A device for hoisting an external wall thermal insulation integrated panel

By designing a hoisting device for integrated exterior wall insulation panels, and utilizing a motor-driven traction rope system, the integrated exterior wall insulation panels can be conveniently transported and installed. This solves the problems of low installation efficiency and safety risks in existing technologies, improves construction efficiency, and reduces safety hazards.

CN224677646UActive Publication Date: 2026-08-25CHINA RAILWAY NO 2 ENG GROUP CO LTD +1
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202522120078.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-30
Publication Date
2026-08-25
Estimated Expiration
2035-09-30

AI Technical Summary

Technical Problem

The existing integrated exterior wall insulation panels suffer from low overall installation efficiency and safety risks during installation, mainly due to the large size and heavy weight of the panels, which require multiple people to work together.

Method used

Design a device for hoisting integrated exterior wall insulation panels, including a base frame, columns, beams, pulley blocks, rollers, and a motor-driven traction rope system. The device is connected to the integrated exterior wall insulation panels via hooks, and the traction force driven by the motor is used to transport and install the panels.

Benefits of technology

It improves the handling and installation efficiency of integrated exterior wall insulation panels, reduces the probability of safety accidents during construction, and ensures the safety of construction workers.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224677646U_ABST
    Figure CN224677646U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of thermal -insulation integrated board construction, concretely relates to a device of hoisting outer wall thermal -insulation integrated board, including base frame, two stand, crossbeam and tow rope. The base frame is equipped with motor, two stand is connected in the edge position of base frame side by side, and the top of each stand is connected with base frame through inclined strut, and the both ends of crossbeam are connected with the top of two stand respectively, and the pulley block is connected on crossbeam, and a plurality of rollers are arranged along the height direction of stand, and each roller is connected with stand through spring post respectively, and a plurality of rollers are all located on the side of stand far from base frame, and one end of tow rope is connected with motor, and the other end of tow rope is connected with the hook around pulley block. The utility model makes the carrying and installation process of outer wall thermal -insulation integrated board more convenient and efficient, and the construction efficiency is improved significantly. Meanwhile, since the construction personnel need not personally carry outer wall thermal -insulation integrated board, the probability of safety accident in the construction process is reduced.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of construction technology of integrated thermal insulation panels, and in particular to a device for hoisting integrated external wall thermal insulation panels. Background Technology

[0002] Integrated exterior wall insulation panels are a new type of building exterior wall material that integrates insulation, decoration, and protection functions. It industrially prefabricates and integrates traditional exterior wall insulation systems with decorative surface layers, forming standardized and modular panel products. However, current integrated exterior wall insulation panels have certain limitations. Their walls are relatively thick, with some products reaching thicknesses of up to 60cm. During installation, due to the large size and weight of the panels, multiple workers are usually required to work together to move them from a horizontal to an vertical position and transport them to the designated location on the exterior wall for installation. This method results in low overall installation efficiency and a higher risk of safety accidents. Utility Model Content

[0003] The purpose of this utility model is to overcome the problems of low overall installation efficiency and easy safety accidents in the handling and installation of integrated external wall insulation panels in the prior art, and to provide a device for hoisting integrated external wall insulation panels.

[0004] This utility model provides a device for hoisting an integrated external wall insulation panel, comprising: A base frame, on which a motor is mounted; Two uprights are connected side-by-side to the edge of the base frame; the top of each upright is connected to the base frame via a diagonal brace. A crossbeam, the two ends of which are respectively connected to the tops of the two columns; a pulley system is connected to the crossbeam; A plurality of rollers are arranged at intervals along the height direction of the column, each roller is connected to the column by a spring column, and the plurality of rollers are located on the side of the column away from the base frame. A traction rope, one end of which is connected to the motor, and the other end of which passes over the pulley block and is connected to a hook.

[0005] This utility model provides a device for hoisting an integrated exterior wall insulation panel. The base frame serves as the basic support structure of the entire device, supporting and stabilizing other components. The motor provides traction force to the traction rope. The uprights support the crossbeam, which in turn provides a fixed position for the pulley block, ensuring stable installation. The pulley block changes the orientation of the traction rope, allowing it to move along a predetermined path, thereby effectively tractioning the integrated exterior wall insulation panel. The hooks on the traction rope connect to the integrated exterior wall insulation panel for hoisting operations. Several rollers are located on the uprights away from the base frame, and each roller is connected to two uprights via spring columns. During hoisting the integrated exterior wall insulation panel, the rollers abut against the side of the panel, guiding and assisting the hoisting process. When the integrated exterior wall insulation panel collides with the roller, the spring column can play a buffering role, effectively absorbing the impact force generated by the collision and preventing the integrated exterior wall insulation panel from being damaged due to the collision.

