Pump station and installation method

By adopting the method of separation design and adjustment of components dynamically adjusting position in the pump station, the thrust bearing wear caused by inaccurate verticality of the pump body is solved, and higher installation accuracy and lower failure rate are achieved.

CN120139331APending Publication Date: 2025-06-13WILO CHINA
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Patent Information

Application Number
CN202311701973.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-12-12
Publication Date
2025-06-13

AI Technical Summary

Technical Problem

During the installation process, the overall design of the existing pump station leads to inaccurate verticality of the pump main body, resulting in a biased thrust bearing, severe wear and an increase in failure rate.

Method used

The pump station adopts a separate design, forms an installation space by supporting components and mounting plates, and dynamically adjusts the position of the pump main body by using the adjustment components to keep it vertical.

Benefits of technology

It effectively reduces the risk of thrust bearing bias in the pump main body, reduces the failure rate of the pump main body, and improves the installation accuracy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the technical field of deep-well pumps, and particularly relates to a pump station and an installation method. The pump station comprises a barrel, a supporting assembly, a mounting plate, a pump body, a first pipeline system and an adjusting assembly, the barrel is used for being mounted in a deep well, and the supporting assembly and the mounting plate are jointly used for supporting the pump body or the first pipeline system connected with the pump body. When the pump body is borne through the supporting assembly and the mounting plate, it needs to be guaranteed that the pump body is in the vertical state, and therefore the risk that a thrust bearing in the pump body is biased to be stressed is reduced. When the pump station is installed, the pump main body can be installed in a hoisting mode, so that the pose of the pump main body is dynamically adjusted through the adjusting assembly, the pump main body is in a vertical state, and the risk that a thrust bearing of the pump main body is biased to be stressed is reduced.
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Description

Technical Field

[0001] This application belongs to the technical field of deep well pumps, and specifically relates to a pump station and an installation method. Background Art

[0002] In the design and installation of a pump station, the perpendicularity requirement of the pump main body in the pump station is relatively high. In the existing installation of a pump station, the overall installation form is generally adopted, that is, the pump main body and the corresponding pipelines, etc. are pre-designed as a whole and then installed into a deep well. Due to the limited existing process conditions and the influence of this integrated design form on the corresponding dimensional accuracy during transportation, these factors will affect the perpendicularity of the pump main body. If the pump main body is inclined in the vertical direction, this will cause the thrust bearing in the pump main body to be biased in force, resulting in serious wear of the bearing and an increase in the failure rate of the pump main body. Summary of the Invention

[0003] An object of the present invention is to provide a pump station that can preferably keep the pump main body in a vertical state to reduce the risk of the thrust bearing in the pump main body being biased in force.

[0004] Another object of the present invention is to further provide an installation method for installing the above-mentioned pump station.

[0005] According to an embodiment of the present application, a pump station is provided in the first aspect, including:

[0006] A cylinder;

[0007] A support assembly vertically installed in the cylinder, one end of the support assembly is located at the bottom of the cylinder, and the support assembly forms an installation space perpendicular to the bottom of the cylinder;

[0008] A mounting plate provided at the end of the support assembly away from the bottom of the cylinder and perpendicular to the support assembly, and the mounting plate is provided with a mounting channel communicating with the installation space;

[0009] A pump main body vertically arranged in the installation space, a first pipeline system vertically communicating with the pump main body is provided at the water outlet of the pump main body, and a plurality of adjustment components are arranged outside the first pipeline system. When the pump main body is hoisted and installed in the installation channel, the adjustment components are carried by the mounting plate, and the adjustment components are used to adjust the position and posture of the pump main body to make the pump main body in a vertical state.

[0010] In one embodiment, the number of the adjusting members is an even number and they are symmetrically arranged. The adjusting assembly includes a first adjusting member and a second adjusting member that can be detachably separated. The first adjusting member is fixedly arranged on the first pipeline system, and the second adjusting member is located at the corner of the first adjusting member. The first adjusting member is provided with a first inclined surface, and the second adjusting member is provided with a second inclined surface;

[0011] In the first state, the first adjusting member and the second adjusting member are in a connected state, and the first inclined surface in the first adjusting member is completely attached to the second inclined surface in the second adjusting member;

[0012] In the second state, the first adjusting member and the second adjusting member are separated, and the second adjusting member reciprocates relative to the first adjusting member in the horizontal direction, and the second inclined surface is attached to the first inclined surface again to control the pump body to be in a vertical state.

