Large-drift-diameter high-low pressure manifold

By setting up sealed rubber blocks and flow guides in high and low pressure pipe slugs, using protective coatings and reinforced explosion-proof layers, using plug-in threaded connections, and equipped with a liquid detector and liquid collection tank system, the problems of erosion and wear and fatigue damage caused by small diameters of high and low pressure pipes are solved, achieving a longer service life and higher safety.

CN119934435AActive Publication Date: 2025-05-06YANCHENG RUIDE PETROCHEM MACHINERY CO LTD
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Patent Information

Application Number
CN202510139168.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-08
Publication Date
2025-05-06
Estimated Expiration
2045-02-08

AI Technical Summary

Technical Problem

The existing high and low pressure pipe confluences have small diameters, which leads to too fast fluid flow rate, causing erosion and wear of the inner wall of the pipe, affecting service life. At the same time, due to the many connections of the nona threads, it is easy to cause fatigue damage and fracture due to the impact of high-pressure fluid, which reduces safety.

Method used

A large diameter high and low pressure pipe convergence is designed. By setting a first sealing rubber block and a first flow guide at the connection between the liquid inlet pipe body and the high-pressure pipe, the liquid impact is reduced; a protective coating and a strengthened explosion-proof layer are installed inside the pipe to improve the life of the pipe; plug-in thread connection is adopted to reduce the connection nodes and increase the connection sealing; and through the liquid detector and liquid collection tank system, liquid leakage is detected and handled in a timely manner to avoid environmental pollution caused by breakage.

Benefits of technology

It effectively extends the service life of the pipe assembly, improves safety, reduces fatigue damage at pipe connections, promptly deal with liquid leakage, and protects the environment.

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Abstract

The invention discloses a large-drift-diameter high-low-pressure manifold which comprises a manifold body, the manifold body comprises a liquid inlet pipe body, a connecting assembly, a high-pressure pipeline, a first conveying pipeline, a second conveying pipeline and a liquid discharging pipe body, and one end of the liquid inlet pipe body is connected with one end of the high-pressure pipeline through the connecting assembly; meanwhile, the other end of the high-pressure pipeline is connected with one end of a first conveying pipeline through a connecting assembly, a check valve and a pressure regulator are arranged on the first conveying pipeline, and the other end of the pressure regulator is connected with the liquid drainage pipe body through a second conveying pipeline. According to the large-drift-diameter high-low-pressure manifold, the first sealing rubber block and the first flow guide seat are arranged at one end of the liquid inlet pipe body, so that when liquid flows in the liquid inlet pipe body, the connecting position of the liquid inlet pipe body and a high-pressure pipeline is not prone to being impacted; and meanwhile, protective coatings and reinforced anti-explosion layers are arranged in the high-pressure pipeline, the first conveying pipeline and the second conveying pipeline, so that the service life of the pipeline is further prolonged.
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Description

Technical Field

[0001] The present invention relates to the technical field related to high and low pressure manifolds, and in particular to a large-diameter high and low pressure manifold. Background Art

[0002] The high- and low-pressure manifold is a fracturing process equipment for unconventional oil and gas well exploitation. Its upstream is connected to a sand mixing truck and a liquid tank. The fracturing medium is transported into the low-pressure pipeline of the high- and low-pressure manifold through a low-pressure pump. The fracturing pump truck sucks the medium through the side outlet of the low-pressure pipeline and boosts its pressure to an ultra-high pressure state, and then transmits it to the high-pressure pipeline of the high- and low-pressure manifold. The medium passes through a swing-type high-pressure check valve and then through the delivery pipeline to transmit the force to the wellhead.

[0003] When the existing high and low pressure manifolds are in use, the fluid flow rate is too fast due to the small diameter, which accelerates the erosion and wear of the inner wall of the pipe by the fluid, affecting its service life. In addition, the union thread connection is adopted, and there are many connection nodes, so that during operation, the threaded connection is easily fatigued, damaged and broken due to the impact of the high-pressure fluid, reducing the safety of use. In view of the above problems, it is necessary to improve the existing equipment. Summary of the invention

[0004] The purpose of the present invention is to provide a large-diameter high- and low-pressure manifold to solve the problem that the existing high- and low-pressure manifolds proposed in the above background technology have small diameters when in use, resulting in too fast fluid flow rate, accelerating the erosion and wear of the inner wall of the pipeline by the fluid, affecting its service life, and adopting a union thread connection with many connection nodes, so that during operation, the threaded connection is easily fatigued, damaged and broken due to the impact of high-pressure fluid, thereby reducing the safety of use.

