An ultra-high curved concrete wall embedded part fixing device

CN118241887BActive Publication Date: 2026-08-18CHINA FIRST METALLURGICAL GROUP
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Patent Information

Application Number
CN202410506994.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-04-25
Publication Date
2026-08-18
Estimated Expiration
2044-04-25

AI Technical Summary

Technical Problem

[0005]为了改善弧形墙面上的埋件容易安装倾斜影响后续结构或设备安装的问题,本申请提供一种超高弧形混凝土墙埋件固定装置

Benefits of technology

[0029] 1. By changing the position of the movable plate on the lifting plate, the distance between the two sets of directional rods can be changed. Furthermore, by rotating and locking the directional rods on the lifting and movable plates, the angles of the two side plates corresponding to the two sets of directional rods can be adjusted to be perpendicular to the planned line of the inner wall of the curved concrete wall and fixed. At this time, the embedded part is installed on the outside of the side plate. Since both side plates are perpendicular to the planned line of the inner wall of the curved concrete wall, after the curved concrete wall is completed, the embedded part will remain parallel to the side wall of the opening of the curved concrete wall, which facilitates the subsequent installation of doors, windows, etc.

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Abstract

The application provides a kind of superhigh arc concrete wall embedded part fixing device, it relates to embedded part installation field, it includes positioning frame and support mechanism, positioning frame includes: side plate;Connecting plate;Embedded part hole is equipped with several and is distributed on side plate;Mounting plate is fixedly connected on the side of side plate close to connecting plate;Support mechanism includes: lifting plate;Moving plate is slidably arranged on lifting plate;Lifting plate and moving plate are both hinged with directional rod, and the end of directional rod close to positioning frame is fixedly connected on side plate;And locking assembly is used to lock the rotation angle of directional rod on moving plate or lifting plate.The application can make the angle of two side plates corresponding to two groups of directional rods adjusted to be perpendicular to the planning line of the inner wall of arc concrete wall surface and fixed by the rotation and locking of directional rod on lifting plate and moving plate, so that the embedded part can be kept parallel with the opening side wall of arc concrete wall after being installed to the outside of side plate, which facilitates the subsequent installation of doors and windows.
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Description

Technical Field

[0001] This application relates to the field of embedded part installation technology, and in particular to a fixing device for embedded parts in ultra-high arc-shaped concrete walls. Background Technology

[0002] During the civil engineering process, in order to facilitate the installation of equipment later, the base of some equipment, anchor bolts, or auxiliary steel plate structures are pre-embedded when the foundation is made. This way, after the foundation construction is completed, the equipment can be easily fixed to the pre-embedded plates or pre-embedded parts.

[0003] However, existing buildings are often designed with walls that have large curvatures, and doors and windows are usually opened on these walls. The embedded parts on the side walls at these openings are easy to install at an angle, which makes it difficult to install doors and windows later.

[0004] Therefore, it is necessary to provide an ultra-high arc-shaped concrete wall embedded fixing device to solve the above problems. Summary of the Invention

[0005] To address the issue that embedded parts on curved walls are prone to tilting during installation, which can affect the installation of subsequent structures or equipment, this application provides a fixing device for embedded parts in ultra-high curved concrete walls.

[0006] The technical solution for the ultra-high arc-shaped concrete wall embedded component fixing device provided in this application is as follows:

[0007] A fixing device for embedded parts in an ultra-high arc-shaped concrete wall includes a positioning frame and a support mechanism, wherein the positioning frame includes:

[0008] The side panels are arranged in two parallel and vertical configurations.

[0009] Two connecting plates are provided and are rotatably mounted on both ends of the two side plates respectively;

[0010] Embedded holes are provided in a number and distributed on the side plate;

[0011] Mounting plate, fixed to the side of the side plate near the connecting plate;

[0012] The supporting structure includes:

[0013] lifting board;

[0014] A movable plate is slidably mounted on the lifting plate; both the lifting plate and the movable plate are hinged with directional rods, one end of the directional rod near the positioning frame being fixed to the side plate; and

[0015] A locking component is used to lock the rotation angle of the directional rod on the moving plate or the lifting plate.

[0016] Furthermore, a directional plate is bolted to the mounting plate, and at least two directional rods are provided between the lifting plate and the moving plate and the corresponding directional plate, with one end of the directional rod being fixedly connected to the directional plate.

[0017] Furthermore, the side of the directional rod is coplanar with the side of the side plate that is opposite to the connecting plate.

