Steel wire mesh frame oblique insertion wire end hook bending machine
By designing a wire mesh oblique wire end hook bending machine, the telescopic cylinder and drive cylinder drive movable plate and bending arm are used for precise control, the problem of hook accuracy deviation in the existing technology is solved, and efficient and accurate hook processing is achieved.
Patent Information
- Application Number
- CN202421470469.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-26
- Publication Date
- 2025-06-13
- Estimated Expiration
- 2034-06-26
AI Technical Summary
During the hook processing process of existing wire frames, the hook accuracy deviation caused by manual operation, affecting the firmness and processing efficiency of welding.
A steel wire mesh oblique wire end hook bending machine is designed, including load-bearing plate, oil supply assembly and processing assembly. The movable plate lifting and lowering is driven by the telescopic cylinder, combining precise control of the positioning rod and the connecting sleeve to ensure consistent accuracy of the hook. At the same time, multiple sets of bent arms are driven by driving cylinders for processing to adapt to different wire specifications and bending requirements, and reduce wear through continuous oil supply.
High-precision processing of wire end hooks is achieved, which reduces deviations caused by manual intervention, improves welding firmness and processing efficiency, and extends the service life of the equipment.
Smart Images

Figure CN222970834U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of bending machines, in particular to a bending machine for the end of the inclined inserted wire of a steel wire grid. Background Technique
[0002] The end of the inclined inserted wire of the steel wire grid is a commonly used connecting element in construction engineering. It is usually made of steel wire and is used to reinforce concrete components. The design of this end allows the steel wire to be fixed in the concrete in an inclined inserted manner, thereby providing better anchoring effect and shear resistance. When bending the end of the steel wire, a bending machine is required for processing. The bending machine is mainly used to process the end of the inserted wire into a bent hook shape. In the existing steel wire grid frames, during the processing, manual bending work is usually carried out on the end of the frame, resulting in deviation in the bending accuracy of the frame, making the welding not firm and easy to break open, affecting the processing efficiency and quality. Therefore, we propose a bending machine for the end of the inclined inserted wire of the steel wire grid to solve the problems mentioned above. Content of the Utility Model
[0003] In order to overcome the problems that in the existing steel wire grid frames, manual bending work is usually carried out on the end of the frame, resulting in deviation in the bending accuracy of the frame, making the welding not firm and easy to break open, and affecting the processing efficiency and quality.
[0004] The technical solution of the utility model is: a bending machine for the end of the inclined inserted wire of a steel wire grid, including a load-bearing plate, an oil supply component and a processing component; an oil supply component for continuously supplying oil to the equipment is installed above the load-bearing plate, and a processing component for processing a bent hook shape at the end part of the steel wire is installed at the upper end of the load-bearing plate.
[0005] Preferably, a telescopic cylinder is used to connect a telescopic rod to drive the lifting of the movable plate, realizing the lifting adjustment of the equipment, enabling it to adapt to different working heights, reducing the deviation of the hook caused by manual intervention. A positioning rod and a connecting sleeve are used to connect the movable plate to assist in supporting the lifting, ensuring precise control of the movable plate during the lifting process and avoiding deviations caused by instability, making the equipment more stable during lifting and maintaining the stability of the equipment. A driving cylinder is used to drive multiple bending arms to operate, processing multiple wire ends simultaneously, ensuring that the bending angles and precisions of each wire end are consistent, avoiding the welding at the hook from coming apart due to insufficient firmness. At the same time, according to different wire specifications and bending requirements, the pressure of the driving cylinder and the position of the bending arm can be adjusted to adapt to different processing needs. By using a storage tank to connect a transmission pipe to transfer lubricating oil to the oil outlet pipe for discharge, continuous oil supply to the equipment is carried out, reducing direct contact between metals, reducing wear. At the same time, sufficient lubrication can reduce the friction of moving parts, reduce equipment wear, ensure efficient lubrication and smooth operation of the equipment during operation, and improve production efficiency. Support columns are used to connect the bearing plate to fix the support plate, providing a stable supporting force, ensuring the stability of the entire equipment during operation, reducing errors caused by vibration or movement, and effectively dispersing and bearing the self-weight of the equipment, improving overall stability.
