated precast resin concrete pumping station. Its advantages include high system integration, easy transportation and hoisting of the precast integrated equipment, and small footprint. The cylinder is made of fiberglass, which has strong resistance to chemical corrosion. Disadvantages include the need for foundation and pit protection during installation; the relatively poor rigidity of the fiberglass structure; and the need to ensure the backfill soil is free of large impurities to avoid damage to the cylinder wall due to the characteristics of the fiberglass structure. This places high demands on construction. Furthermore, during operation, the high motor power generates heat. While the internal ventilation system deodorizes the internal space and provides heat dissipation, utilizing airflow to cool the motor, airflow has a good heat dissipation effect, but the fiberglass structure does not effectively diffuse heat to the pump body. Finally, existing pumping stations lack the capacity to handle vibrations from both internal motor operation and external earthquakes, resulting in poor emergency response and insufficient protection for the pump body and internal components. Summary of the Invention

[0005] In order to overcome the above-mentioned defects of the prior art, the present invention provides a high-strength resin concrete pumping station to solve the problems existing in the background art.

[0006] This invention provides the following technical solution: a high-strength resin concrete pump station, comprising a pump station base, an integrated pump station fixedly connected to the top of the pump station base, a shock-absorbing ring fixedly installed on the top of the pump station base outside the integrated pump station, a shock-absorbing rod fixedly connected to the top of the shock-absorbing ring, a support damping device bolted to the top of the pump station base outside the shock-absorbing ring, a pump body protective cover fixedly connected to the top of the outer side of the integrated pump station inside the support damping device, a pump station top plate fixedly connected to the top of the integrated pump station, a rope storage rack installed on the top of the pump station top plate, a drive motor movably connected to one side of the rope storage rack, rope support frames fixedly connected to both sides of the top of the pump station top plate, and a ladder installed on one side inside the integrated pump station;

[0007] The pump body protective cover includes a protective cover body. Two rope connecting frames are fixedly connected to the top of the protective cover body. A protective guide groove is opened on the outer side of the protective cover body. Multiple protective threaded holes are opened inside the protective guide groove. Multiple inner ventilation chambers are opened on the inner side of the protective cover body. Two external ventilation holes are opened at the top of the inner ventilation chambers of the protective cover body. A fixed bottom hole is opened at the bottom of the inner ventilation chambers of the protective cover body at the position of the external ventilation holes. A threaded circular groove is opened at the bottom of the protective cover body at the position of the fixed bottom hole. A protective base plate is welded to the bottom of the protective cover body inside the protective guide groove. A damping connecting groove is opened at the bottom of the outer side of the protective base plate.

[0008] Furthermore, the pump station base includes a base base, and multiple anchor holes are opened around the top of the base base. The integrated pump station includes the main body of the station, and a ventilation frame is fixedly connected inside the main body of the station. A ventilation connection port is opened on the outside of the ventilation frame, and an air outlet is opened at the bottom of the ventilation connection port. An air circulation device is installed at the bottom of the air outlet. A water inlet is opened at the bottom of one side of the main body of the station, and a water outlet is opened at the top of the other side of the main body of the station. The shock-absorbing rod includes a shock-absorbing main rod, and an air sealing ring is fixedly connected to the top of the shock-absorbing main rod.

[0009] Furthermore, the support damping device includes a support outer plate, which includes an outer inclined plate. One side of the outer inclined plate has an outer plate groove, and a spring positioning rod is welded to the bottom of the outer plate groove. The other side of the bottom of the outer inclined plate is fixedly connected to an outer plate threaded hole. The top of the support outer plate is fixedly connected to an outer plate connecting plate, and one side of the outer plate connecting plate has multiple top threaded holes. A damping plate is installed inside the outer plate groove, and an inner plate is fixedly connected to the other side of the damping plate. An inner inclined block is fixedly connected to the bottom of the inner plate. A longitudinal pushing device is installed on the top of the spring positioning rod. The longitudinal pushing device includes a pushing inclined block, and a spring sleeve is fixedly connected to the bottom of the pushing inclined block. A pushing spring is installed inside the spring sleeve.

