A reinforcing structure for a floor panel of a building structure
By designing connecting and reinforcing components, precise positioning and stable connection between the floor slab and the connecting and reinforcing components are achieved, solving the problems of inaccurate connection and complicated operation in traditional floor slab reinforcement methods, and improving construction efficiency and building structure safety.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- SHANGHAI JIANKE STRUCTURE NEW TECH ENG CO LTD
- Filing Date
- 2026-04-24
- Publication Date
- 2026-06-26
AI Technical Summary
Traditional floor slab reinforcement methods suffer from problems such as inaccurate and unstable connections, complex operation, and easy loss of bolts, making it difficult to guarantee the reliability and durability of the reinforcement effect.
The system employs a connecting and reinforcing assembly, including an mounting cylinder, screw, fixed seat, movable seat, limiting plate, and handle. By rotating the handle, the screw is driven to rotate, enabling the positioning plate to extend and retract, thus completing the installation and disassembly of the floor slab body and the connecting and reinforcing assembly. The cooperation between the limiting plate and the limiting groove ensures the stability and accuracy of the movable seat, achieving precise positioning.
It is simple and easy to operate, shortens the construction cycle, reduces labor costs, improves installation and dismantling efficiency, ensures a stable connection of floor slabs, and enhances the safety and reliability of building structures.
Smart Images

Figure CN122280376A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of building structure technology, and more specifically, to a reinforcement structure for building floor slabs. Background Technology
[0002] In the field of modern architecture, floor slabs are important components in building structures that bear the load of the upper structure and transfer it to the lower structure. Their stability and safety are of paramount importance. However, as the building's service life increases, or due to adverse factors such as earthquakes, foundation settlement, and external impacts, floor slabs may suffer varying degrees of damage and deformation, leading to a decrease in their load-bearing capacity and thus affecting the safety and normal use of the entire building structure.
[0003] Currently, some traditional floor slab reinforcement methods typically involve adding steel bars and pouring concrete. While these methods can improve the strength of the floor slab to some extent, they also have many drawbacks. For example, traditional reinforcement methods have certain difficulties in achieving precise connection and stable fixation between the floor slab and the surrounding structure, making it difficult to guarantee the reliability and durability of the reinforcement effect. Traditional reinforcement methods usually involve directly fixing steel plates to the floor slab, which requires a large number of bolts, making it inconvenient for workers to operate, and the bolts are easy to lose. Therefore, we propose a reinforcement structure for building floor slabs. Summary of the Invention
[0004] In order to overcome the above-mentioned defects of the prior art, the present invention provides a reinforcement structure for building floor slabs to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a reinforcement structure for a building floor slab, comprising a load-bearing wall of the building, an mounting frame installed on one side of the load-bearing wall, mounting holes on both sides of the mounting frame, connecting reinforcement components installed inside the two mounting holes, a floor slab body connected to the interior of the two mounting frames, connecting grooves at both ends of the floor slab body, and symmetrical positioning grooves inside the two connecting grooves. The connection and reinforcement assembly includes a mounting cylinder installed inside the mounting hole, a screw connected inside the mounting cylinder, a fixed seat installed inside the mounting cylinder, a movable seat connected outside the screw, a first connecting bracket plate connected outside the fixed seat, a second connecting bracket plate connected outside the movable seat, a third connecting bracket plate connected to one end of the first connecting bracket plate, a positioning plate installed on one side of the third connecting bracket plate, two symmetrical slots opened at the bottom of the mounting cylinder, and a rotating handle installed at the top of the screw on one side of the mounting cylinder.
[0006] Preferably, the mounting base has a hole corresponding to the screw, and the screw is movably connected to the inside of the mounting cylinder through a bearing.
[0007] Preferably, a limiting plate is installed on one side of the movable seat, and a limiting groove is formed on one side of the inside of the mounting cylinder.
[0008] Preferably, the limiting plate is slidably connected inside the limiting groove, and the movable seat is slidably connected inside the mounting cylinder.
[0009] Preferably, one end of the connecting frame plate two is connected to the connecting frame plate three, and the positioning plate is located inside the slot.
[0010] Preferably, a working groove is provided on one side of the handle, and a pointer is provided at one edge of the handle.
[0011] Preferably, the outer side of the handle is provided with several sets of anti-slip textures distributed in a circumferential pattern, and a rotating plate is installed on one side of the handle.
[0012] Preferably, a rotating groove is provided on one side edge of the mounting cylinder, and the rotating plate is located inside the rotating groove.
