Polishing and cleaning equipment for copper alloy strip and using method

The copper alloy strip processing device addresses inefficiencies in existing equipment by integrating movable grinding rolls and debris removal systems, enhancing production efficiency and reducing costs through simultaneous rotation and vibration.

CN120307169AInactive Publication Date: 2025-07-15GUANGZHOU COPPER MATERIALS FACTORY CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202510718207.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-30
Publication Date
2025-07-15
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing copper alloy strip grinding and cleaning equipment cannot be moved repeatedly during the rotation process, resulting in low grinding efficiency and ineffective cleaning of the polishing chips on the strip after the grinding is not allowed, increasing the consumption of consumables and waste liquid treatment costs.

Method used

A copper alloy strip grinding and cleaning equipment is designed, including a vibration assembly and a blowing air blowing assembly. The vibration assembly drives the grinding roller to rotate simultaneously to realize the repeated movement of the grinding roller, and clean the grinding chips through the blowing assembly, combining the cooperation of the brush plate and the guide roller to complete the thorough cleaning.

Benefits of technology

It improves grinding efficiency, reduces production time and cost, ensures the cleanliness and quality of the surface of copper alloy strips, and reduces consumable consumption and waste liquid treatment costs.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120307169A_ABST
    Figure CN120307169A_ABST
Patent Text Reader

Abstract

The invention relates to the technical field of copper alloy material machining, and discloses grinding and cleaning equipment for copper alloy strips and a using method, the grinding and cleaning equipment comprises a shell, two fixing blocks are slidably connected to the interior of the shell, and grinding assemblies are arranged in the two fixing blocks; wherein a vibration assembly and an air blowing assembly are arranged in one fixing block, a copper alloy roll is slidably connected to the interior of the shell, two box doors are arranged on the front side of the shell, the grinding assembly comprises a grinding roller, the vibration assembly comprises a connecting block, and the outer wall of the connecting block is slidably connected to the interior of the fixing block. The motor is started to drive the grinding roller to move and rotate, the grinding roller can evenly grind the copper alloy coil through moving and rotating, burrs and oxide layers on the surface of the copper alloy coil are removed, meanwhile, the time of the whole grinding process can be shortened, the production rate is increased, the production cost is reduced, and the production speed and yield are increased.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of copper alloy material processing, and specifically to a grinding and cleaning device for copper alloy strips and a usage method thereof. Background Art

[0002] Copper alloy refers to an alloy formed by adding one or several other elements on the basis of pure copper. Copper alloy strips are copper alloy products made through specific processing techniques. During the production, processing, and storage of copper alloy strips, various contaminants may adhere to the surface or an oxide film may form, affecting their performance, appearance, and subsequent processing quality. Grinding and cleaning equipment can remove various contaminants on the surface; The grinding and cleaning device for copper alloy strips mainly includes an unwinding device, grinding rollers, a cleaning machine, and a winding device. The unwinding device is used to unwind the coiled copper alloy strips to ensure that the strips smoothly enter the grinding and cleaning area. The grinding rollers rotate to rub the surface of the strips. The cleaning machine is used to remove grease, contaminants, and grinding residues on the strips' surface. The winding device is used to rewind the processed strips into neat coils; When the existing grinding and cleaning equipment grinds copper alloy strips, the grinding rollers can only grind them by rotating and cannot move back and forth during rotation, thus prolonging the entire grinding process, reducing production efficiency, increasing production costs, and thereby limiting the production speed and output. At the same time, the existing grinding and cleaning equipment cannot clean the grinding debris on the ground strips, resulting in the grinding debris entering the interior of the cleaning machine, and the need to frequently replace or filter the cleaning liquid, increasing the consumption of consumables and the cost of waste liquid treatment. Summary of the Invention

[0003] The purpose of the present invention is to provide a grinding and cleaning device for copper alloy strips and a usage method thereof, and solve the following technical problems: the grinding rollers cannot move back and forth during rotation and cannot clean the grinding debris on the ground strips, not only resulting in poor grinding efficiency, but also increasing the consumption of consumables and the cost of waste liquid treatment.

[0004] The purpose of the present invention can be achieved through the following technical solutions: A grinding and cleaning device for copper alloy strips includes a housing. Two fixing blocks are slidably connected inside the housing. Grinding components are arranged inside both of the two fixing blocks, and a vibration component and a blowing component are arranged inside one of the fixing blocks; A copper alloy coil is slidably connected inside the housing. Two box doors are arranged on the front side of the housing. The grinding component includes grinding rollers. The vibration component includes a connecting block, the outer wall of the connecting block is slidably connected inside the fixing block, and the blowing component includes rotating blades; The grinding component can drive the grinding rollers to rotate, thereby grinding the copper alloy coil; The vibration assembly is controlled by the grinding assembly. When the grinding roller rotates, it can synchronously drive the connecting block to move up and down, thereby impacting the copper alloy coil and making it vibrate. The blowing assembly is controlled by the vibration assembly and can drive the rotating blades to rotate to clean the waste generated by grinding the top of the copper alloy coil.

