An electromechanical pipeline construction device for prefabricated computer rooms

By installing gripping components and hydraulic devices on the lifting vehicle, the problems of multiple pulleys fixing and wasted manpower during the installation of electromechanical pipelines are solved, achieving efficient and safe pipeline alignment and installation.

CN120736452BActive Publication Date: 2025-11-14CHINA CONSTRUCTION INDUSTRIAL & ENERGY ENGINEERING GROUP CO LTD +1
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Patent Information

Application Number
CN202511194846.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-08-26
Publication Date
2025-11-14
Estimated Expiration
2045-08-26

AI Technical Summary

Technical Problem

During the installation of electromechanical pipelines, pulleys need to be fixed in multiple locations in the computer room, which increases the workload of staff, reduces efficiency, and requires multiple staff to straighten the pipelines, wasting manpower and posing a risk of pipeline damage or personnel injury.

Method used

A gripping assembly, including clamps and hydraulic devices, is installed on the lifting platform of the gantry crane to fix and align pipelines. Combined with ropes and control rods, it enables precise movement, reducing the need for manpower and the risk of pipeline swaying during the alignment process.

Benefits of technology

By using the gripping component, the need for fixed pulleys on the top of the computer room is reduced, saving manpower, improving work efficiency, reducing labor intensity, and avoiding pipeline damage and personnel injury.

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Abstract

This invention relates to the field of electromechanical pipeline construction equipment technology, specifically to an electromechanical pipeline construction equipment for prefabricated computer rooms. The equipment includes a lifting vehicle chassis with a lifting platform mounted on it. A guardrail is fixedly installed on the lifting platform. This invention utilizes a gripping component on the lifting platform to secure the pipeline to one side of the platform. The lifting platform then raises the pipeline and the worker together, allowing the worker on the platform to install the pipeline. This design not only avoids the need to fix multiple pulleys on the top of the computer room, reducing the workload of the workers, but also allows for pipeline fixation and alignment via the gripping component, eliminating the need for multiple workers to straighten the pipeline, saving manpower, reducing the labor intensity of the workers, and preventing injuries caused by pipeline swaying.
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Description

Technical Field

[0001] This invention relates to the field of electromechanical pipeline construction equipment technology, specifically to an electromechanical pipeline construction equipment for prefabricated computer rooms. Background Technology

[0002] Electromechanical pipelines in the computer room are the core infrastructure to ensure the efficient and safe operation of equipment. They have functions such as power supply, signal transmission and security. Different types of electromechanical pipelines in the computer room work together to provide comprehensive protection for the stable operation of the equipment. In order to facilitate installation and subsequent maintenance, the electromechanical pipelines in the computer room are usually prefabricated and connected by bolts.

[0003] Electromechanical cables in a computer room are typically installed on the ceiling. Since these cables are usually made of metal, they are quite heavy. During installation, workers need to use tools to hoist the cables to the designated location. For example, pulleys are fixed to the ceiling of the computer room, and ropes are used to pull the cables up. However, since the cables usually cover the entire computer room, pulleys need to be fixed in multiple locations, which increases the workload and reduces efficiency. After the cables are hoisted, workers need to use a lift to reach the designated location for installation. This requires multiple workers to straighten the hoisted cables and align two adjacent cables. This not only wastes manpower and increases the labor intensity of workers, but the swaying of the cables can also easily cause collisions, resulting in cable damage or personnel injury.

[0004] To address the aforementioned problems, existing technologies offer several solutions. For example, patent application number CN202111307541.5 provides a construction device for building electromechanical pipelines, including a support. The support has a fixing component inside, a limit component, and a driven component. An auxiliary component is located on the inner side of the support. The fixing component includes a clamping plate, the left side of which is hinged to one end of a crossbar. The other end of the crossbar passes through the inner side of the support and is fixed to the inner wall of the support. The inner wall of the support is fixed to the top of the fixing rod. Through the auxiliary component, when installing electrical conduits, the conduits are first secured by screws... The bracket is fixed to the roof with a bolt, and the conduit is pushed from the top of the bracket. At this time, the baffle provides stable support for the conduit without affecting its movement. Workers can then connect this section of conduit to the already installed electromechanical pipelines. The operation is convenient and does not require workers to temporarily support the conduit. Although this setting facilitates the lifting of electromechanical pipelines without the need for workers to temporarily support the conduit, it requires fixing the bracket to the roof. Therefore, when installing electromechanical pipelines, brackets need to be installed in advance at multiple locations where the electromechanical pipelines need to be installed, which increases the workload of workers and does not effectively improve work efficiency. Summary of the Invention

