Continuous rolling efficient all-in-one machine for copper strip production
By integrating copper strip production equipment and automating the adjustment of roll spacing and protective gas annealing, the problems of dispersed equipment, low efficiency, and oxidation in traditional copper strip production have been solved, realizing an efficient and continuous copper strip production process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-01-20
- Publication Date
- 2026-04-14
Smart Images

Figure CN121847592A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of copper strip production technology, and in particular to a high-efficiency integrated machine for continuous rolling of copper strip. Background Technology
[0002] Copper strip is a non-ferrous metal processed product with excellent electrical and thermal conductivity and good ductility. As a key basic material in high-end manufacturing fields such as electronics, power and electrical engineering, precision machinery, and automobile manufacturing, its thickness accuracy, surface quality, and mechanical properties directly affect the reliability and performance of end products. During the production process, copper strip undergoes multiple processes such as rolling thinning, annealing softening, and cooling shaping to meet the stringent requirements of different application scenarios regarding material thickness, hardness, and surface finish.
[0003] In traditional copper strip production, rolling, annealing, cooling, and coiling processes mostly rely on independent equipment. These machines need to be connected manually or via simple conveyor devices, resulting in a fragmented production process and a large footprint. In the rolling stage, the adjustment of the roll spacing mostly relies on manual operation, making it difficult to adapt to the rapid switching of copper strips of different thicknesses. During annealing, air can easily get into the heating environment, causing oxidation on the surface of the copper strip. Therefore, this invention proposes a high-efficiency integrated continuous rolling machine for copper strip production to solve the above problems. Summary of the Invention
[0004] In view of the shortcomings of the existing technology, the purpose of this invention is to provide a high-efficiency integrated machine for continuous rolling of copper strip.
[0005] To achieve the above objectives, the present invention provides a high-efficiency integrated continuous rolling mill for copper strip production, comprising a base plate. A winding mechanism for outputting copper wire is fixedly disposed on one side of the top of the base plate. A rolling mechanism for rolling copper wire is disposed on one side of the winding mechanism. An annealing mechanism for annealing copper wire is disposed on one side of the rolling mechanism. A cooling mechanism for cooling copper wire is disposed on one side of the annealing mechanism. A rear guide mechanism for guiding copper wire is disposed on one side of the cooling mechanism. A winding mechanism for winding copper wire is disposed on one side of the rear guide mechanism. The rolling mechanism, annealing mechanism, cooling mechanism, rear guide mechanism, and winding mechanism are all fixedly disposed on the base plate. The winding mechanism, annealing mechanism, cooling mechanism, rear guide mechanism, and winding mechanism are arranged sequentially in the horizontal direction of the base plate, and the copper wire passes through them sequentially.
[0006] Furthermore, the winding mechanism includes a winding shaft, with mounting discs fixedly installed at both ends of the winding shaft. The outer wall of the mounting disc is provided with a threaded groove, and a locking block is threadedly installed in the threaded groove. The locking block is movably sleeved on a sleeve, and the sleeve is fixedly installed in a positioning sleeve. A positioning screw is provided at the top of the sleeve, and a screw hole is provided at the top of the locking block. The locking block is fixed by being screwed into the screw hole by the positioning screw.
[0007] Furthermore, a support block is fixedly provided at the bottom of the positioning sleeve, and support rods are fixedly provided on both sides of the bottom of the support block. The support rods are inclined at an angle and the two support rods are symmetrically arranged. The support rods are fixedly provided on the base plate.
[0008] Furthermore, the winding mechanism consists of a conveying mechanism and a winding motor. The winding motor drives the winding shaft in the conveying mechanism to rotate through an output shaft, and the output shaft is fixedly connected to its adjacent locking block.
[0009] Furthermore, the rolling mechanism includes two vertical plates, both of which are fixedly mounted on a base plate. A horizontal plate is fixedly mounted between the two vertical plates, located at the upper end of the vertical plates. A vertical groove is longitudinally formed on the side wall of each vertical plate, and two sliders are slidably engaged within the groove. A rolling roller is rotatably mounted between the two horizontally mounted sliders. A collar is fixedly mounted on the outer wall of each slider, and a rotating rod is rotatably mounted within the collar. One end of the rotating rod is fixedly connected to the rolling roller, and the other end is fixedly connected to a drive motor.