[0005] To achieve the above object, the present invention provides the following technical solution: a large-diameter high-low pressure manifold, comprising a manifold body,

[0006] The manifold body includes an inlet pipe body, a connecting assembly, a high-pressure pipeline, a first delivery pipeline, a second delivery pipeline and a discharge pipe body, and one end of the inlet pipe body is connected to one end of the high-pressure pipeline through the connecting assembly, and the other end of the high-pressure pipeline is connected to one end of the first delivery pipeline through the connecting assembly, a check valve and a pressure regulator are arranged on the first delivery pipeline, and the other end of the pressure regulator is connected to one end of the second delivery pipeline, and the other end of the second delivery pipeline is connected to the discharge pipe body, a support frame is arranged at the lower end between the inlet pipe body and the discharge pipe body, and the lower end of the support frame is connected to the upper end of the placement and movement mechanism through the first electric telescopic rod, and the upper end of the placement and movement mechanism is symmetrically arranged with a second electric telescopic rod below the connecting assembly, the top of the second electric telescopic rod is connected to the lifting seat, and the upper end of the lifting seat is provided with a protective assembly, and the protective assembly is located outside the connecting assembly;

[0007] The connecting assembly includes a connecting sleeve, a threaded socket, a guide tube, a spring, a first sealing gasket and a limit clamp, and a threaded socket is provided on one side of the connecting sleeve, and a guide tube is provided inside the connecting sleeve, a spring is sleeved in the middle of the outer side of the guide tube, and the side of the guide tube close to the threaded socket is connected to the inside of the connecting sleeve through the first sealing gasket, and the other side of the guide tube is detachably connected to one end of a correspondingly arranged high-pressure pipeline, and the limit clamp provided on the other side of the guide tube is sleeved on the outside of the high-pressure pipeline, and the limit clamp is engaged and connected with the inside of the guide tube.

[0008] Preferably, the liquid inlet pipe body includes a straight liquid inlet pipe, and a connecting disc is arranged on the outer side of one end of the straight liquid inlet pipe, and a plurality of electromagnetic plug rods are arranged equidistantly on the outer side of the connecting disc, a side connecting pipe is arranged on one side of the other end of the straight liquid inlet pipe, and a first mounting disc is arranged on the outer side of the side connecting tube at the other end of the straight liquid inlet pipe, and a plurality of first threaded rods are arranged equidistantly on the outer side of the first mounting disc, and the first threaded rods pass through the first locking sealing cover and are threadedly connected with the first mounting nut.

[0009] Preferably, the inner side of the first snap-fit ​​sealing cover is fitted with the outer side of one end of the liquid inlet straight pipe, and a first positioning column is arranged in the middle of the first snap-fit ​​sealing cover, and the first positioning column passes through the first sealing rubber block and the first guide seat to be connected, the outer sides of the first sealing rubber block and the first guide seat are fitted with the inner side of one end of the liquid inlet straight pipe, and the top of the first guide seat is inclined, and the lowest point of the top of the first guide seat is in the same horizontal plane as the inner diameter of the side connecting pipe.

[0010] Preferably, the first hydraulic detector and the second hydraulic detector are installed on the high-pressure pipeline and the second delivery pipeline respectively, and the structures of the high-pressure pipeline, the first delivery pipeline and the second delivery pipeline are the same as the structure of the pipeline body. At the same time, the pipeline body includes an inner pipe, a reinforced explosion-proof layer and an outer pipe, a reinforced explosion-proof layer is arranged between the inner pipe and the outer pipe, and the inner wall of the inner pipe and the outer wall of the outer pipe are both provided with a protective coating.

[0011] Preferably, the discharge pipe body includes an L-shaped pipe, a plug interface is provided on one side of one end of the L-shaped pipe, and a second sealing gasket is provided at the outer end of the plug interface, and a threaded sealing cover is provided on the outer side of the second sealing gasket, and a second mounting disc and a mounting flange are provided at both ends of the L-shaped pipe, and a plurality of second threaded rods are equidistantly provided on the outer side of the second mounting disc, and the second threaded rods pass through the second locking sealing cover and are threadedly connected with the second mounting nut.

[0012] Preferably, the inner side of the second snap-fit ​​sealing cover is fitted with the outer side of one end of the L-shaped pipe, and a second positioning column is provided in the middle of the inner side of the second snap-fit ​​sealing cover, and the second positioning column passes through the second sealing rubber block and is connected with the second guide seat, the outer sides of the second sealing rubber block and the second guide seat are fitted with the inner side of one end of the L-shaped pipe, and the top of the second guide seat is inclined, and the lowest point of the top of the second guide seat is on the same horizontal plane as the inner diameter of the plug interface.