[0018] Furthermore, both the lifting plate and the moving plate are fixedly connected to a fixed shaft, and the directional rod is hinged to the lifting plate or the moving plate through the fixed shaft;

[0019] The locking assembly includes a directional screw fixed to the lifting plate or the moving plate. The directional screw is coaxial with the fixed shaft. A directional nut is threaded onto the directional screw. A clamping plate is fixed to the side of the directional nut near the directional screw.

[0020] Furthermore, the mounting plate has a plurality of mounting holes, and the orientation plate is fixed with a plurality of fixing screws, the fixing screws passing through the mounting holes and being threaded with fixing nuts.

[0021] Furthermore, a second guide rail is fixedly connected to the lifting plate along its length direction, and a second slider is fixedly connected to the moving plate and slidably connected to the second guide rail;

[0022] A second moving shaft parallel to the second guide rail is rotatably mounted on the lifting plate, and a second moving block is fixedly connected to the moving plate, with the second moving shaft threaded through the second moving block.

[0023] Furthermore, the support mechanism also includes a vertically arranged support frame, on which a first guide rail is fixedly connected along its length, and on the lifting plate a first slider is fixedly connected and slidably arranged on the first guide rail.

[0024] A first movable shaft parallel to the first guide rail is rotatably mounted on the support frame, and a first movable block is fixedly connected to the lifting plate, with the first movable shaft threaded through the first movable block.

[0025] Furthermore, the bottom of the support frame is equipped with several casters.

[0026] Furthermore, the bottom of the support frame is equipped with anchor bolts.

[0027] Furthermore, both ends of the side plate are fixed with rotating lugs perpendicular to its length direction. The rotating lugs are located on the side of the side plate near the connecting plate, and the end of the connecting plate is rotatably mounted on the rotating lugs.

[0028] In summary, this application includes at least one of the following beneficial technical effects:

[0029] 1. By changing the position of the movable plate on the lifting plate, the distance between the two sets of directional rods can be changed. Furthermore, by rotating and locking the directional rods on the lifting and movable plates, the angles of the two side plates corresponding to the two sets of directional rods can be adjusted to be perpendicular to the planned line of the inner wall of the curved concrete wall and fixed. At this time, the embedded part is installed on the outside of the side plate. Since both side plates are perpendicular to the planned line of the inner wall of the curved concrete wall, after the curved concrete wall is completed, the embedded part will remain parallel to the side wall of the opening of the curved concrete wall, which facilitates the subsequent installation of doors, windows, etc.

[0030] 2. By assembling the positioning frame to the required dimensions and moving the movable plate, the positioning frame and support device can adapt to concrete walls of different curvatures and openings of different sizes on the concrete walls. Attached Figure Description

[0031] To more clearly illustrate the technical solutions in this invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this invention. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.

[0032] Figure 1 This is a schematic diagram of the overall structure of an embodiment of this application;

[0033] Figure 2 This is a schematic diagram of the positioning frame in an embodiment of this application;

[0034] Figure 3 This is an exploded view of the support device according to an embodiment of this application.

[0035] Figure label:

[0036] 1. Positioning frame; 11. Side plate; 111. Rotary lug; 12. Connecting plate; 13. Embedded hole; 14. Mounting plate; 15. Mounting hole;

[0037] 2. Supporting structures;

[0038] 21. Support frame; 211. Casters; 212. First guide rail; 213. First moving shaft; 214. Anchor bolts;

[0039] 22. Lifting plate; 221. First slider; 222. First moving block; 223. Second guide rail; 224. Second moving shaft;

[0040] 23. Moving plate; 231. Second slider; 232. Second moving block;

[0041] 24. Fixed shaft; 241. Orienting rod; 242. Orienting plate; 243. Fixed screw; 244. Fixed nut; 245. Orienting screw; 246. Orienting nut; 247. Clamping plate. Detailed Implementation

[0042] To make the objectives, technical solutions, and advantages of this invention clearer, the technical solutions of this invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this invention. All other embodiments obtained by those skilled in the art based on the embodiments of this invention without creative effort are within the scope of protection of this invention.

[0043] Reference Figure 1 and Figure 2 This application discloses a fixing device for embedded parts in an ultra-high arc-shaped concrete wall, which includes a positioning frame 1 and a support mechanism 2. The support mechanism 2 is used to realize the movement of the positioning frame 1 in the vertical and horizontal directions.

