Metal wire specification processing device and processing method

By automating the wire feeding, take-up, and lubrication components, the problems of unevenness and deformation caused by manual wire winding in existing technologies have been solved, achieving efficient and stable metal wire processing and improving processing efficiency and precision.

CN121423391APending Publication Date: 2026-01-30JIEXI COUNTY YANGTAILI COPPER CO LTD
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Patent Information

Application Number
CN202511591212.6
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-03
Publication Date
2026-01-30

AI Technical Summary

Technical Problem

Existing metal wire processing equipment requires manual winding of the wire, which leads to unevenness and deformation, affecting the processing effect. Furthermore, the operation is complicated and cannot meet the needs of high-efficiency production.

Method used

A processing device for metal wire specifications was designed, including a wire feeding assembly, a wire take-up assembly, and a lubrication assembly. The device achieves wire feeding, tensioning, lubrication, and clamping through an automated structure, reducing manual intervention. It uses belt drive and threaded rod linkage for wire clamping and cutting.

Benefits of technology

It improves the efficiency and stability of wire processing, reduces labor costs and operational difficulty, ensures lubrication and cooling of the wire surface, reduces friction loss and surface damage, and improves processing accuracy and product quality.

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Abstract

The invention discloses a metal wire specification machining device and method, and particularly relates to the technical field of metal wire machining device.The metal wire specification machining device comprises a base, supporting legs are fixedly connected to the four corners of the lower end of the base, a liquid outlet is formed in the middle of the upper end of the base, and a liquid storage assembly is fixedly installed in the middle of the lower end of the base; a wire feeding assembly is fixedly installed on the left side of the upper end of the base, and a wire take-up assembly is fixedly installed in the middle of the upper end of the base. According to the machining device and method for the metal wire specifications, the wire feeding assembly is arranged and matched with the wire take-up assembly in the using process, the wire conveying effect can be achieved, lubricating liquid can be added to the surfaces of the wires when the wires are machined, meanwhile, the wire take-up assembly is used for machining the wires, and the machining efficiency is improved. In addition, the purposes of feeding and stroking the wires can be achieved when the wires are machined preliminarily, the wires can be directly pinched off by the take-up assembly when the wires are machined, and therefore the overall machining efficiency during wire machining is improved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of metal wire processing devices, in particular to a metal wire specification processing device and processing method. BACKGROUND

[0002] The metal wire specification processing device is a mechanical equipment specially used for processing and processing metal wires, which is widely used in hardware, construction, automobile, electronics and home appliance industries. This device processes metal wires into specific shape and size products through a series of processing procedures such as stretching, bending, cutting and forming. Common metal wires include steel wire, aluminum wire, copper wire, etc. After processing, they can be used to manufacture various parts such as screws, nails, springs, grids and other customized metal components. The metal wire specification processing device is usually composed of multiple components, including wire feeding system, stretching and forming system, cutting and separating system, and finally discharging system. Through the coordinated work of these systems, the wire can be accurately processed according to the predetermined specification. For some complex products, the equipment is also equipped with multifunctional molds or adjustable rollers, which can handle metal wires of different specifications and shapes. This equipment can achieve high efficiency, low cost production and is suitable for mass production.

[0003] The wire processing device in the prior art usually needs to manually wind the wire around the processing roller surface. This process is complex and time-consuming, and requires fine manual operation, which not only increases the difficulty of operation, but also increases the labor cost. In addition, manual winding is easy to cause uneven and deformation of the wire, which affects the subsequent processing effect. Since the winding process of the wire is complicated, this device often cannot meet the requirements of high efficiency production when facing the demand of high efficiency production, and is easily disturbed by human factors, causing instability in the production process. With the development of automation technology, more and more modern wire processing equipment begins to use fully automatic feeding and processing system, reducing manual intervention and improving processing efficiency and product quality.

[0004] Chinese Patent Publication No. CN117165955A discloses a metal wire processing apparatus and method. This patent document provides a metal wire processing apparatus and method capable of dispersing metal wire during pickling. The metal wire processing apparatus includes a pickling tank, a rotating screw, a moving component, and a guide frame. The rotating screw is rotatably connected to the left side of the bottom wall of the pickling tank, and the moving component is threadedly connected to the rotating screw. The moving component and the pickling tank are slidably connected. The guide frame is rotatably connected to the right side of the moving component. It also includes a separation mechanism and a flushing mechanism. The separation mechanism is located at the lower rear side of the pickling tank, and the flushing mechanism is located at the middle of the front side of the pickling tank. This invention, through the back-and-forth movement of the separation component, can automatically disperse the metal wire during pickling, increasing the pickling area and thus improving the pickling effect. Simultaneously, the pickling solution is sprayed onto the metal wire by the spray component, which can enhance the pickling effect of the metal wire.

[0005] Although the device described in the aforementioned patent document can process wires during use, it still requires manual winding of the wires onto the surface of the processing device. Manual winding can easily lead to unevenness and deformation of the wires, thus affecting the subsequent processing results. Summary of the Invention

[0006] The main objective of this invention is to provide a processing apparatus and method for metal wire specifications, which can effectively solve the problems in the background art.

[0007] To achieve the above objectives, the technical solution adopted by the present invention is as follows: A processing device and method for a certain specification of metal wire includes a base, with support legs fixedly connected to the four corners of the lower end of the base for support, a liquid outlet opened in the middle of the upper end of the base, a liquid storage component fixedly installed in the middle of the lower end of the base, a wire feeding component fixedly installed on the left side of the upper end of the base, and a wire take-up component fixedly installed in the middle of the upper end of the base for transporting the wire.

[0008] Preferably, the liquid storage assembly includes a liquid storage box fixedly connected to the lower middle part of the base, a partition plate is fixedly connected to the left side of the front side wall and the left side of the rear side wall of the inner surface of the liquid storage box, and a plugging hole is opened on the lower side of the middle rear end of the liquid storage box, and a rubber plug is inserted into the inner surface of the plugging hole.

[0009] Preferably, the wire feeding assembly includes an outer plate fixedly connected to the rear left side and the front left side of the upper end of the base. A wire feeding roller is rotatably connected to the middle of the two outer plates at their close ends. A vertical plate is fixedly connected to the front and rear sides of the upper end of the base. Six connecting plates are provided on the upper part of the two vertical plates at their close ends. A wire pulling hollow cylinder is fixedly connected to the middle of the six connecting plates at their close ends. The ends of the connecting plates located at the front and rear sides that are far apart from each other are fixedly connected to the vertical plate on the same side. A lubrication assembly is fixedly installed on the left side of the middle of the upper end of the base.

