Full-automatic high-quality copper rolling mill with guide rails
The fully automatic high-quality copper rolling mill with guide rails achieves rapid workpiece fixation and positioning through the cooperation of electric guide rails and components, solving the problem of insufficient precision in traditional processing, improving processing accuracy and efficiency, enhancing equipment stability, and extending tool life.
Patent Information
- Application Number
- CN202511174375.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-21
- Publication Date
- 2025-11-14
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
Traditional guide rail processing technology cannot guarantee processing accuracy, resulting in a decline in the quality of processed parts.
The fully automatic high-quality copper rolling mill with guide rails, through the cooperation of components such as electric slide rails, moving frames, mounting plates, rotating wheels, and round wheels, achieves rapid fixation and positioning of workpieces. Combined with the use of elastic clamping and lubricating oil, it ensures the stability and precision of the processing.
It improves processing accuracy and efficiency, reduces material waste and manual intervention, extends tool life, and ensures the stability of the processing process and product quality.
Smart Images

Figure CN120940408A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of fully automatic guide rail rolling mill technology, specifically a fully automatic guide rail high-quality copper rolling mill. Background Technology
[0002] With the development of modern industry, especially in the field of precision equipment such as high-precision CNC machine tools and industrial robots, the application of linear rolling guides is becoming more and more widespread. Traditional processing technology is relatively complicated and it is difficult to guarantee the accuracy of processing.
[0003] Patent CN118403890A relates to a two-roll rolling mill for guide rail blanks, belonging to the field of two-roll rolling mill technology. It includes an operating table, with a rolling mill body fixedly mounted on the top of the operating table. A rolling mill mechanism is fixedly mounted on the output end of the rolling mill body. A fixed frame is fixedly mounted on the top of the operating table, and the rolling mill mechanism is slidably mounted on the inner wall of the fixed frame. The supporting device includes a loading box, an L-shaped sliding plate, a receiving plate, a gripping rod, a comb plate, an arc-shaped plate, and a limiting plate. The loading box is fixedly inserted through the surface of the fixed frame, and the L-shaped sliding plate slidably inserts through it. The receiving plate is fixedly installed on the inner and outer walls of the loading box at one end of the L-shaped slide plate near the mill body. The gripping rod slides through the inner and outer walls of the L-shaped slide plate. By quickly releasing the double limit on the L-shaped slide plate, it ensures that the operator can quickly adjust the position of the receiving plate after standardized operation, which helps to improve work efficiency. However, this device is prone to causing deviations in the processed parts when processing the plates, making it difficult to guarantee the accurate processing of the parts and reducing the overall quality of the parts. Therefore, a fully automatic high-quality copper rolling mill with guide rail is proposed to solve the above-mentioned problems. Summary of the Invention
[0004] The technical problem to be solved by the present invention is to provide a fully automatic high-quality copper rolling mill with guide rails, addressing the shortcomings of the prior art.
[0005] To solve the above-mentioned technical problems, the technical solution adopted by the present invention is as follows: a fully automatic high-quality copper rolling mill with guide rails, including a processing table, an electric slide rail fixedly connected to the top of the processing table, a moving frame mounted on the moving end of the electric slide rail, a mounting plate fixedly connected to the top of the moving frame, a moving plate slidably connected to the inner wall of the mounting plate, a roller mounted on the inner wall of the moving plate, a sliding block fixedly connected to the bottom of the moving plate, and a bidirectional threaded rod rotatably connected to the inner wall of the moving frame. During rolling, the bidirectional threaded rod drives the roller to clamp the copper material being processed, enabling rapid workpiece fixing and positioning, avoiding the manual operation and adjustment time of traditional manual clamping methods, thus significantly improving production efficiency and contributing to improved processing accuracy; a guide plate fixedly connected to the top of the mounting plate, a sliding frame slidably connected to the inner wall of the moving plate, rollers mounted on both sides of the sliding frame, an elastic telescopic rod fixedly connected to the side of the sliding frame near the moving plate, a pressure plate fixedly connected to the elastic telescopic end of the elastic telescopic rod, and a round wheel mounted on the inner wall of the pressure plate. A mounting platform is fixedly connected to the top of the processing table. A push plate is installed on the inner wall of the mounting platform, and a rolling device is fixedly connected to the moving end of the push plate. While the copper material is being rolled, the moving plate drives a roller to elastically press the copper material being processed, ensuring its stability during processing and thus improving processing accuracy. This achieves balanced adjustment at both ends of the guide rail, ensuring stability and efficiency during processing, resulting in better product quality. A positioning mechanism for positioning the copper material is provided on the left side of the mounting platform. The wall is equipped with a scraping mechanism for removing adhering substances from the outer surface of the workpiece; the circumferential surface of the bidirectional threaded rod is threadedly connected to the inner wall of the sliding block; the rotating wheel and the circular wheel can reduce the friction of the workpiece during operation; the circumferential surface of the pulley contacts the inner wall of the moving plate; the inner wall of the guide plate is provided with a sliding groove; the circumferential surface of the pulley contacts the sliding groove of the inner wall of the guide plate; and the pulley will move along the sliding groove of the inner wall of the guide plate; the rolling device contacts the inner wall of the mounting table; and the rolling device is used to perform a rolling process on copper materials.