[0005] The purpose of this invention is to provide an electromechanical pipeline construction device for prefabricated computer rooms, which solves the problem that when installing pipelines, multiple fixed pulleys are required in the computer room, which increases the workload of workers and reduces work efficiency. In addition, multiple workers are required to straighten the suspended pipelines and align two adjacent pipelines, which wastes manpower and increases the labor intensity of workers. Furthermore, the swaying of pipelines can easily cause collisions, resulting in pipeline damage or personnel injury.

[0006] To achieve the above objectives, the present invention provides the following technical solution:

[0007] An electromechanical pipeline construction device for prefabricated computer rooms includes a lifting vehicle chassis, a lifting platform mounted on the lifting vehicle chassis, a guardrail fixedly installed on the lifting platform, a hydraulic device fixedly installed on the lifting platform, and a gripping assembly with a clamping plate on the lifting platform. The gripping assembly is slidably connected to the lifting platform and connected to the hydraulic device. The clamping plate is slidably connected to the gripping assembly. The hydraulic device is used to control the movement of the gripping assembly along the direction perpendicular to the lifting platform, and the gripping assembly is used to control the movement of the clamping plate to contact the pipeline.

[0008] It's easy to understand that when installing pipelines, workers need to fix pulleys on the top of the machine room and pull the pipelines up with ropes. After the pipelines are hoisted, workers need to ride a lift truck to the designated position to install them. Therefore, multiple workers are needed to straighten the hoisted pipelines and align two adjacent pipelines. This not only wastes manpower and increases the labor intensity of workers, but also makes the pipelines prone to collisions due to swaying, causing pipeline damage or personnel injury. This design uses a gripping component on the lifting platform of the lift truck. The gripping component can fix the pipeline to one side of the lifting platform. Then, after the workers adjust the position of the lift truck, the pipeline and the workers are raised together by the lifting platform. At this point, the workers on the lifting platform can install the pipelines. Therefore, this design not only avoids fixing multiple pulleys on the top of the machine room, reducing the workload of workers, but also saves manpower and reduces the labor intensity of workers by using a gripping component to fix and align the pipelines, thus eliminating the need for multiple workers to straighten the pipelines, and also prevents the pipelines from swaying and causing injury to workers.

[0009] Preferably, the gripping assembly includes a hydraulic rod slidably connected to a hydraulic device, a mounting base connected to the hydraulic rod, two limiting rods fixedly connected to the lifting platform, the mounting base slidably connected to the limiting rods, a main shaft slidably connected to the mounting base, a clamping plate two fixedly connected to one end of the main shaft outside the guardrail, a clamping plate one slidably connected to clamping plate two, pressing blocks rotatably connected to both clamping plate one and clamping plate two, a motor fixedly connected to clamping plate two, a screw fixedly connected to the output end of the motor, the screw threadedly connected to clamping plate one, and a limiting device provided on the mounting base for limiting the rotation of the main shaft.

[0010] It's easy to understand that pipeline alignment can only be achieved by moving the lifting platform. However, the lifting platform is only convenient for forward and backward movement. When the pipeline is tilted horizontally, it's difficult for the lifting platform to make small and precise movements, making it difficult to align and install the pipeline. Furthermore, excessive movement of the lifting platform can easily cause the pipeline to collide and be damaged. Therefore, this design incorporates clamping plates one and two on the gripping assembly. Clamping plates one and two can not only move outwards from the guardrail, but also have rotatable pressing blocks. The pipeline is clamped between the two pressing blocks. Therefore, once the pipeline follows the lifting platform to the appropriate height, the worker can use a hydraulic device to raise the pipeline to the designated height. The pressing blocks on clamping plates one and two can rotate, allowing the worker to manually adjust the horizontal tilt of the pipeline for better alignment. Thus, this design not only makes pipeline alignment easier, saves manpower, and improves worker efficiency, but also prevents pipeline collisions and damage caused by excessive movement of the lifting platform.