[0010] Preferably, the lubrication assembly includes a pull-line platform fixedly connected to the left side of the upper middle part of the base. The pull-line platform is located on the right side of the vertical plate. A liquid storage box is fixedly connected to the upper end of the pull-line platform. A pump mechanism is fixedly connected to the rear end of the liquid storage box. Five rectangular liquid outlet holes are linearly arranged in the middle of the left side wall of the inner surface of the liquid storage box. Five semi-circular liquid outlet holes are linearly arranged in the left side of the bottom wall of the liquid storage box. Inner arc plates are linearly arranged and fixedly connected to the left side of the lower end of the liquid storage box. The upper ends of the five inner arc plates are respectively aligned with the lower ends of the five semi-circular liquid outlet holes. A wire inlet hole is opened in the middle of the inner arc surface of each of the five inner arc plates. Five wire inlet cylinders are linearly arranged and fixedly connected to the middle of the left end of the pull-line platform. The right ends of the five wire inlet cylinders all penetrate the left end of the pull-line platform and extend to the outside.

[0011] Preferably, the five hollow pull tubes, the five wire inlet holes, and the five hollow wire inlet tubes are all arranged at the same center.

[0012] Preferably, the take-up assembly includes two enclosures, which are respectively fixedly connected to the upper front and upper rear of the base. A fixed platform is fixedly connected to the lower left side of the front end of the front enclosure, and a motor is fixedly connected to the upper end of the fixed platform. The output end of the motor is fixedly connected to a pulley one via a coupling. The rear end of the pulley one is rotatably connected to the front end of the front enclosure. Pulley two is rotatably connected to the lower right side and the upper right side of the front end of the front enclosure. A liquid discharge assembly is fixedly installed on the left side of the two enclosures that are close to each other. A cable laying assembly is slidably installed in the middle of the two enclosures that are close to each other. The outer surfaces of the two pulley two and the pulley one are connected by a belt drive. A shaped guide groove is provided at the rear end of the rear panel. A cutting component is fixedly installed on the rightmost side of the inner surface of the shaped guide groove. An auxiliary roller 1 is rotatably connected to the lower left side of one end of the two panels that are close to each other. An auxiliary roller 2 is rotatably connected to the lower middle side of one end of the two panels that are close to each other. An auxiliary roller 3 is rotatably connected to the upper right side of one end of the two panels that are close to each other. The front end of the auxiliary roller 1 is fixedly connected to the rear end of the pulley 1 through a connecting rod. The front end of the auxiliary roller 2 is fixedly connected to the rear end of the pulley 2 located on the lower right side through a connecting rod. The front end of the auxiliary roller 3 is fixedly connected to the rear end of the pulley 2 located on the upper right side through a connecting rod. A take-up roller is rotatably connected to the rightmost side of the middle of one end of the two panels that are close to each other.

[0013] Preferably, the liquid dispensing assembly includes five water storage shells arranged in a linear array. The left and right sides of the five water storage shells that are close to each other are fixedly connected to a connecting plate. Each of the five water storage shells has a rectangular guide port on its left end. The left ends of the five water storage shells are fixedly connected to the right end of the liquid storage box. The five rectangular guide ports are respectively aligned with the five rectangular liquid dispensing holes. Three water dispensing boxes are fixedly connected in a linear array at the lower end of each of the five water storage shells. Spray nozzles are fixedly connected to the lower ends of the three water dispensing boxes on the same side. The lower ends of the water outlet boxes on the same side are respectively located on the upper side of the auxiliary roller one, auxiliary roller two and auxiliary roller three on the same side.

[0014] Preferably, the cable assembly includes a cable box, the front end of which is slidably connected to the rear end of the front panel, a slider is fixedly connected to the rear end of the cable box, the outer surface of the slider is slidably connected to the inner surface of the irregular guide groove, five circular holes are linearly arrayed on the left end of the cable box and penetrate its right end, and a sliding groove is opened at each of the four corners of the rear end of the cable box and penetrates the five circular holes, an inner arc concave platform is fixedly connected to the bottom of the inner arc surface of each of the five circular holes, a sliding plate is slidably connected to the inner surface of the two sliding grooves on the same side, and an arc-shaped clamp is fixedly connected to the upper sliding plate and the lower sliding plate on the same side at their respective close ends, and a threaded rod is rotatably connected to the rear sidewall of the inner surface of each of the four sliding grooves, and the inner surface of the sliding plate on the same side is threadedly connected to the outer surface of the threaded rod on the same side; The four threaded rods have their rear ends passing through the slider. Each of the four threaded rods has its rear end fixedly connected to a pulley. The outer surfaces of the four pulleys are connected by a belt drive. A handle is fixedly connected to the middle of the rear end of the slider. A roller is fixedly connected to the rear end of the pulley located on the upper right side.

[0015] Preferably, the cutting assembly includes a cutting box, which is fixedly connected to the rightmost side of the inner surface of the irregular guide groove. The upper part of the front sidewall and the upper part of the rear sidewall of the inner surface of the cutting box are rotatably connected to a threaded rod. Five cutting blocks are linearly arrayed and fixedly connected to the bottom wall of the cutting box. Each of the five cutting blocks has a cutting groove in the middle of its rear end. Five cutting plates are threadedly connected to the outer surface of the threaded rod. The lower ends of the five cutting plates are slidably connected to the bottom wall of the cutting box. A cutting blade is fixedly connected to the middle of the end of each cutting plate on the same side near the cutting block on the same side. A gear is fixedly connected to the rear of the outer surface of the threaded rod. A rectangular groove is provided at the rear of the left end of the tangent box. A rack is slidably connected to the bottom wall of the rectangular groove. A baffle is fixedly connected to the right side of the lower end of the rack. A storage groove is provided at the right end of the tangent box near the irregular guide groove. The width of the storage groove matches the combined width of the rack and the baffle.

