Copper flat wire straightening processing device
By designing a copper flat wire straightening processing device, the copper flat wire is straightened and cleaned using a straightening tension and power supply mechanism. This solves the problem of surface depressions and bending caused by dirt on the wire feeding frame, and improves the surface quality and dimensional accuracy of the wire.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- JIANGSU SHENGCHAO ELECTRICAL TECHNOLOGY CO LTD
- Filing Date
- 2026-02-10
- Publication Date
- 2026-05-08
AI Technical Summary
The existing copper flat wires are contaminated with dirt on the wire feeding rack, resulting in poor local contact, causing the wire surface to be dented or bent, which affects the surface quality and dimensional accuracy of the wire.
Design a copper flat wire straightening processing device, including a straightening tension mechanism, an energy supply mechanism, and a liquid exchange and heating mechanism. The straightening tension mechanism straightens the copper flat wire, and the energy supply mechanism provides mechanical kinetic energy. The liquid exchange and heating mechanism is used to clean the surface of the copper flat wire.
It achieves efficient straightening and surface cleaning of copper flat wires, eliminates dents and bends on the wire surface, and improves the surface quality and dimensional accuracy of the wire.
Smart Images

Figure CN121988680A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of copper flat wire processing technology, specifically to a copper flat wire straightening processing device. Background Technology
[0002] During the production and processing of copper flat wire, the wire is prone to deformation defects after being drawn, rolled or cooled. In order to improve the consistency of the structure and surface quality of copper flat wire, it is necessary to use a wire feeding wheel to increase the tension of the copper flat wire, thereby facilitating the elimination of internal stress and enhancing the dimensional accuracy of the wire.
[0003] However, the existing copper flat wires, after being drawn and rolled, need to pass through the wire feeding rollers on the wire feeding stand for tension adjustment. Straightening of the wire is achieved by increasing the length of the copper flat wire fed out. However, this process has certain drawbacks. Due to the large number of wire feeding rollers on the wire feeding stand, the air in the equipment operating environment can carry dirt and cause contamination on the surface of the wire feeding rollers. As the amount of dirt increases, the part of the copper flat wire that is pressed on the wire feeding roller will experience local poor contact, which will cause the surface of the wire to dent or cause the wire to bend locally.
[0004] In view of this, a copper flat wire straightening processing device was designed to solve the above problems. Summary of the Invention
[0005] The present invention aims to solve one of the technical problems existing in the prior art or related technologies.
[0006] Therefore, the technical solution adopted in this invention is as follows: A copper flat wire straightening processing device includes a copper flat wire and a straightening and tensioning mechanism for straightening the copper flat wire, a power supply mechanism disposed on the straightening and tensioning mechanism, a liquid exchange and heating mechanism disposed on the copper flat wire, and a liquid storage hood disposed on the liquid exchange and heating mechanism; the straightening and tensioning mechanism includes a base, a guide tube inserted into the base, and two symmetrically distributed combination bolts installed inside the guide tube and the base; a partition plate is fixedly installed in the middle of the inner cavity of the guide tube; a nut is installed on the threaded section of the guide tube, and the guide tube... The pipe wall has multiple drainage slots. A protective cover is installed on the outside of the guide pipe. Multiple slots are opened inside the protective cover. A pressure-bearing ring is provided on the outside of the protective cover. Two symmetrically distributed limiting gaskets are inserted into both ends of the pressure-bearing ring. A pressure-increasing spring is provided on the outside of the guide pipe. A gasket is fixedly installed on one end of the pressure-increasing spring, and the gasket is adapted to bear pressure on one of the limiting gaskets. Threaded pipe sections are provided at the top and bottom of the guide pipe, and a spray pipe is connected to the threaded pipe section at the bottom of the guide pipe.
