A kind of overlapping board mounting structure and construction method for inclined roof

By using a composite slab installation structure and construction method, and utilizing multiple sets of adsorption components and worm gear transmission, multiple composite slabs can be hoisted and their angles adjusted simultaneously, solving the problem of low installation efficiency of composite slabs, improving construction efficiency and reducing costs.

CN116641564BActive Publication Date: 2025-12-05CHINA MCC17 GRP CO LTD
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Patent Information

Application Number
CN202310800426.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-07-03
Publication Date
2025-12-05
Estimated Expiration
2043-07-03

AI Technical Summary

Technical Problem

Existing technologies have low efficiency in installing composite slabs, which leads to extended construction periods and increased time and labor costs.

Method used

The composite plate installation structure and construction method are adopted. Multiple sets of main adsorption components and auxiliary adsorption components are used to achieve simultaneous hoisting and angle adjustment of multiple composite plates. The combination and splicing of the plates are achieved by the meshing transmission of worm gear and worm.

Benefits of technology

It improved the hoisting efficiency of composite slabs, reduced the intensity of manual installation and construction costs, and enhanced installation efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a kind of for the installation structure and construction method of composite board of inclined roof, it is related to composite board installation technical field, comprising: composite board body;Composite board installation mechanism, the composite board installation mechanism includes combination component, multiple composite board translation components are installed in the combination component.The application can firmly adsorb and fix multiple composite board bodies together by the cooperation of multiple main suction components and auxiliary suction components, so that multiple composite board bodies can be combined and hoisted simultaneously, hoisting efficiency is improved, and cost is reduced;Through the transmission cooperation of angle adjusting assembly and main suction component, the composite board body adsorbed and fixed on main suction component and auxiliary suction component can automatically adjust inclination angle, it is convenient to install on inclined roof, and artificial labor intensity can be reduced;Through the meshing transmission of multiple worm gears and worms, multiple composite board bodies fixed on main suction component and auxiliary suction component can be drawn to middle, combined and spliced together to improve the installation efficiency of composite board body.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of laminated slab installation, in particular to a laminated slab installation structure for a sloping roof and a construction method. BACKGROUND

[0002] The laminated floor slab is a fabricated integral floor slab composed of a prefabricated slab and a cast-in-place reinforced concrete layer. The laminated floor slab has good integrity, and the upper and lower surfaces of the slab are flat, which is convenient for finishing the surface layer, and is suitable for high-rise buildings and large-span buildings with high requirements for overall stiffness. The prefabricated slab is not only one of the components of the floor slab structure, but also a permanent formwork for the cast-in-place reinforced concrete layer, and horizontal equipment pipelines can be laid in the cast-in-place layer. The laminated floor slab has good integrity and large stiffness, can save formwork, and the upper and lower surfaces of the slab are flat, which is convenient for finishing the surface layer, and is suitable for high-rise buildings and large-span buildings with high requirements for overall stiffness. The span of the laminated floor slab is generally 4-6m, and the maximum span can reach 9m. One component of the laminated floor slab is the cast-in-place concrete layer, and the thickness varies with the size of the span of the floor slab, but at least should be equal to the thickness of the prefabricated thin slab. With the increase of the span, the cast-in-place concrete layer is often filled with expanded polystyrene board; the expanded polystyrene board is laid on the prefabricated thin slab, forming a box-shaped cross section, so as to reduce the weight of the cast-in-place concrete and serve as a thermal and sound insulation layer of the laminated floor slab. Due to the configuration of the negative steel bars in the cast-in-place concrete layer, some peak interbranch points are formed, so that the box-shaped cross section becomes a continuous structure. According to the requirements of joint construction, fire prevention, etc., the steel bars are laid in the cast-in-place layer and the equipment pipelines are laid.

