Automatic take-up device
The structural design of sliding guide rollers, elastic parts and wire troughs solves the disorder problem when the wires break, achieves tension continuity and wire stability when the wires break, and ensures the continuity and safety of production.
Patent Information
- Application Number
- CN202510955320.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-11
- Publication Date
- 2025-09-16
AI Technical Summary
Existing automatic wire-reeling devices cannot respond promptly when a wire breaks, causing the wires to scatter disorderly, increasing handling difficulty and potentially leading to equipment damage and reduced production efficiency.
The structural design adopts a combination of sliding guide rollers and elastic parts. The elastic force of the elastic parts maintains the conductor tension. When the wire breaks, the sliding guide roller moves to maintain a certain tension. The wire is combed through the wire plate and wire groove, and the gear and rack structure is used to apply pressure to the broken wire end to form a stable combing structure.
There is no need to stop the machine when the wire breaks, which maintains tension stability, avoids disorderly scattering of wires, reduces the risk of equipment collision, and improves maintenance efficiency and production stability.
Smart Images

Figure CN120646609A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of wire transmission, and in particular to an automatic wire taking-up device. Background Art
[0002] In the field of wire conveying equipment, maintaining stable wire tension is a key factor in ensuring production efficiency and product quality. Traditional wire conveying systems typically use fixed guide rollers or manual tension adjustment. However, these methods cannot respond promptly to wire breakage, resulting in production line downtime or reduced product quality. In recent years, with the development of automation technology, some automatic tension control systems have been introduced, but these systems are generally complex and costly, making them difficult to popularize in small and medium-sized enterprises. Therefore, the development of a simple, efficient, and low-cost automatic wire take-up device has become an urgent need in the industry.
[0003] In the existing automatic wire-winding device, when the wire breaks, the tension suddenly disappears, and the wire is easily out of control and becomes scattered in disorder. This not only causes the wires to be entangled and knotted, increasing the difficulty of subsequent processing and requiring shutdown for processing, reducing the production efficiency of the device, but may also cause the wires to collide and scratch with surrounding equipment, causing damage to the equipment. Therefore, an automatic wire-winding device is proposed. Summary of the Invention
[0004] The purpose of this application is to provide an automatic wire taking-up device.
[0005] To achieve the above-mentioned object, the present invention provides the following technical solution: an automatic wire-winding device, comprising a main body mechanism, and further comprising: A wire-receiving mechanism, located above the main body mechanism; Among them, the wire taking-up mechanism includes a wire taking-up frame, a fixed guide roller, a wire groove, a first slide groove, a sliding frame, a sliding guide roller, an elastic member, a guide rod and a sliding hole. The side of the wire taking-up frame is rotatably connected to the fixed guide roller, and a number of wire grooves are evenly opened on the fixed guide roller. The wire taking-up frame is provided with a first slide groove on the side close to the fixed guide roller, and the interior of the first slide groove is slidably connected to the sliding frame. The side of the sliding frame is rotatably connected to the sliding guide roller, an elastic member is provided inside the first slide groove, and the interior of the first slide groove is fixedly connected to the guide rod, and a sliding hole is opened on the sliding frame.
[0006] Preferably, the size of the fixed guide roller is adapted to the size of the sliding guide roller, the size of the sliding frame is adapted to the size of the first slide groove, the size of the sliding hole is adapted to the size of the guide rod, the guide rod passes through the sliding hole, the guide rod is located inside the elastic member, a number of wire grooves are evenly opened on the sliding guide roller, the sliding frame is slidably connected to the guide rod through the sliding hole, the sliding guide roller passes through the inner wall of the first slide groove and extends to the side of the take-up frame close to the fixed guide roller, and the side of the sliding frame close to the fixed guide roller is elastically connected to the inner wall of the first slide groove through the elastic member.