[0007] In a preferred embodiment, the present invention can be further configured as follows: the power supply mechanism includes a load-bearing bracket installed on the guide tube near the base rod section, a main shaft is movably installed on the rod section outside the load-bearing bracket, a pressure roller is fixedly installed on the outside of the main shaft, and a drive gear is fixedly installed on the inner end of the main shaft; The pressure roller bears pressure on the copper flat wire, and in conjunction with the pressure applied by the copper flat wire, provides stable mechanical kinetic energy for the liquid exchange and heating mechanism.
[0008] In a preferred embodiment, the present invention can be further configured as follows: an extended screw is inserted into each of the two rod segments at the bottom of the load-bearing bracket, a nut is threaded onto the extended screw, a baffle is fixedly installed at the outer end of the extended screw, a flexible scraper is fixedly installed on the side of the baffle facing the pressure ring, and a compression spring is provided on the outside of the extended screw to bear pressure on the baffle and the bottom rod segment of the load-bearing bracket, and a lead screw sleeve is fixedly connected to the end of the compression spring near the nut.
[0009] In a preferred embodiment, the invention may be further configured such that the flexible scraper pad is made of sponge material and the baffle is made of silicone material.
[0010] In a preferred embodiment, the present invention may be further configured as follows: the liquid exchange heating mechanism includes a first pipe connected to a threaded pipe section at the top of the guide pipe, a first liquid storage tank installed on the first pipe, a first impeller movably installed inside the first liquid storage tank, a main pulley installed on the first impeller, and a second pipe installed on a pipe section on the back of the first liquid storage tank.
[0011] In a preferred embodiment, the present invention can be further configured as follows: a second impeller is movably installed in two plate segments on the side of the first liquid storage cylinder; a deflection gear is installed in the middle of the second impeller and meshes with a drive gear; a second pulley is installed at the top of the second impeller, and a drive belt is drivingly connected to the second pulley and the main pulley; a second liquid storage cylinder is provided outside the impeller end of the second impeller; two plate segments on the side of the second liquid storage cylinder are fixedly installed on a liquid storage cover; a third pipe is installed at the bottom of the second liquid storage cylinder; and a fourth pipe communicating with the liquid storage cover is installed in the pipe segment on the side of the second liquid storage cylinder.
[0012] In a preferred embodiment, the present invention can be further configured such that the surfaces of the pressure ring and the two limiting gaskets are all smooth coated structures, and the inner wall of the limiting gaskets is provided with an annular groove.
[0013] In a preferred embodiment, the invention may be further configured such that the nozzle is composed of a U-shaped stainless steel pipe and a rectangular nozzle, with the rectangular nozzle located at the center of the gap between the two baffles.
[0014] In a preferred embodiment, the present invention can be further configured such that: the pressure roller consists of an I-shaped aluminum alloy tube sleeve and a rubber sleeve, and the outer surface of the rubber sleeve is provided with corrugated grooves to increase the frictional resistance in contact with the copper flat wire.
[0015] In a preferred embodiment, the present invention may be further configured such that the U-shaped stainless steel pipe inside the nozzle is welded to the port inside the liquid reservoir.
[0016] By adopting the above technical solution, the beneficial effects achieved by the present invention are as follows: 1. This invention adds a straightening and tensioning mechanism to the existing wire feeding frame, which delivers the copper flat wire along the anti-wire wheel on the wire feeding frame until the copper flat wire is partially bent and pressed against the pressure ring. Finally, the pressure roller, which is assisted by the copper flat wire to rotate the pressure ring, provides mechanical kinetic energy to the liquid exchange and heating mechanism. The solution transferred by the liquid exchange and heating mechanism and sprayed from the nozzle will perform efficient cleaning treatment on the surface of the copper flat wire, and at the same time, it can also clean the surface of the pressure ring simultaneously.
[0017] 2. This invention utilizes a wrench to adjust the nut. As the nut moves laterally along the threaded section of the guide tube, the pressure ring, which is compressed and adjusted laterally along the guide tube, works with two limiting washers to straighten and regulate the side-bending part of the copper flat wire. This achieves efficient straightening of the copper flat wire on a clean pressure carrier.