[0003] The prior art, such as Chinese patent No. CN112459332A "A composite board mounting structure for inclined roof", comprising a pouring frame, the inner wall of the pouring frame is rotatably embedded with a plurality of pouring rods, and the outer wall of the two ends of the pouring rod is recessed to the center and provided with a clamping groove, and the two ends of the pouring rod are sleeved with a limiting ring, and the inner wall of the limiting ring is provided with an embedded block extending to the center on both sides, the embedded block and the clamping groove are matched, the outer wall of the pouring frame is wrapped with a composite board layer, the outer wall top corner of the composite board layer is fixedly provided with a rubber pad, the inner wall of the rubber pad is provided with a limiting groove on both sides, and the inner wall of the rubber pad is slidably embedded with a bottom plate, the outer wall of the bottom plate is provided with a clamping piece on both sides, and the clamping piece and the limiting groove are matched, the outer wall of the bottom plate is fixedly provided with an inner cylinder at the center of the bottom, the outer wall of the inner cylinder is provided with an adjusting opening at the center of the top, and the inner wall of the inner cylinder is rotatably provided with a rotating concave wheel through a rotating shaft, the outer wall of the bottom plate is fixedly provided with a limiting plate on both sides, and the outer wall of one of the limiting plates is fixedly provided with an adjusting motor at the center of the top through a bolt, and the output end of the adjusting motor is rotatably provided at the center of the outer wall of the rotating concave wheel through a rotating shaft. The outer wall of the limiting ring is embedded on both sides of the outer wall of the composite board layer, and the outer wall of the limiting ring is fixedly provided with a limiting strip on both sides. The inner wall of the limiting strip is provided with a positioning groove at the center, and the positioning grooves are on the same horizontal line. The outer wall of the pouring rod is fixedly provided with a plurality of auxiliary plates, and the outer wall of the auxiliary plate is embedded in the inner wall of the composite board layer. The inner wall of the positioning groove is slidably embedded with a positioning rod, and the end of the positioning rod away from the positioning groove is fixedly provided with a fixed ring. The outer wall of the fixed ring is rotatably embedded with a limiting rod at the center, and the outer wall of one end of the limiting rod is provided with a fixed slot at the center. The outer wall of the two ends of the pouring rod is provided with an embedded slot at the center, and the inner wall of the embedded slot is provided with a fixed column extending outward at the center. The outer wall of the fixed column is provided with a mounting thread, and the fixed column and the fixed slot are matched. One of the limiting plates is fixedly provided with a counterweight plate on one side edge of the outer wall. The outer wall of the counterweight plate is provided with a limiting hole at the center of the top, and the outer wall of the rotating concave wheel is provided with a positioning hole on both sides. Its beneficial effects are that the inner cylinder, rotating concave wheel, adjusting motor and rubber pad can quickly adjust the working angle of the composite board, avoid increasing the difficulty of installing the composite board, thereby reducing the installation efficiency, and improving the adjustment efficiency of the composite board; the limiting ring, pouring rod, fixed column, clamping groove, embedded slot and fixed slot can realize the quick positioning function of the composite board, realize the preliminary positioning and installation of the composite board, avoid the long-term use of the crane, improve the cost of engineering construction, and improve the construction benefit ratio.

[0004] But the prior art can only install a single composite board, which makes the installation efficiency not high, thereby prolonging the overall construction progress of the project, not only increasing the time cost, but also increasing the labor cost. SUMMARY

[0005] The present application aims to overcome the prior art only can be installed on a single laminated board, so that the installation efficiency is not high, will prolong the overall construction progress of the project technical problems, provides a kind of laminated board installation structure and construction method for inclined roof.

[0006] To achieve the above object, the present application provides the following technical scheme:

[0007] A kind of laminated board installation structure and construction method for inclined roof, comprising:

[0008] Laminated board body;

[0009] Laminated board installation mechanism, the laminated board installation mechanism includes combination assembly, the combination assembly is installed with multiple laminated board translation components, the laminated board translation component is installed with angle adjusting assembly and main suction assembly, the angle adjusting assembly is connected with main suction assembly transmission, and the main suction assembly is installed with secondary suction assembly.

[0010] The combination assembly includes:

[0011] Mounting support frame, the top of the mounting support frame is welded with multiple support frame lifting lugs for hoisting, and the top of the mounting support frame is rotatably connected with a worm, and the top of the worm is fixedly connected with a rotating handle;

[0012] Worm gear mounting shaft, the worm gear mounting shaft is fixedly installed at the top of the mounting support frame.

