A brick-concrete structure building reinforcing device

By designing a combination of reinforcement frames and sliding components, the problem of size and height adaptability during the reinforcement of brick-concrete structures was solved, achieving flexible reinforcement effects and meeting the reinforcement needs of brick-concrete columns of different sizes and heights.

CN224679185UActive Publication Date: 2026-08-25JIANGXI CONSTR TECH PROMOTION CENT
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Patent Information

Application Number
CN202521953757.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-11
Publication Date
2026-08-25
Estimated Expiration
2035-09-11

AI Technical Summary

Technical Problem

Existing brick-concrete structures cannot meet the reinforcement requirements of different sizes and heights, and the reinforcement methods are limited and cannot meet the usage requirements of building projects.

Method used

A reinforcement device comprising a reinforcement frame, abutment plate, and sliding component is designed. By combining the sliding component and the reinforcement mechanism, flexible adjustment and reinforcement of brick-concrete column structures can be achieved. The position is limited by the cooperation of the slider and the snap-fit ​​groove, and the reinforcement effect is achieved by connecting the reinforcement plate with the fixed base.

Benefits of technology

It enables flexible and adaptable reinforcement of brick-concrete column structures, and can adapt to brick-concrete columns of different sizes and heights, thus improving the reinforcement effect and applicability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a kind of brick and concrete structure building reinforcing device, including two reinforcing frames, two the reinforcing frames are vertically stacked together, the corner of reinforcing frame is equipped with connecting hole, and the connecting hole between the upper and lower two reinforcing frames is connected and fixed by connecting rod, a group of sliding slots are respectively set on the four sides inner wall of reinforcing frame, two abutting plates two are slidably connected between the transverse two sliding slots, two abutting plates one are slidably connected in the longitudinal two sliding slots, the abutting plate one is below the abutting plate two, the abutting plate two and the abutting plate one are perpendicularly staggered, sliding member is equipped between the abutting plate one and the abutting plate two, reinforcing mechanism is further equipped between the upper and lower two reinforcing frames.The utility model has the beneficial effects as follows, so different size different height brick and concrete column structure can be reinforced and handled, meet the processing demand of brick and concrete building column structure.
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Description

Technical Field

[0001] This utility model is a reinforcement device for brick-concrete structure buildings, belonging to the technical field of building construction equipment. Background Technology

[0002] Brick-concrete structures have disadvantages such as heavy weight and low resistance to bending, tension and shear, making them prone to brittle failure. Furthermore, the load-bearing capacity of brick-concrete structures will decrease over time, so reinforcement is necessary for these structures.

[0003] When reinforcing the column structure of brick-concrete buildings, it is impossible to meet the reinforcement needs of brick-concrete column structures of different sizes and heights. The reinforcement methods are relatively simple and cannot meet the usage requirements of building projects. Utility Model Content

[0004] In view of the shortcomings of the existing technology, the purpose of this utility model is to provide a reinforcement device for brick-concrete structure buildings.

[0005] To achieve the above objectives, this utility model is implemented through the following technical solution: A reinforcement device for brick-concrete structures includes two reinforcement frames stacked vertically together. Each reinforcement frame has connecting holes at its corners. The connecting holes on the upper and lower reinforcement frames are connected and fixed together by connecting rods. A set of sliding grooves is provided on the inner walls of each of the four sides of the reinforcement frame. Two abutment plates (secondary) are slidably connected between two transverse sliding grooves, and two abutment plates (primary) are slidably connected between two longitudinal sliding grooves. The abutment plates (primary) are located below the abutment plates (secondary). The abutment plates (secondary) and abutment plates (primary) are arranged perpendicularly and alternately. A sliding element is provided between the abutment plates (primary) and a reinforcement mechanism is also provided between the upper and lower reinforcement frames.

[0006] Furthermore, the reinforcing frame includes a C-shaped frame and a frame plate, and the frame plate and the C-shaped frame are fixed together by bolts.