[0006] Preferably, the positioning mechanism includes a rotating rod, with a connecting rod hinged to the side of the rotating rod near the rolling device. A pressure cylinder is rotatably connected to the inner wall of the rotating rod. During rolling, a push plate drives a fixed plate to position and correct the copper material during processing, ensuring the stability and consistency of the copper material during processing, thereby improving the quality of the final product. This not only improves processing accuracy and efficiency but also enhances the stability and applicability of the equipment, reducing material waste and human interference. An oil box is fixedly connected to the left side of the rolling device, with a sliding column slidably connected to the inner wall of the oil box. A connecting plate is fixedly connected to the top of the sliding column, and a baffle is fixedly connected to the bottom of the sliding column. A fixed plate is fixedly connected to the left side of the mounting platform. While the copper material is being rolled… The movement of the rolling device causes the lubricating oil on the inner wall of the oil box to drip onto the surface of the copper material through the oil outlet. This helps extend the service life of the tools, reduces direct contact between the copper material and the mold or cutting tool, thereby reducing friction and wear, and also reduces energy loss during processing, prevents tool overheating and workpiece deformation, and improves product quality. The rotating rod is hinged to the left side of the mounting table, the connecting rod is hinged to the left side of the rolling device, the pressure cylinder is used to position the workpiece before processing, the inner wall of the oil box has an oil outlet hole, and the oil outlet hole of the oil box is equipped with an oil outlet pipe. The connecting plate is fixedly connected to the top of the oil box by a spring, and the oil box moves on the movement trajectory of the fixed plate. The baffle is in contact with the inner wall of the oil box.
[0007] Preferably, the scraping mechanism includes a reciprocating lead screw, a gear one fixedly connected to the circumferential surface of the reciprocating lead screw, a scraper movably connected to the circumferential surface of the reciprocating lead screw, gear two fixedly connected to both sides of the pressing cylinder, and a limit rod fixedly connected to the inner wall of the rotating rod. When the copper material passes through the pressing cylinder into the equipment, the pressing cylinder drives the scraper to reciprocate and clean the surface of the copper material, preventing these impurities from entering the moving parts or control system of the machine tool, thereby reducing abnormal wear or malfunctions caused by impurities, ensuring the machining accuracy and surface quality of the workpiece, realizing the balance adjustment at both ends of the guide rail, and ensuring the stability during the processing; a striking rod is hinged to the left side of the scraper by a torsion spring, and a trapezoidal block is fixedly connected to the bottom of the striking rod. The top of the limiting rod is fixedly connected to an inclined block. During cleaning, the scraper drives the striking rod to strike the scraper, shaking off the residue adhering to the scraper surface. This helps reduce direct contact between the tool and the workpiece, thereby reducing wear, reducing labor costs, improving the cleaning effect of the equipment, further minimizing wear, and extending the service life of the scraper. The inner wall of the rotating rod is rotatably connected to the circumferential surface of the reciprocating screw. The circumferential surface of gear one meshes with the circumferential surface of gear two, and gear one contacts the front and rear sides of the reciprocating screw. The striking end of the striking rod contacts the top of the scraper, and the striking rod is used to strike the scraper. The trapezoidal block operates on the movement trajectory of the inclined block, and the scraper contacts the circumferential surface of the pressing cylinder.
