Wire rod processing equipment and use method thereof

By designing wire processing equipment for circulating filter modules and cleaning modules, the problem of continuous consumption of cooling water is solved, and the reuse of cooling water and the improvement of wire processing efficiency is achieved.

CN120347073AInactive Publication Date: 2025-07-22LISHUI JIDE IND CO LTD
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Patent Information

Application Number
CN202510815113.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-18
Publication Date
2025-07-22
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the prior art, cooling water needs to continuously cool the wire drawing die, resulting in a high material consumption rate during wire processing.

Method used

A wire processing equipment is designed, including a circulating filtration module and a cleaning module. The reuse of cooling water is achieved through the circulating filtration module, and the surface of the wire is cleaned through the cleaning module to reduce material consumption.

Benefits of technology

The continuous cooling and reuse of cooling water is achieved, the material consumption rate during wire processing is reduced, and the efficiency and effect of wire drawing is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention belongs to the technical field of wire rod machining, and particularly relates to wire rod machining equipment and a using method thereof.The wire rod machining equipment comprises a tool containing frame and fixing frames, the same circulating filtering module is arranged on the opposite sides of the two fixing frames, and the circulating filtering module comprises a wire penetrating frame; a partition plate is fixedly connected to one side of the interior of the threading frame, first round holes are formed in one side of the partition plate and one side of the threading frame, the interiors of the two first round holes are connected with the same hollow rotating round pipe through bearings, suction holes are formed in the exterior of the hollow rotating round pipe at equal intervals, and a filter cartridge is fixedly connected to one end of the hollow rotating round pipe. The cooling device has the effect that cooling water is recycled when the cooling water continuously cools the wire-drawing die, so that the material consumption rate during wire machining is reduced.
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Description

Technical Field

[0001] The present invention relates to the technical field of wire processing, and particularly relates to a wire processing device and a using method thereof. Background Art

[0002] At present, when wire drawing operation is carried out on a wire drawing die for cable wires, cooling water is generally used to cool the wire drawing die to avoid overheating of the equipment caused by frictional heat generated by the wire drawing die, which affects the service life of the equipment. Since the cooling water needs to continuously cool the wire drawing die, the material consumption rate during wire processing is increased. Summary of the Invention

[0003] The present invention discloses a wire processing device and a using method thereof, aiming to solve the technical problem that in the background art, cooling water needs to continuously cool the wire drawing die, thereby increasing the material consumption rate during wire processing.

[0004] A wire processing device proposed by the present invention includes a tooling placement rack, two fixed racks, and a lifting seat. The fixed racks are located on one side of the tooling placement rack, and further include: A circulating filtration module, which is arranged on the opposite sides of the two fixed racks and is used for recycling the cooling water during the wire drawing operation; A cleaning module, which is arranged on the lifting seat and is used for pre-cleaning the surface of the wire during the wire drawing operation; The circulating filtration module further includes a rotary filtration structure, which consists of a hollow rotary circular tube and a filter cylinder with suction holes, and realizes rotary filtration through bearing support.

[0005] In a preferred solution, the circulating filtration module includes a wire threading frame; The wire threading frame integrates a partition board, a supporting cross board, a cover plate one, and a cover plate two; On one side of the supporting cross board, a plurality of telescopic springs are arranged, and a cleaning brush board connected through the telescopic springs elastically scrapes and cleans the surface of the filter cylinder; A drum water pump is arranged on the cover plate one. The drum water pump extracts the liquid in the wire threading frame through a suction pipe to form a circulating filtration flow path.

[0006] In a preferred solution, a U-shaped mounting seat is fixed on one side of the wire threading frame, and a hollow mounting frame is built inside, which is used for integrating a metal telescopic nozzle. The metal telescopic nozzle is fixed through equally spaced mounting round holes on the hollow mounting frame to achieve directional spraying; The water outlet end of the drum water pump is connected to the hollow mounting frame through a drum water pipe to drive the spraying cycle. A control box is arranged on the side of the fixed rack to uniformly control the filtration and spraying functions.

[0007] In a preferred embodiment, two wire-winding wheels supported by bearings are provided inside the wire threading frame for wire guiding. The wire drawing die is fixed inside the wire threading frame to cooperate with the wire-winding wheels to achieve wire positioning. The hollow rotating circular tube meshes with the T-shaped tooth plate through a rotating gear to drive rotary filtration. The T-shaped tooth plate is connected through a fixed shaft bearing. The driving motor is fixed through an L-shaped support seat. The roller at the end of its rotating push rod is embedded in the notch of the T-shaped tooth plate, and the rotary motion is converted into a reciprocating rack drive. The roller pushes the T-shaped tooth plate to drive the rotating gear, driving the hollow rotating circular tube to rotate. The circulating pump sucks the liquid inside the wire threading frame through the first circulating pipe and discharges it back through the second circulating pipe to form a closed cycle.