[0006] The device of this invention connects to the integrated exterior wall insulation panel via the hook, and utilizes the traction force generated by the traction rope driven by the motor to realize the transportation and installation of the integrated exterior wall insulation panel. This design makes the transportation and installation process of the integrated exterior wall insulation panel more convenient and efficient, significantly improving construction efficiency. At the same time, since construction personnel are no longer required to personally handle the integrated exterior wall insulation panel, the probability of safety accidents during construction is reduced, ensuring the personal safety of construction workers.

[0007] Preferably, a bracket is provided in the middle of the crossbeam, and the pulley block is connected to the crossbeam through the bracket. The bracket extends away from the base frame. In this design, the main function of the bracket is to fix the pulley block. Because the bracket extends away from the base frame, a more reasonable movement path can be formed when the traction rope passes around the pulley block, thereby more effectively hoisting the integrated exterior wall insulation panel.

[0008] Preferably, the roller is sleeved on a rotating shaft, with both ends of the rotating shaft protruding beyond the ends of the roller. The roller can rotate around the axis of the rotating shaft. Sleeves are provided at both ends of the rotating shaft, and a guide rod is fitted inside each sleeve. The other end of the guide rod is connected to the column. A spring post is sleeved on the guide rod, and the spring post abuts against the sleeve. The sleeve can move along the axial direction of the guide rod. In this design, the main function of the rotating shaft is to provide a base for the rotational connection of the roller, allowing it to rotate smoothly. The rotating shaft is connected to the column via the sleeves, the guide rods, and the spring post. The guide rods function as guides, providing precise guidance for the movement of the sleeves, ensuring that the sleeves can only move along the axial direction of the guide rods. They also guide the spring post, preventing it from shifting under pressure. When the roller moves towards the column, it drives the sleeves on the rotating shaft to move together, thereby compressing the spring post. As the sleeve presses the spring post more deeply, the spring post generates a gradually increasing counterforce. This counterforce acts on the sleeve and is then transmitted to the roller via the rotating shaft, gradually reducing the roller's moving speed and ultimately providing a buffering effect.

[0009] Preferably, the outer wall of the roller is provided with a rubber layer. In this design, the rubber layer can increase the friction between the roller and the integrated exterior wall insulation panel. When the roller comes into contact with the integrated exterior wall insulation panel, this increased friction allows for more effective rolling friction between the roller and the panel, ensuring that the roller can roll smoothly and steadily, reducing slippage. Simultaneously, the rubber layer also has good cushioning properties, further buffering the impact force generated when the roller contacts the integrated exterior wall insulation panel, reducing damage caused by collisions with the panel.

[0010] Preferably, a counterweight platform is provided on the side of the base frame away from the column, and a plurality of counterweight blocks are provided on the counterweight platform. In this design, the counterweight platform is used to place the counterweight blocks, and the function of the counterweight blocks is to provide a balancing torque for the entire device during hoisting operations, effectively reducing the risk of the device overturning.

[0011] Preferably, the base frame is provided with several casters at its bottom. In this design, the casters allow the entire device to move easily in the horizontal direction, significantly improving the flexibility of the device's use.

[0012] Preferably, a horizontal connecting rod is provided between the column and the diagonal brace. In this design, the horizontal connecting rod can enhance the connection and overall integrity between the column and the diagonal brace.

[0013] Preferably, a plurality of first crossbars are provided between the two columns, and the plurality of first crossbars are evenly spaced along the height direction of the columns. In this design, the first crossbars are used to strengthen the overall integrity between the two columns.

[0014] Preferably, a plurality of second crossbars are provided between the two diagonal braces, and the plurality of second crossbars are evenly spaced along the length direction of the diagonal braces. In this design, the second crossbars are used to strengthen the overall integrity between the two diagonal braces.

[0015] The base frame, the column, and the diagonal brace can all be made of angle steel, round steel pipe, and galvanized square pipe.

[0016] Preferably, the base frame, the uprights, and the diagonal braces are all made of galvanized square tubing. From a stress performance perspective, galvanized square tubing, compared to angle steel, can more effectively withstand and disperse external forces, exhibiting superior stress characteristics. Furthermore, in the connection and processing stage, compared to round steel pipes, the regular geometric shape of galvanized square tubing makes precise machining of the joints easier, reducing the overall manufacturing difficulty of the device.

