Diamond bus high-speed wire drawing machine
By designing multiple sets of parallel wire drawing modules and tensioning modules, combined with speed measuring guide wheels and cooling modules, the problem of existing wire drawing machines being unable to draw wire at high speeds has been solved, achieving an efficient and stable diamond busbar wire drawing process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HUIZHOU YILONG MACHINERY & EQUIP
- Filing Date
- 2025-05-22
- Publication Date
- 2026-05-08
AI Technical Summary
Existing diamond busbar wire drawing machines cannot meet the requirements of high-speed wire drawing. Wires drawn too quickly are prone to breakage, resulting in low drawing efficiency and waste of resources.
Design a high-speed wire drawing machine for diamond busbars, which adopts multiple sets of parallel wire drawing modules and tensioning modules, combined with wire feeding and winding speed measuring guide wheels for speed monitoring, equipped with a cooling module to regulate the wire drawing temperature, and adjusts the tension of each wire drawing segment through the tensioning module to ensure wire drawing quality.
It achieves high-speed wire drawing of 1000 meters per minute for diamond busbars, improving wire drawing efficiency, ensuring wire drawing quality, avoiding wire breakage, and meeting production requirements.
Smart Images

Figure CN224208809U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of wire drawing machine technology, and in particular to a high-speed wire drawing machine for diamond busbars. Background Technology
[0002] Wire drawing machines are widely used mechanical equipment in industrial applications, including machinery manufacturing, hardware processing, petrochemicals, plastics, bamboo and wood products, and wire and cable industries. They utilize the plastic deformation of materials to extend them, thereby achieving the purpose of drawing materials from coarse to fine wires, and can be widely used in the drawing of new materials.
[0003] Diamond busbars (tungsten wire) possess both ultra-high strength and good toughness, making them widely used in critical applications such as hard material cutting. With the continuous development of the market and the accelerating pace of product innovation and iteration, the production requirements for diamond busbars are becoming increasingly stringent. However, existing diamond busbar drawing machines cannot meet the requirements of high-speed drawing (1000 meters per minute). Excessive drawing speed will directly break the diamond busbar, leading to reduced drawing efficiency, resource waste, and increased enterprise costs. Therefore, there is an urgent need to design a high-speed drawing machine to meet the production requirements of diamond busbars. Utility Model Content
[0004] The purpose of this invention is to provide a high-speed wire drawing machine for diamond busbars that is fast, efficient, and ensures wire drawing quality.
[0005] To solve the above technical problems, the present invention can be implemented using the following technical solutions:
[0006] A high-speed wire drawing machine for diamond busbars includes a cabinet, a wire feeding module, a wire drawing module, and a wire take-up module. The cabinet is provided with a base plate, and the wire feeding module, wire drawing module, and wire take-up module are respectively mounted on the base plate. The wire drawing module is located between the wire feeding module and the wire take-up module, and multiple sets of wire drawing modules are provided, arranged side by side. Tensioning modules are provided between the wire feeding module and the wire drawing module, between the multiple sets of wire drawing modules, and between the wire drawing module and the wire take-up module.
[0007] In one embodiment, along the wire drawing direction of the diamond wire, a wire feeding speed measuring guide wheel is provided behind the wire feeding module and a wire take-up speed measuring guide wheel is provided in front of the wire take-up module, and both the wire feeding speed measuring guide wheel and the wire take-up speed measuring guide wheel are mounted on the substrate.
[0008] In one embodiment, the wire feeding module includes a wire feeding motor and a wire feeding wheel. The wire feeding motor is located on the rear side of the substrate, and the wire feeding wheel is located on the front side of the substrate. The output end of the wire feeding motor is connected to the wire feeding wheel and can drive the wire feeding wheel to rotate in order to feed the diamond busbar.
[0009] In one embodiment, the wire drawing module includes a wire drawing motor, a wire drawing wheel, and a wire drawing die. The wire drawing motor is located on the rear side of the substrate, while the wire drawing wheel and the wire drawing die are located on the front side of the substrate, with the wire drawing die positioned above the wire drawing wheel. The output end of the wire drawing motor is connected to the wire drawing wheel and can drive the wire drawing wheel to rotate. Wire drawing guide wheels are also provided on both sides of the wire drawing die.