[0010] Furthermore, threaded rods are threaded onto the two vertically arranged sliders. The threads at the upper and lower ends of the threaded rods are in opposite directions. The bottom end of the threaded rod is rotatably disposed at the bottom of the vertical groove. The top end of the threaded rod is fixedly connected to a rotating motor, which is fixedly disposed inside a motor box. The motor box is fixedly disposed on a vertical plate, and a heat dissipation hole is provided on the top of the motor box.
[0011] Furthermore, the annealing mechanism includes a heating frame, which is fixedly mounted on a base plate. Several heating plates are fixedly mounted at the bottom of the heating frame. Threading holes are provided on the front and rear sides of the heating frame and the side walls of the heating plates. Thread loops are fixedly mounted in the threading holes, and the inner walls of the thread loops are smooth.
[0012] Furthermore, a placement frame is fixedly installed on both sides of the top of the heating frame. An electric storage tank for storing protective gas is placed inside the placement frame, and the electric storage tank is fixedly connected to an air inlet pipe. The air inlet pipe is connected to multiple branch pipes, and the branch pipes are fixedly installed on the inner wall of the heating frame.
[0013] Furthermore, the cooling mechanism includes a cooling pipe, with copper wires passing through it. The cooling pipe is fixed to the base plate by a support. Several cold air pipes are uniformly and fixedly installed through the side wall of the cooling pipe, and a cooler is fixedly installed at the end of the cold air pipe away from the cooling pipe.
[0014] Furthermore, the rear guide mechanism includes two vertical blocks, and a rotating rod is rotatably arranged between the two vertical blocks. Two limiting discs are symmetrically fixedly sleeved at the middle end of the rotating rod. A front guide mechanism is arranged between the winding mechanism and the rolling mechanism. The front guide mechanism includes an inverted U-shaped rod. A connecting plate is fixedly arranged on the inner wall of the upper end of the inverted U-shaped rod, and a guide ring is fixedly arranged at the bottom of the connecting plate.
[0015] Compared with the prior art, the beneficial effects of the present invention are:
[0016] 1. This invention integrates the feeding mechanism, rolling mechanism, annealing mechanism, cooling mechanism, guiding mechanism, and winding mechanism onto the same base plate. Each mechanism is arranged sequentially along the horizontal direction. The copper wire can continuously pass through the entire process of "release-rolling-annealing-cooling-guiding-winding" without the need for manual transfer or waiting for process connections. This significantly shortens the production cycle and improves the overall production efficiency. At the same time, all functional mechanisms are fixed on the same base plate, replacing multiple traditional scattered and independent equipment, which significantly reduces the overall equipment footprint, saves workshop space, and reduces production site costs.
[0017] 2. The roll mechanism of the present invention uses a longitudinal slider and a threaded rod to cooperate, and the threaded rod is driven to rotate by a rotating motor to realize the synchronous reverse movement of the longitudinal slider, which can quickly adjust the roll spacing. Compared with the traditional manual adjustment method, it is more convenient to operate and can quickly adapt to the rolling requirements of copper strips of different thicknesses.
[0018] 3. In the annealing mechanism of the present invention, the electric storage tank placed in the top of the heating frame introduces protective gas into the heating area through the air inlet pipe and the branch pipe, which isolates the air from contact with the high-temperature copper wire and effectively avoids the problem of copper strip surface oxidation caused by air mixing in the traditional annealing process.
[0019] 4. The guide ring of the front guide mechanism and the limiting plate of the rear guide mechanism of the present invention respectively constrain the path of the copper wire before and after rolling, so as to avoid the copper wire from deviating and ensure the accuracy of the processing path.
[0020] 5. In the cooling mechanism of the present invention, the cooling pipe is connected to the refrigerator through multiple sets of cold air pipes, and exchanges heat with the copper wire, which can quickly cool and shape the high-temperature copper wire after annealing.
