A fibre tendon lashing device for large diamagnetic floor structures
Patent Information
- Application Number
- CN202521682791.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-08
- Publication Date
- 2026-08-21
- Estimated Expiration
- 2035-08-08
AI Technical Summary
[0004]本实用新型的目的在于提供一种用于大型抗磁地坪结构的纤维筋绑扎装置,以解决上述背景技术中提出目前在现有技术中,手工操作需逐个穿带、拉紧、剪断,动作繁琐且重复,尤其在批量绑扎场景(如建筑纤维筋固定、线缆整理等)中,会显著拖慢整体施工进度,难以适应大规模生产或施工需求,而且剪断后的扎带尾端长度不一致,突出的长尾可能形成安全隐患
[0018]1、本申请通过外壳、前盖板、后盖板、挤压板和连接轴的设置,通过直接安装多组尼龙扎带的设置,避免了人工一跟一根的去绑扎,同时增加了实用的效果和提高了效率。
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Figure CN224664167U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of prestressed structural beam technology, and in particular to a fiber reinforcement binding device for large antimagnetic floor structures. Background Technology
[0002] Fiber-reinforced composite (FRP) tying refers to the construction process of connecting or fixing fiber-reinforced composite bars (FRPs) according to design requirements to form an integral load-bearing structure. FRP is a new type of building material, composed of glass fiber, carbon fiber, aramid fiber, etc., as reinforcements, combined with a resin matrix. It features lightweight, high strength, corrosion resistance, and electromagnetic interference resistance, and is often used to replace traditional steel bars in special engineering scenarios. Fiber-reinforced composite tying is a key process to fully utilize its material advantages and must strictly adhere to design specifications to ensure the safety and durability of the structure. However, currently there is no fiber-reinforced composite tying device specifically for nylon cable ties, and most tying is done manually. Therefore, a fiber-reinforced composite tying device for large-scale anti-magnetic flooring structures is needed.
[0003] In existing technologies, manual operation requires threading, tightening, and cutting the cable ties one by one, which is tedious and repetitive. Especially in batch binding scenarios (such as fiber reinforcement fixing, cable organization, etc.), it will significantly slow down the overall construction progress and is difficult to adapt to the needs of large-scale production or construction. Moreover, the length of the cut cable ties is inconsistent, and the protruding long tail may pose a safety hazard. Utility Model Content
[0004] The purpose of this utility model is to provide a fiber optic cable binding device for large-scale antimagnetic floor structures, in order to solve the problem mentioned in the background art that in the current existing technology, manual operation requires threading, tightening and cutting one by one, which is cumbersome and repetitive. Especially in batch binding scenarios (such as fixing building fiber optic cables, cable management, etc.), it will significantly slow down the overall construction progress and is difficult to adapt to the needs of large-scale production or construction. Moreover, the length of the cut cable ends is inconsistent, and the protruding long tail may pose a safety hazard.
[0005] To achieve the above objectives, this utility model provides the following technical solution: a fiber reinforcement binding device for large-scale antimagnetic flooring structures, comprising a base, a battery disposed on the lower surface of the base, a button disposed on one side surface of the base, and a housing fixedly connected to the upper surface of the base, and further comprising:
[0006] The extrusion plate has an electric slide table inside the outer shell, and extrusion plates are provided on both sides of the electric slide table.
[0007] The track has a first motor mounted on one side surface of the outer shell, and the output end of the first motor is fixedly connected to the track.
[0008] The adhesive shaft has a guide seat fixedly connected to the surface of the housing, and a third motor is provided on one side surface of the guide seat. The output end of the third motor is fixedly connected to the adhesive shaft.
[0009] The cutting blade has a guide groove inside the guide seat, the cutting blade is placed inside the guide groove, and a cutting seat is placed above the cutting blade.
[0010] Preferably, a first conveying shaft is provided inside the outer casing, a front cover plate is inserted through one side surface of the extrusion plate, a connecting shaft is provided at one end of the front cover plate, and a rear cover plate is provided on one side surface of the connecting shaft.
[0011] Preferably, a storage trough is formed between the front cover and the outer shell, and the width of the front cover is greater than the width of the rear cover.
[0012] Preferably, a second motor is provided on the outer surface of the guide seat, and the output end of the second motor and the second transmission shaft are fixedly connected.