[0006] Preferably, the oil supply assembly includes a support plate, a storage tank, a docking pipe, a transmission pipe, an oil outlet pipe, support columns, and an auxiliary plate. A support plate is provided above the bearing plate. Storage tanks are symmetrically provided at the upper end of the support plate. A transmission pipe is provided at the lower end of the storage tank. The transmission pipe passes through the support plate and extends to the lower end. An oil outlet pipe is provided at one end of the transmission pipe. Multiple oil outlet holes are provided on the outer wall of the oil outlet pipe. By using a storage tank to connect a transmission pipe to transfer lubricating oil to the oil outlet pipe for discharge, continuous oil supply to the equipment is carried out, reducing direct contact between metals, reducing wear. At the same time, sufficient lubrication can reduce the friction of moving parts, reduce equipment wear, ensure efficient lubrication and smooth operation of the equipment during operation, and improve production efficiency.
[0007] Preferably, a docking pipe is provided at the upper end of the storage tank. Support columns are provided at the corners of the lower end of the support plate. The support columns pass through the bearing plate and extend to the lower end. An auxiliary plate is provided inside the bearing plate. By using support columns to connect the bearing plate to fix the support plate, a stable supporting force is provided, ensuring the stability of the entire equipment during operation, reducing errors caused by vibration or movement, and effectively dispersing and bearing the self-weight of the equipment, improving overall stability.
[0008] Preferably, the processing assembly includes a fixed plate, a telescopic cylinder, a telescopic rod, a movable plate, a docking plate, a positioning rod, a connecting plate, a limit bolt, a limit plate, a stabilizing block, a driving cylinder, a driving rod, a stabilizing plate, an adjusting plate, a bending arm, a positioning pin, a fixing rod and a hook. Fixed plates are symmetrically arranged at the upper end of the load-bearing plate. A telescopic cylinder is arranged at the upper end of the fixed plate. One end of the telescopic cylinder is provided with a telescopic rod. One end of the telescopic rod is provided with a docking plate. The outer wall of the docking plate is provided with a movable plate. The telescopic rod is fixedly connected to the movable plate through the docking plate. By using the telescopic cylinder to connect the telescopic rod to drive the lifting of the movable plate, the equipment can be easily lifted and lowered. At the same time, the telescopic cylinder can quickly lift and lower the equipment according to the working requirements, making it adapt to different working heights, reducing the deviation of the hook caused by manual intervention, and improving work efficiency.
[0009] Preferably, a positioning rod is arranged at the upper end of the fixed plate behind the movable plate. A connecting sleeve is sleeved on the outer end of the positioning rod. The positioning rod is positioned and connected to the movable plate through the connecting sleeve. One end of the positioning rod is provided with a connecting plate. The positioning plate is fixedly connected to the support plate through the connecting plate. A limit bolt is arranged at the outer end corner of the connecting plate. By using the positioning rod combined with the connecting sleeve to connect the movable plate to assist in supporting the lifting, the precise control of the movable plate during the lifting process is ensured, avoiding deviations caused by instability, making the equipment more stable during lifting, and maintaining the stability of the equipment.
[0010] Preferably, a limit plate is arranged inside the movable plate. An auxiliary rod is arranged at the outer end of the limit plate. The limit plate is fixedly connected to the movable plate through the auxiliary rod. A stabilizing block is arranged at the upper end of the limit plate. A driving cylinder is arranged at the upper end of the stabilizing block. One end of the driving cylinder is provided with a driving rod. The end of the driving rod is provided with a stabilizing plate. By using the driving cylinder to drive multiple bending arms to operate, multiple wire ends are processed simultaneously, ensuring that the bending angles and accuracies of each wire end are consistent, avoiding the welding at the hook being not firm and bursting open. At the same time, according to different wire specifications and bending requirements, the pressure of the driving cylinder and the position of the bending arm can be adjusted to adapt to different processing needs.