[0018] 3. This invention improves the efficiency of removing contaminants from copper flat wires by installing a load-bearing bracket on the outside of the guide tube, and by using two extended screws and two baffles inside the load-bearing bracket to fit and engage with the inner sides of the two limiting gaskets. As the copper flat wire passes through the pressure ring and adheres to the two flexible scrapers, the two wetted flexible scrapers work together with the spraying of the solution. Attached Figure Description
[0019] Figure 1 This is a schematic diagram illustrating the use of the present invention; Figure 2 This is a three-dimensional schematic diagram of the present invention; Figure 3 This is a bottom view diagram of the present invention; Figure 4 This is a schematic diagram of the liquid exchange heating mechanism of the present invention; Figure 5 For the present invention Figure 4 Enlarged view of point A in the middle; Figure 6 This is a schematic diagram of the power supply mechanism of the present invention; Figure 7 This is a schematic diagram of the straightening and tensioning mechanism of the present invention; Figure 8 For the present invention Figure 7 An explosion diagram.
[0020] Figure label: 100. Copper flat wire; 200. Straightening and tensioning mechanism; 210. Base; 220. Combination bolt; 230. Guide pipe; 2301. Drainage trough; 2302. Nut; 240. Spray pipe; 250. Divider plate; 260. Pressure boosting spring; 2601. Gasket; 270. Pressure ring; 280. Protective cover; 2801. Groove; 290. Limiting gasket; 300, Power supply mechanism; 310, Load-bearing bracket; 320, Main shaft; 3201, Drive gear; 3202, Pressure roller; 330, Extended screw; 3301, Nut; 340, Compression spring; 3401, Screw sleeve; 350, Baffle; 3501, Flexible scraper pad; 400. Fluid exchange and heating mechanism; 410. First liquid storage tank; 4101. First pipeline; 4102. Second pipeline; 420. Second liquid storage tank; 430. First impeller; 4301. Main pulley; 440. Second impeller; 4401. Second pulley; 4402. Third pipeline; 4403. Deflecting gear; 4404. Fourth pipeline; 450. Drive belt; 500. Liquid reservoir cover. Detailed Implementation
[0021] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to specific embodiments and accompanying drawings. It should be noted that, unless otherwise specified, the embodiments and features described herein can be combined with each other.
[0022] It should be understood that these descriptions are merely exemplary and are not intended to limit the scope of the invention.
[0023] The following describes, with reference to the accompanying drawings, some embodiments of a copper flat wire straightening processing apparatus provided by the present invention. Example 1:
[0024] Combination Figures 1 to 8 As shown, the present invention provides a copper flat wire straightening processing device, including a copper flat wire 100 and a straightening tensioning mechanism 200 for straightening the copper flat wire 100, an energy supply mechanism 300 disposed on the straightening tensioning mechanism 200, a liquid exchange heating mechanism 400 disposed on the copper flat wire 100, and a liquid storage hood 500 installed on the liquid exchange heating mechanism 400. The straightening tensioning mechanism 200 is used to straighten the copper flat wire 100. The energy supply mechanism 300 provides mechanical kinetic energy to the liquid exchange heating mechanism 400 for transferring solution by means of the driving force of the copper flat wire 100. The liquid exchange heating mechanism 400 is used to heat the straightening tensioning mechanism 200 and spray clean the surface of the copper flat wire 100.