[0016] A processing method for a metal wire specification processing apparatus, the processing method comprising: S1. The metal wire to be processed is wound around five winding areas on the outer surface of the wire feeding roller, and the diameter of the wire end is reduced by existing technology. Then the wire feeding roller, take-up roller and pump mechanism of the device are connected to the external control equipment. S2. Manually pull out the ends of each wire and pass them through the pull tube, inlet hole and inlet tube on the same side in sequence, so that the ends of the wires enter the five round holes of the cable box and are supported by the inner arc concave platform inside the round holes. S3. Rotate the rotating roller, and drive the four pulleys and the threaded rod connected to them to rotate synchronously through the belt drive. This causes the two sliding plates on the same side to move the arc-shaped clamping plate inward to clamp the wire. Hold the handle and push the slider to slide along the irregular guide groove, so that the wire fits the V-shaped grooves on the upper side of auxiliary roller one, the lower side of auxiliary roller two, and the upper side of auxiliary roller three respectively. S4. Rotate the roller in the opposite direction to loosen the wire by the arc-shaped clamp, pull out the end of the wire and fix it to the five winding areas on the outer surface of the take-up roller. Rotate the feed roller in the opposite direction slowly to tighten the wire on the surfaces of auxiliary roller one, auxiliary roller two and auxiliary roller three. S5. Start the motor and take-up roller. The motor drives pulley one, pulley two, and auxiliary rollers one, two, and three to rotate synchronously via belt drive. The take-up roller pulls the wire for wire drawing. At the same time, the pump mechanism is started to pressurize the lubricant in the storage box. The lubricant flows to the inner arc plate and water tank through the semi-circular outlet and rectangular outlet, respectively, to lubricate and cool the wire and auxiliary rollers one, two, and three. Waste liquid falls into the inner cavity of the storage box for collection through the outlet. S6. After the wire is wound up, stop the motor and take-up roller. Rotate the feed roller to release a small section of wire. Rotate the roller again to make the arc-shaped clamp hold the wire. Hold the handle and push the slider to the right. The slider contacts the rack and slides along the rectangular groove. The rack meshes with the gear and drives the threaded rod to rotate, so that the cutting plate drives the cutting knife into the cutting groove and cuts the wire. S7. After clamping, pull the slider to the left. The slider will attract the rack, disengage it from the storage slot, and reset it. The lower end baffle of the rack will fit against the inner wall of the wire cutting box, thus completing a single metal wire processing.

[0017] Compared with the prior art, the present invention has the following beneficial effects: 1. The present invention, through the setting of the wire feeding component, works in conjunction with the wire take-up component during use. It can not only achieve the effect of conveying wire, but also add lubricant to the surface of the wire during processing. At the same time, the wire take-up component can also serve the purpose of feeding and straightening the wire during the initial processing. When the processing of the wire is completed, the wire take-up component can also directly clamp the wire, thereby improving the overall processing efficiency of wire processing.

[0018] 2. During processing, the pump mechanism pressurizes the lubricant in the storage box. The lubricant flows through the semi-circular outlet to the inner arc surface of the inner arc plate, directly lubricating the wire passing through the inlet hole. Simultaneously, it enters the water storage shell through the rectangular outlet and is sprayed onto the surfaces of auxiliary rollers one, two, and three via the outlet box and nozzle. This achieves comprehensive lubrication and cooling of the wire and transmission components, reducing frictional losses during processing, preventing wire deformation or surface damage due to high temperatures, and flushing away processing debris from the wire surface, further improving processing accuracy. Furthermore, used lubricant waste can naturally fall into the storage box cavity through the outlet at the top of the base. A partition prevents dripping, and a rubber stopper controls discharge, enabling centralized waste recovery, reducing pollution to the working environment, and facilitating subsequent waste treatment or reuse.

[0019] 3. This invention reduces the cost and difficulty of manual intervention. From wire feeding and guiding to clamping and tightening, and then to wire drawing, winding, and final cutting, the entire process does not rely on external auxiliary tools. It can be completed through the linkage of the device's own structure. For example, rotating the roller can drive the threaded rod to rotate synchronously through belt transmission, realizing the rapid clamping or releasing of the wire by the arc-shaped clamp. When the slider slides along the irregular guide groove, it can both guide the wire to conform to the V-shaped grooves of auxiliary rollers one, two, and three to complete the guidance, and after processing, it can abut against the rack, and through meshing transmission, drive the wire cutter into the cutting groove to cut the wire. After cutting, pulling the slider to the left can drive the rack to reset. The whole operation is smooth and continuous, reducing the steps of frequently switching tools or adjusting parts manually, reducing the error rate. Even less experienced operators can quickly master it, improving the stability and convenience of the overall processing. Attached Figure Description

[0020] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the overall structure of the present invention from another perspective; Figure 3 This is a schematic diagram of the overall structure of the lubrication assembly of the present invention; Figure 4 This is a partial structural diagram of the take-up assembly of the present invention; Figure 5 This is a schematic diagram showing the location of the irregularly shaped guide groove in this invention; Figure 6 This is a schematic diagram of the overall structure of the liquid outlet assembly of the present invention; Figure 7 This is a schematic diagram of the overall structure of the ribbon cable assembly of the present invention; Figure 8 This is a schematic diagram of the overall structure of the cutting assembly of the present invention; Figure 9 For the present invention Figure 7 Enlarged schematic diagram of the structure at point A in the middle; Figure 10 For the present invention Figure 8 Enlarged schematic diagram of the structure at point B; Figure 11 This is a schematic diagram of the overall structure and processing flow of the present invention.

[0021] In the diagram: 1. Base; 2. Support leg; 3. Liquid outlet; 4. Liquid storage assembly; 41. Liquid storage box; 42. Partition plate; 43. Rubber stopper; 5. Wire feeding assembly; 51. Outer plate; 52. Wire feeding roller; 53. Vertical plate; 54. Connecting plate; 55. Hollow wire drawing cylinder; 56. Lubrication assembly; 561. Wire drawing platform; 562. Liquid storage box; 563. Pumping mechanism; 564. Rectangular liquid outlet; 565. Semi-circular liquid outlet; 566. Inner arc plate; 567. Wire inlet hole; 568. Wire inlet cylinder; 6. Wire take-up assembly; 61. Fixed platform; 62. Motor; 63. Belt pulley one; 64. Belt pulley two; 65. Liquid outlet assembly; 651. Connecting plate; 652. Water storage shell; 654. Rectangular guide port 655. Water outlet box; 656. Nozzle; 66. Cable assembly; 661. Cable box; 662. Slider; 663. Round hole; 664. Slide groove; 665. Inner arc recess; 666. Slide plate; 667. Arc clamp; 668. Threaded rod one; 6621. Belt pulley three; 6622. Handle; 6623. Rotary roller; 67. Cutting assembly; 671. Wire cutting box; 672. Threaded rod two; 673. Wire cutting block; 674. Wire cutting groove; 675. Wire cutting plate; 676. Wire cutting knife; 677. Gear; 678. Rack; 679. Storage groove; 68. Take-up roller; 60. Enclosure; 601. Irregular guide groove; 7. Auxiliary roller one; 8. Auxiliary roller two; 9. Auxiliary roller three. Detailed Implementation

[0022] To make the technical means, creative features, objectives and effects of this invention easier to understand, the invention will be further described below in conjunction with specific embodiments.

