Rapid mounting device for color steel tiles of steel structure
By designing a quick installation device for color steel tile in steel structures, using the combination of frame, distribution mechanism and drive mechanism, the problems of low installation efficiency and long material transfer time of existing color steel tile are solved, and efficient and continuous color steel tile installation is achieved.
Patent Information
- Application Number
- CN202422187771.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-06
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2034-09-06
AI Technical Summary
The installation method of color steel tiles in the exterior wall of existing steel structure factories is inefficient, and problems such as bending, scratching, and deformation are prone to occur during lifting and handling, and the material transfer time is delayed, which affects construction efficiency.
Design a steel structure color steel tile rapid installation device, including a frame, a distribution mechanism and a driving mechanism. There is a chamber in the frame. The distribution mechanism realizes automatic distribution and lifting of color steel tiles through parallelogram connecting rods and adsorption components. The driving mechanism drives the parallelogram connecting rods to deform through the hoisting cylinder to realize the expansion and contraction of the adsorption components.
The installation speed of colored steel tiles has been improved, the labor intensity of construction workers has been reduced, and hundreds of colored steel tiles can be lifted at one time for continuous construction, which avoids delays in material transfer time and significantly improves construction efficiency.
Smart Images

Figure CN222991038U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of installation of steel structure workshops, and particularly relates to a rapid installation device for color steel tiles of steel structures. Background Technique
[0002] When installing the color steel tiles on the outer wall of a steel structure workshop, the usual practice is as follows: after the steel coil with spraying arrives at the site, the finished color steel tiles are produced on-site by a press in the local processing factory, and then transported to the construction site. Or directly purchase the finished color steel tiles from a nearby processing factory. When the materials arrive at the site, they are transported to the roof for construction by means of bundling with hemp ropes and using manual pulleys or truck cranes. This method is usually single-piece hoisting, and the hoisting and transportation processes take a long time, resulting in low construction efficiency. At the same time, since a single color steel tile is usually more than 10 meters long and has poor overall stiffness, and the color steel tile is relatively thin, often less than 1 mm thick, during the hoisting and handling processes, problems such as bending, scratching, and deformation often occur.
[0003] In recent years, a new type of color steel tile installation method has emerged. The press and the steel coil are directly transported to the vicinity of the steel structure workshop, and after processing, they are directly towed to the roof. Although continuous operation can ensure efficiency, it involves the problem that the press and materials need to be frequently relocated, which takes a lot of time. At the same time, construction near the steel structure workshop will affect other processes, resulting in low overall effectiveness of this type of method. Content of the Utility Model
[0004] The purpose of the utility model is to provide a rapid installation device for color steel tiles of steel structures to solve the deficiencies of the prior art. By adopting this solution and distributing through a parallelogram distribution mechanism, the installation speed of the color steel tiles can be increased, and the labor intensity of construction workers can be reduced. After loading and hoisting up to hundreds of color steel tiles at one time, continuous construction can be carried out, avoiding the delay of material transfer time and doubling the efficiency.
[0005] The utility model is realized through the following technical solutions:
[0006] A rapid installation device for color steel tiles of steel structures, comprising:
[0007] A frame, within which there is a chamber for placing color steel tiles, and there is an outlet on one side of the chamber;
[0008] A distribution mechanism, which includes a parallelogram linkage. The parallelogram linkage is arranged within the chamber; the four sides of the parallelogram linkage are all hinged, and an adsorption component for adsorbing the color steel tiles is fixed on the parallelogram linkage;
[0009] A driving mechanism, which is used to drive the parallelogram linkage to deform, and the deformation of the parallelogram linkage is used to extend or retract the adsorption component out of or into the outlet.