[0008] By providing a circulating filtration module, when wire drawing is performed on the wire, first pass the wire through the wire drawing die and the wire-winding wheel inside the wire threading frame. During the wire drawing operation, the water pump sucks the cooling water inside the wire threading frame, and then cools the frictional heat generated on the wire drawing die during the wire drawing process through the metal telescopic nozzle on the hollow mounting frame. Then start the circulating pump, suck the cooling water used inside the wire threading frame through the first circulating pipe on the circulating pump, and then drum the used cooling water into the other side of the wire threading frame through the second circulating pipe. Filter the cooling water through the filter cylinder. The filtered cooling water enters the other side of the partition inside the wire threading frame through the hollow rotating circular tube, thereby realizing reuse. When the filter cylinder filters the used cooling water, at this time start the driving motor, drive the roller on the rotating push rod to move in the notch of the T-shaped tooth plate through the driving motor, so that the tooth block end of the T-shaped tooth plate moves in an arc reciprocating manner, so that the rotating gear drives the hollow rotating circular tube to make the filter cylinder rotate bidirectionally. On the one hand, it avoids the filtering end of the filter cylinder always facing the inlet of the used cooling water. On the other hand, clean the outside of the filter cylinder through the cleaning brush plate located inside the wire threading frame to avoid blockage of the filter cylinder. Through the circulating filtration module, the cooling water continuously cools the wire drawing die and reuses the cooling water, thereby reducing the material consumption rate during wire processing.

[0009] In a preferred embodiment, the cleaning module further includes a rotating cylinder and a wire guiding support. Compression springs distributed circumferentially are provided inside the rotating cylinder to push the cleaning sponge block to fit the surface of the wire for adaptive cleaning. The rotating cylinder installed through a bearing rotates as the wire moves to achieve uniform cleaning. The hollow dust suction plate is provided with a dust suction port to synchronously adsorb the debris generated by cleaning.

[0010] In a preferred embodiment, a dust suction pump is fixedly connected to one side of the wire guiding support. The dust suction pump is connected to the hollow dust suction plate through a dust suction pipe. The debris is discharged into the dust collection box through the dust discharge pipe. The dust collection box can be quickly taken and placed through the opening and closing plate. The general motor drives the rotating cylinder to rotate through the first belt to enhance the cleaning effect.

[0011] In a preferred embodiment, a guiding auxiliary wheel is provided on the side of the wire support, and the guiding auxiliary wheel cooperates with the rotating cylinder to achieve multi-directional positioning of the wire body; The telescopic cylinder drives the lifting and adjusting arm to drive the guiding conical frame to perform lifting adjustment. The lifting seat is fixedly connected to the wire support, integrating the guiding and lifting functions.

[0012] By providing a cleaning module, before the wire drawing operation on the wire, the wire is passed through the inside of the rotating cylinder. At this time, the general motor is started, and the rotating cylinder is driven to rotate by the general motor driving the first belt. The outer part of the wire is cleaned by the cleaning sponge blocks distributed in a ring inside the rotating cylinder, improving the effect of wire drawing. During the cleaning process, the dust suction pump is started, and the impurities falling inside the rotating cylinder are sucked through the hollow dust suction plate, and then uniformly discharged into the dust collection box through the dust discharge pipe to avoid secondary pollution of the wire by the impurities.

[0013] In a preferred embodiment, sliding grooves are provided on both sides of the tooling placement rack, and the same placement sliding plate is slidably connected inside the two sliding grooves. A push-pull handle is provided on the side of the placement sliding plate for easy movement; The servo motor drives the bidirectional screw to rotate, driving the nut slide rod and the clamping seat to open and close synchronously along the guiding track, adapting to different sizes of unwinding racks, and the unwinding racks are quickly disassembled and assembled through the mounting holes.

[0014] In a preferred embodiment, one side of the tooling placement rack is connected to a tooling support plate by bolts, and the tooling support plate and one side of the two fixing frames are fixedly connected to the same mounting plate. A seventh round hole is provided on one side of the mounting plate, and an anti-detachment sleeve is connected inside the seventh round hole through a bearing. A winding motor is fixedly connected to one side of the mounting plate; The winding motor drives the anti-detachment sleeve to rotate through the second belt to realize wire winding. The anti-detachment sleeve is installed on the mounting plate through a bearing to ensure the winding stability. Auxiliary pressing wheels are provided on the tooling support plate and the fixing frame to guide the wire to be wound evenly.