[0013] Preferably, the positioning plate is adapted to the positioning groove, and the mounting cylinder is adapted to the connecting groove.
[0014] The technical effects and advantages of this invention are as follows: In use, this invention features a cleverly designed connecting and reinforcing component. Rotating the handle drives the screw, which in turn moves the movable base, allowing the positioning plate to extend and retract, thus completing the installation and disassembly of the floor slab and the connecting and reinforcing component. The entire operation is simple and easy to understand, requiring no complex tools or specialized skills, significantly shortening the construction cycle and reducing labor costs. Furthermore, the working slot design facilitates the use of tools to assist in rotating the handle when necessary, further improving the ease and accuracy of operation. Both installation and disassembly can be completed quickly, increasing work efficiency.
[0015] In use, the adaptive connection design of the positioning plate and positioning groove of this invention can accurately fix the floor slab body and the connecting reinforcement components together, effectively restricting the horizontal movement of the floor slab body and preventing displacement during use. At the same time, the cooperation between the limiting plate and the limiting groove ensures the stability and accuracy of the movement of the moving seat, allowing the positioning plate to accurately enter or exit the positioning groove, ensuring the reliability of the connection. In addition, the design of the rotating plate and rotating groove not only assists the rotation operation, but also serves as an indicator of the completion of installation and disassembly, making it convenient for operators to judge whether the operation is in place, further enhancing the stability and safety of the entire reinforcement structure and providing reliable protection for the building structure. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of the present invention.
[0017] Figure 2 This is a semi-exploded view of the structure of the present invention.
[0018] Figure 3 This is a schematic diagram of the connection reinforcement component of the present invention.
[0019] Figure 4 This is a side view of the connection reinforcement component of the present invention.
[0020] Figure 5 This is a first-view internal view of the connection reinforcement component of the present invention.
[0021] Figure 6 This is a second-view internal view of the connection reinforcement component of the present invention.
[0022] The attached diagram is labeled as follows: 1. Load-bearing wall of the building; 2. Mounting bracket; 3. Mounting hole; 4. Connecting and reinforcing component; 5. Main body of the floor panel; 6. Connecting groove; 7. Positioning groove; 41. Mounting cylinder; 42. Screw; 43. Fixed seat; 44. Moving seat; 45. Limiting plate; 46. Limiting groove; 47. Connecting bracket plate one; 48. Connecting bracket plate two; 49. Connecting bracket plate three; 410. Positioning plate; 411. Groove; 412. Rotating handle; 413. Working groove; 414. Indicator; 415. Anti-slip texture; 416. Rotating plate; 417. Rotating groove. Detailed Implementation
[0023] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0024] As attached Figures 1-6 The floor slab reinforcement structure shown includes a load-bearing wall 1, a mounting bracket 2 installed on one side of the load-bearing wall 1, mounting holes 3 on both sides of the mounting bracket 2, a connecting reinforcement component 4 installed inside the two mounting holes 3, a floor slab body 5 connected to the two mounting brackets 2, a connecting groove 6 at both ends of the floor slab body 5, and a symmetrical positioning groove 7 inside the two connecting grooves 6. The connection reinforcement component 4 includes a mounting cylinder 41 installed inside the mounting hole 3. The mounting cylinder 41 is adapted to the connecting groove 6. A screw 42 is connected inside the mounting cylinder 41. A fixing seat 43 is installed inside the mounting cylinder 41. The fixing seat 43 has a hole corresponding to the screw 42. The screw 42 is movably connected inside the mounting cylinder 41 via a bearing. A movable seat 44 is connected to the outside of the screw 42. A limit plate 45 is installed on one side of the movable seat 44. A limit groove 46 is opened on one side of the inside of the mounting cylinder 41. The limit plate 45 is slidably connected inside the limit groove 46. The movable seat 44 is slidably connected inside the mounting cylinder 41. A first connecting bracket plate 47 is connected to the outside of the fixing seat 43. A second connecting bracket plate 48 is connected to the outside of the movable seat 44. One end of the first connecting bracket plate 47 is connected to... There is a connecting frame plate 3 49, and a positioning plate 410 is installed on one side of the connecting frame plate 3 49. The positioning plate 410 is adapted to the positioning groove 7. The bottom of the mounting cylinder 41 has two symmetrical slots 411. The top of the screw 42 and located on one side of the mounting cylinder 41 is a rotating handle 412. One end of the connecting frame plate 2 48 is connected to the connecting frame plate 3 49. The positioning plate 410 is located inside the slots 411. A working groove 413 is opened on one side of the rotating handle 412. A pointer 414 is set on one side edge of the rotating handle 412. Several sets of anti-slip textures 415 distributed in a circular pattern are set on the outer side of the rotating handle 412. A rotating plate 416 is installed on one side of the rotating handle 412. A rotating groove 417 is opened on one side edge of the mounting cylinder 41. The rotating plate 416 is located inside the rotating groove 417.
