Combined type internal partition wall board hoisting operation platform

By using the modular design and auxiliary support structure of the combined internal partition wall panel hoisting platform, the stability and safety issues of non-masonry partition wall panel hoisting equipment in confined spaces are solved, and convenient hoisting operations are achieved.

CN223497515UActive Publication Date: 2025-10-31NINGBO JIANGONG JIANLE ENG CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202423034770.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-10
Publication Date
2025-10-31
Estimated Expiration
2034-12-10

AI Technical Summary

Technical Problem

Existing non-masonry partition wall hoisting equipment is large and requires the separate construction of operating platforms or climbing equipment, making it difficult to use in confined spaces, and its safety and stability are insufficient.

Method used

A modular internal partition wall panel hoisting platform was designed, including a main component, an operating platform, casters, upright components, and support components. Through modular assembly, auxiliary support legs are added to form a stable triangular structure. Combined with a winch and transmission components, the hoisting function is made convenient and stable.

Benefits of technology

It simplifies and stabilizes hoisting operations, is suitable for confined spaces, reduces interference with other equipment, and improves safety and flexibility.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223497515U_ABST
    Figure CN223497515U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of internal partition wall board hoisting, and discloses a combined type internal partition wall board hoisting operation platform which comprises a main body assembly, a scaffold, an operation platform and universal wheels, and the operation platform is arranged on the scaffold. The scaffold operating platform has the advantages that improvement is carried out on the basis of a traditional scaffold operating platform, the vertical plate equipment is additionally arranged, the integrated design of hoisting and operating functions is achieved, modular assembly is convenient and fast to operate, convenient to assemble, disassemble and transport, high in applicability to unfavorable environments on site, and the auxiliary supporting assemblies are arranged, so that the construction cost is reduced. When the winch rotates to hoist the inner partition wall board, the auxiliary supporting legs can automatically stretch out, so that the ground, the supporting legs and the scaffold form a stable triangular structure, the stability of the scaffold in the hoisting process is enhanced, and when the winch is not started, the auxiliary supporting legs can be in a retracted state again; normal use of other parts cannot be hindered, and the overall flexibility and practicability of the device are guaranteed.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of internal partition wall panel hoisting technology, and in particular to a combined internal partition wall panel hoisting operation platform. Background Technology

[0002] With the promotion and application of prefabricated buildings, more and more interior partition walls are using non-masonry partition panels such as ALC or ACC. However, the individual components of non-masonry partition panels are often large in size and heavy in weight, making it difficult to meet the construction requirements using traditional manual methods. Hoisting machinery is required for construction. At the same time, due to the high installation position at the top, operating platforms or climbing equipment need to be erected. However, the use of traditional hoisting machinery and climbing equipment is limited by the space constraints of vertical transportation machinery within the floor or the small space where the interior partition panels are installed. Although there are some specialized panel erecting machines, these machines are often only used for hoisting interior partition panels. They still require the erection of operating platforms or climbing equipment. In addition, the large size and weight of these machines make vertical transportation inconvenient and difficult to operate in confined spaces. If simple hoisting devices are used, their anti-overturning and safety are poor, the hoisting height cannot be freely adjusted, and an additional operating platform needs to be erected for personnel working above. Utility Model Content

[0003] In view of the problems existing in the above-mentioned combined internal partition wall panel hoisting operation platform, this utility model is proposed.

[0004] Therefore, the problem to be solved by this utility model is that the non-masonry partition wall hoisting equipment is large and requires the separate construction of an operating platform or climbing equipment to complete the wall panel installation.

[0005] To solve the above-mentioned technical problems, this utility model provides the following technical solution: a combined internal partition wall panel hoisting operation platform, which includes a main component, scaffolding, operating platform and casters, wherein the operating platform is set on the scaffolding and the casters are set below the scaffolding;

[0006] The upright plate assembly, located on one side of the scaffold, includes a workbench, a winch, a square tube upright beam, a disc-lock top support, and a fixed pulley. The workbench is located on the scaffold, the winch is fixed to the workbench, the square tube upright beam is fixed to the workbench, the disc-lock top support is located on the top of the square tube upright beam, and the fixed pulley is located on the disc-lock top support.