[0005] As a preferred solution of the present invention: The grinding assembly further includes a motor. The motor is fixedly connected inside the fixed block. The driving end of the motor is fixedly connected with a worm. One side of the outer wall of the worm is fixedly connected with a convex plate. One end of the worm is slidably connected inside the grinding roller, and the outer wall of the convex plate is slidably connected inside the grinding roller. A worm gear is rotatably connected inside the fixed block. The worm gear meshes with the worm. Eccentric wheels are fixedly connected to both sides of the worm gear. One side of the eccentric wheel is rotatably connected with a connecting rod. One side of the two connecting rods is rotatably connected with a swing block. The top of the swing block is rotatably connected inside the fixed block. The bottom side inside the swing block is rotatably connected with a sleeve. One side of the sleeve is rotatably connected to one side of the grinding roller. The vibration assembly further includes a first gear and a second gear. The first gear and the second gear mesh with each other. The first gear is fixedly connected to the outer wall of the worm. The second gear is rotatably connected inside one of the fixed blocks. An eccentric shaft is fixedly connected to the front side of the second gear. The front end of the eccentric shaft is slidably connected with a lifting plate. One side of the lifting plate is fixedly connected with a convex block. The top of the convex block abuts against a first trapezoidal block. The top of the first trapezoidal block abuts against a second trapezoidal block. One side of the second trapezoidal block is fixedly connected inside one of the fixed blocks. One side of the first trapezoidal block is slidably connected with a lifting block. One side of the lifting block is fixedly connected to one side of the connecting block. The blowing assembly further includes two filter plates. One of the filter plates is fixedly connected to the rear side inside one of the fixed blocks, and the other filter plate is fixedly connected to the inside of one of the handles. A belt is fixedly connected to the outer wall of the second gear. The side of the belt away from the second gear is fixedly connected to one side of the rotating blades. A plurality of uniformly distributed ventilation openings are formed inside one of the fixed blocks.

[0006] As a preferred solution of the present invention: One side of the rotating blades is rotatably connected with a fixing plate. The fixing plate is fixedly connected inside the fixed block.

[0007] As a preferred embodiment of the present invention: a buffer block is fixedly connected to the bottom of one side of the connecting block, a limiting plate is fixedly connected to one side of the first trapezoidal block, the outer wall of the limiting plate is slidably connected inside the lifting block, a spring is fixedly connected to the side of the limiting plate away from the first trapezoidal block, and one end of the spring away from the limiting plate is fixedly connected inside the lifting block.

[0008] As a preferred embodiment of the present invention: a damper is fixedly connected to the top of the lifting block, and the top of the damper is fixedly connected inside the fixed block.

[0009] As a preferred embodiment of the present invention: a first sliding rod is slidably connected to both the left and right sides inside the lifting block, the first sliding rod is fixedly connected inside the fixed block, a second sliding rod is slidably connected to both the left and right sides inside the lifting plate, and the second sliding rod is fixedly connected inside the fixed block.

[0010] As a preferred embodiment of the present invention: a fixed shaft is slidably connected to one side inside the grinding roller, one end of the fixed shaft is fixedly connected inside the fixed block, and a third guiding roller is rotatably connected to one side of the fixed block.

[0011] As a preferred embodiment of the present invention: an uncoiler is installed on one side of the copper alloy coil, a coiler is installed on the other side of the copper alloy coil, two hinges are provided between the box door and the outer shell, a door handle is installed on the front side of the box door, a cleaning machine is fixedly connected inside the outer shell, a plurality of uniformly distributed first guiding rollers are rotatably connected inside the outer shell, and a plurality of uniformly distributed second guiding rollers are rotatably connected inside the cleaning machine.

[0012] As a preferred embodiment of the present invention: a hydraulic rod is fixedly connected to one side of the fixed block, one side of the hydraulic rod is fixedly connected inside the outer shell, two first slide rails are fixedly connected to both the front and rear sides of the fixed block, the outer walls of the first slide rails are slidably connected inside the outer shell, a collection box is slidably connected inside the outer shell, a handle is installed on the front side of the collection box, two second slide rails are fixedly connected to both the left and right sides of the bottom of the collection box, the outer walls of the second slide rails are slidably connected inside the outer shell, and two brush plates are fixedly connected inside the outer shell.

