Fabricated building reinforced concrete member
By designing multiple sets of mounting holes and connection structures on the reinforced concrete component body, convenient multi-position positioning splicing and circular rotation adjustment are achieved, which solves the convenience and flexibility problems of reinforced concrete components and improves the assembly efficiency and structural strength of the components.
Patent Information
- Application Number
- CN202422299362.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-20
- Publication Date
- 2025-09-12
- Estimated Expiration
- 2034-09-20
AI Technical Summary
Existing reinforced concrete components are not convenient for convenient multi-position positioning, splicing and assembly and circular rotation to adjust the use position during use, which affects the assembly convenience and adjustment flexibility of the reinforced concrete components.
A plurality of first mounting holes, pipe holes, transverse grooves and third arc grooves are designed to be installed on the reinforced concrete component body. Multi-position positioning and splicing are achieved through the sliding cooperation of the limit block and the connecting block. The circular rotation adjustment is achieved by the combined structure of the connecting plate and the hinge shaft, which enhances the flexibility of the angle adjustment.
It realizes convenient multi-position positioning splicing and circular rotation adjustment, improves the convenience of assembling reinforced concrete components and the flexibility of angle adjustment, and prevents the influence of subsequent drilling and laying of pipes on structural strength.
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Figure CN223330098U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of reinforced concrete components, in particular to an assembled building reinforced concrete component. Background Art
[0002] Building reinforced concrete components refer to adding a certain number of steel bars to concrete so that it is well bonded to the concrete to form a reinforced concrete component. This component not only retains the compressive properties of concrete, but also has good tensile properties. Reinforced concrete is a composite material that improves the mechanical properties of concrete by adding steel mesh, steel plates or fibers to concrete. This material is the most common form of reinforced concrete and is widely used in building structures such as beams, slabs, columns, foundations and other components. Traditional building reinforced concrete components are mostly cast in one piece, and the casting time is long. In order to reduce the casting time and quickly complete the building construction, an assembled building reinforced concrete component is proposed.
[0003] For example, an assembled building reinforced concrete component disclosed in the authorization announcement number CN216405901U includes a first assembly component, a second assembly component and a pre-embedded connector;
[0004] Although the arrangement of the first assembly component and the second assembly component is realized, the clamping block is clamped in the clamping slot, and the steel bar body is located in the steel bar hole. Concrete is poured into the steel bar hole through the pouring hole, thereby improving the stability of the connection of the concrete component, avoiding the loosening of the concrete component during use, and improving the service life of the concrete component; the arrangement of the positioning hole and the positioning column, when the first assembly part and the second assembly part are assembled, the positioning column is clamped in the positioning hole, and the positioning column cooperates with the positioning hole to position the first assembly part and the second assembly part, thereby ensuring the accuracy of the assembly of the first assembly part and the second assembly part, and improving the efficiency of the concrete component assembly; the arrangement of the embedded connecting part, which is used to connect the first assembly part with other components, facilitates the connection of the first assembly part with other components, and improves the application range of the concrete component;
[0005] However, it does not solve the problem that the existing reinforced concrete components are not conducive to convenient multi-position positioning and splicing assembly of reinforced concrete components and circular rotation adjustment of the use position of reinforced concrete components during use, and are not conducive to rotation adjustment of the angle of reinforced concrete components, which affects the convenience of assembling reinforced concrete components and the flexibility of adjustment. Utility Model Content
[0006] The purpose of the present utility model is to provide an assembled reinforced concrete component for a building, so as to solve the problem in the above-mentioned background technology that reinforced concrete components are not convenient for convenient multi-position positioning and splicing assembly of reinforced concrete components and circular rotation adjustment of the use position of reinforced concrete components, which is not conducive to rotation adjustment of the angle of reinforced concrete components, affecting the convenience of assembly of reinforced concrete components and the flexibility of adjustment.