[0007] Furthermore, the inner walls of both the frame plate and the C-shaped frame are provided with sliding grooves, and sliding seats are slidably connected in the sliding grooves. The ends of the first abutment plate and the second abutment plate are respectively connected and fixed to the sliding seats at corresponding positions by bolts.

[0008] Furthermore, the sliding component includes a locking seat, a sliding block is fixed at the bottom of the locking seat, a locking plate is provided on each side of the sliding block, a telescopic sleeve is installed at the bottom of the sliding block, the telescopic end of the telescopic sleeve is connected and fixed to the slider, and a locking plate is provided at the bottom of the sliding block and on each side of the telescopic sleeve.

[0009] Furthermore, the top of both the first abutment plate and the second abutment plate are respectively provided with a slide rail and a slide track. The slider is slidably installed in the slide rail. The snap-fit ​​seat is pressed against the top of the second abutment plate. The sliding block is slidably connected in the slide track. The top of the second abutment plate and on both sides of the slide track are provided with a plurality of snap-fit ​​grooves that cooperate with the first snap-fit ​​plate. The telescopic sleeve extends from the slide track into the slide rail and is connected and fixed to the slider. The top of the first abutment plate and on both sides of the slide rail are provided with a plurality of snap-fit ​​grooves that cooperate with the second snap-fit ​​plate.

[0010] Furthermore, the reinforcement mechanism includes a fixing seat disposed in the middle of the outer surface of both the first abutment plate and the second abutment plate. The fixing seats in the upper and lower reinforcement frames are arranged opposite to each other. The fixing seats are provided with screw holes. An installation space is formed between the fixing seats and the brick-concrete structure. The reinforcement plate is installed in the installation space.

[0011] Furthermore, the reinforcing plate is fixed to the fixing seat by screws, and the reinforcing plate abuts against the outer surface of the brick-concrete structure.

[0012] The beneficial effects of this utility model are: The design of the reinforcement frame with a split structure allows it to be disassembled during use and reassembled after being installed on a brick-concrete structure.

[0013] By designing the sliding component, after adjusting the positions of the first and second abutment plates inside the reinforcement frame according to the size of the brick-concrete column structure, the first and second abutment plates can be reinforced by the sliding component. Specifically, the slider on the sliding component slides on the slide rail, and the sliding block slides on the slide track. After the position adjustment is completed, the locking seat is pressed down, and the locking seat lowers the first and second locking plates at the bottom. The first locking plate will lock into the locking groove 1 on the second abutment plate, and the second locking plate will lock into the locking groove 2 on the first abutment plate, thereby realizing the position limitation of the first and second abutment plates.

[0014] By designing a reinforcement mechanism, in order to improve the reinforcement effect on brick-concrete column structures, a reinforcement plate can be inserted and installed in the installation space formed between the outer surface of the fixing seat and the brick-concrete column structure. The reinforcement plate is connected and fixed to the fixing seat by bolts, thereby achieving the effect of abutting the outer side surface of the brick-concrete column structure together, thus achieving the reinforcement effect on the brick-concrete column structure. Attached Figure Description

[0015] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0016] Figure 1 This is a schematic diagram of the structure of a brick-concrete building reinforcement device under its usage state according to this utility model; Figure 2 This is a schematic diagram of the structure of the brick-concrete building reinforcement device in its stowed state. Figure 3 This is a partial structural diagram of a brick-concrete building reinforcement device according to the present invention. Figure 1 ; Figure 4 This is a partial structural diagram of a brick-concrete building reinforcement device according to the present invention. Figure 2 ; Figure 5 This is a schematic diagram of the sliding component structure of a brick-concrete building reinforcement device according to this utility model. Figure 1 ; Figure 6 This is a schematic diagram of the sliding component structure of a brick-concrete building reinforcement device according to this utility model. Figure 2 ; Figure 7 This is a schematic diagram of the fixing base structure of a brick-concrete structure building reinforcement device according to the present invention; Figure 8 This is a schematic diagram of the connection structure between the fixing seat and the reinforcing plate of a brick-concrete structure reinforcement device according to the present invention.

