Overall modular quick-release structure of plate buckle frame

The design of U-shaped plates, positioning grooves and reinforced semi-circular rings solves the problem of inconvenient removal of the disc buckle frame, achieves rapid installation and disassembly, and improves construction efficiency and structural stability.

CN223374073UActive Publication Date: 2025-09-23CHINA CONSTR FIFTH ENG DIV CORP LTD
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Patent Information

Application Number
CN202422168052.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-05
Publication Date
2025-09-23
Estimated Expiration
2034-09-05

AI Technical Summary

Technical Problem

The existing buckle rack is not easy to disassemble quickly during dismantling, resulting in low construction efficiency.

Method used

The U-shaped plate, positioning groove, fixed semi-circular ring and other designs enable the sweeping rod to be quickly and accurately connected to the starting pole, and the connection stability is enhanced by the combination of the protrusion and recess of the reinforced semi-circular ring; a rotating sleeve and a reinforcement platform are set on the universal wheel to improve flexibility and stability.

Benefits of technology

The fast installation and disassembly of the buckle frame is realized, the construction efficiency is improved, and the stability and safety of the structure are enhanced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of supporting devices, in particular to a disc buckle frame integral modularization quick dismounting structure which comprises a starting vertical rod, a disc and a plurality of bottom horizontal tubes, the disc is fixedly connected to the starting vertical rod, positioning grooves are formed in the disc in a circle center array mode, U-shaped plates are arranged at the two ends of the bottom horizontal tubes, and the closed ends of the U-shaped plates are fixedly connected to the tail ends of the bottom horizontal tubes. The U-shaped plate is provided with a through hole which is the same as the positioning groove, the U-shaped plate is provided with a pair of fixed semi-circular rings, the upper surface of each fixed semi-circular ring is provided with a groove, the other fixed semi-circular ring is fixedly provided with a flange which is matched with the groove, the lower ends of the pair of fixed semi-circular rings are fixedly provided with a positioning plate, and the positioning plate is inserted into the positioning groove. During use, the starting vertical rod is fixed to the ground, then the opening of the U-shaped plate on the bottom horizontal tube is in butt joint with the circular ring on the starting vertical rod, the through hole in the U-shaped plate is aligned with the positioning groove in the disc, the positioning plates on the pair of fixed semicircular rings are inserted into the positioning groove, and fixing is completed.
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Description

Technical Field

[0001] The present application relates to the technical field of support devices, and in particular to an integral modular quick-release structure of a buckle rack. Background Art

[0002] The "pan-lock" scaffold, also known as the "pan-lock" scaffold, is a new type of scaffolding system used in construction. It primarily consists of vertical poles, horizontal poles, diagonal poles, and joints, with the joints utilizing a "pan-lock" connection. As an upgraded version of the "bowl-lock" scaffold, it boasts a unique structural design and connection method. Pan-lock scaffolding is widely used in support designs for general viaducts and other bridge projects, tunnels, factories, elevated water towers, power plants, refineries, and specialized plant buildings. It is also suitable for overpasses, span scaffolding, storage racks, chimneys, water towers, interior and exterior decoration, large concert stages, backdrops, stands, viewing platforms, modeling scaffolds, and stair systems.

[0003] In the prior art, a buckle rack is usually installed on a column by mounting a crossbeam on the column. To firmly connect the crossbeam to the column, bolts or pin-shaped plates can be used for fixing. When fixing with a pin-shaped plate, a hammer is usually used to ensure that it is completely fixed. However, it takes a certain amount of time to remove it. Therefore, the present application provides an overall modular quick-disassembly structure of the buckle rack. Utility Model Content

[0004] In view of the shortcomings of the existing technology, the purpose of this application is to provide an overall modular quick-disassembly structure of a buckle frame, which has solved the technical problem of the inconvenience of dismantling the buckle scaffolding.

[0005] The above-mentioned purpose of the present application is achieved through the following technical solutions: an overall modular quick-release structure of a disc buckle rack, comprising a starting pole, a disc and a plurality of sweeping rods, the disc surrounding the outside of the starting pole and fixedly connected to the starting pole, a positioning groove being provided in the circular axis array on the disc, U-shaped plates being provided at both ends of the sweeping rod, a closed end of the U-shaped plate being fixedly connected to one end of the sweeping rod, a through hole identical to the positioning groove being provided on the U-shaped plate, a pair of fixed semicircular rings being provided on the U-shaped plate, one of the fixed semicircular rings having grooves at both ends, and the other fixed semicircular ring having flanges matching the grooves fixedly provided at both ends, a pair of positioning plates being fixedly provided at the lower ends of the fixed semicircular rings, the positioning plates being inserted into the positioning grooves and passing through the through holes.