[0010] In the prior art, the profiled sheet machine and the steel coil are directly transported to the vicinity of the steel structure workshop, and after processing, they are directly towed to the roof. Although continuous operation can ensure efficiency, there are problems such as the need to frequently relocate the profiled sheet machine and materials, which takes a lot of time. At the same time, construction near the steel structure workshop will affect other processes, resulting in problems such as the overall low effect of such methods. The present utility model provides a rapid installation device for steel structure color steel tiles. By adopting this solution and distributing through a parallelogram distribution mechanism, the installation speed of the color steel tiles can be increased, and the labor intensity of construction workers can be reduced. After loading and hoisting up to hundreds of color steel tiles at one time, continuous construction can be carried out, avoiding the delay of material transfer time and doubling the efficiency. In a specific solution, it includes a frame and a distribution mechanism. The frame has a chamber inside. When handling the color steel tiles, hundreds of color steel tiles can be stacked in the chamber, that is, a stack of color steel tiles. The number of color steel tiles designed for the device of the present invention is 100, which can be increased or decreased according to specific situations. The size of the color steel tile is about 10 m in length and 0.8 m in width. The frame is assembled by welding 150 mm high channel steels into a frame. The designed length of the frame is 12 m, the height is 1 m, and the width is 1 m. Subsequently, the frame is connected by a hoisting device and can be hoisted as a whole to the roof; there is a distribution mechanism inside the chamber. The distribution mechanism includes a parallelogram connecting rod hinged on all four sides. An adsorption component is fixed on the parallelogram connecting rod. The deformation direction of the parallelogram is preferably set in the width direction of the chamber. In this way, driven by the driving mechanism, the adsorption component can be extended or retracted out of the outlet, that is, the deformation of the parallelogram can drive the adsorption component to move in an arc. When it is at the low point inside the frame, it adsorbs a single color steel tile, and then moves to the arc low point outside the outlet through the arc movement, thereby releasing the color steel tile.
[0011] To adapt to the length of the color steel tile and ensure the stability during the handling process, the distribution mechanism further includes a cross beam. Both ends of the chamber are provided with parallelogram connecting rods, the cross beam is fixed between the two parallelogram connecting rods, and the adsorption component is fixed on the lower side of the middle part of the cross beam.
[0012] To improve the adsorption strength and adsorption stability in the length direction, a number of adsorption components are evenly distributed on the lower side of the cross beam along its own length direction.
[0013] To improve the adsorption strength and adsorption stability in the width direction, the adsorption component includes a longitudinal small beam fixed on the lower side of the cross beam. A number of transverse small beams are arranged on the lower side of the longitudinal small beam along its own length direction. A number of suction cups are arranged on the lower side of each transverse small beam along its own length direction; among them, the transverse small beam is a 50X50 mm square tube. The cross beam and the longitudinal small beam, and the longitudinal small beam and the transverse small beam are all connected by bolts, which is convenient to realize the adjustable position.
[0014] To adapt to the change in the thickness of the stack of color steel tiles and avoid hard contact, the suction cup is connected to the bottom of the transverse beam through an elastic telescopic mechanism. The elastic telescopic mechanism can be an elastic telescopic rod, etc., which can ensure that when the thickness of the stack of color steel tiles decreases, the rubber cup at the front end of the suction cup can still closely adhere to the color steel tile to ensure the adsorption force.
[0015] To improve the adsorption force, a vacuum generating device is also included. The vacuum generating device is arranged on one side of the frame and is used to provide negative pressure for the suction cup. The suction cup is connected to the vacuum generating device through a pipeline. When it is necessary to distribute the color steel tiles, negative pressure is generated inside the suction cup, so that the color steel tiles are sucked under the action of atmospheric pressure, thereby realizing the translation of the color steel tiles.
