Construction structure for blocking aluminum formwork wall root
Through the design of threaded rods and connecting rods, the rapid removal and sealing of aluminum mold walls and rubber bottom corners is achieved, solving the problem of cumbersome demolition and slurry leakage in traditional construction, and improving construction efficiency and concrete forming quality.
Patent Information
- Application Number
- CN202510635548.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-16
- Publication Date
- 2025-07-04
AI Technical Summary
During the construction of traditional aluminum mold wall sealing, the removal of the rubber bottom corner and the aluminum mold wall is cumbersome, resulting in low work efficiency for construction personnel and easy leakage of slurry from the connection.
The design of threaded rod driving mobile sleeve and connecting rod lifting pressure-up plate is adopted to quickly remove the connection between the aluminum mold wall and the rubber bottom corner, and combine the structure of the sealing ring and push block to ensure sealing and rapid removal.
It improves the work efficiency of construction workers, prevents concrete from leaking slurry, and improves the molding quality of concrete walls and the sealing of connections.
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Figure CN120250904A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of aluminum formwork wall root sealing, and specifically provides a construction structure for aluminum formwork wall root sealing. Background Technique
[0002] The construction structure for aluminum formwork wall root sealing is a sealing and reinforcement system used at the junction of building walls and floors (wall root part), mainly used to solve the problems of slurry leakage, offset and waterproofing during concrete pouring. Its core is to achieve high-precision and reusable construction effects through the combined design of an aluminum alloy formwork system and a supporting sealing component;
[0003] Currently, during the construction of aluminum formwork walls, concrete pouring will cause slurry leakage from the aluminum formwork wall roots. Rubber bottom corners are used to seal the aluminum formwork wall roots. However, for traditional aluminum formwork walls and rubber bottom corners, fixing bolts need to be knocked one by one to be removed, resulting in cumbersome removal work for construction workers and reducing the work efficiency of construction workers. Summary of the Invention
[0004] The purpose of the present invention is to provide a construction structure for aluminum formwork wall root sealing. By driving the first moving sleeves on both sides away from each other with a threaded rod, the connecting rod lifts the pressing plate, and the pressing plate no longer presses on the connection between the aluminum formwork wall and the rubber bottom corner. The aluminum formwork wall and the rubber bottom corner can be quickly removed. For traditional aluminum formwork walls and rubber bottom corners, fixing bolts need to be knocked one by one to be removed, which facilitates the construction workers to quickly remove the aluminum formwork wall and the rubber bottom corner and improves the work efficiency of construction workers.
[0005] To achieve the above purpose, the present invention provides the following technical solution: A construction structure for aluminum formwork wall root sealing includes a connection component located on the aluminum formwork wall. The connection component includes a threaded rod. First moving sleeves are movably installed on both sides of the threaded rod. Two groups of the first moving sleeves are both connected with connecting rods. The other ends of the connecting rods are connected with a pressing plate. Four pressing rods are installed at the lower end of the pressing plate. Rubber bottom corners are installed at one ends of the four pressing rods. One side of the rubber bottom corner is installed at the lower end of the aluminum formwork wall. Four push rods are installed inside the rubber bottom corner. One end of the push rod is fixedly connected with a push block. Grooves are provided on all four pressing rods. A pipeline is provided on one side of the groove. A sealing ring is communicated with one side of the pipeline;
[0006] A detection component is installed at one end of the connection component. The detection component includes two second moving sleeves. The two second moving sleeves are movably installed on both sides of the threaded rod. A moving rod is fixedly connected to one side of the two second moving sleeves. A detection frame is fixedly connected to one end of the second moving sleeve. A first spring is installed inside the detection frame. One end of the first spring is fixedly connected with a triangular detection block. A telescopic frame is connected to one side of the detection frame.
[0007] Preferably, one end of the threaded rod is rotatably installed on the aluminum formwork wall, the other end of the threaded rod extends through the aluminum formwork wall and is installed, and a handle is installed at the other end of the threaded rod.
[0008] Preferably, adjusting rods are installed on both sides of the two first moving sleeves, the connecting rod is rotatably installed on the adjusting rod, four fixing seats are provided on the pressing plate, and the same adjustments are also installed on the four fixing seats. The other end of the connecting rod is rotatably installed on the fixing seat through the adjusting rod.