[0013] A method for using a grinding and cleaning device for copper alloy strips, comprising: Step 1: Starting the motor can drive the worm and the convex plate to rotate. The convex plate can drive the grinding roller to rotate through rotation. The grinding roller can grind the copper alloy coil through rotation. At the same time, the worm rotates to drive the convex plate to rotate. The convex plate can drive the swing block to swing through the cooperation of the eccentric wheel and the connecting rod, and then drive the sleeve to move repeatedly, so that the grinding roller moves repeatedly during rotation, thereby improving the grinding effect; Step 2: During the rotation of the worm, it can also drive Gear 1 to rotate. The rotation of Gear 1 drives Gear 2 to rotate, and through the cooperation of the eccentric shaft, it drives the lifting plate to move up and down. The up and down movement of the lifting plate can drive the lifting block to move up and down through the cooperation of the convex block, Trapezoidal Block 1, and Trapezoidal Block 2, and then drive the connecting block and the buffer block to move up and down, so that the copper alloy coil vibrates, and the waste chips on its surface fall off from the copper alloy coil. Step 3: During the rotation of Gear 2, it can also drive the belt to rotate. The rotation of the belt drives the rotating blades to rotate, so that the external air flows evenly from the ventilation openings inside the housing, thereby blowing off the waste chips on the surface of the copper alloy coil. Subsequently, the waste chips on the surface of the copper alloy coil are further cleaned by the brush plate, and through the cooperation of Guide Roller 1 and Guide Roller 2, the copper alloy coil is cleaned inside the cleaning machine. Step 4: The box door can be opened through the cooperation of the hinge and the doorknob. After opening the box door, the cleaning machine and the collection box can be cleaned. Through the hydraulic rod and Slide Rail 1, the fixed block can be driven to move up and down. The up and down movement of the fixed block can drive the grinding roller to move up and down. The up and down movement of the grinding roller can adjust the distance between the two grinding rollers, so as to adapt to different grinding requirements.

[0014] Advantages of the present invention: (1) By starting the motor, the present invention can drive the worm to rotate. Subsequently, through the cooperation of the convex plate, worm gear, eccentric wheel, connecting rod, swing block, and sleeve, the grinding roller can be driven to move and rotate. The moving rotation of the grinding roller can uniformly grind the copper alloy coil, remove the burrs and oxide layers on its surface, improve the surface grinding quality of the copper alloy strip, and at the same time, it can also reduce the time of the entire grinding process, improve productivity, reduce production costs, and increase production speed and output.

[0015] (2) During the rotation of the worm, through the cooperation of Gear 2, Gear 2, and the eccentric shaft, the present invention can drive the lifting plate to move up and down. Subsequently, through the cooperation of the convex block, Trapezoidal Block 1, Trapezoidal Block 2, and the lifting block, the connecting block and the buffer block are driven to rotate. The up and down movement of the buffer block can knock on the copper alloy coil, so that the waste chips on its surface fall off from the copper alloy coil, thus facilitating the treatment of the waste chips on its surface.

[0016] (3) During the rotation of Gear 2, the present invention can drive the belt to rotate together, and then drive the rotating blades to rotate. This series of movements enables the external air to flow evenly through the inside of the housing through the ventilation openings, effectively blowing off the waste chips on the surface of the copper alloy coil. Subsequently, the brush plate further cleans the waste chips on the surface of the copper alloy coil. Finally, through the coordinated work of Guide Roller 1 and Guide Roller 2, it is ensured that the copper alloy coil is thoroughly cleaned inside the cleaning machine. Description of the Drawings

[0017] The present invention will be further described below in conjunction with the accompanying drawings.

[0018] Figure 1 is a perspective view of the present invention; Figure 2 is a schematic diagram of the outer shell in the present invention; Figure 3 is a schematic diagram of the collection box in the present invention; Figure 4 is a schematic diagram of the fixing block in the present invention; Figure 5 is a schematic diagram of the motor in the present invention; Figure 6 is a schematic diagram of the grinding assembly in the present invention; Figure 7 is a schematic diagram of the grinding roller in the present invention; Figure 8 is a schematic diagram of the eccentric shaft in the present invention; Figure 9 is a schematic diagram of the vibration assembly in the present invention; Figure 10 is a schematic diagram of the lifting block in the present invention; Figure 11 is a schematic diagram of the blowing assembly in the present invention.

