High wall construction workbench and construction method

Through the high wall construction workbench with support frames, connecting components and lifting parts, and the use of translation and lifting mechanisms to adjust the construction position, the problems of inconvenient operation and safety hazards in prison high wall construction are solved, and efficient and safe construction results are achieved.

CN120759409AActive Publication Date: 2025-10-10THE THIRD CONSTR CO LTD OF CHINA CONSTR THIRD ENG BUREAU
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Patent Information

Application Number
CN202511285095.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-09-10
Publication Date
2025-10-10
Estimated Expiration
2045-09-10

AI Technical Summary

Technical Problem

During the construction of high walls such as prisons, construction workers face operational difficulties due to differences in body shape and changes in construction locations, posing safety hazards. In addition, the distance between the formwork and the scaffolding makes construction difficult.

Method used

A high-wall construction workbench consisting of a support frame, connecting components and lifting parts is used. The construction position is adjusted through a translation mechanism and a lifting mechanism. Combined with a flip table component and a stabilizing mechanism, the operating convenience and safety of construction workers are improved, and the stability of the formwork is improved through lifting parts and cantilever brackets.

Benefits of technology

It reduces the safety risks during the construction process, improves construction efficiency and template utilization, reduces the time for template reconstruction, and enhances the applicability and stability of the construction platform.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a high wall construction workbench and a construction method, and relates to the field of high wall construction, the workbench comprises two supporting frames, a connecting assembly and a hoisting piece, and each supporting frame comprises a first splicing frame, a second splicing frame, a third splicing frame and a moving adjusting assembly; the movement adjusting assembly comprises a translation mechanism and a lifting mechanism; the translation mechanism is arranged between the first splicing frame and the second splicing frame, the lifting mechanism is arranged between the second splicing frame and the third splicing frame, and the two ends of the connecting assembly are arranged on the third splicing frame of the two supporting frames correspondingly. The hoisting piece is arranged on the connecting piece, and the hoisting piece is used for hoisting a wall formwork or a gallery formwork; the translation mechanism is used for driving the second splicing frame and the third splicing frame to move in the direction close to or away from the wall relative to the first splicing frame. The lifting mechanism is used for driving the third splicing frame to move in the vertical direction. The method has the effect of reducing the safety risk of construction.
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Description

Technical Field

[0001] The present application relates to the field of high wall construction, and in particular to a high wall construction workbench and a construction method. Background Art

[0002] In prisons, military facilities, nuclear power plants and other special purpose facilities, walls, as the core maintenance structure, play an important role in ensuring the safety protection, functional isolation and structural stability of the facilities. Their construction quality and efficiency are directly related to the construction results of the entire facility project. Figure 1 As shown, taking the prison wall as an example, the height of the wall usually needs to be more than 5 meters, wherein the wall includes a wall body 8 and a corridor 9, and the corridor 9 is cantilevered at the top of the wall body 8 to meet security isolation requirements.

[0003] At present, in the construction of prison walls, scaffolding is generally set up on both sides of the wall first, and then formwork is installed between the scaffolding on both sides, and then concrete pouring of the concrete wall and corridor is carried out from the upper side of the formwork.

[0004] However, to ensure adequate construction space during formwork installation, a gap was created between the scaffolding on either side of the formwork. This caused construction workers to lean forward and perform other operations, often due to differences in body size and position. Prison wall construction often involves high-altitude work, and this inconvenience posed a safety hazard. Summary of the Invention

[0005] In order to reduce safety risks during the construction process, the present application provides a high-wall construction workbench and a construction method.

[0006] In the first aspect, the present application provides a high wall construction workbench, which adopts the following technical solution: A high-wall construction workbench includes a support frame, a connecting assembly, and a hoisting member. Two support frames are provided, each including a first splicing frame, a second splicing frame, a third splicing frame, and a movable adjustment assembly. The movable adjustment assembly includes a translation mechanism and a lifting mechanism. The translation mechanism is provided between the first splicing frame and the second splicing frame, and the lifting mechanism is provided between the second splicing frame and the third splicing frame. Both ends of the connecting assembly are respectively provided on the third splicing frames of the two support frames. The hoisting member is provided on the connecting member and is used to hoist a wall formwork or a corridor formwork. The translation mechanism is used to drive the second splicing frame and the third splicing frame to move toward or away from the wall relative to the first splicing frame; the lifting mechanism is used to drive the third splicing frame to move in the vertical direction.