[0010] In one embodiment, the take-up module includes a fixed base, a wire feeding motor, a lead screw, a take-up motor, and a take-up wheel. The wire feeding motor is located at the end of the fixed base, and the lead screw is connected to the output end of the wire feeding motor. The wire feeding motor can drive the lead screw to rotate. The take-up motor is movably located on the top of the fixed base and connected to the lead screw. When the lead screw rotates, it drives the take-up motor to move. The take-up wheel is connected to the output end of the take-up motor, and the take-up motor can drive the take-up wheel to rotate.
[0011] In one embodiment, the tensioning module includes a tensioning motor, a tension rod, and a limiting rod. The tensioning motor is located on the rear side of the substrate, and the tension rod is located on the front side of the substrate. One end of the tension rod is connected to the output end of the tensioning motor, and the other end of the tension rod is provided with a tension guide wheel. Limiting rods are provided on both the upper and lower sides of the tension rod.
[0012] In one embodiment, the high-speed wire drawing machine for diamond busbars further includes a cooling module, which includes a circulation box, nozzles, and a liquid receiving tray. The circulation box is located inside the cabinet and is filled with coolant. Each wire drawing die of each group has a nozzle on the upper part of one side and a liquid receiving tray on the lower part of the wire drawing die of each group. Both the nozzles and the liquid receiving tray are connected to the circulation box through pipes.
[0013] In one embodiment, the temperature of the coolant is 38°C-42°C.
[0014] In one embodiment, a wire-feeding universal module is also installed on the substrate. Along the wire-drawing direction of the diamond wire, the wire-feeding universal module is located behind the wire-feeding speed measuring guide wheel. The wire-feeding universal module includes a fixed plate, a connecting plate, a rotating seat, and a universal wheel. The fixed plate is connected to the substrate, one end of the connecting plate is rotatably connected to the fixed plate, the rotating seat is rotatably connected to the other end of the connecting plate, and the universal wheel is installed on the rotating seat.
[0015] In one embodiment, the cabinet is further provided with a cover that covers the substrate and the wire feeding module, wire drawing module and wire taking module on the substrate, and a number of heat dissipation holes are provided on the top of the cabinet. Beneficial effects
[0016] This utility model relates to a high-speed diamond busbar drawing machine. A wire feeding module feeds the diamond busbar, which then passes through multiple wire drawing modules to be drawn to the required diameter. A wire take-up module then takes the wire back and arranges it. The parallel arrangement of multiple wire drawing modules allows for segmented drawing of the diamond busbar, enabling a drawing speed of 1000 meters per minute, thus improving drawing efficiency. Furthermore, during segmented drawing, each segment passes through a tensioning module, which adjusts the tension of each segment to prevent breakage during high-speed drawing. This ensures the quality of the drawn diamond busbar and meets the production requirements for diamond busbars. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the structure of the high-speed wire drawing machine for diamond busbars according to this utility model. Figure 1 ;
[0018] Figure 2 This is a schematic diagram of the structure of the high-speed wire drawing machine for diamond busbars according to this utility model. Figure 2 ;
[0019] Figure 3 This is a schematic diagram of the wire feeding module structure of the high-speed wire drawing machine for diamond busbars of this utility model;
[0020] Figure 4 This is a schematic diagram of the wire drawing module structure of the diamond busbar high-speed wire drawing machine of this utility model;
[0021] Figure 5 This is a schematic diagram of the take-up module structure of the diamond busbar high-speed wire drawing machine of this utility model;
[0022] Figure 6 This is a schematic diagram of the tensioning module structure of the high-speed wire drawing machine for diamond busbars of this utility model;
[0023] Figure 7 This is a schematic diagram of the cooling module structure of the diamond busbar high-speed wire drawing machine of this utility model;
[0024] Figure 8 This is a schematic diagram of the wire feeding universal module structure of the diamond busbar high-speed wire drawing machine of this utility model;
[0025] Figure 9 This is a schematic diagram of the structure of the high-speed wire drawing machine for diamond busbars according to this utility model. Figure 3 .