[0011] Preferably, an adjusting plate is arranged at the lower end of the stabilizing plate. Multiple fixing rods are arranged inside the adjusting plate. Bending arms are sleeved on the outer walls of the fixing rods. A positioning pin is arranged between the bending arm and the limit plate. A hook is arranged at the lower end of the limit plate. By using multiple bending arms to connect the hook for bending, multiple bending arms work simultaneously, improving the processing speed of wire end bending, reducing the non-standard of manual hooks, increasing production efficiency, and ensuring that the bending angles and qualities of each wire end meet the standard requirements.
[0012] The beneficial effects of the present utility model:
[0013] 1. Compared with traditional bending machines, the telescopic cylinder is used to connect the telescopic rod to drive the lifting of the movable plate, realizing the lifting adjustment of the equipment, making it adapt to different working heights, reducing the deviation of bending caused by manual intervention. The positioning rod and connecting sleeve are used to connect the movable plate to assist in supporting the lifting, ensuring the precise control of the movable plate during the lifting process, avoiding deviations caused by instability, making the equipment more stable during lifting, and maintaining the stability of the equipment. The driving cylinder is used to drive multiple groups of bending arms to operate, processing multiple steel wire ends simultaneously, ensuring that the bending angles and precisions of each steel wire end are consistent, avoiding the cracking of the welded part at the bent hook. At the same time, according to different steel wire specifications and bending requirements, the pressure of the driving cylinder and the position of the bending arm can be adjusted to meet different processing needs.
[0014] 2. The lubricating oil is transmitted to the oil outlet pipe through the storage tank and transmission pipe for continuous oil supply to the equipment, reducing the direct contact between metals and reducing wear. At the same time, sufficient lubrication can reduce the friction of moving parts and reduce the wear of the equipment, ensuring efficient lubrication and smooth operation of the equipment during operation, improving production efficiency. The support column is used to connect the bearing plate to fix the support plate, providing a stable support force, ensuring the stability of the entire equipment during operation, reducing errors caused by vibration or movement, and effectively dispersing and bearing the self-weight of the equipment, improving the overall stability. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 is a schematic diagram of the overall structure of the present utility model;
[0016] Figure 2 is a schematic diagram of the oil supply component structure of the present utility model;
[0017] Figure 3 is a schematic diagram of the processing component structure of the present utility model;
[0018] Figure 4 is a schematic diagram of the rear end structure of the movable plate of the present utility model.
[0019] Description of the reference numerals: 1, bearing plate; 2, oil supply component; 201, support plate; 202, storage tank; 203, docking pipe; 204, transmission pipe; 205, oil outlet pipe; 206, support column; 207, auxiliary plate; 3, processing component; 301, fixing plate; 302, telescopic cylinder; 303, telescopic rod; 304, movable plate; 305, docking plate; 306, positioning rod; 307, connecting plate; 308, limit bolt; 309, limit plate; 310, stable block; 311, driving cylinder; 312, driving rod; 313, stable plate; 314, adjusting plate; 315, bending arm; 316, positioning pin; 317, fixing rod; 318, hook. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0020] The present utility model will be further described below in conjunction with the accompanying drawings and embodiments.
[0021] Please refer to Figures 1-4 , the present utility model provides an embodiment: a steel wire mesh skew-inserted wire end hook-forming machine, which includes a load-bearing plate 1, an oil supply assembly 2 and a processing assembly 3; an oil supply assembly 2 for continuously supplying oil to the equipment is installed above the load-bearing plate 1, and a processing assembly 3 for processing a hook shape at the end part of the steel wire is installed at the upper end of the load-bearing plate 1.