[0019] Description of the drawings: 1. Outer shell; 3. Grinding assembly; 5. Vibration assembly; 7. Blowing assembly; 11. Copper alloy coil; 12. Uncoiler; 13. Rewinder; 14. Box door; 15. Hinge; 16. Door handle; 17. Cleaning machine; 18. Guide roller 1; 19. Guide roller 2; 20. Fixing block; 21. Hydraulic rod; 22. Slide rail 1; 23. Collection box; 24. Handle; 25. Slide rail 2; 26. Brush plate; 31. Motor; 32. Worm; 33. Convex plate; 34. Grinding roller; 35. Worm gear; 36. Eccentric wheel; 37. Connecting rod; 38. Swing block; 39. Sleeve; 40. Fixed shaft; 41. Guide roller 3; 51. Gear 1; 52. Gear 2; 53. Eccentric shaft; 54. Lifting plate; 55. Convex block; 56. Trapezoidal block 1; 57. Trapezoidal block 2; 58. Lifting block; 59. Connecting block; 60. Buffer block; 61. Limiting plate; 62. Spring; 63. Damper; 64. Slide bar 1; 65. Slide bar 2; 71. Filter plate; 72. Belt; 73. Rotating blade; 74. Vent; 75. Fixed plate. Detailed implementation manners

[0020] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0021] Please refer to Figures 1-11 As shown, the present invention is a grinding and cleaning device and a usage method for copper alloy strips, including a housing 1. Two fixing blocks 20 are slidably connected inside the housing 1. Grinding components 3 are arranged inside both of the two fixing blocks 20. A vibration component 5 and a blowing component 7 are arranged inside one of the fixing blocks 20. A copper alloy coil 11 is slidably connected inside the housing 1. Two box doors 14 are arranged on the front side of the housing 1. The grinding component 3 includes a grinding roller 34. The vibration component 5 includes a connecting block 59. The outer wall of the connecting block 59 is slidably connected inside the fixing block 20. The blowing component 7 includes a rotating blade 73. The housing 1 is used to provide protection and support. The fixing block 20 is used to fix the grinding roller 34. The grinding roller 34 can grind the surface of the copper alloy coil 11 by rotation. The grinding component 3 can drive the grinding roller 34 to rotate, so as to grind the copper alloy coil 11. The vibration component 5 is controlled by the grinding component 3. When the grinding roller 34 rotates, it can synchronously drive the connecting block 59 to move up and down, and then impact the copper alloy coil 11 to make it vibrate, so as to facilitate the cleaning of the waste chips on its surface. The blowing component 7 is controlled by the vibration component 5 and can drive the rotating blade 73 to rotate to clean the waste generated during the grinding of the top of the copper alloy coil 11.

[0022] The grinding component 3 further includes a motor 31. The motor 31 is fixedly connected inside the fixing block 20. The driving end of the motor 31 is fixedly connected with a worm 32. One side of the outer wall of the worm 32 is fixedly connected with a convex plate 33. One end of the worm 32 is slidably connected inside the grinding roller 34. The outer wall of the convex plate 33 is slidably connected inside the grinding roller 34. A worm gear 35 is rotatably connected inside the fixing block 20. The worm gear 35 meshes with the worm 32. Both sides of the worm gear 35 are fixedly connected with eccentric wheels 36. One side of the eccentric wheel 36 is rotatably connected with a connecting rod 37. One side of the two connecting rods 37 is rotatably connected with a swinging block 38. The top of the swinging block 38 is rotatably connected inside the fixing block 20. The bottom side inside the swinging block 38 is rotatably connected with a sleeve 39. One side of the sleeve 39 is rotatably connected with one side of the grinding roller 34. The motor 31 is used to drive the worm 32 to rotate. The worm 32 can drive the convex plate 33 and the worm wheel 35 to rotate through rotation. The convex plate 33 can drive the grinding roller 34 to rotate through rotation. The worm wheel 35 can drive the eccentric wheel 36 to rotate through rotation. The eccentric wheel 36 can drive the connecting rod 37 to swing through rotation. The connecting rod 37 can drive the swinging block 38 to swing through swinging. The swinging block 38 can drive the sleeve 39 to move repeatedly through swinging. The sleeve 39 can drive the grinding roller 34 to move repeatedly through repeated movement. The grinding roller 34 can improve the grinding efficiency of the copper alloy coil 11 through repeated movement; The vibration assembly 5 further includes a first gear 51 and a second gear 52. The first gear 51 and the second gear 52 are meshed with each other. The first gear 51 is fixedly connected to the outer wall of the worm 32. The second gear 52 is rotatably connected to the inside of one of the fixing blocks 20. A front side of the second gear 52 is fixedly connected to an eccentric shaft 53. A front end of the eccentric shaft 53 is slidably connected to a lifting plate 54. A side of the lifting plate 54 is fixedly connected to a convex block 55. A top of the convex block 55 abuts against a first trapezoidal block 56. A top of the first trapezoidal block 56 abuts against a second trapezoidal block 57. A side of the second trapezoidal block 57 is fixedly connected to the inside of one of the fixing blocks 20. A side of the first trapezoidal block 56 is slidably connected to a lifting block 58. A side of the lifting block 58 is fixedly connected to a side of the connecting block 59; The worm 32 can drive the first gear 51 to rotate through rotation. The first gear 51 can drive the second gear 52 to rotate through rotation. The second gear 52 can drive the eccentric shaft 53 to move up and down through rotation. The eccentric shaft 53 can drive the lifting plate 54 to move up and down through moving up and down. The lifting plate 54 can drive the convex block 55 to move up and down through moving up and down. When the convex block 55 rises, it can drive the first trapezoidal block 56 to rise. When the first trapezoidal block 56 rises to a certain extent, the restriction of the convex block 55 on the first trapezoidal block 56 can be released through the extrusion of the second trapezoidal block 57. Subsequently, the first trapezoidal block 56 will descend. The first trapezoidal block 56 can drive the lifting block 58 to move up and down through moving up and down. The lifting block 58 can drive the connecting block 59 to move up and down through moving up and down. The connecting block 59 can knock on the copper alloy coil 11 through moving up and down, so that the waste chips on its surface fall off; The blowing assembly 7 further includes two filter plates 71. One of the filter plates 71 is fixedly connected to the rear side inside one of the fixing blocks 20. The other filter plate 71 is fixedly connected to the inside of one of the handles 24. A belt 72 is fixedly connected to the outer wall of the second gear 52. A side of the belt 72 away from the second gear 52 is fixedly connected to a side of a rotating blade 73. A plurality of uniformly distributed ventilation openings 74 are formed in the inside of one of the fixing blocks 20; The second gear 52 can drive the belt 72 to rotate by rotation, the belt 72 can drive the rotary blade 73 to rotate by rotation, and the rotary blade 73 can evenly flow the external air from the inside of the fixed block 20 to the inside of the housing 1 through the ventilation port 74 by rotation, so as to blow off the waste chips on the surface of the copper alloy coil 11.