[0010] Furthermore, the air sealing ring is made of copper sheet, and the diameter of the air sealing ring is the same as the diameter of the external ventilation hole.

[0011] Furthermore, the diameter of the external ventilation hole is larger than the diameter of the threaded groove, the air sealing ring slides in the external ventilation hole, and the shock-absorbing main rod slides in the fixed bottom hole.

[0012] Furthermore, the top of the pump station base is provided with multiple anchor holes, and multiple anchors are installed at the bottom of the anchor holes. The rope storage frame is a detachable bracket, and both ends of the lifting rope are fixed to the rope storage frame.

[0013] Furthermore, a rubber plate is installed on the inner surface of the damping plate, the top of the rubber plate is connected to the pump body protective cover, the side of the rubber block is attached to the outer surface of the integrated pump station, and the inner plate is installed inside the inclined groove of the outer plate.

[0014] Furthermore, the top of the propulsion ramp has an inclined surface, the angle of which is the same as that of the inner ramp, and the width of the propulsion ramp is the same as the moving distance of the inner plate.

[0015] The technical effects and advantages of this invention are as follows:

[0016] This invention, by providing a pump body protective cover, facilitates the use of shock-absorbing rods to provide protection during the landfilling process of the integrated pump station, protecting the outer wall of the integrated pump station from damage caused by collisions with large soil or bricks. After landfilling, it combines with an internal air circulation device to achieve the effect of deodorizing the internal space, and at the same time, it uses its own weight in combination with a damping plate to achieve a damping effect and achieve the purpose of shock reduction.

[0017] This invention, by incorporating shock-absorbing rods, effectively reduces vibrations generated inside the integrated pump station, preventing disruption to the normal operation of other components while ensuring the stability of all connection points. It also provides support for the pump body's protective cover, reducing surface collapse caused by the pump's own weight. Furthermore, it facilitates heat transfer during ventilation to the shock-absorbing main rods and then to the bottom, combining solid and gas heat dissipation and better addressing the overheating issue caused by the pump motor's operation.

[0018] This invention incorporates a damping plate, which helps to reduce external vibrations such as earthquakes. While vertically supporting the pump body's protective cover, the rubber material used in conjunction with the plate provides damping and vibration reduction, maximizing the protection of the internal components of the integrated pump station. Furthermore, its combination with the shock-absorbing rod prevents direct damage to the integrated pump station from external forces, providing support and protection and increasing the overall strength of the integrated pump station.

[0019] The present invention features a rope storage rack, which facilitates the control of the pump body protective cover's ascent, balances the gravity on both sides, and makes the ascent process of the pump body protective cover more stable. At the same time, the detachable structure does not occupy internal space during normal operation, increasing the ease of installation of the pump station. Attached Figure Description

[0020] Figure 1 This is a schematic diagram of the overall structure of the present invention.

[0021] Figure 2 This is a cross-sectional view of the overall structure of the present invention.

[0022] Figure 3 This is a schematic diagram of the integrated pump station structure of the present invention.

[0023] Figure 4 This is a schematic diagram of the pump body protective cover structure of the present invention.

[0024] Figure 5 This is a cross-sectional view of the pump body protective cover structure of the present invention.

[0025] Figure 6 This is a schematic diagram of the support damping device structure of the present invention.

[0026] Figure 7 This is a schematic diagram of structure A of the present invention.

[0027] Figure 8 This is a schematic diagram of the supporting outer plate structure of the present invention.

[0028] Figure 9 This is a flowchart of a resin concrete pump body installation method according to the present invention.

