Adhesive tape processing waste treatment device
By designing the rotary switching unit, automatic feeding unit, and conveying unit to work in synergy, the fully automatic continuous operation of the tape processing waste treatment device is realized, which solves the problem of increased operational burden when changing the recycling roller in the existing device, and improves processing efficiency and equipment adaptability.
Patent Information
- Application Number
- CN202511883716.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-15
- Publication Date
- 2026-02-13
AI Technical Summary
Existing tape processing waste disposal equipment increases the workload of operators when replacing the recycling rollers, resulting in low efficiency.
A tape processing waste treatment device was designed, comprising a rotary switching unit, an automatic feeding unit, and a conveying unit. Through collaborative work, it achieves continuous operation of the entire process of automatic feeding, switching, and unloading of the winding drum. It adopts a collaborative drive system combining pneumatic and electric power to realize automatic disassembly and assembly and uniform winding of the winding drum.
It achieves fully automated continuous operation, reduces manual intervention, improves waste processing efficiency, ensures uniform winding and orderly stacking, has a compact structure, strong adaptability, is easy to maintain, and reduces labor intensity and maintenance costs.
Smart Images

Figure CN121516656A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of waste treatment technology, specifically a device for treating waste from tape processing. Background Technology
[0002] Adhesive tape consists of two parts: a substrate and an adhesive. It connects two or more unconnected objects together by bonding. Its surface is coated with an adhesive. The earliest adhesives came from animals and plants; in the 19th century, rubber was the main component of adhesives; while today, various polymers are widely used. Adhesives can stick things together because their molecules form bonds with the molecules of the objects to be bonded, and these bonds firmly bind the molecules together. The composition of adhesives varies depending on the brand and type, using various polymers. Adhesive tapes can be classified according to their function: high-temperature tapes, double-sided tapes, insulating tapes, specialty tapes, pressure-sensitive tapes, and die-cut tapes, each with different functions to suit different industry needs.
[0003] Currently, most waste disposal devices for tape processing on the market require replacing the recycling rollers after winding and recycling scraps from the tape processing process to a certain volume, which increases the workload of operators. Therefore, in view of the above situation, there is an urgent need to develop a waste disposal device for tape processing to overcome the shortcomings in current practical applications. Summary of the Invention
[0004] The purpose of this invention is to provide a device for treating waste materials from tape processing, so as to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, the present invention provides the following technical solution:
[0006] A device for processing tape processing waste includes: a base and a support frame, the support frame being slidably connected to the base; a rotary switching unit connected to the support frame for supporting and switching take-up drums, and cooperating with the take-up drums to automatically rewind tape scraps; a recycling unit connected to the base for storing rewind drums that have been wound up; an automatic feeding unit fixedly disposed on the outer side of the top of the support frame for continuously and automatically supplying take-up drums to the rotary switching unit; and a conveying unit disposed outside the rotary switching unit and connected to the base for conveying tape scraps. To the take-up drum; wherein, the rotation switching unit includes: a reciprocating swing assembly, a limiting support assembly, an alternating support assembly, and a cooperative drive control assembly. The limiting support assembly is disposed between the support frame and the base, and is connected to the reciprocating swing assembly disposed inside the base, for cooperating with the reciprocating swing assembly to realize the reciprocating motion of the support frame. The alternating support assembly is connected to the support frame, and the inner side of the alternating support assembly is connected to the cooperative drive control assembly, for cooperating with the cooperative drive control assembly and the automatic feeding unit to complete the automatic assembly and disassembly of the take-up drum, and cooperating with the conveying unit to complete the continuous winding of the tape scraps.
[0007] As a further embodiment of the present invention: the alternating support assembly includes: a switching motor, a support column, a rotating column, a rotating motor, a mounting base, a connecting base, and a locking assembly. The switching motor is fixedly disposed inside the support frame. A support column rotatably connected to the support frame is disposed outside the switching motor. The support column is connected to the output end of the switching motor via a first belt. A connecting base is fixedly disposed outside the rotating column. Four rotating columns are equidistantly arranged around the outside of the support column and rotatably connected to the support column. A rotating motor fixedly connected to the connecting base is disposed outside the support column. The output end of the rotating motor is connected to the rotating column on the adjacent side via a second belt. A mounting base is fixedly disposed outside the other end of the rotating column. A locking assembly connected to the rotating column is disposed on the mounting base.
[0008] As a further embodiment of the present invention: the locking assembly includes: a piston groove, a retracting component, a control block, a clamping plate, a connecting rod, and a directional block. The piston groove is disposed inside the rotating column and connected to the collaborative drive control assembly. The retracting component is slidably disposed inside the piston groove. The other end of the retracting component is connected to the control block disposed inside the mounting base. A plurality of clamping plates are arranged around the outside of the mounting base. A directional block is fixedly disposed outside the clamping plates. The directional block is slidably connected to a positioning groove disposed on the wall of the mounting base. A connecting rod is disposed between the clamping plate and the control block. One end of the connecting rod is rotatably connected to the control block, and the other end is rotatably connected to the clamping plate.
