Wall column aluminum formwork splicing structure

By setting an integrated extrusion plate, reinforcing ribs, and positioning holes on the aluminum formwork, combined with threaded rods, nuts, plug-in plates, and locking blocks, the problems of complex assembly and difficult disassembly of aluminum formwork are solved, and an efficient construction process is achieved.

CN223984245UActive Publication Date: 2026-03-10YANCHENG LIANGGONG CONSTR FORMWORK CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-01
Publication Date
2026-03-10

AI Technical Summary

Technical Problem

Existing aluminum formwork assembly structures suffer from problems such as complex assembly, inaccurate positioning, and difficult disassembly, which affect construction efficiency and increase costs.

Method used

The left and right template shells are equipped with integrated extrusion plates and reinforcing ribs. Positioning holes are set on the overlapping frame, and threaded rods are connected with nuts. Combined with positioning grooves and plug-in plates, the templates can be quickly assembled and disassembled through locking blocks and torsion blocks.

Benefits of technology

It enables simple assembly, accurate positioning, and easy disassembly of aluminum formwork, improving construction efficiency and reducing construction costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of wall column splicing, in particular to a wall column aluminum formwork splicing structure which comprises lap joint frames, the lap joint frames are integrally arranged at the two ends of a left formwork shell and the two ends of a right formwork shell, positioning holes are formed in the end faces of the lap joint frames and are formed in the outer portions of extrusion plates, threaded rods are movably arranged in the positioning holes, and the right ends of the left formwork shell and the right formwork shell are provided with threaded holes. The wall column aluminum formwork splicing structure has the advantages that the lap joint frames are arranged at the two ends of the left formwork shell and the two ends of the right formwork shell, then the extrusion plates are arranged outside the left formwork shell and the right formwork shell, the positioning holes are formed in the outer portions of the lap joint frames and the extrusion plates, and therefore the wall column aluminum formwork splicing structure can be formed. When the threaded rods are inserted into the positioning holes to turn the nuts, the left formwork shell and the right formwork shell can be spliced, and after the left formwork shell and the right formwork shell are spliced, materials are injected between the left formwork shell and the right formwork shell, so that the materials form a wall column between the left formwork shell and the right formwork shell.
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Description

Technical Field

[0001] This utility model relates to the field of wall and column assembly technology, specifically to a wall and column aluminum formwork assembly structure. Background Technology

[0002] In building construction, the construction of walls and columns is a crucial step, and its quality and efficiency directly affect the progress and cost of the entire project. Traditional methods of constructing walls and columns often use wooden or steel formwork, which has many problems during use. For example, wooden formwork is prone to moisture and deformation, has a limited number of reuses, and requires a large amount of supporting structure to maintain its stability during use; while steel formwork, although strong, is heavy, inconvenient to transport and install, and relatively expensive.

[0003] Currently, with the advancement of technology and the development of the construction industry, aluminum formwork is gradually being widely used in the construction industry due to its advantages such as light weight, high strength, corrosion resistance, ease of processing, and high reusability. However, most existing aluminum formwork assembly structures suffer from problems such as complex assembly, inaccurate positioning, and difficult disassembly, which not only affect construction efficiency but also increase construction costs.

[0004] Therefore, this utility model proposes a wall and column aluminum formwork assembly structure that is simple in structure, easy to assemble, accurately positioned and easy to disassemble. Utility Model Content

[0005] The purpose of this utility model is to provide an aluminum formwork assembly structure for walls and columns to solve the problems mentioned in the background art.

[0006] To achieve the above objectives, this utility model provides the following technical solution: a wall column aluminum formwork assembly structure, wherein an integral extrusion plate is provided on the surface of both the left and right formwork shells, and an integral first reinforcing rib and a second reinforcing rib are provided on the outer surface of both the left and right formwork shells, comprising:

[0007] The overlapping frame is integrally set at both ends of the left template shell and the right template shell. The end face of the overlapping frame is provided with positioning holes. The positioning holes are opened on the outside of the extrusion plate. A threaded rod is movably installed inside the positioning hole, and a nut is screwed to the outside of the threaded rod.

[0008] Preferably, an integrated positioning frame is provided above the left template shell and the right template shell, and a positioning groove is provided below the left template shell and the right template shell, and the height of the positioning frame is equal to the depth of the positioning groove.

[0009] Preferably, the end face of the left template shell is provided with an integral plug-in plate, the outside of which is inserted into the plug-in groove, and the plug-in groove is opened on the end face of the right template shell, the depth of which is equal to the thickness of the plug-in plate.

[0010] Preferably, the insertion slot and the positioning slot are identically arranged, and the insertion slot is arranged in two sets, with the two sets of insertion slots symmetrically arranged along the central axis of the right template shell.