[0007] By adopting the above technical solution, technical personnel are provided with maintenance time, and there is no need to stop the machine when the wire is broken, which ensures the continuity of tension during the transmission of the wire. At the same time, maintaining a certain tension can prevent the wires from being scattered disorderly, reduce the risk of collision, entanglement and other injuries to surrounding personnel, and ensure the safety of maintenance personnel and other on-site personnel.
[0008] Preferably, a wire mechanism is provided inside the wire taking-up mechanism, and the wire mechanism includes two connecting plates, the sides of the two connecting plates are fixedly connected to a wire plate, the wire plate is rotatably connected to a rotating plate, the side of the rotating plate is fixedly connected to a gear, and two second sliding grooves are provided inside the wire taking-up frame.
[0009] Preferably, the connecting plate has an L-shape, the upper and lower ends of the sliding frame are fixedly connected to the two connecting plates respectively, the wire plate is located between the sliding guide roller and the fixed guide roller, the rotating plate is located on the side of the wire plate close to the sliding guide roller, the gear is located between the connecting plate and the wire plate, the size of the gear is larger than the size of the rotating shaft on the rotating plate, and the two rotating plates are respectively on the two wire plates and have the function of rotating 90° in a direction away from each other.
[0010] Preferably, the wire plate passes through the inner wall of the second slide groove and extends to the side of the wire take-up frame. Several wire grooves are evenly opened on the side where the two wire plates are close to each other. The second slide groove is connected to the first slide groove, and the connecting plate is slidably connected to the second slide groove.
[0011] Preferably, the main body mechanism includes a base, a water-cooling shaping groove is provided on the top of the base, and a guide wheel is rotatably connected to the top of the base.
[0012] Preferably, the guide wheel is located on the side of the water-cooled shaping groove, the guide wheel is located below the fixed guide roller, the bottom of the take-up frame is fixedly connected to the top of the base, the sliding guide roller is located directly above the water-cooled shaping groove, and a wire groove is provided on the guide wheel.
[0013] By adopting the above technical solution, the wires are constrained and guided, making it easier for technicians to quickly find the break and prevent the wires from continuing to deteriorate in a disordered state, avoiding the wires being difficult to handle due to excessive disorder, creating favorable conditions for subsequent maintenance and restoration work, and further reducing the probability of collision between the wires and equipment, reducing the degree of wear on the wires.
[0014] Preferably, an air guide mechanism is provided inside the wire taking-up mechanism, and the air guide mechanism is located inside the wire mechanism, and the air guide mechanism includes a first air bag, an air guide groove is provided inside the wire taking-up frame, and an air guide tube is provided inside the two second slides, and the two connecting plates are fixedly connected to the limiting plate on one side away from each other, and the side of the limiting plate is fixedly connected to the second air bag, and the side of the second air bag away from the limiting plate is fixedly connected to the rack. The air guide mechanism is provided inside the wire taking-up mechanism, and the air guide mechanism is located inside the wire mechanism, and the air guide mechanism includes a first air bag, an air guide groove is provided inside the wire taking-up frame, and the air guide tube is provided inside the two second slides, and the two connecting plates are fixedly connected to the limiting plate on one side away from each other, and the side of the limiting plate is fixedly connected to the second air bag, and the side of the second air bag away from the limiting plate is fixedly connected to the rack.
[0015] Preferably, the first airbag is fixedly connected to the inner wall of the first slide groove, the first airbag is located on the side of the sliding frame away from the elastic member, the side of the first airbag close to the sliding frame is fixedly connected to the side of the sliding frame, the interior of the first airbag is connected to the interior of the two air guide tubes through the air guide groove, and the end of the air guide tube away from the air guide groove is fixedly connected to the side of the limit plate away from the second airbag.
[0016] Preferably, the interior of the air guide tube passes through the limit plate and communicates with the interior of the second airbag, the two racks are respectively slidably connected to the side of the two connecting plates away from each other, the two racks are respectively located on the side of the two gears away from each other, the side of the rack close to the gear is engaged with the gear, and the limit plate and the rack are both directly slidably connected to the inner wall of the second slide groove.