[0009] As a further aspect of the present invention: the cooperative drive and control assembly includes: a control piston, a control groove, a control element, a guide tube, and a co-control tube. The control groove is symmetrically arranged inside the support column. A control piston is slidably arranged inside the control groove on both sides. A control element is fixedly arranged between the control piston and the support column. A guide tube and a co-control tube connected to the control groove are respectively arranged on both sides of the control piston. The other end of the guide tube and the co-control tube are rotatably connected to the rotating column arranged oppositely, and connected to the piston groove inside the rotating column, so as to cooperate with the movement of the control piston to drive the locking assemblies on both sides to move in opposite directions.
[0010] As a further embodiment of the present invention: the reciprocating swing assembly includes: a control motor, a crankshaft connecting rod, a transmission rod, a pressure control component, a pressure control tube, a control box, and a cam. The control motor is fixedly mounted inside the base, and the output end of the control motor is fixedly connected to the crankshaft connecting rod. A cam connected to the recovery unit is fixedly mounted on the outer side of the other end of the crankshaft connecting rod. A transmission rod is rotatably mounted on the curved part of the crankshaft connecting rod. The other end of the transmission rod is rotatably connected to a pressure control component that is slidably mounted inside the pressure control tube. The pressure control tube is connected to the control box fixedly mounted inside the base. The control box is also connected to a limit support assembly.
[0011] As a further embodiment of the present invention: the limiting support assembly includes: a control tube, a limiting frame, a connecting piston, and a connecting groove. The limiting frame is slidably connected to the top shell wall of the base and fixedly connected to the support frame. One end of the control tube is fixedly connected to the control box, and the other end is fixedly provided with a connecting piston. The connecting piston is slidably connected to the connecting groove provided inside the limiting frame, which is used to cooperate with the rotation of the crankshaft connecting rod to realize the reciprocating motion of the support frame.
[0012] As a further embodiment of the present invention: the recycling unit includes: a recycling bin, a plug-in block, a plug-in seat, and a guide plate. The plug-in seat is slidably disposed on the inner side of the base, abutting against the cam, and slidably connected to the guide plate fixedly disposed on the inner side of the base. A return spring is fixedly disposed between the guide plate and the plug-in seat. The plug-in block is fixedly disposed on the outer side of the recycling bin, and the plug-in block is plugged into the plug-in seat to cooperate with the rotation of the cam to realize the swing of the recycling bin.
[0013] As a further embodiment of the present invention: the automatic feeding unit includes: a conveyor frame, a discharge hole, a clamping frame, a telescopic component, and a conveyor belt. The conveyor frame is fixedly installed on the outer side of the top of the support frame. The conveyor frame is provided with a discharge hole for the passing of the take-up drum. The clamping frames are symmetrically arranged on the inner side of the conveyor frame. The telescopic component is fixedly installed between the clamping frame and the conveyor frame. Conveyor belts are installed on both sides of the clamping frame to cooperate with the clamping frame to limit and transport the take-up drum located on the conveyor frame.
[0014] As a further embodiment of the present invention: the conveying unit includes: a connecting frame, a pushing component, a conveying frame, a conveying wheel, a lifting frame, an auxiliary wheel, and a lifting component. The connecting frame is disposed on the outside of the base and connected to the base through the pushing component. A conveying frame is fixedly disposed on the outside of the connecting frame. A conveying wheel is installed on the inside of the conveying frame. A lifting frame is disposed on the outside of the top of the conveying wheel. A lifting component is fixedly disposed between the lifting frame and the conveying frame. An auxiliary wheel is installed on the inside of the lifting frame to cooperate with the conveying wheel to complete the conveying of tape scraps.
[0015] As a further embodiment of the present invention, the conveying unit further includes: a cutting blade, a fixing frame, and a lifting component. The cutting blade is symmetrically arranged between the conveying frame and the alternating support assembly. A fixing frame is fixedly arranged on the outer side of the opposite end of the two cutting blades. A lifting component is fixedly arranged between the fixing frame and the conveying frame to cooperate with the conveying frame to automatically cut the scraps of tape during conveying.
[0016] Compared with the prior art, the beneficial effects of the present invention are:
[0017] 1. Achieve fully automated continuous operation: Through the coordinated work of the rotary switching unit, automatic feeding unit and conveying unit, the automatic feeding, switching, winding and unloading of the winding drum is realized to achieve continuous operation of the entire process, which greatly improves the efficiency of waste treatment.
[0018] 2. Reduced manual intervention: The clamping, switching, and disassembly of the winding drum are all completed automatically through mechanical and pneumatic control, which reduces the workload of operators and lowers labor intensity;
[0019] 3. Uniform winding and orderly stacking: The reciprocating oscillating component drives the winding drum to move laterally, which, together with the oscillating mechanism of the recycling unit, makes the scraps evenly wound and the winding drums neatly distributed in the recycling box, thus improving space utilization.
[0020] 4. Compact structure and stable operation: Each unit is modularly designed with clearly defined functions. The collaborative drive system combines pneumatic and electric power, ensuring precise and reliable operation, making it suitable for continuous industrial production environments.
