Buried box pump integrated anti-floating pump station

By installing filter components and impurity removal modules in the pump station box, the problem of impurities deposited in water is solved, and the water quality is improved and the operation is simple.

CN120486533AInactive Publication Date: 2025-08-15JIANGSU HUASHAWATER SUPPLY & DRAINAGE TECH CO LTD
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Patent Information

Application Number
CN202510779018.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-12
Publication Date
2025-08-15
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing integrated anti-floating pump station lacks a filter structure, which leads to the deposition of impurities in the water and affects the water quality.

Method used

Filtration components are installed in the box of the pump station, including support rings and filter mesh, fixed by connecting rods and clips, filtering the water is filtered, and impurity removal modules are installed in the exhaust pipe to absorb impurities.

Benefits of technology

Effectively prevent impurities in the water, improve water quality, reduce the labor intensity of operators, and ensure the cleanliness and safety of the pump station.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a buried box and pump integrated anti-floating pump station, and relates to the technical field of water supply equipment, the buried box and pump integrated anti-floating pump station comprises a floating pump station main body, the floating pump station main body comprises a box body, an injection assembly is arranged on the top wall of the box body in a penetrating manner, the injection assembly comprises a connecting pipe arranged on the top wall of the box body, and fixing plates are arranged on the two sides of a shell; a limiting groove is formed in the front wall of the shell, an assembling cover is arranged on the shell, clamping pieces are arranged on the inner side of the assembling cover and the inner side of the shell, and a filtering assembly is arranged on the tops of the two clamping pieces. By installing the filter assembly, the shell fixes the fixing plates on the two sides, the front faces of the fixing plates are connected with the assembling plate through the connecting rods, the assembling cover is conveniently fixed and embedded into the inner side of the limiting groove, a user can conveniently install the assembling cover, the assembling cover and the shell fix the clamping piece on the inner side, the stability of the clamping piece is guaranteed, the clamping piece fixes the filter assembly, and the filtering effect is improved. The filtering assembly filters water, excessive impurities in water are prevented, and the water quality is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of water supply equipment, in particular to an underground box pump integrated anti-floating pump station. Background Art

[0002] As cities develop, land costs are rising. To meet the water supply and fire protection needs of urban residents, water tanks and pump houses are generally built underground. Traditional pumping stations typically install pumping equipment in precast concrete pump houses, with relays controlling the start and stop of the pumps. Traditional concrete pumping stations are typically constructed and installed on-site, resulting in a relatively long construction period and high construction costs. Furthermore, the independence of equipment suppliers and civil engineering contractors leads to errors in interoperability and unclear after-sales service responsibilities. If water tanks and pump houses are prefabricated directly from metal molded panels, additional measures must be taken to ensure they are resistant to buoyancy.

[0003] Patent document CN222340222U discloses an underground, integrated, anti-floating pump station with a box pump. The station comprises a press table, which is hollow inside. An extrusion assembly is mounted on the upper side of the press table. A jacking assembly is mounted inside the press table. The press table has a through-hole on its upper surface, through which the upper portion of the jacking assembly passes. This utility model improves the efficiency of the extrusion assembly and squeezes the cheese into shape, facilitating its subsequent segmentation. The jacking assembly facilitates all-in-one collection of the cheese, improving collection efficiency.

[0004] The existing integrated anti-floating pump station lacks a filtering structure inside, which easily causes impurities in the water to settle in the box, affecting the water quality inside the box. Summary of the Invention

[0005] The purpose of the present invention is to provide an underground box pump integrated anti-floating pump station to solve the technical problem proposed in the above background technology that the integrated anti-floating pump station lacks a filtering structure inside, which easily causes impurities in the water to deposit in the box and affect the water quality in the box.

[0006] To achieve the above-mentioned objectives, the present invention provides the following technical solutions: an underground box pump integrated anti-floating pump station, comprising: a floating pump station main body, the floating pump station main body comprises a box body, an injection assembly is arranged through the top wall of the box body, the injection assembly comprises a connecting pipe arranged on the top wall of the box body, a butt pipe is arranged on the connecting pipe, a shell is arranged at the top end of the butt pipe, fixing plates are arranged on both sides of the shell, a limiting groove is provided on the front wall of the shell, an assembly cover is arranged on the shell, assembly plates are arranged on both sides of the assembly cover, connecting rods are arranged through the inner sides of the assembly plate and the fixing plate, clamps are arranged on the inner sides of the assembly cover and the shell, and a filter assembly is arranged on the top of the two groups of clamps.