[0025] The straightening and tensioning mechanism 200 includes a base 210, a guide tube 230 inserted into the base 210, and two symmetrically distributed combination bolts 220 installed inside the guide tube 230 and the base 210. A partition plate 250 is fixedly installed in the middle of the inner cavity of the guide tube 230. A nut 2302 is installed on the threaded section of the guide tube 230, and multiple drainage slots 2301 are opened on the tube wall of the guide tube 230. A protective cover 280 is installed on the outside of the guide tube 230. Multiple holes and slots 2801 are opened inside the protective cover 280. A pressure ring 270 is provided on the outside of the protective cover 280, and two symmetrically distributed limiting gaskets 290 are inserted into both ends of the pressure ring 270. A pressure spring 260 is provided on the outside of the guide tube 230. A gasket 2601 is fixedly installed on one end of the pressure spring 260, and the gasket 2601 is adapted to bear pressure on one of the limiting gaskets 290. The top and bottom of the guide pipe 230 are provided with threaded pipe sections, and the nozzle 240 is connected to the threaded pipe section at the bottom of the guide pipe 230. The surfaces of the pressure ring 270 and the two limiting gaskets 290 are all smooth coated, and the inner wall of the limiting gasket 290 is provided with an annular groove. The U-shaped stainless steel pipe inside the nozzle 240 is welded to the port inside the liquid reservoir 500.
[0026] Preferably, the base 210 has a T-shaped structure, and the two studs on the back of the base 210 are used to be inserted into the existing wire feeding frame. The base 210 is fixed to the wire feeding frame by two nuts. The partition plate 250 is welded to the middle of the inner cavity of the guide tube 230 to divide the inner cavity of the guide tube 230 into two independent cavities. In addition, the pressure spring 260 and the washer 2601 are pressed on the cylindrical section of the guide tube 230 to provide elastic support for the assembled limiting washer 290. In actual use, according to the requirements of the lateral spacing between the multiple wire feeding wheels on the wire feeding frame and the combined pressure ring 270 and the two limiting washers 290, the nut 2302 is turned forward with a wrench until the nut 2302 squeezes the pressure ring 270 and the two limiting washers 290. Finally, the combined pressure ring 270 and the two limiting washers 290 will move laterally along the rod section of the guide tube 230 towards the base 210 at a uniform speed. This process can straighten the side-bent part of the stretched copper flat wire 100. Example 2:
[0027] Combination Figures 6 to 8As shown, based on Embodiment 1, the power supply mechanism 300 includes a load-bearing bracket 310 installed on the rod section of the guide pipe 230 near the base 210. A main shaft 320 is movably installed on the rod section on the outer side of the load-bearing bracket 310. A pressure roller 3202 is fixedly installed on the outside of the main shaft 320, and a drive gear 3201 is fixedly installed on the inner end of the main shaft 320. An extension screw 330 is inserted into each of the two rod sections at the bottom of the load-bearing bracket 310. A nut 3301 is threaded on the extension screw 330. A baffle 350 is fixedly installed on the outer end of the extension screw 330. A flexible scraper pad 3501 is fixedly installed on the side of the baffle 350 facing the pressure ring 270. A compression spring 340 is provided on the outside of the extension screw 330 to bear pressure on the baffle 350 and the bottom rod section of the load-bearing bracket 310. A screw sleeve 3401 is fixedly connected to the end of the compression spring 340 near the nut 3301. The pressure roller 3202 bears pressure on the copper flat wire 100, and works with the copper flat wire 100 to provide stable mechanical energy for the liquid exchange heating mechanism 400. The flexible scraper pad 3501 is made of sponge material, and the baffle 350 is made of silicone material; The nozzle 240 is composed of a U-shaped stainless steel pipe and a rectangular nozzle, with the rectangular nozzle located at the center of the gap between the two baffles 350. The pressure roller 3202 is composed of an I-shaped aluminum alloy tube sleeve and a rubber sleeve, with corrugated grooves on the outer surface of the rubber sleeve to increase the frictional resistance in contact with the copper flat wire 100.