[0015] By providing an unwinding rack, a guiding track, a nut slide rod, a clamping seat, a bidirectional screw, a servo motor, a push-pull handle and a placement sliding plate, the unwinding rack is placed on the placement sliding plate, and then the servo motor is started. The servo motor drives the bidirectional screw to rotate, and the nut slide rod is driven by the bidirectional screw to move towards each other, so that the clamping seat fixes the unwinding rack. The drawn wire is wound by the unwinding rack. When the winding is completed, the placement sliding plate is driven to move by the push-pull handle to realize quick replacement of the unwinding rack, thereby improving the processing efficiency of the wire.

[0016] A usage method of a wire processing device, using the above-mentioned wire processing device, includes the following steps: Step 1: When wire drawing is performed on the wire, first pass the wire through the wire drawing die and the winding wheel in the wire threading frame. During the wire drawing operation, the drum water pump sucks the cooling water in the wire threading frame, and then cools the frictional heat generated by the wire drawing die during wire drawing through the metal telescopic nozzle on the hollow mounting frame. Step 2: Then start the circulation pump, suck the cooling water used in the wire threading frame through the first circulation pipe on the circulation pump, and then drum the used cooling water into the other side of the wire threading frame through the second circulation pipe. Filter the cooling water through the filter cartridge, and the filtered cooling water enters the other side of the partition in the wire threading frame through the hollow rotating pipe, so as to realize reuse. When the filter cartridge filters the used cooling water, at this time start the drive motor, drive the roller on the rotating push rod to move in the notch of the T-shaped tooth plate through the drive motor, so that the tooth block end of the T-shaped tooth plate moves in an arc reciprocating manner, and the rotating gear drives the hollow rotating pipe to make the filter cartridge rotate bidirectionally. On the one hand, it avoids the filter end of the filter cartridge always facing the inlet of the used cooling water, and on the other hand, cleans the outside of the filter cartridge through the cleaning brush plate located in the wire threading frame.

[0017] As can be seen from the above, a wire processing device provided by the present invention has the beneficial effect of continuously reusing the cooling water while cooling the wire drawing die, thereby reducing the material consumption rate during wire processing. Description of the Drawings

[0018] Figure 1 It is a schematic diagram of the main structure of a wire processing device proposed by the present invention; Figure 2 It is a schematic side view structure diagram of a wire processing device proposed by the present invention; Figure 3 It is a schematic bottom view structure diagram of a wire processing device proposed by the present invention; Figure 4 It is a schematic diagram of the structure of the circulation filtration module of a wire processing device proposed by the present invention; Figure 5 It is a partial structure schematic diagram of the circulation filtration module of a wire processing device proposed by the present invention; Figure 6 It is Figure 4 The enlarged structure schematic diagram of part A; Figure 7 It is a schematic diagram of the internal structure of the wire threading frame of a wire processing device proposed by the present invention; Figure 8 It is a schematic diagram of the structure of the cleaning module of a wire processing device proposed by the present invention; Figure 9 It is a partial structure schematic diagram of the cleaning module of a wire processing device proposed by the present invention; Figure 10 Schematic diagram of a wire support structure of a wire processing device proposed by the present invention.

[0019] In the figure: 1, tooling placement rack; 2, fixed rack; 3, tooling support plate; 4, mounting plate; 5, circulating filtration module; 501, U-shaped mounting seat; 502, hollow mounting frame; 503, metal telescopic nozzle; 504, cover plate one; 505, cover plate two; 506, drum water pump; 507, drum water pipe; 508, water suction pipe; 509, control box; 510, circulating pump; 511, circulating pipe one; 512, circulating pipe two; 513, partition board; 514, hollow rotating round pipe; 515, filter cartridge; 516, support cross plate; 517, telescopic spring; 518, cleaning brush plate; 519, rotating gear; 520, wire drawing die; 521, winding wheel; 522, L-shaped support seat; 523, driving motor; 524, fixing plate; 525, fixed shaft; 526, T-shaped tooth plate; 527, rotating push rod; 528, roller; 529, wire threading frame; 6, cleaning module; 601, wire support; 602, guiding auxiliary wheel; 603, dust suction pump; 604, abutting plate; 605, rotating cylinder; 606, compression spring; 607, cleaning sponge block; 608, hollow dust suction plate; 609, general motor; 610, belt one; 611, dust suction pipe; 612, dust discharge pipe; 613, opening and closing plate; 614, dust collection box; 615, fixed seat; 7, lifting seat; 8, auxiliary guide wheel; 9, lifting adjustment arm; 10, telescopic cylinder; 11, wire body; 12, guiding conical frame; 13, placing slide plate; 14, pushing and pulling handle; 15, unwinding rack; 16, guiding track; 17, nut slide bar; 18, clamping seat; 19, servo motor; 20, bidirectional screw; 21, winding motor; 22, belt two; 23, auxiliary pressing wheel; 24, anti-detaching sleeve. Detailed implementation manners

[0020] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments.