[0011] Preferably, the pressing block has an arc surface one, the radius of the arc surface one is larger than the radius of the pipeline, and the pressing block has an arc surface two, which are arranged on both sides of the arc surface one, and the arc surface one is in contact with the pipeline.

[0012] As is easily understood, this design features an arc surface on each of the two pressing blocks. When clamps 1 and 2 secure the pipeline, the pipeline is enclosed within the arc surface on the upper and lower pressing blocks. This allows clamps 1 and 2 to better clamp the pipeline, preventing it from falling off. Furthermore, the radius of the arc surface is greater than the radius of the largest pipeline, enabling the gripping component to grip other pipelines smaller than that size, thus improving the adaptability of the gripping component.

[0013] Preferably, the pressing block has multiple rectangular grooves, which are evenly and equidistantly arranged on the pressing block, and all of the rectangular grooves point towards the axis of the arc surface. A roller is rotatably connected inside each rectangular groove, and the edge of the roller is higher than the surface of the arc surface.

[0014] It's easy to understand that after the pipelines are aligned, workers need to move the lifting platform forward or backward to move the pipelines until they make contact. Only then can the workers install the pipelines. However, moving the pipelines by moving the lifting platform is difficult to control. Excessive movement can easily cause the pipelines to collide, resulting in damage. Collisions may even cause the lifting platform to tip over, causing injury. Furthermore, even after the two pipelines are aligned and in contact, the threaded holes on the flanges of the two pipelines may not be aligned, making installation impossible and requiring readjustment. This design solves this problem by creating multiple rectangular slots on the pressing block. Each rectangular slot contains a rotatably connected roller with its edge protruding above the curved surface. After the pipelines are aligned, workers can push the pipelines to move them along the axial direction, making them make contact. If the threaded holes on the flanges of the two pipelines are not aligned, the pipelines can be rotated to align the threads. Therefore, this design facilitates pipeline movement and improves the work efficiency of workers.

[0015] Preferably, a control rod is rotatably connected to the second clamping plate, a one-way bearing is provided between the control rod and the first clamping plate, a rope is provided on the control rod, the rope is wound around the control rod, a hook is fixedly connected to one end of the rope, the hook is connected to the end of the pipeline away from the lifting platform, the one-way bearing is used to restrict the control rod from rotating in the direction of releasing the rope, the limiting device includes a first connecting rod, a limiting groove is opened on the mounting base, one end of the main shaft extends into the limiting groove and the main shaft is in contact with the inner wall of the limiting groove, the first connecting rod is rotatably connected to the mounting base, one end of the first connecting rod extends into the limiting groove, and a limiting block is fixedly connected to the end of the first connecting rod located in the limiting groove, a locking block is also provided in the limiting groove, the locking block has an arc groove, the limiting block is slidably connected in the arc groove, when the rope is straightened, the rope and the pipeline axis are on the same horizontal plane.

[0016] It's easy to understand that because the pressing block has rollers, it's difficult to maintain the balance of the pipeline when it's clamped on the gripping component. Workers need to hold the pipeline to prevent it from sliding along the axis, which could cause it to fall and collide, resulting in pipeline damage or even injury. Therefore, this design incorporates ropes on the gripping component. When the gripping component picks up the pipeline, it grips the pipeline close to the end where it's installed, and is adjusted to slightly tilt the pipeline away from the installation end. The hooks on the ropes are connected to the end away from the installation end. When the pipeline is lifted, gravity will cause it to slide towards the end away from the installation end, but the rope connection prevents it from slipping. Furthermore, when it is necessary to bring two pipelines close together, the operator can rotate the control lever to reel in the rope, which will pull the pipeline and move it. Therefore, this design not only brings the end of the pipeline to be installed closer to the lifting platform, but also allows the operator on the lifting platform to be closer to the end of the pipeline to be installed, making it easier for the operator to operate and improving work efficiency. In addition, compared to using the movement of the lifting vehicle to control the movement of the pipeline, which can cause the entire lifting platform to move and thus affect the accuracy of the pipeline connection, the method of using the control lever to pull the pipeline with the rope makes the movement of the pipeline more precise and stable, thereby improving the accuracy of pipeline connection.