[0008] The present invention, by adopting the above technical solution, can bring the following beneficial effects: 1. This fully automatic high-quality copper rolling mill with guide rails operates through the coordinated operation of a processing table, electric slide rail, moving frame, mounting table, drive push plate, rolling device, rollers, mounting plate, moving plate, sliding block, bidirectional threaded rod, rotating wheel, moving frame, pulley, guide plate, elastic telescopic rod, and pressure plate. During rolling, the bidirectional threaded rod drives the rotating wheel to clamp the copper material, enabling rapid workpiece fixation and positioning. This avoids the manual operation and adjustment time required in traditional manual clamping methods, significantly improving production efficiency and contributing to higher processing accuracy. Simultaneously, the moving plate drives the rollers to elastically press the copper material, ensuring its stability during processing and further improving processing accuracy. Balanced adjustment at both ends of the guide rail ensures stability and efficiency during processing, resulting in higher product quality.
[0009] 2. This fully automatic high-quality copper rolling mill with guide rails, through the coordinated operation of the rotating rod, connecting rod, and pressure cylinder, while rolling, the push plate drives the fixed plate to position and correct the copper material during processing. This ensures the stability and consistency of the copper material during processing, thereby improving the quality of the final product. It not only improves processing accuracy and efficiency, but also enhances the stability and applicability of the equipment, and reduces material waste and manual labor.
[0010] 3. This fully automatic high-quality copper rolling mill with guide rails, through the coordinated operation of the oil box, sliding column, baffle, connecting plate, and fixed plate, allows the rolling device to move while the copper is being rolled, causing the lubricating oil on the inner wall of the oil box to drip onto the surface of the copper through the oil outlet. This helps extend the service life of the tools, reduces direct contact between the copper and the mold or cutting tool, thereby reducing friction and wear, and further extending the service life of the tools. At the same time, it reduces energy loss during processing, prevents tool overheating and workpiece deformation, and improves product quality.
[0011] 4. This fully automatic high-quality copper rolling mill with guide rails operates through the coordinated movement of a reciprocating lead screw, gear one, gear two, scraper, and limit rod. When the copper material passes through the pressure cylinder into the equipment, the pressure cylinder drives the scraper to move back and forth, cleaning the surface of the copper material and preventing impurities from entering the moving parts or control system of the machine tool. This reduces abnormal wear or malfunctions caused by impurities, ensures the processing accuracy and surface quality of the workpiece, and achieves balanced adjustment at both ends of the guide rail, ensuring stability during the processing.
[0012] 5. This fully automatic high-quality copper rolling mill with guide rails, through the coordinated operation of the striking rod, trapezoidal block, and inclined block, simultaneously cleans the scraper by having the striking rod strike the scraper, shaking off the residue adhering to the scraper surface. This helps reduce direct contact between the tool and the workpiece, thereby reducing wear, reducing labor costs, improving the cleaning effect of the equipment, further minimizing wear, and thus extending the service life of the scraper. Attached Figure Description
[0013] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the pressure plate structure of the present invention; Figure 3 For the present invention Figure 2 Enlarged view of the structure at point A in the middle; Figure 4 This is a schematic diagram of the pressure cylinder structure of the present invention; Figure 5 For the present invention Figure 4 Enlarged view of the structure at point B in the middle; Figure 6 This is a schematic diagram of the scraper structure of the present invention; Figure 7 For the present invention Figure 6 Enlarged view of the structure at point C.
[0014] In the diagram: 1. Processing table; 2. Electric slide rail; 3. Moving frame; 4. Positioning mechanism; 41. Rotating rod; 42. Connecting rod; 43. Pressing cylinder; 44. Oil box; 45. Sliding column; 46. Baffle; 47. Connecting plate; 48. Fixing plate; 5. Scraping mechanism; 51. Reciprocating screw; 52. Gear 1; 53. Gear 2; 54. Scraper; 55. Limiting rod; 56. Striking rod; 57. Trapezoidal block; 58. Inclined block; 6. Mounting platform; 7. Push plate; 8. Rolling device; 9. Gear; 10. Mounting plate; 11. Moving plate; 12. Sliding block; 13. Bidirectional threaded rod; 14. Rotating wheel; 15. Sliding frame; 16. Pulley; 17. Guide plate; 18. Elastic telescopic rod; 19. Pressure plate. Detailed Implementation
[0015] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only 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.