[0021] 5. High adaptability and easy maintenance: The device is suitable for recycling various tape scraps. Key components are easy to disassemble and replace, resulting in low maintenance costs and a long service life. Attached Figure Description
[0022] Figure 1 This is a schematic diagram of a waste material processing device for adhesive tape manufacturing.
[0023] Figure 2 This is a cross-sectional view of the rotary switching unit in the tape processing waste treatment device.
[0024] Figure 3This is a schematic diagram of the alternating support components in a tape processing waste treatment device.
[0025] Figure 4 This is a cross-sectional view of the alternating support assembly in a tape processing waste treatment device.
[0026] Figure 5 for Figure 4 A magnified structural diagram of point A in the middle.
[0027] Figure 6 This is a schematic diagram of the collaborative drive and control component in a tape processing waste treatment device.
[0028] Figure 7 This is a schematic diagram of the reciprocating oscillating component in a tape processing waste treatment device.
[0029] Figure 8 This is a schematic diagram of the recycling unit in a tape processing waste treatment device.
[0030] Figure 9 This is a schematic diagram of the automatic feeding unit in a tape processing waste treatment device.
[0031] Figure 10 This is a schematic diagram of the conveying unit in a tape processing waste treatment device.
[0032] In the diagram: 1. Base; 2. Support frame; 3. Rotary switching unit; 4. Recycling unit; 5. Conveying unit; 6. Automatic feeding unit; 7. Reciprocating swing assembly; 8. Limit support assembly; 9. Alternating support assembly; 10. Cooperative drive control assembly; 11. Switching motor; 12. Support column; 13. Rotating column; 14. Rotary motor; 15. Mounting base; 16. Connecting base; 17. Piston groove; 18. Retracting / unloading component; 19. Control block; 20. Clamping plate; 21. Connecting rod; 22. Orienting block; 23. Control piston; 24. Control groove; 25. Control component; 26. Guide tube; 27. 28. Control motor; 29. Crankshaft connecting rod; 30. Transmission rod; 31. Pressure control component; 32. Pressure control tube; 33. Transmission control box; 34. Transmission control tube; 35. Limiting frame; 36. Connecting piston; 37. Connecting groove; 38. Cam; 39. Recycling box; 40. Insertion block; 41. Insertion seat; 42. Guide plate; 43. Conveyor frame; 44. Discharge hole; 45. Clamping frame; 46. Telescopic component; 47. Conveyor belt; 48. Connecting frame; 49. Pushing component; 50. Conveyor frame; 51. Conveyor wheel; 52. Lifting frame; 53. Auxiliary wheel; 54. Lifting component; 55. Locking block. Detailed Implementation
[0033] The technical solution of this application will be further described in detail below with reference to specific embodiments.
[0034] The embodiments of this application are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this application, and should not be construed as limiting this application.
[0035] Please see Figure 1 and Figure 2 In one embodiment of the present invention, a tape processing waste treatment device includes: a base 1 and a support frame 2, the support frame 2 being slidably connected to the base 1; a rotary switching unit 3, connected to the support frame 2, used to cooperate with the support frame 2 to support and switch the take-up drum, and to cooperate with the take-up drum to automatically rewind tape scraps; a recycling unit 4, connected to the base 1, used to cooperate with the rotary switching unit 3 to store the recycled take-up drum; an automatic feeding unit 6, fixedly disposed on the outer side of the top of the support frame 2, used to cooperate with the rotary switching unit 3 to continuously and automatically feed the take-up drum; and a conveying unit 5, disposed on the rotary cutting... The outer side of the switching unit 3 is connected to the base 1 and is used to cooperate with the rotary switching unit 3 for conveying the scrap material. The rotary switching unit 3 includes: a reciprocating swing assembly 7, a limiting support assembly 8, an alternating support assembly 9, and a cooperative drive control assembly 10. The limiting support assembly 8 is located between the support frame 2 and the base 1 and is connected to the reciprocating swing assembly 7 located inside the base 1. It is used to cooperate with the reciprocating swing assembly 7 to realize the reciprocating movement of the support frame 2. The alternating support assembly 9 is connected to the support frame 2. The cooperative drive control assembly 10 is located inside the alternating support assembly 9 and is connected to it. It is used to cooperate with the cooperative drive control assembly 10 and the automatic feeding unit 6 to complete the automatic disassembly and assembly of the take-up drum and to cooperate with the conveying unit 5 to complete the continuous winding of the tape scrap material.