[0016] As a specific structure of a driving mechanism, the driving mechanism includes a jacking cylinder. The jacking cylinder is arranged between two diagonals of the parallelogram link, and both ends of the jacking cylinder are hinged to the two diagonals, and the hinging directions are the same as those of the four sides of the parallelogram link. In this solution, the jacking cylinder is hinged between two diagonals of the parallelogram link. In this way, under the telescopic action of the jacking cylinder, the parallelogram can be driven to deform. An electronic control unit is fixed outside the frame, and the vacuum generating device is arranged inside the electronic control unit and is connected to the suction cup through a pipeline to provide power for the suction cup to suck a single color steel tile. At the same time, there is a small air compressor and a valve group inside it, which can provide a power source for the jacking cylinder. The jacking cylinder is connected to the valve group interface of the electronic control unit through an air pipe, and the air flow direction is controlled through the small air compressor and the valve group inside the electronic control unit to realize the telescopic movement of the cylinder, thereby realizing the translation of the parallelogram mechanism; there are buttons outside the box body to control the lifting of the jacking cylinder and the suction and release of the suction cup. Its power cable is directly connected to the power cabinet on the ground or a small diesel generator can be arranged on the opposite side of the frame to avoid cable dragging and scratching.
[0017] As a specific structure of the parallelogram link, the parallelogram link includes two first links as the side edges and a second link as the top edge. Both the first link and the second link are hollow structures and have pin holes at both ends;
[0018] The lower ends of the two first links are both hinged to the bottom of the chamber, and the two ends of the second link are respectively hinged to the upper ends of the two first links. In this solution, hinge supports are provided at both ends of the bottom of the chamber, and the hinge support can be hinged to the lower end of one of the first links through a pin shaft; hinge shaft holes are also provided on the side wall of the frame, and the hinge shaft holes can be hinged to the lower end of the other first link through a pin shaft; the two ends of the second link at the top edge are respectively hinged to the first link through a pin shaft, and the cross beam is connected and fixed to the second link through bolts. Both the first link and the second link are hollow welded steel structures with pin holes at both ends.
[0019] To prevent the sliding of color steel tiles when stacked, the bottom of the chamber is provided with convex supports. The convex supports include several support bars, which are erected at both ends of the bottom of the chamber. The several support bars are evenly distributed at intervals along the width direction of the chamber. The color steel tiles are placed on the convex supports, and each support bar corresponds to a wave crest of the color steel tile. In this solution, the size of the convex support corresponds to the size of the wave crest of the color steel tile and is fixed on the frame by rivets. There are several support bars in total, and the erection width is determined according to the wave crest spacing of the color steel tile.
[0020] To achieve stable hoisting, it further includes a balance beam. There are several first lifting lugs on both the upper and lower sides of the balance beam along its length direction. The several first lifting lugs on the upper side of the balance beam are connected to the hoisting equipment through upper steel wires; the first lifting lugs at both ends of the lower side of the balance beam are respectively connected to both ends of the frame through lower steel wires; there are several second lifting lugs for connecting the lower steel wires at the tops of both ends of the frame. In this solution, the upper steel wire has a diameter of 20 mm and is hoisted at 4 lifting points. Its upper part is connected to the crane hook, and its lower part is connected to the first lifting lug of the balance beam through a snap ring. The balance beam is made of HEB250 section steel. There are 4 first lifting lugs on its upper part, and several lifting points are arranged below it to connect the lower steel wires to adapt to different frames. The lower steel wire is a steel wire with a diameter of 18 mm and connects the balance beam and the frame.
[0021] Compared with the prior art, the present utility model has the following advantages and beneficial effects:
[0022] 1. A rapid installation device for steel structure color steel tiles provided by the present utility model adopts a frame structure layout. It can hoist up to 100 color steel tiles at a time and then hoist them as a whole to the roof. Under the control of an electric control unit composed of equipment such as a vacuum pump and a small air compressor, the parallelogram distribution mechanism is manually controlled by operating the buttons on the electric control box, which can improve the installation speed of color steel tiles and save costs. At the same time, the distribution invented by the present utility model uses machinery to replace manual lifting and carrying, which can greatly reduce the labor intensity of construction workers. After using the present invention, continuous construction can be carried out after one loading, avoiding the delay of material transfer time and doubling the efficiency.