[0009] Preferably, one side of the pressing rod extends through the aluminum formwork wall and the rubber bottom corner, and one end of the pressing rod is installed on the rubber bottom corner.
[0010] Preferably, an inclined groove is provided on one side of the pressing rod, one side of the pushing block is provided as an inclined surface, and the pushing block is movably installed on the inclined groove through the inclined surface.
[0011] Preferably, the sealing ring is arranged at the connection between the rubber bottom corner and the aluminum formwork wall, and the pipeline is installed on the rubber bottom corner.
[0012] Preferably, a detection rod is installed inside the first spring, a triangular detection block is fixedly connected to one end of the detection rod, and one side of the detection rod extends through the detection frame.
[0013] Preferably, the telescopic frame is divided into upper and lower parts, a sliding groove is provided on one side of the aluminum formwork wall, one side of the telescopic frame is slidably installed on the sliding groove, and a second spring is connected between the upper and lower parts of the telescopic frame.
[0014] Compared with the prior art, the beneficial effects of the present invention are:
[0015] 1. In the present invention, when the threaded rod drives the two first moving sleeves to move away from each other, the pressing plate is lifted through the connecting rod, and the pressing plate no longer presses on the connection between the aluminum formwork wall and the rubber bottom corner, so that the aluminum formwork wall and the rubber bottom corner can be quickly removed. In the traditional aluminum formwork wall and rubber bottom corner, the fixing bolts need to be knocked one by one to be removed, which is convenient for construction workers to quickly remove the aluminum formwork wall and the rubber bottom corner and improves the work efficiency of construction workers;
[0016] 2. When the pressing plate presses the four pressing rods, the four pressing rods compress air through the grooves. When the four pressing rods move downward, the grooves move to the pipeline orifice, so that the compressed air is transmitted to the sealing ring, causing the sealing ring to expand and strengthening the sealing performance between the aluminum formwork wall and the rubber bottom corner. When waterproof concrete is poured, the sealing performance at the connection between the aluminum formwork wall and the rubber bottom corner is insufficient, resulting in concrete leakage from the connection between the aluminum formwork wall and the rubber bottom corner;
[0017] 3. Since the rubber is flexible in the present invention, during concrete pouring, the concrete pouring will squeeze the rubber bottom corners at the lower end. The rubber bottom corners squeeze the push blocks through the push rods, and the push blocks move on the push block chute through the inclined planes. The push blocks squeeze the push blocks, thereby applying secondary pressure to the rubber bottom corners, preventing the leakage of concrete during the pouring of the root of the aluminum formwork wall, and improving the forming quality of the concrete wall.
[0018] 4. When the construction workers rotate the threaded rod excessively, the pressing plate will press down the aluminum formwork wall and the rubber bottom corners excessively. The rubber bottom corners are deformed, and an opening occurs between the aluminum formwork wall and the rubber bottom corners. The aluminum formwork wall and the rubber bottom corners no longer apply pressure to the triangular detection block, causing the first spring to rebound. The first spring drives the triangular detection block to snap into the opening between the aluminum formwork wall and the rubber bottom corners. Thus, the triangular detection block drives the detection rod to move into the detection frame, reminding the construction workers that the pressing plate presses down the aluminum formwork wall and the rubber bottom corners excessively, and an opening occurs at the connection, which may lead to concrete leakage. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 is the overall structural schematic diagram of the present invention;
[0020] Figure 2 is the first structural schematic diagram of the connection component of the present invention;
[0021] Figure 3 is the structural connection schematic diagram of the pressure rod and the push block of the present invention;
[0022] Figure 4 is the second structural schematic diagram of the connection component of the present invention;
[0023] Figure 5 is the structural connection schematic diagram of the connection component and the detection component of the present invention;
[0024] Figure 6 is the first structural schematic diagram of the detection component of the present invention;
[0025] Figure 7 is the second structural schematic diagram of the detection component of the present invention.