[0021] 6. The winding mechanism of this invention is driven directly by a winding motor through an output shaft to rotate the winding shaft, thereby realizing the automatic winding of the processed copper strip, replacing the traditional manual winding method, reducing labor costs, and avoiding the problem of uneven winding tension caused by manual operation, thus improving the winding quality. Attached Figure Description
[0022] To more clearly illustrate the solutions in this invention, the accompanying drawings used in the description of the embodiments of this invention will be briefly introduced below. Obviously, the drawings described below are some embodiments of this invention. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0023] Figure 1 This is the front perspective perspective view provided by the present invention;
[0024] Figure 2 This is the right-side stereoscopic view provided by the present invention;
[0025] Figure 3 This is the left-view stereoscopic view provided by the present invention;
[0026] Figure 4 This is a top-view perspective view provided by the present invention;
[0027] Figure 5 This is a bottom-view perspective view provided by the present invention;
[0028] Figure 6 This is the front view provided by the present invention;
[0029] Figure 7 This is a bottom view provided by the present invention;
[0030] Figure 8 This is a top view provided by the present invention;
[0031] Figure 9 This is a perspective view of the winding mechanism provided by the present invention;
[0032] Figure 10 This is an enlarged schematic diagram of part A provided by the present invention;
[0033] Figure 11 This is an enlarged schematic diagram of part B provided by the present invention;
[0034] Explanation of reference numerals in the attached figures:
[0035] 1. Base plate; 2. Winding mechanism; 3. Winding conveyor mechanism; 4. Front guide mechanism; 5. Roller mechanism; 6. Annealing mechanism; 7. Cooling mechanism; 8. Rear guide mechanism; 9. Horizontal plate; 10. Vertical groove; 11. Roller; 12. Threaded rod; 13. Slider; 14. Collar; 15. Rotating rod; 16. Heating frame; 17. Branch pipe; 18. Placement frame; 19. Heating plate; 20. Air inlet pipe; 21. Wire threading hole; 22. Wire lap ring; 23. 24. Cooling pipe; 25. Air duct; 26. Refrigerator; 27. Support; 28. Vertical block; 29. Limiting plate; 30. Rotating rod; 31. Rewinding motor; 32. Output shaft; 33. Mounting plate; 34. Reel; 35. Positioning sleeve; 36. Clamping block; 37. Sleeve; 38. Threaded groove; 39. Supporting block; 40. Vertical plate; 41. U-shaped rod; 42. Connecting plate; 43. Guide ring; 44. Heat dissipation hole; 45. Motor box. Detailed Implementation
[0036] The preferred embodiments of the present invention will now be described in detail with reference to the accompanying drawings, so that the advantages and features of the present invention can be more easily understood by those skilled in the art, thereby providing a clearer and more explicit definition of the scope of protection of the present invention. Obviously, the described embodiments are merely some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0037] The terms "comprising" and "having," and any variations thereof, used in the specification, claims, and accompanying drawings of this invention are intended to cover non-exclusive inclusion. The terms "first," "second," etc., used in the specification, claims, and accompanying drawings of this invention are used to distinguish different objects, not to describe a particular order.
[0038] Please see Figure 1-11A high-efficiency integrated continuous rolling mill for copper strip production includes a base plate 1. A coiling mechanism 3 for outputting copper wire is fixedly mounted on one side of the top of the base plate 1. A rolling mechanism 5 for rolling the copper wire is mounted on one side of the coiling mechanism 3. An annealing mechanism 6 for annealing the copper wire is mounted on one side of the rolling mechanism 5. A cooling mechanism 7 for cooling the copper wire is mounted on one side of the annealing mechanism 6. A rear guide mechanism 8 for guiding the copper wire is mounted on one side of the cooling mechanism 7. A winding mechanism 2 for winding the copper wire is mounted on one side of the rear guide mechanism 8. The rolling mechanism 5, annealing mechanism 6, cooling mechanism 7, rear guide mechanism 8, and winding mechanism 2 are all fixedly mounted on the base plate 1. The coiling mechanism 3, rolling mechanism 5, annealing mechanism 6, cooling mechanism 7, and rear guide mechanism 8 are all fixedly mounted on the base plate 1. The feeding mechanism 8 and the winding mechanism 2 are arranged sequentially in the horizontal direction of the base plate 1, and the copper wire passes through them sequentially. The winding mechanism 3 includes a shaft 33, with mounting discs 32 fixedly installed at both ends of the shaft 33. The outer wall of the mounting disc 32 has a threaded groove 37, and a locking block 35 is threadedly installed in the threaded groove 37. The locking block 35 is movably sleeved on the sleeve 36, and the sleeve 36 is fixedly installed in the positioning sleeve 34. A