[0023] Example 1, as Figure 1 and Figure 2 As shown, a processing device and method for metal wire specifications are disclosed. The device includes a base 1, with support legs 2 fixedly connected to the four corners of the lower end of the base 1 for support. A liquid outlet 3 is opened in the middle of the upper end of the base 1. A liquid storage component 4 is fixedly installed in the middle of the lower end of the base 1. A wire feeding component 5 for feeding is fixedly installed on the left side of the upper end of the base 1. A wire take-up component 6 for transporting wire is fixedly installed in the middle of the upper end of the base 1.

[0024] During use, the wire feeding component 5 can be used to mount the metal wire to be processed onto its surface. Then, the wire feeding component 5 feeds the metal wire into the take-up component 6. The take-up component 6 can then assist in pulling the beginning of the metal wire during the initial processing, causing the metal wire to be arranged in an alternating pattern. After the metal wire is arranged, the wire feeding component 5 can be controlled to tighten the metal wire. The tightened wire can then be wound up by the take-up component 6. When the take-up component 6 winds up the wire, it can cooperate with the wire feeding component 5 to lubricate and cool the wire during processing. The lubricant used will fall into the liquid storage component 4 for collection, so that the waste liquid can be uniformly treated later.

[0025] Example 2, as Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 , Figure 7 , Figure 8 , Figure 9 and Figure 10 In this embodiment, the liquid storage assembly 4 includes a liquid storage box 41 fixedly connected to the lower middle part of the base 1. A partition 42 is fixedly connected to the left side of the front side wall and the left side of the rear side wall of the inner surface of the liquid storage box 41. A plugging hole is opened on the lower side of the middle part of the rear end of the liquid storage box 41, and a rubber plug 43 is inserted into the inner surface of the plugging hole.

[0026] Furthermore, the wire feeding assembly 5 includes an outer plate 51 fixedly connected to the rear left side and the front left side of the upper end of the base 1. A wire feeding roller 52 is rotatably connected to the middle of the two outer plates 51 that are close to each other. A vertical plate 53 is fixedly connected to the front side and the rear side of the upper end of the base 1. Six connecting plates 54 are provided on the upper part of the two vertical plates 53 that are close to each other. A wire pulling hollow cylinder 55 is fixedly connected to the middle of the six connecting plates 54 that are close to each other. The ends of the connecting plates 54 located at the front and the rear that are far apart from each other are fixedly connected to the vertical plate 53 on the same side. A lubrication assembly 56 is fixedly installed on the left side of the middle of the upper end of the base 1.

[0027] Furthermore, the lubrication assembly 56 includes a pull-line platform 561 fixedly connected to the left side of the upper middle part of the base 1. The pull-line platform 561 is located to the right of the vertical plate 53. A liquid storage box 562 is fixedly connected to the upper end of the pull-line platform 561. A pump mechanism 563 is fixedly connected to the rear end of the liquid storage box 562. Five rectangular liquid outlet holes 564 are linearly arranged in the middle of the left side wall of the inner surface of the liquid storage box 562. Five semi-circular liquid outlet holes 565 are linearly arranged in the left side of the bottom wall of the liquid storage box 562. Inner arc plates 566 are linearly arranged and fixedly connected to the left side of the lower end of the liquid storage box 562. The upper ends of the five inner arc plates 566 are respectively aligned with the lower ends of the five semi-circular liquid outlet holes 565. A wire inlet hole 567 is opened in the middle of the inner arc surface of each of the five inner arc plates 566. Five wire inlet cylinders 568 are linearly arranged and fixedly connected to the middle of the left end of the pull-line platform 561. The right ends of the five wire inlet cylinders 568 all penetrate the left end of the pull-line platform 561 and extend to the outside.

[0028] Furthermore, the five pull wire hollow cylinders 55, the five wire inlet holes 567, and the five wire inlet hollow cylinders 568 are all arranged at the same center.

[0029] Furthermore, the take-up assembly 6 includes two enclosures 60, which are fixedly connected to the upper front and upper rear of the base 1, respectively. A fixed platform 61 is fixedly connected to the lower left side of the front end of the front enclosure 60, and a motor 62 is fixedly connected to the upper end of the fixed platform 61. The output end of the motor 62 is fixedly connected to a pulley 63 via a coupling. The rear end of the pulley 63 is rotatably connected to the front end of the front enclosure 60. A pulley 64 is rotatably connected to the lower right side of the front end and the upper right side of the front end of the front enclosure 60. A liquid discharge assembly 65 is fixedly installed on the left side of the two enclosures 60 that are close to each other. A cable laying assembly 66 is slidably installed in the middle of the two enclosures 60 that are close to each other. The outer surfaces of the two pulleys 64 and the pulley 63 are connected by a belt drive. A shaped guide groove 601 is provided at the rear end of the rear panel 60. A cutting component 67 is fixedly installed on the rightmost side of the inner surface of the shaped guide groove 601. An auxiliary roller 7 is rotatably connected to the lower left side of the two panels 60 that are close to each other. An auxiliary roller 8 is rotatably connected to the lower middle side of the two panels 60 that are close to each other. An auxiliary roller 9 is rotatably connected to the upper right side of the two panels 60 that are close to each other. The front end of the auxiliary roller 7 is fixedly connected to the rear end of the pulley 63 through a connecting rod. The front end of the auxiliary roller 8 is fixedly connected to the rear end of the pulley 64 located on the lower right side through a connecting rod. The front end of the auxiliary roller 9 is fixedly connected to the rear end of the pulley 64 located on the upper right side through a connecting rod. A take-up roller 68 is rotatably connected to the rightmost side of the middle of the two panels 60 that are close to each other.

[0030] Furthermore, the liquid dispensing assembly 65 includes five water storage shells 652 arranged in a linear array. The left and right sides of the five water storage shells 652 that are close to each other are fixedly connected to a connecting plate 651. Each of the five water storage shells 652 has a rectangular guide port 654 at its left end. The left ends of the five water storage shells 652 are fixedly connected to the right end of the liquid storage box 562. The five rectangular guide ports 654 are respectively aligned with the five rectangular liquid dispensing holes 564. Each of the five water storage shells 652 has three water dispensing boxes 655 fixedly connected in a linear array at its lower end. Each of the three water dispensing boxes 655 on the same side has a nozzle 656 fixedly connected to its lower end. The lower ends of the water outlet boxes 655 on the same side are located on the upper sides of the auxiliary rollers 7, 8 and 9 on the same side, respectively.