[0026] In the figure: 1. Aluminum formwork wall; 2. Connection component; 201. Threaded rod; 202. First moving sleeve; 203. Connecting rod; 204. Pressing plate; 205. Pressure rod; 206. Rubber bottom corner; 207. Push rod; 208. Push block; 209. Groove; 210. Pipe; 211. Sealing ring; 212. Handle; 3. Detection component; 301. Second moving sleeve; 302. Moving rod; 303. Detection frame; 304. First spring; 305. Triangular detection block; 306. Detection rod; 307. Telescopic frame; 308. Second spring. DETAILED DESCRIPTION OF THE INVENTION
[0027] To make the objectives, technical solutions, and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Therefore, the following detailed description of the embodiments of the present invention provided in the drawings is not intended to limit the scope of the claimed invention, but merely represents selected embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the scope of protection of the present invention.
[0028] Referring to Figures 1 to 4 As shown, the present invention provides a construction structure for sealing the root of an aluminum formwork wall, which includes a connection component 2 located on the aluminum formwork wall 1. The connection component 2 includes a threaded rod 201. On both sides of the threaded rod 201, first moving sleeves 202 are movably installed. Two groups of the first moving sleeves 202 are both connected with connecting rods 203. The other ends of the connecting rods 203 are connected with a pressing plate 204. Four pressing rods 205 are installed at the lower end of the pressing plate 204. At one end of the four pressing rods 205, a rubber bottom corner 206 is installed. One side of the rubber bottom corner 206 is installed at the lower end of the aluminum formwork wall 1. Four push rods 207 are installed inside the rubber bottom corner 206. One end of the push rod 207 is fixedly connected with a push block 208. Grooves 209 are provided on all four pressing rods 205. A pipeline 210 is provided on one side of the groove 209. One side of the pipeline 210 communicates with a sealing ring 211;
[0029] During construction, the operator rotates the handle 212 to drive the threaded rod 201 to rotate forward. The threaded rod 201 drives the first moving sleeves 202 on both sides to move relatively. When the first moving sleeves 202 move relatively, the pressing plate 204 is pressed downward through the connecting rod 203. The pressing plate 204 presses the four pressing rods 205. The four pressing rods 205 press the rubber bottom corner 206 downward, making the rubber bottom corner 206 closer to the ground, thereby effectively preventing the leakage of concrete during the pouring of the root of the aluminum formwork wall 1 and improving the forming quality of the concrete wall. At the same time, the pressing plate 204 pressurizes the connection between the aluminum formwork wall 1 and the rubber bottom corner 206, assisting the pressing rods 205 to quickly and firmly connect the aluminum formwork wall 1 and the rubber bottom corner 206;
[0030] When the pressing plate 204 presses the four pressing rods 205, the four pressing rods 205 compress air through the grooves 209. When the four pressing rods 205 move downward, the grooves 209 move to the pipe orifice of the pipeline 210, so that the compressed air is transmitted to the sealing ring 211, causing the sealing ring 211 to expand and strengthening the sealing performance between the aluminum formwork wall 1 and the rubber bottom corner 206, preventing the insufficient sealing performance at the connection between the aluminum formwork wall 1 and the rubber bottom corner 206 during the concrete pouring, resulting in the leakage of concrete from the connection between the aluminum formwork wall 1 and the rubber bottom corner 206;
[0031] Due to the flexibility of the rubber, when the concrete is poured, the concrete will squeeze the rubber bottom corner 206 at the lower end. The rubber bottom corner 206 squeezes the push block 208 through the push rod 207. The push block 208 moves on the inclined groove of the push block 208 through the inclined plane, and the push block 208 squeezes the push block 208, thereby applying secondary pressure to the rubber bottom corner 206 to prevent the leakage of concrete during the pouring of the wall root of the aluminum formwork wall 1 and improve the forming quality of the concrete wall;
[0032] After the concrete is poured and formed, the construction worker reverses the handle 212 to drive the threaded rod 201 to reverse. The threaded rod 201 drives the first moving sleeves 202 on both sides to move away from each other, and the pressing plate 204 is lifted through the connecting rod 203. The pressing plate 204 no longer presses on the connection between the aluminum formwork wall 1 and the rubber bottom corner 206, and the aluminum formwork wall 1 and the rubber bottom corner 206 can be quickly removed. For the traditional aluminum formwork wall 1 and the rubber bottom corner 206, the fixing bolts need to be knocked one by one before they can be removed, which facilitates the construction workers to quickly remove the aluminum formwork wall 1 and the rubber bottom corner 206 and improves the work efficiency of the construction workers;