[0013] One laminated board translation component includes at least:

[0014] A worm gear, the worm gear is rotatably sleeved on the outer circle of the worm gear mounting shaft, the worm gear is meshed with the worm, and the worm gear is provided with a through hole, the inner circle of the through hole is rotatably sleeved with a rotating shaft, the rotating shaft is fixedly connected with a worm gear connecting piece, the bottom outer wall of the worm gear connecting piece is fixedly connected with a spring telescopic rod, and the bottom end of the spring telescopic rod is hingedly connected with a translation mounting plate.

[0015] The four supporting legs of the mounting support frame are each welded with two connecting cross beams, the end of the connecting cross beam is welded with a U-shaped sliding plate, the U-shaped sliding plate is slidably connected with the translation mounting plate, and the inner wall of the U-shaped sliding plate is fixedly connected with a guide sliding block one, the two sides of the translation mounting plate are each provided with a guide sliding groove one, and the guide sliding block one is slidably connected with the guide sliding groove one.

[0016] The angle adjusting assembly includes:

[0017] The cylinder is bolted on the top of the translation mounting plate, and the output end of the cylinder is fixedly connected with an angle adjusting rack, and the bottom of the angle adjusting rack is fixedly connected with a guide sliding block two.

[0018] The top of the translation mounting plate is provided with a guide sliding groove two, and the guide sliding block two is in sliding connection with the guide sliding groove two.

[0019] The main adsorption assembly comprises:

[0020] The angle adjusting fixed frame is rotationally connected with a gear shaft, the outer ring of the gear shaft is fixedly sleeved with an angle adjusting gear and a gear shaft connecting sleeve, the angle adjusting gear is in meshing transmission with the angle adjusting rack, the outer wall of the gear shaft connecting sleeve is welded with a suction cup rotary swing arm, the end of the suction cup rotary swing arm is bolted with a suction cup mounting seat, the bottom of the suction cup mounting seat is provided with a detachable electric suction cup one, and the electric suction cup one is adsorbedly connected with the laminated plate body.

[0021] The auxiliary adsorption assembly comprises:

[0022] The electric suction cup extension plate is provided with a detachable electric suction cup two at the bottom, the suction cup mounting seat is provided with a movable recess on one side, and the electric suction cup extension plate is movably sleeved in the movable recess.

[0023] The inner wall of the movable recess is provided with a limiting groove, the top of the electric suction cup extension plate is fixedly connected with a limiting block, and the limiting block is in sliding connection with the limiting groove.

[0024] The inside of the movable recess is provided with a return spring, one end of the return spring is fixedly connected with the electric suction cup extension plate, and the other end is fixedly connected with the side wall of the movable recess.

[0025] Compared with the prior art, the beneficial effects of the present application are:

[0026] 1、In the present application, through the cooperation of multiple main adsorption assemblies and auxiliary adsorption assemblies, multiple laminated plate bodies can be firmly adsorbed and fixed together, so that multiple laminated plate bodies can be combined and hoisted at the same time, the hoisting efficiency is improved, and the cost is reduced.

[0027] 2、In the present application, through the transmission cooperation of the angle adjusting assembly and the main adsorption assembly, the laminated plate body adsorbed and fixed on the main adsorption assembly and the auxiliary adsorption assembly can automatically adjust the inclination angle, which is convenient for installation on the inclined roof, and can reduce the artificial installation strength.

[0028] 3、The multiple worm gears meshing transmission makes the multiple fixed superimposed plate bodies on the main and auxiliary adsorption assemblies close to the middle and finally combine and splice together, thereby improving the installation efficiency of the superimposed plate bodies. BRIEF DESCRIPTION OF DRAWINGS

[0029] Figure 1 It is a whole structure schematic view of a superimposed plate installation structure for a sloping roof in an embodiment of the present application;

[0030] Figure 2 It is a whole structure schematic view of a superimposed plate installation mechanism in a superimposed plate installation structure for a sloping roof in an embodiment of the present application;

[0031] Figure 3 It is a whole structure schematic view of a combination assembly in a superimposed plate installation structure for a sloping roof in an embodiment of the present application;

[0032] Figure 4 It is a whole structure schematic view of a superimposed plate translation assembly and an auxiliary adsorption assembly in a superimposed plate installation structure for a sloping roof in an embodiment of the present application;

