Super high-rise building pipeline vertical transportation device

By using support columns and electric hoists in conjunction with cable vertical transportation devices in super high-rise buildings, the spatial constraints and safety hazards of pipeline hoisting have been solved, achieving efficient and stable pipeline transportation.

CN224062306UActive Publication Date: 2026-03-31CHINA CONSTR SECOND ENG BUREAU LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-26
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

Existing technologies for vertical pipeline transportation in super high-rise buildings suffer from spatial limitations, inconvenience in hoisting, low efficiency, and safety hazards.

Method used

A vertical transport device comprising support columns, a top frame, an electric hoist, a pallet, an adjusting plate, and cables is adopted. By utilizing the electric hoist and cables, the vertical transport of pipelines is achieved through a simple hoisting structure, avoiding the use of tower cranes.

Benefits of technology

It enables the rapid and stable installation of pipelines in the correct position within confined spaces, reducing safety hazards, improving transportation efficiency, and reducing labor intensity and costs.

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Abstract

The utility model belongs to the technical field of pipeline transportation, and particularly relates to a super high-rise building pipeline vertical transportation device which comprises four supporting columns, a top frame is fixedly connected to the upper ends of the four supporting columns, an electric elevator is installed at the upper end of the top frame, and a supporting plate is fixedly connected to the inner side of the top frame. According to the device, the horizontal plane serves as a fulcrum, the pipeline can be hoisted through a simple hoisting structure, a tower crane is not needed for hoisting the pipeline, the device is small in size and not limited by using sites and space, the pipeline can be rapidly hoisted to the correct construction position in the narrow space, the stability of pipeline transportation in the narrow space is improved, and the construction efficiency is improved. The vertical transportation device for the super high-rise building pipeline has the advantages of being simple in structure, free of falling risks caused by a tower crane, capable of reducing potential safety hazards and improving transportation efficiency, low in labor intensity and capable of solving the problems that an existing vertical transportation device for the super high-rise building pipeline is limited by using occasion space, vertical hoisting of the pipeline is not convenient, efficiency is low, and potential safety hazards exist.
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Description

Technical Field

[0001] This utility model belongs to the field of pipeline transportation technology, and in particular relates to a vertical transportation device for pipelines in super high-rise buildings. Background Technology

[0002] High-rise buildings contain numerous vertical pipelines for installation. Piping construction within high-rise buildings requires transporting pipes from the building interior to the designated work location for proper installation. Traditional methods may use tower cranes, but these occupy significant space in high-rise buildings, are costly, and are susceptible to weather conditions. Conventional winches are prone to instability during hoisting, causing pipes to sway and potentially leading to damage and safety hazards. Narrow pipe spaces restrict the use of large equipment, necessitating more compact designs. Finally, traditional manual handling is inefficient and labor-intensive. Utility Model Content

[0003] The technical problem to be solved by this utility model is to overcome the defects of the prior art and solve the problems that existing vertical transportation devices for pipelines in super high-rise buildings are limited by the space of the application environment, are not convenient for vertically hoisting pipelines, resulting in low efficiency and safety hazards.

[0004] The technical solution adopted by this utility model to solve its technical problem is: a vertical transportation device for pipelines in super high-rise buildings, including support columns, four support columns are provided, a top frame is fixedly connected to the upper end of the four support columns, an electric hoist is installed on the upper end of the top frame, a support plate is fixedly connected to the inner side of the top frame, and a first adjustment plate and a second adjustment plate are slidably connected to the upper and lower sides of the electric hoist and the support plate respectively.

[0005] A base frame is fixedly connected to the lower end of the four support columns. Guide brackets are fixedly connected to both ends of the base frame. Extension brackets are slidably connected to both ends of the guide brackets. Extension brackets are slidably connected to both sides of the lower end of the base frame.

[0006] In a preferred embodiment of this invention, a controller is provided on either side of the electric hoist, and the controller is connected to the electric hoist via a wire.

[0007] In a preferred embodiment of this invention, a power distribution box is installed on any side of the top frame.

[0008] In a preferred embodiment of this utility model, a first sliding groove is provided at each of the four corners around the base frame, and a first bolt is inserted inside each first sliding groove, with the lower end of the first bolt penetrating downward into the interior of the adjacent extension bracket.

[0009] In a preferred embodiment of this utility model, a third bolt is threaded between the first adjusting plate and the support plate, and a fourth bolt is threaded between the second adjusting plate and the support plate.

[0010] In a preferred embodiment of this utility model, a hoisting station is provided at the lower end of the base frame, and the extension frame and extension support are distributed at the upper end of the hoisting station. A second sliding groove is provided on the surface of the extension frame, and a second bolt is provided inside the second sliding groove.