[0013] Preferably, a rear guard plate is fixedly connected to the outer surface of the guide seat, a first electric shaft is provided on one side surface of the rear guard plate, and a guide plate is provided on the outer surface of the first electric shaft.
[0014] Preferably, a laser sensor is provided on the outer surface of the guide seat, and guide grooves are formed on the outer surfaces of the guide seat and the rear guard plate.
[0015] Preferably, a second electric shaft is provided inside the guide plate, and a limit plate is fixedly connected to the outer surface of the second electric shaft.
[0016] Preferably, the rear guard plate is provided with an electric sliding groove inside, the electric sliding groove is provided with an electric sliding component inside, and the outer surface of the electric sliding component is provided with a tightening block.
[0017] Compared with the prior art, the beneficial effects of this utility model are:
[0018] 1. This application, through the design of the outer shell, front cover plate, rear cover plate, extrusion plate and connecting shaft, and by directly installing multiple sets of nylon cable ties, avoids the need for manual tying one by one, while increasing practicality and improving efficiency.
[0019] 2. This application accelerates the binding speed of nylon cable ties by setting up a guide seat, a first motor, a second motor, a third motor, a guide groove, and a cutting seat, reducing manual labor consumption and greatly improving work efficiency. At the same time, the automated design makes up for the cumbersome operation and standardizes the length of the cable tie tail. Attached Figure Description
[0020] Figure 1This is a side view of a fiber optic binding device for a large antimagnetic floor structure proposed in this utility model.
[0021] Figure 2 This is a schematic diagram of the front and rear cover plates of a fiber optic binding device for a large antimagnetic floor structure proposed in this utility model.
[0022] Figure 3 This utility model provides a schematic diagram of the cooperative structure of an electric slide table and an extrusion plate for a fiber reinforcement binding device used in a large antimagnetic floor structure.
[0023] Figure 4 This utility model provides a schematic diagram of the interaction between the third motor and the adhesive shaft in a fiber optic binding device for large-scale antimagnetic flooring structures.
[0024] Figure 5 for Figure 4 Enlarged structural diagram at point A in the middle.
[0025] In the diagram: 1. Base; 2. Battery; 3. Button; 4. Housing; 5. First transmission shaft; 6. Electric slide; 7. Extrusion plate; 8. Front cover plate; 9. Rear cover plate; 10. Connecting shaft; 11. Storage tank; 12. First motor; 13. Track; 14. Guide seat; 15. Second motor; 16. Second transmission shaft; 17. Third motor; 18. Adhesive shaft; 19. Rear guard plate; 20. First electric shaft; 21. Guide plate; 22. Laser sensor; 23. Guide groove; 24. Second electric shaft; 25. Limiting plate; 26. Cutting blade; 27. Cutting seat; 28. Electric slide groove; 29. Electric sliding component; 30. Tightening block. Detailed Implementation
[0026] 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.
[0027] Please see Figure 1-5This utility model provides a technical solution: a fiber optic cable tying device for large-scale antimagnetic flooring structures, comprising a base 1, a battery 2 disposed on the lower surface of the base 1, a button 3 disposed on one side surface of the base 1, a housing 4 fixedly connected to the upper surface of the base 1, an electric slide 6 disposed inside the housing 4, and compression plates 7 disposed on both sides of the electric slide 6. In conjunction with the movement of the electric slide 6, the compression plates 7 drive the nylon cable ties to move continuously towards the center. A first motor 12 is disposed on one side surface of the housing 4, and a track 13 is fixedly connected to the output end of the first motor 12. The track 13 will... The nylon cable ties are conveyed forward. A guide seat 14 is fixedly connected to the surface of the outer shell 4. A third motor 17 is provided on one side of the guide seat 14. The output end of the third motor 17 is fixedly connected to the adhesive shaft 18. The third motor 17 drives the adhesive shaft 18 to rotate, which guides the nylon cable ties. A guide groove 23 is provided inside the guide seat 14. A cutting blade 26 is provided inside the guide groove 23. A cutting seat 27 is provided above the cutting blade 26. After the nylon cable ties are tied, the cutting blade 26 works and cooperates with the cutting seat 27 to cut the nylon cable ties.
