Waste recycling device for cable processing
By designing a waste recycling device for cable processing, a screen system and drying components are used to separate and dry cable waste particles of different sizes, solving the problems of uneven particle size and low drying efficiency in the existing technology, and improving particle quality and processing efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- GUANGDONG ZHUJIANG GUANXIAN IND CO LTD
- Filing Date
- 2026-03-25
- Publication Date
- 2026-05-12
AI Technical Summary
Existing crushing equipment produces particles with uneven particle size after crushing. When secondary crushing is performed, small particles are easily crushed again, reducing particle quality. Furthermore, existing drying equipment cannot effectively and specifically dry cable waste particles during the crushing process, resulting in low processing efficiency.
A device for recycling and reusing waste materials from cable processing was designed, including an electric crushing roller, a drying assembly, a screen system, and a suction device. The screen system separates particles of different sizes, and the drying assembly uses airflow to dry the small particles. The suction device is used to dry the wet particles, ensuring that the particles are discharged only when their weight is less than that of the airflow.
This improved the uniformity and quality of particle size, increased drying efficiency, prevented secondary crushing of small particles, enhanced the targeted drying effect of the crushing process, and improved overall processing efficiency.
Smart Images

Figure CN122008447A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of cable waste recycling, and more particularly to a device for recycling and reusing waste materials used in cable processing. Background Technology
[0002] Polyvinyl chloride (PVC) cable waste particles are an important component of cables. Effective recycling of these particles not only enables resource reuse and reduces production costs but also minimizes environmental pollution. However, existing crushing equipment produces uneven particle sizes, which can lead to further crushing of smaller particles during secondary crushing, reducing particle quality. Furthermore, due to the moisture content of the waste particles, existing drying equipment lacks targeted drying measures for the crushing process. Current drying methods often fail to directly target critical crushing areas, hindering timely and effective drying of the crushed cable waste particles and requiring additional drying steps, resulting in low processing efficiency. Summary of the Invention
[0003] In order to overcome the shortcomings of existing crushing equipment, such as uneven particle size after crushing and the tendency to crush small particles again during secondary crushing, thus reducing particle quality, this invention provides a device for recycling and reusing waste materials used in cable processing.
[0004] The technical solution is as follows: A waste recycling and reuse device for cable processing includes a support, a cylinder, and an electric crushing roller rotatably connected to the cylinder; the support is fixedly connected to the inclined cylinder; an inlet is opened on the upper side of the cylinder; an outlet is opened on the lower side of the cylinder; it also includes a fixing ring; the cylinder is fixedly connected to the fixing ring; the fixing ring has a groove; several electric sliders are slidably connected in the groove; all the electric sliders are fixedly connected to a support ring, and the support ring is rotatably connected to the cylinder; the support ring has several screen holes; an annular cavity is formed between the lower side of the support ring and the inner side of the cylinder; two electric slide rails are fixedly connected to the support ring; Each electric slide rail is slidably connected to a moving block; each moving block is fixedly connected to an electric push rod I; the telescopic ends of the two electric push rods I are jointly fixedly connected to a screen I, and the screen I is slidably connected to the inner wall of the supporting ring, and the aperture of the screen I is larger than the aperture of the screen hole; the cylinder has an annular groove; a screen II is fixedly connected in the annular groove, and the aperture of the screen II is larger than the aperture of the screen I; a retaining ring is fixedly connected in the annular groove; a suction pipe is fixedly connected to the retaining ring, and the suction pipe is connected to the annular groove, and the outlet of the suction pipe is directly facing the electric crushing roller; a pump is connected to the suction pipe; a drying assembly for drying waste particles is connected to the cylinder.
[0005] Furthermore, the drying assembly includes fixed pipes and an electric fan; the cylinder is fixedly connected to two fixed pipes; the two fixed pipes are rotatably connected to the electric fan, and the electric fan is located directly below the electric crushing roller.
[0006] Furthermore, it also includes a circular tube II; the cylinder is fixedly connected to several circular tubes I, and the circular tubes I are connected to the annular cavity; the cylinder is fixedly connected to several circular tubes II, and the circular tubes II are connected to the annular cavity.
[0007] Furthermore, it also includes a hammering plate; a thin-walled section is provided on the lower side of the cylinder; an electric push rod II is fixedly connected to the cylinder; the extension end of the electric push rod II is fixedly connected to the hammering plate, and the hammering plate is in contact with the thin-walled section.
[0008] Furthermore, it also includes round rods; several round rods located inside the annular cavity are fixedly connected to the lower side of the supporting ring.
[0009] Furthermore, filters are installed inside both circular tube I and circular tube II.