[0021] A wire processing device disclosed by the present invention is mainly applied to the scenario where cooling water needs to continuously cool the wire drawing die, so as to improve the material consumption rate during wire processing.

[0022] Refer to Figures 1 - 7, a wire processing device, including a tooling placement rack 1 and a fixing rack 2. On the opposite sides of the two fixing racks 2, there is the same circulating filtration module 5. The circulating filtration module 5 includes a wire threading frame 529. On one side inside the wire threading frame 529, there is a fixed partition 513. Both the partition 513 and one side of the wire threading frame 529 are provided with round holes one. Inside the two round holes one, there is the same hollow rotating round tube 514 connected by bearings. The outer part of the hollow rotating round tube 514 is equidistantly provided with suction holes. One end of the hollow rotating round tube 514 is fixedly connected with a filter cylinder 515. On both sides of the wire threading frame 529, there are fixedly connected support cross plates 516. On the side of the two support cross plates 516 facing the filter cylinder 515, there are equidistantly fixedly connected telescopic springs 517. One ends of multiple telescopic springs 517 on the same side are all fixedly connected with the same cleaning brush plate 518. On one side of the wire threading frame 529, there are respectively a cover plate one 504 and a cover plate two 505. And on the cover plate one 504, there is a drum water pump 506. The water inlet end of the drum water pump 506 passes through the cover plate two 505 through a suction pipe 508 and is connected to the inside of the wire threading frame 529.

[0023] Refer to Figures 1 - 7 , on one side of the wire threading frame 529, there is a fixedly connected U-shaped mounting seat 501. And on one side of the U-shaped mounting seat 501, there is a mounting opening. Inside the mounting opening, there is a fixedly connected hollow mounting frame 502. On the side of the hollow mounting frame 502 facing the wire threading frame 529, there are equidistantly provided mounting round holes. Inside multiple mounting round holes, there are fixedly connected metal telescopic spray nozzles 503. The water outlet end of the drum water pump 506 is connected to the inside of the hollow mounting frame 502 through a drum water pipe 507. On the side of one of the fixing racks 2, there is a fixedly connected control box 509.

[0024] Refer to Figures 1 - 7 , on one side inside the wire threading frame 529, there are two round holes two. Inside the two round holes two, there are respectively winding wheels 521 connected by bearings. On one side inside the wire threading frame 529, there is a wire drawing die 520. On the outer part of the hollow rotating round tube 514, there is a fixedly connected rotating gear 519. On one side of the wire threading frame 529, there is a fixing plate 524 connected by bolts. On the side of the fixing plate 524, there is a round hole three. Inside the round hole three, there is a fixed shaft 525 connected by a bearing. On the outer part of the fixed shaft 525, there is a T-shaped tooth plate 526. The tooth block end of the T-shaped tooth plate 526 meshes with the rotating gear 519. On the side of the T-shaped tooth plate 526, there is a notch.

[0025] Refer to Figures 1 - 7, on the side of the wire threading frame 529, there is an L-shaped support seat 522 connected by bolts, and on the side of the L-shaped support seat 522, there is a driving motor 523 fixedly connected. The driving end of the driving motor 523 is fixedly connected with a rotating push rod 527. A circular hole four is formed on the side of the rotating push rod 527, and a roller 528 is connected inside the circular hole four through a bearing. The roller 528 slides inside the notch formed in the T-shaped toothed plate 526. The bottom of the wire threading frame 529 is fixedly connected with a circulating pump 510. The water suction end of the circulating pump 510 is connected to the inside of the wire threading frame 529 through a first circulating pipe 511, and the water discharge end of the circulating pump 510 is connected to the inside of the wire threading frame 529 through a second circulating pipe 512.