[0016] Please see Figures 1-7 One embodiment of the present invention is: a fully automatic high-quality copper rolling mill with guide rail, including a processing table 1, an electric slide rail 2 fixedly connected to the top of the processing table 1, a moving frame 3 installed at the moving end of the electric slide rail 2, an mounting plate 10 fixedly connected to the top of the moving frame 3, a moving plate 11 slidably connected to the inner wall of the mounting plate 10, a rotating wheel 14 installed on the inner wall of the moving plate 11, a sliding block 12 fixedly connected to the bottom of the moving plate 11, and a bidirectional threaded rod 13 rotatably connected to the inner wall of the moving frame 3; When copper material needs to be processed and rolled, the processed copper material can be placed on the top of the mounting plate 10 by mechanical means. At this time, the double-threaded rod 13 can be rotated by a motor or manually by turning the crank. The rotation of the double-threaded rod 13 drives the sliding block 12 to converge in the middle through the threaded groove on the circumferential surface. The sliding block 12 drives the moving plate 11 to converge in the middle. The moving plate 11 drives the rotating wheel 14 to move, thereby driving the rotating wheel 14 to clamp the processed copper material. This can realize the rapid fixing and positioning of the workpiece, avoiding the manual operation and adjustment time in the traditional manual clamping method, thus significantly improving production efficiency, helping to improve processing accuracy, and further improving product quality. At this time, the electric slide rail 2 is started by the operator. The operation of the electric slide rail 2 will drive the moving frame 3 to move through the output end. The moving frame 3 will drive the mounting plate 10 to the corresponding position. At this time, the push plate 7 is started. The push plate 7 will drive the rolling device 8 to move through the output end. After the rolling device 8 moves to the corresponding position, the rolling device 8 is started to roll the copper material. The copper material will be provided to the rotating wheel 14 for stable rolling. A guide plate 17 is fixedly connected to the top of the mounting plate 10. A sliding frame 15 is slidably connected to the inner wall of the moving plate 11. Pulleys 16 are installed on both sides of the sliding frame 15. An elastic telescopic rod 18 is fixedly connected to the side of the sliding frame 15 near the moving plate 11. A pressure plate 19 is fixedly connected to the elastic telescopic end of the elastic telescopic rod 18. A round wheel 9 is installed on the inner wall of the pressure plate 19. A mounting platform 6 is fixedly connected to the top of the processing table 1. A push plate 7 is installed on the inner wall of the mounting platform 6. A rolling device 8 is fixedly connected to the moving end of the push plate 7. A positioning mechanism 4 for positioning copper material is provided on the left side of the mounting platform 6. The inner wall of the positioning mechanism 4 is provided with a scraping mechanism 5 for removing the adhering substances on the outer surface of the workpiece; the circumferential surface of the bidirectional threaded rod 13 is threadedly connected to the inner wall of the sliding block 12; the rotating wheel 14 and the circular wheel 9 can be used to reduce the friction of the workpiece during operation; the circumferential surface of the pulley 16 contacts the inner wall of the moving plate 11; the inner wall of the guide plate 17 is provided with a sliding groove; the circumferential surface of the pulley 16 contacts the sliding groove of the inner wall of the guide plate 17; and the pulley 16 will move along the sliding groove of the inner wall of the guide plate 17; the rolling device 8 contacts the inner wall of the mounting table 6; and the rolling device 8 is used to perform the rolling process on the copper material. While the copper material is being rolled, the roller 14 fixes the copper material, and at the same time, the moving plate 11 moves, driving the sliding frame 15 to move. The sliding frame 15 drives the pulley 16 to move, and the pulley 16 moves by contacting the inner wall of the guide plate 17 through its circumferential surface. Thus, the pulley 16 moves along the inner wall of the guide plate 17. The movement of the pulley 16 drives the sliding frame 15 to move downward, and the sliding frame 15 drives the elastic telescopic rod 18 to move. The movement of the elastic telescopic rod 18 drives the pressure plate 19 to move through its elastic telescopic end. The pressure plate 19 drives the circular wheel 9 to move downward, so that the circular wheel 9 elastically presses the processed copper material, which can ensure the stability of the copper material during the processing, thereby improving the processing accuracy, realizing the balance adjustment at both ends of the guide rail, ensuring the stability and efficiency of the processing, and making the production quality better.