[0011] In a preferred embodiment of this invention, the power output end of the electric hoist is equipped with a winding wheel, and a cable is wound inside the winding wheel.

[0012] Compared with the prior art, the beneficial effects achieved by this utility model are as follows:

[0013] This device uses a horizontal plane as a fulcrum and a simple hoisting structure to lift pipes without the need for a tower crane. The device is compact and not limited by the site or space, and can quickly lift pipes to the correct construction position in narrow spaces. This improves the stability of pipe transportation in narrow spaces, eliminates the risk of falling from tower cranes, reduces safety hazards, improves transportation efficiency, and reduces labor intensity. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the overall external structure of this utility model;

[0015] Figure 2 This is a diagram illustrating the installation effect of the winding wheel of this utility model.

[0016] Figure 3 This is a partial enlarged view of structure A of this utility model;

[0017] Figure 4 This is a partial enlarged view of structure B of this utility model.

[0018] In the diagram: 1. Support column; 2. Top frame; 3. Support plate; 4. Fourth bolt; 5. Third bolt; 6. First adjusting plate; 601. Second adjusting plate; 7. Electric hoist; 8. Winding reel; 9. Cable; 10. Controller; 11. Distribution box; 12. Extension frame; 13. Guide support; 14. Base frame; 15. First chute; 16. First bolt; 17. Lifting station; 18. Extension support; 19. Second chute; 20. Second bolt. Detailed Implementation

[0019] Please see Figure 1-4This utility model provides a technical solution: a vertical transportation device for pipelines in a super high-rise building, including support columns 1, four support columns 1 are provided, a top frame 2 is fixedly connected to the upper end of the four support columns 1, an electric hoist 7 is installed on the upper end of the top frame 2, a support plate 3 is fixedly connected to the inner side of the top frame 2, a first adjusting plate 6 and a second adjusting plate 601 are slidably connected to the upper and lower sides of the electric hoist 7 and the support plate 3 respectively; a base frame 14 is fixedly connected to the lower end of the four support columns 1, a guide support 13 is fixedly connected to both ends of the base frame 14, an extension frame 12 is slidably connected to both ends of the guide support 13, and an extension support 18 is slidably connected to both ends of the lower end of the base frame 14.

[0020] A hoisting station 17 is provided at the lower end of the base frame 14. An extension frame 12 and an extension support 18 are distributed at the upper end of the hoisting station 17. A second sliding groove 19 is provided on the surface of the extension frame 12. A second bolt 20 is provided inside the second sliding groove 19. Four support columns 1 form a rectangular frame structure at the four corners between the base frame 14 and the top frame 2. The top frame 2 lifts the support plate 3, which is the horizontal plane on which the electric hoist 7 is placed. The first adjusting plate 6 and the second adjusting plate 601 serve as the X-axis and Y-axis coordinate movement trajectories, respectively. A third bolt 5 is threaded between the first adjusting plate 6 and the support plate 3. A fourth bolt 4 is threaded between the second adjusting plate 601 and the support plate 3. By rotating the third bolt 5 and the fourth bolt 4, the third bolt 5 drives the first adjusting plate 6, which allows the first adjusting plate 6 and the second adjusting plate 601 to move along the X-axis and Y-axis coordinate trajectories, respectively.

[0021] The base frame 14 has four corners with first grooves 15. A first bolt 16 is inserted into each first groove 15, with its lower end penetrating downwards into the adjacent extension bracket 18. This allows the extension frame 12 and extension bracket 18 to be attached to the hoisting position 17, ensuring the base frame 14 is stably placed on the upper part of the hoisting position 17. The extension frame 12 and extension bracket 18 suspend the base frame 14 above the hoisting position 17. After loosening the first bolt 16 and the second bolt 20, the extension bracket 18 and extension frame 12 are manually pushed and pulled. The first bolt 16 slides within the first groove 15, and the second bolt... 20 slides inside the second chute 19, the extension frame 12 slides along the guide support 13, and the extension support 18 slides along the lower end of the base frame 14. The distance between the extension support 18 and the extension frame 12 extending around the base frame 14 can be adjusted. Tighten the first bolt 16 and the second bolt 20. The extension support 18 and the extension frame 12 form a reinforced area at the lower end of the base frame 14 between the four support columns 1, increasing the contact area between the base frame 14 and the hoisting station 17. This allows the electric hoist 7 to be placed stably on the rectangular frame structure, improving the stability of pipeline transportation in narrow spaces and eliminating the risk of swinging and falling caused by tower cranes, thus reducing safety hazards.