[0033] Figure 5 It is a whole structure schematic view of a superimposed plate translation assembly in a superimposed plate installation structure for a sloping roof in an embodiment of the present application;

[0034] Figure 6 It is a whole structure schematic view of an angle adjusting assembly in a superimposed plate installation structure for a sloping roof in an embodiment of the present application;

[0035] Figure 7 It is a whole structure schematic view of a main adsorption assembly in a superimposed plate installation structure for a sloping roof in an embodiment of the present application;

[0036] Figure 8 It is a whole structure schematic view of an auxiliary adsorption assembly in a superimposed plate installation structure for a sloping roof in an embodiment of the present application.

[0037] In the drawings:

[0038] 100, laminated board body; 200, laminated board mounting mechanism; 210, combined assembly; 211, mounting support frame; 212, support frame lifting ring; 213, worm; 214, rotating handle; 215, connecting cross beam; 216, U-shaped sliding plate; 217, guide sliding block one; 218, worm mounting shaft; 220, laminated board translation assembly; 221, worm wheel; 222, worm wheel connecting piece; 223, spring telescopic rod; 224, translation mounting plate; 225, guide sliding groove one; 226, guide sliding groove two; 230, angle adjustment assembly; 231, air cylinder; 232, angle adjustment rack; 233, guide sliding block two; 240, main suction assembly; 241, angle adjustment fixing frame; 242, gear shaft; 243, angle adjustment gear; 244, gear shaft connecting sleeve; 245, suction cup rotating swing arm; 246, suction cup mounting seat; 247, electric suction cup one; 248, movable recess; 250, auxiliary suction assembly; 251, electric suction cup extension plate; 252, electric suction cup two; 253, return spring. DETAILED DESCRIPTION

[0039] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative work fall within the scope of protection of the present application.

[0040] The accompanying drawings are used to Figures 1-8 In the present embodiment, a laminated board mounting structure for a sloping roof includes: a laminated board body 100; a laminated board mounting mechanism 200, the laminated board mounting mechanism 200 includes a combined assembly 210, the combined assembly 210 is installed with a plurality of laminated board translation assemblies 220, the laminated board translation assemblies 220 are installed with an angle adjustment assembly 230 and a main suction assembly 240, the angle adjustment assembly 230 is in transmission connection with the main suction assembly 240, and the main suction assembly 240 is installed with an auxiliary suction assembly 250.

[0041] Specifically, the laminated board body 100 is fixedly adsorbed on the main suction assembly 240 and the auxiliary suction assembly 250, the plurality of laminated board translation assemblies 220 are arranged in an annular array with the axis of the combined assembly 210, the laminated board translation assemblies 220 can drive the angle adjustment assembly 230, the main suction assembly 240 and the auxiliary suction assembly 250 connected thereto to move linearly together, and the angle adjustment assembly 230 can drive the main suction assembly 240 and the auxiliary suction assembly 250 to swing.

[0042] For the convenience of those skilled in the art to fully understand the specific structure and principle of the combination assembly 210 and the laminated slab translation assembly 220, the combination assembly 210 and the laminated slab translation assembly 220 are further described. In the embodiment, the laminated slab body 100; the laminated slab mounting mechanism 200, the laminated slab mounting mechanism 200 comprises the combination assembly 210, the combination assembly 210 is installed with a plurality of laminated slab translation assemblies 220, the laminated slab translation assembly 220 is installed with the angle adjusting assembly 230 and the main suction assembly 240, the angle adjusting assembly 230 is in transmission connection with the main suction assembly 240, and the main suction assembly 240 is installed with the auxiliary suction assembly 250; the combination assembly 210 comprises: a mounting support frame 211, a plurality of support frame lifting rings 212 for lifting are welded on the top of the mounting support frame 211, and a worm 213 is rotatably connected to the top of the mounting support frame 211, and a rotating handle 214 is fixedly connected to the top end of the worm 213; a worm gear mounting shaft 218 is fixedly installed on the top of the mounting support frame 211; one laminated slab translation assembly 220 at least comprises: a worm gear 221, the worm gear 221 is rotatably sleeved on the outer circle of the worm gear mounting shaft 218, the worm gear 221 is in meshing transmission with the worm 213, and the worm gear 221 is provided with a through hole, the inner circle of the through hole is rotatably sleeved with a rotating shaft, the rotating shaft is fixedly connected with a worm gear connecting piece 222, the bottom outer wall of the worm gear connecting piece 222 is fixedly connected with a spring telescopic rod 223, and the bottom end of the spring telescopic rod 223 is hingedly connected with a translation mounting plate 224; two connecting beams 215 are welded on each of the four supporting legs of the mounting support frame 211, U-shaped sliding plates 216 are welded on the ends of the connecting beams 215, the U-shaped sliding plates 216 are in sliding connection with the translation mounting plate 224, and guide sliding blocks one 217 are fixedly connected to the inner walls of the U-shaped sliding plates 216. The two sides of the translation mounting plate 224 are provided with guide sliding grooves one 225, and the guide sliding blocks one 217 are in sliding connection with the guide sliding grooves one 225.