[0007] A support assembly, disposed on one side of the scaffold, includes a support member disposed on the scaffold, comprising a rotating plate, a fixed shaft, a telescopic rod, a support leg, a rotating block, and a support block. The rotating plate is disposed on one side of the scaffold, the fixed shaft is inserted into one side of the rotating plate, a sliding groove is provided in the rotating plate, the telescopic rod slides in the sliding groove, the support leg is fixed to one end of the telescopic rod, the rotating block is rotatably connected to the support leg, and the support block is fixed to the bottom of the rotating block.

[0008] The support assembly also includes a transmission component, which is disposed on one side of the winch and includes a rotating shaft, a sleeve, a winding wheel, and a pull rope. The rotating shaft is disposed on one side of the winch, the sleeve is fixed on the rotating shaft, the winding wheel is sleeved on the outside of the sleeve, and the pull rope is wound around the winding wheel.

[0009] As a preferred embodiment of the combined internal partition wall panel hoisting platform of this utility model, the support assembly further includes a locking component disposed on the rotating plate, including a stop block, a slider, a locking block and a first spring. The stop block is fixed on the rotating plate, the slider is slidably connected to the stop block, the locking block is fixed to the inner wall of the slider, a locking groove is provided on the telescopic rod, the locking block can engage with the locking groove, and the first spring is fixed to the inner wall of the slider.

[0010] As a preferred embodiment of the combined internal partition wall panel hoisting operation platform of this utility model, a fixed plate is fixed in the sliding groove, a first moving groove is opened in the fixed plate, a pressing block is provided in the first moving groove, a second spring is fixed at one end of the pressing block, and a force-bearing block is fixed on the rotating block.

[0011] As a preferred embodiment of the combined internal partition wall panel hoisting operation platform of this utility model, a torsion spring is fixed on one side of the fixed shaft, and a fixing block is fixed on the other side of the torsion spring.

[0012] As a preferred embodiment of the combined internal partition wall panel hoisting platform of this utility model, the sleeve is provided with a second moving groove, the second moving groove is provided with a limit block, the winding wheel is provided with a limit groove, and a third spring is fixed on one side of the limit block.

[0013] As a preferred embodiment of the combined internal partition wall panel hoisting operation platform of this utility model, one end of the limiting block is triangular, and the limiting groove has a corresponding shape and there are multiple of them.

[0014] As a preferred embodiment of the combined internal partition wall panel hoisting operation platform of this utility model, a rotating block is fixed on the winding wheel, and a limit column is fixed on the worktable.

[0015] As a preferred embodiment of the combined internal partition wall panel hoisting operation platform of this utility model, the fixing block is fixed with a first limiting plate and a second limiting plate.

[0016] As a preferred embodiment of the combined internal partition wall panel hoisting operation platform of this utility model, a support column is fixed on the workbench, and a guide tube is inserted into the workbench.

[0017] As a preferred embodiment of the combined internal partition wall panel hoisting operation platform of this utility model, the support legs are provided with pulleys.

[0018] The beneficial effects of this utility model are as follows: Based on the traditional scaffolding operating platform, improvements are made by adding a platform erection device to achieve an integrated design of hoisting and operation functions. The modular assembly is convenient for operation, easy to install, dismantle and transport, and highly adaptable to adverse on-site environments. In addition, auxiliary support components are set up. When the winch rotates to hoist the inner partition wall panel, the auxiliary support legs can automatically extend, so that the ground, support legs and scaffolding form a stable triangular structure, which enhances the stability of the scaffolding during the hoisting process. When the winch is not started, the auxiliary support legs will be in the retracted state, which will not cause any obstruction to the normal use of other components, ensuring the overall flexibility and practicality of the device. Attached Figure Description

[0019] To more clearly illustrate the technical solutions of the embodiments of this utility model, the drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort. Among them:

[0020] Figure 1 This is an overall drawing of the modular interior partition wall panel hoisting platform.

[0021] Figure 2 This is a structural diagram of the workbench of a modular internal partition wall panel hoisting platform.

[0022] Figure 3 For the hoisting operation platform of modular interior partition panels Figure 2 Enlarged view of the structure at point A in the middle.

[0023] Figure 4 This is a structural diagram of the support legs for a combined internal partition wall panel hoisting platform.