[0017] Preferably, a support plate is fixedly connected to both the first and second clamping plates. An arc surface three is formed on the support plate, and the radius of the arc surface three is larger than the radius of the pipeline. One side of the support plate is in contact with the flange at one end of the pipeline.

[0018] It's easy to understand that when installing pipelines inside a computer room, some pipelines need to be installed vertically or at a large angle. However, the greater the angle of inclination, the greater the tension on the pipeline from the rope. This results in significant tension at the connection between the control lever and clamp plate two, potentially damaging the control lever. Furthermore, the greater the tension, the more difficult it becomes for workers to manually adjust the pipeline by rotating the control lever. Therefore, this design incorporates support plates fixedly connected to both clamp plate one and clamp plate two, addressing the need for vertical or large-angle installation. When installing the pipeline, the pipeline is first clamped horizontally. As the lifting platform rises, the pipeline's own weight, combined with the work of the ground staff, continuously adjusts the pipeline's angle. After adjustment, one side of the support plate contacts the flange at one end of the pipeline. At this point, the pipeline's weight acts directly on the two clamping plates, and the axial movement of the pipeline can be adjusted directly via a hydraulic device. Therefore, this design can evenly distribute the pipeline's weight, preventing the weight from concentrating on a single part of the gripping assembly, which could damage the gripping assembly and improve its service life.

[0019] Preferably, the mounting base has a sliding plate at its bottom, which is slidably connected to the limiting rod. A sliding block is fixedly connected to the sliding plate, and the sliding block contacts the limiting rod and the guardrail. The mounting base is rotatably connected to the sliding plate. The middle part of the sliding plate is hollow. One end of the hydraulic rod is hinged to a push rod, and one end of the push rod is hinged to the mounting base. A second connecting rod is provided on the mounting base, and the second connecting rod is rotatably connected to both the mounting base and the sliding plate.

[0020] It's easy to understand that when clamping pipelines on the ground, since clamping plates one and two are horizontal, the pipeline needs to be raised to a designated height before being moved into clamping plates one and two. This requires multiple workers, wasting manpower. Therefore, this design uses a sliding plate at the bottom of the mounting base. When the pipeline is clamped on the ground, the worker rotates connecting rod two to disconnect the mounting base from the sliding plate. Then, the hydraulic device is activated, and the hydraulic rod pushes a push rod at one end. The push rod then pushes the mounting base at the other end, causing the mounting base to rotate around the sliding plate, making clamping plates one and two perpendicular to the ground. At this point, it is only necessary to adjust the spindle to bring the gap between clamping plates one and two closer to the pipeline on the ground, and then control the clamping plates to clamp the pipeline. Therefore, this design facilitates the clamping of pipelines on the ground, saves manpower, and improves work efficiency.

[0021] Preferably, a rectangular block is provided at the bottom of the sliding plate, a spring is provided between the rectangular block and the sliding plate, rectangular rods are hinged to both ends of the rectangular block, sliders are hinged to the two rectangular rods, the two sliders are slidably connected to the sliding plate, a second rectangular groove is provided on the limiting rod, the slider contacts the inner wall of the second rectangular groove, and the rectangular block contacts the second connecting rod.

[0022] As is easily understood, when the hydraulic device drives the mounting base to rotate around the sliding plate, since the rotating plate is not fixed, the sliding plate may slide on the limit rod during the rotation of the mounting base, thus affecting the normal operation of the mounting base. Therefore, this design sets a rectangular block at the bottom of the sliding plate. When the second connecting rod contacts the connection between the sliding plate and the mounting base, the rectangular block loses the support of the second connecting rod. At this time, the rectangular block is pulled by the spring, and the sliders at both ends of the rectangular block will move into the rectangular grooves on the limit rod. At this time, the sliding plate will be restricted by the sliders and cannot move. Therefore, this design avoids the sliding plate sliding on the limit rod during the rotation of the mounting base, thus preventing it from affecting the normal operation of the mounting base.