[0006] By adopting the above technical solution, when installation is required, the starting pole is first fixed to the ground, and then the openings of the U-shaped plates on the multiple sweeping rods are aligned with the circular rings on the starting pole, and the through holes on the U-shaped plates are aligned with the positioning grooves on the discs, and the positioning plates on a pair of fixed semicircular rings are inserted into the positioning grooves, and the flange on one fixed semicircular ring is aligned with the groove on the other to complete the splicing. Since the splicing position of the spliced ​​pair of fixed semicircular rings requires up and down force, and the sweeping rods need to be removed to be subjected to left and right force, their fixation can be ensured. At the same time, when disassembly is required, it is only necessary to disassemble the splicing of the fixed semicircular rings, and to separate the positioning plates from the positioning grooves to separate the sweeping rods from the starting pole. This design is more convenient than the existing technology in both installation and disassembly.

[0007] Furthermore, a pair of reinforcing semicircular rings are provided at the upper ends of the pair of fixed semicircular rings, protrusions are fixedly provided at the lower ends of the pair of reinforcing semicircular rings, and recesses matching the protrusions are opened at the upper ends of the pair of fixed semicircular rings.

[0008] By adopting the above technical solution, in order to further reinforce, in this design, optimization is performed on the fixed semicircular ring. The reinforcing semicircular ring is set at the upper end of the fixed semicircular ring. After a pair of fixed semicircular rings are fixed, the protrusions on the reinforcing plate semicircular ring are inserted into the recesses on the fixed semicircular rings to reinforce it.

[0009] Furthermore, a notch is provided at the joint between one of the reinforcing semicircular rings and the other reinforcing semicircular ring, and a slot block matching the notch is fixedly provided on the other reinforcing semicircular ring.

[0010] By adopting the above technical solution, the stability after installation is further enhanced by splicing the reinforced semi-circular rings through groove blocks and notches.

[0011] Furthermore, a universal wheel is fixedly mounted on the bottom of the starting upright pole, and a buckle is rotatably provided on the universal wheel.

[0012] By adopting the above technical solution, considering that the scaffolding needs to be moved after it is spliced, the provision of universal wheels can further improve its flexibility.

[0013] Furthermore, a threaded strip is provided on one end of the starting upright rod close to the universal wheel, and a rotating sleeve is threadedly provided on the starting upright rod at the position where the threaded strip is provided.

[0014] By adopting the above technical solution, considering that the construction site is usually chaotic, the purpose of setting up a rotating sleeve is to protect the buckle on the universal wheel from detaching after the universal wheel is fixed, thereby ensuring the stability of the scaffolding. The specific solution is that after the buckle on the universal wheel is fixed, the rotating sleeve is rotated down to cover the universal wheel.

[0015] Furthermore, a ring of reinforcement platforms is fixedly provided around the bottom of the rotating sleeve.

[0016] By adopting the above technical solution, the reinforcement platform provided on the outer side of the rotating sleeve can increase the contact with the ground, thereby ensuring the stability of the starting pole.

[0017] Furthermore, a rubber layer is fixedly provided on the bottom of the reinforcement platform.

[0018] By adopting the above technical solution, the provision of the rubber layer can increase the friction between the reinforced bottom and the rubber layer.

[0019] Furthermore, the starting pole is made of carbon steel.

[0020] In summary, this application includes at least one of the following beneficial technical effects:

[0021] 1. The structure uses U-shaped plates, positioning grooves, fixed semi-circular rings and other designs, so that the sweeping rod can be quickly and accurately connected to the starting pole, and disassembly can also be completed quickly, greatly improving construction efficiency.

[0022] 2. The setting of the reinforcing semicircular ring increases the stability of the structure. The combination of protrusions and recesses further strengthens the connection between the sweeping rod and the starting pole. The splicing of the reinforcing semicircular rings through groove blocks and notches further improves the stability of the overall structure.

[0023] 3. The design of the rotating sleeve can protect the buckle on the universal wheel and prevent it from accidentally loosening, thereby ensuring the stability of the scaffolding and improving the safety of construction.

[0024] 4. The reinforcement platform and rubber layer at the bottom of the rotating sleeve increase the friction with the ground, further enhancing the stability of the scaffolding. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 2 is a schematic diagram of the overall structure of the embodiment;

[0026] Figure 2 is a schematic diagram of the overall structure from another perspective in the embodiment;

[0027] Figure 3 In the embodiment Figure 2 A partial enlarged schematic diagram of the part in the middle;

[0028] Figure 4 is an exploded schematic diagram of the overall structure in the embodiment;

[0029] Figure 5 In the embodiment Figure 4 A partial enlarged schematic diagram of part B in the middle.