[0029] The attached diagram is labeled as follows: 1. Pump station base; 101. Base foundation; 102. Anchor bolt hole; 2. Integrated pump station; 201. Main body of the station; 202. Ventilation frame; 203. Water inlet; 204. Water outlet; 205. Ventilation connection port; 206. Air outlet; 3. Vibration damping ring; 4. Vibration damping rod; 401. Vibration damping main rod; 402. Air sealing ring; 5. Support damping device; 501. Support outer plate; 5011. Outer inclined plate; 5012. Outer plate inclined groove; 5013. Spring positioning rod; 5014. Outer plate threaded hole; 502. Outer plate connecting plate; 503. Top threaded hole; 504. 505 Damping plate; 506 Inner inclined block; 507 Longitudinal propulsion device; 5071 Propulsion inclined block; 5072 Spring sleeve; 5073 Propulsion spring; 6. Pump body protective cover; 601 Protective cover body; 602 Rope connecting frame; 603 Protective threaded hole; 604 External ventilation hole; 605 Inner ventilation cavity; 606 Fixed bottom hole; 607 Threaded circular groove; 608 Protective base plate; 609 Damping connecting groove; 610 Protective guide groove; 7. Pump station top plate; 8. Drive motor; 9. Rope storage rack; 10. Rope support frame; 11. Ladder. Detailed Implementation

[0030] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings. In addition, the forms of the various structures described in the following embodiments are merely illustrative. The high-strength resin concrete pump station involved in the present invention is not limited to the structures described in the following embodiments. All other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0031] Reference Figure 1 and Figure 4-5 This invention provides a high-strength resin concrete pump station, including a pump station base 1, an integrated pump station 2 fixedly connected to the top of the pump station base 1, a shock-absorbing ring 3 fixedly installed on the top of the pump station base 1 outside the integrated pump station 2, a shock-absorbing rod 4 fixedly connected to the top of the shock-absorbing ring 3, a support damping device 5 bolted to the top of the pump station base 1 outside the shock-absorbing ring 3, a pump body protective cover 6 fixedly connected to the top of the outer side of the integrated pump station 2 inside the support damping device 5, a pump station top plate 7 fixedly connected to the top of the integrated pump station 2, a rope storage rack 9 installed on the top of the pump station top plate 7, a drive motor 8 movably connected to one side of the rope storage rack 9, rope support frames 10 fixedly connected to both sides of the top of the pump station top plate 7, and a ladder 11 installed on one side inside the integrated pump station 2.

[0032] The pump body protective cover 6 includes a protective cover body 601. Two rope connecting brackets 602 are fixedly connected to the top of the protective cover body 601. A protective guide groove 610 is opened on the outer side of the protective cover body 601. Multiple protective threaded holes 603 are opened inside the protective guide groove 610. Multiple inner ventilation chambers 605 are opened on the inner side of the protective cover body 601. Two external ventilation holes 604 are opened on the top of the inner ventilation chambers 605 of the protective cover body 601. A fixing bottom hole 606 is opened at the bottom of the inner ventilation chambers 605 at the position of the external ventilation holes 604. A threaded circular groove 607 is opened at the bottom of the protective cover body 601 at the position of the fixing bottom hole 606. A protective base plate 608 is welded to the bottom of the protective cover body 601 inside the protective guide groove 610. A damping connecting groove 609 is opened on the bottom of the outer side of the protective base plate 608.

[0033] In this embodiment, it should be specifically explained that the main difference between this embodiment and the prior art is that in this embodiment, the rising effect of the pump station protective cover is combined with the shock absorber to achieve protection of the pump station during the landfill process. At the same time, when the protective cover rises to the top, it is combined with the internal air circulation device to achieve the purpose of internal air circulation and deodorization. Specifically, the shock absorber 4, the support damping device 5, and the pump body protective cover 6 are used.