[0022] Please refer to Figures 1-2 , in this embodiment, the oil supply assembly 2 includes a support plate 201, a storage tank 202, a docking pipe 203, a transmission pipe 204, an oil outlet pipe 205, a support column 206 and an auxiliary plate 207. A support plate 201 is provided above the load-bearing plate 1, storage tanks 202 are symmetrically provided at the upper end of the support plate 201, a transmission pipe 204 is provided at the lower end of the storage tank 202, and the transmission pipe 204 passes through the support plate 201 and extends to the lower end. An oil outlet pipe 205 is provided at one end of the transmission pipe 204, and multiple groups of oil outlet holes are opened on the outer wall of the oil outlet pipe 205. By using the storage tank 202 to connect the transmission pipe 204 to transmit the lubricating oil to the oil outlet pipe 205 for discharge, continuous oil supply to the equipment is carried out, direct contact between metals is reduced, wear is reduced, and at the same time, sufficient lubrication can reduce the friction of moving parts, reduce the wear of the equipment, ensure efficient lubrication and smooth operation of the equipment during operation, improve production efficiency. A docking pipe 203 is provided at the upper end of the storage tank 202, a support column 206 is provided at the corner of the lower end of the support plate 201, the support column 206 passes through the load-bearing plate 1 and extends to the lower end, and an auxiliary plate 207 is provided inside the load-bearing plate 1. By using the support column 206 to connect the load-bearing plate 1 to fix the support plate 201, a stable support force is provided, ensuring the stability of the entire equipment during operation, reducing errors caused by vibration or movement, and at the same time effectively dispersing and bearing the own weight of the equipment, improving the overall stability.
[0023] Please refer to Figures 1-3, in this embodiment, the processing assembly 3 includes a fixed plate 301, a telescopic cylinder 302, a telescopic rod 303, a movable plate 304, a docking plate 305, a positioning rod 306, a connecting plate 307, a limit bolt 308, a limit plate 309, a stabilizing block 310, a driving cylinder 311, a driving rod 312, a stabilizing plate 313, an adjusting plate 314, a bending arm 315, a positioning pin, a fixed rod 317 and a hook 318. Fixed plates 301 are symmetrically arranged at the upper end of the load-bearing plate 1. A telescopic cylinder 302 is arranged at the upper end of the fixed plate 301. A telescopic rod 303 is arranged at one end of the telescopic cylinder 302. A docking plate 305 is arranged at one end of the telescopic rod 303. A movable plate 304 is arranged on the outer wall of the docking plate 305. The telescopic rod 303 is fixedly connected to the movable plate 304 through the docking plate 305. By using the telescopic cylinder 302 to connect the telescopic rod 303 to drive the lifting of the movable plate 304, the equipment can be easily lifted and lowered. At the same time, the telescopic cylinder 302 can quickly lift and lower the equipment according to the working requirements, making it adapt to different working heights, reducing the deviation of the hook caused by manual intervention, and improving the work efficiency. A positioning rod 306 is arranged at the upper end of the fixed plate 301 behind the movable plate 304. A connecting sleeve is sleeved on the outer end of the positioning rod 306. The positioning rod 306 is positioned and connected to the movable plate 304 through the connecting sleeve. A connecting plate 307 is arranged at one end of the positioning rod 306. The positioning plate is fixedly connected to the support plate 201 through the connecting plate 307. A limit bolt 308 is arranged at the outer end corner of the connecting plate 307. By using the positioning rod 306 combined with the connecting sleeve to connect the movable plate 304 to assist in supporting the lifting, the precise control of the movable plate 304 during the lifting process is ensured, avoiding deviations caused by instability, making the equipment more stable during lifting, and maintaining the stability of the equipment.
[0024] Please refer to Figures 2-4, in this embodiment, a limiting plate 309 is provided on the inner side of the movable plate 304. An auxiliary rod is provided at the outer end of the limiting plate 309. The limiting plate 309 is fixedly connected to the movable plate 304 through the auxiliary rod. A stabilizing block 310 is provided at the upper end of the limiting plate 309. A driving cylinder 311 is provided at the upper end of the stabilizing block 310. A driving rod 312 is provided at one end of the driving cylinder 311. A stabilizing plate 313 is provided at the end of the driving rod 312. By using the driving cylinder 311 to drive multiple groups of bending arms 315 to operate, the ends of multiple steel wires are processed simultaneously, ensuring that the bending angles and precisions of the ends of each steel wire are consistent, avoiding the cracking due to the insecure welding at the hooked part. At the same time, according to different steel wire specifications and bending requirements, the pressure of the driving cylinder 311 and the position of the bending arms 315 can be adjusted to adapt to different processing needs. A regulating plate 314 is provided at the lower end of the stabilizing plate 313. Multiple groups of fixing rods 317 are provided inside the regulating plate 314. The outer wall of the fixing rod 317 is sleeved with the bending arm 315. A positioning pin 316 is provided between the bending arm 315 and the limiting plate 309. A hook 318 is provided at the lower end of the limiting plate 309. By using multiple groups of bending arms 315 to connect the hook 318 for bending, multiple groups of bending arms 315 work simultaneously, improving the processing speed of the bending of the ends of the steel wires, increasing the production efficiency, and ensuring that the bending angles and qualities of the ends of each steel wire meet the standard requirements.