[0013] In one embodiment, the length of the first inclined surface is the same as the length of the second inclined surface, and the angle between the second inclined surface and the horizontal plane is an acute angle.

[0014] In one embodiment, in the first state, a connecting member is arranged between the first adjusting member and the second adjusting member, and the connecting member connects and fixes the first adjusting member and the second adjusting member.

[0015] In one embodiment, the connecting member is an iron bar. One end of the iron bar is welded to the first adjusting member, and the other end of the iron bar is welded to the second adjusting member.

[0016] In one embodiment, the first adjusting member is welded to the first pipeline system; when the pump body is in a vertical state, the second adjusting member is welded to the mounting plate; and / or, the first adjusting member is provided with a lifting hole; and / or, the angle between the second inclined surface and the horizontal plane is 30°.

[0017] In one embodiment, the first pipeline system includes a lift pipe and an adjustment pipe. The lift pipe is communicated with the water outlet of the pump body, the adjustment pipe is communicated with the water outlet of the lift pipe, and the adjusting assembly is arranged outside the adjustment pipe; and / or, the number of the adjusting assemblies is 6.

[0018] In one embodiment, the pumping station further includes a second pipeline system, and the second pipeline system is communicated with the first pipeline system. The second pipeline system is used to transport the water source in the first pipeline system to the external space; and / or, the support assembly includes a first support beam, a second support beam, a third support beam and a fourth support beam, and the first support beam, the second support beam, the third support beam and the fourth support beam jointly enclose the installation space.

[0019] According to an embodiment of the present application, in a second aspect, an installation method is provided for installing the pump station, and the installation method includes:

[0020] Fix the support assembly at the bottom of the cylinder body, and make the support assembly perpendicular to the bottom of the cylinder body. Fix the mounting plate at one end of the support assembly away from the bottom of the cylinder and make the mounting plate perpendicular to the support assembly. Place the cylinder body equipped with the support assembly and the mounting plate in a deep well;

[0021] Vertically hoist the pump body, and make the pump body enter the installation space in the support assembly along the installation channel in the mounting plate until the adjustment assembly contacts the mounting plate;

[0022] Adjust the pose of the pump body through the adjustment assembly to make the pump body in a vertical state, and weld and fix the adjustment assembly to the mounting plate.

[0023] In one embodiment, adjusting the pose of the pump body through the adjustment assembly to make the pump body in a vertical state and welding and fixing the adjustment assembly to the mounting plate includes:

[0024] The adjustment assembly includes a first adjustment piece and a second adjustment piece that can be detachably separated. The first adjustment piece is fixedly arranged on the first pipeline system, the second adjustment piece is located at the corner of the first adjustment piece, the first adjustment piece is provided with a first inclined surface, and the second adjustment piece is provided with a second inclined surface;

[0025] In the first state, the first adjustment piece and the second adjustment piece are in a connected state, and the first inclined surface in the first adjustment piece is completely attached to the second inclined surface in the second adjustment piece;

[0026] In the second state, the first adjustment piece and the second adjustment piece are separated, and the second adjustment piece reciprocates horizontally relative to the first adjustment piece, and makes the second inclined surface fit with the first inclined surface again to control the pump body to be in a vertical state;

[0027] When the adjustment assembly contacts the mounting plate, change the first adjustment piece in the adjustment assembly from the first state to the second state, control the second inclined surface of the second adjustment piece to move horizontally relative to the first inclined surface in the first adjustment piece. After the second inclined surface fits with the first inclined surface again, weld the first inclined surface and the second inclined surface, and weld the second adjustment piece to the mounting plate.