[0024] Figure 5 For the hoisting operation platform of modular interior partition panels Figure 4 Enlarged view of the structure at point B in the middle.

[0025] Figure 6 This is a cross-sectional structural diagram of the fixing plate of the combined internal partition wall panel hoisting operation platform.

[0026] Figure 7 For the hoisting operation platform of modular interior partition panels Figure 6 Enlarged view of the structure at point C.

[0027] Figure 8 For the hoisting operation platform of modular interior partition panels Figure 6 Enlarged view of the structure at point D.

[0028] Figure 9 This is a cross-sectional structural diagram of the limiting block of the combined internal partition wall panel hoisting operation platform. Detailed Implementation

[0029] To make the above-mentioned objectives, features and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings.

[0030] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Those skilled in the art can make similar extensions without departing from the spirit of the present invention. Therefore, the present invention is not limited to the specific embodiments disclosed below.

[0031] Secondly, the term "an embodiment" or "embodiment" as used herein refers to a specific feature, structure, or characteristic that may be included in at least one implementation of the present invention. The phrase "in one embodiment" appearing in different places in this specification does not necessarily refer to the same embodiment, nor is it a single or selective embodiment that excludes other embodiments.

[0032] Example 1

[0033] Reference Figures 1-9 This is the first embodiment of the present utility model. This embodiment provides a combined internal partition wall panel hoisting operation platform. The combined internal partition wall panel hoisting operation platform includes a main component 100, a scaffold 101, an operating platform 102 and casters 103. The operating platform 102 is set on the scaffold 101 and the casters 103 are set below the scaffold 101.

[0034] The scaffolding 101 includes uprights 101a, horizontal bars 101b, and diagonal bars 101c. The scaffolding is usually assembled using fasteners or bolts. The operating platform 102 is connected to the scaffolding 101 by bolts. The casters 103 have a self-locking function. The installation of the scaffolding 101 is existing technology, and this solution will not be described in detail. Moreover, those skilled in the art can clearly understand the working principle.

[0035] The upright assembly 200 is located on one side of the scaffold 101 and includes a workbench 201, a winch 202, a square tube upright beam 203, a disc-lock top support 204, and a fixed pulley 205. The workbench 201 is located on the scaffold 101, the winch 202 is fixed on the workbench 201, the square tube upright beam 203 is fixed on the workbench 201, the disc-lock top support 204 is located on the top of the square tube upright beam 203, and the fixed pulley 205 is located on the disc-lock top support 204.

[0036] The upright assembly 200 is used to hoist the interior partition wall panel. The workbench 201 is bolted to the operating platform 102. The square tube upright beam 203 is snapped to the crossbar 101b for easy installation and disassembly. The lifting action of the interior partition wall panel is achieved by the cooperation of the winch 202 and the fixed pulley 205. The control mechanism controls the disc buckle top support 204 to fit against the top wall to enhance the stability of the upright process. This is existing technology, and this solution will not be described in detail. Moreover, those skilled in the art can clearly understand the working principle.

[0037] The support assembly 300 is disposed on one side of the scaffold 101 and includes a support member 301 disposed on the scaffold 101. The support member includes a rotating plate 301a, a fixed shaft 301b, a telescopic rod 301c, a support leg 301d, a rotating block 301e, and a support block 301f. The rotating plate 301a is disposed on one side of the scaffold 101, and the fixed shaft 301b is inserted into one side of the rotating plate 301a. A sliding groove 301a-1 is provided in the rotating plate 301a, and the telescopic rod 301c slides in the sliding groove 301a-1. The support leg 301d is fixed to one end of the telescopic rod 301c. The rotating block 301e is rotatably connected to the support leg 301d, and the support block 301f is fixed to the bottom of the rotating block 301e.

[0038] The support member 301 enhances the stability of the scaffold 101 during hoisting. The rotating plate 301a rotates around the fixed axis 301b, and the bottom of the support block 301f is provided with a friction block to increase the friction between the support block 301f and the ground. This ensures that when the support leg 301d moves to the designated position, the support block 301f will not move due to the greater friction between it and the ground, thus fixing the position of the support leg 301d and improving the stability of the scaffold 101 during hoisting.