[0043] Specifically, the meshing of the worm gear 221 and the worm 213 enables the rotating handle 214 to drive the worm 213 to rotate, and the worm gear 221 rotates on the outer circle of the worm gear mounting shaft 218. Since the worm gear connecting piece 222 is rotatably connected with the worm gear 221 through the rotating shaft, and the translation mounting plate 224 and the guide sliding groove one 225 are in sliding connection with the U-shaped sliding plate 216 and the guide sliding block one 217, the rotation of the worm gear 221 drives the translation mounting plate 224 to move linearly through the spring telescopic rod 223.

[0044] For the convenience of those skilled in the art to fully understand the specific structure and principle of the angle adjusting assembly 230, the main adsorption assembly 240 and the auxiliary adsorption assembly 250, the angle adjusting assembly 230, the main adsorption assembly 240 and the auxiliary adsorption assembly 250 are further described. In the embodiment, the laminated plate body 100; the laminated plate mounting mechanism 200, the laminated plate mounting mechanism 200 comprising a combination assembly 210, the combination assembly 210 being provided with a plurality of laminated plate translation assemblies 220, the laminated plate translation assemblies 220 being provided with the angle adjusting assembly 230 and the main adsorption assembly 240, the angle adjusting assembly 230 being in transmission connection with the main adsorption assembly 240, the main adsorption assembly 240 being provided with the auxiliary adsorption assembly 250; the angle adjusting assembly 230 comprising: a gas cylinder 231, the gas cylinder 231 being bolted on the top of the translation mounting plate 224, and the output end of the gas cylinder 231 being fixedly connected with an angle adjusting rack 232, the bottom of the angle adjusting rack 232 being fixedly connected with a guide sliding block two 233; the top of the translation mounting plate 224 being provided with a guide sliding groove two 226, the guide sliding block two 233 being in sliding connection with the guide sliding groove two 226; the main adsorption assembly 240 comprising: an angle adjusting fixing frame 241, the angle adjusting fixing frame 241 being rotatably connected with a gear shaft 242, the outer ring of the gear shaft 242 being fixedly sleeved with an angle adjusting gear 243 and a gear shaft connecting sleeve 244, the angle adjusting gear 243 being in meshing transmission with the angle adjusting rack 232, the outer wall of the gear shaft connecting sleeve 244 being welded with a suction disc rotary swing arm 245, the end of the suction disc rotary swing arm 245 being bolted with a suction disc mounting seat 246, the bottom of the suction disc mounting seat 246 being provided with a detachable electric suction disc one 247, the electric suction disc one 247 being in adsorption connection with the laminated plate body 100; the auxiliary adsorption assembly 250 comprising: an electric suction disc extension plate 251, the bottom of the electric suction disc extension plate 251 being provided with a detachable electric suction disc two 252, one side of the suction disc mounting seat 246 being provided with a movable recess 248, the electric suction disc extension plate 251 being movably sleeved in the inside of the movable recess 248; the inner wall of the movable recess 248 being provided with a limiting groove, the top of the electric suction disc extension plate 251 being fixedly connected with a limiting block, the limiting block being in sliding connection with the limiting groove; the inside of the movable recess 248 being provided with a return spring 253, one end of the return spring 253 being fixedly connected with the electric suction disc extension plate 251, the other end being fixedly connected with the side wall of the movable recess 248.