[0025] When working, first, the entire steel wire mesh frame to be hooked is placed into its load-bearing plate 1. By using the telescopic cylinder 302 to connect the telescopic rod 303 to drive the lifting of the movable plate 304, the equipment can be easily lifted and lowered. At the same time, the telescopic cylinder 302 can quickly lift and lower the equipment according to the working requirements, making it adapt to different working heights, reducing the deviation of the hook caused by manual intervention. When the movable plate 304 is lifted and lowered, the positioning rod 306 is used in combination with the connecting sleeve to connect the movable plate 304 to assist in supporting the lifting and lowering, ensuring the precise control of the movable plate 304 during the lifting and lowering process, avoiding the deviation caused by instability, and making the equipment more stable during the lifting and lowering. After the movable plate 304 is adjusted, the driving cylinder 311 is started to drive multiple groups of bending arms 315 to stretch back and forth. The bending arms 315 drive the hooks 318 to process the ends of multiple steel wires simultaneously, ensuring that the bending angles and precisions of the ends of each steel wire are consistent, avoiding the cracking due to the insecure welding at the hooked part. At the same time, according to different steel wire specifications and bending requirements, the pressure of the driving cylinder 311 and the position of the bending arms 315 can be adjusted, realizing large-area bending processing. The upper and lower sides of the steel wire mesh frame are hooked through the differential belt, and the bending work of the steel wire mesh frame is carried out.
[0026] When the equipment performs the bending process, the lubricating oil is transmitted to the oil outlet pipe 205 through the storage tank 202 connected to the transmission pipe 204 and discharged, continuously supplying oil to the movable plate 304, reducing the direct contact between metals, reducing wear. At the same time, sufficient lubrication can reduce the friction of moving parts, reduce the wear of the equipment, ensure efficient lubrication and smooth operation during the operation of the equipment, and ensure that the wire mesh frame meets the precise bending standard. Secondly, the support column 206 connects the bearing plate 1 to fix the support plate 201, providing a stable supporting force, ensuring the stability of the entire equipment during operation, reducing errors caused by vibration or movement, and effectively dispersing and bearing the self-weight of the equipment to achieve stable operation of the equipment.
[0027] Through the above steps, the telescopic cylinder 302 is connected to the telescopic rod 303 to drive the lifting of the movable plate 304, realizing the lifting adjustment of the equipment, making it adapt to different working heights, reducing the deviation of the bending caused by manual intervention. The positioning rod 306 is used in combination with the connecting sleeve to connect the movable plate 304 to assist in supporting the lifting, ensuring precise control of the movable plate 304 during the lifting process, avoiding deviations caused by instability, making the equipment more stable during lifting, and maintaining the stability of the equipment. The driving cylinder 311 is used to drive multiple bending arms 315 to operate, and at the same time, multiple wire ends are processed to ensure that the bending angles and precisions of each wire end are consistent, avoiding the welding at the bending part from being loose and bursting. At the same time, according to different wire specifications and bending requirements, the pressure of the driving cylinder 311 and the position of the bending arms 315 can be adjusted to adapt to different processing needs. By using the storage tank 202 connected to the transmission pipe 204 to transmit the lubricating oil to the oil outlet pipe 205 and discharge it, continuous oil supply to the equipment is carried out, reducing the direct contact between metals, reducing wear. At the same time, sufficient lubrication can reduce the friction of moving parts, reduce the wear of the equipment, ensure efficient lubrication and smooth operation during the operation of the equipment, improve production efficiency, use the support column 206 to connect the bearing plate 1 to fix the support plate 201, provide a stable supporting force, ensure the stability of the entire equipment during operation, reduce errors caused by vibration or movement, and effectively disperse and bear the self-weight of the equipment to improve the overall stability.