[0034] The above-described structure is the main structure of this embodiment, which solves the problem that the thin and rigid cylinder walls of concrete pumping stations are prone to damage during the backfilling process. It also solves the problem that the protection capability of the pumping station cylinder is reduced due to earthquakes and internal pump body vibrations during operation. The integrated pumping station 2 is an existing structure. The specific structure and connection method of the internal air circulation device of the integrated pumping station 2 will not be described in detail in this embodiment. In addition, the connection method of the internal pipeline system of the integrated pumping station 2 is also existing technology, so this application does not provide a detailed explanation.

[0035] Reference Figure 2-3 The pump station base 1 includes a base 101, and multiple anchor holes 102 are provided around the top of the base 101. The integrated pump station 2 includes the main body 201, and a ventilation frame 202 is fixedly connected inside the main body 201. A ventilation connection port 205 is provided on the outside of the ventilation frame 202. An air outlet 206 is provided at the bottom of the ventilation connection port 205. An air circulation device is installed at the bottom of the air outlet 206. A water inlet 203 is provided at the bottom of one side of the main body 201, and a water outlet 204 is provided at the top of the other side of the main body 201. The shock absorber 4 includes a shock absorber main rod 401, and an air sealing ring 402 is fixedly connected to the top of the shock absorber main rod 401.

[0036] In this embodiment, it should be specifically noted that: the air sealing ring 402 is made of copper metal sheet, which helps to improve the heat dissipation efficiency of the shock-absorbing main rod 401. The diameter of the air sealing ring 402 is the same as the diameter of the external ventilation hole 604. The diameter of the external ventilation hole 604 is larger than the diameter of the threaded groove 607. During the rise of the pump body protective cover 6, the air sealing ring 402 slides in the external ventilation hole 604, and the shock-absorbing main rod 401 slides in the fixed bottom hole 606, which plays a guiding role and provides protection for the bottom of the pump body protective cover 6. After the pump body protective cover 6 rises to the top, the air sealing ring 402 covers the top of the fixed bottom hole 606 from the bottom of the inner ventilation cavity 605, which not only seals the fixed bottom hole 606 but also increases the contact surface with air and enhances the heat dissipation effect.

[0037] The width of the damping connection groove 609 is the same as the width of the damping plate 504. When the pump body protective cover 6 is raised to the top, the damping plate 504 is pressed against the outer surface of the integrated pump station 2 under the action of the longitudinal propulsion device 507 and the top is moved to the bottom of the damping connection groove 609, which plays a supporting role and provides the purpose of buffering vibration by utilizing its own damping effect.

[0038] The top of the pump station base 1 is provided with multiple anchor holes 102. The pump station base 1 is installed at the bottom of the pit and multiple anchors are installed at the bottom through the anchor holes 102 to increase the stability of the pump station. The rope storage frame 9 is a detachable support. Both ends of the rope are fixed on the rope storage frame 9. When the rope storage frame 9 rotates, the lifting ropes on both sides move upward synchronously.

[0039] Reference Figure 6-8 The support damping device 5 includes a support outer plate 501, which includes an outer inclined plate 5011. An outer inclined plate groove 5012 is formed on one side of the outer inclined plate 5011. A spring positioning rod 5013 is welded to the bottom of the outer inclined plate groove 5012. An outer plate threaded hole 5014 is fixedly connected to the other side of the bottom of the outer inclined plate 5011. An outer plate connecting plate 502 is fixedly connected to the top of the support outer plate 501. Multiple top threaded holes 503 are formed on one side of the outer plate connecting plate 502. A damping plate 504 is installed inside the outer plate inclined groove 5012. An inner plate 505 is fixedly connected to the other side of the damping plate 504. An inner inclined block 506 is fixedly connected to the bottom of the inner plate 505. A longitudinal pushing device 507 is installed on the top of the spring positioning rod 5013. The longitudinal pushing device 507 includes a pushing inclined block 5071. A spring sleeve 5072 is fixedly connected to the bottom of the pushing inclined block 5071. A pushing spring 5073 is installed inside the spring sleeve 5072.