[0028] Preferably, the shaft segment of the main shaft 320 is movably mounted in the shaft segment on the side of the load-bearing bracket 310 via bearings, and the load-bearing bracket 310 is used to provide lateral stabilizing support for the horizontally placed main shaft 320 and the two extended screws 330, and the pressure roller 3202 is used to provide lateral anti-detachment protection for the copper flat wire 100 passing through the pressure ring 270 and the two flexible scraper pads 3501. The outer edge of the flexible scraper pad 3501 is adapted to fit the inner wall of the pressure ring 270 and the two limiting pads 290. The flexible scraper pad 3501, together with the solution sprayed from the nozzle 240, allows the copper flat wire 100 to pass through the gap between the pressure ring 270 and the two flexible scraper pads 3501 after being wetted. The two flexible scraper pads 3501 can effectively wipe away the dirt on the outer surface of the copper flat wire 100, and the high-pressure sprayed solution can brush away the dirt wiped off the surface of the copper flat wire 100. At the same time, after the nut 2302 compresses the pressure ring 270 and the two limiting washers 290, the two baffles 350 and the extended screw 330, which move laterally under pressure, can extend and retract synchronously, which facilitates the effective straightening of the side-bent part of the copper flat wire 100. Example 3:
[0029] Combination Figure 4 and Figure 5As shown, in the above embodiment, the liquid exchange heating mechanism 400 includes a first pipe 4101 connected to the threaded pipe section at the top of the guide pipe 230, a first liquid storage tank 410 installed on the first pipe 4101, a first impeller 430 movably installed inside the first liquid storage tank 410, a main pulley 4301 installed on the first impeller 430, and a second pipe 4102 installed on the pipe section on the back of the first liquid storage tank 410. A second impeller 440 is movably installed in two plate segments on the side of the first liquid storage cylinder 410. A deflection gear 4403 is installed in the middle of the second impeller 440 and meshes with a drive gear 3201. A second pulley 4401 is installed at the top of the second impeller 440, and a drive belt 450 is connected to the second pulley 4401 and the main pulley 4301. A second liquid storage cylinder 420 is provided outside the impeller end of the second impeller 440. Two plate segments on the side of the second liquid storage cylinder 420 are fixedly installed on the liquid storage cover 500. A third pipe 4402 is installed at the bottom of the second liquid storage cylinder 420. A fourth pipe 4404 communicating with the liquid storage cover 500 is installed in the pipe segment on the side of the second liquid storage cylinder 420.
[0030] Preferably, the first liquid storage cylinder 410 and the second liquid storage cylinder 420 have the same structure, and the first liquid storage cylinder 410 has two symmetrically distributed horizontal plates fixedly installed on its side, and the second liquid storage cylinder 420 has two symmetrically distributed L-shaped horizontal plates fixedly installed on its side. The first impeller 430 has a main impeller installed on its rod, and the second impeller 440 has a secondary impeller installed on its rod. The two impellers have the same structure. The outer end of the third pipe 4402 is connected to the input end of the external pump body, and the outer end of the second pipe 4102 is connected to the output end of the external pump body. By running the external pump body, the heated solution is input from the second pipe 4102 into the inner cavity of the first storage tank 410. The rotating first impeller 430 actively transfers the solution in the inner cavity of the first storage tank 410 to the first pipe 4101 and the guide pipe 230. At this time, the solution will be transferred along the inner cavity of the protective cover 280 and the pressure ring 270, so as to radiate heat energy to the pressure ring 270, further improving the drying efficiency of the cleaned part of the copper flat wire 100.