[0007] By adopting this technical solution, during the construction process, the translation mechanism and the lifting mechanism work together to allow construction workers to adjust to a convenient construction position, thereby reducing the need for workers to lean forward during construction and thereby reducing safety risks during construction. Furthermore, because the corridor is cantilevered from the top of the wall, the translation mechanism drives the second and third splicing frames to move relative to the first splicing frame, providing construction space for the corridor and improving the applicability of the workbench.

[0008] Optionally, a flip table assembly is provided on the support frame, and the flip table assembly includes a flip platform and a locking block; the flip platform is rotatably connected to the support frame, and the locking block is connected to the support frame; the flip platform abuts against the locking block to limit the rotation of the flip platform.

[0009] By adopting the above technical solution, during the construction process, the flip platform rotates until it abuts against the locking block, and the locking block can limit the flip platform from continuing to rotate, so that construction workers can use the flip platform for construction.

[0010] Optionally, the connecting assembly includes a first connecting rod and a second connecting rod, one end of the first connecting rod is connected to one of the support frames, one end of the second connecting rod is connected to another of the support frames, the first connecting rod and the second connecting rod are slidably connected, and the hanging piece is arranged on the first connecting rod.

[0011] By adopting the above technical solution, when the first splicing frame and the second splicing frame move relative to the first splicing frame, relative sliding occurs between the first connecting rod and the second connecting rod, so that the two support frames can still remain connected, thereby improving the stability of the connection between the two support frames, and further improving the overall stability of the workbench.

[0012] Optionally, the connection assembly further includes a stabilizing mechanism, which includes a first stabilizing support seat, a second stabilizing support seat, a guide rail, a stabilizing driving member, and a slider; The first stable support seat is arranged on the support frame connected to the first connecting rod, and the second stable support seat is arranged on the support frame connected to the second connecting rod; one end of the guide rail is slidably connected to the first stable support seat, and the other end is connected to the second stable support seat; the slider is slidably connected to the guide rail, and the slider is connected to the first connecting rod; the stable driving member is arranged on the second stable support seat, and the stable driving member is used to drive the slider to slide on the guide rail.

[0013] By adopting the technical scheme, the slider connects the first connecting rod and the guide rail, and the stability of the first connecting rod during movement relative to the second connecting rod is improved. The stable driving member drives the slider to move synchronously with the translation mechanism, and the stability of the movement of the first connecting rod is further improved.

[0014] Optionally, the translation mechanism comprises a translation base, a translation connecting seat and a translation driving member, the translation base is connected with the first splicing frame, and the second splicing frame is connected with the translation connecting seat; the translation driving member is arranged on the translation base, and is used to drive the translation connecting seat to slide on the translation base.

[0015] By adopting the technical scheme, the translation driving member drives the translation connecting seat to slide on the translation base, so that the movement of the second splicing frame and the third splicing frame relative to the first splicing frame is realized, and then the construction distance is adjusted by the construction personnel, and the safety risk in the construction process is reduced.

[0016] Optionally, the lifting mechanism comprises a lifting base, a lifting connecting seat and a lifting driving member, the lifting base is connected with the second splicing frame, and the third splicing frame is connected with the lifting connecting seat; the lifting driving member is arranged on the lifting base, and is used to drive the lifting connecting seat to move in the vertical direction.

[0017] By adopting the technical scheme, the lifting driving member can drive the lifting connecting seat to move in the vertical direction, so that the third splicing frame moves in the vertical direction, and the construction personnel can move to a suitable height for construction. At the same time, the connecting assembly is lifted with the third splicing frame, so that the workbench can be applied to the construction of walls and corridors of different heights, and the applicability of the workbench is improved.

[0018] In a second aspect, the application provides a high wall construction method using the high wall construction workbench, comprising the following steps: S1, two workbenches are respectively erected, and the two workbenches are respectively a first workbench and a second workbench, the first workbench is used for constructing a wall, and the second workbench is used for constructing a corridor; S2, the wall formwork is hoisted into place by the hoisting member of the first workbench, and concrete is poured to form a wall; S3, after the wall is formed, the wall formwork is removed, and the first workbench is driven to move, so that the hoisting member drives the wall formwork to move to the next construction section; S4, after the first working platform moves to the next construction section, repeating step S2; then the second working platform is moved to the position of the formed wall, the gallery template is hoisted into position by the hoisting member of the second working platform, and concrete is poured to form a gallery; after the gallery is formed, the gallery template is removed, and the second working platform is driven to move, so that the hoisting member of the second working platform moves the gallery template to the next construction section; S5, repeating steps S3 and S4 until the high wall construction is completed, and then the first working platform and the second working platform are removed in turn.