positioning screw is provided at the top of the sleeve 36, and a screw hole is provided at the top of the locking block 35. The locking block 35 is fixedly screwed into the screw hole by the positioning screw. A support block 38 is fixedly installed at the bottom of the positioning sleeve 34, and support rods 39 are fixedly installed on both sides of the bottom of the support block 38. The support rods 39 are inclined at an angle, and the two support rods are... The support rods 39 are symmetrically arranged and fixedly mounted on the base plate 1. The positioning sleeve 34 is connected to the inclined and symmetrical support rods 39 through the support block 38. The support rods 39 are fixed to the base plate 1 to form a stable support structure, preventing the conveying mechanism 3 from shifting due to vibration during operation. The winding shaft 33 is used to wind the copper wire raw material. The mounting plate 32 is threadedly connected to the locking block 35 through the threaded groove 37. The locking block 35 is fixed to the sleeve 36 by the positioning screw, realizing the stable installation of the winding shaft 33 and ensuring that the winding shaft 33 rotates smoothly during the release of the copper wire. The winding mechanism 2 consists of the conveying mechanism 3 and the winding motor 30. The winding motor 30 drives the winding shaft 33 in the conveying mechanism 3 to rotate through the output shaft 31. The output shaft 31 is fixedly connected to its adjacent locking block 35. The winding motor 30 provides power and drives the clamping block 35 and the winding shaft 33 to rotate through the output shaft 31. The winding shaft 33 is used to wind and wind the processed copper strip to realize the end-of-line material collection of continuous production. The rear guide mechanism 8 includes vertical blocks 27. There are two vertical blocks 27. A rotating rod 29 is rotatably arranged between the two vertical blocks 27. Two limiting discs 28 are symmetrically fixed at the middle end of the rotating rod 29. A front guide mechanism 4 is arranged between the winding mechanism 3 and the rolling mechanism 5. The front guide mechanism 4 includes an inverted U-shaped rod 41. A connecting plate 42 is fixedly arranged on the inner wall of the upper end of the inverted U-shaped rod 41. A guide ring 43 is fixedly arranged at the bottom of the connecting plate 42. In the rear guide mechanism 8, the rotating rod 29 rotates between the vertical blocks 27. The limiting discs 28 restrict the lateral displacement of the copper strip.In the front guiding mechanism 4, the copper wire passes through the guide ring 43. The inverted U-shaped rod 41 and the connecting plate 42 fix the position of the guide ring 43, and together they ensure that the copper wire does not deviate in the processing path. The base plate 1 provides the mounting foundation for each mechanism. The winding mechanism 3 releases the copper wire, which is then rolled by the rolling mill mechanism 5, annealed by the annealing mechanism 6, cooled by the cooling mechanism 7, guided by the rear guiding mechanism 8, and finally wound up by the winding mechanism 2, realizing a continuous copper strip production process.
[0039] As an improvement to the above technical solution, the rolling mechanism 5 includes two vertical plates 40, both of which are fixedly mounted on the base plate 1. A horizontal plate 9 is fixedly mounted between the two vertical plates 40, located at the upper end of the vertical plates 40. A vertical groove 10 is longitudinally formed on the side wall of the vertical plate 40, and two sliders 13 are slidably engaged within the groove 10. A rolling roller 11 is rotatably mounted between the two horizontally mounted sliders 13. A collar 14 is fixedly mounted on the outer wall of each slider 13, and a rotating rod 15 is rotatably mounted within the collar 14. One end of the rotating rod 15 is fixedly connected to the rolling roller 11, and the other end is fixedly connected to a drive motor. Threaded rods 12 are threaded onto the two longitudinally mounted sliders 13. The threads at the upper and lower ends of the threaded rod 12 are in opposite directions. The bottom end of the threaded rod 12 is rotatably set at the bottom of the vertical groove 10. The top end of the threaded rod 12 is fixedly connected to the rotating motor, which is fixedly set inside the motor box 45. The motor box 45 is fixedly set on the vertical plate 40. The top of the motor box 45 is provided with a heat dissipation hole 44. The drive motor drives the rolling roller 11 to rotate through the rotating rod 15 to roll the copper wire. The rotating motor drives the threaded rod 12 to rotate. Because the threads at the upper and lower ends of the threaded rod 12 are in opposite directions, the longitudinal slider 13 moves synchronously in the opposite direction along the vertical groove 10 to adjust the spacing of the rolling roller 11 to meet the rolling requirements of copper strips of different thicknesses. The motor box 45 protects the rotating motor, and the heat dissipation hole 44 dissipates heat to prevent the motor from overheating.