[0017] By adopting the above technical solution, the wires are constrained and guided, making it easier for technicians to quickly find the break and prevent the wires from continuing to deteriorate in a disordered state, avoiding the wires being difficult to handle due to excessive disorder, creating favorable conditions for subsequent maintenance and restoration work, and further reducing the probability of collision between the wires and equipment, reducing the degree of wear on the wires.
[0018] In summary, this application includes at least one of the following beneficial technical effects: 1. The present invention facilitates maintaining the stability of the conductor when the conductor is broken by arranging the cooperation of structures such as the sliding guide roller and the elastic member. When the conductor is working normally, the tension of the conductor is balanced with the elastic force of the spring, and the conductor runs stably. When the conductor is broken, the tension between the fixed guide roller and the sliding guide roller is reduced. At this time, the sliding guide roller will move away from the fixed guide roller under the action of the elastic force of the elastic member, so that the conductor still maintains a certain tension, providing technicians with time for maintenance. There is no need to stop the machine when the conductor is broken, which ensures the continuity of the tension during the transmission of the conductor. At the same time, maintaining a certain tension can prevent the conductor from being scattered disorderly, reduce the risk of collision, entanglement and other injuries to surrounding personnel, and ensure the safety of maintenance personnel and other on-site personnel. 2. The present invention facilitates the combing of wires by providing a combination of structures such as a wire guide plate and a wire trough. During the movement of the sliding guide roller, the wire guide plate is also driven to move via the connecting plate, so that the wires can be combed between the fixed guide roller and the sliding guide roller through the wire trough, thereby constraining and guiding the wires. This facilitates technicians to quickly find the fracture and prevents the wires from further deteriorating in a disordered state, avoiding excessive disorder that makes the wires difficult to handle, creating favorable conditions for subsequent maintenance and restoration work. At the same time, the probability of collision between the wires and equipment is further reduced, reducing the degree of wear on the wires. 3. By setting up the coordination of structures such as racks and gears, it is convenient to apply pressure to the broken wire ends. During the combing process of the wire plate, the sliding frame will compress the first airbag, so that the gas inside it enters the second airbag through the air guide groove and the air guide tube, causing it to expand and push the rack, so that the gear engaged with it drives the two rotating plates to rotate towards each other, applying pressure to the broken wire, causing it to move closer between the two rotating plates, cooperating with the combing of the wire plate, further preventing the broken wire ends from flying around, forming a more stable wire combing structure, and improving the stability and reliability of the system. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 It is a schematic diagram of the overall structure of this application; Figure 2 Schematic diagram of the cross-sectional structure of the take-up mechanism; Figure 3 This is a schematic diagram of the structural relationship between the air guide pipe and the second chute; Figure 4 Schematic diagram of the structural relationship between the second chute and the limiting groove; Figure 5 Schematic diagram of the cross-sectional structure of the air guide groove; Figure 6 Schematic diagram of the three-dimensional structure of the wire mechanism; Figure 7 Schematic diagram of the structural relationship between the rack and the gear.
[0020] Explanation of the accompanying reference numerals: 1. Wire-taking mechanism; 101. Wire-taking frame; 102. Fixed guide roller; 103. Wire groove; 104. First slide groove; 105. Sliding frame; 106. Sliding guide roller; 107. Elastic member; 108. Guide rod; 109. Slide hole; 2. Wire mechanism; 201. Connecting plate; 202. Wire plate; 203. Rotating plate; 204. Gear; 205. Second slide groove; 3. Main body mechanism; 301. Base; 302. Water-cooled shaping groove; 303. Guide wheel; 4. Air guide mechanism; 401. First air bag; 402. Air guide groove; 403. Air guide pipe; 404. Limiting plate; 405. Second air bag; 406. Rack. DETAILED DESCRIPTION
[0021] The following is combined with Figure 1 To the attached Figure 7 , further details of this application are given.