[0019] By adopting the above technical scheme, when the high wall is constructed, the first working platform and the second working platform are used in cooperation, after the first working platform completes the wall construction, it continues to move to the next construction section to construct the wall, at this time, the second working platform constructs the gallery on the formed wall. The first working platform and the second working platform construct the wall and the gallery in turn, which reduces the possibility of affecting the construction efficiency due to the need to disassemble and rebuild the working platform. At the same time, when the first working platform moves, it can drive the wall template to move, and when the second working platform moves, it can drive the gallery template to move, which improves the utilization rate of the wall template and the gallery template, reduces the time for rebuilding the template, and improves the construction efficiency.

[0020] Optionally, in the step S1, the second working platform is close to the support frame of the gallery cantilever side, and the translation mechanism drives the second splicing frame and the third splicing frame to move relative to the first splicing frame away from the wall.

[0021] By adopting the above technical scheme, since the gallery cantilever is arranged at the top end of the wall, the translation mechanism is used to move the second splicing frame and the third splicing frame relative to the first splicing frame, thereby providing construction space for the gallery.

[0022] Optionally, in the step S3, a stabilizing member is arranged between the support frame and the wall template, and the stabilizing member is used to limit the movement of the wall template.

[0023] By adopting the above technical scheme, during the movement of the first working platform and the wall template to the next construction section, the stabilizing member can connect the support frame of the first working platform and the wall template, thereby reducing the possibility of shaking of the wall template during the movement of the hoisting member.

[0024] Optionally, in the step S4, a cantilever bracket is arranged on the wall, and the cantilever bracket is used to support the gallery template.

[0025] By adopting this technical solution, since the corridor is cantilevered from the wall, the cantilever bracket can support the corridor formwork, thereby improving the corridor's stability during construction. Furthermore, after the second and third splicing frames on the support frame on the second workbench are moved relative to the first splicing frame, the upper end of the first splicing frame can serve as a standing platform for construction workers, facilitating the construction of the cantilever bracket.

[0026] In summary, this application includes at least one of the following beneficial technical effects: 1. The coordination of the translation mechanism and the lifting mechanism allows construction workers to adjust the construction position for convenient operation, thereby reducing the need for construction workers to lean forward during construction and thus reducing safety risks during the construction process. At the same time, because the corridor is cantilevered at the top of the wall, the translation mechanism drives the second and third splicing frames to move relative to the first splicing frame, providing construction space for the corridor and improving the applicability of the workbench. 2. Through the cooperation of the first workbench and the second workbench, after the first workbench completes the wall construction, it continues to move to the next construction section to construct the wall. At this time, the second workbench constructs the corridor on the formed wall. The first and second workbench construct the wall and corridor in sequence, reducing the possibility of needing to dismantle and rebuild the workbench, which affects construction efficiency. At the same time, when the first workbench moves, it can drive the wall formwork to move, and when the second workbench moves, it can drive the corridor formwork to move, thereby improving the utilization rate of the wall formwork and corridor formwork, while reducing the time of rebuilding the formwork and improving construction efficiency. 3. By setting up the stabilizing parts, when the first workbench moves and drives the wall formwork to move to the next construction section, the stabilizing parts can connect the support frame of the first workbench with the wall formwork, thereby reducing the possibility of shaking during the movement of the wall formwork driven by the lifting parts. BRIEF DESCRIPTION OF THE DRAWINGS

[0027] Figure 1 It is a schematic diagram of the high wall structure in the background technology of this application; Figure 2 This is a schematic diagram of the overall structure of a high wall construction workbench in Example 1 of the present application; Figure 3 This is a schematic diagram of the overall structure of a first splicing frame of a high wall construction workbench in Example 1 of the present application; Figure 4 This is a schematic structural diagram of a translation mechanism of a high wall construction workbench in Example 1 of the present application; Figure 5 This is a structural schematic diagram of a lifting mechanism for a high-wall construction workbench in Example 1 of the present application; Figure 6 This is a structural diagram of a connection assembly of a high wall construction workbench in Example 1 of the present application; Figure 7 This is a structural schematic diagram of a turning table assembly of a high wall construction workbench in Example 1 of the present application; Figure 8 This is a schematic diagram of the splicing of the support frame of the first workbench of a high wall construction method in Example 2 of the present application; Figure 9 This is a schematic diagram of a wall construction method for a high wall in Example 2 of the present application; Figure 10 This is a schematic diagram of the movement of a wall formwork in a high wall construction method in Example 2 of the present application; Figure 11 This is a schematic diagram of corridor construction of a high wall construction method in Example 2 of the present application; Figure 12 This is a schematic diagram of the dismantling of the support frame of the first workbench of a high wall construction method in Example 2 of the present application.