[0026] As shown in the attached diagram:
[0027] 100. Cabinet; 110. Circuit board; 120. Cover; 130. Ventilation holes;
[0028] 200. Wire feeding module; 210. Wire feeding motor; 220. Wire feeding wheel;
[0029] 300. Wire drawing module; 310. Wire drawing motor; 320. Wire drawing wheel; 330. Wire drawing module; 340. Wire drawing guide wheel;
[0030] 400. Take-up module; 410. Mounting base; 420. Cable winding motor; 430. Lead screw; 440. Take-up motor; 450. Take-up reel;
[0031] 500. Tensioning module; 510. Tensioning motor; 520. Tension bar; 530. Limiting rod; 540. Tension guide wheel;
[0032] 600. Wire feeding speed measuring guide wheel;
[0033] 700. Winding speed measuring guide wheel;
[0034] 800. Cooling module; 810. Nozzle; 820. Drip tray;
[0035] 900. Universal module; 910. Fixing plate; 920. Connecting plate; 930. Rotary seat; 940. Universal wheel. Detailed Implementation
[0036] To make the above-mentioned objects, features, and advantages of this utility model more apparent and understandable, the specific embodiments of this utility model will be described in detail below with reference to the accompanying drawings. Many specific details are set forth in the following description to provide a full understanding of this utility model. However, this utility model can be implemented in many other ways different from those described herein, and those skilled in the art can make similar modifications without departing from the spirit of this utility model. Therefore, this utility model is not limited to the specific embodiments disclosed below.
[0037] It should be noted that when an element is said to be "fixed to" another element, it can be directly on the other element or there may be an intervening element. When an element is said to be "connected to" another element, it can be directly connected to the other element or there may be an intervening element. Conversely, when an element is said to be "directly on" another element, there is no intervening element. The terms "vertical," "horizontal," "left," "right," and similar expressions used in this document are for illustrative purposes only.
[0038] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.
[0039] Please see Figure 1 , Figure 2 and Figure 9 A high-speed wire drawing machine for diamond busbars includes a cabinet 100, a wire feeding module 200, a wire drawing module 300, and a wire take-up module 400. The cabinet 100 is provided with a base plate 110. The wire feeding module 200, the wire drawing module 300, and the wire take-up module 400 are respectively installed on the base plate 110. The wire drawing module 300 is located between the wire feeding module 200 and the wire take-up module 400, and multiple sets of wire drawing modules 300 are provided. The multiple sets of wire drawing modules 300 are arranged side by side. Tensioning modules 500 are provided between the wire feeding module 200 and the wire drawing module 300, between the multiple sets of wire drawing modules 300, and between the wire drawing module 300 and the wire take-up module 400.
[0040] Specifically, in this embodiment, the diamond busbar coil is installed onto the unwinding module 200, which unwinds the diamond busbar, allowing it to pass sequentially through multiple parallel drawing modules 300. These drawing modules 300 perform segmented drawing of the diamond busbar to the required diameter. Finally, the take-up module 400 takes up and winds the drawn diamond busbar. This segmented drawing process enables high-speed drawing of the diamond busbar, reaching speeds up to 1000 m / min, thereby improving the efficiency of the diamond busbar drawing process. The drawing efficiency of the diamond busbar; in this embodiment, the drawing module is set with 10 sets, and when the diamond busbar goes from the wire feeding module 200 to the first drawing module 300, and then through the 10 drawing modules 300 in sequence, and finally through the last drawing module 300 to the wire taking-up module 400, the tension is adjusted by the tension module 500. The tension module 500 allows the tension of each segment to be controlled during the segmented drawing of the diamond busbar, thereby avoiding the diamond busbar from breaking during high-speed drawing, thus ensuring the drawing quality of the diamond busbar and meeting the production requirements of the diamond busbar.
[0041] Furthermore, to better monitor the wire drawing speed, a wire feeding speed measuring guide wheel 600 is provided behind the wire feeding module 200 and a wire take-up speed measuring guide wheel 700 is provided in front of the wire take-up module 400, both of which are mounted on the base plate 110. The wire feeding speed measuring guide wheel 600 monitors the wire feeding speed of the diamond busbar, and the wire take-up speed measuring guide wheel 700 monitors the wire take-up speed. By simultaneously monitoring both the wire feeding and take-up speeds, real-time monitoring of the wire drawing speed of the diamond busbar is ensured, thereby effectively avoiding situations where the wire drawing speed is too slow, resulting in failure to meet the wire drawing requirements, or where the wire drawing speed is too fast, resulting in wire breakage.
[0042] In addition, to improve the safety of the diamond busbar during the drawing process, in this embodiment, a cover 120 is also provided on the cabinet 100. The cover 120 can be opened and closed by a nitrogen spring to cover the base plate 110 and the wire feeding module 200, wire drawing module 300 and wire taking module 400 on the base plate 110, thereby improving the safety of the wire drawing machine during operation. At the same time, a number of heat dissipation holes 130 are also provided on the top of the cabinet 100. The heat dissipation holes 130 can dissipate the heat generated inside the cabinet 100 during operation to ensure the normal operation of the cabinet 100.