[0040] As an improvement to the above technical solution, the annealing mechanism 6 includes a heating frame 16, which is fixedly mounted on the base plate 1. Several heating plates 19 are fixedly mounted at the bottom of the heating frame 16. Wire-passing holes 21 are provided on the front and rear sides of the heating frame 16 and the side walls of the heating plates 19. Wire-connecting rings 22 are fixedly mounted in the wire-passing holes 21. The inner walls of the wire-connecting rings 22 are smooth. Placement frames 18 are fixedly mounted on the top two sides of the heating frame 16. An electric storage tank for storing protective gas is placed in the placement frame 18. The electric storage tank is fixedly connected to an air inlet pipe 20. The air inlet pipe 20 is connected to multiple branch pipes 17. The branch pipes 17 are fixedly mounted on the inner wall of the heating frame 16. The heating plates 19 are energized and heated. Copper wires pass through the wire-passing holes 21 into the heating frame 16. The inner walls of the wire-connecting rings 22 are smooth to avoid scratching the copper wires. The protective gas in the electric storage tank is introduced into the heating frame 16 through the air inlet pipe 20 and the branch pipes 17 to isolate the copper wires from the air and prevent oxidation during annealing.
[0041] As an improvement to the above technical solution, the cooling mechanism 7 includes a cooling pipe 23, in which copper wire is fed and passed through the cooling pipe 23. The cooling pipe 23 is fixed to the base plate 1 by a support 26. Several cold air pipes 24 are uniformly and fixedly arranged through the side wall of the cooling pipe 23. A cooler 25 is fixedly arranged at the end of the cold air pipe 24 away from the cooling pipe 23. The annealed high-temperature copper wire is passed through the cooling pipe 23. The cooler 25 generates cold air, which is introduced into the cooling pipe 23 through the cold air pipes 24 to exchange heat with the copper wire and quickly reduce the temperature of the copper wire to achieve shaping.
[0042] Working principle and usage of this invention:
[0043] In use, the winding mechanism 3 serves as the starting end, releasing copper wire raw material through the winding shaft 33. The mounting discs 32 at both ends of the winding shaft 33 are threadedly connected to the locking blocks 35 via threaded grooves 37. The locking blocks 35 are movably fitted onto the sleeve 36, which is fixed inside the positioning sleeve 34. The locking screw is then screwed into the screw hole of the locking block 35 for fixation, ensuring stable rotation of the winding shaft 33. The support block 38 at the bottom of the positioning sleeve 34 and the symmetrically inclined support rods 39 fix the entire mechanism to the base plate 1, ensuring stability during the release process. The released copper wire is guided by the front guide mechanism 4. A guide ring 43 is located at the bottom of the connecting plate 42 at the upper end of the inverted U-shaped rod 41. After passing through the guide ring 43, the copper wire enters the rolling mechanism 5, ensuring a precise and unbiased copper wire path. The rolling mechanism 5 is the rolling unit. The copper wire is thinned and shaped by the rollers 11. The two vertical plates 40 are fixed on the base plate 1. The sliders 13 are slidably locked in the vertical grooves 10 opened longitudinally on the side walls. The rollers 11 are rotatably set between the two horizontally opposite sliders 13. The rotating rod 15 passes through the collar 14 on the outer wall of the slider 13. One end of the rotating rod 15 is connected to the roller 11, and the other end is connected to the drive motor. The drive motor drives the rotating rod 15 and the roller 11 to rotate, realizing the rolling action. The two longitudinally distributed sliders 13 are threaded on the threaded rod 12. The threads at the upper and lower ends of the threaded rod 12 are opposite in direction. The top end of the threaded rod 12 is connected to the rotating motor. When the rotating motor drives the threaded rod 12 to rotate, the longitudinal sliders 13 move synchronously in the opposite direction along the vertical grooves 10, adjusting the gap of the rollers 11 to meet the rolling requirements of copper strips of different thicknesses.The heat dissipation holes 44 on the top of the motor box 45 are used for heat dissipation to ensure stable operation of the motor. The rolled copper wire enters the annealing mechanism 6 for softening treatment. The heating plate 19 at the bottom of the heating frame 16 is energized and heats up. The