[0007] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: an assembled reinforced concrete component of a building, comprising a reinforced concrete component body and a first mounting hole, the reinforced concrete component body being multiple groups, and the side walls of the reinforced concrete component body being all installed with multiple groups of first mounting holes at equal intervals, the side walls of the reinforced concrete component body on one side of the first mounting hole being all installed with pipe holes, the side walls of the pipe holes being all installed with transverse grooves, the side walls of the pipe holes on one side of the transverse grooves being all installed with third arcuate grooves, and the third arcuate grooves being connected to the transverse grooves, the interiors of the pipe holes being all provided with blocking blocks, and the blocking blocks being slidably connected to the pipe holes, the side walls of the blocking blocks being all installed with mounting blocks, and the mounting blocks being slidably connected to the third arcuate grooves and the transverse grooves, one side of the reinforced concrete component body being all installed with connecting blocks, the surfaces of the connecting blocks being all installed with limiting grooves, the other side of the reinforced concrete component body being all installed with limiting blocks, and the limiting blocks being slidably connected to the limiting grooves, the outside of the reinforced concrete component body being provided with connecting plates, and the top of the reinforced concrete component body being provided with multiple groups of positioning columns.
[0008] Preferably, four groups of second mounting holes are installed on the side wall of the connecting plate, and a bottom plate is provided on the top of the connecting plate.
[0009] Preferably, side plates are symmetrically installed on the top of the bottom plate, a movable bolt is installed at the center of the bottom plate, and the bottom plate is movably connected to the connecting plate through the movable bolt.
[0010] Preferably, a first arc-shaped groove is installed inside the bottom plate on one side of the movable bolt, a first locking pin is provided inside the first arc-shaped groove, and the first arc-shaped groove is slidably connected to the first locking pin and is threadedly connected to the connecting plate.
[0011] Preferably, the inside of each of the side panels is provided with a second arc-shaped groove, and the side walls of each of the side panels are provided with a connecting arm.
[0012] Preferably, the bottom end of each connecting arm is provided with a lower hinge shaft, and the connecting arm is movably connected to the side plate via the lower hinge shaft, and the lower hinge shaft is slidably connected to the second arc groove.
[0013] Preferably, a U-shaped frame is installed on the top of the connecting plate on one side of the base plate, and a mounting plate is provided above the U-shaped frame.
[0014] Preferably, a pin is installed at the top end of each of the U-shaped frames, and the mounting plate is movably connected to the U-shaped frame via the pin.
[0015] Preferably, the top end of each connecting arm is provided with an upper hinge shaft, and the connecting arm is movably connected to the mounting plate via the upper hinge shaft.
[0016] Preferably, four groups of mounting columns are installed on the side walls of the mounting plate, and the mounting columns are connected to the first mounting holes.
[0017] Compared with the existing technology, the beneficial effects of the present invention are: the reinforced concrete component not only realizes convenient multi-position positioning and splicing assembly of reinforced concrete components and circular rotation adjustment of the use position of the reinforced concrete component, but also facilitates the rotation adjustment of the angle of the reinforced concrete component, prevents the later drilling and laying of pipes from affecting the structural strength of the reinforced concrete component, and improves the convenience of assembly of reinforced concrete components and the flexibility of adjustment. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 This is a schematic diagram of the three-dimensional structure of the utility model;
[0019] Figure 2 This is a schematic diagram of the three-dimensional structure of the mounting plate of the present invention;
[0020] Figure 3 This is a schematic diagram of the three-dimensional structure of the connecting plate of the present invention;
[0021] Figure 4 This is a schematic diagram of the three-dimensional structure of the reinforced concrete component body of the present invention;
[0022] Figure 5 This is a schematic diagram of the three-dimensional structure of the blocking block of the present invention.
[0023] In the figure: 1. reinforced concrete component body; 2. first mounting hole; 3. mounting plate; 4. connecting plate; 5. mounting column; 6. pin shaft; 7. U-shaped frame; 8. movable bolt; 9. first arc groove; 10. first locking pin; 11. second arc groove; 12. bottom plate; 13. lower hinge shaft; 14. connecting arm; 15. upper hinge shaft; 16. pipe hole; 17. third arc groove; 18. limit groove; 19. limit block; 20. positioning column; 21. blocking block; 22. mounting block; 23. transverse groove; 24. connecting block; 25. second mounting hole; 26. side plate. DETAILED DESCRIPTION
[0024] In order to further illustrate the technical means and effects adopted by the present invention to achieve the predetermined purpose of the utility model, the following is a detailed description of the specific implementation method, structure, characteristics and effects of the present invention in combination with the accompanying drawings and preferred embodiments.