[0022] An automatic wire-winding device includes a main body 3 and further includes: The wire-taking mechanism 1 is located above the main body mechanism 3; Among them, the wire taking-up mechanism 1 includes a wire taking-up frame 101, a fixed guide roller 102, a wire groove 103, a first slide 104, a sliding frame 105, a sliding guide roller 106, an elastic member 107, a guide rod 108 and a sliding hole 109. The side of the wire taking-up frame 101 is rotatably connected to the fixed guide roller 102, and a number of wire grooves 103 are evenly opened on the fixed guide roller 102. A first slide 104 is opened on the side of the wire taking-up frame 101 close to the fixed guide roller 102, and the interior of the first slide 104 is slidably connected to the sliding frame 105, and the side of the sliding frame 105 is rotatably connected to the sliding guide roller 106, an elastic member 107 is provided inside the first slide 104, the interior of the first slide 104 is fixedly connected to the guide rod 108, and a sliding hole 109 is opened on the sliding frame 105.
[0023] The size of the fixed guide roller 102 is adapted to the size of the sliding guide roller 106, the size of the sliding frame 105 is adapted to the size of the first slide groove 104, the size of the sliding hole 109 is adapted to the size of the guide rod 108, the guide rod 108 passes through the sliding hole 109, the guide rod 108 is located inside the elastic member 107, and a number of wire grooves 103 are evenly opened on the sliding guide roller 106. The sliding frame 105 is slidably connected to the guide rod 108 through the sliding hole 109, the sliding guide roller 106 passes through the inner wall of the first slide groove 104 and extends to the side of the take-up frame 101 close to the fixed guide roller 102, and the side of the sliding frame 105 close to the fixed guide roller 102 is elastically connected to the inner wall of the first slide groove 104 through the elastic member 107.
[0024] A wire guide mechanism 2 is provided inside the wire take-up mechanism 1. The wire guide mechanism 2 includes two connecting plates 201. The sides of the two connecting plates 201 are fixedly connected to wire guide plates 202. A rotating plate 203 is rotatably connected to the wire guide plate 202. The side of the rotating plate 203 is fixedly connected to a gear 204. Two second slide grooves 205 are provided inside the wire take-up frame 101.
[0025] The above solution is adopted: by arranging the cooperation of structures such as the sliding guide roller 106 and the elastic member 107, it is convenient to maintain the stability of the wire when the wire is broken. When the wire is working normally, the tension of the wire is balanced with the elastic force of the spring, and the wire runs stably; when the wire is broken, the tension between the fixed guide roller 102 and the sliding guide roller 106 is reduced. At this time, the sliding guide roller 106 will move away from the fixed guide roller 102 under the action of the elastic force of the elastic member 107, so that the wire still maintains a certain tension, providing technicians with maintenance time, without the need to stop the machine when the wire is broken, ensuring the continuity of the tension during the wire transmission process, and without the need to stop the machine when the wire is broken, ensuring the continuity of the tension during the wire transmission process. At the same time, maintaining a certain tension can prevent the wire from being scattered disorderly, reduce the risk of collision, entanglement and other injuries to surrounding personnel, and ensure the safety of maintenance personnel and other on-site personnel. By setting up the coordination of structures such as the wire plate 202 and the wire groove 103, it is convenient to comb the wires. During the movement of the sliding guide roller 106, the wire plate 202 will also be driven to move through the connecting plate 201, so that the wires between the fixed guide roller 102 and the sliding guide roller 106 can be combed through the wire groove 103, and the wires are constrained and guided, which makes it easier for technicians to quickly find the break and prevent the wires from continuing to deteriorate in a disordered state, avoiding the wires from being difficult to handle due to excessive disorder, creating favorable conditions for subsequent maintenance and restoration work, and further reducing the probability of collision between the wires and equipment, reducing the degree of wear on the wires.