[0028] The outer casing 4 is equipped with a first conveyor shaft 5. A front cover plate 8 is inserted through one side surface of the extrusion plate 7. A connecting shaft 10 is provided at one end of the front cover plate 8. A rear cover plate 9 is provided on one side surface of the connecting shaft 10. The nylon cable ties can be flattened by the cooperation of the front cover plate 8 and the rear cover plate 9, so that they can be installed in the storage tank 11. The rear cover plate 9 can be lifted for feeding operations by the setting of the connecting shaft 10.
[0029] Between the front cover plate 8 and the outer shell 4 is a storage trough 11. The width of the front cover plate 8 is greater than the width of the rear cover plate 9. The function of the storage trough 11 is to place nylon cable ties for conveying. The larger width of the front cover plate 8 is to maintain the stability of the rear cover plate 9 and the connecting shaft 10.
[0030] A second motor 15 is provided on the outer surface of the guide seat 14. The output end of the second motor 15 is fixedly connected to the second transmission shaft 16. The function of the second transmission shaft 16 is to transport the nylon cable ties out of the guide seat 14, laying the groundwork for subsequent processes.
[0031] A rear guard plate 19 is fixedly connected to the outer surface of the guide seat 14. A first electric shaft 20 is provided on one side surface of the rear guard plate 19. A guide plate 21 is provided on the outer surface of the first electric shaft 20. By setting the guide plate 21 and the first electric shaft 20, the nylon cable tie can be bent by adjusting the angle of the guide plate 21.
[0032] A laser sensor 22 is provided on the outer surface of the guide seat 14, and a guide groove 23 is provided on the outer surface of the guide seat 14 and the rear guard plate 19. The function of the laser sensor 22 is to detect whether the nylon cable tie has passed through completely. The opening of the guide groove 23 allows the nylon cable tie to be tightened and cut more quickly.
[0033] The guide plate 21 is equipped with a second electric shaft 24. A limit plate 25 is fixedly connected to the outer surface of the second electric shaft 24. The rotation of the second electric shaft 24 drives the limit plate 25 to rotate. When the tail end of the nylon cable tie passes the laser sensor 22, the limit plate 25 is raised to block the tail end.
[0034] The rear guard plate 19 is provided with an electric slide groove 28, and an electric slide member 29 is provided inside the electric slide groove 28. A tightening block 30 is provided on the outer surface of the electric slide member 29. When the first end of the nylon cable tie passes the tightening block 30, the tightening block 30 tightens, and the electric slide groove 28 drives the electric slide member 29 to move, thereby tightening the nylon cable tie.
[0035] Working principle: First, after the fiberglass reinforcement is arranged, it needs to be fixed with nylon cable ties. In the existing technology, manual operation requires threading, tightening and cutting each cable tie one by one, which is tedious and repetitive. Especially in batch binding scenarios (such as fixing building fiberglass reinforcement, cable arrangement, etc.), it will significantly slow down the overall construction progress and is difficult to adapt to the needs of large-scale production or construction. Moreover, the length of the cut cable tie ends is inconsistent, and the protruding long ends may pose a safety hazard. This device compensates for the tedious operation through automated design and standardizes the length of the cable tie ends. First, pick up the device and open the rear cover plate 9 set on the inner side of the outer shell 4. When the rear cover plate 9 is opened, the connecting shaft 10 will rotate, which will connect the front cover plate 8 and the rear cover plate 9. Then, put the nylon cable ties to be used into the storage tank 11, and then align the notch of the guide seat 14 with the intersection of the fiberglass reinforcement. Press the button 3 on the base 1, and the battery 2 on the base 1 will provide power.
[0036] Inside the outer casing 4, there is a first conveyor shaft 5. The first conveyor shaft 5 is driven by an internal motor. When the first conveyor shaft 5 is started, the nylon cable tie at the center position will move forward under the push of the first conveyor shaft 5, while the other nylon cable ties will not move due to the limitation of the storage tank 11. The nylon cable ties will enter the track 13, and the track 13 will be started under the drive of the first motor 12, which will drive the nylon cable ties forward.
[0037] After a nylon cable tie is removed from the storage tank 11, the extrusion plate 7 moves under the drive of the electric slide table 6, extruding the remaining nylon cable ties to prevent gaps from appearing in the middle.