[0028] In the pumping station of the present application, the pump body can be installed in the installation space formed by the support assembly in a vertical hoisting manner, and the position and attitude of the pump body are adjusted by the adjustment assembly so that the pump body is in a vertical state, thus preferably avoiding the problem of uneven stress on the thrust bearing in the pump body. The difference between the present application and the existing solution is that in this disclosure, the pump body is not installed as an integral part with the cylinder body, the support assembly, the mounting plate, etc., but the pump body can be independently installed in the cylinder body, and the position and attitude of the pump body are dynamically adjusted by the adjustment assembly so that the pump body is in a vertical state. Description of the Drawings

[0029] Figure 1 It is a schematic structural diagram of the pumping station in an embodiment of the present application;

[0030] Figure 2 It is a schematic structural diagram of the hoisting of the pump body in an embodiment of the present application;

[0031] Figure 3 It is a schematic structural diagram when the adjustment assembly is adjusted in an embodiment of the present application;

[0032] Figure 4 It is a schematic flow diagram of the installation method in an embodiment of the present application.

[0033] Description of the Reference Numerals in the Drawings:

[0034] 100, cylinder body;

[0035] 200, support assembly; 210, installation space;

[0036] 300, mounting plate; 310, installation channel;

[0037] 400, pump body;

[0038] 500, first pipeline system; 510, lift pipe; 520, adjustment pipe;

[0039] 600, adjustment assembly; 610, first adjustment member; 611, first inclined surface; 612, hoisting hole;

[0040] 620, second adjustment member; 621, second inclined surface; 630, connecting member;

[0041] 700, second pipeline system. Detailed Embodiment

[0042] In order to make the objectives, technical solutions and advantages of the present application more clear, the present application will be further described in detail below with reference to the drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and are not used to limit the present application.

[0043] It should be noted that the illustrations provided in this embodiment only schematically illustrate the basic concept of the present invention.

[0044] The structures, ratios, sizes, etc. shown in the drawings of this specification are only used to cooperate with the content disclosed in the specification for those skilled in this technology to understand and read, and are not used to limit the conditions under which the present invention can be implemented. Any modification of the structure, change in the ratio relationship, or adjustment of the size, without affecting the effects that the present invention can produce and the purposes that can be achieved, should still fall within the scope that can be covered by the technical content disclosed in the present invention.

[0045] The orientation or positional relationship indicated by terms such as "upper", "lower", "left", "right", "middle", "longitudinal", "transverse", "horizontal", "inner", "outer", "radial", "circumferential", etc. cited in this specification is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of simplified description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be construed as a limitation on the present invention. In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be construed as indicating or implying relative importance.

[0046] As introduced in the background, in the design and installation of a pumping station, the verticality requirement of the pump body in the pumping station is relatively high. In the existing installation of pumping stations, the overall installation form is generally adopted, that is, the pump body and the corresponding pipelines, etc. are pre-designed as a whole and then installed into a deep well. Due to the limited existing process conditions and the fact that this integrated design form will also affect the corresponding dimensional accuracy during transportation, these factors will affect the verticality of the pump body. If the pump body is inclined in the vertical direction, this will cause the thrust bearing in the pump body to be biased in force, resulting in serious wear of the bearing and an increase in the failure rate of the pump body. To better solve this problem, the researchers in this application separated the pump body from the cylinder body. During the installation process, by hoisting the pump body, the pump body is dynamically adjusted to a vertical state, thereby reducing the risk of the thrust bearing in the pump body being biased in force due to the inclination of the pump body.

[0047] Refer to Figure 1 as shown in Figure 1This is a schematic structural diagram of a pumping station in the embodiments implemented in this disclosure. The pumping station includes: a cylinder body 100, a support assembly 200, a mounting plate 300, a pump main body 400, a first pipeline system 500, and an adjustment assembly 600. The cylinder body 100 is used to be installed in a deep well. The support assembly 200 and the mounting plate 300 are jointly used to support the pump main body 400 or the first pipeline system 500 connected to the pump main body 400. When the pump main body 400 is supported by the support assembly 200 and the mounting plate 300, it is necessary to ensure that the pump main body 400 is in a vertical state, thereby reducing the risk of uneven stress on the thrust bearing in the pump main body 400. When installing the pumping station in this application, the pump main body 400 can be installed by hoisting, so as to dynamically adjust the position and pose of the pump main body 400 through the adjustment assembly 600, so that the pump main body 400 is in a vertical state and the risk of uneven stress on the thrust bearing of the pump main body 400 is reduced.