[0033] Refer to Figures 5 to 7 As shown, a detection component 3 is installed at one end of the connection component 2. The detection component 3 includes two groups of second moving sleeves 301. The two groups of second moving sleeves 301 are movably installed on both sides of the threaded rod 201. One side of the two groups of second moving sleeves 301 is fixedly connected with a moving rod 302. One end of the second moving sleeve 301 is fixedly connected with a detection frame 303. A first spring 304 is installed inside the detection frame 303. One end of the first spring 304 is fixedly connected with a triangular detection block 305. One side of the detection frame 303 is connected with a telescopic frame 307;
[0034] While the threaded rod 201 drives the first moving sleeves 202 on both sides to move relatively, the threaded rod 201 also drives the two groups of second moving sleeves 301 to move relatively. The second moving sleeve 301 drives the detection frame 303 to move relatively through the moving rod 302. Thus, the detection frame 303 drives the triangular detection block 305 to move through the first spring 304. When the aluminum formwork wall 1 and the rubber bottom corner 206 are combined and connected, pressure will be exerted on the triangular detection block 305, causing the first spring 304 to deform and compress. Since one side of the rubber bottom corner 206 is open, the rubber bottom corner 206 on this side is under excessive pressure and is prone to deformation. If the construction worker rotates the threaded rod 201 excessively, the pressing plate 204 will press down on the aluminum formwork wall 1 and the rubber bottom corner 206 excessively, causing the rubber bottom corner 206 to deform, the aluminum formwork wall 1 and the rubber bottom corner 206 to open, and the aluminum formwork wall 1 and the rubber bottom corner 206 to no longer exert pressure on the triangular detection block 305, causing the first spring 304 to rebound. The first spring 304 drives the triangular detection block 305 to snap into the opening of the aluminum formwork wall 1 and the rubber bottom corner 206. Thus, the triangular detection block 305 drives the detection rod 306 to move into the detection frame 303, reminding the construction worker that the pressing plate 204 presses down on the aluminum formwork wall 1 and the rubber bottom corner 206 excessively, and the connection opens, which may cause concrete leakage;
[0035] The construction worker stretches the telescopic frame 307 so that the upper part of the telescopic frame 307 snaps into the chute on one side of the aluminum formwork wall 1, and the lower part of the telescopic frame 307 is stuck on the rubber bottom corner 206. One side of the detection frame 303 is also connected to the lower half of the telescopic frame 307. The lower half of the telescopic frame 307 moves along with the opening size of the aluminum formwork wall 1 and the rubber bottom corner 206 through the second spring 308, ensuring that the moving rod 302 is always aligned with the connection of the aluminum formwork wall 1 and the rubber bottom corner 206, and preventing the moving rod 302 from accurately detecting the condition of the connection of the aluminum formwork wall 1 and the rubber bottom corner 206;
[0036] The threaded rod 201 drives the pressing plate 204 to press down. The pressing plate 204 presses down on the rubber bottom corner 206 through four pressure rods 205. On the one hand, it makes the rubber bottom corner 206 closer to the ground, thus effectively preventing the leakage of concrete during the pouring of the wall root of the aluminum formwork wall 1, improving the forming quality of the concrete wall. At the same time, the pressing plate 204 pressurizes the connection of the aluminum formwork wall 1 and the rubber bottom corner 206, assisting the pressure rods 205 to quickly and firmly connect the aluminum formwork wall 1 and the rubber bottom corner 206. It also compresses air through the four pressure rods 205 through the groove 209, causing the sealing ring 211 to expand and strengthening the sealing performance of the aluminum formwork wall 1 and the rubber bottom corner 206. On the other hand, when the pressing plate 204 is lifted, the pressing plate 204 no longer pressurizes the connection of the aluminum formwork wall 1 and the rubber bottom corner 206, and the aluminum formwork wall 1 and the rubber bottom corner 206 can be quickly removed. At the same time, the threaded rod 201 also drives the triangular detection block 305 to move, detecting whether the connection of the aluminum formwork wall 1 and the rubber bottom corner 206 opens, resulting in concrete leakage.