[0013] Preferably, the L-shaped pipe and the straight liquid inlet pipe are both provided with electric one-way valves on the outside of the support frame, and the inner diameters of the L-shaped pipe and the straight liquid inlet pipe are the same.

[0014] Preferably, the placement and movement mechanism includes a support seat, a positioning assembly, a base and moving rollers. The two sides of the lower end of the support seat are connected to the upper end of the base through symmetrically arranged positioning assemblies, and moving rollers are symmetrically arranged on both sides of the lower end of the base. At the same time, a liquid collecting tank is arranged in the middle of the upper end of the base, and a drain valve is arranged at the lower end of the front side of the liquid collecting tank. The upper end of the liquid collecting tank is connected to the lower end of the corresponding protective assembly through a connecting hose that penetrates the support seat, and at the same time, a liquid detector is arranged in the middle of the front side of the protective assembly.

[0015] Preferably, the positioning assembly includes a connecting bracket, and the connecting brackets are symmetrically arranged with two, and a two-way motor is installed on one side between the two connecting brackets, and the output end of the two-way motor passes through the connecting bracket and is connected to the corresponding driving gear, and an eccentric shaft is arranged on the outer side of the two driving gears, and the eccentric shaft is movably connected to one end of the second connecting member through the first connecting member, and the other end of the second connecting member passes through the limit frame arranged on the connecting bracket and is connected to the universal connecting head, and the universal connecting head is connected to the clamping block through the driving frame, and the driving frame is a Y-shaped structure, the middle of the clamping block is rotatably connected to the connecting bracket through a connecting shaft, and the lower end of the clamping block is connected to the plug-in nail through a connecting vertical rod passing through the limit frame and the plug-in nail, and the bottom of the plug-in nail passes through a groove corresponding to the side of the base and is located below, a sliding column is arranged on the middle back side of the driving frame, and the back side of the sliding column is slidably connected with the eccentric sliding groove opened on the front of the driven gear, the driven gear is rotatably connected to the middle of the upper end of the connecting bracket, and the lower end of one side of the driven gear is meshed with the upper end of one side of the driving gear.

[0016] Compared with the prior art, the invention has the following beneficial effects: the large-diameter high-low pressure manifold,

[0017] (1) In order to solve the problem that the existing high and low pressure manifolds have a small diameter, which leads to a too fast fluid flow rate, accelerates the erosion and wear of the inner wall of the pipe by the fluid, and affects its service life, the present application provides a first sealing rubber block and a first guide seat at one end of the liquid inlet pipe body, so that when the liquid flows in the liquid inlet pipe body, it is not easy to cause impact on the connection between the liquid inlet pipe body and the high-pressure pipe. At the same time, a protective coating and a reinforced explosion-proof layer are provided inside the high-pressure pipe, the first delivery pipe and the second delivery pipe, so as to further improve the service life of the pipe;

[0018] (2) In order to solve the problem that the existing high and low pressure manifolds are connected by union threads and have many connection nodes, which makes the threaded connection easily fatigued and broken due to the impact of high pressure fluid during operation, thus reducing the safety of use, the present application is provided with a connection component and a protection component. The connection component is connected by a plug-in threaded connection method to connect the pipes, and then a protection component is provided on the outside of the connection of the connection component to make the connection tighter. At the same time, a liquid detector is provided. When liquid leakage occurs, it is detected in time and the leaked liquid is allowed to enter the liquid collection tank through the connecting hose for storage, avoiding liquid leakage caused by fracture, affecting the environment, and improving the safety of use;

[0019] (3) In order to solve the problem that when the existing high and low pressure pipe manifolds are in use, the external support device supporting the high and low pressure pipes is not easy to adjust the position when the high and low pressure pipes are installed in sections, causing inconvenience in the use of the high and low pressure pipes, the present application uses a first electric telescopic rod and a second telescopic rod to facilitate the adjustment of the height position of the pipes in the manifold body, so that the height can be adjusted according to the usage situation. At the same time, the convenience and stability of the use of the manifold body are improved by placing a moving mechanism. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 It is a schematic diagram of the top view structure of the present invention;

[0021] Figure 2 It is a schematic diagram of the cross-sectional structure of the liquid inlet pipe body in a top view of the present invention;

[0022] Figure 3 It is a schematic diagram of a top cross-sectional structure of a connection assembly of the present invention;

[0023] Figure 4 It is a schematic diagram of the cross-sectional structure of the liquid discharge pipe body of the present invention from top view;

[0024] Figure 5 It is a schematic diagram of the front cross-sectional structure of the pipeline body of the present invention;

[0025] Figure 6 It is a front view structural schematic diagram of the present invention;

[0026] Figure 7This is a schematic diagram of the front view structure of the positioning component of the present invention.