[0017] In the diagram, 1. Reinforcing frame; 2. C-shaped frame; 3. Frame plate; 4. Abutment plate one; 5. Abutment plate two; 6. Slide rail; 7. Slide track; 8. Sliding component; 9. Snap-fit ​​seat; 10. Sliding block; 11. Snap-fit ​​plate one; 12. Telescopic sleeve; 13. Snap-fit ​​plate two; 14. Slider; 15. Fixed seat; 16. Reinforcing plate; 17. Connecting hole; 18. Connecting rod; 19. Slide groove. Detailed Implementation

[0018] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0019] Please see Figures 1-8 This utility model provides a technical solution for a reinforcement device for brick-concrete structures, including two reinforcement frames 1, which are stacked vertically together. Each reinforcement frame 1 has a connecting hole 17 at its corner. The connecting holes 17 on the upper and lower reinforcement frames 1 are connected and fixed together by a connecting rod 18. A set of sliding grooves 19 are respectively opened on the four inner walls of each reinforcement frame 1. Two abutment plates 5 are slidably connected between two horizontal sliding grooves 19, and two abutment plates 4 are slidably connected between two vertical sliding grooves 19. The abutment plates 4 are located below the abutment plates 5. The abutment plates 5 and 4 are arranged perpendicularly and alternately. A sliding element 8 is provided between the abutment plates 4 and 5. A reinforcement mechanism is also provided between the upper and lower reinforcement frames 1. When reinforcement of a brick-concrete column structure is required, The frame plate 3 is disassembled from the C-shaped frame 2. Then, the C-shaped frame 2 and the frame plate 3 are assembled together with bolts to form a complete device structure. Then, the positions of the first abutment plate 4 and the second abutment plate 5 inside the reinforcing frame 1 are adjusted according to the size of the brick-concrete column structure so that the first abutment plate 4 and the second abutment plate 25 abut against the outer surface of the brick-concrete column structure. During the adjustment of the positions of the first abutment plate 4 and the second abutment plate 25, the slider 14 on the sliding member 8 slides on the slide rail 6, and the sliding block 10 slides on the slide track 7. After the position adjustment is completed, the snap-fit ​​seat 9 is pressed down. The snap-fit ​​seat 9 lowers the snap-fit ​​plate 11 and the second snap-fit ​​plate 23 at the bottom. The snap-fit ​​plate 11 will snap into the snap-fit ​​groove 1 on the second abutment plate 25, and the snap-fit ​​plate 23 will snap into the snap-fit ​​groove 2 on the first abutment plate 4, thereby realizing the position limitation of the first abutment plate 4 and the second abutment plate 25.

[0020] See Figures 2-3 The reinforcing frame 1 includes a C-shaped frame 2 and a frame plate 3. The frame plate 3 and the C-shaped frame 2 are fixedly connected by bolts. The inner walls of the frame plate 3 and the C-shaped frame 2 are provided with sliding grooves 19. Sliding seats are slidably connected in the sliding grooves 19. The ends of the first abutment plate 4 and the second abutment plate 5 are respectively fixedly connected to the sliding seats at corresponding positions by bolts. Due to the split structure design of the reinforcing frame 1, it can be disassembled in sections when in use. After being installed on a brick-concrete structure, the reinforcing frame 1 can be reassembled for use.