[0039] The upper part of the sliding groove 301a-1 is T-shaped and the lower part is rectangular. The top of the telescopic rod 301c is T-shaped and the lower part is rectangular. This ensures that the telescopic rod 301c can move within the sliding groove 301a-1 and will not separate from the rotating plate 301a.

[0040] In the initial state, the rotating plate 301a, the telescopic rod 301c, and the support leg 301d are all perpendicular to the ground. When the rotating plate 301a rotates around the fixed axis 301b, it drives the telescopic rod 301c and the support leg 301d to rotate. Under the action of gravity, the telescopic rod 301c slides in the sliding groove 301a-1, thereby changing the distance between the support leg 301d and the rotating plate 301a. At the same time, the rotating block 301e rotates, so that after the support leg 301d rotates to the correct position, the bottom of the support block 301f is in contact with the ground.

[0041] The support assembly 300 also includes a transmission component 302, which is disposed on one side of the winch 202. It includes a rotating shaft 302a, a sleeve 302b, a winding reel 302c, and a pull rope 302d. The rotating shaft 302a is disposed on one side of the winch 202, the sleeve 302b is fixed on the rotating shaft 302a, the winding reel 302c is sleeved on the outside of the sleeve 302b, and the pull rope 302d is wound around the winding reel 302c.

[0042] By setting the transmission component 302, the rotating plate 301a can be rotated when the winch 202 is started, and when the winch 202 is not working, the rotating plate 301a will be in a state perpendicular to the bottom surface.

[0043] The rotating shaft 302a is movably connected to the inner drum shaft of the winch 202. When the winch 202 starts, the drum shaft will drive the rotating shaft 302a to rotate synchronously. The motor of the winch 202 is located above the drum shaft. With the cooperation of a set of helical gears, the rotation of the motor can drive the drum shaft to rotate. This is existing technology, and this solution will not be described in detail. Moreover, those skilled in the art can clearly understand the working principle. Thus, rotating shafts 302a can be set on both sides of the winch 202 and movably connected to the drum shaft. Each rotating shaft 302a corresponds to a set of support members 301. The two sets of support members 301 are symmetrically distributed on both sides of the scaffold 101, further improving the stability of the scaffold 101.

[0044] When the plate is erected, the winch 202 is started, which will drive the rotating shaft 302a to rotate. The rotating shaft 302a drives the sleeve 302b to rotate, which in turn drives the take-up wheel 302c to rotate. This causes the length of the pull rope 302d outside the take-up wheel 302c to change, thereby limiting the rotation of the rotating plate 301a.

[0045] Example 2

[0046] Reference Figures 1-9 This is the second embodiment of the present invention, which is based on the previous embodiment.

[0047] Specifically, the support assembly 300 also includes a locking element 303, which is disposed on the rotating plate 301a. It includes a stop block 303a, a slider 303b, a locking block 303c, and a first spring 303d. The stop block 303a is fixed on the rotating plate 301a, the slider 303b is slidably connected to the stop block 303a, the locking block 303c is fixed to the inner wall of the slider 303b, the telescopic rod 301c has a locking groove 301c-1, the locking block 303c can engage with the locking groove 301c-1, and the first spring 303d is fixed to the inner wall of the slider 303b.

[0048] The locking element 303 is used to restrict the movement of the telescopic rod 301c in the sliding groove 301a-1, so as to prevent the telescopic rod 301c from moving when the support leg 301d moves to the designated position, which would cause the support leg 301d to move and thus fail to provide auxiliary support for the scaffold 101.

[0049] The slider 303b is sleeved on the outside of the rotating plate 301a. There are two stops 303a. The upper and lower sides of the slider 303b are in contact with the two stops 303a. The slider 303b can slide between the two stops 303a. The first spring 303d applies a continuous pushing force to the slider 303b to make the locking block 303c engage with the locking groove 301c-1. When the telescopic rod 301c moves, the locking block 303c and the locking groove 301c-1 are in a coaxial position and they will engage. At this time, the telescopic rod 301c is locked, and the relative position of the rotating plate 301a and the support leg 301d will not change. At the same time, due to the large friction between the support block 301f and the bottom surface, the position of the support leg 301d will not move, thus providing stable support for the scaffold 101.