[0028] In the figure: 1. Support frame; 11. First splicing frame; 12. Second splicing frame; 13. Third splicing frame; 14. Movable adjustment assembly; 141. Translation mechanism; 1411. Translation base; 1412. Translation connecting seat; 1413. Translation driving member; 142. Lifting mechanism; 1421. Lifting base; 1422. Lifting connecting seat; 1423. Lifting driving member; 1a. First support frame; 1b. Second support frame; 2. Connecting assembly; 21. First connecting rod; 211. Mounting hole; 22. Second connecting rod; 23. Stabilizing mechanism; 231. First stable support seat; 232. Second stable support seat; 233. Guide rail; 234. Stable drive member; 235. Slider; 3. Hoisting member; 4. Turning table assembly; 41. Turning platform; 42. Locking block; 43. Pull rope; 5. Cantilever bracket; 6. Walking platform; 7. Stairs; 8. Wall; 81. Wall formwork; 9. Corridor; 91. Corridor formwork; 101. First temporary reinforcement member; 102. Support member; 103. Stabilizing member; 104. Second temporary reinforcement member; 105. Walking wheel; 106. Driving wheel; 107. Support foot; 100. First workbench; 200. Second workbench. DETAILED DESCRIPTION

[0029] The following is combined with Figure 2 -Attached Figure 12 This application is described in further detail.

[0030] Example 1 Example 1 of the present application discloses a high wall construction workbench, such as Figure 2As shown, the workbench comprises a support frame 1, a connecting assembly 2 and a hoisting piece 3. In this embodiment 1, the workbench is provided with two support frames 1, namely a first support frame 1a and a second support frame 1b, which are of the same structure.

[0031] Specifically, as shown in Figure 2 and Figure 3 , the first support frame 1a comprises a first splicing frame 11, a second splicing frame 12, a third splicing frame 13 and a moving adjustment assembly 14. The bottom end of the first splicing frame 11 is provided with a walking wheel 105 and a driving wheel 106, and a driving source is arranged on the driving wheel 106. The workbench can be driven to move through the driving wheel 106.

[0032] As shown in Figure 2 and Figure 4 , the moving adjustment assembly 14 comprises a translation mechanism 141 and a lifting mechanism 142. The translation mechanism 141 comprises a translation base 1411, a translation connecting seat 1412 and a translation driving part 1413. The translation base 1411 is fixedly connected with the first splicing frame 11. The translation connecting seat 1412 is slidingly connected with the translation base 1411. Preferably, the translation driving part 1413 is a linear module. The body of the translation driving part 1413 is fixedly connected with the translation base 1411. The output end of the translation driving part 1413 is connected with the translation connecting seat 1412. The translation driving part 1413 can drive the translation connecting seat 1412 to slide on the translation base 1411. The second splicing frame 12 is fixedly connected with the translation connecting seat 1412, so that the translation base 1411 can drive the second splicing frame 12 to move in the horizontal direction relative to the first splicing frame 11.

[0033] As shown in Figure 2 and Figure 5 , the lifting mechanism 142 comprises a lifting base 1421, a lifting connecting seat 1422 and a lifting driving part 1423. The lifting base 1421 is fixedly connected with the second splicing frame 12. Preferably, the lifting driving part 1423 is a linear module. The body of the lifting driving part 1423 is fixedly connected with the lifting base 1421. The output end of the lifting driving part 1423 is fixedly connected with the lifting connecting seat 1422. The lifting driving part 1423 can drive the lifting connecting seat 1422 to move in the vertical direction. The lifting connecting seat 1422 is fixedly connected with the third splicing frame 13.