[0007] According to the embodiment of the present invention, the underground box pump integrated anti-floating pump station includes a filter assembly including a support ring disposed above the clamp, a filter screen disposed at the bottom of the support ring, and a water inlet disposed at the top of the shell.

[0008] According to the embodiment of the present invention, the underground box pump integrated anti-floating pump station is provided with a corrosion-resistant layer on the inner side of the box body, a limiting screw is provided on the inner side of the corrosion-resistant layer, and a reinforcing component is provided on the outer side of the limiting screw.

[0009] According to the embodiment of the buried box pump integrated anti-floating pump station of the present invention, the reinforcement component includes a support plate arranged on the outside of the limit screw, reinforcement rods are arranged between the support plates, and several groups of reinforcement components are installed on the inner side of the box body.

[0010] According to the underground box-pump integrated anti-floating pump station of the embodiment of the present invention, an exhaust pipe is provided through the top wall of the box body, and the exhaust pipe is located behind the connecting pipe.

[0011] According to the embodiment of the present invention, the underground box pump integrated anti-floating pump station is provided with an inspection port through the top wall of the box body, and an inspection cover is provided on the top of the inspection port through a threaded movement, and the inspection cover is located on one side of the connecting pipe.

[0012] According to the underground box-pump integrated anti-floating pump station of the embodiment of the present invention, the top wall of the box body is provided with a protection box, and the protection box is located behind the exhaust pipe.

[0013] According to the buried box pump integrated anti-floating pump station of an embodiment of the present invention, a booster pump is arranged on the top of the box body, and an input interface is arranged at the input end of the booster pump. A water suction pipe is arranged at one end of the input interface through a bolt, and the water suction pipe passes through the top wall of the box body. An output interface is arranged at the output end of the booster pump, and the output interface passes through the rear wall of the protective box.

[0014] According to the embodiment of the present invention, the underground box pump integrated anti-floating pump station, the exhaust pipe includes an upper section and a lower section, the upper section has a lower end, the lower section has an upper end, and a debris removal module is arranged between the lower and upper ends.

[0015] According to the underground box pump integrated anti-floating pump station according to the embodiment of the present invention, the debris removal module includes a clamping mechanism and an internal debris removal component. The clamping mechanism includes two baffles and two clamping plates. The two clamping plates are movably arranged between the two baffles, and the baffles are provided with plug-in slots, and the plug-in slots are provided with plug-in sockets. The lower end and the upper end are respectively connected to the two corresponding plug-in sockets. The internal debris removal component is movably arranged between the two baffles, and the clamping plates can partially wrap the internal debris removal component, and the internal debris removal component is connected to the plug-in sockets.

[0016] Compared with the prior art, the present invention has the following beneficial effects:

[0017] 1. The present invention is installed with a filter assembly, the shell is fixed to the fixed plates on both sides, the front of the fixed plate is connected to the assembly plate through a connecting rod, which is convenient for fixing the assembly cover, and the assembly cover is embedded in the inner side of the limit groove, which is convenient for the user to install the assembly cover. The assembly cover and the shell are fixed to the inner clamping parts to ensure the stability of the clamping parts. The clamping parts fix the filter assembly, and the filter assembly filters the water to prevent excessive impurities in the water and improve the water quality.

[0018] 2. The present invention fixes the top inspection port through the box body to ensure the stability of the inspection port. The top of the inspection port is movably connected to the inspection cover through a thread. The inspection cover can be removably installed on the top of the inspection port, making it convenient for users to enter the interior of the box through the inspection port and to facilitate users to inspect the interior. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0020] Figure 2 It is a schematic diagram of the cross-sectional structure of the present invention;

[0021] Figure 3 Schematic diagram of the structure of the shell in the present invention;

[0022] Figure 4 It is a structural schematic diagram of the filter screen in the present invention.

[0023] Figure 5 It is a structural schematic diagram of the impurity removal module in the present invention.

[0024] Figure 6 It is a structural side view of the impurity removal module in the present invention.

[0025] Figure 7 It is a schematic diagram of part of the internal structure of the impurity removal module in the present invention.

[0026] Figure 8 For the present invention Figure 7 Schematic diagram of the enlarged structure of the part A in the middle.