[0036] In this embodiment, during device operation, the tape scraps are connected to the take-up drum by the conveying unit 5. The alternating support assembly 9 works with the take-up drum to complete the winding of the scraps. During the winding process, the automatic feeding unit 6 installs a new take-up drum on the remaining station of the alternating support assembly 9. After the take-up drum finishes winding, the conveying unit 5 cuts the scraps. Subsequently, the alternating support assembly 9 rotates, moving the completed take-up drum directly above the recycling unit 4. The newly installed take-up drum moves to the winding station and continues winding with the conveying unit 5. The alternating support assembly 9, which was originally in the waiting station, moves to the installation station. The installation station and the unloading station... With the positions relatively set, the automatic feeding unit 6 installs the take-up drum onto the alternating support assembly 9 at the installation station. Subsequently, the collaborative drive control assembly 10 drives the alternating support assembly 9 at the unloading station to release the lock on the take-up drum, and at the same time drives the alternating support assembly 9 at the installation station to lock the take-up drum. This process is repeated to complete the continuous recycling of tape scraps. By setting up a rotary switching unit 3, in conjunction with the recycling unit 4, the conveying unit 5 and the automatic feeding unit 6, this application can perform continuous automated disassembly and assembly of the take-up drum, thereby completing the continuous recycling of tape scraps, which greatly improves the recycling efficiency and effect of the equipment for tape processing waste.
[0037] In one embodiment of the present invention, please refer to Figure 2 and Figure 3 The alternating support assembly 9 includes: a switching motor 11, a support column 12, a rotating column 13, a rotating motor 14, a mounting base 15, a connecting base 16, and a locking assembly. The switching motor 11 is fixedly installed inside the support frame 2. A support column 12, rotatably connected to the support frame 2, is installed outside the switching motor 11. The support column 12 is connected to the output end of the switching motor 11 via a first belt. A connecting base 16 is fixedly installed outside the rotating column 13. Four rotating columns 13 are equidistantly arranged around the outside of the support column 12 and rotatably connected to the support column 12. A rotating motor 14, fixedly connected to the connecting base 16, is installed outside the support column 12. The output end of the rotating motor 14 is connected to the adjacent rotating column 13 via a second belt. A mounting base 15 is fixedly installed outside the other end of the rotating column 13. A locking assembly connected to the rotating column 13 is installed on the mounting base 15.
[0038] In this embodiment, the first belt component includes a first pulley fixedly disposed at the output end of the switching motor 11 and outside the support column 12, and a belt for connecting the first pulley. The second belt component includes a second pulley fixedly disposed at the output end of the rotary motor 14 and outside the rotating column 13, and a second belt for connecting the second pulley. When the mounting seat 15 is rotated to the mounting position, the take-up drum falls onto the mounting seat 15. The cooperating drive control component can drive the locking component. The locking component cooperates with the mounting seat 15 to clamp and lock the take-up drum. During winding, the rotary motor 14 realizes the rotation of the rotating column 13 connected to it through the second pulley and the second belt. The rotating column 13 drives the mounting seat 15 to rotate. The mounting seat 15 cooperates with the locking component to realize the rotation of the take-up drum, thereby completing the recycling of tape scraps. The switching motor 11 realizes the rotation of the support column 12 through the first pulley and the first belt. The support column 12 cooperates with the rotating column 13 to drive the mounting seat 15 to rotate, completing the switching of the work position, thereby realizing the continuous automatic recycling of tape scraps.
[0039] In one embodiment of the present invention, please refer to Figure 4 and Figure 5 The locking assembly includes: a piston groove 17, a retractable component 18, a control block 19, a clamping plate 20, a connecting rod 21, and a directional block 22. The piston groove 17 is disposed inside the rotating column 13 and is connected to the collaborative drive control assembly 10. The retractable component 18 is slidably disposed inside the piston groove 17. The other end of the retractable component 18 is connected to the control block 19 disposed inside the mounting base 15. Several clamping plates 20 are arranged around the outside of the mounting base 15. A directional block 22 is fixedly disposed outside the clamping plate 20. The directional block 22 is slidably connected to a positioning groove disposed on the shell wall of the mounting base 15. A connecting rod 21 is disposed between the clamping plate 20 and the control block 19. One end of the connecting rod 21 is rotatably connected to the control block 19, and the other end is rotatably connected to the clamping plate 20.
[0040] In this embodiment, the take-up and release component 18 includes a first piston slidably disposed inside the piston groove 17 and a first push rod fixedly connected to the first piston. The other end of the first push rod is fixedly connected to the control block 19. In addition, the rotating column 13 has a vent hole connected to the piston groove 17 on the column wall away from the support column 12. The cooperating drive and control component 10 can simultaneously guide the air inside the piston groove 17 on the opposite side. When the air pressure in one piston groove 17 increases, the air pressure in the other piston groove 17 decreases. The take-up and release component 18 moves accordingly with the change in air pressure. The take-up and release component 18 drives the control block 19 to move. The control block 19 cooperates with the connecting rod 21 to realize the take-up and release of the clamping plate 20. The directional block 22 can cooperate with the positioning groove to realize the movement of the clamping plate 20. The clamping plate 20 cooperates with the mounting base 15 to lock the installed take-up drum. By setting the locking component, the stability of the take-up drum during take-up is ensured, thereby ensuring the reliability and effectiveness of the equipment in recycling tape scraps.