[0044] The positioning frame 1 includes two side plates 11, with a connecting plate 12 rotatably mounted between both ends of each side plate 11. Specifically, each end of the side plate 11 has a rotating lug 111 perpendicular to its length direction fixedly connected to it. The rotating lug 111 is located on the side of the side plate 11 near the connecting plate 12, and the end of the connecting plate 12 is rotatably mounted on the rotating lug 111. The side plates 11 and the connecting plate 12 have multiple sizes. Several embedded holes 31 are distributed between the two ends of the side plate 11. These embedded holes 31 can be arranged in a straight line or in a matrix. A mounting plate 14 is fixed to one side of the lower inner side of the side plate 11, and several mounting holes 15 are distributed on the mounting plate 14.

[0045] Reference Figure 1 and Figure 3 The support mechanism 2 includes a horizontally arranged lifting plate 22, which is elongated. A movable plate 23 is horizontally slidably mounted on the lifting plate 22. Both the lifting plate 22 and the movable plate 23 are hinged with guide rods 241. One end of each guide rod 241 near the positioning frame 1 is fixed to the side plate 11. Specifically, one set of guide rods 241 is fixed and can only rotate on the lifting plate 22, while the other set is movable and can rotate on the movable plate 23 or move with it. The support mechanism 2 also includes a locking assembly for locking the rotation angle of the guide rods 241 on the movable plate 23 or the lifting plate 22.

[0046] Specifically, a guide plate 242 is bolted to the mounting plate 14. At least two guide rods 241 are provided between the lifting plate 22 and the moving plate 23 and the corresponding guide plate 242. One end of the guide rod 241 is fixed to the guide plate 242, which can increase the stability of the positioning frame 1.

[0047] Both the lifting plate 22 and the moving plate 23 are fixedly connected to a vertically arranged fixed shaft 24. The directional rod 241 is hinged to the lifting plate 22 or the moving plate 23 through the fixed shaft 24. The locking assembly includes a directional screw 245 fixedly connected to the lifting plate 22 or the moving plate 23. The directional screw 245 is coaxial with the fixed shaft 24. The directional rod 241 passes through the directional screw 245 and swings on the lifting plate 22 or the moving plate 23 with the axis of the directional screw 245 as the axis of rotation. A directional nut 246 is threadedly connected to the directional screw 245. A clamping plate 247 is fixedly connected to the side of the directional nut 246 near the directional rod 241.

[0048] With this setup, when preparing to install the embedded parts, first select the appropriate size side plate 11 and connecting plate 12 according to the required dimensions, so that after the side plate 11 and connecting plate 12 are installed, the positioning frame 1 can adapt to the opening size on the curved concrete wall. Due to the rotatable connection between the side plate 11 and connecting plate 12, the side plate 11 can rotate on both sides of the positioning frame 1.

[0049] Then, the support device 2 is moved to the planned construction position of the curved concrete wall. After the positioning frame 1 is assembled, it is lifted to one side of the support device 2. Then, the guide rods 241 on the lifting plate 22 and the moving plate 23 are rotated so that the two guide plates 242 respectively fit against the mounting plate 14 on one side and are bolted together. After the positioning frame 1 is installed on the support device 2, the workers first adjust the guide rods 241 on the lifting plate 22. By rotating the guide rods 241, the angle of the side plate 11 can be adjusted so that the side plate 11 is perpendicular to the planned line of the inner wall of the curved concrete wall. Then, the guide rods 241 are grasped and the guide nuts 246 on that side are tightened so that the guide nuts 246 drive the clamping plate 247 to press and fix the guide rods 241 on that side, thereby fixing the angle of the side plate 11 on that side.

[0050] After the angle of the side plate 11 corresponding to the directional rod 241 on the lifting plate 22 is fixed, the position of the moving plate 23 on the lifting plate 22 changes the distance between the fixed shaft 24 on the lifting plate 22 and the fixed shaft 24 on the moving plate 23. During this process, the moving plate 23 will drive the other side plate 11 to rotate, that is, by moving the moving plate 23, the angle of the other side plate 11 can be adjusted. After adjusting the angle of this side plate 11 to be perpendicular to the planning line of the inner wall of the curved concrete wall, the directional rod 241 is grasped again, and the directional nut 246 on this side is tightened, so that the directional nut 246 drives the clamping plate 247 to squeeze and fix the directional rod 241 on this side, thereby fixing the angle of this side plate 11. Since the directional rods 24 corresponding to both side plates 11 are fixed, both side plates 11 will remain perpendicular to the planning line of the inner wall of the curved concrete wall. At this point, the embedded part can be removed and installed on the outside of the side plate 11. The multiple embedded part holes 13 on the side plate 11 can facilitate the fixing of different embedded parts to the side plate 11.