[0025] See also Figure 1-5The utility model provides an embodiment: an assembled building reinforced concrete component, including a reinforced concrete component body 1 and a first mounting hole 2, the reinforced concrete component body 1 is divided into multiple groups, and multiple groups of first mounting holes 2 with equal spacing are installed on the side wall of the reinforced concrete component body 1 on one side of the first mounting hole 2. A pipe hole 16 is installed on the side wall of the reinforced concrete component body 1, and a transverse groove 23 is installed on the side wall of the pipe hole 16. A third arc groove 17 is installed on the side wall of the pipe hole 16 on the side of the transverse groove 23, and the third arc groove 17 is connected to the transverse groove 23. The inner wall of the pipe hole 16 The parts are all provided with blocking blocks 21, and the blocking blocks 21 are slidably connected to the pipe holes 16. The side walls of the blocking blocks 21 are all installed with mounting blocks 22, and the mounting blocks 22 are slidably connected to the third arc groove 17 and the transverse groove 23. One side of the reinforced concrete component body 1 is installed with connecting blocks 24, and the surfaces of the connecting blocks 24 are all installed with limiting grooves 18. The other side of the reinforced concrete component body 1 is installed with limiting blocks 19, and the limiting blocks 19 are slidably connected to the limiting grooves 18. The outside of the reinforced concrete component body 1 is provided with a connecting plate 4, and the top of the reinforced concrete component body 1 is installed with multiple groups of positioning columns 20;
[0026] When the reinforced concrete component body 1 needs to be assembled and used, the left and right directions can be connected by inserting the limit block 19 into the limit groove 18. Under the sliding cooperation between the limit block 19 and the limit groove 18, the limit block 19 and the connecting block 24 are connected, thereby fixing the two sets of reinforced concrete component bodies 1. The connection in the up and down directions can be completed by inserting the positioning column 20 into the inside of the other set of reinforced concrete component bodies 1, and the positioning connection in the up and down directions is completed. The mounting block 22 is aligned with the transverse groove 23, the blocking block 21 is aligned with the pipe hole 16, and the blocking block 21 is pushed into the pipe hole 16. When the mounting block 22 is moved to the position of the third arc groove 17, the mounting block 22 is rotated. Under the sliding cooperation between the mounting block 22 and the third arc groove 17, the blocking block 21 is fixedly connected to the inside of the pipe hole 16. When the pipe needs to pass through the inside of the reinforced concrete component body 1, the above operation can be repeated in reverse to remove a set of blocking blocks 21 and lay the pipe in the pipe hole 16. This realizes convenient multi-position positioning splicing and assembly of reinforced concrete components, prevents the later drilling and laying of pipes from affecting the structural strength of the reinforced concrete components, and improves the convenience of assembling reinforced concrete components.
[0027] Four sets of second mounting holes 25 are installed on the side wall of the connecting plate 4. A bottom plate 12 is provided at the top of the connecting plate 4. Side plates 26 are symmetrically installed on the top of the bottom plate 12. A movable bolt 8 is installed at the center of the bottom plate 12, and the bottom plate 12 is movably connected to the connecting plate 4 via the movable bolt 8.
[0028] A first arcuate groove 9 is installed inside the bottom plate 12 on one side of the movable bolt 8. A first locking pin 10 is provided inside the first arcuate groove 9. The first arcuate groove 9 is slidably connected to the first locking pin 10 and is threadedly connected to the connecting plate 4.
[0029] The side panels 26 are each provided with a second arc-shaped groove 11, and the side walls of the side panels 26 are each provided with a connecting arm 14. The bottom end of the connecting arm 14 is provided with a lower hinge shaft 13. The connecting arm 14 is movably connected to the side panels 26 via the lower hinge shaft 13, and the lower hinge shaft 13 is slidably connected to the second arc-shaped groove 11.