[0023] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0024] 1. This invention uses a gripping component on the lifting platform of a lifting vehicle to fix the pipeline to one side of the platform. The platform then lifts the pipeline and the worker together, allowing the worker on the platform to install the pipeline. This design not only avoids fixing multiple pulleys on the top of the machine room, reducing the workload of the workers, but also eliminates the need for multiple workers to straighten the pipeline by using the gripping component, saving manpower, reducing the labor intensity of the workers, and preventing the workers from being injured by the swaying of the pipeline.

[0025] 2. This invention, by setting clamping plates one and two on the gripping component, allows the pipeline to be precisely lifted to a designated height by the operator using a hydraulic device after the pipeline has reached a suitable height with the lifting platform. At this time, the operator can also manually adjust the horizontal tilt of the pipeline to better align it. Therefore, this design not only allows the pipeline to be aligned higher and more conveniently, saving manpower and improving the work efficiency of the operator, but also avoids the pipeline from colliding and being damaged due to excessive movement of the lifting vehicle.

[0026] 3. This invention incorporates a rope on the gripping component. When the gripping component picks up the pipeline, it grips the pipeline close to the end where it is installed, and adjusts the position so that the pipeline is slightly tilted away from the installation end. The hook on the rope is connected to the end away from the installation end. When the pipeline is lifted, the pipeline will not slip because of the rope connection. Furthermore, the operator can rotate the control lever to rewind the rope, which will pull the pipeline and move it. Therefore, this design facilitates operation and improves work efficiency. Attached Figure Description

[0027] Figure 1 This is a schematic diagram of the electromechanical pipeline construction device of the present invention;

[0028] Figure 2 for Figure 1 Enlarged view of point A in the middle;

[0029] Figure 3 This is a schematic diagram of the electromechanical pipeline construction device of the present invention when the pipeline is not clamped;

[0030] Figure 4 for Figure 3 Enlarged view at point B in the middle;

[0031] Figure 5 This is a schematic diagram of the gripping component of the present invention;

[0032] Figure 6 This is a schematic diagram of the rear structure of the gripping component of the present invention;

[0033] Figure 7This is a schematic diagram of the process by which the gripping component of the present invention rotates to grip the pipeline.

[0034] In the diagram: 1. Lifting vehicle chassis; 2. Lifting platform; 3. Guardrail; 4. Hydraulic device; 5. Clamping plate one; 6. Pipeline; 7. Hydraulic rod; 8. Mounting base; 9. Limiting rod; 10. Main shaft; 11. Clamping plate two; 12. Pressing block; 13. Motor; 14. Screw; 15. Control rod; 16. One-way bearing; 17. Rope; 18. Hook; 19. Limiting groove; 20. Connecting rod one; 21. Limiting block; 22. Arc surface one; 23. Arc surface two; 24. Rectangular groove one; 25. Roller; 26. Support plate; 27. Arc surface three; 28. Sliding plate; 29. ​​Sliding block; 30. Push rod; 31. Connecting rod two; 32. Rectangular block; 33. Spring; 34. Rectangular rod; 35. Slider; 36. Rectangular groove two; 37. Locking block; 38. Circular arc groove. Detailed Implementation

[0035] This invention provides a construction device for electromechanical pipelines in prefabricated computer rooms, the technical solution of which is as follows:

[0036] Please see Figures 1 to 7 An electromechanical pipeline construction device for prefabricated computer rooms includes a lifting vehicle chassis 1, a lifting platform 2 mounted on the lifting vehicle chassis 1, a guardrail 3 fixedly installed on the lifting platform 2, a hydraulic device 4 fixedly installed on the lifting platform 2, and a gripping assembly with a clamping plate 5 mounted on the lifting platform 2. The gripping assembly is slidably connected to the lifting platform 2 and connected to the hydraulic device 4. The clamping plate 5 is slidably connected to the gripping assembly. The hydraulic device 4 is used to control the movement of the gripping assembly in a direction perpendicular to the lifting platform 2. The gripping assembly is used to control the movement of the clamping plate 5 to contact the pipeline 6. The gripping assembly includes a hydraulic rod 7, which is slidably connected to the hydraulic device 4. On the pressure device 4, a mounting base 8 is connected to the hydraulic rod 7. Two limit rods 9 are fixedly connected to the lifting platform 2. The mounting base 8 is slidably connected to the limit rods 9. A main shaft 10 is slidably connected to the mounting base 8. A clamping plate 11 is fixedly connected to one end of the main shaft 10 outside the guardrail 3. A clamping plate 5 is slidably connected to the clamping plate 11. Pressing blocks 12 are rotatably connected to both clamping plate 5 and clamping plate 11. A motor 13 is also fixedly connected to clamping plate 11. A screw 14 is fixedly connected to the output end of the motor 13. The screw 14 is threadedly connected to clamping plate 5. A limit device is also provided on the mounting base 8. The limit device is used to limit the rotation of the main shaft 10.