[0021] See Figures 3-6The sliding member 8 includes a locking seat 9, a sliding block 10 fixed to the bottom of the locking seat 9, a locking plate 11 on each side of the sliding block 10, a telescopic sleeve 12 installed at the bottom of the sliding block 10, and the telescopic end of the telescopic sleeve 12 connected and fixed to the slider 14. A locking plate 2 13 is provided at the bottom of the sliding block 10 and on each side of the telescopic sleeve 12. A slide rail 6 and a slide channel 7 are respectively provided at the top of the first abutment plate 4 and the second abutment plate 2 5. The slider 14 is slidably installed in the slide rail 6. The locking seat 9 presses against the top of the second abutment plate 2 5. The sliding block 10 is slidably connected in the slide channel 7. Several locking grooves that cooperate with the locking plate 11 are opened at the top of the second abutment plate 2 5 and on both sides of the slide channel 7. The telescopic sleeve 12 extends from the slide channel 7 into the slide rail 6 and is connected and fixed to the slider 14. The top of the first abutment plate 4 and on the slide rail 6 Several locking grooves are provided on both sides to cooperate with the locking plate 13. Through the design of the sliding member 8, after adjusting the positions of the first abutment plate 4 and the second abutment plate 5 inside the reinforcing frame 1 according to the size of the brick-concrete column structure, the first abutment plate 4 and the second abutment plate 5 can be reinforced by the sliding member 8. Specifically, the slider 14 on the sliding member 8 slides on the slide rail 6, and the sliding block 10 slides on the slide path 7. After the position adjustment is completed, the locking seat 9 is pressed down, and the locking seat 9, along with the locking plate at the bottom,... As the first plate 11 and the second plate 13 descend, the first plate 11 will engage and be fixed in the first engagement groove on the second plate 25, and the second plate 13 will engage in the second engagement groove on the first plate 4. This achieves the function of limiting the position of the first plate 4 and the second plate 25. Because the column structure only has a few fixed standard dimensions, the setting of the first and second engagement grooves only needs to be set according to the installation dimensions to meet the engagement requirements of the first and second plates and the first and second engagement grooves.

[0022] See Figure 4 , Figures 7-8 The reinforcement mechanism includes a fixing seat 15 disposed in the middle of the outer surfaces of the first abutment plate 4 and the second abutment plate 5. The fixing seats 15 in the upper and lower reinforcement frames 1 are arranged opposite to each other. The fixing seats 15 have screw holes and form an installation space between the fixing seats 15 and the brick-concrete structure. A reinforcement plate 16 is installed in the installation space. The reinforcement plate 16 is fixed to the fixing seat 15 with screws and abuts against the outer surface of the brick-concrete structure. Through the design of the reinforcement mechanism, in order to improve the reinforcement effect of the brick-concrete column structure, the reinforcement plate 16 can be inserted and installed in the installation space formed between the outer surface of the fixing seat 15 and the brick-concrete column structure. The reinforcement plate 16 is connected and fixed to the fixing seat 15 with bolts, thereby achieving the abutment against the outer side surface of the brick-concrete column structure and thus achieving the reinforcement effect of the brick-concrete column structure.

[0023] The circuits and electronic components, modules and controllers, or the heat dissipation holes and maintenance doors in the space of the adapted electrical equipment are all existing technologies, which can be fully implemented by those skilled in the art, and need not be elaborated. The content protected by this application does not involve improvements to software and methods or heat dissipation and maintenance.

[0024] When reinforcement of a brick-concrete column structure is required, the frame plate 3 is disassembled from the C-shaped frame 2. Then, the C-shaped frame 2 and the frame plate 3 are assembled together with bolts to form a complete device structure. Subsequently, the positions of the first abutment plate 4 and the second abutment plate 5 inside the reinforcement frame 1 are adjusted according to the size of the brick-concrete column structure, so that the first abutment plate 4 and the second abutment plate 5 abut against the outer surface of the brick-concrete column structure. During the adjustment of the positions of the first abutment plate 4 and the second abutment plate 5, the slider 14 on the sliding member 8 slides on the slide rail 6, and the sliding block 10 slides on the slide track 7. After the position adjustment is completed, the locking seat 9 is pressed down. The locking seat 9 lowers along with the first locking plate 11 and the second locking plate 13 at the bottom. The first locking plate 11 will engage and be fixed in the first locking groove on the second abutment plate 5, and the second locking plate 13 will engage in the second locking groove on the first abutment plate 4. This allows for the positioning of the first abutment plate 4 and the second abutment plate 5. After the abutment plates 4 and 5 in the upper reinforcement frame 1 are adjusted and positioned, the reinforcement frame 1 is raised to the top of the brick-concrete column structure. Subsequently, the abutment plates 4 and 5 in the lower reinforcement frame 1 are also adjusted and positioned. A connecting rod 18 is then connected between the upper and lower reinforcement frames 1 to form a single reinforcement unit. An installation space is formed between the outer side surface of the fixing seat 15 and the brick-concrete column structure. To improve the reinforcement effect on the brick-concrete column structure, a reinforcement plate 16 can be inserted and installed in the installation space. The reinforcement plate 16 is connected and fixed to the fixing seat 15 with bolts, thereby abutting the outer side surface of the brick-concrete column structure together and achieving the reinforcement effect.