[0027] In the figure: 1, liquid inlet pipe body; 101, liquid inlet straight pipe; 102, connecting disc; 103, electromagnetic plug rod; 104, side connecting pipe; 105, first installation disc; 106, first threaded rod; 107, first clamping sealing cover; 108, first installation nut; 109, first positioning column; 110, first sealing rubber block; 111, first guide seat; 2, connecting assembly; 201, connecting sleeve; 202, threaded socket; 203, guide pipe; 204, spring; 205, first Sealing gasket; 206, limit card seat; 3, high-pressure pipeline; 301, first hydraulic detector; 4, first delivery pipeline; 5, check valve; 6, pressure regulator; 7, second delivery pipeline; 701, second hydraulic detector; 8, discharge pipe body; 801, L-shaped pipeline; 802, plug interface; 803, second sealing gasket; 804, threaded sealing cover; 805, second mounting disc; 806, second threaded rod; 807, second clamping sealing cover; 808, second mounting nut; 809, first Second positioning column; 810, second sealing rubber block; 811, second flow guide seat; 812, mounting flange; 9, electric one-way valve; 10, pipeline body; 1001, inner pipe; 1002, reinforced explosion-proof layer; 1003, outer pipe; 11, support frame; 12, first electric telescopic rod; 13, support seat; 14, second electric telescopic rod; 15, lifting seat; 16, protection component; 17, positioning component; 1701, connecting bracket; 17011, limit frame; 1702, two-way motor; 1 703, driving gear; 1704, eccentric shaft; 1705, first connecting member; 1706, second connecting member; 1707, limiting frame; 1708, universal connector; 1709, driving frame; 1710, snap-fit ​​block; 1711, connecting vertical rod; 1712, plug-in pin; 1713, sliding column; 1714, driven gear; 1715, eccentric slide; 18, base; 1801, groove; 19, moving roller; 20, liquid collecting box; 21, drain valve; 22, connecting hose. DETAILED DESCRIPTION

[0028] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. 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 creative work are within the scope of protection of the present invention.

[0029] See also Figure 1-7 The present invention provides a technical solution: a large-diameter high-low pressure manifold, according to Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 and Figure 6 As shown, the manifold body includes an inlet pipe body 1, a connecting assembly 2, a high-pressure pipeline 3, a first delivery pipeline 4, a second delivery pipeline 7 and a discharge pipe body 8, and one end of the inlet pipe body 1 is connected to one end of the high-pressure pipeline 3 through the connecting assembly 2, and the other end of the high-pressure pipeline 3 is connected to one end of the first delivery pipeline 4 through the connecting assembly 2. A check valve 5 and a pressure regulator 6 are provided on the first delivery pipeline 4. The pressure regulator 6 is used to adjust the pressure of the liquid to prevent the first delivery pipeline 4 and the second delivery pipeline 7 from being damaged by excessive pressure and affecting their use. The other end of the pressure regulator 6 is connected to one end of the second delivery pipeline 7, and the other end of the second delivery pipeline 7 is connected to the discharge pipe body 8. A first hydraulic detector 301 and a second hydraulic detector 701 are respectively installed on the high-pressure pipeline 3 and the second delivery pipeline 7. Through the first hydraulic detector 301 and the second hydraulic detector 701, it is convenient to detect the hydraulic pressure of the liquid flowing inside the high-pressure pipeline 3 and the second delivery pipeline 7, avoid damage to the high-pressure pipeline 3 and the second delivery pipeline 7 caused by excessive pressure, and improve the safety of the use of the high-pressure pipeline 3 and the second delivery pipeline 7. The structures of the high-pressure pipeline 3, the first delivery pipeline 4 and the second delivery pipeline 7 are the same as the structure of the pipeline body 10. At the same time, the pipeline body 10 includes an inner tube 1001, a reinforced explosion-proof layer 1002 and an outer tube 1003. A reinforced explosion-proof layer 1002 is arranged between the inner tube 1001 and the outer tube 1003, and the inner wall of the inner tube 1001 and the outer wall of the outer tube 1003 are both provided with a protective coating. Through the protective coating and the reinforced explosion-proof layer 1002, the pipeline body 10 has a long service life and is not easy to be damaged during use.