[0025] The working slot 413 facilitates operation with tools. In some cases, manually turning the handle 412 may be too strenuous or difficult to control the rotation amplitude precisely. At this time, a suitable tool, such as a wrench, can be inserted into the working slot 413 to apply force to turn the handle 412, making the operation easier and more accurate, and improving the efficiency and convenience of installation and disassembly. The limiting plate 45 is installed on one side of the movable seat 44, and the limiting groove 46 is opened inside the mounting cylinder 41. This device restricts and guides the movement of the movable seat 44. When the screw 42 rotates and drives the movable seat 44 to move, the limiting plate 45 slides in the limiting groove 46, ensuring that the movable seat 44 can only move along a specific straight line without deflection or shaking. This ensures the stability and accuracy of the movement between the components of the connecting and reinforcing assembly 4, so that the positioning plate 410 can accurately enter or exit the positioning groove 7, thereby achieving reliable connection or disassembly. The rotating plate 416 is installed on one side of the rotating handle 412, and the rotating groove 417 is opened on one side edge of the mounting cylinder 41. The rotating plate 416 is located inside the rotating groove 417. When the rotating handle 412 is rotated, the rotating plate 416 rotates in the rotating groove 417, which provides certain assistance and guidance for the rotation operation, making the rotation process smoother and reducing the feeling of jamming during rotation. When the rotating handle 412 is rotated forward until the rotating plate 416 reaches the end of the rotating groove 417 (turned to the end), it means that the moving seat 44 has moved to the appropriate position and the positioning plate 410 is completely inserted into the positioning groove 7. At this time, the installation mode is completed, and the floor panel body 5 and the connecting and reinforcing component 4 are firmly connected. When the rotating handle 412 is rotated in the opposite direction until the rotating plate 416 reaches the end of the rotating groove 417 again (turned to the end), it indicates that the moving seat 44 has moved into the reverse position and the positioning plate 410 is completely disengaged from the positioning groove 7. The disassembly is completed, which makes it convenient for the operator to judge whether the operation is in place. The matching connection between the positioning plate 410 and the positioning groove 7 enables precise positioning and stable connection between the floor panel body 5 and the connecting reinforcement component 4. When the positioning plate 410 enters the positioning groove 7 under the action of the connecting reinforcement component 4, the two are matched with each other, which can effectively restrict the movement of the floor panel body 5 in the horizontal direction, prevent the floor panel body 5 from being displaced during use, enhance the stability and reliability of the entire floor panel reinforcement structure, and ensure the safety of the building structure. Anti-slip texture 415 is provided on the outer side of the handle 412, and is distributed in several groups in a circumferential shape. It can increase the friction when rotating the handle 412. When manually rotating the handle 412 for installation or disassembly, the anti-slip texture 415 can prevent the hand from slipping on the handle 412, allowing the operator to grip the handle 412 more firmly and apply rotational force more accurately, thus improving the comfort and safety of operation. The effect of the anti-slip texture 415 is even more obvious when the hands are sweaty or the environment is relatively humid.
[0026] The working principle of this invention is as follows: The mounting bracket 2 is installed on one side of the load-bearing wall 1 of the building, and the mounting cylinder 41 of the connecting reinforcement component 4 is placed into the connecting grooves 6 at both ends of the floor panel body 5. According to the guidance of the indicator 414 set on one side edge of the rotating handle 412, the rotating handle 412 is rotated. Since the screw 42 is movably connected to the inside of the mounting cylinder 41 through the bearing, and the fixed seat 43 has a hole corresponding to the screw 42, when the screw 42 rotates, the moving seat 44 will move on the screw 42. At this time, the limiting plate 45 on one side of the moving seat 44 slides in the limiting groove 46 on one side inside the mounting cylinder 41, ensuring that the moving seat 44 can only move in a straight line, and the moving seat 44 is slidably connected to the inside of the mounting cylinder 41. The moving seat 44 moves, causing the connecting frame plate 2 48 to move. One end of the connecting frame plate 2 48 is connected to the connecting frame plate 3 49, which in turn causes the connecting frame plate 3 49 to move. This allows the positioning plate 410 installed on one side of the connecting frame plate 3 49 to extend out from the slot 411 at the bottom of the mounting cylinder 41 and enter the positioning slot 7 inside the connecting slot 6, thus achieving positioning and fixing and completing the installation. At this time, several sets of anti-slip textures 415 distributed in a circular pattern on the outer side of the rotating handle 412 can increase the friction during rotation. The rotating plate 416 installed on one side of the rotating handle 412 rotates in the rotating slot 417 opened at the edge of one side of the mounting cylinder 41, assisting in the rotation operation. When disassembly is required, rotate the handle 412 in the opposite direction. The screw 42 rotates in the opposite direction, causing the moving seat 44 to move in the opposite direction. This moves the connecting frame plate 2 48 and the connecting frame plate 3 49. The positioning plate 410 disengages from the positioning groove 7 and enters the groove 411, and then exits from the connecting groove 6. At this time, the mounting cylinder 41 can be removed from the connecting groove 6, completing the disassembly.