[0041] In one embodiment of the present invention, please refer to Figure 5 and Figure 6 The collaborative drive and control assembly 10 includes: a control piston 23, a control groove 24, a control element 25, a guide tube 26, and a co-control tube 27. The control groove 24 is symmetrically arranged inside the support column 12. The control piston 23 is slidably arranged inside the control groove 24 on both sides. The control element 25 is fixedly arranged between the control piston 23 and the support column 12. The guide tube 26 and the co-control tube 27 connected to the control groove 24 are respectively arranged on both sides of the control piston 23. The other end of the guide tube 26 and the co-control tube 27 are rotatably connected to the rotating column 13 arranged opposite to each other, and are connected to the piston groove 17 inside the rotating column 13, so as to cooperate with the movement of the control piston 23 to drive the locking assemblies on both sides to move in opposite directions.
[0042] In this embodiment, the control component 25 is an electric push rod, which is fixedly installed inside the support column 12. The other end is fixedly connected to the control piston 23. After the installation station completes the placement of the take-up drum, the corresponding control component 25 drives the corresponding control piston 23 to move inside the control groove 24. The air inside one side of the control groove 24 enters the piston groove 17 inside the installation station along the guide pipe 26, thereby driving the clamping plate 20 to clamp and lock the take-up drum located at the installation station. The other side of the control groove 24 extracts the air inside the piston groove 17 inside the unloading station through the co-control pipe 27, driving the clamping plate 20 at the unloading station to release the fixed take-up drum. The take-up drum falls into the recycling unit 4, realizing automatic disassembly and assembly. By setting the co-drive control component 10, the automatic disassembly and assembly of the take-up drum can be completed, thereby completing the continuous recycling of tape scraps, which greatly improves the recycling efficiency and effect of the equipment for tape processing waste.
[0043] In one embodiment of the present invention, please refer to Figure 7 The reciprocating oscillating assembly 7 includes: a control motor 28, a crankshaft connecting rod 29, a transmission rod 30, a pressure control component 31, a pressure control tube 32, a transmission control box 33, and a cam 38. The control motor 28 is fixedly installed inside the base 1, and the output end of the control motor 28 is fixedly connected to the crankshaft connecting rod 29. The other end of the crankshaft connecting rod 29 is fixedly provided with a cam 38 connected to the recovery unit 4. The transmission rod 30 is rotatably installed on the curved part of the crankshaft connecting rod 29. The other end of the transmission rod 30 is rotatably connected to the pressure control component 31, which is slidably installed inside the pressure control tube 32. The pressure control tube 32 is connected to the transmission control box 33, which is fixedly installed inside the base 1. The transmission control box 33 is also connected to the limit support assembly 8.
[0044] In this embodiment, the second piston and the second push rod, which are fixedly connected to the second piston, are slidably disposed inside the pressure control component 31 inside the pressure control tube 32. One end of the transmission rod 30 is rotatably connected to the second push rod, and the other end is rotatably connected to the bent part of the crankshaft connecting rod 29. The control motor 28 drives the crankshaft connecting rod 29 to rotate. The crankshaft connecting rod 29, together with the transmission rod 30, drives the pressure control component 31 to reciprocate inside the pressure control tube 32. This, in turn, works with the transmission control box 33 to drive the limit support component 8. The limit support component 8, together with the base 1, realizes the reciprocating motion of the support frame 2. The support frame 2 can drive the support column 12 to reciprocate laterally. The take-up drum in the winding process will also move accordingly, so that the take-up drum can evenly recycle the scraps of the tape. In addition, the crankshaft connecting rod 29 can also drive the cam 38 to rotate. The cam 38 can realize the swing of the recycling unit 4, so that the take-up drum falling into the inside of the recycling unit 4 is evenly distributed, which greatly improves the utilization rate of the recycling unit 4 and thus ensures the recycling efficiency.
[0045] In one embodiment of the present invention, please refer to Figure 2 and Figure 7 The limiting support assembly 8 includes: a control tube 34, a limiting frame 35, a connecting piston 36, and a connecting groove 37. The limiting frame 35 is slidably connected to the top shell wall of the base 1 and fixedly connected to the support frame 2. One end of the control tube 34 is fixedly connected to the control box 33, and the other end is fixedly provided with a connecting piston 36. The connecting piston 36 is slidably connected to the connecting groove 37 provided inside the limiting frame 35, which is used to cooperate with the rotation of the crankshaft connecting rod 29 to realize the reciprocating motion of the support frame 2.
[0046] In this embodiment, as the pressure control component 31 reciprocates inside the pressure control tube 32, the air inside the transmission control box 33 enters and exits the connecting groove 37 along the transmission control tube 34. In conjunction with the connecting piston 36, the reciprocating motion of the limit frame 35 is realized. The limit frame 35 drives the support frame 2 to move synchronously, thereby enabling the take-up drum to evenly recycle the scraps of the tape, ensuring the recycling effect of the take-up drum.