[0027] Figure 9 For the present invention Figure 7 Schematic diagram of the enlarged structure of the part B in the middle.

[0028] Figure 10 It is a structural schematic diagram of the inner clamping part in the present invention.

[0029] Figure 11 It is a schematic diagram of the explosion structure of the impurity removal module in the present invention.

[0030] Figure 12 It is a structural schematic diagram of the internal debris removal component in the present invention. DETAILED DESCRIPTION

[0031] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0032] In the description of the present invention, it should be noted that the terms "upper," "lower," "inner," "outer," "front end," "rear end," "two ends," "one end," "the other end," and the like, indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings and are intended solely to facilitate and simplify the description of the present invention. They are not intended to indicate or imply that the devices or components referred to must have, be constructed, or operate in a specific orientation, and therefore should not be construed as limiting the present invention. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0033] In the description of the present invention, it should be noted that, unless otherwise expressly specified or limited, the terms "installed," "provided with," "connected," etc., should be understood in a broad sense. For example, "connected" may refer to a fixed connection, a detachable connection, or an integral connection; it may refer to a mechanical connection or an electrical connection; it may refer to a direct connection or an indirect connection through an intermediate medium; it may refer to internal communication between two components. Those skilled in the art will be able to understand the specific meanings of the above terms in the present invention based on specific circumstances.

[0034] See also Figures 1-4 The present invention provides a combined stainless steel water tank, comprising: a floating pump station main body, the floating pump station main body comprising a box body 1, an injection assembly is installed through the top wall of the box body 1, the injection assembly comprises a connecting pipe 12 installed on the top wall of the box body 1, a butt pipe is installed on the connecting pipe 12, a shell 13 is installed on the top of the butt pipe, fixing plates 18 are installed on both sides of the shell 13, a limiting groove is provided on the front wall of the shell 13, an assembly cover 15 is installed on the shell 13, assembly plates 16 are installed on both sides of the assembly cover 15, connecting rods 17 are installed through the inner sides of the assembly plate 16 and the fixing plate 18, and clamps 19 are installed on the inner sides of the assembly cover 15 and the shell 13;

[0035] Specifically, the box body 1 is fixed to the top injection assembly to ensure the stability of the injection assembly. The top of the injection assembly is connected to the butt pipe by bolts, which is convenient for the user to assemble the structure. The butt pipe is fixed to the top shell 13 to ensure the stability of the shell 13. The shell 13 is fixed to the top water injection port 14 to ensure the stability of the water injection port 14. The water injection port 14 is connected to the water injection equipment to facilitate the transmission of water to the interior of the shell 13. The shell 13 is fixed to the fixing plates 18 on both sides. The inner side of the fixing plate 18 is penetrated by the installation connecting rod 17, which is convenient for the user to accurately install. A connecting rod 17 is installed, and the front of the fixing plate 18 is connected to the assembly plate 16 through the connecting rod 17, which is convenient for the user to assemble the shell 13 and the assembly cover 15. The assembly cover 15 is embedded in the inner side of the limit groove, which is convenient for the user to accurately install the assembly cover 15. The assembly cover 15 and the shell 13 form a complete pipeline, which is convenient for water transmission. The assembly cover 15 and the shell 13 fix the inner clip 19 to ensure the stability of the clip 19. A filter assembly is installed on the top of the two groups of clips 19. The filter assembly is used to filter the water injected inside to improve the water quality.

[0036] Furthermore, the filter assembly includes a support ring 20 positioned above the clamp 19. A filter screen 21 is mounted on the bottom of the support ring 20, and a water inlet 14 is mounted on the top of the housing 13. The clamp 19 provides positional support for the top support ring 20, facilitating user removal and installation of the support ring 20. The support ring 20 secures the bottom filter screen 21. The water inlet 14 transfers water to the inside of the housing 13, where the filter screen 21 filters the water, preventing excessive impurities and improving water quality.

[0037] Furthermore, a corrosion-resistant layer 2 is installed on the inner side of the above-mentioned box body 1. The corrosion-resistant layer 2 is composed of anti-corrosion materials, which increases the service life of the box body 1 and facilitates the storage of water in the box body 1. A limit screw 11 is installed on the inner side of the corrosion-resistant layer 2 through a threaded movement. A reinforcement component is installed on the outer side of the limit screw 11. The reinforcement component includes a support plate 3 configured on the outer side of the limit screw 11. A reinforcement rod 5 is installed between the support plates 3. Several groups of reinforcement components are installed on the inner side of the box body 1 to improve the structural strength of the box body 1.