[0037] For further details, please refer to Figures 1 to 7The pressing block 12 has an arc surface 22, the radius of which is larger than the radius of the pipeline 6. The pressing block 12 also has an arc surface 23 on both sides of the arc surface 22, which contacts the pipeline 6. Multiple rectangular grooves 24 are evenly spaced on the pressing block 12, all pointing towards the axis of the arc surface 22. A roller 25 is rotatably connected to the inner side of the clamping plate 11. The edge of the roller 25 is higher than the surface of the arc surface 22. A control rod 15 is rotatably connected to the clamping plate 11. A one-way bearing 16 is provided between the control rod 15 and the clamping plate 11. A rope 17 is provided on the control rod 15 and is wound around the control rod 15. A hook 18 is fixedly connected to one end of the rope 17. The hook 18 is connected to the end of the pipeline 6 away from the lifting platform 2. The one-way bearing 16 is used to limit the rotation of the control rod 15 in the direction of releasing the rope 17. The limiting device includes a connecting rod 20. A limiting groove 19 is opened on the mounting base 8. One end of the main shaft 10 extends into the limiting groove 19 and is in contact with the inner wall of the limiting groove 19. The connecting rod 20 is rotatably connected to the mounting base 8. One end of the connecting rod 20 extends into the limiting groove 19, and a limiting block 21 is fixedly connected to the end of the connecting rod 20 located in the limiting groove 19. A locking block 37 is also provided in the limiting groove 19. The locking block 37 has an arc groove 38, and the limiting block 21 is slidably connected in the arc groove 38. The limiting block 21 is in contact with the main shaft 10. When the rope 17 is straightened, the rope 17 and the axis of the pipeline 6 are on the same horizontal plane. The clamping plate 1 5 and the clamping plate 2 11 are both fixedly connected to the support plate 26. The support plate 26 has an arc surface 3 27. The arc radius of the arc surface 3 27 is larger than the radius of the pipeline 6. One side of the support plate 26 is in contact with the flange at one end of the pipeline 6.

[0038] Please see Figures 1 to 7 The mounting base 8 has a sliding plate 28 at its bottom, which is slidably connected to the limiting rod 9. A sliding block 29 is fixedly connected to the sliding plate 28, and the sliding block 29 contacts the limiting rod 9 and the guardrail 3. The mounting base 8 is rotatably connected to the sliding plate 28. The middle part of the sliding plate 28 is hollow. One end of the hydraulic rod 7 is hinged to a push rod 30, and one end of the push rod 30 is hinged to the mounting base 8. A connecting rod 21 is provided on the mounting base 8, and the connecting rod 21 is rotatably connected to the mounting base 8 and the sliding plate 28 respectively. A rectangular block 32 is provided at the bottom of the sliding plate 28, and a spring 33 is provided between the rectangular block 32 and the sliding plate 28. Rectangular rods 34 are hinged to both ends of the rectangular block 32, and sliders 35 are hinged to the two rectangular rods 34. The two sliders 35 are slidably connected to the sliding plate 28. A rectangular groove 26 is provided on the limiting rod 9, and the slider 35 contacts the inner wall of the rectangular groove 26. The rectangular block 32 contacts the connecting rod 21.