[0038] When the nylon cable tie is conveyed to the guide seat 14, the second motor 15 starts, driving the second conveyor shaft 16 to rotate, causing the nylon cable tie to be conveyed forward. Due to the design of the guide seat 14, the nylon cable tie will move upward along the arc-shaped groove. When the laser sensor 22 inside the guide seat 14 detects the nylon cable tie, the first electric shaft 20 on the rear guard plate 19 starts, driving the guide plate 21 to rotate. The angle of the guide plate 21 changes, causing the nylon cable tie to bend. At the same time, the third motor 17 also starts, driving the adhesive shaft 18 to rotate. When the first end of the nylon cable tie bends due to the guide plate 21, the adhesive shaft 18 will drive the nylon cable tie to bend in an arc. At this time, the tail end of the nylon cable tie will also pass the laser sensor. 22. When the laser sensor 22 detects the passing of the tail end, the second electric shaft 24 will rotate, driving the limiting plate 25 to form a 90-degree angle to block the tail end of the nylon cable tie from moving upward, so that the insertion port of the tail end and the guide groove 23 are in a through state. When the adhesive shaft 18 guides the head end of the nylon cable tie through the tail end groove of the nylon cable tie, the head end will enter the guide groove 23. Then the head end will pass through the cutting seat 27 and contact the tightening block 30. After the head end passes through the tightening block 30, the tightening block 30 tightens, the electric slide 28 is activated, driving the electric slide 29 to pull and tighten. After tightening, the cutting blade 26 will extend and retract to cut, and cooperate with the cutting seat 27 to cut off the excess nylon cable tie, thus unifying the length of the cable tie tail end.
[0039] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A fiber reinforcement binding device for large antimagnetic floor structures, comprising a base (1), a battery (2) disposed on the lower surface of the base (1), a button (3) disposed on one side surface of the base (1), and a housing (4) fixedly connected to the upper surface of the base (1), characterized in that, It also includes: The extrusion plate (7) is provided inside the outer shell (4), and the extrusion plate (7) is provided on both sides of the electric slide (6); Track (13), a first motor (12) is provided on one side surface of the outer shell (4), and the output end of the first motor (12) is fixedly connected to the track (13); The adhesive shaft (18) is fixedly connected to the surface of the outer shell (4), and a guide seat (14) is provided on one side surface of the guide seat (14). The output end of the third motor (17) and the adhesive shaft (18) are fixedly connected. The cutting blade (26) is provided in the guide groove (23) inside the guide seat (14), the cutting blade (26) is provided inside the guide groove (23), and the cutting seat (27) is provided above the cutting blade (26).
2. The fiber reinforcement binding device for large-scale antimagnetic flooring structures according to claim 1, characterized in that: The outer casing (4) is provided with a first transmission shaft (5), a front cover plate (8) is inserted through one side surface of the extrusion plate (7), a connecting shaft (10) is provided at one end of the front cover plate (8), and a rear cover plate (9) is provided on one side surface of the connecting shaft (10).
3. The fiber reinforcement binding device for large-scale antimagnetic flooring structures according to claim 2, characterized in that: The front cover (8) and the outer shell (4) are connected by a storage trough (11), and the width of the front cover (8) is greater than the width of the rear cover (9).
4. The fiber reinforcement binding device for large-scale antimagnetic flooring structures according to claim 1, characterized in that: The outer surface of the guide seat (14) is provided with a second motor (15), and the output end of the second motor (15) and the second transmission shaft (16) are fixedly connected.
5. A fiber optic binding device for large-scale antimagnetic flooring structures according to claim 4, characterized in that: The outer surface of the guide seat (14) is fixedly connected to a rear guard plate (19), and a first electric shaft (20) is provided on one side surface of the rear guard plate (19), and a guide plate (21) is provided on the outer surface of the first electric shaft (20).
6. The fiber reinforcement binding device for large-scale antimagnetic flooring structures according to claim 1, characterized in that: A laser sensor (22) is provided on the outer surface of the guide seat (14), and guide grooves (23) are provided on the outer surfaces of the guide seat (14) and the rear guard plate (19).
7. A fiber optic binding device for large-scale antimagnetic flooring structures according to claim 5, characterized in that: The guide plate (21) is provided with a second electric shaft (24) inside, and a limit plate (25) is fixedly connected to the outer surface of the second electric shaft (24).
8. A fiber optic binding device for large-scale antimagnetic flooring structures according to claim 5, characterized in that: The rear guard plate (19) is provided with an electric sliding groove (28) inside, and an electric sliding component (29) is provided inside the electric sliding groove (28). A tightening block (30) is provided on the outer surface of the electric sliding component (29).