[0031] Furthermore, the cable assembly 66 includes a cable box 661. The front end of the cable box 661 is slidably connected to the rear end of the front panel 60. A slider 662 is fixedly connected to the rear end of the cable box 661. The outer surface of the slider 662 is slidably connected to the inner surface of the irregular guide groove 601. Five circular holes 663 are linearly arrayed on the left end of the cable box 661, penetrating its right end. Slide grooves 664 penetrating the five circular holes 663 are opened at the four corners of the rear end of the cable box 661. An inner arc recess 665 is fixedly connected to the bottom of the inner arc surface of each of the five circular holes 663. A slide plate 666 is slidably connected to the inner surface of the two slide grooves 664 on the same side. An arc-shaped clamp 667 is fixedly connected to the upper slide plate 666 and the lower slide plate 666 on the same side, which are close to each other. A threaded rod 668 is rotatably connected to the rear side wall of the inner surface of each of the four slide grooves 664. The inner surface of the slide plate 666 on the same side is threadedly connected to the outer surface of the threaded rod 668 on the same side. The rear ends of the four threaded rods 668 all pass through the slider 662. The rear ends of the four threaded rods 668 are all fixedly connected to the pulleys 6621. The outer surfaces of the four pulleys 6621 are connected by belt drive. The handle 6622 is fixedly connected to the middle of the rear end of the slider 662. The rear end of the pulley 6621 located on the upper right side is fixedly connected to the roller 6623.

[0032] Furthermore, the cutting assembly 67 includes a cutting box 671, which is fixedly connected to the rightmost side of the inner surface of the irregular guide groove 601. The upper part of the front side wall and the upper part of the rear side wall of the inner surface of the cutting box 671 are rotatably connected to a threaded rod 672. Five cutting blocks 673 are linearly arrayed and fixedly connected to the bottom wall of the cutting box 671. Each of the five cutting blocks 673 has a cutting groove 674 in the middle of its rear end. Five cutting plates 675 are threadedly connected to the outer surface of the threaded rod 672. The lower ends of the five cutting plates 675 are slidably connected to the bottom wall of the cutting box 671. A cutting blade 676 is fixedly connected to the middle of the end of the cutting plate 675 on the same side near the cutting block 673 on the same side. A gear 677 is fixedly connected to the rear of the outer surface of the threaded rod 672. A rectangular slide groove is opened at the rear of the left end of the wire tangent box 671. A rack 678 is slidably connected to the bottom wall of the rectangular slide groove. A baffle is fixedly connected to the lower right end of the rack 678. A storage groove 679 is opened at the right end of the wire tangent box 671 near the irregular guide groove 601. The width of the storage groove 679 matches the combined width of the rack 678 and the baffle.

[0033] During use, this solution involves winding the metal wire to be processed onto the surface of the wire feeding roller 52, which is divided into five winding areas, as shown in the diagram. Figure 2 As shown, after the wire to be processed is wound around the surface of the wire feeding roller 52 in sequence, one end of the wire is pulled out manually. Then, the five wires are inserted into the corresponding wire drawing hollow cylinders 55 in sequence. Before this, the diameter of the wire pulling end needs to be reduced using conventional techniques in the prior art. As mentioned above, the five wire drawing hollow cylinders 55, the five wire inlet holes 567 and the five wire inlet cylinders 568 are all set at the same center. Therefore, the wire pulling end can pass through the wire drawing hollow cylinders 55, wire inlet holes 567 and wire inlet cylinders 568 on the same side. After the five metal wires pass through the inlet cylinder 568 on the same side, since the left end of the cable box 661 is initially in contact with the rightmost side of the inner surface of the irregular guide groove 601, one end of the initially pulled-out wire can enter between the five round holes 663 respectively. At this time, the inner arc recess 665 on the same side can lift the wire on the same side. Then, by rotating the roller 6623, the roller 6623 drives the pulley three 6621 fixedly connected to it to rotate. The outer surfaces of the four pulley three 6621 are connected by belt drive. Therefore, when one of the pulley three 6621 rotates... When the device is in motion, the remaining three pulleys 6621 also rotate. When all four pulleys 6621 rotate simultaneously, the threaded rod 668 fixedly connected to them also rotates. The inner surfaces of the upper and lower slide plates 666 are threadedly connected to the threaded rod 668 on the same side. The thread of the threaded rod 668 between the two slide plates 666 on the same side is bidirectional. Therefore, when the threaded rod 668 rotates, the two slide plates 666 on the same side will move inward in the slide groove 664 and drive the arc-shaped clamp 667 fixedly connected to it to clamp and fix the surface of the wire. By gripping the handle 6622, the slider 662 slides within the irregularly shaped guide groove 601. Subsequently, the ribbon cable box 661 moves the five wires clamped on its inner surface in the same direction as the ribbon cable box 661. The trajectory of the ribbon cable box 661 is the same as the trajectory of the irregularly shaped guide groove 601. Figure 5As shown in the diagram, when the cable box 661 moves from the leftmost to the rightmost side of the irregular guide groove 601, under the guidance of the irregular guide groove 601, the surface of the wire can be positioned above the outer surface of the auxiliary roller 7, below the outer surface of the auxiliary roller 8, and above the outer surface of the auxiliary roller 9, respectively. The outer surfaces of the auxiliary roller 7, auxiliary roller 8, and auxiliary roller 9 are all provided with V-shaped grooves to limit the wire offset, and each V-shaped groove is set along the same trajectory as the center of the circular hole 663 on the same side. After the initial placement of the wires is completed as described above, the rotating roller 6623 can be rotated in the opposite direction, causing the two arc-shaped clamps 667 on the same side to open outwards and no longer clamp the wires on the same side. Then, the five wires are pulled back one section again, and the pulled-out end of the wire is fixed to the outer surface of the take-up roller 68. The take-up roller 68 is divided into five winding areas, distributed as follows: Figure 4 As shown, after the ends of the five wires are fixed to the inner surfaces of the five areas of the take-up roller 68, the wire feed roller 52 can be slowly rotated in the opposite direction to tighten the wires, thereby making the wires taut on the surfaces of the auxiliary roller 1 7, auxiliary roller 2 8 and auxiliary roller 3 9. After the installation and tensioning of the wire are completed, the motor 62 and the take-up roller 68 can be started to pull the wire and begin the wire drawing process. At the same time, the pump mechanism 563 can be started to pressurize the liquid storage box 562, so that the lubricant in the liquid storage box 562 flows from the semi-circular outlet hole 565 to the inner arc surface of the inner arc plate 566. At the same time, the lubricant can enter the rectangular guide port 654 through the rectangular outlet hole 564. When the motor 62 is started, the output end of the pulley 63, which is fixedly connected to the coupling, rotates. The outer surfaces of the pulley 63 and the two pulleys 64 are connected by belt drive. The pulley 63 is fixedly connected to the auxiliary roller 7, and the two pulleys 64 are fixedly connected to the auxiliary rollers 8 and 9 respectively. Therefore, when the pulley 63 rotates, it can simultaneously drive the auxiliary rollers 7, 8, and 9 to rotate. In this scheme, the rotation speed of the auxiliary rollers 7, 8, and 9 is the same as that of the take-up roller 68. When the lubricant flows downward from the inner arc surface of the inner arc plate 566, since the five wires pass through the inlet hole 567 and the inner cavity of the inlet cylinder 568 on the same side, the lubricant can continuously flush the wires passing through the inlet hole 567, thereby washing off the debris generated during processing. The waste liquid can drip downward into the inner cavity of the liquid storage box 41, while the partition plate 42 can act as a barrier to prevent the waste liquid from dripping onto the upper end of the base 1. During the initial lubrication of the wire by the inner arc plate 566, the lubricant in the liquid storage box 562 can also enter the rectangular guide port 654 on the same side through five rectangular outlet holes 564. After the lubricant enters the rectangular guide port 654, since the water outlet box 655 on the same side is connected to the inner cavity of the water storage shell 652 on the same side, the lubricant will flow into the water outlet box 655 on the same side and be sprayed out from the nozzle 656 on the same side. As mentioned above, the lower end of the water outlet box 655 on the same side is located above the auxiliary roller 7, auxiliary roller 8 and auxiliary roller 9 on the same side, respectively. See also... Figure 6 It can be seen that the height of the inner arc concave platform 665 is different, so that the lubricant can be sprayed from the nozzle 656 onto the surface of the corresponding auxiliary roller 7, auxiliary roller 8 and auxiliary roller 9, thereby cooling and lubricating the wire on its surface. The lubricant used can fall from the outlet 3 into the storage box 41 for storage, and the cooled wire will be rotated and wound on its surface by the take-up roller 68. When it is necessary to drain the waste liquid in the storage box 41, simply pull the rubber stopper 43 out from the inner surface of the storage box 41, and the waste liquid in the inner cavity of the storage box 41 will flow out from the hole where the rubber stopper 43 is pulled out. After the wire winding operation is completed, the operation of the take-up roller 68 and motor 62 can be stopped. The feed roller 52 can be restarted to allow the wire to be released slightly. The feed roller 52 can then be stopped, and the rotating roller 6623 can be rotated so that the two arc-shaped clamps 667 on the same side clamp and fix the wire on the same side. Then, the handle 6622 is held and the slider 662 is pulled to the right, so that the slider 662 slides to the right in the irregular guide groove 601 and comes into contact with the left end of the wire cutting box 671. During this process, the right end of the slider 662... The rack 678 can be abutted, causing the rack 678 to move to the right. The rack 678 meshes with the gear 677, so the gear 677 can drive the threaded rod 672 to rotate. When the threaded rod 672 rotates, since the lower end of the tangent plate 675 on the same side is slidably connected to the bottom wall of the tangent box 671, and its inner surface is threadedly connected to the threaded rod 672, the tangent plate 675 on the same side can drive the tangent blade 676 fixedly connected to it to enter the tangent groove 674 on the same side, thereby achieving the purpose of clamping the wire. When the rack 678 moves to the right, it can drive the baffle fixedly connected to its lower end to enter the storage groove 679. As can be seen from the above, the width of the storage groove 679 matches the combined width of the rack 678 and the baffle. Therefore, the right ends of the rack 678 and the baffle can enter the storage groove 679. After the wire is clamped, the wire processing is complete. The slider 662 can be moved to the left. During the leftward movement, the right end of the slider 662 can attract the left end of the rack 678 and pull it out of the storage slot 679. Then, the left end of the baffle is attached to the right side wall of the inner surface of the wire cutting box 671, thereby causing the rack 678 to separate from the slider 662.