[0038] Both ends of the reinforcement rod 5 are fixedly connected to the support plate 3, and the inner side of the support plate 3 passes through the limit screw 11, which is convenient for the user to accurately install the limit screw 11. The limit screw 11 is installed on the inner wall of the box body 1 through a thread to fix the support plate 3 and ensure the stability of the support plate 3. The reinforcement rod 5 is against the inner side of the box body 1 to improve the strength of the box body 1 and prevent the box body 1 from deformation.

[0039] Furthermore, an exhaust pipe 4 is installed through the top wall of the above-mentioned box body 1, and the exhaust pipe 4 is located behind the connecting pipe 12. The exhaust pipe 4 is an inverted J-shape. When water is injected into the box body 1, the exhaust pipe 4 discharges the water vapor to facilitate pressure discharge, prevent the internal pressure of the box body 1 from being too high, and ensure the safety of the box body 1.

[0040] Furthermore, an inspection port 22 is installed through the top wall of the box body 1, and an inspection cover 23 is movably installed on the top of the inspection port 22 through a thread. The inspection cover 23 is located on one side of the connecting pipe 12. The box body 1 fixes the top inspection port 22 to ensure the stability of the inspection port 22. The top of the inspection port 22 is movably connected to the inspection cover 23 through a thread. The inspection cover 23 can be detachably installed on the top of the inspection port 22, making it convenient for users to enter the interior of the box body 1 through the inspection port 22, convenient for users to inspect the interior, and convenient for users to clean the interior of the box body 1 later.

[0041] Furthermore, a protective box 10 is installed on the top wall of the box body 1. The protective box 10 is located behind the exhaust pipe 4. A booster pump 6 is installed on the top of the box body 1. An input interface 7 is installed at the input end of the booster pump 6. A water extraction pipe 9 is installed at one end of the input interface 7 by bolts. The water extraction pipe 9 passes through the top wall of the box body 1. An output interface 8 is installed at the output end of the booster pump 6. The output interface 8 passes through the rear wall of the protective box 10. Specifically, the box body 1 fixes the top protective box 10. The protective box 10 protects the inner booster pump 6. The booster pump 6 is fixed to the top of the box body 1. The booster pump 6 runs smoothly. The operation of the booster pump 6 generates negative pressure at the input interface 7. The input interface 7 extracts water from the interior of the box body 1 through the water extraction pipe 9. The water enters the interior of the booster pump 6. The booster pump 6 discharges the water through the output interface 8. The output interface 8 discharges the water through the output pipe, making it convenient to output water.

[0042] See also Figure 5-Figure 12 Furthermore, the exhaust pipe 4 includes an upper section 41 and a lower section 42, wherein the lower section 42 is installed on the box body 1, wherein the upper section 41 has a lower end portion 43, and the lower section 42 has an upper end portion 44, and a decontamination module 45 is installed between the lower end portion 43 and the upper end portion 44. The decontamination module 45 absorbs and filters external impurities to prevent them from entering the box body 1 and polluting the water body, thereby improving water quality safety. At the same time, impurities are also absorbed and filtered in the water vapor discharged outward from the exhaust pipe 4.

[0043] Furthermore, the above-mentioned impurity removal module 45 includes a clamping mechanism 46 and an internal impurity removal member 47. The clamping mechanism 46 includes two baffles 461 and two clamping pieces 462. The two clamping pieces 462 are movably arranged between the two baffles 461, and a plug-in slot 463 is installed on the baffle 461. A plug-in seat 464 is installed in the plug-in slot 463. The lower end 43 and the upper end 44 are respectively connected to the two corresponding plug-in seats 464. Among them, the internal impurity removal member 47 is also movably installed between the two baffles 461, and the internal impurity removal member can be partially wrapped by the clamping piece 462. 47, and at the same time, the internal debris removal component 47 is connected to the socket 464 against the top, so that external impurities can enter the internal debris removal component 47 through the upper section 41. After the external impurities are adsorbed and purified, only the filtered air is left and then enters the box body 1 through the lower section 42, preventing external impurities from entering the box body 1 and polluting the water body, thereby improving water quality safety; when the water vapor discharged from the exhaust pipe 4 is adsorbed and filtered of impurities, the water vapor can enter the internal debris removal component 47 through the lower section 42. After the water vapor is adsorbed and purified, the water vapor enters the outside through the upper section 41;

[0044] In addition, the two clamping pieces 462 mentioned above are also easy to open, so that a new internal debris removal component 47 can be replaced later to adsorb external impurities and impurities in water vapor. Moreover, the clamping mechanism 46 of the above structure fixes the internal debris removal component 47, replacing the bolts, flanges and other structures in the prior art. This avoids the operator from repeatedly installing and disassembling the bolts, thereby reducing the operator's labor intensity.