[0011] Preferably, the inner circle size of the positioning hole is equal to the end face size of the threaded rod, the threaded rod has a notch inside, a locking block is fixed in the notch, the surface of the locking block is fitted inside the notch, and the surface of the torsion block is movably set inside the notch.

[0012] Preferably, the locking block has a square cross-section, and its surface is movably disposed within the torsion block.

[0013] Compared with the prior art, the beneficial effects of this utility model are as follows: When the external part of the positioning frame is inserted into the positioning groove, the left template shell and the right template shell can be spliced ​​together, and the height of the left template shell and the right template shell can be spliced ​​together. When the insertion plate is inserted into the insertion groove, the left template shell and the right template shell are spliced ​​together left and right. After the filling material between the left template shell and the right template shell solidifies, the left template shell and the right template shell can be disassembled and separated. By setting the locking block in the notch and moving the surface of the locking block in the torsion block, the position of the torsion block can be adjusted in the notch to turn the threaded rod, eliminating the need for workers to tighten the nut by turning the threaded rod with a wrench, which facilitates the splicing and installation between the left template shell and the right template shell. Attached Figure Description

[0014] Figure 1 This is a top view of the connection between the left and right template shells;

[0015] Figure 2 A bottom view of the connection between the left and right template shells;

[0016] Figure 3 This is a top-down view of the left and right template shells after an explosion.

[0017] Figure 4 This is a bottom view diagram of the explosion of the left and right template shells;

[0018] Figure 5 This is a cross-sectional view of the connection between the nut and the threaded rod.

[0019] In the figure: left template shell 1, right template shell 2, overlapping frame 3, positioning hole 4, positioning frame 5, plug plate 6, plug groove 7, first reinforcing rib 8, second reinforcing rib 9, extrusion plate 10, positioning groove 11, nut 12, threaded rod 13, notch 14, twist block 15, locking block 16. Detailed Implementation

[0020] To make the objectives, technical solutions, and advantages of this utility model clear and complete, the embodiments of this utility model will be further described in detail below with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are only some, not all, embodiments of this utility model, and are merely used to explain the embodiments of this utility model. They are not intended to limit the embodiments of this utility model. All other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.

[0021] Example 1, please refer to Figures 1-5 This utility model provides three technical solutions: a wall column aluminum formwork assembly structure, wherein an integral extrusion plate 10 is provided on the surface of both the left formwork shell 1 and the right formwork shell 2, and an integral first reinforcing rib 8 and a second reinforcing rib 9 are provided on the outer surface of the left formwork shell 1 and the right formwork shell 2, characterized in that it includes:

[0022] The overlapping frame 3 is integrally set at both ends of the left template shell 1 and the right template shell 2. The end face of the overlapping frame 3 is provided with a positioning hole 4. The positioning hole 4 is opened on the outside of the extrusion plate 10. A threaded rod 13 is movably arranged inside the positioning hole 4. A nut 12 is screwed to the outside of the threaded rod 13.

[0023] By setting overlapping frames 3 at both ends of the left template shell 1 and the right template shell 2, and then setting extrusion plates 10 on the outside of the left template shell 1 and the right template shell 2, and opening positioning holes 4 on the outside of the overlapping frames 3 and the extrusion plates 10, when the threaded rod 13 is inserted into the knob nut 12 in the positioning hole 4, the left template shell 1 and the right template shell 2 can be spliced ​​together. After the left template shell 1 and the right template shell 2 are spliced ​​together, material is added between the two, so the material forms a wall column between the left template shell 1 and the right template shell 2.

[0024] Example 2, see attached document Figures 1 to 5 Based on Embodiment 1, in order to facilitate the disassembly and separation between the left template shell 1 and the right template shell 2, an integrated positioning frame 5 is provided on the upper part of the left template shell 1 and the right template shell 2, and a positioning groove 11 is provided on the lower part of the left template shell 1 and the right template shell 2. The height of the positioning frame 5 is equal to the depth of the positioning groove 11. An integrated plug-in plate 6 is provided on the end face of the left template shell 1. The outside of the plug-in plate 6 is inserted into the plug-in groove 7. The plug-in groove 7 is opened on the end face of the right template shell 2, and the depth of the plug-in groove 7 is equal to the thickness of the plug-in plate 6.

[0025] By setting an integrated positioning frame 5 above the left template shell 1 and the right template shell 2, and then opening a positioning groove 11 below the left template shell 1 and the right template shell 2, when the outside of the positioning frame 5 is inserted into the positioning groove 11, the left template shell 1 and the right template shell 2 can be spliced ​​together, and the height of the left template shell 1 and the right template shell 2 can be spliced ​​together. At the same time, material leakage caused by material filling between the left template shell 1 and the right template shell 2 is avoided. By setting an integrated plug-in plate 6 on the end face of the left template shell 1 and opening a plug-in groove 7 on the end face of the right template shell 2, when the plug-in plate 6 is inserted into the plug-in groove 7, the left template shell 1 and the right template shell 2 are spliced ​​together left and right. After the material filling between the left template shell 1 and the right template shell 2 solidifies, the left template shell 1 and the right template shell 2 can be disassembled and separated.