[0026] In a specific application scenario, when performing wire drawing operation on the wire, first pass the wire through the wire drawing die 520 and the winding wheel 521 inside the wire threading frame 529. During the wire drawing operation, the water pump 506 sucks the cooling water inside the wire threading frame 529, and then cools the frictional heat generated by the wire drawing die 520 during the wire drawing process through the metal telescopic nozzle 503 on the hollow mounting frame 502. Then start the circulating pump 510, suck the cooling water used inside the wire threading frame 529 through the first circulating pipe 511 on the circulating pump 510, and then pump the used cooling water into the other side of the wire threading frame 529 through the second circulating pipe 512. Filter the cooling water through the filter cartridge 515. The filtered cooling water enters the other side of the partition 513 inside the wire threading frame 529 through the hollow rotating round pipe 514, thus realizing reuse. When the filter cartridge 515 filters the used cooling water, at this time, start the driving motor 523, drive the roller 528 on the rotating push rod 527 to move inside the notch of the T-shaped toothed plate 526 through the driving motor 523, so that the toothed block end of the T-shaped toothed plate 526 moves in an arc-shaped reciprocating manner, making the rotating gear 519 drive the hollow rotating round pipe 514 to rotate the filter cartridge 515 bidirectionally. On the one hand, it avoids the filtering end of the filter cartridge 515 always facing the inlet of the used cooling water. On the other hand, clean the outside of the filter cartridge 515 through the cleaning brush plate 518 located inside the wire threading frame 529.

[0027] Refer to Figure 1 、 Figure 4 、 Figure 8 、 Figure 9 and Figure 10, a cleaning module 6 is provided on the side of the wire threading frame 529, and the cleaning module 6 includes a wire support 601. On one side of the wire support 601, two pressing plates 604 are connected by bolts. Circular holes five are provided on the sides of the two pressing plates 604. Inside the two circular holes five, the same rotating cylinder 605 is connected through bearings. Compression springs 606 are arranged at equal circumferential intervals inside the rotating cylinder 605. On one side of the multiple compression springs 606 on the same side, the same cleaning sponge block 607 is fixedly connected. A hollow dust suction plate 608 is fixedly connected to the side of the wire support 601. A dust suction port is provided on the side of the hollow dust suction plate 608 facing the rotating cylinder 605.

[0028] Refer to Figure 1 , Figure 8 , Figure 9 and Figure 10 , a dust suction pump 603 is fixedly connected to one side of the wire support 601. The dust suction end of the dust suction pump 603 is connected to the inside of the hollow dust suction plate 608 through a dust suction pipe 611. A placement opening is provided on the side of the wire support 601. A dust collection box 614 is placed inside the placement opening. The discharge end of the dust suction pump 603 is connected to the inside of the dust collection box 614 through a dust discharge pipe 612. One side of the placement opening is connected by a hinge to an opening and closing plate 613. A fixing seat 615 is connected by bolts to one side of the wire support 601. A universal motor 609 is fixedly connected to one side of the fixing seat 615. A first pulley is fixedly connected to the drive end of the universal motor 609 and the outside of the rotating cylinder 605. The same belt one 610 is slidably connected to the outside of the two first pulleys.

[0029] Refer to Figure 1 , Figure 8 , Figure 9 and Figure 10 , a guiding auxiliary wheel 602 is provided on the side of the wire support 601. The wire body 11 passes through the inside of the rotating cylinder 605. A lifting seat 7 is fixedly connected to one side of the wire support 601. A lifting adjusting arm 9 is movably connected to one side of the lifting seat 7. A guiding conical frame 12 is provided on one side of the lifting adjusting arm 9. The same telescopic cylinder 10 is provided on one side of the lifting seat 7 and the lifting adjusting arm 9. A secondary guide wheel 8 is provided on the side of the wire support 601.

[0030] In a specific application scenario, before wire drawing operation on the wire, the wire is passed through the inside of the rotating cylinder 605. At this time, the universal motor 609 is started. The rotating cylinder 605 is driven to rotate by the universal motor 609 through the belt one 610. The outside of the wire is cleaned by the cleaning sponge blocks 607 distributed in a ring inside the rotating cylinder 605, improving the effect of wire drawing. During the cleaning process, the dust suction pump 603 is started. The impurities falling inside the rotating cylinder 605 are sucked through the hollow dust suction plate 608, and then are uniformly discharged into the dust collection box 614 through the dust discharge pipe 612, avoiding secondary pollution of the wire by the impurities.