[0040] In this embodiment, it should be specifically noted that: a rubber plate is installed on the inner surface of the damping plate 504, and the top of the rubber plate is connected to the pump body protective cover 6. In the event of an earthquake, the side of the rubber plate is pressed against the outer surface of the integrated pump station 2, and the top is located at the bottom of the pump body protective cover 6 and vibrates under the action of the pump body protective cover 6. Due to the damping characteristics of the rubber itself, the movement of the top will not cause the bottom to move and affect the stability of the integrated pump station 2. Moreover, the vibration is gradually eliminated under the inherent characteristics of the rubber, achieving the protective effect and making the pump station more earthquake resistant. The inner plate 505 is installed inside the outer plate inclined groove 5012. When the damping plate 504 starts to move under the action of the longitudinal propulsion device 507, the inner plate 505 is always in the outer plate inclined groove 5012. The inner movement of the pusher block 5071 serves as a positioning support, preventing the damping plate 504 from detaching from the inner support plate 501 and tilting. The top of the pusher block 5071 has an inclined surface with the same angle as the inner inclined block 506. The width of the pusher block 5071 is the same as the moving distance of the inner plate 505. When the damping plate 504 detaches from the protective base plate 608, the pusher block 5071 moves upward under the action of the pusher spring 5073, and the damping plate 504 moves outward, causing the top to move into the damping connecting groove 609. At this time, the side of the pusher block 5071 supports the back of the inner plate 505, so that the damping plate 504 is in close contact with the outer surface of the integrated pump station 2. At the same time, the pusher block 5071 provides lateral support for the inner plate 505.

[0041] Working principle of the invention:

[0042] The main problem solved by this embodiment is to use the rising effect of the pump station protective cover in combination with the shock-absorbing rod to protect the pump station during the landfill process. At the same time, when the protective cover rises to the top, it is combined with the internal air circulation device to achieve the purpose of internal air circulation and deodorization. This solves the problem that the current concrete pump station is prone to cylinder wall damage during the landfill process due to the thin cylinder wall and poor rigidity. It also solves the problem of reduced protection capability of the pump station cylinder caused by earthquakes and internal pump body vibration during operation.

[0043] The specific steps are as follows:

[0044] Installation process:

[0045] S1: Open a foundation pit, install a base at the bottom of the pit, and lay anchors at the bottom of the base. One end of the anchor is installed at the bottom of the pit, and the other end is fixed on the base.

[0046] S2: Install an integrated pump station 2, shock absorber 4, support damping device 5 and pump body protective cover 6 on the top of the base, and connect the bottom water inlet pipe. The shock absorber 4 is installed inside the external ventilation hole 604. The support damping device 5 is fixed to the pump station base 1 by bolts through the threaded hole 5014 on the outer plate. The top of the integrated pump station 2 is equipped with a lifting rope on the rope storage frame 9 and the other end of the lifting rope is passed through the rope support frame 10 and fixed to the rope connection frame 602.

[0047] S3: Remove the foundation pit protection device, start the drive motor 8, and store the two lifting ropes on both sides on the rope storage rack 9. The two lifting ropes simultaneously lift the pump body protective cover 6 upward. When the pump body protective cover 6 rises, the outer plate connecting plate 502 slides in the protective guide groove 610 to guide the direction. At the same time, the protective bottom plate 608 blocks the movement of the inner plate 505, keeping it stationary inside the outer plate inclined groove 5012. While the pump body protective cover 6 moves, the protective soil at the edge of the pump station is filled. The protective soil first comes into contact with the shock absorber 4. Contact with the support damping device 5, large soil blocks cannot contact the outer wall of the main body 201 under the blocking effect of the shock-absorbing main rod 401, thus achieving the protection effect. During the movement, the shock-absorbing main rod 401 slides inside the external ventilation hole 604 and the fixed bottom hole 606. Since the diameter of the fixed bottom hole 606 is smaller than the diameter of the external ventilation hole 604 and the same as the diameter of the shock-absorbing main rod 401, the shock-absorbing main rod 401 always has a short working length during the sliding filling process, thus giving it a good protective effect.