[0030] Specifically, the liquid inlet pipe body 1 includes a liquid inlet straight pipe 101, and a connecting disc 102 is arranged on the outside of one end of the liquid inlet straight pipe 101, and a plurality of electromagnetic plug rods 103 are arranged equidistantly on the outside of the connecting disc 102, and a side connecting pipe 104 is arranged on one side of the other end of the liquid inlet straight pipe 101, and a first mounting disc 105 is arranged on the outside of the side connecting pipe 104 at the other end of the liquid inlet straight pipe 101, and a plurality of first threaded rods 106 are arranged equidistantly on the outside of the first mounting disc 105, and the first threaded rod 106 passes through a first clamping sealing cover 107 and is threadedly connected to a first mounting nut 108, and the inner side of the first clamping sealing cover 107 is connected to the outer side of one end of the liquid inlet straight pipe 101. The first locking sealing cover 107 has a first positioning column 109 in the middle, and the first positioning column 109 passes through the first sealing rubber block 110 and the first guide seat 111 to connect. The outer sides of the first sealing rubber block 110 and the first guide seat 111 fit with the inner side of one end of the liquid inlet straight pipe 101, and the top of the first guide seat 111 is inclined. At the same time, the lowest point of the top of the first guide seat 111 is in the same horizontal plane as the inner diameter of the side connecting pipe 104. The first locking sealing cover 107, the first positioning column 109, the first sealing rubber block 110 and the first guide seat 111 can facilitate sealing of one end of the liquid inlet straight pipe 101 to avoid liquid leakage.

[0031] When in use, the electromagnetic plug 103 is energized to connect and fix the liquid inlet straight pipe 101 to the low-pressure pump, and then the liquid enters the liquid inlet straight pipe 101, so that the liquid enters the side connecting pipe 104 and the connecting component 2 under the action of the first guide seat 111, and then enters the high-pressure pipeline 3 for transportation.

[0032] Specifically, the connecting component 2 includes a connecting sleeve 201, a threaded socket 202, a guide tube 203, a spring 204, a first sealing gasket 205 and a limit clamp 206, and a threaded socket 202 is provided on one side of the connecting sleeve 201, and a guide tube 203 is provided inside the connecting sleeve 201, a spring 204 is sleeved in the middle of the outer side of the guide tube 203, and the side of the guide tube 203 close to the threaded socket 202 is connected to the inside of the connecting sleeve 201 through the first sealing gasket 205, and the other side of the guide tube 203 is detachably connected to one end of the corresponding high-pressure pipeline 3, and the limit clamp 206 provided on the other side of the guide tube 203 is sleeved on the outside of the high-pressure pipeline 3, and the limit clamp 206 is snap-connected to the inside of the guide tube 203.

[0033] When in use, the threaded socket 202 set on one side of the connecting sleeve 201 is connected to the internal thread of the corresponding end of the liquid inlet straight pipe 101, and then one end of the high-pressure pipeline 3 is passed through the limiting clamp 206 and engaged with one end of the guide tube 203, and then the limiting clamp 206 is rotated to make the limiting clamp 206 and the inner thread of the other side of the connecting sleeve 201 connected, so as to facilitate the connection of the high-pressure pipeline 3 and the liquid inlet straight pipe 101 through the connecting component 2, and the other end of the high-pressure pipeline 3 is also connected and fixed to the first delivery pipeline 4 through the connecting component 2.

[0034] Specifically, the discharge pipe body 8 includes an L-shaped pipe 801, and the L-shaped pipe 801 and the liquid inlet straight pipe 101 are both provided with an electric one-way valve 9 on the outside of the support frame 11. The electric one-way valve 9 is used to prevent liquid reflux and affect use, and the inner diameter size of the L-shaped pipe 801 and the liquid inlet straight pipe 101 is the same, and a plug-in port 802 is provided on one side of one end of the L-shaped pipe 801, and a second sealing gasket 803 is provided on the outer end of the plug-in port 802, and a threaded sealing cover 804 is provided on the outer side of the second sealing gasket 803, and a second mounting disc 805 and a mounting flange 812 are respectively provided at both ends of the L-shaped pipe 801, and a plurality of equidistantly arranged outside the second mounting disc 805 The second threaded rod 806, and the second threaded rod 806 passes through the second snap-fit ​​sealing cover 807 and is threadedly connected with the second mounting nut 808. The inner side of the second snap-fit ​​sealing cover 807 fits with the outer side of one end of the L-shaped pipe 801, and a second positioning column 809 is arranged in the middle of the inner side of the second snap-fit ​​sealing cover 807. The second positioning column 809 passes through the second sealing rubber block 810 and is connected with the second guide seat 811. The outer sides of the second sealing rubber block 810 and the second guide seat 811 fit with the inner side of one end of the L-shaped pipe 801, and the top of the second guide seat 811 is inclined. At the same time, the lowest point of the top of the second guide seat 811 is on the same horizontal plane as the inner diameter of the plug-in port 802.