[0031] Refer to Figure 1 、 Figure 2 and Figure 3 Figure 3 On both sides of the tooling placement rack 1, sliding grooves are provided, and the same placement slide plate 13 is slidably connected inside the two sliding grooves. An installation hole is provided on one side of the placement slide plate 13, and a unwinding rack 15 is placed inside the installation hole. A guiding track 16 is fixedly connected to one side of the placement slide plate 13. Two nut sliding rods 17 are slidably connected inside the guiding track 16. A clamping seat 18 is fixedly connected to one side of each of the two nut sliding rods 17. A circular hole six is provided on one side of the guiding track 16, and a bidirectional screw rod 20 is connected through a bearing inside the circular hole six. A servo motor 19 is fixedly connected to one side of the placement slide plate 13. The driving end of the servo motor 19 is connected to one end of the bidirectional screw rod 20 through a coupling. A push-pull handle 14 is connected to the side surface of the placement slide plate 13 through bolts.

[0032] In a specific application scenario, the unwinding rack 15 is placed on the placement slide plate 13, and then the servo motor 19 is started. The servo motor 19 drives the bidirectional screw rod 20 to rotate. The bidirectional screw rod 20 drives the nut sliding rods 17 to move towards each other, so that the clamping seat 18 fixes the unwinding rack 15. The wire after wire drawing is wound by the unwinding rack 15. After the winding is completed, the placement slide plate 13 is driven to move through the push-pull handle 14, realizing the rapid replacement of the unwinding rack 15, thereby improving the processing efficiency of the wire.

[0033] Refer to Figure 1 、 Figure 2 and Figure 3 Figure 3 One side of the tooling placement rack 1 is connected to a tooling support plate 3 through bolts, and the same mounting plate 4 is fixedly connected to one side of the tooling support plate 3 and the two fixing frames 2. A circular hole seven is provided on one side of the mounting plate 4, and an anti-detachment sleeve 24 is connected through a bearing inside the circular hole seven. A winding motor 21 is fixedly connected to one side of the mounting plate 4. Pulley two is fixedly connected to the driving end of the winding motor 21 and one end of the anti-detachment sleeve 24 respectively. The same belt two 22 is slidably connected outside the two pulley twos. Auxiliary pressing wheels 23 are provided on one side of the tooling support plate 3 and the two fixing frames 2.

[0034] A usage method of a wire processing device, using the above-mentioned wire processing device, includes the following steps: Step 1: When performing wire drawing operation on the wire, first pass the wire through the wire drawing die 520 and the winding wheel 521 inside the wire threading frame 529. During the wire drawing operation, the drum water pump 506 sucks the cooling water inside the wire threading frame 529, and then cools the frictional heat generated by the wire drawing die 520 during the wire drawing process through the metal telescopic nozzle 503 on the hollow mounting frame 502; Step 2: Then start the circulation pump 510 to suck the cooling water used in the wire threading frame 529 through the first circulation pipe 511 on the circulation pump 510, and then drum the used cooling water into the other side of the wire threading frame 529 through the second circulation pipe 512. Filter the cooling water through the filter cartridge 515, and the filtered cooling water enters the other side of the partition plate 513 in the wire threading frame 529 through the hollow rotating circular tube 514, so as to realize reuse. Step 3: When the filter cartridge 515 filters the used cooling water, start the drive motor 523 at this time. Drive the roller 528 on the rotating push rod 527 to move in the notch of the T-shaped tooth plate 526 through the drive motor 523, so that the tooth block end of the T-shaped tooth plate 526 moves in an arc reciprocally, and make the rotating gear 519 drive the hollow rotating circular tube 514 to rotate the filter cartridge 515 bidirectionally. On the one hand, it avoids the filtering end of the filter cartridge 515 always facing the inlet of the used cooling water. On the other hand, clean the outside of the filter cartridge 515 through the cleaning brush plate 518 located in the wire threading frame 529.