[0034] As shown in Figure 2 and Figure 6As shown, the connecting assembly 2 includes a first connecting rod 21, a second connecting rod 22, and a stabilizing mechanism 23. One end of the first connecting rod 21 is fixedly connected to the third splicing frame 13 of the first support frame 1a. The other end of the first connecting rod 21 is slidably connected to the second connecting rod 22. The second connecting rod 22 is fixedly connected to the third splicing frame 13 of the first support frame 1a. At the same time, in this embodiment 1, the first connecting rod 21 is provided with a plurality of mounting holes 211. The mounting holes 211 facilitate the installation of the lifting component 3. Preferably, the lifting component 3 is a hanging hoist.

[0035] In addition, if Figure 6 As shown, the stabilizing mechanism 23 includes a first stabilizing support base 231, a second stabilizing support base 232, a guide rail 233, a stabilizing drive member 234, and a slider 235. The first stabilizing support base 231 is fixedly connected to the third splicing frame 13 of the first support frame 1a, and the second stabilizing support base 232 is fixedly connected to the third splicing frame 13 of the second support frame 1b. One end of the guide rail 233 is slidably connected to the first stabilizing support base 231, and the other end is fixedly connected to the second stabilizing support base 232. The slider 235 is slidably connected to the guide rail 233, and the slider 235 is fixedly connected to the first connecting rod 21. The stabilizing drive member 234 is fixedly connected to the second stabilizing support base 232 of the fuselage, and the output end of the stabilizing drive member 234 is fixedly connected to the slider 235. Preferably, the stabilizing drive member 234 is a pneumatic push rod. When the translation mechanism 141 drives the second splicing frame 12 and the third splicing frame 13 to move, the slider 235 connects the first connecting rod 21 and the guide rail 233, thereby improving the stability of the first connecting rod 21 during its movement relative to the second connecting rod 22. The stabilizing drive member 234 drives the slider 235 to move synchronously with the translation mechanism 141, further improving the stability of the movement of the first connecting rod 21.

[0036] It should be noted that in this embodiment 1, since the corridor 9 is cantilevered and mounted on the wall 8 and close to one side of the first support frame 1a, the translation mechanism 141 and the stabilization mechanism 23 cooperate to move the second splicing frame 12 and the third splicing frame 13 of the first support frame 1a during construction of the corridor 9, so that the workbench can provide construction space for the corridor 9.

[0037] At the same time, during the construction process, the construction workers can adjust the positions of the second splicing frame 12 and the third splicing frame 13 through the translation mechanism 141 and the lifting mechanism 142, so as to adjust the distance between the construction workers and the corridor 9 and the wall 8, so that the construction workers are in a construction position that is convenient for operation, thereby reducing the need for workers to adopt a leaning posture, and thus reducing the safety risks during the construction process.

[0038] In addition, in the process of high wall design, in order to meet the needs of shape and structure, the height of the wall 8 will change. The height of the hoisting part 3 can be raised through the lifting mechanism 142, so that the workbench can adapt to the construction of walls 8 of different heights, reducing the possibility of re-erecting the workbench and improving construction efficiency.

[0039] like Figure 2 and Figure 7 As shown, a flip table assembly 4 is also provided on the support frame 1. The flip table assembly 4 includes a flip platform 41 and a locking block 42. The flip platform 41 is rotatably connected to the support frame 1, and the locking block 42 is fixedly connected to the support frame 1. During the construction process, the flip platform 41 rotates until it abuts against the locking block 42. The locking block 42 can limit the flip platform 41 from continuing to rotate, allowing construction workers to use the flip platform 41 for construction. In addition, a pull rope 43 is provided between the flip platform 41 and the support frame 1. One end of the pull rope 43 is fixedly connected to the flip platform 41, and the other end is fixedly connected to the support frame 1. The pull rope 43 can improve the stability of the connection between the flip platform 41 and the support frame 1.

[0040] like Figure 1 As shown, a walking platform 6 and a staircase 7 are also installed on the support frame 1. The walking platform 6 and the staircase 7 can facilitate the construction workers to move on the workbench, thereby facilitating construction.

[0041] The implementation principle of a high wall construction workbench in Example 1 of the present application is as follows: After the workbench is moved to the designated position, the wall formwork 81 and the corridor formwork 91 are hoisted into place using the hoisting parts 3 before construction is carried out.

[0042] During the construction process, the construction workers drive the second splicing frame 12 and the third splicing frame 13 to move by moving the adjustment assembly 14 according to the construction situation, so that the construction workers are in a suitable construction position, thereby facilitating construction.