[0026] Example 3, refer to Appendix Figures 1 to 5 Based on Embodiment 2, in order to facilitate the splicing and installation between the left template shell 1 and the right template shell 2, the inner circle size of the positioning hole 4 is equal to the end face size of the threaded rod 13. The threaded rod 13 has a notch 14 inside, and a locking block 16 is fixed inside the notch 14. The surface of the locking block 16 is fitted inside the notch 14, and the surface of the torsion block 15 is movably set inside the notch 14.

[0027] By setting the locking block 16 inside the notch 14 and moving the surface of the locking block 16 inside the torsion block 15, the position of the torsion block 15 can be adjusted inside the notch 14 to turn the threaded rod 13. This eliminates the need for workers to tighten the nut 12 by turning the threaded rod 13 with a wrench, making it easier for workers to install the left template shell 1 and the right template shell 2 together.

[0028] In actual use, an integrated positioning frame 5 is set above the left template shell 1 and the right template shell 2, and a positioning groove 11 is opened below the left template shell 1 and the right template shell 2. When the outside of the positioning frame 5 is inserted into the positioning groove 11, the left template shell 1 and the right template shell 2 can be spliced ​​together, and the height of the left template shell 1 and the right template shell 2 can be spliced ​​together. At the same time, material leakage caused by material filling between the left template shell 1 and the right template shell 2 is avoided. An integrated insertion plate 6 is set on the end face of the left template shell 1, and an insertion groove 7 is opened on the end face of the right template shell 2. When the insertion plate 6 is inserted into the right template shell 2, the material can be inserted into the right template shell 2. When inserted into the insertion slot 7, the left template shell 1 and the right template shell 2 are spliced ​​together. After the filling material between the left template shell 1 and the right template shell 2 solidifies, the left template shell 1 and the right template shell 2 can be disassembled and separated. By setting the locking block 16 in the notch 14 and moving the surface of the locking block 16 in the torsion block 15, the position of the torsion block 15 can be adjusted in the notch 14 to turn the threaded rod 13. There is no need for the operator to tighten the nut 12 by turning the threaded rod 13 with a wrench, which makes it convenient for the operator to splice and install the left template shell 1 and the right template shell 2.

[0029] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A wall column aluminum formwork assembly structure, the surface of a left formwork shell (1) and a right formwork shell (2) are provided with an integrated extruded plate (10), the outer surface of the left formwork shell (1) and the right formwork shell (2) are provided with an integrated first reinforcing rib (8) and a second reinforcing rib (9), characterized in that, Include: The lap frame (3) is integrally arranged at both ends of the left template shell (1) and the right template shell (2), the end face of the lap frame (3) is provided with a positioning hole (4), the positioning hole (4) is arranged outside the extrusion plate (10), the inside of the positioning hole (4) movably provided with a threaded rod (13), the outside of the threaded rod (13) is screwed with a nut (12).

2. The wall column aluminum formwork assembly structure according to claim 1, characterized in that: The upper part of the left template shell (1) and the right template shell (2) is provided with an integral positioning frame (5), the lower part of the left template shell (1) and the right template shell (2) is provided with a positioning groove (11), and the height of the positioning frame (5) is equal to the depth of the positioning groove (11).

3. The wall column aluminum formwork assembly structure according to claim 1, characterized in that: The end face of the left template shell (1) is provided with an integral plug-in plate (6), the outside of the plug-in plate (6) is inserted into the plug-in groove (7), the plug-in groove (7) is arranged in the end face of the right template shell (2), and the depth of the plug-in groove (7) is equal to the thickness of the plug-in plate (6).

4. The wall column aluminum formwork assembly structure according to claim 3, characterized in that: The plug-in groove (7) and the positioning groove (11) are arranged in the same way, the plug-in groove (7) is arranged in two groups, and the two groups of plug-in grooves (7) are symmetrically arranged along the center axis of the right template shell (2).

5. The wall column aluminum formwork assembly structure according to claim 1, characterized in that: The inner ring size of the positioning hole (4) is equal to the end face size of the threaded rod (13), the inside of the threaded rod (13) is provided with a notch (14), the notch (14) is fixedly provided with a locking block (16), the surface of the locking block (16) is sleeved in the notch (14), and the surface of the torsion block (15) is movably arranged in the notch (14).

6. The wall column aluminum formwork assembly structure according to claim 5, characterized in that: The cross section of the locking block (16) is arranged in the shape of a square mouth, and the surface of the locking block (16) is movably arranged in the torsion block (15).