[0035] When in use, one end of the second delivery pipe 7 passes through the threaded sealing cover 804, the second sealing gasket 803 and is engaged with the inside of the plug-in port 802, and then the threaded sealing cover 804 is rotated so that the two sides of the second sealing gasket 803 fit together with the inside of the threaded sealing cover 804 and the plug-in port 802, thereby connecting and fixing the second delivery pipe 7, and then the liquid inside the second delivery pipe 7 enters the inside of the L-shaped pipe 801, so that under the action of the second guide seat 811, the impact force of the liquid on the inside of the L-shaped pipe 801 is reduced, thereby avoiding damage to the L-shaped pipe 801.

[0036] according to Figure 1 , Figure 6 and Figure 7As shown, a support frame 11 is provided at the lower end between the liquid inlet pipe body 1 and the liquid discharge pipe body 8, and the lower end of the support frame 11 is connected to the upper end of the placement movement mechanism through a first electric telescopic rod 12. The support frame 11 is driven to rise and fall by the first electric telescopic rod 12, which is convenient for adjusting the height position of the liquid inlet pipe body 1 and the liquid discharge pipe body 8. At the same time, the lower ends of the liquid inlet pipe body 1 and the liquid discharge pipe body 8 are supported to improve the stability of use. At the same time, the upper end of the placement movement mechanism is symmetrically provided with a second electric telescopic rod 14 below the connecting component 2. The top of the second electric telescopic rod 14 is connected to the lifting seat 15. The lifting seat 15 is driven to rise and fall by the second electric telescopic rod 14, which is convenient for lifting and lowering the protective component 16 and the connecting component 2. A protective component 16 is provided on the upper end of the lifting seat 15. At the same time, the protective component 16 is located on the outside of the connecting component 2. Through the protective component 16, the sealing of the connection between the connecting component 2 and the pipeline is further improved to avoid the connection being broken due to a large impact force. Liquid leakage and outflow, causing pollution to the environment.

[0037] Further explanation, the placement and movement mechanism includes a support seat 13, a positioning component 17, a base 18 and a moving roller 19. The two sides of the lower end of the support seat 13 are connected to the upper end of the base 18 through symmetrically arranged positioning components 17, and the moving rollers 19 are symmetrically arranged on both sides of the lower end of the base 18. At the same time, a liquid collecting box 20 is arranged in the middle of the upper end of the base 18, and a drain valve 21 is arranged at the lower end of the front of the liquid collecting box 20. The upper end of the liquid collecting box 20 is connected to the lower end of the corresponding protective component 16 through a connecting hose 22 that penetrates the support seat 13. At the same time, a liquid detector is arranged in the middle of the front of the protective component 16. Through the liquid detector, the leaked liquid can be detected in time and enter the liquid collecting box 20 through the connecting hose 22 for storage, so as to avoid liquid leakage caused by breakage, affect the environment, and improve the safety of use.

[0038] Specifically, the positioning assembly 17 includes a connecting bracket 1701, and two connecting brackets 1701 are symmetrically arranged, and a bidirectional motor 1702 is installed on one side between the two connecting brackets 1701, and the output end of the bidirectional motor 1702 passes through the connecting bracket 1701 and is connected to the corresponding driving gear 1703, and an eccentric shaft 1704 is arranged on the outer side of the two driving gears 1703, and the eccentric shaft 1704 is movably connected to one end of the second connecting member 1706 through the first connecting member 1705, and the other end of the second connecting member 1706 passes through the limiting frame 1707 arranged on the connecting bracket 1701 and is connected to the universal connector 1708, and the universal connector 1708 is connected to the locking block 1710 through the driving frame 1709 At the same time, the driving frame 1709 is a Y-shaped structure, the middle of the locking block 1710 is rotatably connected to the connecting bracket 1701 through a connecting shaft, and the lower end of the locking block 1710 is connected to the plug-in nail 1712 through a connecting vertical rod 1711 that penetrates the limit frame 17011, and the bottom of the plug-in nail 1712 passes through the groove 1801 correspondingly opened on the side of the base 18 and is located below, and a sliding column 1713 is provided on the back side of the driving frame 1709, and the back side of the sliding column 1713 is slidably connected to the eccentric sliding groove 1715 opened on the front side of the driven gear 1714, and the driven gear 1714 is rotatably connected to the middle of the upper end of the connecting bracket 1701, and the lower end of one side of the driven gear 1714 is meshed with the upper end of one side of the driving gear 1703.

[0039] When in use, the bidirectional motor 1702 drives the driving gear 1703 to rotate, so that the driving gear 1703 drives the eccentric shaft 1704 and the driven gear 1714 to rotate, and then the first connecting member 1705 is driven by the eccentric shaft 1704 to make the second connecting member 1706 connected thereto to move up and down, and at the same time, the driving frame 1709 slides in the universal joint 1708 and the sliding column 1713 in the eccentric slide groove 1715, so that the other end of the driving frame 1709 moves in an arc, and then the driving frame 1709 drives the locking block 1710 to rotate, so that the connecting vertical rod 1711 drives the plug nail 1712 to move, and the plug nail 1712 is inserted into the soil to fix the manifold body and improve the stability of use.