[0043] Example 2 Example 2 of the present application provides a high wall construction method, comprising the following steps: S1. Set up two work platforms, namely a first work platform 100 and a second work platform 200. The first work platform 100 is used for constructing the wall 8, and the second work platform 200 is used for constructing the corridor 9. S2. Use the lifting parts 3 of the first workbench 100 to lift the wall formwork 81 into place, and pour concrete to form the wall 8; S3. After the wall 8 is formed, the wall formwork 81 is removed, and the first workbench 100 is driven to move, so that the hoisting member 3 drives the wall formwork 81 to move to the next construction section; S4. After the first workbench 100 moves to the next construction section, repeat step S2; then move the second workbench 200 to the position of the formed wall 8, use the lifting parts 3 of the second workbench 200 to lift the corridor formwork 91 into place, and pour concrete to form the corridor 9; after the corridor 9 is formed, remove the corridor formwork 91, and drive the second workbench 200 to move, so that the lifting parts 3 of the second workbench 200 drive the corridor formwork 91 to move to the next construction section; S5. Repeat steps S3 and S4 until the high wall construction is completed, and dismantle the first workbench 100 and the second workbench 200 in sequence.

[0044] Specifically, in this second embodiment, two workbenches are provided: a first workbench 100 and a second workbench 200. The first workbench 100 and the second workbench 200 have the same structure and are constructed in the same manner. The first workbench 100 is used for constructing the wall 8, and the second workbench 200 is used for constructing the corridor 9. In the second workbench 200, the translation mechanism 141 of the first support frame 1a is utilized to move the second splicing frame 12 and the third splicing frame 13 of the first support frame 1a relative to the first splicing frame 11, depending on the size of the corridor 9, thereby providing construction space for the corridor 9 and facilitating construction of the corridor 9.

[0045] like Figure 8 As shown, when the first workbench 100 is assembled, the first assembly frame 11, the second assembly frame 12, the third assembly frame 13, the translation mechanism 141, and the lifting mechanism 142 are first assembled into the first support frame 1a. The second support frame 1b is assembled in the same manner as the first support frame 1a and is assembled synchronously with the first support frame 1a. During the assembly of the first support frame 1a and the second support frame 1b, a first temporary reinforcement member 101 is installed between the first support frame 1a and the second support frame 1b, and the two ends of the first temporary reinforcement member 101 are fixedly connected to the first support frame 1a and the second support frame 1b.

[0046] like Figure 8 and Figure 9 As shown, after the first and second support frames 1a, 1b are erected, the connecting assembly 2 is installed. The first temporary reinforcement 101 improves the integrity of the first and second support frames 1a, 1b during the erection of the first workbench 100, reducing the possibility of movement and thereby improving safety during construction. After the connecting assembly 2 is installed, the first temporary reinforcement 101 is removed. Simultaneously, the hoisting member 3 is installed on the first connecting rod 21.

[0047] like Figure 9As shown, after the first workbench 100 is set up, when constructing the wall 8, the construction workers are on the first workbench 100, and after hoisting the wall formwork 81 to the designated position with the help of the hoisting parts 3 of the first workbench 100, the support members 102 are installed between the first support frame 1a and the second support frame 1b and the wall formwork 81. The wall formwork 81 can be supported on the first support frame 1a and the second support frame 1b respectively by the support members 102. At the same time, tension bolts are provided on the wall formwork 81, and the tension bolts can fix the formwork on both sides of the wall 8. The cooperation between the support members 102 and the tension bolts reduces the possibility of movement and deformation of the wall formwork 81 during the pouring of concrete. After the installation of the support members 102 and the tension bolts is completed, the construction workers pour and maintain concrete on the first workbench 100.

[0048] like Figure 10 As shown, after the wall 8 is formed, the construction workers remove the support members 102 and the wall formwork 81. At this time, the hoisting member 3 remains in the state of hanging the wall formwork 81. After the wall formwork 81 is removed, the first workbench 100 can be driven by the driving wheel 106 to move to the next construction section for the construction of the wall 8. At the same time, the wall formwork 81 moves with the first workbench 100 driven by the hoisting member 3. In addition, the wall formwork 81 on both sides of the wall 8 are respectively connected to the first support frame 1a and the second support frame 1b with a stabilizing member 103. Preferably, the stabilizing member 103 is a steel rope. The stabilizing member 103 can reduce the possibility of the wall formwork 81 shaking during the movement with the first workbench 100.