[0017] Working principle: During the rolling process, the bidirectional threaded rod 13 drives the rotating wheel 14 to clamp the copper material being processed, which enables the rapid fixing and positioning of the workpiece. This avoids the manual operation and adjustment time in the traditional manual clamping method, thereby significantly improving production efficiency and further improving product quality. While the copper material is being rolled, the moving plate 11 drives the circular wheel 9 to elastically press the copper material being processed, which can ensure the stability of the copper material during the processing and thus improve the processing accuracy.
[0018] Please see Figures 1-7 Based on the above embodiments, in another embodiment of the present invention, the positioning mechanism 4 includes a rotating rod 41, a connecting rod 42 is hinged to the side of the rotating rod 41 near the rolling device 8, and a pressing cylinder 43 is rotatably connected to the inner wall of the rotating rod 41. During rolling, the push plate 7 moves, which drives the connecting rod 42 to move through the hinge point. The connecting rod 42 moves by hinged to the rotating rod 41. Since the rotating rod 41 is hinged to the mounting platform 6 through a torsion spring, the connecting rod 42 pulls the rotating rod 41 to rotate. The rotation of the connecting rod 42 drives the fixed plate 48 to rotate. The fixed plate 48 then positions and corrects the copper material during processing, ensuring the stability and consistency of the copper material during processing, thereby improving the quality of the final product. This not only improves processing accuracy and efficiency but also enhances the stability and applicability of the equipment, reducing material waste and manual intervention. An oil box 44 is fixedly connected to the left side of the rolling device 8. A sliding column 45 is slidably connected to the inner wall of the oil box 44. A connecting plate 47 is fixedly connected to the top of the sliding column 45. A baffle 46 is fixedly connected to the bottom of the sliding column 45. A fixing plate 48 is fixedly connected to the left side of the mounting platform 6. A rotating rod 41 is hinged to the left side of the mounting platform 6. A connecting rod 42 is hinged to the left side of the rolling device 8. A pressure cylinder 43 is used to position the workpiece before processing. An oil outlet hole is opened on the inner wall of the oil box 44, and an oil outlet pipe is installed in the oil outlet hole of the oil box 44. The connecting plate 47 is fixedly connected to the top of the oil box 44 by a spring. The oil box 44 moves on the movement trajectory of the fixing plate 48. The baffle 46 contacts the inner wall of the oil box 44. While the copper material is being rolled, the movement of the rolling device 8 will cause the oil box 44 to move, which in turn will cause the sliding column 45 to move. The sliding column 45 will then cause the connecting plate 47 to move. The contact surface of the connecting plate 47 will release its contact with the bottom of the fixed plate 48, thereby causing the connecting plate 47 to move via a spring. The connecting plate 47 will then cause the sliding column 45 to move, which in turn will cause the baffle 46 to move. This allows the lubricating oil inside the oil box 44 to drip onto the surface of the copper material through the oil outlet. When processing is finished, the fixed plate 48 will push the connecting plate 47 to move from its bottom. The connecting plate 47 will then cause the sliding column 45 to move, which in turn will cause the baffle 46 to move, blocking the oil outlet. This reduces direct contact between the copper material and the mold or cutting tool, thereby reducing friction and wear, helping to extend the tool's service life, reducing energy consumption during processing, preventing tool overheating and workpiece deformation, and improving product quality.
[0019] Working principle: During rolling, the pusher plate 7 drives the fixed plate 48 to position and correct the copper material during processing, which can ensure the stability and consistency of the copper material during processing, thereby improving the quality of the final product. While the copper material is being rolled, the movement of the rolling device 8 will cause the lubricating oil on the inner wall of the oil box 44 to drip onto the surface of the copper material through the oil outlet, which helps to extend the service life of the tool, reduce energy loss during processing, prevent tool overheating and workpiece deformation, and improve product quality.