[0040] The directions or positional relationships indicated by terms such as "center", "longitudinal", "lateral", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inside" and "outside" are based on the directions or positional relationships shown in the accompanying drawings. They are merely simplified descriptions for the convenience of describing the present invention, and do not indicate or imply that the devices or elements referred to must have a specific direction, be constructed and operated in a specific direction. Therefore, they should not be understood as limitations on the protection content of the present invention.

[0041] Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the protection scope of the present invention.

Claims

1. A large-diameter high- and low-pressure manifold, comprising a manifold body, characterized in that: The manifold body comprises a liquid inlet pipe body (1), a connecting assembly (2), a high-pressure pipeline (3), a first delivery pipeline (4), a second delivery pipeline (7) and a liquid discharge pipe body (8), wherein one end of the liquid inlet pipe body (1) is connected to one end of the high-pressure pipeline (3) via the connecting assembly (2), and the other end of the high-pressure pipeline (3) is connected to one end of the first delivery pipeline (4) via the connecting assembly (2); a check valve (5) and a pressure regulator (6) are provided on the first delivery pipeline (4), and the other end of the pressure regulator (6) is connected to one end of the second delivery pipeline (7); 7) the other end is connected to the liquid discharge pipe body (8), a support frame (11) is provided at the lower end between the liquid inlet pipe body (1) and the liquid discharge pipe body (8), and the lower end of the support frame (11) is connected to the upper end of the placement moving mechanism through a first electric telescopic rod (12), and at the same time, a second electric telescopic rod (14) is symmetrically provided at the upper end of the placement moving mechanism below the connecting component (2), the top of the second electric telescopic rod (14) is connected to the lifting seat (15), and a protective component (16) is provided at the upper end of the lifting seat (15), and the protective component (16) is located outside the connecting component (2); The connection assembly (2) comprises a connection sleeve (201), a threaded socket (202), a guide tube (203), a spring (204), a first sealing gasket (205) and a limit clamping seat (206), wherein the connection sleeve (201) is provided with a threaded socket (202) on one side, and a guide tube (203) is provided inside the connection sleeve (201), a spring (204) is sleeved in the middle of the outer side of the guide tube (203), and a side of the guide tube (203) close to the threaded socket (202) is connected to the inside of the connection sleeve (201) through the first sealing gasket (205), and the other side of the guide tube (203) is detachably connected to one end of a correspondingly arranged high-pressure pipeline (3), and a limit clamping seat (206) provided on the other side of the guide tube (203) is sleeved on the outer side of the high-pressure pipeline (3), and the limit clamping seat (206) is engaged and connected to the inside of the guide tube (203).

2. The large-diameter high- and low-pressure manifold according to claim 1, characterized in that: The liquid inlet pipe body (1) comprises a liquid inlet straight pipe (101), and a connecting disc (102) is arranged on the outside of one end of the liquid inlet straight pipe (101), and a plurality of electromagnetic plug rods (103) are arranged equidistantly on the outside of the connecting disc (102); a side connecting pipe (104) is arranged on one side of the other end of the liquid inlet straight pipe (101), and a first mounting disc (105) is arranged on the outside of the side connecting pipe (104) at the other end of the liquid inlet straight pipe (101), and a plurality of first threaded rods (106) are arranged equidistantly on the outside of the first mounting disc (105), and the first threaded rods (106) pass through a first locking sealing cover (107) and are threadedly connected to a first mounting nut (108).

3. The large-diameter high- and low-pressure manifold according to claim 2, characterized in that: The inner side of the first snap-fit ​​sealing cover (107) is fitted with the outer side of one end of the liquid inlet straight pipe (101), and a first positioning column (109) is arranged in the middle of the first snap-fit ​​sealing cover (107). The first positioning column (109) penetrates the first sealing rubber block (110) and the first flow guide seat (111) to connect. The outer sides of the first sealing rubber block (110) and the first flow guide seat (111) are fitted with the inner side of one end of the liquid inlet straight pipe (101), and the top of the first flow guide seat (111) is inclined. At the same time, the lowest point of the top of the first flow guide seat (111) is in the same horizontal plane as the inner diameter of the side connecting pipe (104).