[0045] The baffle 461 has two lugs 4611 , and the clamping piece 462 is mounted on the lugs 4611 via a shaft 4621 to enable the clamping piece 462 to rotate on the baffle 461 .

[0046] Furthermore, a first protrusion 471 and a second protrusion 472 are respectively installed on the outer wall of the inner debris removal component 47, and the side wall 4721 of the second protrusion 472 is inclined and faces the outer wall of the inner debris removal component 47, and the bottom side wall 4622 of the clamping piece 462 corresponds to the side wall of the second protrusion 472, so the clamping piece 462 clamps the outer wall of the second protrusion 472 after entering it, especially utilizing the weight of the inner debris removal component 47, making this clamping method more convenient to implement.

[0047] Furthermore, in some embodiments of the present invention, an operating hole 465 is provided on the baffle 461, a magnetic sheet 467 corresponding to the operating hole 465 is installed on the outer wall of the baffle 461, and an inner clamping portion 48 is installed on the inner wall of the baffle 461, which is movably connected to the inner debris removal component 47 and fixes it. When replacing the inner debris removal component 47, the operator can remove the magnetic sheet 467 and then operate the inner clamping portion 48, so that the inner clamping portion 48 releases the fixation on the inner debris removal component 47, so that the inner debris removal component 47 can be removed from the clamping mechanism 46. Since the weight of the inner debris removal component 47 becomes heavier after absorbing external impurities, especially impurities in water vapor, the operator can push the second protrusion 472 of the inner debris removal component 47 outward, which can further save the operator's labor intensity and open the two clamping sheets 462.

[0048] The inner clamping portion 48 of the above structure includes two C-shaped clips 481, which are connected to the inner wall of the baffle 461 through a fixed shaft 480, and a hollow groove 482 is provided at the lower end of the C-shaped clip 481, a sliding shaft 483 is installed in the hollow groove 482, and a spring seat 484 corresponding to the operating hole 465 is provided on the sliding shaft 483, and a compression spring 485 is installed between the two spring seats 484, and the two C-shaped clips 481 are supported outward by the compression spring 485; a sliding ball 486 is provided at the upper end of the C-shaped clip 481, and the sliding ball 486 is slidably connected to the V-shaped groove 473 on the inner debris removal part 47, so that the sliding ball 486 is in the V-shaped groove 473. Inward sliding, that is to say, when installing the inner debris removing part 47, the sliding ball 486 gradually moves upward from the bottom of the V-shaped groove 473 along the V-shaped groove 473. When the inner debris removing part 47 enters the two clamping pieces 462 from the outside to the inside, the sliding ball 486 moves to the upper end of the V-shaped groove 473. Under the action of the above-mentioned compression spring 485, the two spring seats 484 are pushed against by the compression spring 485, and the spring seat 484 drives the sliding shaft 483 to move outward along the operating hole 465, and then the ends of the two C-shaped clips 481 are supported outward, so that the ends of the C-shaped clips 481 correspond to the ends of the V-shaped groove 473, thereby realizing the fixed installation of the inner clamping part 48 on the inner debris removing part 47.

[0049] Furthermore, some embodiments of the present invention provide a specific structure of the internal debris removal component 47, wherein the internal debris removal component 47 includes a debris removal barrel 474 and two barrel end plates 475, wherein the two barrel end plates 475 are screwed to the ends of the debris removal barrel 474, and the outer walls of the barrel end plates 475 are provided with through holes 476 and V-shaped grooves 473, and the opening direction of the V-shaped grooves 473 is toward the debris removal barrel 474. The interior of the debris removal barrel 474 contains a dust-absorbing filler, which can be activated carbon. The first protrusion 471 and the second protrusion 472 are installed on the outer wall of the debris removal barrel 474. The barrel end plates 475 of the above structure abut against the socket 464, so that external impurities can enter the debris removal barrel 474 through the upper through holes 476. The internal activated carbon acts as a dust-absorbing filler to absorb external impurities, and the two barrel end plates 475 can be removed from the debris removal barrel 474 to facilitate the replacement of the internal dust-absorbing filler.