[0043] Please see Figure 3 In this embodiment, the wire feeding module 200 includes a wire feeding motor 210 and a wire feeding wheel 220. The wire feeding motor 210 is located on the rear side of the substrate 110, and the wire feeding wheel 220 is located on the front side of the substrate 110. The output end of the wire feeding motor 210 is connected to the wire feeding wheel 220 and can drive the wire feeding wheel 220 to rotate, thereby feeding the diamond wire. When drawing the diamond wire, the diamond wire coil is mounted on the wire feeding wheel 220, and then the wire feeding motor 210 drives the wire feeding wheel 220 to rotate. When the wire feeding wheel 220 rotates, it automatically feeds the diamond wire.
[0044] Please see Figure 4 In order to achieve the drawing of diamond wire, the wire drawing module 300 in this embodiment includes a wire drawing motor 310, a wire drawing wheel 320 and a wire drawing die 330. The wire drawing motor 310 is located on the rear side of the substrate 110, while the wire drawing wheel 320 and the wire drawing die 330 are located on the front side of the substrate 110, and the wire drawing die 330 is located above the wire drawing wheel 320. The output end of the wire drawing motor 310 is connected to the wire drawing wheel 320 and can drive the wire drawing wheel 320 to rotate. Wire drawing guide wheels 340 are also provided on both sides of the wire drawing die 330.
[0045] During the drawing of the diamond wire, the wire feeding module 200 feeds the diamond wire. The diamond wire first passes through the wire feeding speed measuring guide roller 600 to the corresponding tensioning module 500, and then from the corresponding tensioning module 500 to the first drawing module 300. After the diamond wire is fed to the drawing module 300, it is guided and conveyed from one side of the drawing guide roller 340 so that the diamond wire passes through the drawing die 330 and to the other side of the drawing guide roller 340. The diamond wire is then guided and conveyed from this side of the drawing guide roller 340 to the drawing wheel 320. According to the required wire diameter, the diamond wire is wound a certain number of turns on the drawing wheel 320 (3-5 turns in this embodiment). After the diamond wire is wound, the drawing wheel 320 is drawn... The wire motor 310 drives the drawing wheel 320 to rotate, and in conjunction with the drawing die 330, the diamond wire can be drawn. After the first section of drawing is performed by the first drawing module 300, the diamond wire is conveyed to the second drawing module 300 by the tensioning module 500 below the first drawing module 300. The second drawing module 300 performs the second section of drawing, and so on, until the last drawing module 300 completes the drawing of the diamond wire. This achieves segmented drawing of the diamond wire, enabling high-speed drawing of the diamond wire during the drawing process, with a drawing speed of up to 1000m / min, thereby improving the drawing efficiency of the diamond wire.
[0046] Please see Figure 5 In order to wind up the drawn diamond wire, the take-up module 400 in this embodiment includes a fixed base 410, a wire feeding motor 420, a lead screw 430, a take-up motor 440, and a take-up wheel 450. The wire feeding motor 420 is located at the end of the fixed base 410. The lead screw 430 is connected to the output end of the wire feeding motor 420, and the wire feeding motor 420 can drive the lead screw 430 to rotate. The take-up motor 440 is movably located on the top of the fixed base 410 and is connected to the lead screw 430. When the lead screw 430 rotates, it drives the take-up motor 440 to move. The take-up wheel 450 is connected to the output end of the take-up motor 440, and the take-up motor 440 can drive the take-up wheel 450 to rotate.
[0047] After the diamond wire is drawn by multiple sets of drawing modules 300 arranged side by side, it will be wound and collected by the take-up wheel 450. Specifically, during take-up, the take-up motor 440 drives the take-up wheel 450 to rotate, so as to realize the take-up of the diamond wire. During the take-up process of the take-up wheel 450, the wire laying motor 420 drives the lead screw 430 to rotate. When the lead screw 430 rotates, it will cause the take-up motor 440 to move, which in turn causes the take-up wheel 450 to move. This allows the take-up wheel 450 to take up and lay wire at the same time, which facilitates the take-up and laying of the diamond wire and ensures the take-up quality of the diamond wire.