[0023] 2. A rapid installation device for steel structure color steel tiles provided by the present utility model. The color steel tile distribution and layering mechanism adopts a multi-link mechanism + pneumatic suction cup mode. Under the action of an optoelectronic sensor, it can accurately distribute, thus avoiding the collision and friction between color steel tiles, resulting in the damage of the surface paint protection layer and prolonging the service life of color steel tiles. Description of the Drawings
[0024] The drawings described herein are used to provide a further understanding of the embodiments of the present utility model, form a part of this application, and do not constitute a limitation to the embodiments of the present utility model. In the drawings:
[0025] Figure 1 is a schematic structural diagram of a rapid installation device for steel structure color steel tiles provided by the present utility model;
[0026] Figure 2 is a schematic structural diagram of a distribution mechanism provided by the present utility model;
[0027] Figure 3 is a schematic structural diagram of a transverse beam provided by the present utility model;
[0028] Figure 4 is a schematic structural diagram of a frame provided by the present utility model;
[0029] Figure 5 is a side view of a color steel tile provided by the present utility model.
[0030] Marks in the attached drawings and corresponding component names:
[0031] 1 - upper steel wire rope; 2 - balance beam; 3 - lower steel wire rope; 4 - frame; 5 - electric control unit; 6 - stack of color steel tiles; 7 - distribution mechanism; 8 - first connecting rod; 9 - second connecting rod; 10 - cross beam; 11 - longitudinal beam; 12 - suction cup; 13 - transverse beam; 14 - lifting cylinder; 15 - pin shaft; 16 - bolt hole; 17 - channel steel; 18 - second lifting lug; 19 - hinge support; 20 - convex support; 21 - hinge shaft hole. Specific embodiments
[0032] To make the purpose, technical solutions and advantages of the present utility model clearer and more understandable, the present utility model will be further described in detail below in combination with embodiments and the attached drawings. The illustrative embodiments and descriptions of the present utility model are only used to explain the present utility model and do not limit the present utility model.
[0033] Embodiment
[0034] This embodiment provides a rapid installation device for steel structure color steel tiles, as Figures 1-5 shown, including:
[0035] A frame 4, with a chamber for placing color steel tiles inside the frame 4, and an outlet on one side of the chamber;
[0036] A distribution mechanism 7, the distribution mechanism 7 includes a parallelogram connecting rod, and the parallelogram connecting rod is arranged inside the chamber; the four sides of the parallelogram connecting rod are all hinged, and an adsorption component for adsorbing the color steel tiles is fixed on the parallelogram connecting rod;
[0037] A driving mechanism, the driving mechanism is used to drive the parallelogram connecting rod to deform, and the deformation of the parallelogram connecting rod is used to extend or retract the adsorption component out of or into the outlet.
[0038] In the prior art, the profiler and the steel coil are directly transported to the vicinity of the steel structure workshop, and after processing, they are directly towed to the roof. Although continuous operation can ensure efficiency, it involves the problem that the profiler and materials need to be relocated frequently, which takes a lot of time. At the same time, construction near the steel structure workshop will affect other processes, resulting in problems such as low overall effect of such methods. The present utility model provides a rapid installation device for color steel tiles of steel structures. By adopting this solution and distributing through the parallelogram distribution mechanism 7, the installation speed of color steel tiles can be increased, and the labor intensity of construction workers can be reduced. After loading and hoisting up to hundreds of color steel tiles at one time, continuous construction can be carried out, avoiding the delay of material transfer time and doubling the efficiency. In a specific solution, it includes a frame 4 and a distribution mechanism 7. The frame 4 has a chamber inside. When handling color steel tiles, hundreds of color steel tiles can be stacked in the chamber, that is, the stack of color steel tiles 6. The number of color steel tiles designed for the device of the present invention is 100, which can be increased or decreased according to specific circumstances. The size of the color steel tile is about 10 m in length and 0.8 m in width. The frame 4 is assembled by welding 17 channel steels with a height of 150 mm into the frame 4. The frame 4 is designed to be 12 m in length, 1 m in height, and 1 m in width. Subsequently, the frame 4 is connected by a hoisting device, and the whole can be hoisted to the roof. Inside the chamber, there is a distribution mechanism 7. The distribution mechanism 7 includes a parallelogram connecting rod hinged on all four sides. An adsorption component is fixed on the parallelogram connecting rod. The deformation direction of the parallelogram is preferably set in the width direction of the chamber. In this way, driven by the driving mechanism, the adsorption component can be extended or retracted out of the outlet, that is, the deformation of the parallelogram can drive the adsorption component to move in an arc. When the frame 4 is at the low point, a single color steel tile is adsorbed, and then it moves to the arc low point outside the outlet through the arc movement, thereby releasing the color steel tile.