[0050] Similarly, the water vapor in the water tank 1 can enter the impurity removal cylinder 474 through the lower through hole 476, and the internal activated carbon as a dust-absorbing filler can also adsorb impurities in the water vapor, and then the water vapor enters the upper section 41 through the through hole 476 on the other side.

[0051] In this way, the impurities outside are adsorbed and filtered by the impurity removal module 45 to prevent them from entering the box 1 and polluting the water body, thereby improving water quality safety. At the same time, impurities are also adsorbed and filtered on the water vapor discharged from the exhaust pipe 4.

[0052] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the invention can be embodied in other specific forms without departing from the spirit or essential characteristics of the invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be included therein. Any reference sign in a claim should not be construed as limiting the claim to which it relates.

Claims

1. An underground box pump integrated anti-floating pump station, characterized in that: include: The main body of the floating pump station includes a box body, and an injection assembly is configured through the top wall of the box body. The injection assembly includes a connecting pipe configured on the top wall of the box body, and a docking pipe is configured on the connecting pipe. The top of the docking pipe is configured with a shell, and fixed plates are configured on both sides of the shell. A limiting groove is provided on the front wall of the shell, and an assembly cover is configured on the shell. Assembly plates are configured on both sides of the assembly cover. Connecting rods are configured through the inner sides of the assembly plate and the fixed plate. The inner sides of the assembly cover and the shell are both configured with clips, and the tops of the two groups of clips are configured with filter assemblies.

2. According to claim 1, an underground box pump integrated anti-floating pump station is characterized in that: The filter assembly comprises a support ring arranged above the clamping member, a filter screen is arranged at the bottom of the support ring, and a water inlet is arranged at the top of the shell.

3. According to claim 1, an underground box pump integrated anti-floating pump station is characterized in that: The inner side of the box body is provided with a corrosion-resistant layer, the inner side of the corrosion-resistant layer is provided with a limit screw, and the outer side of the limit screw is provided with a reinforcement component.

4. An underground box pump integrated anti-floating pump station according to claim 3, characterized in that: The reinforcement components include support plates arranged on the outside of the limiting screws, reinforcement rods are arranged between the support plates, and several groups of reinforcement components are installed on the inner side of the box body.

5. According to claim 1, an underground box pump integrated anti-floating pump station is characterized in that: An exhaust pipe is arranged through the top wall of the box body, and the exhaust pipe is located behind the connecting pipe.

6. According to claim 1, an underground box pump integrated anti-floating pump station is characterized in that: An inspection port is provided through the top wall of the box body, and an inspection cover is provided on the top of the inspection port through a threaded movement. The inspection cover is located on one side of the connecting pipe.

7. According to claim 3, an underground box pump integrated anti-floating pump station is characterized in that: The top wall of the box body is provided with a protection box, which is located behind the exhaust pipe.

8. According to claim 1, an underground box pump integrated anti-floating pump station is characterized in that: A booster pump is provided on the top of the box, and an input interface is provided at the input end of the booster pump. A water suction pipe is provided at one end of the input interface through a bolt, and the water suction pipe passes through the top wall of the box. An output interface is provided at the output end of the booster pump, and the output interface passes through the rear wall of the protective box.

9. An underground box pump integrated anti-floating pump station according to claim 5, characterized in that: The exhaust pipe comprises an upper section and a lower section. The upper section has a lower end portion, the lower section has an upper end portion, and a debris removal module is arranged between the lower end portion and the upper end portion.

10. An underground box pump integrated anti-floating pump station according to claim 9, characterized in that: The debris removal module includes a clamping mechanism and an internal debris removal component. The clamping mechanism includes two baffles and two clamping pieces. The two clamping pieces are movably arranged between the two baffles, and the baffles are provided with plug-in slots, and the plug-in slots are provided with plug-in sockets. The lower end and the upper end are respectively connected to the two corresponding plug-in sockets. The internal debris removal component is movably arranged between the two baffles, and the clamping pieces can partially wrap the internal debris removal component. The internal debris removal component is connected to the plug-in sockets.

Citation Information

Patent Citations

  • Cheese whey squeezing device

    CN222340222U