[0023] One side of the rotary blade 73 is rotatably connected to a fixed plate 75, the fixed plate 75 is fixedly connected inside the fixed block 20, one side bottom of the connecting block 59 is fixedly connected to a buffer block 60, one side of the first trapezoidal block 56 is fixedly connected to a limiting plate 61, the outer wall of the limiting plate 61 is slidably connected inside the lifting block 58, one side of the limiting plate 61 away from the first trapezoidal block 56 is fixedly connected to a spring 62, and one end of the spring 62 away from the limiting plate 61 is fixedly connected inside the lifting block 58; The fixed plate 75 is used to fix the rotary blade 73, the buffer block 60 plays a buffering role to prevent the connecting block 59 from knocking the copper alloy coil 11 and damaging its surface, the limiting plate 61 plays a role in preventing the first trapezoidal block 56 from falling off inside the lifting block 58, and the spring 62 can drive the first trapezoidal block 56 to reset through elastic force.

[0024] The top of the lifting block 58 is fixedly connected to a damper 63, the top of the damper 63 is fixedly connected inside the fixed block 20, the left and right sides inside the lifting block 58 are both slidably connected to a first slide bar 64, the first slide bar 64 is fixedly connected inside the fixed block 20, the left and right sides inside the lifting plate 54 are both slidably connected to a second slide bar 65, the second slide bar 65 is fixedly connected inside the fixed block 20, one side inside the grinding roller 34 is slidably connected to a fixed shaft 40, one end of the fixed shaft 40 is fixedly connected inside the fixed block 20, and one side of the fixed block 20 is rotatably connected to a third guiding roller 41; The damper 63 can drive the lifting block 58 to reset through elastic force, the first slide bar 64 is used to fix the moving route of the lifting block 58, the second slide bar 65 is used to fix the moving route of the lifting plate 54, the fixed shaft 40 is used to fix the grinding roller 34, and the third guiding roller 41 is used to fix the moving route of the copper alloy coil 11.

[0025] An uncoiler 12 is installed on one side of the copper alloy coil 11, a coiler 13 is installed on the other side of the copper alloy coil 11, two hinges 15 are provided between the box door 14 and the housing 1, a door handle 16 is installed on the front side of the box door 14, a cleaning machine 17 is fixedly connected inside the housing 1, and a plurality of uniformly distributed first guiding rollers 18 are rotatably connected inside the housing 1; a plurality of uniformly distributed second guiding rollers 19 are rotatably connected inside the cleaning machine 17; The uncoiler 12 is used to uncoil the copper alloy coil 11, the coiler 13 is used to coil the copper alloy coil 11, the box door 14 facilitates access to the inside of the housing 1, thus facilitating the maintenance of its internal structure. The hinge 15 can drive the box door 14 to rotate, and the doorknob 16 is used to drive the box door 14 to rotate. The cleaning machine 17 is used to clean the copper alloy coil 11, the guiding roller 18 is used to fix the moving route of the copper alloy coil 11, and the guiding roller 19 is used to fix the moving route of the copper alloy coil 11.