[0026] like Figures 4 to 7 As shown, the connecting plate 201 has an L-shape, the upper and lower ends of the sliding frame 105 are fixedly connected to the two connecting plates 201 respectively, the wire plate 202 is located between the sliding guide roller 106 and the fixed guide roller 102, the rotating plate 203 is located on the side of the wire plate 202 close to the sliding guide roller 106, the gear 204 is located between the connecting plate 201 and the wire plate 202, the size of the gear 204 is larger than the size of the rotating shaft on the rotating plate 203, and the two rotating plates 203 are respectively on the two wire plates 202 with a function of rotating 90° in a direction away from each other.
[0027] The wire plate 202 passes through the inner wall of the second slide groove 205 and extends to the side of the wire take-up frame 101. Several wire grooves 103 are evenly opened on the side where the two wire plates 202 are close to each other. The second slide groove 205 is connected to the first slide groove 104. The connecting plate 201 is slidingly connected to the second slide groove 205. The main body mechanism 3 includes a base 301. A water-cooled shaping groove 302 is provided on the top of the base 301. The top of the base 301 is rotatably connected to a guide wheel 303.
[0028] The guide wheel 303 is located on the side of the water-cooled shaping groove 302, and the guide wheel 303 is located below the fixed guide roller 102. The bottom of the wire take-up frame 101 is fixedly connected to the top of the base 301. The sliding guide roller 106 is located directly above the water-cooled shaping groove 302, and a wire groove 103 is provided on the guide wheel 303.
[0029] An air guide mechanism 4 is provided inside the wire taking-up mechanism 1, and the air guide mechanism 4 is located inside the wire guiding mechanism 2. The air guide mechanism 4 includes a first air bag 401, an air guide groove 402 is provided inside the wire taking-up frame 101, and an air guide tube 403 is provided inside the two second slide grooves 205. The two connecting plates 201 are fixedly connected to a limiting plate 404 on the sides away from each other, and the side of the limiting plate 404 is fixedly connected to the second air bag 405, and the side of the second air bag 405 away from the limiting plate 404 is fixedly connected to a rack 406.
[0030] The first airbag 401 is fixedly connected to the inner wall of the first slide groove 104, and the first airbag 401 is located on the side of the sliding frame 105 away from the elastic member 107, and the side of the first airbag 401 close to the sliding frame 105 is fixedly connected to the side of the sliding frame 105, the interior of the first airbag 401 is connected to the interior of the two air guide tubes 403 through the air guide groove 402, and one end of the air guide tube 403 away from the air guide groove 402 is fixedly connected to the side of the limiting plate 404 away from the second airbag 405, the interior of the air guide tube 403 passes through the limiting plate 404 and communicates with the interior of the second airbag 405, and the two racks 406 are respectively slidably connected to the side of the two connecting plates 201 away from each other, and the two racks 406 are respectively located on the side of the two gears 204 away from each other, and the side of the rack 406 close to the gear 204 is meshed with the gear 204, and the limiting plate 404 and the rack 406 are both directly slidably connected to the inner wall of the second slide groove 205.
[0031] The above solution is adopted: by providing the coordination of structures such as the rack 406 and the gear 204, it is convenient to apply pressure to the broken wire ends. During the combing process of the wire plate, the sliding frame 105 will compress the first airbag 401, so that the gas inside it enters the second airbag 405 through the air guide groove 402 and the air guide tube 403, causing it to expand and push the rack 406, so that the gear 204 engaged with it drives the two rotating plates 203 to rotate toward each other, applying pressure to the broken wire, causing it to move closer between the two rotating plates 203, cooperating with the combing of the wire plate 202, further preventing the broken wire ends from flying around, forming a more stable wire combing structure, and improving the stability and reliability of the system.