[0048] Please see Figure 6 In this embodiment, to prevent the diamond wire from breaking during high-speed drawing, tensioning modules 500 are provided between the wire feeding module 200 and the first wire drawing module 300, between multiple wire drawing modules 300, and between the last wire drawing module 300 and the wire taking-up module 400. The tensioning module 500 includes a tensioning motor 510, a tension rod 520, and a limiting rod 530. The tensioning motor 510 is located on the rear side of the substrate 110, and the tension rod 520 is located on the front side of the substrate 110. One end of the tension rod 520 is connected to the output end of the tensioning motor 510, and the other end of the tension rod 520 is provided with a tension guide wheel 540. Limiting rods 530 are provided on both the upper and lower sides of the tension rod 520. During the drawing process, the tensioning motor 510 drives the tension rod 520 to swing. When the tension rod 520 swings, it causes the tension guide wheel 540 at the end of the tension rod 520 to swing up and down to adjust the tension of the diamond wire conveyed along the tension guide wheel 540. If the tension is large, the tensioning motor 510 will drive the tension rod 520 to swing upward. When the tension is small, the tensioning motor 510 will drive the tension rod 520 to swing downward. When the tension rod 520 swings, it will be limited by the limit rods 530 on the upper and lower sides. The tensioning module 500 can effectively prevent the diamond wire from being broken during high-speed drawing, thereby ensuring a smooth wire drawing process and improving wire drawing efficiency.
[0049] Please see Figure 7 Since the diamond busbar generates a certain temperature when it is drawn by the drawing die 330 in the drawing module 300, in order to control the drawing temperature of the diamond busbar and ensure the drawing quality of the diamond busbar, the high-speed drawing machine of the diamond busbar in this embodiment also includes a cooling module 800. The cooling module 800 includes a circulation box (not shown in the figure), a nozzle 810 and a liquid receiving tray 820. The circulation box is set in the cabinet 100 and is filled with coolant. Each drawing die 330 of the drawing module 300 is provided with a nozzle 810 on the upper part of one side, and each drawing die 330 of the drawing module 300 is provided with a liquid receiving tray 820 at the lower part. The nozzle 810 and the liquid receiving tray 820 are connected to the circulation box through pipes. When the diamond busbar passes through the drawing die, the nozzle 810 sprays coolant onto the drawing die 330. The temperature of the coolant is 38℃-42℃, and in this embodiment, the coolant is preferably 40℃. The coolant can effectively control the drawing temperature of the diamond busbar, thereby ensuring the drawing quality of the subsequent diamond busbar. The sprayed coolant falls into the liquid receiving tray 820 at the bottom of the drawing die 330, and is then filtered by the liquid receiving tray 820 and flowed back into the circulation tank. The coolant is heated to 38℃-42℃ in the circulation tank and then sprayed by the nozzle 810 to realize the recycling of the coolant, thereby saving costs and avoiding resource waste.
[0050] Finally, please see Figure 8 To ensure smooth wire feeding of the diamond busbar, in this embodiment, a wire feeding universal module 900 is also installed on the base plate 110. Along the wire drawing direction of the diamond busbar, the wire feeding universal module 900 is located behind the wire feeding speed guide wheel 600. The wire feeding universal module 900 includes a fixed plate 910, a connecting plate 920, a rotating seat 930, and a universal wheel 940. The fixed plate 910 is connected to the base plate 110, one end of the connecting plate 920 is rotatably connected to the fixed plate 910, the rotating seat 930 is rotatably connected to the other end of the connecting plate 920, and the universal wheel 940 is installed on the rotating seat 930.
[0051] After the wire feeding module 200 feeds the diamond busbar, the diamond busbar first passes through the wire feeding speed guide wheel 600 to the universal wheel 940, and then from the universal wheel 940 to the tensioning module 500 below the wire feeding module 200. Since the universal wheel 940 in the universal module 900 is mounted on the rotating seat 930, and the rotating seat 930 is rotatably connected to one end of the connecting plate 920, the rotating seat 930 can rotate vertically. At the same time, the other end of the connecting plate 920 is rotatably connected to the fixing plate 910, so the connecting plate 920 can rotate horizontally. This allows the universal wheel 940 to rotate in multiple directions, ensuring that the diamond busbar can better cooperate with the corresponding tensioning module 500 when feeding, thus making the diamond busbar smoother when drawing wire and ensuring high-speed wire drawing of the diamond busbar.
[0052] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art can readily implement this utility model based on the accompanying drawings and the above description; however, any modifications, alterations, or variations made by those skilled in the art without departing from the scope of the utility model's technical solution, utilizing the disclosed technical content, are equivalent embodiments of this utility model; furthermore, any equivalent changes, alterations, or variations made to the above embodiments based on the essential technology of this utility model are still within the protection scope of this utility model's technical solution.