[0017] Compared with the prior art, the beneficial effects of this utility model are as follows: This utility model provides a device for hoisting integrated exterior wall insulation panels. The device connects to the integrated exterior wall insulation panel via a hook, and utilizes the traction force generated by the traction rope driven by the motor to achieve the transportation and installation of the integrated exterior wall insulation panel. This design makes the transportation and installation process of the integrated exterior wall insulation panel more convenient and efficient, significantly improving construction efficiency. At the same time, since construction personnel are no longer required to personally handle the integrated exterior wall insulation panel, the probability of safety accidents during construction is reduced, ensuring the personal safety of construction workers. Attached Figure Description

[0018] Figure 1 This is a side view of a device for hoisting integrated exterior wall insulation panels.

[0019] Figure 2 This is a front view of a device for hoisting integrated exterior wall insulation panels.

[0020] Figure 3 This is a planar schematic diagram of the roller.

[0021] Marked in the image: 1-Base frame, 2-Column, 3-Diagonal brace, 4-Crossbeam, 5-Staff 6-Pulley system, 7-Torch rope, 8-Hook, 9-roller, 901-Shaft, 902-Sleeve, 903-Guide rod 10-Spring column, 11-Horizontal connecting rod, 12-Motor, 13-Counterweight platform 14-Counterweight, 15-rollers, 16-Integrated exterior wall insulation panel. Detailed Implementation

[0022] The present invention will be further described in detail below with reference to specific embodiments. However, it should not be construed as limiting the scope of the present invention to the following embodiments; all technologies implemented based on the content of the present invention fall within the scope of the present invention.

[0023] Unless otherwise specified, the terms "upper," "lower," "left," "right," "center," "inner," and "outer" used in the description of specific embodiments of this utility model to indicate orientation or positional relationships are based on the orientation or positional relationships shown in the accompanying drawings, or the orientation or positional relationship in which the utility model product / equipment / device is usually placed during use. These terms are merely for the purpose of facilitating the description of the utility model solution or simplifying the description in specific embodiments, and for enabling those skilled in the art to quickly understand the solution, and do not indicate or imply that a specific device / component / element must have a specific orientation, or be constructed and operated in a specific positional relationship. Therefore, they should not be construed as limitations on this utility model.

[0024] Furthermore, the use of terms such as "horizontal," "vertical," "suspended," "parallel," and "coaxial" does not imply that the corresponding device / component / element must be absolutely horizontal, vertical, suspended, parallel, or coaxial. Slight tilt or deviation is permissible, as long as it does not affect the normal function of the relevant component. For example, "horizontal" simply means that its direction is more horizontal relative to "vertical," not that the structure must be perfectly horizontal; a slight tilt is acceptable. "Coaxial" means that two components are arranged as coaxially as possible, allowing them to move coaxially or approximately coaxially when their relative positions change. Alternatively, it can be simplified to mean that the corresponding device / component / element, when arranged in "horizontal," "vertical," "suspended," "parallel," or "coaxial" directions, can have an error / deviation of ±10% relative to the corresponding direction, more preferably within ±8%, more preferably within ±6%, more preferably within ±5%, and more preferably within ±4%. For example, the deviation in the "coaxial" direction is controlled within 0.2-1mm, preferably within 0.2-0.5mm. As long as the corresponding device / component / element is within the error / deviation range, it can still achieve its function in the present invention.

[0025] Furthermore, the use of terms such as "first," "second," and "third" in terminology is merely for distinguishing descriptions of identical or similar components and should not be interpreted as emphasizing or implying the relative importance of a particular component.

[0026] Furthermore, in the description of the embodiments of this utility model, "several", "multiple", and "several" represent at least two. The number can be any number, such as two, three, four, five, six, seven, eight, or nine, and can even exceed nine.

[0027] Furthermore, in the description of the technical solution of this utility model, unless otherwise explicitly specified / limited / restricted, the terms "set up," "install," "connect," "link," "provided with," "laid out," and "arranged" should be interpreted broadly. For example, they can refer to fixed connections, detachable connections, or integral connections; they can refer to common connection methods in the art, such as welding, riveting, bolting, and threaded connections. Such connections can be mechanical, electrical, or communication connections; they can be direct connections or indirect connections through an intermediate medium; and they can refer to the internal communication between two components.

[0028] Example 1 like Figures 1 to 3 As shown, a device for hoisting integrated exterior wall insulation panels includes a base frame 1, two columns 2, a crossbeam 4, diagonal bracing rods 3, several rollers 9, a traction rope 7, and a motor 12.