[0032] The working principle and use process of the present invention are as follows: first, the wire that has been water-cooled and shaped in the water-cooled shaping groove 302 is reciprocated and wound around the wire groove 103 and the sliding guide roller 106 through the guide wheel 303, so that it passes through the wire groove 103, the sliding guide roller 106 and the wire groove 103 on the wire plate 202. During the winding process, the wire is tightened, and the sliding guide roller 106 is driven by stress to move toward the fixed guide roller 102, squeezing the elastic member 107 and pulling the first airbag 401, so that the connecting plate 201 slides inside the second slide groove 205. The air guide tube 403 is dynamically contracted, and at the same time, the first air bag 401 is expanded and the gas in the second air bag 405 is sucked away through the air guide groove 402 and the air guide tube 403, driving the rack 406 to move toward the limit plate 404, thereby driving the gear 204 engaged therewith to drive the two rotating plates 203 to rotate away from each other. Finally, the wound wire is connected to the external take-up roller, and the take-up roller is rotated by an external power source to take up the wire. At this time, the tension of the wire is balanced with the elastic force position of the elastic member 107, and the wire runs stably. When a wire break occurs, the tension between the fixed guide roller 102 and the sliding guide roller 106 decreases. At this time, the sliding guide roller 106 moves away from the fixed guide roller 102 under the elastic force of the elastic member 107, so that the wire still maintains a certain tension, providing technicians with time for repairs. At the same time, during the movement of the sliding guide roller 106, the wire guide plate 202 will also be driven to move through the connecting plate 201, so that the wire between the fixed guide roller 102 and the sliding guide roller 106 can be combed through the wire groove 103 to constrain and guide the wire. During the combing process of the wire guide plate 202, the sliding frame 105 will compress the first airbag 401, so that the gas inside it enters the second airbag 405 through the air guide groove 402 and the air guide tube 403, causing it to expand and push the rack 406, so that the gear 204 engaged with it drives the two rotating plates 203 to rotate in a direction close to each other, exerting pressure on the broken wire, causing it to move closer between the two rotating plates 203, cooperating with the combing of the wire guide plate 202.
[0033] The examples of this specific embodiment are all preferred embodiments of this application and are not intended to limit the scope of protection of this application. Identical components are represented by the same reference numerals. Therefore, any equivalent changes made based on the structure, shape, and principle of this application should be included in the scope of protection of this application.
Claims
1. An automatic wire-winding device, comprising a main body mechanism (3), characterized in that: Also includes: A wire take-up mechanism (1), the wire take-up mechanism (1) being located above the main body mechanism (3); The wire-taking mechanism (1) comprises a wire-taking frame (101), a fixed guide roller (102), a wire groove (103), a first slide groove (104), a sliding frame (105), a sliding guide roller (106), an elastic member (107), a guide rod (108) and a slide hole (109). The side of the wire-taking frame (101) is rotatably connected to the fixed guide roller (102). The fixed guide roller (102) is evenly provided with a plurality of wire grooves (103). The wire-taking frame (1 01) A first slide groove (104) is provided on a side close to the fixed guide roller (102), the interior of the first slide groove (104) is slidably connected to a sliding frame (105), the side of the sliding frame (105) is rotatably connected to a sliding guide roller (106), an elastic member (107) is provided inside the first slide groove (104), a guide rod (108) is fixedly connected inside the first slide groove (104), and a sliding hole (109) is provided on the sliding frame (105).
2. The automatic wire take-up device according to claim 1, characterized in that: The size of the fixed guide roller (102) is adapted to the size of the sliding guide roller (106), the size of the sliding frame (105) is adapted to the size of the first slide groove (104), the size of the sliding hole (109) is adapted to the size of the guide rod (108), the guide rod (108) passes through the sliding hole (109), the guide rod (108) is located inside the elastic member (107), a plurality of wire grooves (103) are evenly opened on the sliding guide roller (106), the sliding frame (105) is slidably connected to the guide rod (108) through the sliding hole (109), the sliding guide roller (106) passes through the inner wall of the first slide groove (104) and extends to the side of the take-up frame (101) close to the fixed guide roller (102), and the side of the sliding frame (105) close to the fixed guide roller (102) is elastically connected to the inner wall of the first slide groove (104) through the elastic member (107).