[0020] The scraping mechanism 5 includes a reciprocating screw 51, a gear 52 fixedly connected to the circumferential surface of the reciprocating screw 51, a scraper 54 movably connected to the circumferential surface of the reciprocating screw 51, a gear 53 fixedly connected to both sides of the pressing cylinder 43, and a limit rod 55 fixedly connected to the inner wall of the rotating rod 41. When the copper material is fed into the equipment through the pressure cylinder 43, friction is generated between the pressure cylinder 43 and the copper material, thereby causing the pressure cylinder 43 to rotate. The pressure cylinder 43 drives the second gear 53 to rotate. The rotation of the second gear 53 will mesh with the circumferential surface of the first gear 52 through its circumferential surface, thereby driving the first gear 52 to rotate. The first gear 52 drives the reciprocating screw 51 to rotate. The rotation of the reciprocating screw 51 will drive the scraper 54 to move back and forth through the reciprocating groove on the circumferential surface, thereby cleaning the surface of the copper material with the scraper 54, preventing these impurities from entering the moving parts or control system of the machine tool, thereby reducing abnormal wear or failure caused by impurities, ensuring the processing accuracy and surface quality of the workpiece, realizing the balance adjustment at both ends of the guide rail, and ensuring the stability during the processing. A striking rod 56 is hinged to the left side of the scraper 54 via a torsion spring. A trapezoidal block 57 is fixedly connected to the bottom of the striking rod 56, and an inclined block 58 is fixedly connected to the top of the limiting rod 55. The inner wall of the rotating rod 41 is rotatably connected to the circumferential surface of the reciprocating screw 51. The circumferential surface of gear 1 52 meshes with the circumferential surface of gear 2 53, and gear 1 52 contacts the front and rear sides of the reciprocating screw 51. The striking end of the striking rod 56 contacts the top of the scraper 54, and the striking rod 56 is used to strike the scraper 54. The trapezoidal block 57 operates on the movement trajectory of the inclined block 58, and the scraper 54 contacts the circumferential surface of the pressing cylinder 43. While cleaning, the scraper 54 drives the striking rod 56 to move back and forth. When the scraper 54 drives the striking rod 56 to the sides, the striking rod 56 drives the trapezoidal block 57 to move. The bottom of the trapezoidal block 57 will contact the top of the inclined block 58, thereby causing the trapezoidal block 57 to rotate. The trapezoidal block 57 drives the striking rod 56 to rotate. When it leaves the inclined block 58, the striking rod 56 will be reset by the torsion spring. Thus, the striking rod 56 will strike the scraper 54, shaking off the residue adhering to the surface of the scraper 54. This helps to reduce direct contact between the tool and the workpiece, thereby reducing wear, reducing labor costs, improving the cleaning effect of the equipment, further reducing wear, and thus extending the service life of the scraper 54.
[0021] Working principle: When the copper material is fed into the equipment through the pressure cylinder 43, the pressure cylinder 43 drives the scraper 54 to move back and forth to clean the surface of the copper material, preventing these impurities from entering the moving parts or control system of the machine tool. This achieves the balance adjustment at both ends of the guide rail, ensuring stability during the processing. At the same time, the scraper 54 drives the striking rod 56 to strike the scraper 54, shaking off the residue adhering to the surface of the scraper 54. This helps to reduce the direct contact between the tool and the workpiece, thereby reducing wear, reducing labor costs, and improving the cleaning effect of the equipment.
[0022] This invention provides a fully automatic high-quality copper rolling mill with guide rails. Many methods and approaches exist for implementing this technical solution; the above description is merely a preferred embodiment of the invention. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principles of this invention, and these improvements and modifications should also be considered within the scope of protection of this invention. All components not explicitly stated in this embodiment can be implemented using existing technologies.
Claims
1. A fully automatic high-quality copper rolling mill with guide rails, comprising a processing table (1), characterized in that: The processing table (1) is fixedly connected to the top of an electric slide rail (2). A moving frame (3) is installed at the moving end of the electric slide rail (2). A mounting plate (10) is fixedly connected to the top of the moving frame (3). A moving plate (11) is slidably connected to the inner wall of the mounting plate (10). A wheel (14) is installed on the inner wall of the moving plate (11). A sliding block (12) is fixedly connected to the bottom of the moving plate (11). A bidirectional threaded rod (13) is rotatably connected to the inner wall of the moving frame (3). A guide plate (17) is fixedly connected to the top of the mounting plate (10). A sliding frame (15) is slidably connected to the inner wall of the moving plate (11). A pulley (16) is installed on both sides of the sliding frame (15). An elastic telescopic rod (18) is fixedly connected to the side of the sliding frame (15) near the moving plate (11). A pressure plate (19) is fixedly connected to the elastic telescopic end of the elastic telescopic rod (18). A round wheel (9) is installed on the inner wall of the pressure plate (19). An installation platform (6) is fixedly connected to the top of the processing table (1). A push plate (7) is installed on the inner wall of the installation platform (6). A rolling device (8) is fixedly connected to the moving end of the push plate (7).