copper wire passes through the wire-passing holes 21 on the front and rear sides of the heating frame 16 and the side wall of the heating plate 19 to pass through the heating area. The inner wall of the wire-passing ring 22 in the wire-passing hole 21 is smooth to avoid scratching the surface of the copper wire. The electric storage tank in the frame 18 placed on the top of the heating frame 16 stores protective gas such as nitrogen. The protective gas is introduced into the heating frame 16 through the air inlet pipe 20 and multiple branch pipes 17 to isolate the air and prevent oxidation of the copper wire during the annealing process. The high-temperature copper wire after annealing enters the cooling mechanism 7 for rapid cooling and shaping. The copper wire is passed through the cooling pipe 23. The cooling pipe 23 is fixed to the base plate 1 by the support block 26. The cold air pipes 24 evenly distributed on the side wall of the cooling pipe 23 are connected to the cooler 25. Next, the cold air generated by the cooler 25 is introduced into the cooling pipe 23 through the cold air pipe 24, where it exchanges heat with the copper wire to achieve rapid cooling. After cooling, the copper wire is guided by the rear guide mechanism 8 and enters the winding stage. A rotating rod 29 is rotatably set between the two vertical blocks 27 of the rear guide mechanism 8. The limiting plate 28, which is symmetrically fixed at the middle of the rotating rod 29, restricts the lateral deviation of the copper wire and ensures that the copper wire enters the winding mechanism 2 smoothly. The winding mechanism 2 consists of the basic structure of the winding mechanism 3 and the winding motor 30. The winding motor 30 drives the winding shaft 33 to rotate through the output shaft 31, winding the cooled and shaped copper strip into a coil to complete the entire production process. Each mechanism works in sequence along the horizontal direction of the base plate 1. Through the continuous process of "release-guide-rolling-annealing-cooling-guide-winding", the copper strip is produced efficiently, solving the problems of dispersed processes, low efficiency, and easy oxidation of traditional equipment.
[0044] The above description is only used to illustrate the technical solutions of the present invention, and is not intended to limit them. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Any equivalent structural or procedural transformations made using the content of the present invention specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the scope of patent protection of the present invention.
Claims
1. A high-efficiency integrated continuous rolling mill for copper strip production, characterized in that: The system includes a base plate (1). A winding mechanism (3) for outputting copper wire is fixedly installed on one side of the top of the base plate (1). A rolling mechanism (5) for rolling copper wire is installed on one side of the winding mechanism (3). An annealing mechanism (6) for annealing copper wire is installed on one side of the rolling mechanism (5). A cooling mechanism (7) for cooling copper wire is installed on one side of the annealing mechanism (6). A rear guide mechanism (8) for guiding copper wire is installed on one side of the cooling mechanism (7). A winding mechanism (2) for winding copper wire is installed on one side of the rear guide mechanism (8). The rolling mechanism (5), annealing mechanism (6), cooling mechanism (7), rear guide mechanism (8) and winding mechanism (2) are all fixedly installed on the base plate (1). The winding mechanism (3), rolling mechanism (5), annealing mechanism (6), cooling mechanism (7), rear guide mechanism (8) and winding mechanism (2) are arranged sequentially in the horizontal direction of the base plate (1), and the copper wire passes through them sequentially.
2. The high-efficiency integrated continuous rolling mill for copper strip production according to claim 1, characterized in that: The winding mechanism (3) includes a winding shaft (33), with mounting discs (32) fixedly installed at both ends of the winding shaft (33). The outer wall of the mounting disc (32) is provided with a threaded groove (37), and a locking block (35) is threadedly installed in the threaded groove (37). The locking block (35) is movably sleeved on the sleeve (36), and the sleeve (36) is fixedly installed in the positioning sleeve (34). A positioning screw is provided at the top of the sleeve (36), and a screw hole is provided at the top of the locking block (35). The locking block (35) is fixed by screwing into the screw hole through the positioning screw.