[0022] A power distribution box 11 is installed on either side of the top frame 2. The power distribution box 11 facilitates the connection of power to the electric hoist 7 and provides a continuous power supply to the electric hoist 7. A controller 10 is installed on either side of the electric hoist 7. The controller 10 is connected to the electric hoist 7 by a wire and is suspended. The controller 10 is suspended on either side of the electric hoist 7 by a wire. The controller 10 is manually operated to control the direction of rotation of the winding wheel 8 driven by the electric hoist 7. The winding wheel 8 is installed at the power output end of the electric hoist 7. A cable 9 is wound inside the winding wheel 8. When the cable 9 moves upward, the winding wheel 8 gradually winds the cable 9. When the cable 9 moves downward, the winding wheel 8 unwinds the cable 9. This allows the rotating winding wheel 8 to drive the cable 9 to move up and down, realizing the winding and unwinding effect of the winding wheel 8 on the cable 9.

[0023] The bottom end of the cable 9 is tied to the pipe. The winding wheel 8 is rotated in the direction of the upward pull of the cable 9, and the winding wheel 8 pulls the cable 9 upward. The cable 9 is used to lift the pipe upward, achieving the effect of suspending the pipe. Moving the cable 9 up and down allows the suspended pipe to move up and down back and forth at the construction location of the high-rise building. The vertical position of the pipe is adjusted by moving the cable 9 up and down. The position of the pipe is observed manually and the lifting height of the pipe is adjusted in time so that the pipe is lifted to the required installation position on the high-rise building. This device uses the horizontal plane as a fulcrum and can lift the pipe with a simple lifting structure without the need for a tower crane. After the pipe is lifted to the required position, it can be fixed with steel.

[0024] The device only requires an electric hoist 7. Since the pipe moves up and down along a vertical trajectory to achieve the hoisting effect, the device occupies little space and can be used in confined spaces to vertically hoist the pipe. It can quickly hoist the pipe to the correct construction position in narrow spaces, eliminating the dependence on tower cranes during vertical hoisting of pipes. It effectively makes up for the disadvantage of tower cranes being large in size and occupying a lot of space, reducing the hoisting costs brought by using tower cranes. The device can be used indoors and is not limited by weather.

[0025] After the pipeline is assembled, the cable 9 is untied, and the electric hoist 7 drives the winding wheel 8 to gradually wind the cable 9 into the winding wheel 8. This makes it easy to move the device to another installation location. The device is small in size and is not limited by the site or space, and has strong flexibility.

[0026] It also eliminates the need for manual pipe handling, reduces labor intensity, improves the continuity and stability of long-term pipe transportation, and enhances the efficiency of vertical pipe transportation in narrow shafts of super high-rise buildings.

Claims

1. A kind of super high-rise building pipeline vertical transport device, comprising support column (1), it is characterized in that: The support column (1) is provided with four, and the top frame (2) is fixedly connected between the upper end of four support column (1), the electric hoist (7) is installed on the top frame (2) upper end, the inside fixedly connected with the supporting plate (3) of top frame (2), the first adjusting plate (6) and the second adjusting plate (601) are slidably connected between the electric hoist (7) and supporting plate (3) upper and lower sides respectively; The bottom frame (14) is fixedly connected between the lower end of four support column (1), the guide bracket (13) is fixedly connected at the head and tail of bottom frame (14), the extension frame (12) is slidably connected at the head and tail of guide bracket (13), the extension bracket (18) is slidably connected at the head and tail of bottom frame (14) lower end.

2. The vertical transportation device for super high-rise building pipes according to claim 1, characterized in that: The electric hoist (7) is provided with controller (10) on any side, and the controller (10) is connected with electric hoist (7) by wire.

3. The vertical transportation device for super high-rise building pipes according to claim 1, characterized in that: The power distribution box (11) is installed on any side of the top frame (2).

4. The vertical transportation device for super high-rise building pipes according to claim 1, characterized in that: The first sliding slot (15) is formed at the four corners around the bottom frame (14), and the first bolt (16) is arranged in each first sliding slot (15), and the first bolt (16) is downwardly penetrated into the adjacent extension bracket (18) inside.

5. The vertical transportation device for super high-rise building pipes according to claim 1, characterized in that: The third bolt (5) is threadedly connected between the first adjusting plate (6) and the supporting plate (3), and the fourth bolt (4) is threadedly connected between the second adjusting plate (601) and the supporting plate (3).

6. A vertical transportation device for pipes of super high-rise buildings according to claim 1 characterized in that: The hoisting station (17) is arranged at the lower end of the bottom frame (14), the extension frame (12) and the extension bracket (18) are arranged on the upper end of the hoisting station (17), the second sliding slot (19) is formed on the surface of the extension frame (12), and the second bolt (20) is arranged in the second sliding slot (19).

7. The vertical transportation device for super high-rise building pipes according to claim 1, characterized in that: The winding wheel (8) is installed on the power output end of the electric hoist (7), and the cable (9) is wound in the winding wheel (8).