[0047] In one embodiment of the present invention, please refer to Figure 8 The recycling unit 4 includes a recycling bin 39, a plug-in block 40, a plug-in seat 41, and a guide plate 42. The plug-in seat 41 is slidably disposed on the inner side of the base 1, abutting against the cam 38, and slidably connected to the guide plate 42 fixedly disposed on the inner side of the base 1. A return spring is fixedly disposed between the guide plate 42 and the plug-in seat 41. The plug-in block 40 is fixedly disposed on the outer side of the recycling bin 39. The plug-in block 40 is plugged into the plug-in seat 41 and is used to cooperate with the rotation of the cam 38 to realize the swing of the recycling bin 39.
[0048] In this embodiment, a plurality of locking blocks 55 are symmetrically arranged on the inner side of the plug-in base 41. A spring is fixedly arranged between the locking blocks 55 and the plug-in base 41. The shell wall of the plug-in block 40 is provided with a locking groove that matches the locking block 55. The recycling box 39 is placed on the base 1 and slidably connected to the base 1. The plug-in block 40 is plugged into the plug-in base 41. The crankshaft connecting rod 29 drives the cam 38 to rotate. With the help of the spring arranged between the plug-in base 41 and the guide plate 42, the reciprocating motion of the plug-in base 41 is realized. The plug-in base 41 and the plug-in block 40 realize the reciprocating motion of the recycling box 39, so that the winding drum falling into the inner side of the recycling box 39 is evenly distributed, which greatly improves the utilization rate of the recycling box 39 and thus ensures the recycling efficiency.
[0049] In one embodiment of the present invention, please refer to Figure 1 and Figure 9 The automatic feeding unit 6 includes: a conveyor frame 43, a discharge hole 44, a clamping frame 45, a telescopic component 46, and a conveyor belt 47. The conveyor frame 43 is fixedly installed on the outer side of the top of the support frame 2. The conveyor frame 43 is provided with a discharge hole 44 for the passing of the winding drum. The clamping frames 45 are symmetrically arranged on the inner side of the conveyor frame 43. The telescopic component 46 is fixedly installed between the clamping frame 45 and the conveyor frame 43. The conveyor belts 47 are installed on both sides of the clamping frame 45 to cooperate with the clamping frame 45 to limit and transport the winding drum located on the conveyor frame 43.
[0050] In this embodiment, the telescopic component 46 is symmetrically arranged between the clamping frame 45 and the conveying frame 43. The telescopic component 46 is an electric push rod. The take-up drum is placed equidistantly on the conveying frame 43. The telescopic component 46 drives the clamping frame 45 to move. The conveyor belts 47 on both sides abut against the take-up drum to complete the limiting and conveying of the take-up drum. When the take-up drum is sent to the top of the discharge hole 44, the take-up drum and the mounting base 15 are set upward. The telescopic component 46 drives the clamping frame 45 to move, releasing the lock on the take-up drum. The take-up drum falls outside the mounting base 15 along the discharge hole 44. Subsequently, the cooperating drive and control component 10 drives the clamping plate 20 to clamp and fix the take-up drum located on the mounting base 15. By setting the automatic feeding unit 6, it can cooperate with the rotation of the support column 12 to realize the switching of the work position, thereby completing the continuous automatic feeding of the take-up drum, and thus completing the continuous automatic recycling of tape scraps.
[0051] In one embodiment of the present invention, please refer to Figure 1 and Figure 10The conveying unit 5 includes: a connecting frame 48, a pushing member 49, a conveying frame 50, a conveying wheel 51, a lifting frame 52, an auxiliary wheel 53, and a lifting member 54. The connecting frame 48 is located on the outside of the base 1 and is connected to the base 1 through the pushing member 49. The conveying frame 50 is fixedly installed on the outside of the connecting frame 48. The conveying wheel 51 is installed on the inside of the conveying frame 50. The lifting frame 52 is located on the outside of the top of the conveying wheel 51. The lifting member 54 is fixedly installed between the lifting frame 52 and the conveying frame 50. The auxiliary wheel 53 is installed on the inside of the lifting frame 52 to cooperate with the conveying wheel 51 to complete the conveying of tape scraps.
[0052] In this embodiment, both the pusher 49 and the lifting member 54 are electric push rods. The scrap tape is placed on the conveyor wheel 51. The lifting member 54 drives the auxiliary wheel 53 to move closer to the conveyor wheel 51 through the lifting frame 52. The auxiliary wheel 53 and the conveyor wheel 51 limit the scrap tape and complete the conveying of the scrap tape. During conveying, the pusher 49 drives the connecting frame 48 to move closer to the take-up drum, adhering the scrap tape to the take-up drum. The take-up drum rotates with the mounting base 15 to realize the recycling of the scrap tape. By setting the conveying unit 5, the automatic conveying of the scrap tape can be completed, and the automatic connection between the scrap tape and the take-up drum can be realized. Then, in conjunction with the alternating support assembly 9, the continuous automatic recycling of the scrap tape can be completed.
[0053] In one embodiment of the present invention, the conveying unit 5 further includes: a cutting blade, a fixing frame, and a lifting component. The cutting blade is symmetrically arranged between the conveying frame 50 and the alternating support assembly 9. A fixing frame is fixedly arranged on the outer side of the opposite end of the two cutting blades. A lifting component is fixedly arranged between the fixing frame and the conveying frame 50 to cooperate with the conveying frame 50 to automatically cut the scraps of tape during conveying.