[0035] When wire drawing is performed on the wire, the unwinding rack 15 is placed on the placing slide plate 13, and then the servo motor 19 is started. The bidirectional screw 20 is driven to rotate by the servo motor 19, and the nut slide rod 17 is driven by the bidirectional screw 20 to move towards each other, so that the clamping seat 18 fixes the unwinding rack 15. Before the wire drawing operation on the wire, the wire is passed through the inside of the rotating cylinder 605. At this time, the general motor 609 is started, and the rotating cylinder 605 is driven to rotate by the general motor 609 through the belt 610. The outer part of the wire is cleaned by the cleaning sponge blocks 607 distributed in a ring inside the rotating cylinder 605, improving the wire drawing effect of the wire. During the cleaning process, the dust suction pump 603 is started, and the impurities falling in the rotating cylinder 605 are sucked through the hollow dust suction plate 608, and then are uniformly discharged into the dust collection box 614 through the dust discharge pipe 612 to avoid secondary pollution of the wire by the impurities. When the wire drawing operation is performed on the wire, first, the wire is passed through the wire drawing die 520 and the winding wheel 521 in the wire threading frame 529. During the wire drawing operation, the water pump 506 sucks the cooling water in the wire threading frame 529, and then the friction heat generated by the wire drawing die 520 during the wire drawing process is cooled by the metal telescopic nozzle 503 on the hollow mounting frame 502. Then the circulation pump 510 is started, and the cooling water used in the wire threading frame 529 is sucked through the first circulation pipe 511 on the circulation pump 510, and then the used cooling water is pumped into the other side of the wire threading frame 529 through the second circulation pipe 512. The cooling water is filtered by the filter cylinder 515, and the filtered cooling water enters the other side of the partition plate 513 in the wire threading frame 529 through the hollow rotating round pipe 514, so as to realize reuse. When the filter cylinder 515 filters the used cooling water, at this time, the driving motor 523 is started, and the roller 528 on the rotating push rod 527 is driven by the driving motor 523 to move in the notch of the T-shaped tooth plate 526, so that the tooth block end of the T-shaped tooth plate 526 moves in an arc reciprocating manner, and the rotating gear 519 drives the hollow rotating round pipe 514 to rotate the filter cylinder 515 bidirectionally. On the one hand, it avoids the filtering end of the filter cylinder 515 always facing the inlet of the used cooling water. On the other hand, the outer part of the filter cylinder 515 is cleaned by the cleaning brush plate 518 located in the wire threading frame 529. The wire after wire drawing is wound by the unwinding rack 15. When the winding is completed, the placing slide plate 13 is driven to move by the push-pull handle 14 to replace the unwinding rack 15.

[0036] The above is only a preferred specific embodiment of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and inventive concept of the present invention, makes equivalent substitutions or changes, and should be covered by the protection scope of the present invention.

Claims

1. A wire processing device, comprising a tooling placement rack (1), two fixed racks (2) and a lifting seat (7), the fixed racks (2) are located on one side of the tooling placement rack (1), and is characterized in that, It also includes: A circulating filtration module (5), arranged on the opposite side of two fixed frames (2), for recycling the cooling water during the wire drawing operation; A cleaning module (6), arranged on the lifting seat (7), for pre-cleaning the surface of the wire during the wire drawing operation; The circulating filtration module (5) further includes a rotary filtration structure, which is composed of a hollow rotary circular tube (514) and a filter cylinder (515) with suction holes, and realizes rotary filtration through bearing support.

2. The wire processing equipment according to claim 1, characterized in that, The circulating filtration module (5) includes a wire threading frame (529); The wire threading frame (529) integrates a partition plate (513), a supporting cross plate (516), a first cover plate (504) and a second cover plate (505); On one side of the supporting cross plate (516), a plurality of telescopic springs (517) are arranged, and a cleaning brush plate (518) connected through the telescopic springs (517) elastically scrapes and cleans the surface of the filter cylinder (515); A drum water pump (506) is arranged on the first cover plate (504), and the drum water pump (506) extracts the liquid in the wire threading frame (529) through a suction pipe (508) to form a circulating filtration flow path.

3. A wire processing device according to claim 2, characterized in that, On one side of the wire threading frame (529), a U-shaped mounting seat (501) is fixed, and a hollow mounting frame (502) is built-in for integrating a metal telescopic nozzle (503), and the metal telescopic nozzle (503) is fixed through equally spaced mounting round holes on the hollow mounting frame (502) to achieve directional spraying; The water outlet end of the drum water pump (506) is connected to the hollow mounting frame (502) through a drum water pipe (507) to drive the spraying cycle. A control box (509) is arranged on the side of the fixed frame (2) to uniformly control the filtration and spraying functions.

4. The wire processing device according to claim 3, wherein, Two bearing-supported wire winding wheels (521) are arranged inside the wire threading frame (529) for wire guiding, and a wire drawing die (520) is fixed inside the wire threading frame (529) to cooperate with the wire winding wheels to achieve wire positioning; The hollow rotary circular tube (514) is meshed with a T-shaped tooth plate (526) through a rotary gear (519) to drive rotary filtration. The T-shaped tooth plate (526) is connected through a bearing of a fixed shaft (525). A driving motor (523) is fixed through an L-shaped support seat (522), and the roller (528) at the end of its rotary push rod (527) is embedded in the notch of the T-shaped tooth plate (526), and the rotary motion is converted into a reciprocating rack drive; The roller (528) pushes the T-shaped tooth plate (526) to drive the rotary gear (519), driving the hollow rotary circular tube (514) to rotate. A circulating pump (510) sucks the liquid in the wire threading frame (529) through a first circulating pipe (511) and discharges it back through a second circulating pipe (512) to form a closed cycle.