[0039] To adapt to the length of the color steel tile and ensure the stability of the handling process, the distribution mechanism 7 further includes a cross beam 10. Both ends of the chamber are provided with parallelogram connecting rods, the cross beam 10 is fixed between the two parallelogram connecting rods, and the adsorption component is fixed on the lower side of the middle part of the cross beam 10.
[0040] To improve the adsorption strength and adsorption stability in the length direction, a plurality of adsorption components are evenly distributed on the lower side of the cross beam 10 along its own length direction.
[0041] To improve the adsorption strength and adsorption stability in the width direction, the adsorption component includes a longitudinal small beam 11 fixed on the lower side of the cross beam 10. A plurality of transverse small beams 13 are arranged on the lower side of the longitudinal small beam 11 along its own length direction. A plurality of suction cups 12 are arranged on the lower side of each transverse small beam 13 along its own length direction. Among them, the transverse small beam 13 is a square tube with a size of 50X50 mm. The cross beam 10 and the longitudinal small beam 11, and the longitudinal small beam 11 and the transverse small beam 13 are all connected by bolts, which is convenient to realize the adjustable position.
[0042] To adapt to the change in the thickness of the stack of color steel tiles 6 and avoid hard contact, the suction cup 12 is connected to the bottom of the transverse beam 13 through an elastic telescopic mechanism. Among them, the elastic telescopic mechanism can be an elastic telescopic rod, etc., so that when the thickness of the stack of color steel tiles 6 decreases, the rubber cup at the front end of the suction cup 12 can still closely adhere to the color steel tile to ensure the adsorption force.
[0043] To improve the adsorption force, a vacuum generating device is further included. The vacuum generating device is arranged on one side of the frame 4 and is used to provide negative pressure for the suction cup 12. The suction cup 12 is connected to the vacuum generating device through a pipeline. When it is necessary to distribute the color steel tiles, negative pressure is generated inside the suction cup 12, so that the color steel tile is sucked under the action of atmospheric pressure, thereby realizing the translation of the color steel tile.
[0044] As a specific structure of a driving mechanism, the driving mechanism includes a lifting cylinder 14. The lifting cylinder 14 is arranged between two diagonals of the parallelogram link, and both ends of the lifting cylinder 14 are hinged to the two diagonals, and the hinging directions are the same as those of the four sides of the parallelogram link. In this solution, the lifting cylinder 14 is hinged between two diagonals of the parallelogram link. In this way, under the telescopic action of the lifting cylinder 14, the parallelogram can be driven to deform. An electric control unit 5 is fixed outside the frame 4, and the vacuum generating device is arranged inside the electric control unit 5 and is connected to the suction cup 12 through a pipeline to provide power for the suction cup 12 to suck a single color steel tile. At the same time, there is a small air compressor and a valve group inside it, which can provide a power source for the lifting cylinder 14. The lifting cylinder 14 is connected to the valve group interface of the electric control unit 5 through an air pipe, and the air flow direction is controlled through the small air compressor and the valve group inside the electric control unit 5 to realize the telescopic movement of the cylinder, thereby realizing the translation of the parallelogram mechanism; there are buttons on the outside of the box body to control the lifting of the lifting cylinder 14 and the suction and release of the suction cup 12. Its power cable is directly connected to the power cabinet on the ground or a small diesel generator can be arranged on the opposite side of the frame 4 to avoid cable dragging and scratching.