[0048] S4: Fix the protective cover and support frame of the pump station, install the air circulation device of the pump station at the bottom of the air outlet 206, install the fixing bolts at the bottom threaded groove 607 and the protective threaded hole 603 of the pump station, remove the drive motor 8 and the rope storage rack 9 after installation, and install an air protection cover on the top of the external ventilation hole 604 to prevent debris from falling into it during ventilation.

[0049] Usage: When internal vibration occurs, since the damping main rod 401 is fixed inside the soil, the vibration effect is transmitted to the outside through the damping main rod 401. Under the buffering effect of the damping main rod 401, the vibration effect is greatly weakened when it is transmitted from the bottom to the top, and it will not affect the operation of other internal components. When external vibration occurs, the external vibration first contacts the supporting outer plate 501 and is transmitted. However, under the damping effect of the damping plate 504, the external vibration will not be transmitted to the integrated pump station 2. When ventilation occurs, the odor inside the pump station and the heat generated by the operation of the pump body are transferred to the inside through the ventilation connection port 205 under the drive of the air. At the same time, some heat is transferred to the damping main rod 401 through the air sealing ring 402 and then spread into the soil through the damping main rod 401, achieving a dual heat dissipation effect of solid and gas.

[0050] Secondly, it also solved the problem of reduced stability caused by the additional pressure exerted on the cylinder by the pump body protective cover 6 under its own gravity.

[0051] When the pump body protective cover 6 moves to the top position, the protective guide groove 610 loses its blocking effect on the damping plate 504. Under the action of the longitudinal propulsion device 507, the inner plate 505 moves towards the side close to the integrated pump station 2. Since the top width of the damping plate 504 is the same as the width of the damping connecting groove 609 and the inner surface is made of rubber, the damping plate 504 is pressed against the outer surface of the integrated pump station 2 under the action of the longitudinal propulsion device 507 and the top is fixed to the bottom of the damping connecting groove 609, which provides vertical support for the pump body protective cover 6. At the same time, in the event of external earthquakes or other accidents, the rubber material and the structure of the annular pump body protective cover 6 can effectively reduce the impact of external vibration on the internal structure. The supporting damping device 5 provides vertical support for the pump body protective cover 6 while using the damping effect to buffer the vibration, reducing the impact on the internal air circulation process caused by the displacement of the inner ventilation cavity 605 due to the weight and vibration of the pump body protective cover 6.

Claims

1. A high-strength resin concrete pump station, comprising a pump station base (1), characterized in that: An integrated pump station (2) is fixedly connected to the top of the pump station base (1). A shock-absorbing ring (3) is fixedly installed on the outside of the integrated pump station (2) on the top of the pump station base (1). A shock-absorbing rod (4) is fixedly connected to the top of the shock-absorbing ring (3). A support damping device (5) is bolted to the outside of the shock-absorbing ring (3) on the top of the pump station base (1). A pump body protective cover (6) is fixedly connected to the inside of the support damping device (5) on the top of the outside of the integrated pump station (2). A pump station top plate (7) is fixedly connected to the top of the integrated pump station (2). A rope storage rack (9) is installed on the top of the pump station top plate (7). A drive motor (8) is movably connected to one side of the rope storage rack (9). Rope support frames (10) are fixedly connected to both sides of the top of the pump station top plate (7). A ladder (11) is installed on one side inside the integrated pump station (2). The pump body protective cover (6) includes a protective cover body (601), with two rope connecting brackets (602) fixedly connected to the top of the protective cover body (601). A protective guide groove (610) is provided on the outer side of the protective cover body (601), and multiple protective threaded holes (603) are provided inside the protective guide groove (610). Multiple inner ventilation chambers (605) are provided on the inner side of the protective cover body (601), and two... An external ventilation hole (604) is provided. The protective cover body (601) has a fixed bottom hole (606) at the bottom of the inner ventilation cavity (605) located at the position of the external ventilation hole (604). The protective cover body (601) has a threaded circular groove (607) at the position of the fixed bottom hole (606) at the bottom. The protective cover body (601) has a protective base plate (608) welded to the bottom inside the protective guide groove (610). The protective base plate (608) has a damping connection groove (609) at the bottom outside the outer side.