[0037] In an alternative embodiment, one end of the threaded rod 201 is rotatably mounted on the aluminum formwork wall 1, and the other end of the threaded rod 201 extends through the aluminum formwork wall 1 and is installed, and a handle 212 is installed at the other end of the threaded rod 201. The construction worker drives the threaded rod 201 to rotate by rotating the handle 212, and the handle 212 facilitates the construction worker to rotate the threaded rod 201.
[0038] In an alternative embodiment, adjusting rods are installed on both sides of the two groups of first moving sleeves 202. The connecting rod 203 is rotatably mounted on the adjusting rods. Four fixing seats are provided on the pressing plate 204, and the same adjustments are also installed on the four fixing seats. The other end of the connecting rod 203 is rotatably mounted on the fixing seat through the adjusting rod. When the first moving sleeves 202 move relative to each other, the moving angle of the connecting rod 203 is adjusted through the adjusting rod, so that the connecting rod 203 presses down the pressing plate 204.
[0039] In an alternative embodiment, one side of the pressing rod 205 extends through the aluminum formwork wall 1 and the rubber bottom corner 206, and one end of the pressing rod 205 is installed on the rubber bottom corner 206. The connecting rod 203 presses down the pressing plate 204, and the pressing plate 204 squeezes the four pressing rods 205. The four pressing rods 205 press down the rubber bottom corner 206, making the rubber bottom corner 206 closer to the ground, so as to effectively prevent the problem of slurry leakage during concrete pouring at the root of the aluminum formwork wall 1 and improve the forming quality of the concrete wall.
[0040] In an alternative embodiment, an inclined groove is provided on one side of the pressing rod 205, and one side of the pushing block 208 is set as an inclined surface. The pushing block 208 is movably installed on the inclined groove through the inclined surface. The rubber bottom corner 206 squeezes the pushing block 208 through the push rod 207. The pushing block 208 moves on the inclined groove of the pushing block 208 through the inclined surface, and the pushing block 208 squeezes the pushing block 208, thereby applying secondary pressure to the rubber bottom corner 206 to prevent the problem of slurry leakage during concrete pouring at the root of the aluminum formwork wall 1 and improve the forming quality of the concrete wall.
[0041] In an alternative embodiment, a sealing ring 211 is arranged at the connection between the rubber bottom corner 206 and the aluminum formwork wall 1. The pipeline 210 is installed on the rubber bottom corner 206. Compressed air is transmitted to the sealing ring 211 to expand the sealing ring 211 and strengthen the sealing performance between the aluminum formwork wall 1 and the rubber bottom corner 206, preventing insufficient sealing at the connection between the aluminum formwork wall 1 and the rubber bottom corner 206 during concrete pouring, resulting in slurry leakage from the connection between the aluminum formwork wall 1 and the rubber bottom corner 206.
[0042] In an alternative embodiment, a detection rod 306 is installed inside the first spring 304. One end of the detection rod 306 is fixedly connected to a triangular detection block 305. One side of the detection rod 306 extends through the detection frame 303. The first spring 304 drives the triangular detection block 305 to snap into the opening between the aluminum formwork wall 1 and the rubber bottom corner 206. Thus, the triangular detection block 305 drives the detection rod 306 to move into the detection frame 303, reminding the construction workers that the pressing plate 204 presses the aluminum formwork wall 1 and the rubber bottom corner 206 too hard, and the joint opens, which may cause concrete leakage.
[0043] In an alternative embodiment, the telescopic frame 307 is provided in upper and lower parts. A chute is provided on one side of the aluminum formwork wall 1. One side of the telescopic frame 307 is slidably installed on the chute. A second spring 308 is directly connected between the upper and lower parts of the telescopic frame 307. The telescopic frame 307 moves along with the detection frame 303 through the chute. The lower half of the telescopic frame 307 moves along with the opening size between the aluminum formwork wall 1 and the rubber bottom corner 206 through the second spring 308, ensuring that the moving rod 302 is always aligned with the joint between the aluminum formwork wall 1 and the rubber bottom corner 206, and preventing the moving rod 302 from accurately detecting the condition of the joint between the aluminum formwork wall 1 and the rubber bottom corner 206.