[0026] One side of the fixing block 20 is fixedly connected with a hydraulic rod 21. One side of the hydraulic rod 21 is fixedly connected inside the housing 1. Both the front and rear sides of the fixing block 20 are fixedly connected with two first slide rails 22. The outer wall of the first slide rail 22 is slidably connected inside the housing 1. A collection box 23 is slidably connected inside the housing 1. A handle 24 is installed on the front side of the collection box 23. Both the left and right sides of the bottom of the collection box 23 are fixedly connected with second slide rails 25. The outer wall of the second slide rail 25 is slidably connected inside the housing 1. Two brush plates 26 are fixedly connected inside the housing 1; The hydraulic rod 21 is used to drive the fixing block 20 to move up and down, so as to adapt to different grinding requirements. The first slide rail 22 is used to fix the moving route of the fixing block 20. The collection box 23 is used to collect the waste chips generated during the grinding of the copper alloy coil 11. The handle 24 is used to pull the collection box 23 to move. The second slide rail 25 is used to fix the moving route of the collection box 23. The brush plate 26 is used to further clean the copper alloy coil 11.

[0027] A method for using a grinding and cleaning device for copper alloy strips includes: Step 1: Starting the motor 31 can drive the worm 32 and the convex plate 33 to rotate. The convex plate 33 can drive the grinding roller 34 to rotate through rotation. The grinding roller 34 can grind the copper alloy coil 11 through rotation. At the same time, the worm 32 rotates to drive the convex plate 33 to rotate. The convex plate 33 can drive the swing block 38 to swing through the cooperation of the eccentric wheel 36 and the connecting rod 37, and then drive the sleeve 39 to move repeatedly, so that the grinding roller 34 moves repeatedly during rotation, thereby improving the grinding effect; Step 2: The worm 32 can also drive the first gear 51 to rotate during rotation. The first gear 51 rotates to drive the second gear 52 to rotate, and drives the lifting plate 54 to move up and down through the cooperation of the eccentric shaft 53. The lifting of the lifting plate 54 can drive the lifting block 58 to move up and down through the cooperation of the convex block 55, the first trapezoidal block 56 and the second trapezoidal block 57, and then drive the connecting block 59 and the buffer block 60 to move up and down, so that the copper alloy coil 11 vibrates, and the waste chips on its surface fall off from the copper alloy coil 11; Step 3: During the rotation of gear two 52, it can also drive belt 72 to rotate. The rotation of belt 72 drives the rotation of rotary vane 73, enabling the external air to flow evenly from the ventilation port 74 inside the housing 1, thereby blowing off the waste chips on the surface of copper alloy coil 11. Subsequently, the waste chips on the surface of copper alloy coil 11 are further cleaned by brush plate 26, and through the cooperation of guide roller one 18 and guide roller two 19, copper alloy coil 11 is cleaned inside the cleaning machine 17. Step 4: The box door 14 can be opened through the cooperation of hinge 15 and door handle 16. After opening the box door 14, the cleaning machine 17 and the collection box 23 can be cleaned. Through the hydraulic rod 21 and the first slide rail 22, the fixed block 20 can be driven to move up and down. The fixed block 20 can drive the grinding roller 34 to move up and down through the up and down movement. The grinding roller 34 can adjust the distance between the two grinding rollers 34 through the up and down movement, so as to adapt to different grinding requirements.

[0028] The working principle of the present invention: Through the cooperation of the uncoiler 12 and the rewind 13, the copper alloy coil 11 can slide inside the housing 1. Starting the motor 31 can drive the worm 32 to rotate. The rotation of the worm 32 drives the convex plate 33 and the worm gear 35 to rotate. The rotation of the convex plate 33 drives the grinding roller 34 to rotate. The rotation of the worm gear 35 drives the eccentric wheel 36 to rotate, thereby driving the connecting rod 37 and the swing block 38 to swing, so that the sleeve 39 moves. The movement of the sleeve 39 drives the grinding roller 34 to move. The grinding roller 34 can grind the surface of the copper alloy coil 11 through the movement and rotation. At the same time, the rotation of the worm 32 can also drive the gear one 51 to rotate. The rotation of the gear one 51 drives the gear two 52 to rotate, and through the cooperation of the eccentric shaft 53, it drives the lifting plate 54 to move up and down. The up and down movement of the lifting plate 54 can drive the lifting block 58 to move up and down through the cooperation of the convex block 55, the first trapezoidal block 56 and the second trapezoidal block 57. The up and down movement of the lifting block 58 can drive the connecting block 59 and the buffer block 60 to move up and down, thereby knocking the copper alloy coil 11 to make the grinding chips on its surface fall off. During the rotation of the gear two 52, through the cooperation of the belt 72, it can drive the rotary vane 73 to rotate. The rotation of the rotary vane 73 enables the external air to flow evenly from the ventilation port 74 inside the housing 1, thereby blowing the waste chips on the surface of the copper alloy coil 11 into the collection box 23. Subsequently, the waste chips on the surface of the copper alloy coil 11 are further cleaned by the brush plate 26, and through the cooperation of the guide roller one 18 and the guide roller two 19, the copper alloy coil 11 is cleaned inside the cleaning machine 17.