[0045] Specifically, the angle adjusting rack 232 can be driven by the air cylinder 231 to move linearly. Since the guide slider two 233 installed at the bottom of the angle adjusting rack 232 is in sliding fit with the guide slot two 226, the movement of the angle adjusting rack 232 is more stable. When the angle adjusting rack 232 moves, since the angle adjusting rack 232 is in meshing transmission with the angle adjusting gear 243, and the angle adjusting gear 243 is fixedly sleeved on the gear shaft 242, the angle adjusting gear 243 will drive the suction cup mounting seat 246 to swing through the gear shaft 242. Since the electric suction cup extension plate 251 is movably sleeved in the movable recess 248, the electric suction cup extension plate 251 can be adjusted according to the actual area of the laminated slab body 100. Since the limiting block connected with the electric suction cup extension plate 251 is in sliding fit with the limiting slot, the electric suction cup extension plate 251 cannot be separated from the suction cup mounting seat 246, so that the laminated slab body 100 can be firmly adsorbed by the electric suction cup one 247 and the electric suction cup two 252.

[0046] Working principle: The laminated slab body 100 is fixedly adsorbed on the main adsorption assembly 240 and the auxiliary adsorption assembly 250. The plurality of laminated slab translation assemblies 220 are arranged in the axial annular array of the combined assembly 210. The laminated slab translation assembly 220 can drive the angle adjusting assembly 230, the main adsorption assembly 240 and the auxiliary adsorption assembly 250 to move linearly. The angle adjusting assembly 230 can drive the main adsorption assembly 240 and the auxiliary adsorption assembly 250 to swing.

[0047] First, the laminated slab body 100 is adsorbed and fixed with the electric suction cup 247 and the electric suction cup 252. Due to the meshing of the worm gear 221 and the worm 213, when the rotating handle 214 drives the worm 213 to rotate, the worm gear 221 will rotate on the outer ring of the worm gear mounting shaft 218, and the worm gear connecting piece 222 is rotationally connected with the worm gear 221 through the rotating shaft, and the translation mounting plate 224 and the guide sliding groove 1 225 are slidingly connected with the U-shaped sliding plate 216 and the guide sliding block 1 217, so that the rotation of the worm gear 221 drives the translation mounting plate 224 to move linearly through the spring telescopic rod 223, thereby enabling the plurality of laminated slab bodies 100 to move towards the middle at the same time, facilitating the splicing thereof together, and the cylinder 231 can drive the angle adjusting rack 232 to move linearly. Since the guide sliding block 2 233 installed at the bottom of the angle adjusting rack 232 is slidingly matched with the guide sliding groove 2 226, the movement of the angle adjusting rack 232 is more stable. When the angle adjusting rack 232 moves, since the angle adjusting rack 232 is in meshing transmission with the angle adjusting gear 243, and the angle adjusting gear 243 is fixedly sleeved on the gear shaft 242, the angle adjusting gear 243 will swing through the gear shaft 242 to drive the suction cup mounting seat 246, thereby enabling the laminated slab body 100 to be angle-adjusted. Since the electric suction cup extension plate 251 is movably sleeved in the movable recess 248, the electric suction cup extension plate 251 can be adjusted according to the actual area of the laminated slab body 100. Since the limiting block connected with the electric suction cup extension plate 251 is slidingly matched with the limiting groove, the electric suction cup extension plate 251 cannot be separated from the suction cup mounting seat 246, thereby increasing the suction area of the electric suction cup 247 and the electric suction cup 252 on the laminated slab body 100, so that it is not easy to fall off.

[0048] Although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art can modify the technical solutions described in the foregoing embodiments, or make equivalent replacements to some of the technical features, and any modification, equivalent replacement, improvement, etc. made within the spirit and principles of the present application shall be included in the protection scope of the present application.