[0044] Working principle: The construction worker rotates the handle 212 to drive the threaded rod 201 to rotate forward. The threaded rod 201 drives the two first moving sleeves 202 to move relatively. When the two first moving sleeves 202 move relatively, the pressing plate 204 is pressed down through the connecting rod 203. The pressing plate 204 presses the four pressure rods 205. The four pressure rods 205 press down the rubber bottom corner 206, making the rubber bottom corner 206 closer to the ground, thereby effectively preventing the leakage of concrete during the pouring of the root of the aluminum formwork wall 1, improving the forming quality of the concrete wall. At the same time, the pressing plate 204 pressurizes the joint between the aluminum formwork wall 1 and the rubber bottom corner 206, assisting the pressure rods 205 to quickly and firmly connect the aluminum formwork wall 1 and the rubber bottom corner 206;
[0045] While the pressing plate 204 presses the four pressure rods 205, the four pressure rods 205 compress air through the grooves 209. When the four pressure rods 205 move downward, the grooves 209 move to the pipe orifice of the pipe 210, so that the compressed air is transmitted to the sealing ring 211, causing the sealing ring 211 to expand, strengthening the sealing performance between the aluminum formwork wall 1 and the rubber bottom corner 206, and preventing the insufficient sealing performance at the joint between the aluminum formwork wall 1 and the rubber bottom corner 206 during the concrete pouring, resulting in the leakage of concrete from the joint between the aluminum formwork wall 1 and the rubber bottom corner 206;
[0046] Because the rubber is flexible, when pouring concrete, the concrete will squeeze the rubber bottom corner 206 at the lower end. The rubber bottom corner 206 squeezes the push block 208 through the push rod 207. The push block 208 moves on the inclined groove of the push block 208 through the inclined plane, and the push block 208 squeezes the push block 208, thereby applying secondary pressure to the rubber bottom corner 206 to prevent the leakage of concrete during the pouring of the root of the aluminum formwork wall 1 and improve the forming quality of the concrete wall;
[0047] After the concrete is poured and formed, the construction worker reverses the handle 212 to drive the threaded rod 201 to reverse. The threaded rod 201 drives the first moving sleeves 202 on both sides to move away from each other. The pressing plate 204 is lifted through the connecting rod 203. The pressing plate 204 no longer presses on the connection between the aluminum formwork wall 1 and the rubber bottom corner 206, and the aluminum formwork wall 1 and the rubber bottom corner 206 can be quickly removed. For the traditional aluminum formwork wall 1 and the rubber bottom corner 206, the fixing bolts need to be knocked one by one before they can be removed. It is convenient for the construction workers to quickly remove the aluminum formwork wall 1 and the rubber bottom corner 206 and improve the work efficiency of the construction workers;
[0048] While the threaded rod 201 drives the first moving sleeves 202 on both sides to move relatively, the threaded rod 201 also drives the two groups of second moving sleeves 301 to move relatively. The second moving sleeve 301 drives the detection frame 303 to move relatively through the moving rod 302. Thus, the detection frame 303 drives the triangular detection block 305 to move through the first spring 304. When the aluminum formwork wall 1 and the rubber bottom corner 206 are combined and connected, pressure will be applied to the triangular detection block 305, causing the first spring 304 to deform and compress. Because one side of the rubber bottom corner 206 is open, the rubber bottom corner 206 on this side bears too much pressure and is prone to deformation. If the construction worker rotates the threaded rod 201 excessively, the pressing plate 204 will press down on the aluminum formwork wall 1 and the rubber bottom corner 206 excessively, and the rubber bottom corner 206 will deform, and the aluminum formwork wall 1 and the rubber bottom corner 206 will open. The aluminum formwork wall 1 and the rubber bottom corner 206 no longer apply pressure to the triangular detection block 305, causing the first spring 304 to rebound. The first spring 304 drives the triangular detection block 305 to snap into the opening of the aluminum formwork wall 1 and the rubber bottom corner 206. Thus, the triangular detection block 305 drives the detection rod 306 to move into the detection frame 303, reminding the construction worker that the pressing plate 204 presses down on the aluminum formwork wall 1 and the rubber bottom corner 206 excessively, and the connection opens, which may cause concrete leakage.