[0039] Please see Figures 1 to 7When installing pipeline 6, the workers first position pipeline 6 parallel to the lifting platform chassis 1, with one end of pipeline 6 to be fixed closer to the lifting platform 2 and the other end further away. Then, the workers disengage the mounting base 8 from the sliding plate 28 by rotating connecting rod 31. At this point, the rectangular block 32 loses the support of connecting rod 31 and is pulled by spring 33. The sliders 35 at both ends of the rectangular block 32 move into the rectangular grooves 36 on the limit rod 9. The sliding plate 28 is then restricted by the sliders 35 and cannot move. The hydraulic device 4 is then activated, and the hydraulic rod 7 on the hydraulic device 4 pushes the push rod 30 at one end. When push rod 30 is activated, it will push mounting base 8 at one end. At this time, mounting base 8 will rotate around sliding plate 28, making clamping plate 5 and clamping plate 11 perpendicular to the ground. Then, the main shaft 10 needs to be adjusted so that clamping plate 5 and clamping plate 11 are close to the pipeline 6 located on the ground. Then, the motor 13 is started. The output end of motor 13 rotates and drives screw 14 to rotate. Screw 14 pushes clamping plate 5. At this time, clamping plate 5 gradually moves towards clamping plate 11 and contacts pipeline 6, applying pressure to pipeline 6. After pipeline 6 is clamped and fixed, the operator rotates connecting rod 20 to move limiting block 21 away from the rotating shaft and adjusts main shaft 10 so that pipeline 6 is slightly tilted away from the end of lifting platform 2. At this point, the angle between pipeline 6 and the horizontal plane is approximately 5°. After adjustment, rotate connecting rod 1 20 again to fix the limiting block 21 to pipeline 6. The worker pulls out the rope 17 on the control rod 15 and fixes the hook 18 at one end to the flange on pipeline 6. The hydraulic device 4 is activated again to rotate the mounting seat 8 back to its original position. At this time, the worker rotates connecting rod 2 31 to fix the mounting seat 8 to the sliding plate 28. The rectangular block 32 will be pushed by connecting rod 2 31, thereby causing the slider 35 to move away from the rectangular groove 2 36 on the limiting rod 9. At this time, the worker starts the lifting vehicle, causing the lifting platform 2 to lift pipeline 6 and the worker together. When the worker reaches the appropriate position... After reaching the working position, the hydraulic device 4 is restarted, and the mounting base 8 lifts the pipeline 6 to the predetermined installation position. At this time, the worker manually adjusts the angle of the pipeline 6 to align it, and rotates the control lever 15 to retract the rope 17, causing the pipeline 6 to move along the axis closer to the already installed pipeline 6. After the worker installs and fixes the two pipelines 6 together, the motor 13 is started to release the gripping component from the pipeline 6, and the lifting vehicle is started to move towards the end of the pipeline 6 away from the lifting platform 2. Then, the connection between the hook 18 and the pipeline 6 is released, the rope 17 is retracted, and the lifting vehicle is started again to move the gripping component away from the pipeline 6. At this time, the installation of the pipeline 6 is completed.

[0040] The specific embodiment of the present invention has been described in detail above with reference to the accompanying drawings, but the present invention is not limited to the embodiments described above. For those skilled in the art, various changes, modifications, substitutions, and variations made to these embodiments without departing from the principles and ideas of the present invention should still fall within the protection scope of the present invention.

Claims

1. A construction device for electromechanical pipelines in a prefabricated computer room, comprising a lifting vehicle chassis (1), a lifting platform (2) mounted on the lifting vehicle chassis (1), and a guardrail (3) fixedly installed on the lifting platform (2), characterized in that, A hydraulic device (4) is fixedly installed on the lifting platform (2). A gripping assembly with a clamping plate (5) is provided on the lifting platform (2). The gripping assembly is slidably connected to the lifting platform (2) and connected to the hydraulic device (4). The clamping plate (5) is slidably connected to the gripping assembly. The hydraulic device (4) is used to control the gripping assembly to move in a direction perpendicular to the lifting platform (2). The gripping assembly is used to control the clamping plate (5) to move and contact the pipeline (6). The gripping assembly includes a hydraulic rod (7). The hydraulic rod (7) is slidably connected to the hydraulic device (4). A mounting base (8) is connected to the hydraulic rod (7). Two limiting devices are fixedly connected to the lifting platform (2). The mounting base (8) is slidably connected to the limiting rod (9), and the mounting base (8) is slidably connected to the main shaft (10). The end of the main shaft (10) located outside the guardrail (3) is fixedly connected to the clamping plate (11). The clamping plate (5) is slidably connected to the clamping plate (11). Pressing blocks (12) are rotatably connected to both the clamping plate (5) and the clamping plate (11). A motor (13) is also fixedly connected to the clamping plate (11). A screw (14) is fixedly connected to the output end of the motor (13). The screw (14) is threadedly connected to the clamping plate (5). The mounting base (8) is also provided with a limiting device, which is used to limit the rotation of the main shaft (10).