[0029] A motor 12 is mounted on the base frame 1. Specifically, the motor 12 is connected to the base frame 1 by bolts.

[0030] Two uprights 2 are connected side-by-side at the edge of the base frame 1; the top of each upright 2 is connected to the base frame 1 via a diagonal brace 3. Specifically, the uprights 2 and the base frame 1 are connected by welding, and the diagonal brace 3 is also connected to the top of the upright 2 and the base frame 1 by welding. The angle between the diagonal brace 3 and the base frame 1 can be 45°-60°.

[0031] The two ends of the crossbeam 4 are connected to the tops of the two columns 2 respectively; a pulley block 6 is connected to the crossbeam 4. Specifically, the crossbeam 4 can be a rectangular steel pipe, the cross-sectional height of which can be 80mm-100mm, the cross-sectional width of which can be 50mm, and the wall thickness of which can be 1.5mm-3mm.

[0032] Several rollers 9 are arranged at intervals along the height of the column 2. Each roller 9 is connected to the column 2 via a spring column 10. All rollers 9 are located on the side of the column 2 away from the base frame 1. Specifically, both ends of each roller 9 are connected to two columns 2 via spring columns 10. The outer diameter of the roller 9 can be 100mm-150mm, and the distance between two adjacent rollers 9 can be 30cm-50cm. The number of rollers 9 can be three or four. Each roller 9 is arranged horizontally.

[0033] One end of the traction rope 7 is connected to the motor 12, and the other end of the traction rope 7 passes around the pulley block 6 and is connected to the hook 8. The traction rope 7 can be a nylon rope or a steel wire rope.

[0034] In an optional embodiment, a support 5 may be provided in the middle of the crossbeam 4, and a pulley block 6 is connected to the crossbeam 4 through the support 5. The support 5 extends outward from the base frame 1. Specifically, the support 5 includes two parallel steel plates, both of which are parallelograms in planar shape. The pulley block 6 is installed between the two steel plates, and the steel plates are perpendicular to the axis of the crossbeam 4. The pulley block 6 includes two pulleys, which are arranged horizontally in a direction perpendicular to the axis of the crossbeam 4. The axes of both pulleys are perpendicular to the plane of the steel plates. The distance between the cantilevered end of the support 5 and the crossbeam 4 is 30cm-40cm. The steel plates are welded to the crossbeam 4, and the thickness of the steel plates can be 15mm-20mm.

[0035] In an optional embodiment, the roller 9 can be sleeved on the rotating shaft 901, with both ends of the rotating shaft 901 protruding from both ends of the roller 9. The roller 9 can rotate around the axis of the rotating shaft 901. Sleeves 902 are provided at both ends of the rotating shaft 901, and a guide rod 903 is sleeved inside each sleeve 902. The other end of the guide rod 903 is connected to the column 2. A spring column 10 is sleeved on the guide rod 903, and the spring column 10 abuts against the sleeve 902. The sleeve 902 can move axially along the guide rod 903. Specifically, the sleeve 902 and the rotating shaft 901 are connected by welding. The length of the sleeve 902 can be 10cm, the length of the guide rod 903 can be 15cm, and the length of the spring column 10 can be 10cm. Limiting members can also be provided at both ends of the rotating shaft 901. The distance between the two limiting members matches the length of the roller 9, and the two limiting members are used to restrict the axial movement of the roller 9 relative to the rotating shaft 901. The guide rod 903 is fixed to the column 2 by bolts. The column 2 can have more bolt holes than the required number of guide rods 903, and these bolt holes are evenly distributed. This allows for flexible adjustment of the connection position of the roller 9 on the column 2 according to actual usage requirements, improving the applicability of the device.

[0036] In an optional embodiment, the outer wall of the roller 9 may be provided with a rubber layer. Specifically, the roller 9 may be made of engineering plastic or steel, and the rubber layer is bonded to the outer wall of the roller 9 with structural adhesive. The thickness of the rubber layer may be 3mm-8mm. The surface of the rubber layer may be textured to further increase friction.

[0037] In an optional embodiment, a counterweight platform 13 may be provided on the side of the base frame 1 away from the column 2, and a plurality of counterweight blocks 14 may be provided on the counterweight platform 13. Specifically, the counterweight platform 13 is connected to the base frame 1 by bolts or welding. The counterweight blocks 14 may be made of cast iron or concrete.