[0029] The above has described a detailed description of an embodiment of the present invention, but the content is only the preferred embodiment of the present invention and cannot be considered as limiting the scope of implementation of the present invention. All equivalent changes and improvements made according to the scope of the application of the present invention should still fall within the scope covered by the patent of the present invention.

Claims

1. A grinding and cleaning device for copper alloy strip, comprising a housing (1), characterized in that, Inside the housing (1), two fixed blocks (20) are slidably connected. Inside both of the two fixed blocks (20), a grinding assembly (3) is provided. Inside one of the fixed blocks (20), a vibration assembly (5) and a blowing assembly (7) are provided; Inside the housing (1), a copper alloy coil (11) is slidably connected. On the front side of the housing (1), two cabinet doors (14) are provided. The grinding assembly (3) includes a grinding roller (34). The vibration assembly (5) includes a connecting block (59). The outer wall of the connecting block (59) is slidably connected inside the fixed block (20). The blowing assembly (7) includes a rotating blade (73); The grinding assembly (3) can drive the grinding roller (34) to rotate, so as to grind the copper alloy coil (11); The vibration assembly (5) is controlled by the grinding assembly (3). When the grinding roller (34) rotates, it can synchronously drive the connecting block (59) to move up and down, thereby impacting the copper alloy coil (11) to make it vibrate; The blowing assembly (7) is controlled by the vibration assembly (5). It can drive the rotating blade (73) to rotate to clean the waste generated by grinding on the top of the copper alloy coil (11).

2. The abrasive cleaning equipment for copper alloy strip according to claim 1, wherein, The grinding assembly (3) further includes a motor (31). The motor (31) is fixedly connected inside the fixed block (20). The driving end of the motor (31) is fixedly connected with a worm (32). On one side of the outer wall of the worm (32), a convex plate (33) is fixedly connected. One end of the worm (32) is slidably connected inside the grinding roller (34). The outer wall of the convex plate (33) is slidably connected inside the grinding roller (34); Inside the fixed block (20), a worm gear (35) is rotatably connected. The worm gear (35) is meshed with the worm (32). On both sides of the worm gear (35), an eccentric wheel (36) is fixedly connected. On one side of the eccentric wheel (36), a connecting rod (37) is rotatably connected. On one side of the two connecting rods (37), a swinging block (38) is rotatably connected. The top of the swinging block (38) is rotatably connected inside the fixed block (20). Inside the bottom side of the swinging block (38), a sleeve (39) is rotatably connected. One side of the sleeve (39) is rotatably connected to one side of the grinding roller (34); The vibration assembly (5) further includes a gear one (51) and a gear two (52). The gear one (51) and the gear two (52) are meshed with each other. The gear one (51) is fixedly connected to the outer wall of the worm (32). The gear two (52) is rotatably connected inside one of the fixed blocks (20). On the front side of the gear two (52), an eccentric shaft (53) is fixedly connected. The front end of the eccentric shaft (53) is slidably connected with a lifting plate (54); One side of the lifting plate (54) is fixedly connected with a convex block (55), the top of the convex block (55) abuts against a first trapezoidal block (56), the top of the first trapezoidal block (56) abuts against a second trapezoidal block (57), one side of the second trapezoidal block (57) is fixedly connected inside one of the fixed blocks (20), one side of the first trapezoidal block (56) is slidably connected with a lifting block (58), and one side of the lifting block (58) is fixedly connected to one side of the connecting block (59); The blowing assembly (7) further includes two filter plates (71), one of the filter plates (71) is fixedly connected to the rear side inside one of the fixed blocks (20), the other filter plate (71) is fixedly connected to the inside of one of the handles (24), the outer wall of the second gear (52) is fixedly connected with a belt (72), one side of the belt (72) away from the second gear (52) is fixedly connected to one side of the rotating blade (73), and a plurality of uniformly distributed ventilation openings (74) are formed inside one of the fixed blocks (20).

3. The abrasive cleaning device for copper alloy strip according to claim 2, characterized in that, One side of the rotating blade (73) is rotatably connected with a fixing plate (75), and the fixing plate (75) is fixedly connected to the inside of the fixed block (20).

4. A grinding and cleaning device for copper alloy strips according to claim 2, characterized in that, One side of the bottom of the connecting block (59) is fixedly connected with a buffer block (60), one side of the first trapezoidal block (56) is fixedly connected with a limiting plate (61), the outer wall of the limiting plate (61) is slidably connected inside the lifting block (58), one side of the limiting plate (61) away from the first trapezoidal block (56) is fixedly connected with a spring (62), and one end of the spring (62) away from the limiting plate (61) is fixedly connected to the inside of the lifting block (58).