[0048] Specifically, the support assembly 200 is vertically installed in the cylinder body 100. One end of the support assembly 200 is located at the bottom of the cylinder body 100, and the support assembly 200 forms an installation space 210 perpendicular to the bottom of the cylinder body 100. The mounting plate 300 is arranged at one end of the support assembly 200 away from the bottom of the cylinder body 100 and is perpendicular to the support assembly 200. The mounting plate 300 is provided with a mounting channel 310 communicating with the installation space 210. It should be noted that since the support assembly 200 and the mounting plate 300 are used to support the pump main body 400 or the pipeline connected to the pump main body 400, it is necessary for the support assembly 200 to be perpendicular to the bottom of the cylinder body 100, and the mounting plate 300 to be perpendicular to the support assembly 200, so as to make the pump main body 400 in a vertical state as much as possible and reduce the amplitude of adjusting the position and pose of the pump main body 400.

[0049] The pump main body 400 is vertically arranged in the installation space 210. The water outlet of the pump main body 400 is provided with a first pipeline system 500 vertically communicating with the pump main body 400. A plurality of adjustment assemblies 600 are arranged outside the first pipeline system 500. When the pump main body 400 is hoisted and installed in the installation channel 310, the adjustment assemblies 600 are carried by the mounting plate 300. The adjustment assemblies 600 are used to adjust the position and pose of the pump main body 400 so that the pump main body 400 is in a vertical state. It should be noted that by coordinating the position and pose of the pump main body 400 by a plurality of adjustment assemblies 600 at the same time, it is possible to more accurately ensure that the pump main body 400 is in a vertical state. For example, the number of adjustment assemblies 600 is 6. The pump main body 400 being in a vertical state can be understood as the pump main body 400 being perpendicular to the horizontal plane.

[0050] In this embodiment, refer to Figure 1 and Figure 2As shown, the cylinder 100 provided with the support assembly 200 and the mounting plate 300 can be arranged in a deep well, and then the pump main body 400 is hoisted into the cylinder 100. The support assembly 200 and the mounting plate 300 in the cylinder 100 can support the pump main body 400. During the hoisting process of the pump main body 400, the position and pose of the pump main body 400 can be dynamically adjusted through the adjustment assembly 600 in the pump main body 400, so that the pump main body 400 is in a vertical state. In this application, when the pump main body 400 is adjusted to a vertical state, it no longer depends on the vertical accuracy between the pump main body 400 and the mounting plate 300, but the position and pose of the pump main body 400 are dynamically adjusted through the adjustment assembly 600 during the hoisting process of the pump main body 400, so as to better reduce the risk of the thrust bearing in the pump main body 400 being stressed unevenly.

[0051] In one embodiment, referring to Figure 2 and Figure 3 as shown, the number of the adjustment assemblies 600 is even and symmetrically arranged. The adjustment assembly 600 includes a first adjustment member 610 and a second adjustment member 620 that can be detachably separated. The first adjustment member 610 is fixedly arranged on the first pipeline system 500, and the second adjustment member 620 is located at the corner of the first adjustment member 610. The first adjustment member 610 is provided with a first inclined surface 611, and the second adjustment member 620 is provided with a second inclined surface 621. In the first state, the first adjustment member 610 and the second adjustment member 620 are in a connected state, and the first inclined surface 611 in the first adjustment member 610 is completely attached to the second inclined surface 621 in the second adjustment member 620; in the second state, the first adjustment member 610 and the second adjustment member 620 are separated, and the second adjustment member 620 reciprocates horizontally relative to the first adjustment member 610 and makes the second inclined surface 621 fit with the first inclined surface 611 again to control the pump main body 400 to be in a vertical state.