[0030] A U-shaped frame 7 is installed on the top of the connecting plate 4 on one side of the bottom plate 12, and a mounting plate 3 is provided above the U-shaped frame 7. A pin 6 is installed on the top of each U-shaped frame 7, and the mounting plate 3 is movably connected to the U-shaped frame 7 through the pin 6;
[0031] The top of each connecting arm 14 is provided with an upper hinge shaft 15, and the connecting arm 14 is movably connected to the mounting plate 3 via the upper hinge shaft 15. Four sets of mounting columns 5 are installed on the side wall of the mounting plate 3, and the mounting columns 5 are connected to the first mounting holes 2;
[0032] Install the connecting plate 4 to the wall through the second mounting hole 25, and connect the reinforced concrete component body 1 to the mounting column 5 through the first mounting hole 2. When the position of the reinforced concrete component body 1 needs to be adjusted by circular rotation, loosen the first locking pin 10 and rotate the bottom plate 12. Under the sliding cooperation between the first locking pin 10 and the first arc groove 9, the bottom plate 12 rotates with the movable bolt 8 as the axis, and the bottom plate 12 drives the U-shaped frame 7, the connecting arm 14, the mounting plate 3 and the reinforced concrete component body 1 to rotate through the side plate 26. Then, lock the first locking pin 10 to reconnect the bottom plate 12 and the connecting plate 4. When the angle of the reinforced concrete component body 1 needs to be adjusted, tighten the first locking pin 10. The lower hinge shaft 13 is loosened to separate the connecting arm 14 and the side plate 26, and the connecting arm 14 is swung. The connecting arm 14 drives the lower hinge shaft 13 to slide inside the second arc groove 11. Under the support of the U-shaped frame 7, the connecting arm 14 drives the mounting plate 3 to rotate with the pin shaft 6 as the axis through the upper hinge shaft 15, and the mounting plate 3 drives the reinforced concrete component body 1 to rotate to adjust the angle of the reinforced concrete component body 1. Then, the lower hinge shaft 13 is locked to reconnect the connecting arm 14 and the side plate 26, thereby realizing convenient circular rotation adjustment of the use position of the reinforced concrete component, facilitating the rotation adjustment of the angle of the reinforced concrete component, and improving the flexibility of the adjustment of the reinforced concrete component.
[0033] Working principle: When the reinforced concrete component body 1 needs to be assembled and used, the left and right connection can be achieved by inserting the limit block 19 into the limit groove 18. Under the sliding cooperation of the limit block 19 and the limit groove 18, the limit block 19 and the connecting block 24 are connected, thereby fixing the two sets of reinforced concrete component bodies 1. The connection in the up and down directions can be achieved by inserting the positioning column 20 into the inside of the other set of reinforced concrete component bodies 1 to complete the up and down positioning connection. Align the mounting block 22 with the transverse groove 23, align the blocking block 21 with the pipe hole 16, and push the blocking block 21 into the pipe hole 16. When the mounting block 22 moves to the position of the third arc groove 17, rotate the mounting block 22 to fix the blocking block 21 in the pipe hole 16. When the pipe needs to pass through the inside of the reinforced concrete component body 1, the above operation can be repeated in reverse to remove one set of blocking blocks 21 and lay the pipe in the pipe hole 16. Install the connecting plate 4 to the wall through the second mounting hole 25, and install the reinforced concrete component body 1 through the first The mounting hole 2 is connected to the mounting column 5. When the position of the reinforced concrete component body 1 needs to be adjusted by circular rotation, the first locking pin 10 is loosened and the bottom plate 12 is rotated. The bottom plate 12 rotates with the movable bolt 8 as the axis, and the bottom plate 12 drives the U-shaped frame 7, the connecting arm 14, the mounting plate 3 and the reinforced concrete component body 1 to rotate through the side plate 26. Then, the first locking pin 10 is locked to reconnect the bottom plate 12 and the connecting plate 4. When the angle of the reinforced concrete component body 1 needs to be adjusted, the lower hinge shaft 13 is loosened to make The connecting arm 14 and the side plate 26 are separated, and the connecting arm 14 is swung. The connecting arm 14 drives the lower hinge shaft 13 to slide inside the second arc groove 11. Under the support of the U-shaped frame 7, the connecting arm 14 drives the mounting plate 3 to rotate with the pin shaft 6 as the axis through the upper hinge shaft 15, and the mounting plate 3 drives the reinforced concrete component body 1 to rotate to adjust the angle of the reinforced concrete component body 1. Then, the lower hinge shaft 13 is locked to reconnect the connecting arm 14 and the side plate 26 to complete the use of the prefabricated building reinforced concrete component.