Claims

1. A composite slab installation structure for sloping roofs, characterized in that, Include: The laminated slab body (100); The laminated slab mounting mechanism (200) comprises a combination assembly (210), a plurality of laminated slab translation assemblies (220) are mounted on the combination assembly (210), an angle adjusting assembly (230) and a main suction assembly (240) are mounted on the laminated slab translation assembly (220), the angle adjusting assembly (230) is in transmission connection with the main suction assembly (240), and the main suction assembly (240) is provided with a secondary suction assembly (250); The combination assembly (210) comprises: A plurality of support frame lifting lugs (212) are welded on the top of the mounting support frame (211), and a worm (213) is rotatably connected to the top of the mounting support frame (211), and the top of the worm (213) is fixedly connected with a rotating handle (214); A worm gear mounting shaft (218) is fixedly installed on the top of the mounting support frame (211); One of the laminated slab translation assemblies (220) at least comprises: A worm gear (221) is rotatably sleeved on the outer ring of the worm gear mounting shaft (218), the worm gear (221) is in meshing transmission with the worm (213), and the worm gear (221) is provided with a through hole, the inner ring of the through hole is rotatably sleeved with a rotating shaft, the rotating shaft is fixedly connected with a worm gear connecting piece (222), the bottom outer wall of the worm gear connecting piece (222) is fixedly connected with a spring telescopic rod (223), and the bottom end of the spring telescopic rod (223) is hingedly connected with a translation mounting plate (224); Two connecting beams (215) are welded on the four supporting legs of the mounting support frame (211), U-shaped slides (216) are welded on the ends of the connecting beams (215), the U-shaped slides (216) are in sliding connection with the translation mounting plate (224), and the inner wall of the U-shaped slide (216) is fixedly connected with a guide sliding block one (217), both sides of the translation mounting plate (224) are provided with guide sliding grooves one (225), and the guide sliding block one (217) is in sliding connection with the guide sliding groove one (225).

2. The laminated slab mounting structure for the inclined roof according to claim 1, wherein: The angle adjusting assembly (230) comprises: A gas cylinder (231) is mounted on the top of the translation mounting plate (224) through bolts, and the output end of the gas cylinder (231) is fixedly connected with an angle adjusting rack (232), and the bottom of the angle adjusting rack (232) is fixedly connected with a guide sliding block two (233); The top of the translation mounting plate (224) is provided with a guide sliding groove two (226), and the guide sliding block two (233) is in sliding connection with the guide sliding groove two (226).

3. The laminated slab mounting structure for the inclined roof according to claim 2, wherein: The main suction assembly (240) comprises: An angle adjusting fixing frame (241) is rotationally connected with a gear shaft (242), an outer ring of the gear shaft (242) is fixedly sleeved with an angle adjusting gear (243) and a gear shaft connecting sleeve (244), the angle adjusting gear (243) is in meshing transmission with the angle adjusting rack (232), an outer wall of the gear shaft connecting sleeve (244) is welded with a suction cup rotating swing arm (245), an end of the suction cup rotating swing arm (245) is bolted with a suction cup mounting seat (246), a bottom of the suction cup mounting seat (246) is mounted with a detachable electric suction cup I (247), the electric suction cup I (247) is in adsorptive connection with the superimposed plate body (100).

4. The superimposed plate mounting structure for a sloping roof according to claim 3, characterized in that: The auxiliary adsorption assembly (250) comprises: An electric suction cup extension plate (251) is mounted at the bottom of the electric suction cup extension plate (251) with a detachable electric suction cup II (252), one side of the suction cup mounting seat (246) is provided with a movable recess (248), and the electric suction cup extension plate (251) is movably sleeved in the movable recess (248).

5. The superimposed plate mounting structure for a sloping roof according to claim 4, characterized in that: A limiting groove is formed in the inner wall of the movable recess (248), a limiting block is fixedly connected to the top of the electric suction cup extension plate (251), and the limiting block is in sliding connection with the limiting groove.

6. The superimposed plate mounting structure for a sloping roof according to claim 4, characterized in that: A reset spring (253) is arranged in the movable recess (248), one end of the reset spring (253) is fixedly connected with the electric suction cup extension plate (251), and the other end is fixedly connected with the side wall of the movable recess (248).

Citation Information

Patent Citations

  • Laminated slab mounting structure for inclined roof

    CN112459332A

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    CN103612786A

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