[0028] The above has described in detail the embodiments of the present invention in conjunction with the drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the purpose of the present invention.
Claims
1. A wire mesh frame oblique wire end hook bending machine, comprising a load-bearing plate (1); characterized in that: It also includes an oil supply assembly (2) and a processing assembly (3); an oil supply assembly (2) for continuously supplying oil to the equipment is installed above the bearing plate (1); a processing assembly (3) for processing the end portion of the steel wire into a hook shape is installed at the upper end of the bearing plate (1); the oil supply assembly (2) includes a support plate (201), a storage box (202), a butt pipe (203), a transmission pipe (204), an oil outlet pipe (205), a support column (206) and an auxiliary plate (207); a support plate (201) is provided above the bearing plate (1); a storage box (202) is symmetrically provided at the upper end of the support plate (201); a transmission pipe (204) is provided at the lower end of the storage box (202); and the transmission pipe (204) passes through the support plate (201). The transmission pipe (204) extends to the lower end, one end of the transmission pipe (204) is provided with an oil outlet pipe (205), the outer wall of the oil outlet pipe (205) is provided with a plurality of groups of oil outlet holes, the upper end of the storage box (202) is provided with a butt joint pipe (203), the lower end corner of the support plate (201) is provided with a support column (206), the support column (206) passes through the bearing plate (1) and extends to the lower end, the bearing plate (1) is provided with an auxiliary plate (207), the processing assembly (3) includes a fixed plate (301), a telescopic cylinder (302), a telescopic rod (303), a movable plate (304), a butt joint plate (305), a positioning rod (306), a connecting plate (307), a limit bolt (308), a limit plate (309), a stabilizing block (310), a driving cylinder (311), and a plurality of connecting plates (312). 1), a driving rod (312), a stabilizing plate (313), an adjusting plate (314), a bending arm (315), a positioning pin, a fixing rod (317) and a hook (318), a fixing plate (301) is symmetrically arranged at the upper end of the load-bearing plate (1), a telescopic cylinder (302) is arranged at the upper end of the fixing plate (301), a telescopic rod (303) is arranged at one end of the telescopic cylinder (302), a docking plate (305) is arranged at one end of the telescopic rod (303), a movable plate (304) is arranged on the outer wall of the docking plate (305), the telescopic rod (303) is fixedly connected to the movable plate (304) through the docking plate (305), a positioning rod (306) is arranged at the upper end of the fixing plate (301) behind the movable plate (304), and the positioning rod (306) The outer end sleeve of the movable plate (304) is provided with a connecting sleeve, the positioning rod (306) is connected to the movable plate (304) in a positioning manner through the connecting sleeve, one end of the positioning rod (306) is provided with a connecting plate (307), the positioning plate is fixedly connected to the support plate (201) through the connecting plate (307), a limiting bolt (308) is provided at the outer end corner of the connecting plate (307), a limiting plate (309) is provided on the inner side of the movable plate (304), an auxiliary rod is provided at the outer end of the limiting plate (309), the limiting plate (309) is fixedly connected to the movable plate (304) through the auxiliary rod, a stabilizing block (310) is provided at the upper end of the limiting plate (309), a driving cylinder (311) is provided at the upper end of the stabilizing block (310), and a driving rod (312) is provided at one end of the driving cylinder (311),A stabilizing plate (313) is provided at the end of the driving rod (312), an adjusting plate (314) is provided at the lower end of the stabilizing plate (313), a plurality of fixing rods (317) are provided inside the adjusting plate (314), a bending arm (315) is sleeved on the outer wall of the fixing rod (317), a positioning pin (316) is provided between the bending arm (315) and the limiting plate (309), and a hook (318) is provided at the lower end of the limiting plate (309).