5. The grinding and cleaning equipment for copper alloy strips according to claim 2, characterized in that, The top of the lifting block (58) is fixedly connected with a damper (63), and the top of the damper (63) is fixedly connected to the inside of the fixed block (20).

6. The grinding and cleaning equipment for copper alloy strip according to claim 2, characterized in that, Both the left and right sides inside the lifting block (58) are slidably connected with a first sliding rod (64), the first sliding rod (64) is fixedly connected to the inside of the fixed block (20), both the left and right sides inside the lifting plate (54) are slidably connected with a second sliding rod (65), and the second sliding rod (65) is fixedly connected to the inside of the fixed block (20).

7. A grinding and cleaning device for copper alloy strips according to claim 2, characterized in that One side inside the grinding roller (34) is slidably connected with a fixed shaft (40), one end of the fixed shaft (40) is fixedly connected to the inside of the fixed block (20), and a third guiding roller (41) is rotatably connected to one side of the fixed block (20).

8. The abrasive cleaning equipment for copper alloy strips according to claim 1, characterized in that, An uncoiler (12) is installed on one side of the copper alloy coil (11), a coiler (13) is installed on the other side of the copper alloy coil (11), two hinges (15) are provided between the box door (14) and the outer shell (1), a door handle (16) is installed on the front side of the box door (14), a cleaning machine (17) is fixedly connected inside the outer shell (1), and a plurality of evenly distributed first guiding rollers (18) are rotatably connected inside the outer shell (1). A plurality of evenly distributed second guiding rollers (19) are rotatably connected inside the cleaning machine (17).

9. The abrasive cleaning equipment for copper alloy strips according to claim 1, characterized in that, One side of the fixed block (20) is fixedly connected with a hydraulic rod (21), one side of the hydraulic rod (21) is fixedly connected inside the outer shell (1), two first slide rails (22) are fixedly connected to both the front and rear sides of the fixed block (20), the outer wall of the first slide rail (22) is slidably connected inside the outer shell (1), a collection box (23) is slidably connected inside the outer shell (1), a handle (24) is installed on the front side of the collection box (23), two second slide rails (25) are fixedly connected to both the left and right sides of the bottom of the collection box (23), and the outer wall of the second slide rail (25) is slidably connected inside the outer shell (1). Two brush plates (26) are fixedly connected inside the outer shell (1).

10. A method for using a grinding and cleaning device for copper alloy strips uses a grinding and cleaning device for copper alloy strips as described in claim 9, characterized in that, Including: Step 1: Starting the motor (31) can drive the worm (32) and the convex plate (33) to rotate. The convex plate (33) can drive the grinding roller (34) to rotate through rotation. The grinding roller (34) can grind the copper alloy coil (11) through rotation. At the same time, the worm (32) rotates to drive the convex plate (33) to rotate. The convex plate (33) can drive the swing block (38) to swing through the cooperation of the eccentric wheel (36) and the connecting rod (37), and then drive the sleeve (39) to move repeatedly, so that the grinding roller (34) moves repeatedly during rotation, thereby improving the grinding effect; Step 2: The worm (32) can also drive the first gear (51) to rotate during rotation. The first gear (51) rotates to drive the second gear (52) to rotate, and drives the lifting plate (54) to lift through the cooperation of the eccentric shaft (53). The lifting of the lifting plate (54) can drive the lifting block (58) to lift through the cooperation of the convex block (55), the first trapezoidal block (56) and the second trapezoidal block (57), and then drive the connecting block (59) and the buffer block (60) to lift, so that the copper alloy coil (11) vibrates, and the waste chips on its surface fall off from the copper alloy coil (11). Step 3: During the rotation of Gear II (52), it can also drive the belt (72) to rotate. The rotation of the belt (72) drives the rotary vane (73) to rotate, causing the external air to flow evenly from the ventilation opening (74) inside the housing (1), thereby blowing off the waste chips on the surface of the copper alloy coil (11). Subsequently, the waste chips on the surface of the copper alloy coil (11) are further cleaned by the brush plate (26), and through the cooperation of the guiding roller I (18) and the guiding roller II (19), the copper alloy coil (11) is cleaned inside the cleaning machine (17). Step 4: Through the cooperation of the hinge (15) and the doorknob (16), the cabinet door (14) can be opened. After opening the cabinet door (14), the cleaning machine (17) and the collection box (23) can be cleaned. Through the hydraulic rod (21) and the slide rail I (22), the fixed block (20) can be driven to move up and down. The fixed block (20) can drive the grinding roller (34) to move up and down through the up and down movement. The grinding roller (34) can adjust the distance between the two grinding rollers (34) through the up and down movement, thereby adapting to different grinding requirements.