[0054] In this embodiment, the lifting component is an electric push rod. After the winding drum finishes winding the scrap material, the lifting component drives the fixed frame to move, and the cutting blades on both sides move relative to each other to cut the scrap material. At this time, the auxiliary wheel 53 can cooperate with the conveying wheel 51 to clamp the scrap material to be wound. After the work station is switched, it cooperates with the extension and retraction of the push component 49 to realize the connection between the scrap material and the winding drum, thereby completing the continuous recycling of the scrap material.
[0055] In this tape processing waste treatment device, during operation, tape scraps are conveyed by conveyor wheels 51 and auxiliary wheels 53. Pushing component 49 pushes connecting frame 48 forward, causing the scraps to adhere to the take-up drum at the current workstation. Rotary motor 14 drives rotating column 13 via second belt, causing mounting base 15 and its take-up drum to rotate, achieving continuous winding of the scraps. During winding, control motor 28 starts, driving transmission rod 30 via crankshaft connecting rod 29 to drive pressure control component 31. The reciprocating motion inside the pressure tube 32, through the cooperation of the control box 33 and the control tube 34, connects to the piston 36 to realize the reciprocating motion of the limit frame 35. The limit frame 35 drives the support frame 2 to move synchronously, so that the winding drum can evenly recycle the scraps of the tape, ensuring the recycling effect of the winding drum. After winding is completed, the lifting component drives the cutting blade to move relative to cut the scraps. Subsequently, the switching motor 11 drives the support column 12 to rotate intermittently through the first belt component, so that the four workstations are switched in sequence.
[0056] At the unloading station, the control component 25 pushes the control piston 23 to move in the control groove 24. One side of the control pipe 26 inflates the piston groove 17, and the other side of the control pipe 27 evacuates the air, causing the take-up and release component 18 to move the control block 19. The connecting rod 21 drives the clamping plate 20 to take up and release the coil. The fully wound take-up drum falls into the recycling box 39. At the same time, the crankshaft connecting rod 29 drives the cam 38 to rotate, pushing the plug-in seat 41 to swing, so that the take-up drum is evenly stacked in the recycling box 39.
[0057] At the installation station, the conveyor belt 47 of the automatic feeding unit 6 delivers the new take-up drum to above the discharge hole 44. The telescopic component 46 releases its clamp, and the take-up drum falls onto the mounting base 15. The collaborative drive and control component 10 drives the clamping plate 20 to close and clamp the new take-up drum, completing the automatic feeding and clamping.
[0058] After the workstation switch is completed, the pusher 49 of the conveyor unit 5 extends again to adhere the scrap material to the new take-up drum and start the next round of take-up. This cycle is repeated to achieve continuous and automated recycling of tape scrap materials.
[0059] The above are merely preferred embodiments of the present invention. It should be noted that those skilled in the art can make several modifications and improvements without departing from the concept of the present invention, and these should also be considered within the scope of protection of the present invention. These will not affect the effectiveness of the implementation of the present invention or the practicality of the patent.
Claims
1. A device for treating waste materials from tape processing, characterized in that, include: The base and the support frame are slidably connected to the base. A rotary switching unit, connected to the support frame, is used to support and switch the take-up drum, and works with the take-up drum to automatically rewind the tape scraps. A recycling unit, connected to the base, is used to store the completed winding drum; An automatic feeding unit is fixedly installed on the outer side of the top of the support frame, and is used to continuously and automatically supply take-up drums to the rotary switching unit. A conveying unit, located outside the rotary switching unit and connected to the base, is used to convey tape scraps to the take-up drum. The rotary switching unit includes a reciprocating swing assembly, a limiting support assembly, an alternating support assembly, and a collaborative drive control assembly. The limiting support assembly is disposed between the support frame and the base and is connected to the reciprocating swing assembly disposed inside the base. It is used to cooperate with the reciprocating swing assembly to realize the reciprocating motion of the support frame. The alternating support assembly is connected to the support frame, and the collaborative drive control assembly is disposed inside the alternating support assembly. It is used to cooperate with the collaborative drive control assembly and the automatic feeding unit to complete the automatic assembly and disassembly of the winding drum, and to cooperate with the conveying unit to complete the continuous winding of the tape scraps.
2. The tape processing waste treatment device according to claim 1, characterized in that, The alternating support assembly includes: a switching motor, a support column, a rotating column, a rotating motor, a mounting base, a connecting base, and a locking assembly. The switching motor is fixedly installed inside the support frame. A support column rotatably connected to the support frame is installed outside the switching motor. The support column is connected to the output end of the switching motor via a first belt. A connecting base is fixedly installed outside the rotating column. Four rotating columns are equidistantly arranged around the outside of the support column and rotatably connected to the support column. A rotating motor fixedly connected to the connecting base is installed outside the support column. The output end of the rotating motor is connected to the adjacent rotating column via a second belt. A mounting base is fixedly installed outside the other end of the rotating column. A locking assembly connected to the rotating column is installed on the mounting base.