5. A wire processing device according to claim 4, characterized in that, The cleaning module (6) further includes a rotary cylinder (605) and a wire guiding support (1). Compression springs (606) distributed in a circumferential manner are arranged inside the rotary cylinder to push the cleaning sponge blocks (607) to adaptively clean the surface of the wire; The rotary cylinder (605) installed through bearings rotates as the wire moves to achieve uniform cleaning. The hollow dust suction plate (608) is provided with a dust suction port to synchronously adsorb the debris generated by cleaning.

6. A wire processing device according to claim 5, characterized in that, One side of the wire support (601) is fixedly connected with a dust suction pump (603). The dust suction pump (603) is connected to a hollow dust suction plate (608) through a dust suction pipe (611). Debris is discharged into a dust collection box (614) through a dust discharge pipe (612). The dust collection box (614) can be quickly taken and placed through an opening and closing plate (613). A general motor (609) drives a rotating cylinder (605) to rotate through a first belt (610) to enhance the cleaning effect.

7. A wire processing device according to claim 6, characterized in that, A guiding auxiliary wheel (602) is arranged on the side of the wire support (601). The guiding auxiliary wheel (602) cooperates with the rotating cylinder (605) to realize multi-directional positioning of the wire body (11). A telescopic cylinder (10) drives a lifting and adjusting arm (9) to drive a guiding conical frame (12) to perform lifting adjustment. A lifting seat (7) is fixedly connected with the wire support (601), integrating the functions of guiding and lifting.

8. A wire processing device according to claim 7, characterized in that, Both sides of the tooling placement rack (1) are provided with sliding grooves, and the same placement sliding plate (13) is slidably connected inside the two sliding grooves. A push-pull handle (14) is arranged on the side of the placement sliding plate (13) for easy movement. A servo motor (19) drives a bidirectional screw (20) to rotate, driving a nut sliding rod (17) and a clamping seat (18) to open and close synchronously along a guiding track (16) to adapt to different-sized unwinding racks (15). The unwinding rack (15) is quickly disassembled and assembled through mounting holes.

9. A wire processing device according to claim 8, characterized in that, One side of the tooling placement rack (1) is connected with a tooling support plate (3) through bolts, and the same mounting plate (4) is fixedly connected to one side of the tooling support plate (3) and two fixing frames (2). A seventh round hole is opened on one side of the mounting plate (4). An anti-detachment sleeve (24) is connected inside the seventh round hole through a bearing. A winding motor (21) is fixedly connected to one side of the mounting plate (4). The winding motor (21) drives the anti-detachment sleeve (24) to rotate through a second belt (22) to realize wire winding. The anti-detachment sleeve (24) is installed on the mounting plate (4) through a bearing to ensure the stability of winding. Auxiliary pressing wheels (23) are arranged on the tooling support plate (3) and the fixing frame (2) to guide the wire to be wound evenly.

10. A method of using a wire processing device, using the wire processing device as described in claim 9, characterized in that, Including the following steps: Step 1: When performing wire drawing operation on the wire, first pass the wire through a wire drawing die (520) and a winding wheel (521) inside a wire threading frame (529). During the wire drawing operation, a drum water pump (506) sucks the cooling water inside the wire threading frame (529), and then cools the frictional heat generated by the wire drawing die (520) during the wire drawing process through a metal telescopic nozzle (503) on a hollow mounting frame (502). Step 2: Then start a circulating pump (510). The circulating pump (510) sucks the cooling water used inside the wire threading frame (529) through a first circulating pipe (511) on the circulating pump (510), and then drums the used cooling water into the other side of the wire threading frame (529) through a second circulating pipe (512). The cooling water is filtered through a filter cartridge (515). The filtered cooling water enters the other side of a partition plate (513) inside the wire threading frame (529) through a hollow rotating round pipe (514), so as to realize recycling. Step 3: When the filter cartridge (515) filters the used cooling water, the drive motor (523) is started at this time. The roller (528) on the rotary push rod (527) is driven by the drive motor (523) to move in the notch of the T-shaped tooth plate (526), so that the tooth block end of the T-shaped tooth plate (526) moves in an arc reciprocating manner, so that the rotary gear (519) drives the hollow rotary tube (514) to make the filter cartridge (515) rotate bidirectionally. On the one hand, it avoids the filtering end of the filter cartridge (515) always facing the inlet of the used cooling water. On the other hand, the outer part of the filter cartridge (515) is cleaned by the cleaning brush plate (518) located in the wire threading frame (529).