[0034] The wire feeding roller 52 and the take-up roller 68 mentioned above are conventional settings in the prior art. In this solution, it is only necessary to have five areas for coiling wire on their outer surfaces. Furthermore, their specific installation methods, circuit connection methods, and control methods are all conventional designs. Therefore, this solution will not elaborate on them in detail.

[0035] The pump mechanism 563 mentioned above consists of a housing and a booster pump in the prior art. In this solution, it is only necessary to satisfy the requirement that the booster pump pressurizes and sprays the lubricating fluid in the storage box 562. Its specific installation method, circuit connection method and control method are all conventional designs, so this solution will not elaborate on them in detail.

[0036] The adsorption connection between slider 662 and rack 678 mentioned above is a conventional setting in the prior art, which can be achieved by magnetic attraction. In this solution, it is only necessary to ensure that the two adsorb when they come into contact. The actual adsorption method can be adjusted according to actual production needs, so this solution will not elaborate on it further.

[0037] Example 3: This example describes a processing method for a metal wire specification processing device. The processing method includes: S1. The metal wire to be processed is wound around five winding areas on the outer surface of the wire feeding roller 52, and the diameter of the wire end is reduced by existing technical means. Then the wire feeding roller 52, the take-up roller 68 and the pump mechanism 563 of the device are connected to the external control equipment. S2. Manually pull out the ends of each wire and pass them through the wire pull hollow cylinder 55, wire inlet hole 567 and wire inlet hollow cylinder 568 on the same side in sequence, so that the ends of the wires enter the inner cavity of the five round holes 663 of the cable box 661, and the wires are supported by the inner arc concave platform 665 in the round holes 663. S3. Rotate the rotating roller 6623, which drives the four pulleys 6621 and the threaded rod 668 connected to them to rotate synchronously through belt transmission. This causes the two sliding plates 666 on the same side to move the arc-shaped clamping plate 667 inward to clamp the wire. Hold the handle 6622 and push the slider 662 to slide along the irregular guide groove 601, so that the wire fits the V-shaped grooves on the upper side of the auxiliary roller 7, the lower side of the auxiliary roller 8, and the upper side of the auxiliary roller 9 respectively. S4. Rotate the roller 6623 in the opposite direction to loosen the wire by the arc-shaped clamp 667, pull out the end of the wire and fix it to the five winding areas on the outer surface of the take-up roller 68 respectively. Rotate the feed roller 52 in the opposite direction slowly to tighten the wire on the surfaces of auxiliary roller 1 7, auxiliary roller 2 8 and auxiliary roller 3 9. S5. Start the motor 62 and take-up roller 68. The motor 62 drives the pulley 1 63, pulley 2 64 and auxiliary rollers 1 7, 2 8 and 3 9 to rotate synchronously through belt drive. The take-up roller 68 pulls the wire to perform wire drawing. At the same time, the pump mechanism 563 is started to pressurize the lubricating fluid in the liquid storage box 562. The lubricating fluid flows through the semi-circular liquid outlet 565 and the rectangular liquid outlet 564 to the inner arc plate 566 and the water storage shell 652 respectively, to lubricate and cool the wire and auxiliary rollers 1 7, 2 8 and 3 9. The waste liquid falls into the inner cavity of the liquid storage box 41 through the liquid outlet 3 for collection. S6. After the wire winding is completed, stop the operation of motor 62 and take-up roller 68, rotate wire feed roller 52 to release a small section of wire, rotate roller 6623 again to make arc clamp plate 667 clamp wire, hold handle 6622 and push slider 662 to the right. Slider 662 contacts rack 678 and slides along rectangular groove. Rack 678 meshes with gear 677 to drive threaded rod 672 to rotate, so that cutting plate 675 drives cutting knife 676 into cutting groove 674 to cut wire. S7. After the clamping is completed, pull the slider 662 to the left. The slider 662 will attract the rack 678, disengage it from the storage groove 679, and reset it. The lower end baffle of the rack 678 will fit against the inner wall of the wire cutting box 671, thus completing a single metal wire processing.