[0038] In an optional embodiment, the bottom of the base frame 1 may be provided with a number of rollers 15. Specifically, there may be four rollers 15, which are respectively arranged at the four corners of the bottom of the base frame 1. The rollers 15 may be fixed wheels or swivel wheels.

[0039] In an optional embodiment, a horizontal connecting rod 11 is provided between the column 2 and the diagonal brace 3. Specifically, the horizontal connecting rod 11 can be angle steel or galvanized steel pipe.

[0040] In an optional embodiment, a plurality of first horizontal bars may be provided between the two columns 2, and the plurality of first horizontal bars are evenly spaced along the height direction of the columns 2. Specifically, the distance between two adjacent first horizontal bars may be 50cm-80cm.

[0041] In an optional embodiment, a plurality of second crossbars are provided between the two diagonal braces 3, and the plurality of second crossbars are evenly spaced along the length direction of the diagonal braces 3. Specifically, the distance between two adjacent second crossbars can be 60cm-100cm.

[0042] Both the first crossbar and the second crossbar can be made of angle steel or galvanized steel pipe.

[0043] In an optional embodiment, the base frame 1, the upright column 2, and the diagonal brace 3 can all be made of galvanized square tubing. The cross-sectional dimensions of the galvanized square tubing can be 50mm×50mm, 60mm×60mm, or 70mm×70mm. The wall thickness of the galvanized square tubing can be 1.5mm-3mm.

[0044] The above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Any modifications, equivalent substitutions and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A device for hoisting integrated exterior wall insulation panels, characterized in that, include: A base frame (1) is provided with a motor (12); Two uprights (2) are connected side by side to the edge of the base frame (1); the top of each upright (2) is connected to the base frame (1) by a diagonal brace (3); A crossbeam (4) is provided, with its two ends connected to the tops of the two columns (2) respectively; a pulley block (6) is connected to the crossbeam (4). A plurality of rollers (9) are arranged at intervals along the height direction of the column (2), and each roller (9) is connected to the column (2) by a spring column (10). The plurality of rollers (9) are located on the side of the column (2) away from the base frame (1). The traction rope (7) has one end connected to the motor (12) and the other end of the traction rope (7) is connected to a hook (8) after passing over the pulley block (6).

2. The device for hoisting integrated exterior wall insulation panels according to claim 1, characterized in that, A bracket (5) is provided in the middle of the crossbeam (4), and the pulley block (6) is connected to the crossbeam (4) through the bracket (5). The bracket (5) extends out to the side away from the base frame (1).

3. The device for hoisting integrated exterior wall insulation panels according to claim 1, characterized in that, The roller (9) is sleeved on the rotating shaft (901). The two ends of the rotating shaft (901) protrude from the two ends of the roller (9). The roller (9) can rotate around the axis of the rotating shaft (901). The two ends of the rotating shaft (901) are provided with sleeves (902). Each sleeve (902) is fitted with a guide rod (903). The other end of the guide rod (903) is connected to the column (2). The spring column (10) is sleeved on the guide rod (903). The spring column (10) abuts against the sleeve (902). The sleeve (902) can move along the axial direction of the guide rod (903).

4. The device for hoisting an integrated exterior wall insulation panel according to claim 3, characterized in that, The outer wall of the roller (9) is provided with a rubber layer.

5. The device for hoisting an integrated exterior wall insulation panel according to any one of claims 1-4, characterized in that, The base frame (1) is provided with a counterweight platform (13) on the side away from the column (2), and the counterweight platform (13) is provided with a number of counterweight blocks (14).

6. The device for hoisting an integrated exterior wall insulation panel according to claim 5, characterized in that, The base frame (1) is provided with several rollers (15) at its bottom.

7. The device for hoisting an integrated exterior wall insulation panel according to claim 5, characterized in that, A horizontal connecting rod (11) is provided between the column (2) and the diagonal brace (3).

8. The device for hoisting an integrated exterior wall insulation panel according to claim 5, characterized in that, A plurality of first crossbars are provided between the two columns (2), and the plurality of first crossbars are evenly spaced along the height direction of the columns (2).

9. The device for hoisting an integrated exterior wall insulation panel according to claim 5, characterized in that, A plurality of second crossbars are provided between the two diagonal braces (3), and the plurality of second crossbars are evenly spaced along the length direction of the diagonal braces (3).

10. The device for hoisting an integrated exterior wall insulation panel according to claim 5, characterized in that, The base frame (1), the column (2) and the diagonal brace (3) are all made of galvanized square tubing.