[0049] After the first workbench 100 moves to the next construction section, the construction of the wall 8 continues. At the same time, the second workbench 200 moves to the position of the formed wall 8. At this time, the construction workers are on the second workbench 200 and cooperate with the hoisting parts 3 of the second workbench 200 to hoist the corridor formwork 91 into place.

[0050] Among them, such as Figure 11 As shown, when installing the corridor formwork 91, the cantilever bracket 5 is first fixedly connected to the forming wall 8. A jack can be set on the cantilever bracket 5 to support the corridor formwork 91. At the same time, tension bolts are installed on the corridor formwork 91, thereby improving the stability of the corridor formwork 91 during the construction of the corridor 9. When installing the formwork at the bottom of the corridor 9 and the cantilever bracket 5, since the second splicing frame 12 and the third splicing frame 13 in the first support frame 1a of the second workbench 200 are misaligned relative to the first splicing frame 11, the upper end of the first splicing frame 11 can be used as a standing platform for construction workers, thereby facilitating the installation of the formwork at the bottom of the corridor 9 and the cantilever bracket 5.

[0051] After the first workbench 100 completes the construction of the wall 8 of the next construction section, it continues to drive the wall formwork 81 to move to the subsequent construction section. At this time, the second workbench 200 continues to move to the next construction section after completing the construction of the corridor 9. Under the cooperation of the first workbench 100 and the second workbench 200, all construction sections are completed.

[0052] like Figure 12 As shown, after all construction sections are completed, the first workbench 100 and the second workbench 200 are sequentially dismantled. When dismantling the first workbench 100, second temporary reinforcements 104 are connected between the first support frame 1a and the second support frame 1b and the wall 8, respectively. After the first support frame 1a and the second support frame 1b are connected to the wall 8 via the second temporary reinforcements 104, the connection assembly 2 is removed. This reduces the possibility of the integrity between the first support frame 1a and the second support frame 1b being weakened after the connection assembly 2 is removed, thereby improving safety during the dismantling process. The second workbench 200 is dismantled in the same manner as the first workbench.

[0053] In addition, if Figure 1 As shown, in this embodiment 2, a support leg 107 is installed at the bottom of the support frame 1. The support leg 107 can be adjusted in height to abut against the ground, thereby reducing the possibility of the workbench shaking during construction and dismantling.

[0054] The implementation principle of a high wall construction method in Example 2 of the present application is as follows: During high wall construction, the first workbench 100 and the second workbench 200 work together. After the first workbench 100 completes wall 8, it moves to the next construction section to construct wall 8. Meanwhile, the second workbench 200 constructs corridor 9 on the completed wall 8. The first and second workbench 100 and 200 sequentially construct the wall 8 and corridor 9, reducing the need to dismantle and rebuild the workbench, which could affect construction efficiency. Furthermore, the movement of the first workbench 100 drives the movement of the wall formwork 81, and the movement of the second workbench 200 drives the movement of the formwork, increasing formwork utilization, reducing the time required to rebuild the formwork, and improving construction efficiency.

[0055] The above are all preferred embodiments of the present application, and are not intended to limit the scope of protection of the present application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.

Claims

1. A high wall construction workbench, characterized in that: The invention comprises a support frame (1), a connection assembly (2) and a hanging member (3), wherein two support frames (1) are provided, and the support frames (1) comprise a first splicing frame (11), a second splicing frame (12), a third splicing frame (13) and a moving adjustment assembly (14); the moving adjustment assembly (14) comprises a translation mechanism (141) and a lifting mechanism (142); the translation mechanism (141) is provided between the first splicing frame (11) and the second splicing frame (12); the lifting mechanism (142) is provided between the second splicing frame (12) and the third splicing frame (13); the two ends of the connection assembly (2) are respectively provided on the third splicing frames (13) of the two support frames (1); the hanging member (3) is provided on the connection assembly (2), and the hanging member (3) is used for hanging a wall formwork (81) or a corridor formwork (91); The translation mechanism (141) is used to drive the second splicing frame (12) and the third splicing frame (13) to move toward or away from the wall (8) relative to the first splicing frame (11); and the lifting mechanism (142) is used to drive the third splicing frame (13) to move in a vertical direction.