[0045] As a specific structure of the parallelogram link, the parallelogram link includes two first links 8 as the side edges and a second link 9 as the top edge. Both the first link 8 and the second link 9 are hollow structures and have pin holes at both ends;
[0046] The lower ends of the two first connecting rods 8 are both hinged to the bottom of the chamber, and the two ends of the second connecting rod 9 are respectively hinged to the upper ends of the two first connecting rods 8. In this solution, hinge supports 19 are provided at both ends of the bottom of the chamber. The hinge support 19 can be hinged to the lower end of one of the first connecting rods 8 through a pin shaft 15. An articulated shaft hole 21 is also provided on the side wall of the frame 4. The articulated shaft hole 21 can be hinged to the lower end of the other first connecting rod 8 through a pin shaft 15. The two ends of the second connecting rod 9 at the top edge are respectively hinged to the first connecting rod 8 through a pin shaft 15. The cross beam 10 is connected and fixed to the second connecting rod 9 by bolts. Both the first connecting rod 8 and the second connecting rod 9 are hollow welded steel structures with pin holes at both ends.
[0047] To prevent the sliding of the color steel tiles during stacking, a convex support 20 is provided at the bottom of the chamber. The convex support 20 includes a number of support bars. The support bars are arranged at both ends of the bottom of the chamber. The number of the support bars are evenly distributed at intervals along the width direction of the chamber. The color steel tiles are placed on the convex support 20, and each support bar corresponds to a wave crest of the color steel tile. In this solution, the size of the convex support 20 corresponds to the wave crest size of the color steel tile and is fixed on the frame 4 by rivets. There are a number of support bars in total, and the erection width is determined according to the wave crest spacing of the color steel tile.
[0048] To achieve smooth lifting, a balance beam 2 is further included. A number of first lifting lugs are provided on both the upper and lower sides of the balance beam 2 along its length direction. The number of first lifting lugs on the upper side of the balance beam 2 are connected to the lifting equipment through an upper steel wire rope 1. The first lifting lugs at both ends of the lower side of the balance beam 2 are respectively connected to both ends of the frame 4 through a lower steel wire rope 3. A number of second lifting lugs 18 for connecting the lower steel wire rope 3 are provided at the tops of both ends of the frame 4. In this solution, the upper steel wire rope 1 has a diameter of 20 mm and is divided into 4 lifting points for hoisting. Its upper part is connected to the crane hook, and its lower part is connected to the first lifting lug of the balance beam 2 through a snap ring. The balance beam 2 is made of HEB250 section steel. There are 4 first lifting lugs on its upper part, and a number of lifting points are arranged below it to connect the lower steel wire rope 3 to adapt to different frames 4. The lower steel wire rope 3 is a steel wire rope with a diameter of 18 mm and connects the balance beam 2 and the frame 4.
[0049] Specific working principle: When handling color steel tiles, hundreds of color steel tiles can be stacked in the chamber, that is, the stack of color steel tiles 6; then on the crane hook, the upper steel wire rope 1 is connected to the balance beam 2, and the balance beam 2 is connected to the frame 4 through the lower steel wire rope 3, and then it can be hoisted as a whole to the roof; there is a distribution mechanism 7 in the chamber, and the distribution mechanism 7 includes a parallelogram link with all four sides hinged. A lifting cylinder 14 is connected between the diagonals of the parallelogram link. Under the telescopic action of the lifting cylinder 14, the parallelogram can be driven to deform. And several suction cups 12 are also connected to the parallelogram. The deformation direction of the parallelogram is preferably set in the width direction of the chamber. In this way, driven by the lifting cylinder 14, the suction cups 12 can be extended or retracted from the outlet, that is, the deformation of the parallelogram can drive the suction cups 12 to move in an arc. When it is at the low point in the frame 4, a negative pressure is generated in the suction cups 12 through a vacuum generating device to adsorb a single color steel tile, and then it moves to the arc low point outside the outlet through the arc movement, thereby releasing the color steel tile.
[0050] The specific embodiments described above further elaborate on the purpose, technical solutions, and beneficial effects of the present invention. It should be understood that the above description is only the specific embodiments of the present invention and is not used to limit the protection scope of the present invention. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.