[0038] It should be noted that the specific installation method of the motor 62, the circuit connection method, and the control method used in this invention are all conventional designs, and will not be described in detail here.

[0039] The foregoing has shown and described the basic principles, main features, and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of the invention. Various changes and modifications can be made to the invention without departing from its spirit and scope, and all such changes and modifications fall within the scope of the present invention as claimed. The scope of protection of this invention is defined by the appended claims and their equivalents.

Claims

1. A device and method for processing metal wire gauges, comprising a base (1), characterized in that: The lower end of the base (1) is fixedly connected with support legs (2) for support, the upper end of the base (1) is provided with a liquid outlet (3), the lower end of the base (1) is fixedly provided with a liquid storage assembly (4), the upper end of the base (1) is fixedly provided with a wire feeding assembly (5) on the left side, and the upper end of the base (1) is fixedly provided with a wire winding assembly (6) on the middle.

2. The metal wire rod specification processing device and method according to claim 1, characterized by: The liquid storage assembly (4) comprises a liquid storage box (41) fixedly connected to the middle of the lower end of the base (1), the left side of the front inner surface of the liquid storage box (41) and the left side of the rear inner surface are fixedly connected with a partition plate (42), a plug hole is formed in the lower side of the middle of the rear end of the liquid storage box (41), and a rubber plug (43) is inserted into the inner surface of the plug hole.

3. The metal wire size processing device and method according to claim 1, wherein: The wire feeding assembly (5) comprises outer plates (51) fixedly connected to the rear part and the front part of the upper end of the base (1), a wire feeding roller (52) is rotatably connected to the middle of the end of the two outer plates (51) close to each other, vertical plates (53) are fixedly connected to the front end and the rear end of the upper end of the base (1), six connecting plates (54) are arranged on the upper part of the end of the two vertical plates (53) close to each other, wire pulling hollow cylinders (55) are fixedly connected to the end of the six connecting plates (54) close to each other, and the end of the connecting plates (54) away from each other is fixedly connected with the vertical plate (53) on the same side.

4. The device and method according to claim 3, wherein: The lubricating assembly (56) comprises a wire pulling table (561) fixedly connected to the middle of the left side of the upper end of the base (1), the wire pulling table (561) is located on the right side of the vertical plate (53), a liquid storage box (562) is fixedly connected to the upper end of the wire pulling table (561), a pump liquid mechanism (563) is fixedly connected to the rear end of the liquid storage box (562), five rectangular liquid outlet holes (564) are linearly arranged in the middle of the left side wall of the inner surface of the liquid storage box (562), five semicircular liquid outlet holes (565) are linearly arranged in the left side of the bottom wall of the liquid storage box (562), and inner arc plates (566) are fixedly connected to the left side of the lower end of the liquid storage box (562). The upper end of each of the five inner arc plates (566) is aligned with the lower end of each of the five semicircular liquid outlet holes (565), an inlet hole (567) is formed in the middle of the inner arc surface of each of the five inner arc plates (566), five inlet hollow cylinders (568) are linearly arranged and fixedly connected to the middle of the left end of the wire pulling table (561), and the right end of each of the five inlet hollow cylinders (568) penetrates the left end of the wire pulling table (561) and extends to the outside.

5. The device and method according to claim 4, wherein: Five wire pulling hollow cylinders (55), five inlet holes (567) and five inlet hollow cylinders (568) are arranged at the same center.

6. The metal wire rod size processing apparatus and method according to claim 4, wherein: The take-up assembly (6) comprises two enclosing plates (60), the two enclosing plates (60) are fixedly connected to the upper end front and upper end rear of the base (1) respectively, a fixed table (61) is fixedly connected to the left lower part of the front end of the front enclosing plate (60), a motor (62) is fixedly connected to the upper end of the fixed table (61), the output end of the motor (62) is fixedly connected with a belt pulley I (63) through a shaft coupling, the rear end of the belt pulley I (63) is rotatably connected with the front end of the front enclosing plate (60), a belt pulley II (64) is rotatably connected to the lower part and the upper part of the right side of the front end of the front enclosing plate (60), a liquid outlet assembly (65) is jointly fixedly installed on the left side of one end of the two enclosing plates (60) which are close to each other, a wire arranging assembly (66) is slidingly installed on the middle part of one end of the two enclosing plates (60) which are close to each other, and the two belt pulleys II (64) and the outer surfaces of the belt pulley I (63) are jointly driven by a belt; A special-shaped guide groove (601) is formed in the rear end of the rear enclosing plate (60), a cutting assembly (67) is fixedly installed on the rightmost inner surface of the special-shaped guide groove (601), an auxiliary roller I (7) is jointly rotatably connected to the lower part of the left side of one end of the two enclosing plates (60) which are close to each other, an auxiliary roller II (8) is jointly rotatably connected to the lower side of the middle part of one end of the two enclosing plates (60) which are close to each other, an auxiliary roller III (9) is jointly rotatably connected to the upper part of the right side of one end of the two enclosing plates (60) which are close to each other, the front end of the auxiliary roller I (7) is fixedly connected with the rear end of the belt pulley I (63) through a connecting rod, the front end of the auxiliary roller II (8) is fixedly connected with the rear end of the belt pulley II (64) on the lower right side through a connecting rod, the front end of the auxiliary roller III (9) is fixedly connected with the rear end of the belt pulley II (64) on the upper right side through a connecting rod, and the middle part of one end of the two enclosing plates (60) which are close to each other is jointly rotatably connected with a take-up roller (68).