[0025] Although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A reinforcement device for brick-concrete structure buildings, characterized in that, It includes two reinforcing frames (1), which are stacked vertically together. Each reinforcing frame (1) has a connecting hole (17) at its corner. The connecting holes (17) on the upper and lower reinforcing frames (1) are connected and fixed by a connecting rod (18). A set of sliding grooves (19) are opened on the inner walls of the four sides of the reinforcing frame (1). Two abutting plates (5) are slidably connected between the two horizontal sliding grooves (19). Two abutting plates (4) are slidably connected between the two vertical sliding grooves (19). The abutting plates (4) are located below the abutting plates (5). The abutting plates (5) and the abutting plates (4) are vertically staggered. A sliding member (8) is provided between the abutting plates (4) and the abutting plates (5). A reinforcing mechanism is also provided between the upper and lower reinforcing frames (1).

2. The brick-concrete structure reinforcement device according to claim 1, characterized in that, The reinforcing frame (1) includes a C-shaped frame (2) and a frame plate (3), and the frame plate (3) and the C-shaped frame (2) are fixed together by bolts.

3. The brick-concrete structure reinforcement device according to claim 2, characterized in that, The inner walls of the frame plate (3) and the C-shaped frame (2) are provided with the sliding groove (19), and a sliding seat is slidably connected in the sliding groove (19). The ends of the first abutment plate (4) and the second abutment plate (5) are respectively connected and fixed to the sliding seat at the corresponding position by bolts.

4. The brick-concrete structure reinforcement device according to claim 3, characterized in that, The sliding member (8) includes a snap-fit ​​seat (9), a sliding block (10) is fixed at the bottom of the snap-fit ​​seat (9), a snap-fit ​​plate (11) is provided on both sides of the sliding block (10), a telescopic sleeve (12) is installed at the bottom of the sliding block (10), the telescopic end of the telescopic sleeve (12) is connected and fixed to the slider (14), and a snap-fit ​​plate (13) is provided at the bottom of the sliding block (10) and on both sides of the telescopic sleeve (12).

5. A brick-concrete structure reinforcement device according to claim 4, characterized in that, The top of the first abutment plate (4) and the second abutment plate (5) are respectively provided with a slide rail (6) and a slide channel (7). The slider (14) is slidably installed in the slide rail (6). The snap-fit ​​seat (9) is pressed on the top of the second abutment plate (5). The sliding block (10) is slidably connected in the slide channel (7). The top of the second abutment plate (5) and on both sides of the slide channel (7) are provided with several snap-fit ​​grooves that cooperate with the first snap-fit ​​plate (11). The telescopic sleeve (12) extends from the slide channel (7) into the slide rail (6) and is connected and fixed to the slider (14). The top of the first abutment plate (4) and on both sides of the slide rail (6) are provided with several snap-fit ​​grooves that cooperate with the second snap-fit ​​plate (13).

6. A brick-concrete structure reinforcement device according to claim 5, characterized in that, The reinforcement mechanism includes a fixing seat (15) disposed in the middle of the outer surface of the first abutment plate (4) and the second abutment plate (5). The fixing seats (15) in the upper and lower reinforcement frames (1) are arranged opposite to each other. The fixing seat (15) is provided with screw holes. The fixing seat (15) and the brick-concrete structure form an installation space. The reinforcement plate (16) is installed in the installation space.

7. A brick-concrete structure reinforcement device according to claim 6, characterized in that, The reinforcing plate (16) is fixed to the fixing seat (15) by screws, and the reinforcing plate (16) abuts against the outer surface of the brick-concrete structure.