2. The electromechanical pipeline construction device for prefabricated computer rooms according to claim 1, characterized in that, The pressing block (12) has an arc surface one (22) with a radius of arc greater than that of the pipeline (6), and the pressing block (12) has an arc surface two (23) on both sides of the arc surface one (22). The arc surface one (22) is in contact with the pipeline (6).

3. The electromechanical pipeline construction device for prefabricated computer rooms according to claim 2, characterized in that, The pressing block (12) has multiple rectangular grooves (24) arranged at equal intervals on the pressing block (12), and the multiple rectangular grooves (24) all point towards the axis of the arc surface (22). A roller (25) is rotatably connected inside the rectangular groove (24), and the edge of the roller (25) is higher than the surface of the arc surface (22).

4. The electromechanical pipeline construction device for prefabricated computer rooms according to claim 3, characterized in that, A control rod (15) is rotatably connected to the second clamping plate (11). A one-way bearing (16) is provided between the control rod (15) and the first clamping plate (5). A rope (17) is provided on the control rod (15). The rope (17) is wound around the control rod (15). A hook (18) is fixedly connected to one end of the rope (17). The hook (18) is connected to the end of the pipeline (6) away from the lifting platform (2). The one-way bearing (16) is used to limit the rotation of the control rod (15) in the direction of releasing the rope (17). The limiting device includes a connecting rod (20). A limiting groove (19) is opened on the mounting base (8). The main shaft (10) One end of the main shaft (10) extends into the limiting groove (19), and the main shaft (10) is in contact with the inner wall of the limiting groove (19). The connecting rod (20) is rotatably connected to the mounting base (8). One end of the connecting rod (20) extends into the limiting groove (19), and the end of the connecting rod (20) located in the limiting groove (19) is fixedly connected to the limiting block (21). The limiting groove (19) is also provided with a locking block (37). The locking block (37) has an arc groove (38). The limiting block (21) is slidably connected in the arc groove (38). When the rope (17) is straightened, the rope (17) and the axis of the pipeline (6) are on the same horizontal plane.

5. The electromechanical pipeline construction device for prefabricated computer rooms according to claim 2, characterized in that, A support plate (26) is fixedly connected to both the first clamp (5) and the second clamp (11). An arc surface (27) is provided on the support plate (26). The radius of the arc surface (27) is greater than the radius of the pipeline (6). One side of the support plate (26) is in contact with the flange at one end of the pipeline (6).

6. The electromechanical pipeline construction device for prefabricated computer rooms according to claim 1, characterized in that, The mounting base (8) is provided with a sliding plate (28) at the bottom. The sliding plate (28) is slidably connected to the limiting rod (9). A sliding block (29) is fixedly connected to the sliding plate (28). The sliding block (29) is in contact with the limiting rod (9) and the guardrail (3). The mounting base (8) is rotatably connected to the sliding plate (28). The middle part of the sliding plate (28) is a hollow structure. One end of the hydraulic rod (7) is hinged to a push rod (30). One end of the push rod (30) is hinged to the mounting base (8). A connecting rod two (31) is provided on the mounting base (8). The connecting rod two (31) is rotatably connected to the mounting base (8) and the sliding plate (28) respectively.

7. The electromechanical pipeline construction device for prefabricated computer rooms according to claim 3, characterized in that, A rectangular block (32) is provided at the bottom of the sliding plate (28). A spring (33) is provided between the rectangular block (32) and the sliding plate (28). A rectangular rod (34) is hinged to both ends of the rectangular block (32). A slider (35) is hinged to the two rectangular rods (34). The two sliders (35) are slidably connected to the sliding plate (28). A rectangular groove (36) is provided on the limiting rod (9). The slider (35) contacts the inner wall of the rectangular groove (36). The rectangular block (32) contacts the connecting rod (31).

Citation Information

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