[0027] Finally, the following points should be noted: First, in the description of this invention, it should be noted that, unless otherwise specified and limited, the terms "installation", "connection", and "linkage" should be interpreted broadly, and can refer to mechanical connection or electrical connection, or internal connection between two components, or direct connection. "Up", "down", "left", "right", etc. are only used to indicate relative positional relationship. When the absolute position of the object being described changes, the relative positional relationship may change. Secondly: The accompanying drawings of the embodiments disclosed in this invention only involve the structures involved in the embodiments disclosed in this invention. Other structures can refer to the general design. In the absence of conflict, the same embodiment and different embodiments of this invention can be combined with each other. In conclusion, the above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A reinforcement structure for a building floor slab, comprising a load-bearing wall (1), characterized in that: A mounting bracket (2) is installed on one side of the load-bearing wall (1) of the building. Mounting holes (3) are provided on both sides of the mounting bracket (2). A connecting and reinforcing component (4) is installed inside the two mounting holes (3). The floor panel body (5) is connected to the interior of the two mounting brackets (2). A connecting groove (6) is provided at both ends of the floor panel body (5). A symmetrical positioning groove (7) is provided inside the two connecting grooves (6). The connection reinforcement assembly (4) includes a mounting cylinder (41) installed inside the mounting hole (3), a screw (42) connected inside the mounting cylinder (41), a fixed seat (43) installed inside the mounting cylinder (41), a movable seat (44) connected outside the screw (42), a first connecting frame plate (47) connected outside the fixed seat (43), a second connecting frame plate (48) connected outside the movable seat (44), a third connecting frame plate (49) connected to one end of the first connecting frame plate (47), a positioning plate (410) installed on one side of the third connecting frame plate (49), two symmetrical slots (411) opened at the bottom of the mounting cylinder (41), and a rotating handle (412) installed at the top of the screw (42) and on one side of the mounting cylinder (41).
2. The reinforcement structure for a building floor slab according to claim 1, characterized in that: The fixed base (43) has a hole corresponding to the screw (42) inside, and the screw (42) is movably connected to the inside of the mounting cylinder (41) through a bearing.
3. The reinforcement structure for a building floor slab according to claim 1, characterized in that: A limiting plate (45) is installed on one side of the movable seat (44), and a limiting groove (46) is opened on one side of the interior of the mounting cylinder (41).
4. The reinforcement structure for a building floor slab according to claim 3, characterized in that: The limiting plate (45) is slidably connected inside the limiting groove (46), and the movable seat (44) is slidably connected inside the mounting cylinder (41).
5. The reinforcement structure for a building floor slab according to claim 1, characterized in that: One end of the second connecting frame plate (48) is connected to the third connecting frame plate (49), and the positioning plate (410) is located inside the slot (411).
6. The reinforcement structure for a building floor slab according to claim 1, characterized in that: A working groove (413) is provided on one side of the handle (412), and an index (414) is provided on one side edge of the handle (412).
7. The reinforcement structure for a building floor slab according to claim 1, characterized in that: The outer side of the handle (412) is provided with several sets of anti-slip textures (415) distributed in a circular pattern, and a rotating plate (416) is installed on one side of the handle (412).
8. The reinforcement structure for a building floor slab according to claim 7, characterized in that: A rotating groove (417) is provided on one side edge of the mounting cylinder (41), and the rotating plate (416) is located inside the rotating groove (417).
9. The reinforcement structure for a building floor slab according to claim 1, characterized in that: The positioning plate (410) is adapted to the positioning groove (7), and the mounting cylinder (41) is adapted to the connecting groove (6).