[0050] One side of the pull rope 302d is fixed to the slider 303b, and the other end of the first spring 303d is fixed to the locking block 303c. When the winding wheel 302c winds up, the pull rope 302d will pull the slider 303b to slide along the two stops 303a, thereby compressing the first spring 303d, which in turn causes the locking block 303c to separate from the locking groove 301c-1. At this time, the telescopic rod 301c will be unlocked and can continue to slide in the sliding groove 301a-1.

[0051] Specifically, a fixed plate 301g is fixed inside the sliding groove 301a-1, a first moving groove 301g-1 is opened inside the fixed plate 301g, a pressing block 301h is provided inside the first moving groove 301g-1, a second spring 301i is fixed to one end of the pressing block 301h, and a force-bearing block 301j is fixed on the rotating block 301e.

[0052] The compression block 301h is used to apply pressure to the force-bearing block 301j, thereby causing the rotating block 301e to rotate, thus separating the bottom surface of the support block 301f from the ground. The center of gravity of the support block 301f is located away from the scaffold 101. After the support block 301f rotates, without resistance, it will drive the rotating block 301e to rotate in the opposite direction under the action of gravity, thereby driving the support block 301f to rotate, so that the bottom surface of the support block 301f contacts the ground.

[0053] When the rotating plate 301a rotates, it will drive the fixed plate 301g to rotate. When the pressing block 301h contacts the force-bearing block 301j, it will press the force-bearing block 301j, thereby causing the rotating block 301e to rotate relative to the rotating plate 301a, which in turn drives the support block 301f to rotate. Since the telescopic rod 301c is unlocked before the rotating plate 301a rotates, the telescopic rod 301c will not affect the vertical movement of the support leg 301d during the process of separating the bottom surface of the support block 301f from the ground, thus allowing the support block 301f to rotate to a state where it is not in contact with the ground.

[0054] The other end of the second spring 301i is fixed to the inner wall of the first moving groove 301g-1. The setting of the second spring 301i allows the relative position between the fixed plate 301g and the pressing block 301h to be changed. The elastic force of the second spring 301i is large, which is greater than the force of the force block 301j driving the rotating block 301e to separate the bottom surface of the support block 301f from the ground. At the same time, when the rotating plate 301a rotates from the inclined state to the vertical state, the second spring 301i can be compressed, so that the fixed plate 301g and the pressing block 301h will not affect the rotation of the rotating plate 301a.

[0055] Specifically, a torsion spring 301k is fixed on one side of the fixed shaft 301b, and a fixing block 301l is fixed on the other side of the torsion spring 301k.

[0056] There are two fixing blocks 301l. The shape of one side of the fixing block 301l corresponds to that of the upright 101a. The two fixing blocks 301l are bolted together, which facilitates installation and disassembly. The torsion spring 301k is used to move the rotating plate 301a from the vertical state to the specified tilt angle. When the pull rope 302d on the winding wheel 302c is in the tightened state, the rotating plate 301a is perpendicular to the ground and the torsion spring 301k is compressed. When 302d on the winding wheel 302c is in the extended state, the torsion spring 301k will return to its original state, thereby driving the rotating plate 301a to rotate to the tilt position.

[0057] Specifically, a second moving groove 302b-1 is provided inside the sleeve 302b, a limit block 303e is provided inside the second moving groove 302b-1, a limit groove 302c-1 is provided on the winding wheel 302c, and a third spring 303f is fixed on one side of the limit block 303e.

[0058] The third spring 303f applies a continuous thrust to the limiting block 303e, ensuring that the limiting block 303e can engage with the limiting groove 302c-1. When the two are engaged, the rotation of the sleeve 302b will drive the winding wheel 302c to rotate. When the two are not engaged, the rotation of the sleeve 302b will not drive the winding wheel 302c to rotate.

[0059] Specifically, one end of the limiting block 303e is triangular, and the limiting groove 302c-1 has a corresponding shape, and there are multiple of them.

[0060] When the rotation of the rotating plate 301a is restricted, and the total length of the pull rope 302d does not change, the take-up wheel 302c will be restricted. When the sleeve 302b rotates, the inclined surface of the limiting block 303e will press against the inclined surface of the limiting groove 302c-1, thereby separating the limiting block 303e from the limiting groove 302c-1. When the two are in a coaxial position, they will engage again, and the inclined surfaces of the two will press against each other again and separate, so that the further rotation of the sleeve 302b will not drive the take-up wheel 302c to rotate.