Claims
1. A quick installation device for steel structure colored steel tiles, characterized in that: include: A frame (4), wherein the frame (4) has a chamber for placing the colored steel tiles, and one side of the chamber has an outlet; A distribution mechanism (7), the distribution mechanism (7) comprising a parallelogram connecting rod, the parallelogram connecting rod being arranged in the chamber; the four sides of the parallelogram connecting rod are all hinged, and an adsorption component for adsorbing the color steel tile is fixed on the parallelogram connecting rod; A driving mechanism, wherein the driving mechanism is used to drive the parallelogram connecting rod to deform, and the deformation of the parallelogram connecting rod is used to extend or retract the adsorption component to the outlet.
2. A quick installation device for color steel tiles for steel structures according to claim 1, characterized in that: The dispensing mechanism (7) further comprises a crossbeam (10), both ends of the chamber are provided with parallelogram connecting rods, the crossbeam (10) is fixed between two parallelogram connecting rods, and the adsorption assembly is fixed to the lower side of the middle part of the crossbeam (10).
3. A quick installation device for color steel tiles for steel structures according to claim 2, characterized in that: A plurality of adsorption components are evenly distributed on the lower side of the crossbeam (10) along its length direction.
4. A quick installation device for color steel tiles for steel structures according to claim 2, characterized in that: The adsorption assembly comprises a longitudinal beam (11) fixed on the lower side of the crossbeam (10), the lower side of the longitudinal beam (11) is provided with a plurality of transverse beams (13) along its own length direction, and the lower side of each transverse beam (13) is provided with a plurality of suction cups (12) along its own length direction.
5. A quick installation device for color steel tiles for steel structures according to claim 4, characterized in that: The suction cup (12) is connected to the bottom of the transverse beam (13) via an elastic telescopic mechanism.
6. A quick installation device for color steel tiles for steel structures according to claim 4, characterized in that: It also comprises a vacuum generating device, which is arranged on one side of the frame (4) and is used to provide negative pressure for the suction cup (12).
7. A quick installation device for color steel tiles for steel structures according to claim 1, characterized in that: The driving mechanism comprises a lifting cylinder (14), which is arranged between two diagonal corners of the parallelogram connecting rod, and both ends of the lifting cylinder (14) are hinged to the two diagonal corners, and the hinge direction is the same as the hinge direction of the four sides of the parallelogram connecting rod.
8. A quick installation device for color steel tiles for steel structures according to claim 1, characterized in that: The parallelogram connecting rod comprises two first connecting rods (8) as side edges and a second connecting rod (9) as a top edge, wherein the first connecting rod (8) and the second connecting rod (9) are both hollow structures and have pin holes at both ends; The lower ends of the two first connecting rods (8) are hinged to the bottom of the chamber, and the two ends of the second connecting rod (9) are respectively hinged to the upper ends of the two first connecting rods (8).
9. A quick installation device for color steel tiles for steel structures according to claim 1, characterized in that: The bottom of the chamber is provided with a convex support (20), and the convex support (20) includes a plurality of support bars, and the support bars are mounted at both ends of the bottom of the chamber, and the plurality of support bars are evenly spaced in sequence along the width direction of the chamber. The color steel tile is used to be placed on the convex support (20), and each of the support bars corresponds to a wave crest of the color steel tile.
10. A quick installation device for color steel tiles for steel structures according to claim 1, characterized in that: It also includes a balance beam (2), wherein the upper and lower sides of the balance beam (2) are provided with a plurality of first lifting ears along the length direction thereof, and the plurality of first lifting ears on the upper side of the balance beam (2) are connected to the lifting equipment via an upper steel wire rope (1); the first lifting ears at both ends of the lower side of the balance beam (2) are connected to both ends of the frame (4) via a lower steel wire rope (3) respectively; and the tops of both ends of the frame (4) are provided with a plurality of second lifting ears (18) for connecting to the lower steel wire rope (3).