[0052] In this embodiment, in the first state, the first adjusting member 610 and the second adjusting member 620 are connected as a whole. At this time, the pump body 400 is vertically lifted and placed into the installation space 210 formed by the support assembly 200. It should be noted that the first adjusting member 610 and the second adjusting member 620 can be detachably separated. When the pump body 400 descends a certain distance and the adjusting assembly 600 contacts the mounting plate 300, the first adjusting member 610 and the second adjusting member 620 in the adjusting assembly 600 change from the first state to the second state. In the second state, the second adjusting member 620 is separated from the first adjusting member 610. Due to the precision error in the perpendicular design of the mounting plate 300 and the support assembly 200, and the surface roughness of the mounting plate 300, when the first adjusting member 610 is vertically located on the mounting plate 300, it cannot ensure that the pump body 400 is in a vertical state. Therefore, in the second state, by reciprocally moving the second adjusting member 620 relative to the surface of the mounting plate 300, the second inclined surface 621 in the second adjusting member 620 is brought into contact with the first inclined surface 611 in the first adjusting member 610 again. By dynamically adjusting the relationship between the second inclined surface 621 in the second adjusting member 620 and the first inclined surface 611 in the first adjusting member 610, the pump body 400 is made in a vertical state.

[0053] It should be noted that since the adjusting assembly 600 is symmetrically arranged, after the first adjusting members 610 and the second adjusting members 620 in the oppositely arranged adjusting assemblies 600 are correspondingly arranged, the second inclined surfaces 621 in the respective second adjusting members 620 form a symmetric letter "V" - shaped opening. Therefore, after the first inclined surfaces 611 in the respective first adjusting members 610 are corresponding to the corresponding second inclined surfaces 621, it can ensure that the pump body 400 is in a vertical state.

[0054] In one embodiment, the length of the first inclined surface 611 in the first adjusting member 610 is the same as the length of the second inclined surface 621 in the second adjusting member 620, and the angle between the second inclined surface 621 and the horizontal plane is an acute angle. In this embodiment, the lengths of the first inclined surface 611 and the second inclined surface 621 are the same, and it can judge whether the pump body 400 is in a vertical state by obtaining the positional relationship of the fitting between the second inclined surface 621 and the first inclined surface 611. For example, when the second inclined surface 621 and the first inclined surface 611 are completely fitted again, it can be explained that the pump body 400 is in a vertical state. In addition, the lengths of the first inclined surface 611 and the second inclined surface 621 being the same can also enable the second inclined surface 621 to provide a larger contact area when the second adjusting member 620 bears the first adjusting member 610, so as to disperse the acting force exerted by the first adjusting member 610. The angle between the second inclined surface and the horizontal plane can be an acute angle. Within this angular range, the second adjusting member 620 can reciprocally move in the horizontal direction relative to the mounting portion, and the size of the acute angle can be 30°.

[0055] In one embodiment, in the first state, a connecting member 630 is provided between the first adjusting member 610 and the second adjusting member 620, and the connecting member 630 connects and fixes the first adjusting member 610 and the second adjusting member 620 as a whole. In this embodiment, the first adjusting member 610 and the second adjusting member 620 can be connected and fixed through the connecting member 630. It should be noted that the connecting member 630 can be selected as a component that is easy to disassemble. For example, the connecting member 630 can be selected as an iron bar, one end of the iron bar is welded to the first adjusting member 610, and the other end of the iron bar is welded to the second adjusting member 620.

[0056] In one embodiment, the first adjusting member 610 is welded to the first pipeline system 500. When the pump body 400 is in a vertical state, the second adjusting member 620 is welded to the mounting plate 300; the first adjusting member 610 is provided with a lifting hole 612. In this embodiment, the first adjusting member 610 is welded to the first pipeline system 500, so that the first adjusting member 610, the first pipeline system 500 and the pump body 400 are integrated. Therefore, by dynamically changing the positional relationship between the first adjusting member 610 and the second adjusting member 620, the pose of the pump body 400 can be adjusted. Adopting the welding process method can ensure the stable connection between the first adjusting member 610 and the first pipeline system 500. The lifting hole 612 is provided in the first adjusting member 610, which can reduce the damage to the pump body 400 or the first pipeline system 500 during the lifting process.