[0061] The limiting block 303e is triangular at one end, so that the sleeve 302b will not drive the winding wheel 302c to rotate when the rotation of the rotating plate 301a is restricted, regardless of the rotation direction of the sleeve 302b.

[0062] Example 3

[0063] Reference Figures 1-9 This is the third embodiment of the present invention, which is based on the first two embodiments.

[0064] Specifically, a rotating block 302e is fixed on the winding reel 302c, and a limit post 302f is fixed on the worktable 201.

[0065] The take-up reel 302c will drive the rotating block 302e to rotate. When the rotating block 302e rotates to fit with the limiting post 302f, the limiting post 302f will restrict the rotation of the rotating block 302e, thereby restricting the rotation of the take-up reel 302c. Through the cooperation of the limiting block 303e and the limiting groove 302c-1, the rotating shaft 302a can still rotate after the take-up reel 302c is restricted from rotating.

[0066] Specifically, a first limiting plate 301m and a second limiting plate 301n are fixed on the fixing block 301l.

[0067] The first limiting plate 301m is perpendicular to the ground, and the second limiting plate 301n has a certain angle of inclination with the ground. The rotation angle of the rotating plate 301a is limited by the first limiting plate 301m and the second limiting plate 301n. When the rotating plate 301a is in contact with the first limiting plate 301m, the rotating plate 301a will be perpendicular to the ground. When the second limiting plate 301n is in contact with the rotating plate 301a, the rotating plate 301a rotates to the correct position. At this time, the locking block 303c engages with the locking groove 301c-1, the position of the telescopic rod 301c in the sliding groove 301a-1 is locked, and the position of the support leg 301d is locked. This makes the scaffold 101, the support leg 301d and the bottom surface form a triangle, thereby improving the stability of the scaffold 101 during the hoisting process.

[0068] Specifically, a support column 302g is fixed on the workbench 201, and a guide cylinder 302h is inserted into the workbench 201.

[0069] The support column 302g supports the guide cylinder 302h, and the pull rope 302d is inserted into the guide cylinder 302h to provide guidance and positioning for the pull rope 302d.

[0070] Specifically, the support leg 301d is equipped with a pulley 301o.

[0071] There are four pulleys 301o, which are evenly distributed on the two support legs 301d. When the rotating plate 301a rotates, the force block 301j drives the support block 301f to rotate. When the bottom surface of the support block 301f separates from the ground, the bottom of the pulley 301o also separates from the ground. Then, the telescopic rod 301c will move down along the sliding groove 301a-1 again under the action of gravity, so that the bottom of the pulley 301o will contact the ground again, thus making it easy for the support leg 301d to retract to the vertical state.

[0072] When the bottom surface of the support leg 301d is in complete contact with the ground, the pulley 301o no longer contacts the ground, thus ensuring that the position of the support leg 301d will not move during the hoisting process, providing stable support for the scaffold 101.

[0073] During use, scaffolding 101, operating platform 102, and casters 103 are erected according to the installation height of the inner partition wall panel. The workbench 201 is bolted to the operating platform 102, and the square tube upright beam 203 is connected to the crossbar 101b. Before hoisting the inner partition wall panel, the entire device is moved to the hoisting area. Then, the casters 103 are locked, and the control mechanism is used to control the disc buckle top support 204 to fit against the top wall to enhance the stability of the panel erection process.

[0074] In the initial state, the rotating plate 301a, the telescopic rod 301c, and the support leg 301d are all perpendicular to the ground. At this time, the bottom surface of the support block 301f is separated from the ground, the bottom of the pulley 301o is in contact with the ground, the pull rope 302d is in a tightened state, and the torsion spring 301k is compressed.