3. The tape processing waste treatment device according to claim 2, characterized in that, The locking assembly includes: a piston groove, a retractable component, a control block, a clamping plate, a connecting rod, and a directional block. The piston groove is located inside the rotating column and is connected to the collaborative drive and control assembly. The retractable component is slidably arranged inside the piston groove, and the other end of the retractable component is connected to the control block located inside the mounting base. Several clamping plates are arranged around the outside of the mounting base, and a directional block is fixedly arranged outside the clamping plates. The directional block is slidably connected to a positioning groove located on the wall of the mounting base. A connecting rod is arranged between the clamping plate and the control block, with one end of the connecting rod rotatably connected to the control block and the other end rotatably connected to the clamping plate.
4. The tape processing waste treatment device according to claim 3, characterized in that, The coordinated drive and control assembly includes: a control piston, a control groove, a control component, a guide tube, and a co-control tube. The control grooves are symmetrically arranged inside the support column. Control pistons are slidably arranged inside the control grooves on both sides. A control component is fixedly arranged between the control piston and the support column. A guide tube and a co-control tube connected to the control groove are respectively arranged on both sides of the control piston. The other end of the guide tube and the co-control tube are rotatably connected to the rotating column arranged oppositely, and connected to the piston groove inside the rotating column, so as to cooperate with the movement of the control piston to drive the locking assemblies on both sides to move in opposite directions.
5. The tape processing waste treatment device according to claim 4, characterized in that, The reciprocating oscillating assembly includes: a control motor, a crankshaft connecting rod, a transmission rod, a pressure control component, a pressure control tube, a control box, and a cam. The control motor is fixedly mounted inside the base, and its output end is fixedly connected to the crankshaft connecting rod. A cam connected to the recovery unit is fixedly mounted on the outer side of the other end of the crankshaft connecting rod. A transmission rod is rotatably mounted on the curved part of the crankshaft connecting rod. The other end of the transmission rod is rotatably connected to a pressure control component that is slidably mounted inside the pressure control tube. The pressure control tube is connected to the control box fixedly mounted inside the base, and the control box is also connected to a limit support assembly.
6. The tape processing waste treatment device according to claim 5, characterized in that, The limiting support assembly includes: a control tube, a limiting frame, a connecting piston, and a connecting groove. The limiting frame is slidably connected to the top shell wall of the base and fixedly connected to the support frame. One end of the control tube is fixedly connected to the control box, and the other end is fixedly provided with a connecting piston. The connecting piston is slidably connected to the connecting groove provided inside the limiting frame, which is used to cooperate with the rotation of the crankshaft connecting rod to realize the reciprocating motion of the support frame.
7. The tape processing waste treatment device according to claim 1, characterized in that, The recycling unit includes a recycling bin, a plug-in block, a plug-in seat, and a guide plate. The plug-in seat is slidably disposed on the inner side of the base, abutting against the cam, and slidably connected to the guide plate fixedly disposed on the inner side of the base. A return spring is fixedly disposed between the guide plate and the plug-in seat. A plug-in block is fixedly disposed on the outer side of the recycling bin, and the plug-in block is plugged into the plug-in seat to cooperate with the rotation of the cam to realize the swing of the recycling bin.
8. The tape processing waste treatment device according to claim 1, characterized in that, The automatic feeding unit includes: a conveyor frame, a discharge hole, a clamping frame, a telescopic component, and a conveyor belt. The conveyor frame is fixedly installed on the outer side of the top of the support frame. The conveyor frame is provided with a discharge hole for the winding drum to pass through. The clamping frames are symmetrically arranged on the inner side of the conveyor frame. The telescopic component is fixedly installed between the clamping frame and the conveyor frame. Conveyor belts are installed on both sides of the clamping frame to cooperate with the clamping frame to limit and transport the winding drum located on the conveyor frame.
9. The tape processing waste treatment device according to claim 1, characterized in that, The conveying unit includes: a connecting frame, a pushing component, a conveying frame, a conveying wheel, a lifting frame, an auxiliary wheel, and a lifting component. The connecting frame is located on the outside of the base and is connected to the base through the pushing component. A conveying frame is fixedly installed on the outside of the connecting frame. A conveying wheel is installed on the inside of the conveying frame. A lifting frame is installed on the outside of the top of the conveying wheel. A lifting component is fixedly installed between the lifting frame and the conveying frame. An auxiliary wheel is installed on the inside of the lifting frame to cooperate with the conveying wheel to complete the conveying of tape scraps.
10. The tape processing waste treatment device according to claim 9, characterized in that, The conveying unit also includes: a cutting blade, a fixing frame, and a lifting component. The cutting blade is symmetrically arranged between the conveying frame and the alternating support assembly. A fixing frame is fixedly arranged on the outer side of the opposite end of the two cutting blades. A lifting component is fixedly arranged between the fixing frame and the conveying frame to cooperate with the conveying frame to automatically cut the scraps of the conveying tape.