Claims
1. A high-speed wire drawing machine for diamond busbars, characterized in that: It includes a cabinet, a wire feeding module, a wire drawing module, and a wire take-up module. The cabinet is provided with a base plate, and the wire feeding module, the wire drawing module, and the wire take-up module are respectively mounted on the base plate. The wire drawing module is located between the wire feeding module and the wire taking-up module, and there are multiple sets of wire drawing modules arranged side by side. Tensioning modules are provided between the wire feeding module and the wire drawing module, between the multiple sets of wire drawing modules, and between the wire drawing module and the wire taking-up module.
2. The high-speed wire drawing machine for diamond busbars according to claim 1, characterized in that: Along the wire drawing direction of the diamond wire, a wire feeding speed measuring guide wheel is provided behind the wire feeding module and a wire take-up speed measuring guide wheel is provided in front of the wire take-up module. Both the wire feeding speed measuring guide wheel and the wire take-up speed measuring guide wheel are mounted on the base plate.
3. The high-speed wire drawing machine for diamond busbars according to claim 1, characterized in that: The wire feeding module includes a wire feeding motor and a wire feeding wheel. The wire feeding motor is located on the rear side of the substrate, and the wire feeding wheel is located on the front side of the substrate. The output end of the wire feeding motor is connected to the wire feeding wheel and can drive the wire feeding wheel to rotate in order to feed the diamond busbar.
4. The high-speed wire drawing machine for diamond busbars according to claim 1, characterized in that: The wire drawing module includes a wire drawing motor, a wire drawing wheel, and a wire drawing die. The wire drawing motor is located on the rear side of the substrate, while the wire drawing wheel and the wire drawing die are located on the front side of the substrate, with the wire drawing die positioned above the wire drawing wheel. The output end of the wire drawing motor is connected to the wire drawing wheel and can drive the wire drawing wheel to rotate. Wire drawing guide wheels are also provided on both sides of the wire drawing die.
5. The high-speed wire drawing machine for diamond busbars according to claim 1, characterized in that: The take-up module includes a fixed base, a wire feeding motor, a lead screw, a take-up motor, and a take-up wheel. The wire feeding motor is located at the end of the fixed base, and the lead screw is connected to the output end of the wire feeding motor. The wire feeding motor can drive the lead screw to rotate. The take-up motor is movably located on the top of the fixed base and is connected to the lead screw. When the lead screw rotates, it drives the take-up motor to move. The take-up wheel is connected to the output end of the take-up motor, and the take-up motor can drive the take-up wheel to rotate.
6. The high-speed wire drawing machine for diamond busbars according to claim 1, characterized in that: The tensioning module includes a tensioning motor, a tension rod, and a limiting rod. The tensioning motor is located on the rear side of the substrate, while the tension rod is located on the front side of the substrate. One end of the tension rod is connected to the output end of the tensioning motor, and the other end of the tension rod is provided with a tension guide wheel. Limiting rods are provided on both the upper and lower sides of the tension rod.
7. The high-speed wire drawing machine for diamond busbars according to claim 4, characterized in that: It also includes a cooling module, which includes a circulation tank, nozzles and a drip tray. The circulation tank is located inside the cabinet and is filled with coolant. Each wire drawing die has a nozzle on the upper part of one side and a drip tray on the lower part of the wire drawing die. Both the nozzle and the drip tray are connected to the circulation tank through pipes.
8. The high-speed wire drawing machine for diamond busbars according to claim 7, characterized in that: The temperature of the coolant is 38℃-42℃.
9. The high-speed wire drawing machine for diamond busbars according to claim 2, characterized in that: The base plate is also equipped with a wire feeding universal module. Along the wire drawing direction of the diamond wire, the wire feeding universal module is located behind the wire feeding speed measuring guide wheel. The wire feeding universal module includes a fixed plate, a connecting plate, a rotating seat and a universal wheel. The fixed plate is connected to the base plate, one end of the connecting plate is rotatably connected to the fixed plate, the rotating seat is rotatably connected to the other end of the connecting plate, and the universal wheel is installed on the rotating seat.
10. The high-speed wire drawing machine for diamond busbars according to claim 1, characterized in that: The cabinet is also equipped with a cover that covers the substrate and the wire feeding module, wire drawing module and wire taking module on the substrate, and several heat dissipation holes are also provided on the top of the cabinet.