[0057] In one embodiment, refer to Figure 1 or Figure 2 As shown, the first pipeline system 500 includes a lift pipe 510 and an adjustment pipe 520. The lift pipe is communicated with the water outlet of the pump body 400, the adjustment pipe 520 is communicated with the water outlet of the lift pipe 510, and an adjustment assembly 600 is arranged outside the adjustment pipe 520. In this embodiment, the lift pipe 510 and the adjustment pipe 520 can transport the water source generated in the pump body 400 to the outside. By arranging the adjustment pipe 520 in the lift pipe 510, the length can be adapted and changed, so that the first pipeline system 500 has better adaptability.

[0058] In one embodiment, refer to Figure 1 As shown, the pumping station further includes a second pipeline system 700. The second pipeline system 700 is communicated with the first pipeline system 500, and the second pipeline system 700 is used to transport the water source in the first pipeline system 500 to the external space. The support assembly 200 includes a first support beam, a second support beam, a third support beam and a fourth support beam. The first support beam, the second support beam, the third support beam and the fourth support beam jointly enclose an installation space 210.

[0059] This application also proposes an installation method. Refer to Figure 4As shown, it is used to install the above-mentioned pumping station. Among them, the installation method of the pumping station includes:

[0060] S110: Fix the support assembly 200 at the bottom of the cylinder 100, and make the support assembly 200 perpendicular to the bottom of the cylinder 100. Fix the mounting plate 300 at one end of the support assembly 200 away from the bottom of the cylinder and make the mounting plate 300 perpendicular to the support assembly 200. Place the cylinder 100 equipped with the support assembly 200 and the mounting plate 300 in a deep well;

[0061] S120: Vertically hoist the pump body 400, and make the pump body 400 enter the installation space 210 in the support assembly 200 along the installation channel 310 in the mounting plate 300 until the adjustment assembly 600 contacts the mounting plate 300;

[0062] S130: Adjust the position and pose of the pump body 400 through the adjustment assembly 600 to make the pump body 400 in a vertical state, and weld and fix the adjustment assembly 600 to the mounting plate 300.

[0063] In this embodiment, first, a support assembly 200 and a mounting plate 300 are arranged in the cylinder 100. The support assembly 200 and the mounting plate 300 are used to carry the pump body 400. Then, the pump body 400 is vertically hoisted and enters the installation space 210 of the support assembly 200 along the installation channel 310 of the mounting plate 300. When the adjustment assembly 600 contacts the mounting plate 300, the pump body 400 is dynamically adjusted through the adjustment assembly 600, so that the pump body 400 is in a vertical state. Finally, the adjustment assembly 600 is welded and fixed to the mounting plate 300. The difference between this application and the existing scheme is that in this application, the pump body 400 is arranged in the installation space 210 of the support assembly 200 by vertical hoisting, and then the position and pose of the pump body 400 are dynamically adjusted through the adjustment assembly 600, so as to ensure that the pump body 400 is in a vertical state.

[0064] Furthermore, when dynamically adjusting the position and pose of the pump body 400 through the adjustment assembly 600 to make the pump body 400 in a vertical state and welding and fixing the adjustment assembly 600 to the mounting plate 300 includes:

[0065] The number of the adjustment assemblies 600 is even and symmetrically arranged. The adjustment assembly 600 includes a detachable and separable first adjustment member 610 and a second adjustment member 620. The first adjustment member 610 is fixedly arranged on the first pipeline system 500. The second adjustment member 620 is located at the corner of the first adjustment member 610. The first adjustment member 610 is provided with a first inclined surface 611, and the second adjustment member 620 is provided with a second inclined surface 621;

[0066] In the first state, the first adjusting member 610 and the second adjusting member 620 are in a connected state, and the first inclined surface 611 in the first adjusting member 610 is completely attached to the second inclined surface 621 in the second adjusting member 620;

[0067] In the second state, the first adjusting member 610 and the second adjusting member 620 are separated, and the second adjusting member 620 reciprocates horizontally relative to the first adjusting member 610, and the second inclined surface 621 is attached to the first inclined surface 611 again to control the pump body 400 to be in a vertical state;

[0068] When the adjusting assembly 600 contacts the mounting plate 300, the first adjusting member 610 in the adjusting assembly 600 changes from the first state to the second state, and the second inclined surface 621 in the second adjusting member 620 is controlled to move horizontally relative to the first inclined surface 611 in the first adjusting member 610. After the second inclined surface 621 is attached to the first inclined surface 611 again, the first inclined surface 611 and the second inclined surface 621 are welded, and the second adjusting member 620 and the mounting plate 300 are welded.