2. A high wall construction workbench according to claim 1, characterized in that: A turning platform assembly (4) is provided on the support frame (1), and the turning platform assembly (4) comprises a turning platform (41) and a locking block (42); the turning platform (41) is rotatably connected to the support frame (1), and the locking block (42) is connected to the support frame (1); the turning platform (41) abuts against the locking block (42) to limit the rotation of the turning platform (41).

3. A high wall construction workbench according to claim 1, characterized in that: The connecting assembly (2) comprises a first connecting rod (21) and a second connecting rod (22), one end of the first connecting rod (21) is connected to one of the support frames (1), and one end of the second connecting rod (22) is connected to another of the support frames (1), the first connecting rod (21) and the second connecting rod (22) are slidably connected, and the hanging member (3) is arranged on the first connecting rod (21).

4. A high wall construction workbench according to claim 3, characterized in that: The connecting assembly (2) further comprises a stabilizing mechanism (23), wherein the stabilizing mechanism (23) comprises a first stabilizing support seat (231), a second stabilizing support seat (232), a guide rail (233), a stabilizing driving member (234), and a sliding block (235); The first stable support seat (231) is arranged on the support frame (1) connected to the first connecting rod (21), and the second stable support seat (232) is arranged on the support frame (1) connected to the second connecting rod (22); one end of the guide rail (233) is slidably connected to the first stable support seat (231), and the other end is connected to the second stable support seat (232); the slider (235) is slidably connected to the guide rail (233), and the slider (235) is connected to the first connecting rod (21); the stable driving member (234) is arranged on the second stable support seat (232), and the stable driving member (234) is used to drive the slider (235) to slide on the guide rail (233).

5. A high wall construction workbench according to claim 1, characterized in that: The translation mechanism (141) comprises a translation base (1411), a translation connecting seat (1412) and a translation driving member (1413); the translation base (1411) is connected to the first splicing frame (11), and the second splicing frame (12) is connected to the translation connecting seat (1412); the translation driving member (1413) is arranged on the translation base (1411), and the translation driving member (1413) is used to drive the translation connecting seat (1412) to slide on the translation base (1411).

6. A high wall construction workbench according to claim 1, characterized in that: The lifting mechanism (142) comprises a lifting base (1421), a lifting connection seat (1422) and a lifting drive member (1423); the lifting base (1421) is connected to the second splicing frame (12), and the third splicing frame (13) is connected to the lifting connection seat (1422); the lifting drive member (1423) is arranged on the lifting base (1421), and the lifting drive member (1423) is used to drive the lifting connection seat (1422) to move in the vertical direction.

7. A high wall construction method using the construction workbench according to any one of claims 1 to 6, characterized in that: The following steps are involved: S1, setting up two work platforms, the two work platforms being a first work platform (100) and a second work platform (200), the first work platform (100) being used for constructing the wall (8), and the second work platform (200) being used for constructing the corridor (9); S2, using the hoisting member (3) of the first workbench (100) to hoist the wall formwork (81) into place, and pouring concrete to form the wall (8); S3, after the wall (8) is formed, the wall formwork (81) is removed, and the first workbench (100) is driven to move, so that the hoisting member (3) drives the wall formwork (81) to move to the next construction section; S4, after the first workbench (100) is moved to the next construction section, step S2 is repeated; the second workbench (200) is then moved to the position of the formed wall (8), the corridor template (91) is hoisted into place using the hoisting member (3) of the second workbench (200), and concrete is poured to form the corridor (9); after the corridor (9) is formed, the corridor template (91) is removed, and the second workbench (200) is driven to move, so that the hoisting member (3) of the second workbench (200) drives the corridor template (91) to move to the next construction section; S5. Repeat steps S3 and S4 until the high wall construction is completed, and dismantle the first workbench (100) and the second workbench (200) in sequence.

8. A high wall construction method according to claim 7, characterized in that: In step S1, the second workbench (200) is located in the support frame (1) close to the cantilevered side of the corridor (9), and the translation mechanism (141) drives the second splicing frame (12) and the third splicing frame (13) to move relative to the first splicing frame (11) in a direction away from the wall (8).

9. A high wall construction method according to claim 7, characterized in that: In step S3, a stabilizing member (103) is provided between the support frame (1) and the wall formwork (81), and the stabilizing member (103) is used to limit the movement of the wall formwork (81).

10. A high wall construction method according to claim 7, characterized in that: In the step S4, a cantilever bracket (5) is provided on the wall (8), and the cantilever bracket (5) is used to support the corridor formwork (91).

Citation Information

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