[0049] Although the embodiments of the present invention have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A construction structure for plugging the root of an aluminum formwork wall, characterized in that, It includes a connection component (2) located on the aluminum formwork wall (1). The connection component (2) includes a threaded rod (201). On both sides of the threaded rod (201), first moving sleeves (202) are movably installed. Two groups of the first moving sleeves (202) are both connected with connecting rods (203). The other ends of the connecting rods (203) are connected with a pressing plate (204). Four pressing rods (205) are installed at the lower end of the pressing plate (204). Rubber bottom corners (206) are installed at one ends of the four pressing rods (205). One side of the rubber bottom corner (206) is installed at the lower end of the aluminum formwork wall (1). Four push rods (207) are installed inside the rubber bottom corner (206). One end of the push rod (207) is fixedly connected with a push block (208). Grooves (209) are provided on all four pressing rods (205). A pipeline (210) is provided on one side of the groove (209). One side of the pipeline (210) is communicated with a sealing ring (211). A detection component (3) is installed at one end of the connection component (2). The detection component (3) includes two second moving sleeves (301). The two second moving sleeves (301) are movably installed on both sides of the threaded rod (201). One side of the two second moving sleeves (301) is fixedly connected with a moving rod (302). One end of the second moving sleeve (301) is fixedly connected with a detection frame (303). A first spring (304) is installed inside the detection frame (303). One end of the first spring (304) is fixedly connected with a triangular detection block (305). One side of the detection frame (303) is connected with a telescopic frame (307).
2. The construction structure for plugging the root of an aluminum formwork wall according to claim 1, wherein, One end of the threaded rod (201) is rotatably installed on the aluminum formwork wall (1). The other end of the threaded rod (201) extends through the aluminum formwork wall (1) for installation, and a handle (212) is installed at the other end of the threaded rod (201).
3. A construction structure for plugging the root of an aluminum formwork wall according to claim 1, characterized in that, Adjusting rods are installed on both sides of the two first moving sleeves (202). The connecting rod (203) is rotatably installed on the adjusting rod. Four fixing seats are provided on the pressing plate (204). Adjustments are also installed on all four fixing seats. The other end of the connecting rod (203) is rotatably installed on the fixing seat through the adjusting rod.
4. A construction structure for plugging the root of an aluminum formwork wall according to claim 1, characterized in that, One side of the pressing rod (205) extends through the aluminum formwork wall (1) and the rubber bottom corner (206), and one end of the pressing rod (205) is installed on the rubber bottom corner (206).
5. A construction structure for plugging the root of an aluminum formwork wall according to claim 1, characterized in that, An inclined groove is provided on one side of the pressing rod (205). One side of the push block (208) is set as an inclined surface. The push block (208) is movably installed on the inclined groove through the inclined surface.
6. A construction structure for plugging the root of an aluminum formwork wall according to claim 5, characterized in that, The sealing ring (211) is arranged at the connection between the rubber bottom corner (206) and the aluminum formwork wall (1). The pipeline (210) is installed on the rubber bottom corner (206).
7. A construction structure for plugging the root of an aluminum formwork wall according to claim 1, characterized in that, A detection rod (306) is installed inside the first spring (304). One end of the detection rod (306) is fixedly connected with the triangular detection block (305). One side of the detection rod (306) extends through the detection frame (303).
8. A construction structure for plugging the root of an aluminum formwork wall according to claim 1, characterized in that, The telescopic frame (307) is arranged in upper and lower parts. A sliding groove is provided on one side of the aluminum formwork wall (1). One side of the telescopic frame (307) is slidably installed on the sliding groove. A second spring (308) is directly connected between the upper and lower parts of the telescopic frame (307).