[0069] In this embodiment, when the pump body 400 is hoisted, the first adjusting member 610 and the second adjusting member 620 are in the first state, that is, the first adjusting member 610 and the second adjusting member 620 are integral. When the adjusting assembly 600 contacts the mounting plate 300, at this time, the first adjusting member 610 and the second adjusting member 620 become separated. By reciprocating along the mounting plate 300 in the second adjusting member 620, the second inclined surface 621 in the second adjusting member 620 is attached to the first inclined surface 611 in the first adjusting member 610 again. At this time, it means that the pump body 400 is in a vertical state. By dynamically adjusting the relative positions between the first adjusting member 610 and the second adjusting member 620, the pump body 400 is in a vertical state, reducing the risk of uneven force on the thrust bearing in the pump body 400.

[0070] The technical features of the above embodiments can be combined arbitrarily. For the sake of brevity of description, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, it should be considered as the scope described in this specification.

[0071] The above embodiments only represent several implementation manners of the present application, and the description is relatively specific and detailed, but it should not be understood as a limitation to the scope of the invention patent. It should be noted that for those of ordinary skill in the art, without departing from the concept of the present application, several deformations and improvements can be made, and these all belong to the protection scope of the present application. Therefore, the protection scope of the patent of the present application should be subject to the appended claims.

Claims

1. A pump station, characterized in that, it includes: a cylinder body (100); a support assembly (200), the support assembly (200) is vertically installed inside the cylinder body (100), one end of the support assembly (200) is located at the bottom of the cylinder body (100), and the support assembly (200) forms an installation space (210) perpendicular to the bottom of the cylinder body (100); a mounting plate (300), the mounting plate (300) is arranged at one end of the support assembly (200) away from the bottom of the cylinder body (100) and is perpendicular to the support assembly (200), and the mounting plate (300) is provided with a mounting channel (310) communicating with the installation space (210); a pump main body (400), vertically arranged in the installation space (210), a first pipeline system (500) vertically communicating with the pump main body (400) is arranged at the water outlet of the pump main body (400), a plurality of adjustment assemblies (600) are arranged outside the first pipeline system (500), when the pump main body (400) is hoisted and installed in the installation channel (310), the adjustment assemblies (600) are carried by the mounting plate (300), and the adjustment assemblies (600) are used to adjust the position and pose of the pump main body (400) so that the pump main body (400) is in a vertical state.

2. The pump station according to claim 1, characterized in that: the number of the adjustment assemblies (600) is even and symmetrically arranged, the adjustment assembly (600) includes a detachable and separable first adjustment member (610) and a second adjustment member (620), the first adjustment member (610) is fixedly arranged on the first pipeline system (500), the second adjustment member (620) is located at the corner of the first adjustment member (610), the first adjustment member (610) is provided with a first inclined surface (611), and the second adjustment member (620) is provided with a second inclined surface (621); in the first state, the first adjustment member (610) and the second adjustment member (620) are in a connected state, and the first inclined surface (611) in the first adjustment member (610) is completely attached to the second inclined surface (621) in the second adjustment member (620); in the second state, the first adjustment member (610) and the second adjustment member (620) are separated, the second adjustment member (620) reciprocates horizontally relative to the first adjustment member (610), and the second inclined surface (621) is attached to the first inclined surface (611) again to control the pump main body (400) to be in a vertical state.

3. The pump station according to claim 2, characterized in that: the length of the first inclined surface (611) is the same as the length of the second inclined surface (621), and the angle between the second inclined surface (621) and the horizontal plane is an acute angle.