2. The fully automatic high-quality copper rolling mill with guide rails according to claim 1, characterized in that: The mounting platform (6) is provided with a positioning mechanism (4) for positioning copper material on the left side, and the inner wall of the positioning mechanism (4) is provided with a scraping mechanism (5) for removing the adhering material on the outer surface of the workpiece.
3. The fully automatic high-quality copper rolling mill with guide rails according to claim 2, characterized in that: The circumferential surface of the bidirectional threaded rod (13) is threadedly connected to the inner wall of the sliding block (12). The rotating wheel (14) and the round wheel (9) can be used to reduce the friction of the workpiece during operation. The circumferential surface of the pulley (16) is in contact with the inner wall of the moving plate (11). The inner wall of the guide plate (17) is provided with a sliding groove. The circumferential surface of the pulley (16) is in contact with the sliding groove of the inner wall of the guide plate (17), and the pulley (16) will move along the sliding groove of the inner wall of the guide plate (17). The rolling device (8) is in contact with the inner wall of the mounting table (6), and the rolling device (8) is used to perform rolling process on copper material.
4. The fully automatic high-quality copper rolling mill with guide rails according to claim 3, characterized in that: The positioning mechanism (4) includes a rotating rod (41), and a connecting rod (42) is hinged to the side of the rotating rod (41) near the rolling device (8). A pressure cylinder (43) is rotatably connected to the inner wall of the rotating rod (41).
5. The fully automatic high-quality copper rolling mill with guide rails according to claim 4, characterized in that: An oil box (44) is fixedly connected to the left side of the rolling device (8). A sliding column (45) is slidably connected to the inner wall of the oil box (44). A connecting plate (47) is fixedly connected to the top of the sliding column (45). A baffle (46) is fixedly connected to the bottom of the sliding column (45). A fixing plate (48) is fixedly connected to the left side of the mounting platform (6).
6. The fully automatic high-quality copper rolling mill with guide rails according to claim 5, characterized in that: The rotating rod (41) is hinged to the left side of the mounting platform (6), the connecting rod (42) is hinged to the left side of the rolling device (8), the pressure cylinder (43) is used to position the workpiece before processing, the inner wall of the oil box (44) is provided with an oil outlet hole, and the oil outlet hole of the oil box (44) is equipped with an oil outlet pipe, the connecting plate (47) is fixedly connected to the top of the oil box (44) by a spring, and the oil box (44) moves on the movement trajectory of the fixed plate (48), and the baffle (46) contacts the inner wall of the oil box (44).
7. A fully automatic high-quality copper rolling mill with guide rails according to claim 6, characterized in that: The scraping mechanism (5) includes a reciprocating screw (51), a gear 1 (52) is fixedly connected to the circumferential surface of the reciprocating screw (51), a scraper (54) is movably connected to the circumferential surface of the reciprocating screw (51), a gear 2 (53) is fixedly connected to both sides of the pressing cylinder (43), and a limit rod (55) is fixedly connected to the inner wall of the rotating rod (41).
8. The fully automatic high-quality copper rolling mill with guide rails according to claim 7, characterized in that: The left side of the scraper (54) is hinged to a striking rod (56) by a torsion spring. A trapezoidal block (57) is fixedly connected to the bottom of the striking rod (56), and an inclined block (58) is fixedly connected to the top of the limiting rod (55).
9. A fully automatic high-quality copper rolling mill with guide rails according to claim 8, characterized in that: The inner wall of the rotating rod (41) is rotatably connected to the circumferential surface of the reciprocating screw (51). The circumferential surface of the first gear (52) meshes with the circumferential surface of the second gear (53). The first gear (52) contacts the front and rear sides of the reciprocating screw (51). The striking end of the striking rod (56) contacts the top of the scraper (54). The striking rod (56) is used to strike the scraper (54). The trapezoidal block (57) operates on the motion trajectory of the inclined block (58). The scraper (54) contacts the circumferential surface of the pressing cylinder (43).
Citation Information
Patent Citations
Guide rail blank two-roller rolling mill
CN118403890A