[0031] The working principle and usage process of the present invention: The two threaded sections on the back of the base 210 are pre-inserted into the existing wire feeding frame, and the base 210 is fixed to the wire feeding frame with nuts. The guide tube 230, which is fixed in the base 210 by two combination bolts 220, will remain perpendicular to the wire feeding frame. When the copper flat wire 100 is pulled and transferred under pressure along multiple guide rollers in the wire feeding frame, the copper flat wire 100 will be actively delivered along the guide rollers in the wire feeding frame, and then the copper flat wire 100 will pass through the lower surface of the pressure ring 270. At this time, two baffles 350 and two flexible scraping pads 3501, which are distributed at an angle along the bottom of the inner side of the two limiting pads 290, will adapt and fit the lower surface of the copper flat wire 100, and the copper flat wire 100 will pass through the flexible scraping pads 3501. The outside of 501 will be pressed against the inside of the pressure roller 3202. As the copper flat wire 100 is continuously delivered and assists the pressure roller 3202 in rotation, the pressure roller 3202 and the main shaft 320 will cooperate with the drive gear 3201 to drive the deflection gear 4403 and the second impeller 440. The second pulley 4401 at the top of the second impeller 440 will drive the transmission belt 450 and the main pulley 4301. Finally, the main pulley 4301 and the first impeller 430 will be provided with mechanical kinetic energy. In use, the external pipe is first connected to the output end of the external pump body via the second pipe 4102, and then the external hose is used to connect the third pipe 4402 to the input end of the external pump body. The external pump body runs until the preheated solution is actively output by the pump body and enters the inner cavity of the first storage tank 410 via the second pipe 4102. With the dual assistance of the transmission belt 450, the first impeller 430 will transfer the hot solution from the first pipe 4101 to the upper cavity formed by the guide pipe 230 and the partition plate 250. The high temperature solution enters the sealed cavity formed by the protective cover 280, the pressure ring 270 and the two limiting gaskets 290 via the drain trough 2301. The high temperature solution continuously radiates heat energy to the outer surface of the pressure ring 270. The continuously pressurized solution is output from the lower half of the cavity formed by the guide pipe 230 and the partition plate 250 and squeezed out along the nozzle 240 and sprayed onto the copper flat wire 100. With the help of two wetted flexible scraper pads 3501, the copper flat wire 100 surface is pressed and adhered tightly, so that the surface of the copper flat wire 100 can be cleaned quickly. According to the cleaning requirements of the upper and lower surfaces of the copper flat wire 100, multiple sets of this device are added to the existing wire feeding frame to facilitate effective pressure cleaning treatment of the upper and lower surfaces of the copper flat wire 100. After the surface of the copper flat wire 100 is cleaned, it is scraped off by the flexible scraper pad 3501 under the heat radiation of the outer surface of the pressure ring 270, and the residual solution will dry quickly when heated. Meanwhile, in order to improve the straightening process of the copper flat wire 100 during the stretching and delivery on the pay-off stand, the nut 2302 is rotated by a wrench until the pressure ring 270 and the two limiting washers 290 are pressed and move laterally toward the base 210. By using the lateral distance adjustment between the multiple sets of pressure rings 270 and limiting washers 290 and the pay-off rollers on the pay-off stand, it is easier to enhance the efficient straightening process of the copper flat wire 100 after drawing.
[0032] Although embodiments of the invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the claims and their equivalents.
Claims
1. A copper flat wire straightening processing device, comprising a copper flat wire (100), characterized in that, It also includes a straightening and tensioning mechanism (200) for straightening copper flat wire (100), an energy supply mechanism (300) provided on the straightening and tensioning mechanism (200), a liquid exchange and heating mechanism (400) provided on the copper flat wire (100), and a liquid storage cover (500) installed on the liquid exchange and heating mechanism (400). The straightening and tensioning mechanism (200) includes a base (210), a guide tube (230) is inserted into the base (210), and two symmetrically distributed combination bolts (220) are installed inside the guide tube (230) and the base (210). A partition plate (250) is fixedly installed in the middle of the inner cavity of the guide tube (230). A nut (2302) is installed on the threaded section of the guide tube (230), and multiple drainage slots (2301) are opened on the tube wall of the guide tube (230). A protective cover (280) is installed on the outside of the guide tube (230). The protective cover (280) has multiple holes and slots (2801) inside. The protective cover (280) is provided with a pressure ring (270) on the outside. Two symmetrically distributed limiting gaskets (290) are inserted into both ends of the pressure ring (270). The guide tube (230) is provided with a pressure spring (260) on the outside. A gasket (2601) is fixedly installed at one end of the pressure spring (260), and the gasket (2601) is adapted to bear pressure on one of the limiting gaskets (290). The top and bottom of the guide pipe (230) are provided with threaded pipe sections, and the nozzle (240) is connected to the threaded pipe section at the bottom of the guide pipe (230).