[0075] When it is necessary to hoist the inner partition wall panel, start the winch 202, which will drive the rotating shaft 302a to rotate. The rotating shaft 302a drives the sleeve 302b to rotate, and the limiting block 303e engages with the limiting groove 302c-1. The sleeve 302b will drive the take-up wheel 302c to rotate, and the pull rope 302d outside the take-up wheel 302c will lengthen. The torsion spring 301k will return to its original position, thereby driving the rotating shaft 302a to rotate to an angle that fits with the second limiting plate 301n. Under the action of gravity, the telescopic rod 301c moves downward along the sliding groove 301a-1. When the locking block 303c and the locking groove 301c-1 are in a coaxial position, the two will engage. At this time, the telescopic rod 301c is locked, and the relative position of the rotating plate 301a and the support leg 301d will not change. Meanwhile, before the locking block 303c engages with the locking groove 301c-1, the rotation of the rotating plate 301a will drive the fixed plate 301g to rotate, which in turn will drive the pressing block 301h to rotate, so that the pressing block 301h no longer presses the force block 301j. Under the gravity of the support block 301f, the rotating block 301e will drive the support block 301f to rotate, and the telescopic rod 301c will move upward along the sliding groove 301a-1, so that the bottom surface of the support block 301f contacts the ground. At this time, due to the large friction between the support block 301f and the bottom surface, the position of the support leg 301d will not move, so that the scaffold 101, the support leg 301d and the bottom surface form a triangle, thereby improving the stability of the scaffold 101 during the hoisting process.

[0076] At the same time, the take-up roller 302c will drive the rotating block 302e to rotate. When the rotating block 302e rotates to the position where it is in contact with the limiting post 302f, the limiting post 302f will restrict the rotation of the rotating block 302e, thereby restricting the rotation of the take-up roller 302c. Through the cooperation of the limiting block 303e and the limiting groove 302c-1, the rotating shaft 302a can still rotate after the take-up roller 302c is restricted from rotating, thus ensuring that the plate erection process is not affected.

[0077] After the upright plate is completed, the operator can stand on the operating platform (102) and install the inner partition wall plate to the designated position. After the installation is completed, the winch 202 is started again, which drives the rotating shaft 302a to rotate in the opposite direction. The pull rope 302d outside the winding wheel 302c will be shortened. The pull rope 302d will pull the slider 303b to slide along the two stops 303a, thereby compressing the first spring 303d, which in turn causes the locking block 303c to separate from the locking groove 301c-1. At this time, the telescopic rod 301c will be unlocked. The pull rope 302d continues to pull the slider 303b, thereby driving the rotating plate 301a to rotate around the fixed shaft 301b, so that the rotating plate 301a returns to the vertical state again.

[0078] Simultaneously, the rotating plate 301a rotates, which will drive the fixed plate 301g to rotate. When the pressing block 301h contacts the force-bearing block 301j, it will press the force-bearing block 301j, thereby causing the rotating block 301e to rotate relative to the rotating plate 301a, which in turn drives the support block 301f to rotate, so that the bottom surface of the support block 301f does not contact the ground. Then, the telescopic rod 301c will move downward along the sliding groove 301a-1 again under the action of gravity, thereby causing the bottom of the pulley 301o to contact the ground again, making it easier for the support leg 301d to retract to the vertical state.

[0079] When the rotating plate 301a is in contact with the first limiting plate 301m, the first limiting plate 301m will restrict the rotation of the rotating plate 301a. At this time, the further rotation of the sleeve 302b will not drive the winding wheel 302c to rotate, and will not affect the winding operation of the winch 202. After winding is completed, the limiting block 303e engages with the limiting groove 302c-1, and the rotation state of the winding wheel 302c is synchronized with the rotating shaft 302a. Therefore, the winding wheel 302c will not rotate again, and the pull rope 302d will restrict the rotation of the rotating plate 301a to keep it in a vertical state.

[0080] It should be noted that the above embodiments are only used to illustrate the technical solution of this utility model and are not intended to limit it. Although this utility model has been described in detail with reference to preferred embodiments, those skilled in the art should understand that modifications or equivalent substitutions can be made to the technical solution of this utility model without departing from the spirit and scope of the technical solution of this utility model, and all such modifications or substitutions should be covered within the scope of the claims of this utility model.