4. The pump station according to claim 2, characterized in that: In the first state, a connecting member (630) is provided between the first adjusting member (610) and the second adjusting member (620), and the connecting member (630) connects and fixes the first adjusting member (610) and the second adjusting member (620).

5. The pumping station according to claim 4, characterized in that: The connecting member (630) is an iron bar, one end of the iron bar is welded to the first adjusting member (610), and the other end of the iron bar is welded to the second adjusting member (620).

6. The pumping station according to claim 3, characterized in that: The first adjusting member (610) is welded to the first pipeline system (500); when the pump main body (400) is in a vertical state, the second adjusting member (620) is welded to the mounting plate (300); and / or, the first adjusting member (610) is provided with a lifting hole (612); and / or, the included angle between the second inclined surface (621) and the horizontal plane is 30°.

7. The pumping station according to claim 1, characterized in that: The first pipeline system (500) includes a lift pipe (510) and an adjustment pipe (520), the lift pipe (510) is communicated with the water outlet of the pump main body (400), the adjustment pipe (520) is communicated with the water outlet of the lift pipe (510), and the adjustment assembly (600) is arranged outside the adjustment pipe (520); and / or, the number of the adjustment assemblies (600) is 6.

8. The pumping station according to claim 1, characterized in that: The pumping station further includes a second pipeline system (700), the second pipeline system (700) is communicated with the first pipeline system (500), and the second pipeline system (700) is used for transporting the water source in the first pipeline system (500) to the external space; and / or, the support assembly (200) includes a first support beam, a second support beam, a third support beam and a fourth support beam, and the first support beam, the second support beam, the third support beam and the fourth support beam jointly enclose the installation space (210).

9. An installation method for installing the pumping station according to any one of claims 1 to 8, characterized in that, The installation method includes: Fix the support assembly (200) at the bottom of the cylinder body (100) and make the support assembly (200) perpendicular to the bottom of the cylinder body (100), fix the mounting plate (300) at the end of the support assembly (200) away from the bottom of the cylinder and make the mounting plate (300) perpendicular to the support assembly (200), and place the cylinder body (100) equipped with the support assembly (200) and the mounting plate (300) in a deep well; Vertically hoist the pump main body (400) and make the pump main body (400) enter the installation space (210) in the support assembly (200) along the installation channel (310) in the mounting plate (300) until the adjustment assembly (600) contacts the mounting plate (300); Dynamically adjust the position and orientation of the pump body (400) through the adjustment assembly (600) so that the pump body (400) is in a vertical state, and weld and fix the adjustment assembly (600) to the mounting plate (300).

10. The installation method according to claim 9, wherein: The dynamically adjusting the position and orientation of the pump body (400) through the adjustment assembly (600) so that the pump body (400) is in a vertical state and welding and fixing the adjustment assembly (600) to the mounting plate (300) includes: The adjustment assembly (600) includes a first adjustment member (610) and a second adjustment member (620) that can be detachably separated. The first adjustment member (610) is fixedly arranged on the first pipeline system (500). The second adjustment member (620) is located at the corner of the first adjustment member (610). The first adjustment member (610) is provided with a first inclined surface (611), and the second adjustment member (620) is provided with a second inclined surface (621); In the first state, the first adjustment member (610) and the second adjustment member (620) are in a connected state, and the first inclined surface (611) in the first adjustment member (610) is completely attached to the second inclined surface (621) in the second adjustment member (620); In the second state, the first adjustment member (610) and the second adjustment member (620) are separated, and the second adjustment member (620) reciprocates horizontally relative to the first adjustment member (610), and the second inclined surface (621) is attached to the first inclined surface (611) again to control the pump body (400) to be in a vertical state; When the adjustment assembly (600) contacts the mounting plate (300), change the first adjustment member (610) in the adjustment assembly (600) from the first state to the second state, control the second inclined surface (621) of the second adjustment member (620) to move horizontally relative to the first inclined surface (611) in the first adjustment member (610), so that after the second inclined surface (621) is attached to the first inclined surface (611) again, weld the first inclined surface (611) and the second inclined surface (621), and weld the second adjustment member (620) to the mounting plate (300).