3. The automatic wire take-up device according to claim 1, characterized in that: A wire guide mechanism (2) is provided inside the wire take-up mechanism (1), and the wire guide mechanism (2) includes two connecting plates (201), the sides of the two connecting plates (201) are fixedly connected to a wire guide plate (202), the wire guide plate (202) is rotatably connected to a rotating plate (203), and the side of the rotating plate (203) is fixedly connected to a gear (204), and two second sliding grooves (205) are provided inside the wire take-up frame (101).
4. The automatic wire take-up device according to claim 3, characterized in that: The connecting plate (201) has an L-shaped appearance. The upper and lower ends of the sliding frame (105) are fixedly connected to the two connecting plates (201) respectively. The wire plate (202) is located between the sliding guide roller (106) and the fixed guide roller (102). The rotating plate (203) is located on the side of the wire plate (202) close to the sliding guide roller (106). The gear (204) is located between the connecting plate (201) and the wire plate (202). The size of the gear (204) is larger than the size of the rotating shaft on the rotating plate (203). The two rotating plates (203) are respectively rotated 90 degrees in a direction away from each other on the two wire plates (202).
5. The automatic wire take-up device according to claim 3, characterized in that: The wire plate (202) passes through the inner wall of the second slide groove (205) and extends to the side of the wire take-up frame (101). A plurality of wire grooves (103) are evenly opened on the side where the two wire plates (202) are close to each other. The second slide groove (205) is connected to the first slide groove (104), and the connecting plate (201) is slidably connected to the second slide groove (205).
6. The automatic wire take-up device according to claim 3, characterized in that: The main body mechanism (3) comprises a base (301), a water-cooling shaping groove (302) is provided on the top of the base (301), and a guide wheel (303) is rotatably connected to the top of the base (301).
7. The automatic wire take-up device according to claim 6, characterized in that: The guide wheel (303) is located on the side of the water-cooled shaping groove (302), the guide wheel (303) is located below the fixed guide roller (102), the bottom of the take-up frame (101) is fixedly connected to the top of the base (301), the sliding guide roller (106) is located directly above the water-cooled shaping groove (302), and a wire groove (103) is provided on the guide wheel (303).
8. The automatic wire take-up device according to claim 6, characterized in that: An air guide mechanism (4) is provided inside the wire take-up mechanism (1), and the air guide mechanism (4) is located inside the wire guide mechanism (2). The air guide mechanism (4) includes a first air bag (401), an air guide groove (402) is provided inside the wire take-up frame (101), and air guide tubes (403) are provided inside the two second slide grooves (205). The two connecting plates (201) are fixedly connected to a limiting plate (404) on the side away from each other, and the side of the limiting plate (404) is fixedly connected to the second air bag (405), and the side of the second air bag (405) away from the limiting plate (404) is fixedly connected to a rack (406).
9. The automatic wire take-up device according to claim 8, characterized in that: The first airbag (401) is fixedly connected to the inner wall of the first slide groove (104), the first airbag (401) is located on the side of the sliding frame (105) away from the elastic member (107), the side of the first airbag (401) close to the sliding frame (105) is fixedly connected to the side of the sliding frame (105), the interior of the first airbag (401) is communicated with the interiors of the two air guide tubes (403) through the air guide groove (402), and one end of the air guide tube (403) away from the air guide groove (402) is fixedly connected to the side of the limiting plate (404) away from the second airbag (405).
10. The automatic wire take-up device according to claim 8, characterized in that: The interior of the air guide tube (403) passes through the limiting plate (404) and communicates with the interior of the second airbag (405). The two racks (406) are respectively slidably connected to the sides of the two connecting plates (201) that are away from each other. The two racks (406) are respectively located on the sides of the two gears (204) that are away from each other. The side of the rack (406) close to the gear (204) is engaged with the gear (204). The limiting plate (404) and the rack (406) are both directly slidably connected to the inner wall of the second slide groove (205).