Claims

1. A modular internal partition wall panel hoisting platform, characterized in that: include, The main components (100), scaffolding (101), operating platform (102), and casters (103) are provided. The operating platform (102) is located on the scaffolding (101), and the casters (103) are located below the scaffolding (101). The upright assembly (200) is located on one side of the scaffold (101) and includes a workbench (201), a winch (202), a square tube upright beam (203), a disc buckle top support (204), and a fixed pulley (205). The workbench (201) is located on the scaffold (101), the winch (202) is fixed on the workbench (201), the square tube upright beam (203) is fixed on the workbench (201), the disc buckle top support (204) is located on the top of the square tube upright beam (203), and the fixed pulley (205) is located on the disc buckle top support (204). A support assembly (300), disposed on one side of the scaffold (101), includes a support member (301) disposed on the scaffold (101), comprising a rotating plate (301a), a fixed shaft (301b), a telescopic rod (301c), a support leg (301d), a rotating block (301e), and a support block (301f). The rotating plate (301a) is disposed on one side of the scaffold (101), and the fixed shaft (301b) is inserted into it. On one side of the rotating plate (301a), a sliding groove (301a-1) is provided in the rotating plate (301a). The telescopic rod (301c) slides in the sliding groove (301a-1). The support leg (301d) is fixed to one end of the telescopic rod (301c). The rotating block (301e) is rotatably connected to the support leg (301d). The support block (301f) is fixed to the bottom of the rotating block (301e). The support assembly (300) also includes a transmission component (302) disposed on one side of the winch (202), including a rotating shaft (302a), a sleeve (302b), a winding reel (302c), and a pull rope (302d). The rotating shaft (302a) is disposed on one side of the winch (202), the sleeve (302b) is fixed on the rotating shaft (302a), the winding reel (302c) is sleeved on the outside of the sleeve (302b), and the pull rope (302d) is wound around the winding reel (302c).

2. The combined internal partition wall panel hoisting platform as described in claim 1, characterized in that: The support assembly (300) further includes a locking element (303) disposed on the rotating plate (301a), including a stop block (303a), a slider (303b), a locking block (303c), and a first spring (303d). The stop block (303a) is fixed on the rotating plate (301a), the slider (303b) is slidably connected to the stop block (303a), the locking block (303c) is fixed to the inner wall of the slider (303b), a locking groove (301c-1) is provided on the telescopic rod (301c), the locking block (303c) can engage with the locking groove (301c-1), and the first spring (303d) is fixed to the inner wall of the slider (303b).

3. The combined internal partition wall panel hoisting platform as described in claim 1 or 2, characterized in that: A fixed plate (301g) is fixed inside the sliding groove (301a-1). A first moving groove (301g-1) is opened inside the fixed plate (301g). A pressing block (301h) is arranged inside the first moving groove (301g-1). A second spring (301i) is fixed at one end of the pressing block (301h). A force-bearing block (301j) is fixed on the rotating block (301e).

4. The combined internal partition wall panel hoisting platform as described in claim 3, characterized in that: A torsion spring (301k) is fixed on one side of the fixed shaft (301b), and a fixing block (301l) is fixed on the other side of the torsion spring (301k).

5. The combined internal partition wall panel hoisting platform as described in claim 4, characterized in that: The sleeve (302b) has a second moving groove (302b-1) inside, and a limit block (303e) is provided in the second moving groove (302b-1). The winding wheel (302c) has a limit groove (302c-1) on it, and a third spring (303f) is fixed on one side of the limit block (303e).

6. The combined internal partition wall panel hoisting platform as described in claim 5, characterized in that: One end of the limiting block (303e) is triangular, and the limiting groove (302c-1) has a corresponding shape and there are multiple of them.

7. The combined internal partition wall panel hoisting platform as described in claim 5 or 6, characterized in that: A rotating block (302e) is fixed on the winding reel (302c), and a limit post (302f) is fixed on the worktable (201).

8. The combined internal partition wall panel hoisting platform as described in claim 7, characterized in that: The fixing block (301l) is fixed with a first limiting plate (301m) and a second limiting plate (301n).

9. The combined internal partition wall panel hoisting platform as described in claim 8, characterized in that: A support column (302g) is fixed on the workbench (201), and a guide cylinder (302h) is inserted into the workbench (201).

10. The combined internal partition wall panel hoisting platform as described in claim 8 or 9, characterized in that: The support leg (301d) is equipped with a pulley (301o).