2. The copper flat wire straightening processing device according to claim 1, characterized in that, The power supply mechanism (300) includes a load-bearing bracket (310) installed on a rod section near the base (210) of the guide pipe (230). A main shaft (320) is movably installed on the rod section outside the load-bearing bracket (310). A pressure roller (3202) is fixedly installed on the outside of the main shaft (320), and a drive gear (3201) is fixedly installed on the inner end of the main shaft (320). The pressure roller (3202) is pressed on the copper flat wire (100), and the pressure applied by the copper flat wire (100) provides stable mechanical energy for the liquid exchange heating mechanism (400).
3. The copper flat wire straightening processing device according to claim 2, characterized in that, An extended screw (330) is inserted into each of the two rod segments at the bottom of the load-bearing bracket (310). A nut (3301) is threaded onto the extended screw (330). A baffle (350) is fixedly installed at the outer end of the extended screw (330). A flexible scraper (3501) is fixedly installed on the side of the baffle (350) facing the pressure ring (270). A compression spring (340) is provided on the outside of the extended screw (330) to bear pressure on the baffle (350) and the bottom rod segment of the load-bearing bracket (310). A screw sleeve (3401) is fixedly connected to the end of the compression spring (340) near the nut (3301).
4. The copper flat wire straightening processing device according to claim 3, characterized in that, The flexible scraper pad (3501) is made of sponge material, and the baffle (350) is made of silicone material.
5. The copper flat wire straightening processing device according to claim 1, characterized in that, The liquid exchange heating mechanism (400) includes a first pipe (4101) connected to a threaded pipe section at the top of the guide pipe (230), a first liquid storage tank (410) installed on the first pipe (4101), a first impeller (430) movably installed inside the first liquid storage tank (410), a main pulley (4301) installed on the first impeller (430), and a second pipe (4102) installed on a pipe section on the back of the first liquid storage tank (410).
6. The copper flat wire straightening processing device according to claim 5, characterized in that, A second impeller (440) is movably installed in two plate segments on the side of the first liquid storage cylinder (410). A deflection gear (4403) is installed in the middle of the second impeller (440), and the deflection gear (4403) meshes with the drive gear (3201). A second pulley (4401) is installed at the top of the second impeller (440), and a transmission belt (450) is connected to the second pulley (4401) and the main pulley (4301). A second liquid storage cylinder (420) is provided outside the impeller end of the second impeller (440). Two plate segments on the side of the second liquid storage cylinder (420) are fixedly installed on the liquid storage cover (500). A third pipe (4402) is installed at the bottom of the second liquid storage cylinder (420). A fourth pipe (4404) connected to the liquid storage cover (500) is installed in the pipe segment on the side of the second liquid storage cylinder (420).
7. The copper flat wire straightening processing device according to claim 1, characterized in that, The surfaces of the pressure ring (270) and the two limiting gaskets (290) are all smooth coated, and the inner wall of the limiting gasket (290) is provided with an annular groove.
8. The copper flat wire straightening processing device according to claim 1, characterized in that, The nozzle (240) is composed of a U-shaped stainless steel pipe and a rectangular nozzle, with the rectangular nozzle located at the center of the gap between the two baffles (350).
9. The copper flat wire straightening processing device according to claim 1, characterized in that, The pressure roller (3202) consists of an I-shaped aluminum alloy tube sleeve and a rubber sleeve, and the outer surface of the rubber sleeve is provided with a corrugated groove to increase the frictional resistance in contact with the copper flat wire (100).
10. A copper flat wire straightening processing device according to claim 1, characterized in that, The U-shaped stainless steel pipe inside the nozzle (240) is welded to the port inside the liquid storage hood (500).