7. The device and method according to claim 6, wherein: The liquid outlet assembly (65) comprises five water storage shells (652) arranged in a linear array, the left side and the right side of one end of the five water storage shells (652) which are close to each other are jointly fixedly connected with a connecting plate (651), the left end of each of the five water storage shells (652) is provided with a rectangular guide opening (654), the left end of each of the five water storage shells (652) is fixedly connected to the right end of the liquid storage box (562), the five rectangular guide openings (654) are respectively aligned with the five rectangular liquid outlet holes (564), and the lower end of each of the five water storage shells (652) is fixedly connected with three water outlet boxes (655) arranged in a linear array, and the lower end of each of the three water outlet boxes (655) on the same side is fixedly connected with a spray head (656); The lower end of each of the water outlet boxes (655) on the same side is located above the auxiliary roller I (7), the auxiliary roller II (8) and the auxiliary roller III (9) on the same side.

8. The metal wire rod size processing apparatus and method according to claim 6, wherein: The wire arrangement assembly (66) includes a wire box (661) which is slidingly connected to the rear end of the coaming (60) on the front side, and the rear end of the wire box (661) is fixedly connected with a sliding block (662), the outer surface of the sliding block (662) is slidingly connected to the inner surface of the special-shaped guide groove (601), five circular holes (663) are linearly arranged at the left end of the wire box (661) and extend through the right end of the wire box (661), and the inner arc surface of each circular hole (663) is fixedly connected with an inner arc recess (665), the inner surfaces of two sliding grooves (664) on the same side are slidingly connected with a sliding plate (666), and the end of the sliding plate (666) on the same side and the sliding plate (666) on the same side is fixedly connected with an arc-shaped clamping plate (667), the rear side wall of the inner surface of the four sliding grooves (664) is rotatably connected with a threaded rod (668), and the inner surfaces of the sliding plates (666) on the same side are threadedly connected to the outer surfaces of the threaded rods (668) on the same side. The rear ends of the four threaded rods (668) extend through the sliding block (662), the rear ends of the four threaded rods (668) are fixedly connected with a belt pulley (6621), the outer surfaces of the four belt pulleys (6621) are drivingly connected by a belt, the rear end of the sliding block (662) is fixedly connected with a handle (6622), and the rear end of the belt pulley (6621) on the right side is fixedly connected with a rotating roller (6623).

9. The device and method according to claim 8, wherein: The cutting assembly (67) includes a wire cutting box (671) which is fixedly connected to the inner surface of the rightmost side of the special-shaped guide groove (601), the inner surface of the wire cutting box (671) is rotatably connected with a threaded rod (672) on the upper part of the front side wall and the upper part of the rear side wall, five wire cutting blocks (673) are linearly arranged and fixedly connected to the bottom wall of the wire cutting box (671), the rear end of each wire cutting block (673) is provided with a wire cutting groove (674), the outer surface of the threaded rod (672) is threadedly connected with five wire cutting plates (675), the lower end of each wire cutting plate (675) is slidingly connected to the bottom wall of the wire cutting box (671), and the middle part of the end of each wire cutting plate (675) on the same side close to the wire cutting block (673) on the same side is fixedly connected with a wire cutting knife (676). The rear part of the outer surface of the threaded rod (672) is fixedly connected with a gear (677), the left end of the wire cutting box (671) is provided with a rectangular sliding groove, the bottom wall of the rectangular sliding groove is slidingly connected with a rack (678), the lower end of the rack (678) is fixedly connected with a baffle, and the right end of the wire cutting box (671) is provided with a receiving groove (679) close to the special-shaped guide groove (601), and the width of the receiving groove (679) matches the width of the rack (678) and the baffle.

10. A processing method using the processing device of the metal wire specification according to any one of claims 1-9, characterized in that: S1, winding the metal wire to be processed on the outer surface of the wire feeding roller (52) in five winding areas, and clamping the wire end diameter small through prior art means, then connecting the wire feeding roller (52), the wire collecting roller (68) and the pump liquid mechanism (563) of the device with the external control equipment; S2, manually pulling out each wire end, sequentially passing through the same side wire pulling hollow cylinder (55), the wire inlet hole (567) and the wire inlet hollow cylinder (568), so that the wire end enters the inner cavity of the five circular holes (663) of the wire arranging box (661), and is supported by the inner arc recess (665) in the circular hole (663); S3, rotating the rotating roller (6623), driving the four belt pulleys three (6621) and the threaded rod one (668) connected thereto to rotate synchronously through belt transmission, so that the two slide plates (666) on the same side drive the arc-shaped clamping plate (667) to move inward to clamp the wire, and the handle (6622) is pushed to drive the sliding block (662) to slide along the special-shaped guide groove (601), so that the wire is respectively attached to the V-shaped groove on the upper side of the auxiliary roller one (7), the lower side of the auxiliary roller two (8) and the upper side of the auxiliary roller three (9); S4, reverse rotating the rotating roller (6623) to loosen the wire, pulling out the wire end and fixing it in the five winding areas on the outer surface of the wire collecting roller (68), and reversely rotating the wire feeding roller (52) slowly to tighten the wire on the surfaces of the auxiliary roller one (7), the auxiliary roller two (8) and the auxiliary roller three (9); S5, starting the motor (62) and the wire collecting roller (68), the motor (62) drives the belt pulley one (63), the belt pulley two (64) and the auxiliary roller one (7), the auxiliary roller two (8) and the auxiliary roller three (9) to rotate synchronously through belt transmission, the wire collecting roller (68) pulls the wire for wire drawing processing, and the pump liquid mechanism (563) is started to pressurize the lubricating liquid in the liquid storage box (562), the lubricating liquid flows to the inner arc plate (566) and the water storage shell (652) through the semicircular liquid outlet hole (565) and the rectangular liquid outlet hole (564) respectively, and the wire and the auxiliary roller one (7), the auxiliary roller two (8) and the auxiliary roller three (9) are lubricated and cooled, and the waste liquid falls into the inner cavity of the liquid storage box (41) through the liquid outlet (3) for collection; S6, after completing the wire winding, stopping the motor (62) and the wire collecting roller (68) from running, rotating the wire feeding roller (52) to release a small section of wire, rotating the rotating roller (6623) again to make the arc-shaped clamping plate (667) clamp the wire, holding the handle (6622) to push the sliding block (662) to move right, the sliding block (662) abutting against the rack (678) slides along the rectangular sliding groove, the rack (678) engages with the gear (677) to drive the threaded rod two (672) to rotate, so that the wire cutting plate (675) drives the wire cutting knife (676) to enter the wire cutting groove (674) to cut the wire. S7, after the pinch-off is completed, the slider (662) is pulled to the left, the slider (662) is adsorbed to the rack (678) to be separated from the storage groove (679) and reset, the lower end of the rack (678) is attached to the inner side wall of the tangent box (671), and thus the single metal wire processing is completed.

Citation Information

Patent Citations

  • Metal wire machining device and method

    CN117165955A