[0051] Thus, once the position of positioning frame 1 is adjusted, the positioning and support of the embedded part are completed. Since both side plates 11 are perpendicular to the planned line of the inner wall of the curved concrete wall, after the curved concrete wall is completed, the embedded part will remain parallel to the side wall of the opening of the curved concrete wall, which facilitates the subsequent installation of doors, windows, etc.

[0052] Furthermore, by assembling the positioning frame 1 to the required dimensions and by moving the movable plate 23, the positioning frame 1 and the support device 2 can adapt to concrete walls of different curvatures and openings of different sizes on the concrete walls. Therefore, the positioning frame 1 and the support device 2 help position and support the embedded parts, avoiding problems such as the embedded parts tilting and affecting the subsequent installation of doors and windows.

[0053] Additionally, refer to Figure 1 , Figure 2 and Figure 3 The mounting plate 14 has several mounting holes 15, and the directional plate 242 is fixed with several fixing screws 243. The fixing screws 243 pass through the mounting holes 15 and are threaded with fixing nuts 244. The side of the directional rod 241 is coplanar with the side of the side plate 11 that is away from the connecting plate 12, specifically, the thickness of the directional rod is the same as the thickness of the side plate 11. In this way, on the one hand, it can ensure the stable installation of the positioning plate and positioning rod with the side plate 11. On the other hand, since the thickness of the directional plate 242 is the same as the thickness of the side plate 11, one side of the directional rod 241 is coplanar with the outer side of the side plate 11, which makes it convenient for the staff to judge and adjust the angle of the side plate 11.

[0054] Furthermore, referring to Figure 1 and Figure 3 To achieve the adjustment effect of the support mechanism 2 on the positioning frame 1, a second guide rail 223 is fixedly connected to the lifting plate 22 along its length direction, and a second slider 231 is fixedly connected to the moving plate 23 and slidably connected to the second guide rail 223; a second moving shaft 224 parallel to the second guide rail 223 is rotatably mounted on the lifting plate 22, and a second moving block 232 is fixedly connected to the moving plate 23, with the second moving shaft 224 threaded through the second moving block 232. Specifically, there are two second guide rails 223 distributed along the width direction of the lifting plate 22, and the second moving shaft 224 is located between the two second guide rails 223 to improve the stability of the moving plate 23 sliding on the lifting plate 22.

[0055] The support mechanism 2 also includes a vertically arranged support frame 21, on which a first guide rail 212 is fixedly connected along its length. A first slider 221 is fixedly connected to the lifting plate 22 and slidably mounted on the first guide rail 212. A first moving shaft 213 parallel to the first guide rail 212 is rotatably mounted on the support frame 21, and a first moving block 222 is fixedly connected to the lifting plate 22. The first moving shaft 213 is threaded through the first moving block 222. Similarly, two sets of first guide rails 212 are also provided to ensure the stability of the lifting plate 22 in raising and lowering on the support frame 21. Furthermore, a scale can be marked between the upper and lower ends on one side of the support frame 21 to indicate the vertical height of the lifting plate 22.

[0056] The first moving shaft 213 and the second moving shaft 224 can be rotated by a handwheel or by a motor.

[0057] Thus, rotating the first moving shaft 213 drives the lifting plate 22 to rise and fall on the support frame 21, thereby changing the vertical height of the positioning frame 1. The first moving shaft 213 and the first moving block 222 are threaded together, and the first moving shaft 213 has a self-locking property after rotation, ensuring the stability of the moving plate 23 after position adjustment. Similarly, rotating the second moving shaft 224 drives the moving plate 23 to slide on the lifting plate 22, changing the distance between the fixed and movable guide rods 241, thereby changing the flip angle of the two side plates 11 and the overall placement angle of the positioning frame 1 to accommodate the fixing of embedded parts on walls with different curvatures.

[0058] At the same time, refer to Figure 1 and Figure 3 The bottom of the support frame 21 is equipped with several casters 211 and anchor bolts 214, which facilitates the movement of the support frame 21 and can also be fixed with the anchor bolts 214.