4. The large-diameter high- and low-pressure manifold according to claim 1, characterized in that: The high-pressure pipeline (3) and the second delivery pipeline (7) are respectively installed with a first hydraulic detector (301) and a second hydraulic detector (701), and the structures of the high-pressure pipeline (3), the first delivery pipeline (4) and the second delivery pipeline (7) are the same as the structure of the pipeline body (10), and the pipeline body (10) comprises an inner tube (1001), a reinforced explosion-proof layer (1002) and an outer tube (1003), a reinforced explosion-proof layer (1002) is provided between the inner tube (1001) and the outer tube (1003), and the inner wall of the inner tube (1001) and the outer wall of the outer tube (1003) are both provided with a protective coating.

5. The large-diameter high- and low-pressure manifold according to claim 1, characterized in that: The liquid discharge pipe body (8) comprises an L-shaped pipe (801), one end of which is provided with an insertion port (802), and the outer end of the insertion port (802) is provided with a second sealing gasket (803), and a threaded sealing cover (804) is provided on the outer side of the second sealing gasket (803), and the two ends of the L-shaped pipe (801) are respectively provided with a second mounting disc (805) and a mounting flange (812), and a plurality of second threaded rods (806) are equidistantly provided on the outer side of the second mounting disc (805), and the second threaded rods (806) pass through the second locking sealing cover (807) and are threadedly connected with the second mounting nut (808).

6. The large-diameter high- and low-pressure manifold according to claim 5, characterized in that: The inner side of the second snap-fit ​​sealing cover (807) is fitted with the outer side of one end of the L-shaped pipe (801), and a second positioning column (809) is arranged in the middle of the inner side of the second snap-fit ​​sealing cover (807). Meanwhile, the second positioning column (809) passes through the second sealing rubber block (810) and is connected to the second guide seat (811). The outer sides of the second sealing rubber block (810) and the second guide seat (811) are fitted with the inner side of one end of the L-shaped pipe (801), and the top of the second guide seat (811) is inclined. Meanwhile, the lowest point of the top of the second guide seat (811) is in the same horizontal plane as the inner diameter of the plug-in interface (802).

7. The large-diameter high- and low-pressure manifold according to claim 5, characterized in that: The L-shaped pipeline (801) and the straight liquid inlet pipe (101) are both provided with an electric one-way valve (9) located outside the support frame (11), and the inner diameters of the L-shaped pipeline (801) and the straight liquid inlet pipe (101) are the same.

8. The large-diameter high- and low-pressure manifold according to claim 1, characterized in that: The placing and moving mechanism comprises a support seat (13), a positioning assembly (17), a base (18) and a moving roller (19); the lower ends of the support seat (13) are connected to the upper ends of the base (18) via symmetrically arranged positioning assemblies (17); the lower ends of the base (18) are symmetrically arranged with moving rollers (19); a liquid collecting box (20) is arranged in the middle of the upper end of the base (18); a liquid drain valve (21) is arranged at the lower end of the front face of the liquid collecting box (20); the upper end of the liquid collecting box (20) is connected to the lower end of the correspondingly arranged protective assembly (16) via a connecting hose (22) penetrating the support seat (13); and a liquid detector is arranged in the middle of the front face of the protective assembly (16).

9. The large-diameter high- and low-pressure manifold according to claim 8, characterized in that: The positioning assembly (17) includes a connecting bracket (1701), and two connecting brackets (1701) are symmetrically arranged. A bidirectional motor (1702) is installed on one side between the two connecting brackets (1701). The output end of the bidirectional motor (1702) passes through the connecting bracket (1701) and is connected to a corresponding driving gear (1703). An eccentric shaft (1704) is arranged on the outer side of the two driving gears (1703). The eccentric shaft (1704) is movably connected to one end of a second connecting member (1706) through a first connecting member (1705). The other end of the second connecting member (1706) passes through a limiting frame (1707) arranged on the connecting bracket (1701) and is connected to a universal connector (1708). The universal connector (1708) is connected to a locking block (1710) through a driving frame (1709). At the same time, the driving frame (1709) is a Y-shaped structure, the middle of the locking block (1710) is rotatably connected to the connecting bracket (1701) through a connecting shaft, and the lower end of the locking block (1710) is connected to the plug-in pin (1712) through a connecting vertical rod (1711) penetrating the limit frame (17011), and the bottom of the plug-in pin (1712) passes through a groove (1801) correspondingly opened on the side of the base (18) and is located below, a sliding column (1713) is provided on the middle back of the driving frame (1709), and the back of the sliding column (1713) is slidably connected to an eccentric sliding groove (1715) opened on the front of the driven gear (1714), the driven gear (1714) is rotatably connected to the middle of the upper end of the connecting bracket (1701), and the lower end of one side of the driven gear (1714) is meshed with the upper end of one side of the driving gear (1703).

Citation Information

Patent Citations

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