[0034] The above description is merely a preferred embodiment of the present invention and does not constitute any form of limitation to the present invention. Although the present invention has been disclosed as a preferred embodiment as above, it is not intended to limit the present invention. Any person skilled in the art can make some changes or modifications to equivalent embodiments using the technical contents disclosed above without departing from the scope of the technical solution of the present invention. However, any brief modifications, equivalent changes and modifications made to the above embodiments based on the technical essence of the present invention without departing from the content of the technical solution of the present invention are still within the scope of the technical solution of the present invention.
Claims
1. An assembled reinforced concrete component for a building, comprising a reinforced concrete component body and a first mounting hole, characterized in that: The reinforced concrete component body is composed of multiple groups, and the side walls of the reinforced concrete component body are all equipped with multiple groups of first mounting holes at equal intervals. Pipe holes are all installed on the side walls of the reinforced concrete component body on one side of the first mounting holes, and transverse grooves are all installed on the side walls of the pipe holes. A third arc groove is installed on the side walls of the pipe holes on one side of the transverse groove, and the third arc groove is connected to the transverse groove. Blocks are provided inside the pipe holes, and the blocks are slidably connected to the pipe holes. Mounting blocks are installed on the side walls of the blocking blocks, and the mounting blocks are slidably connected to the third arc groove and the transverse groove. Connecting blocks are installed on one side of the reinforced concrete component body, and limiting grooves are installed on the surface of the connecting blocks. Limiting blocks are installed on the other side of the reinforced concrete component body, and the limiting blocks are slidably connected to the limiting grooves. A connecting plate is provided on the outside of the reinforced concrete component body, and multiple groups of positioning columns are installed on the top of the reinforced concrete component body.
2. The assembled reinforced concrete component of claim 1, wherein: Four groups of second mounting holes are installed on the side wall of the connecting plate, and a bottom plate is provided on the top of the connecting plate.
3. The assembled reinforced concrete component of claim 2, characterized in that: The top of the bottom plate is symmetrically mounted with side plates, a movable bolt is mounted at the center of the bottom plate, and the bottom plate is movably connected to the connecting plate via the movable bolt.
4. The assembled reinforced concrete component of claim 3, wherein: A first arc-shaped groove is installed inside the bottom plate on one side of the movable bolt, a first locking pin is provided inside the first arc-shaped groove, and the first arc-shaped groove is slidably connected to the first locking pin and is threadedly connected to the connecting plate.
5. The assembled reinforced concrete component of a building according to claim 3, characterized in that: The insides of the side plates are all provided with second arc grooves, and the side walls of the side plates are all provided with connecting arms.
6. The assembled reinforced concrete component of claim 5, characterized in that: The bottom ends of the connecting arms are all equipped with lower hinge shafts, and the connecting arms are movably connected to the side plates through the lower hinge shafts, and the lower hinge shafts are slidably connected to the second arc-shaped grooves.
7. The assembled reinforced concrete component of a building according to claim 2, characterized in that: A U-shaped frame is installed on the top of the connecting plate on one side of the bottom plate, and a mounting plate is arranged above the U-shaped frame.
8. The assembled reinforced concrete component of claim 7, characterized in that: The top ends of the U-shaped frames are all provided with pins, and the mounting plates are movably connected to the U-shaped frames via the pins.
9. The assembled reinforced concrete component of a building according to claim 5, characterized in that: The top ends of the connecting arms are all equipped with upper hinge shafts, and the connecting arms are movably connected to the mounting plate through the upper hinge shafts.
10. The assembled reinforced concrete component of a building according to claim 7, characterized in that: Four groups of mounting columns are installed on the side walls of the mounting plate, and the mounting columns are connected to the first mounting holes.
Citation Information
Patent Citations
Fabricated building reinforced concrete member
CN216405901U