3. The high-efficiency integrated continuous rolling mill for copper strip production according to claim 2, characterized in that: The bottom of the positioning sleeve (34) is fixedly provided with a support block (38), and support rods (39) are fixedly provided on both sides of the bottom of the support block (38). The support rods (39) are inclined at an angle and the two support rods (39) are symmetrically arranged. The support rods (39) are fixedly provided on the base plate (1).
4. The high-efficiency integrated continuous rolling mill for copper strip production according to claim 3, characterized in that: The winding mechanism (2) consists of a winding mechanism (3) and a winding motor (30). The winding motor (30) drives the winding shaft (33) in the winding mechanism (3) to rotate through the output shaft (31). The output shaft (31) is fixedly connected to its adjacent locking block (35).
5. The high-efficiency integrated continuous rolling mill for copper strip production according to claim 4, characterized in that: The rolling mechanism (5) includes two vertical plates (40), both of which are fixedly mounted on the base plate (1). A horizontal plate (9) is fixedly mounted between the two vertical plates (40). The horizontal plate (9) is located at the upper end of the vertical plate (40). A vertical groove (10) is longitudinally opened on the side wall of the vertical plate (40). Two sliders (13) are slidably mounted in the vertical groove (10). A rolling roller (11) is rotatably mounted between the two horizontally mounted sliders (13). A collar (14) is fixedly mounted on the outer wall of the slider (13). A rotating rod (15) is rotatably mounted inside the collar (14). One end of the rotating rod (15) is fixedly connected to the rolling roller (11), and the other end of the rotating rod (15) is fixedly connected to the drive motor.
6. The high-efficiency integrated continuous rolling mill for copper strip production according to claim 5, characterized in that: Two vertically arranged sliders (13) are threaded with threaded rods (12). The threads at the upper and lower ends of the threaded rods (12) are opposite in direction. The bottom end of the threaded rods (12) is rotatably set at the bottom of the vertical groove (10). The top end of the threaded rods (12) is fixedly connected to a rotating motor, and the rotating motor is fixedly set in a motor box (45). The motor box (45) is fixedly set on a vertical plate (40). A heat dissipation hole (44) is opened on the top of the motor box (45).
7. The high-efficiency integrated continuous rolling mill for copper strip production according to claim 6, characterized in that: The annealing mechanism (6) includes a heating frame (16), which is fixedly mounted on the base plate (1). Several heating plates (19) are fixedly mounted at the bottom of the heating frame (16). Threading holes (21) are provided on the front and rear sides of the heating frame (16) and the side walls of the heating plates (19). Thread loops (22) are fixedly mounted in the threading holes (21). The inner walls of the thread loops (22) are smooth.
8. The high-efficiency integrated continuous rolling mill for copper strip production according to claim 7, characterized in that: The heating frame (16) has a placement frame (18) fixedly installed on both sides of the top. An electric storage tank for storing protective gas is placed in the placement frame (18), and the electric storage tank is fixedly connected to an air inlet pipe (20). The air inlet pipe (20) is connected to multiple branch pipes (17), and the branch pipes (17) are fixedly installed on the inner wall of the heating frame (16).
9. A high-efficiency integrated continuous rolling mill for copper strip production according to claim 8, characterized in that: The cooling mechanism (7) includes a cooling pipe (23), copper wires are fed through the cooling pipe (23), the cooling pipe (23) is fixed on the base plate (1) by a support (26), and a number of cold air pipes (24) are uniformly and fixedly installed through the side wall of the cooling pipe (23). A cooler (25) is fixedly installed at the end of the cold air pipe (24) away from the cooling pipe (23).
10. A high-efficiency integrated continuous rolling mill for copper strip production according to claim 9, characterized in that: The rear guide mechanism (8) includes two vertical blocks (27), and a rotating rod (29) is rotatably arranged between the two vertical blocks (27). Two limiting discs (28) are symmetrically fixedly sleeved at the middle end of the rotating rod (29). A front guide mechanism (4) is arranged between the winding mechanism (3) and the rolling mechanism (5). The front guide mechanism (4) includes an inverted U-shaped rod (41). A connecting plate (42) is fixedly arranged on the inner wall of the upper end of the inverted U-shaped rod (41). A guide ring (43) is fixedly arranged at the bottom of the connecting plate (42).