[0059] The implementation principle of the ultra-high arc-shaped concrete wall embedded component fixing device in this application embodiment is as follows:

[0060] When preparing to install the embedded parts, first select and assemble the appropriate size side plate 11 and connecting plate 12 according to the required dimensions. Then, move the support device 2 to the planned construction position of the curved concrete wall. Next, adjust the directional rod 241 on the lifting plate 22 so that the corresponding side plate 11 is perpendicular to the planned line of the inner wall of the curved concrete wall. Then, tighten the directional nut 246 on that side to fix the angle of the side plate 11. Then, move the moving plate 23 to change the distance between the fixed shaft 24 on the lifting plate 22 and the fixed shaft 24 on the moving plate 23. During this process, the moving plate 23 will drive the other side plate 11 to rotate until the angle of the side plate 11 is adjusted to be perpendicular to the planned line of the inner wall of the curved concrete wall and fixed. At this time, install the embedded parts on the outside of the side plate 11. Since both side plates 11 are perpendicular to the planned line of the inner wall of the curved concrete wall, after the curved concrete wall is completed, the embedded parts will remain parallel to the side wall of the opening of the curved concrete wall, which is convenient for the subsequent installation of doors, windows, etc.

[0061] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, and not to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. A fixing device for embedded parts in an ultra-high arc-shaped concrete wall, characterized in that, It includes a positioning frame and a support mechanism, wherein the positioning frame includes: The side panels are arranged in two parallel and vertical configurations. Two connecting plates are provided and are rotatably mounted on both ends of the two side plates respectively; Embedded holes are provided in a number and distributed on the side plate; Mounting plate, fixed to the side of the side plate near the connecting plate; The supporting structure includes: lifting board; A movable plate is slidably mounted on the lifting plate; both the lifting plate and the movable plate are hinged with directional rods, one end of the directional rod near the positioning frame being fixed to the side plate; and A locking component is used to lock the rotation angle of the directional rod on the moving plate or the lifting plate.

2. The ultra-high arc-shaped concrete wall embedded part fixing device according to claim 1, characterized in that, A directional plate is bolted to the mounting plate. At least two directional rods are provided between the lifting plate and the moving plate and the corresponding directional plate. One end of each directional rod is fixed to the directional plate.

3. The ultra-high arc-shaped concrete wall embedded part fixing device according to claim 1, characterized in that, The side of the directional rod is coplanar with the side of the side plate that is away from the connecting plate.

4. The ultra-high arc-shaped concrete wall embedded part fixing device according to claim 1, characterized in that, Both the lifting plate and the moving plate are fixedly connected to a fixed shaft, and the directional rod is hinged to the lifting plate or the moving plate through the fixed shaft; The locking assembly includes a directional screw fixed to the lifting plate or the moving plate. The directional screw is coaxial with the fixed shaft. A directional nut is threaded onto the directional screw. A clamping plate is fixed to the side of the directional nut near the directional screw.

5. A fixing device for embedded parts in an ultra-high arc-shaped concrete wall according to claim 2, characterized in that, The mounting plate has a number of mounting holes, and the orientation plate is fixed with a number of fixing screws. The fixing screws pass through the mounting holes and are threaded with fixing nuts.

6. A fixing device for embedded parts in an ultra-high arc-shaped concrete wall according to any one of claims 1-5, characterized in that, The lifting plate is fixedly connected to a second guide rail arranged along its length direction, and the moving plate is fixedly connected to a second slider that is slidably connected to the second guide rail; A second moving shaft parallel to the second guide rail is rotatably mounted on the lifting plate, and a second moving block is fixedly connected to the moving plate, with the second moving shaft threaded through the second moving block.

7. A fixing device for embedded parts in an ultra-high arc-shaped concrete wall according to claim 6, characterized in that, The support mechanism also includes a vertically arranged support frame, on which a first guide rail is fixedly connected along its length, and on the lifting plate a first slider is fixedly connected and slidably arranged on the first guide rail. A first movable shaft parallel to the first guide rail is rotatably mounted on the support frame, and a first movable block is fixedly connected to the lifting plate, with the first movable shaft threaded through the first movable block.

8. A fixing device for embedded parts in an ultra-high arc-shaped concrete wall according to claim 7, characterized in that, The bottom of the support frame is equipped with several casters.

9. A fixing device for embedded parts in an ultra-high arc-shaped concrete wall according to claim 7, characterized in that, Anchor bolts are installed at the bottom of the support frame.

10. A fixing device for embedded parts in an ultra-high arc-shaped concrete wall according to claim 1, characterized in that, Both ends of the side plate are fixed with rotating lugs perpendicular to its length direction. The rotating lugs are located on the side of the side plate near the connecting plate, and the end of the connecting plate is rotatably mounted on the rotating lugs.

Citation Information

Patent Citations

  • Fabricated building wall door and window reserved opening supporting mold

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  • Adjustable supporting device for mounting gate groove embedded part

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