[0030] Figure numerals: 1. Starting pole; 10. Disc; 11. Positioning groove; 2. Sweeping rod; 3. U-shaped plate; 30. Through hole; 4. Fixed semicircular ring; 40. Groove; 41. Flange; 42. Positioning plate; 5. Reinforcement semicircular ring; 50. Protrusion; 51. Recess; 6. Notch; 60. Slot block; 7. Universal wheel; 70. Buckle; 8. Threaded strip; 80. Rotating sleeve; 9. Reinforcement platform; 90. Rubber layer. DETAILED DESCRIPTION

[0031] The present application is further described in detail below with reference to the accompanying drawings.

[0032] Example, see Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 and Figure 5 , a modular quick-release structure of a disc buckle rack, including a starting pole 1, a disc 10 and a plurality of sweeping rods 2, the disc 10 surrounds the outside of the starting pole 1 and is fixedly connected to the starting pole 1, a circular axis array on the disc 10 is provided with a positioning groove 11, U-shaped plates 3 are provided at both ends of the sweeping rod 2, and one closed end of the U-shaped plate 3 is fixedly connected to one end of the sweeping rod 2, and a through hole 30 is provided on the U-shaped plate 3 that is the same as the positioning groove 11, and a pair of fixed semicircular rings 4 are provided on the U-shaped plate 3, one of the fixed semicircular rings 4 has grooves 40 at both ends, and the other fixed semicircular ring 4 is fixedly provided with flanges 41 matching the grooves 40 at both ends, and a pair of fixed semicircular rings 4 are fixedly provided with positioning plates 42 at the lower ends, which are inserted into the positioning grooves 11 and pass through the through holes 30. When installation is required, first install the starting pole 1 Fixed on the ground, then align the openings of the U-shaped plates 3 on the multiple sweeping rods 2 with the circular rings on the starting upright pole 1, and align the through holes 30 on the U-shaped plates 3 with the positioning grooves 11 on the disc 10, and at the same time, insert the positioning plates 42 on a pair of fixed semicircular rings 4 into the positioning grooves 11, and at the same time, dock the flange 41 on one fixed semicircular ring 4 with the groove 40 on the other to complete the splicing. Since the splicing position of the spliced ​​pair of fixed semicircular rings 4 requires up and down force, and the sweeping rod 2 needs to be removed and the left and right force, it can ensure its fixation. At the same time, when disassembly is needed, it is only necessary to disassemble the splicing of the fixed semicircular rings 4, and let the positioning plate 42 disengage from the positioning groove 11 to separate the sweeping rod 2 from the starting upright pole 1. This design is more convenient than the prior art in both installation and removal.

[0033] In this embodiment, a pair of reinforcing semicircular rings 5 ​​are provided at the upper ends of a pair of fixed semicircular rings 4, and a protrusion 50 is fixedly provided at the lower ends of the pair of reinforcing semicircular rings 5. A recess 51 matching the protrusion 50 is opened at the upper ends of the pair of fixed semicircular rings 4. In order to further reinforce, in this design, optimization is performed on the fixed semicircular rings 4. The reinforcing semicircular rings 5 ​​provided at the upper ends of the fixed semicircular rings 4, after the pair of fixed semicircular rings 4 are fixed, allow the protrusion 50 on the reinforcing plate semicircular ring to be inserted into the recess 51 on the fixed semicircular ring 4, so as to reinforce it.

[0034] In this embodiment, a slot 6 is provided at the joint between one reinforcing semicircular ring 5 and the other reinforcing semicircular ring 5, and a slot block 60 matching the slot 6 is fixedly provided on the other reinforcing semicircular ring 5. By splicing the reinforcing semicircular rings 5 ​​through the slot block 60 and the slot 6, the stability after installation is further enhanced.

[0035] In this embodiment, a universal wheel 7 is fixedly installed at the bottom of the starting upright 1, and a buckle 70 is rotatably provided on the universal wheel 7. Considering that the scaffolding needs to be moved after the scaffolding is completed, the setting of the universal wheel 7 can further improve its flexibility.

[0036] In this embodiment, a threaded strip 8 is provided on one end of the starting upright 1 near the universal wheel 7. A rotating sleeve 80 is threadedly provided on the starting upright 1 at the position where the threaded strip 8 is provided. Considering that the construction site is usually relatively chaotic, the purpose of providing the rotating sleeve 80 is to protect the buckle 70 on the universal wheel 7 from being detached after the universal wheel 7 is fixed, thereby ensuring the stability of the scaffolding. The specific solution is that after the buckle 70 on the universal wheel 7 is fixed, the rotating sleeve 80 is rotated down to cover the universal wheel 7.