2. The high-strength resin concrete pumping station according to claim 1, characterized in that: The pump station base (1) includes a base base (101), and multiple anchor holes (102) are provided around the top of the base base (101). The integrated pump station (2) includes the main body (201), and a ventilation frame (202) is fixedly connected inside the main body (201). A ventilation connection port (205) is provided on the outside of the ventilation frame (202). An air outlet (206) is provided at the bottom of the ventilation connection port (205). An air circulation device is installed at the bottom of the air outlet (206). A water inlet (203) is provided at the bottom of one side of the main body (201), and a water outlet (204) is provided at the top of the other side of the main body (201). The shock absorber (4) includes a shock absorber main rod (401), and an air sealing ring (402) is fixedly connected to the top of the shock absorber main rod (401).

3. A high-strength resin concrete pumping station according to claim 1, characterized in that: The support damping device (5) includes a support outer plate (501), which includes an outer inclined plate (5011). An outer inclined plate groove (5012) is provided on one side of the outer inclined plate (5011), and a spring positioning rod (5013) is welded to the bottom of the outer inclined plate groove (5012). An outer plate threaded hole (5014) is fixedly connected to the other side of the bottom of the outer inclined plate (5011). An outer plate connecting plate (502) is fixedly connected to the top of the support outer plate (501), and a plurality of top threaded holes (503) are provided on one side of the outer plate connecting plate (502). A damping plate (504) is installed inside the outer plate inclined groove (5012). An inner plate (505) is fixedly connected to the other side of the damping plate (504). An inner inclined block (506) is fixedly connected to the bottom of the inner plate (505). A longitudinal propulsion device (507) is installed on the top of the spring positioning rod (5013). The longitudinal propulsion device (507) includes a propulsion inclined block (5071). A spring sleeve (5072) is fixedly connected to the bottom of the propulsion inclined block (5071). A propulsion spring (5073) is installed inside the spring sleeve (5072).

4. A high-strength resin concrete pumping station according to claim 2, characterized in that: The air sealing ring (402) is made of copper metal sheet, and the diameter of the air sealing ring (402) is the same as the diameter of the external ventilation hole (604).

5. A high-strength resin concrete pumping station according to claim 1, characterized in that: The diameter of the external ventilation hole (604) is larger than the diameter of the threaded groove (607), the air sealing ring (402) slides in the external ventilation hole (604), and the shock-absorbing main rod (401) slides in the fixed bottom hole (606).

6. A high-strength resin concrete pumping station according to claim 1, characterized in that: The top of the pump station base (1) is provided with multiple anchor holes (102), and multiple anchors are installed at the bottom of the anchor holes (102). The rope storage frame (9) is a detachable bracket, and both ends of the lifting rope are fixed on the rope storage frame (9).

7. A high-strength resin concrete pumping station according to claim 3, characterized in that: A rubber plate is installed on the inner surface of the damping plate (504). The top of the rubber plate is connected to the pump body protective cover (6). The side of the rubber block is attached to the outer surface of the integrated pump station (2). The inner plate (505) is installed inside the outer plate inclined groove (5012).

8. A high-strength resin concrete pumping station according to claim 3, characterized in that: The top of the pusher block (5071) has an inclined surface, the inclination angle of which is the same as that of the inner inclined block (506), and the width of the pusher block (5071) is the same as the moving distance of the inner panel (505).

Citation Information

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