[0037] In this embodiment, a ring of reinforcement platform 9 is fixedly provided around the bottom of the rotating sleeve 80. When the reinforcement platform 9 is provided on the outside of the rotating sleeve 80, it can increase the contact with the ground to ensure the stability of the starting pole 1. A rubber layer 90 is fixedly provided at the bottom of the reinforcement platform 9. The setting of the rubber layer 90 can increase the friction between the reinforcement bottom and the rubber layer 90. The starting pole 1 is made of carbon steel.

[0038] Specific implementation process: Align the notches 6 of the U-shaped plates 3 at both ends of the sweeping rod 2 with the disc 10 on the starting post 1, ensuring that the through-holes 30 in the U-shaped plates 3 align with the positioning grooves 11 in the disc 10. Insert the positioning plates 42 on the pair of fixed semicircular rings 4 into the positioning grooves 11, and align the flange 41 on one fixed semicircular ring 4 with the groove 40 on the other, completing the fixed connection between the sweeping rod 2 and the starting post 1. A pair of reinforcing semicircular rings 5 ​​are positioned above the pair of fixed semicircular rings 4, ensuring that the protrusions 50 on the reinforcing semicircular rings 5 ​​engage with the notches 51 on the fixed semicircular rings 4. If necessary, the slots 60 between the reinforcing semicircular rings 5 ​​can be spliced ​​to further enhance stability. Universal wheels 7 are installed at the bottom of the starting post 1 and rotated to set the buckle 70 as needed. A rotating sleeve 80 is installed at the location where the threaded strip 8 is provided on the starting post 1 and rotated to cover the universal wheels 7 to protect the buckle 70 and increase stability. When dismantling, the joints of the fixed semicircular ring 4 are disassembled to separate the positioning plate 42 from the positioning groove 11, and the sweeping rod 2 is separated from the starting pole 1, and all the sweeping rods 2 are removed one by one.

[0039] The embodiments of this specific implementation method are all preferred embodiments of the present application and are not intended to limit the scope of protection of the application. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.

Claims

1. A modular quick-release structure for a buckle rack, characterized in that: The utility model comprises a starting upright pole (1), a disc (10) and a plurality of sweeping rods (2), wherein the disc (10) surrounds the outside of the starting upright pole (1) and is fixedly connected to the starting upright pole (1), a circular axis array on the disc (10) is provided with a positioning groove (11), and both ends of the sweeping rod (2) are provided with a U-shaped plate (3), a closed end of the U-shaped plate (3) is fixedly connected to one end of the sweeping rod (2), and a groove corresponding to the positioning groove (11) is provided on the U-shaped plate (3). The U-shaped plate (3) has a through hole (30) with the same structure, and a pair of fixed semicircular rings (4) are provided on the U-shaped plate (3), wherein grooves (40) are provided at both ends of one of the fixed semicircular rings (4), and flanges (41) matching the grooves (40) are fixedly provided at both ends of the other fixed semicircular ring (4), and positioning plates (42) are fixedly provided at the lower ends of the pair of fixed semicircular rings (4), and the positioning plates (42) are inserted into the positioning grooves (11) and pass through the through hole (30).

2. The overall modular quick-release structure of the buckle rack according to claim 1, characterized in that: A pair of reinforcing semicircular rings (5) are provided at the upper ends of the pair of fixed semicircular rings (4), protrusions (50) are fixedly provided at the lower ends of the pair of reinforcing semicircular rings (5), and recesses (51) matching the protrusions (50) are provided at the upper ends of the pair of fixed semicircular rings (4).

3. The overall modular quick-release structure of the buckle rack according to claim 2, characterized in that: A notch (6) is provided at the joint between one of the reinforcing semicircular rings (5) and the other reinforcing semicircular ring (5), and a slot block (60) matching the notch (6) is fixedly provided on the other reinforcing semicircular ring (5).

4. The integrated modular quick-release structure of the buckle rack according to claim 1, characterized in that: A universal wheel (7) is fixedly mounted on the bottom of the starting upright pole (1), and a buckle (70) is rotatably arranged on the universal wheel (7).

5. The integrated modular quick-release structure of the buckle rack according to claim 4, characterized in that: A threaded strip (8) is provided on one end of the starting upright pole (1) close to the universal wheel (7), and a rotating sleeve (80) is threadedly connected to the starting upright pole (1) at the position where the threaded strip (8) is provided.

6. The integrated modular quick-release structure of the buckle rack according to claim 5, characterized in that: A ring reinforcement platform (9) is fixedly provided around the bottom of the rotating sleeve (80).

7. The integrated modular quick-release structure of the buckle rack according to claim 6, characterized in that: A rubber layer (90) is fixedly provided on the bottom of the reinforcement platform (9).

8. The integrated modular quick-release structure of the buckle rack according to claim 1, characterized in that: The starting pole (1) is made of carbon steel.