[0010] Furthermore, it also includes a fixed frame, a connecting plate, a conveyor belt, a motor, and a collection hopper; the cylinder is fixedly connected to two fixed frames; each fixed frame is fixedly connected to a connecting plate, and an electromagnet is installed inside the connecting plate, and the two connecting plates are arranged in a V-shape; each connecting plate is rotatably connected to a conveyor belt; each fixed frame is fixedly connected to a motor, and the output shaft of the motor is fixedly connected to the corresponding conveyor belt; each fixed frame is fixedly connected to a collection hopper, and the collection hopper is in contact with the corresponding conveyor belt.
[0011] Furthermore, it also includes a cylinder, a rectangular plate, and a cutter; the cylinder is fixedly connected to the cylinder body; the retractable end of the cylinder is fixedly connected to the rectangular plate, and the rectangular plate is located between the two conveyor belts; each of the upper sides of the rectangular plate is provided with a cutting edge; the rectangular plate is connected to several cutters.
[0012] Furthermore, the cutter is set at an angle.
[0013] Furthermore, the rectangular plate and the cutter are detachably connected.
[0014] The beneficial effects are as follows: After the qualified small particles enter the annular cavity, the present invention controls the start of an external air pump to suck the annular cavity through the circular pipe II, while external cold air enters the annular cavity through the circular pipe I. Under the action of the wind, the small particles in the annular cavity slowly move towards the discharge port, thereby drying the small particles again. The circular pipe II maintains a fixed drying wind speed in the annular cavity, so that the small particles are only sucked to the discharge port and fall out when their weight is less than the wind force. Otherwise, the damp small particles remain in the annular cavity until they are dried to a predetermined degree where their weight is less than the wind force, thereby improving the drying efficiency.
[0015] When the electric slider drives the support ring to rotate back and forth, it drives the round rod to move, so that the round rod rubs the small particles that fall into the annular cavity back and forth, removing the burrs on the surface of the small particles, making the surface of the small particles relatively smooth and flat, thus improving the quality of the particles. The powder that is ground off is then drawn away by the round tube II.
[0016] Before the waste particles are poured in, when the two conveyor belts are in operation, the electromagnets in the control connecting plate are energized, causing the electromagnets in the connecting plate to generate magnetic attraction. Under the action of magnetic attraction, the metal fragments in the waste particles are attracted to the conveyor belt, thereby separating the metal fragments from the waste particles. As the conveyor belt rotates, the metal fragments are conveyed upwards. When the metal fragments come into contact with the collection hopper, the metal fragments and the collection hopper move relative to each other, so that the metal fragments are scraped into the collection hopper for collection. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the structure of the cable processing waste recycling and reuse device of the present invention; Figure 2 This is a cross-sectional view of the annular cavity disclosed in this invention; Figure 3 This is a partial structural diagram of the combination of circular tube I, circular tube II, electric push rod II, and hammer plate disclosed in this invention. Figure 4 This is a partial structural diagram of the combination of the fixed ring, electric slider, supporting ring, electric slide rail, moving block, and screen I disclosed in this invention. Figure 5 This is a partial structural diagram of the combination of screen II, baffle ring, suction pipe and pump disclosed in this invention; Figure 6 This is a partial structural diagram of the combination of the fixed frame, connecting plate, conveyor belt, motor, collecting hopper and cylinder disclosed in this invention; Figure 7 This is a partial structural diagram of the combination of the connecting plate, conveyor belt, motor, and collecting hopper disclosed in this invention; Figure 8 This is a partial structural diagram of the combination of cylinder, rectangular plate, and cutter disclosed in this invention.
[0018] Component names and numbers in the diagram: 1-Support, 2-Cylinder, 3-Electric crushing roller, 101-Fixing ring, 102-Electric slider, 103-Supporting ring, 104-Electric slide rail, 105-Moving block, 106-Screen I, 107-Screen II, 108-Blocking ring, 109-Suction pipe, 1010-Pump, 1011-Fixing pipe, 1012-Electric fan, 1013-Circular pipe I, 1014-Circular pipe II, 101 5-Electric push rod II, 1016-Hammer plate, 1017-Electric push rod I, 1018-Round rod, 201-Fixed frame, 202-Connecting plate, 203-Conveyor belt, 204-Motor, 205-Collection hopper, 206-Cylinder, 207-Rectangular plate, 208-Cutter, 11-Groove, 20-Inlet, 21-Outlet, 22-Annular groove, 23-Thin-walled section, 31-Sieve hole, 32-Annular cavity, 71-Cutting blade. Detailed Implementation
[0019] The technical solution of the present invention will be further described below with reference to the accompanying drawings.
[0020] Example 1: A device for recycling and reusing waste materials from cable processing, such as... Figures 1-8 As shown, it includes a support 1 and a cylinder 2; the support 1 is fixedly connected to the inclined cylinder 2; the upper side of the cylinder 2 has a feed inlet 20; the lower side of the cylinder 2 has a discharge outlet 21; the cylinder 2 is rotatably connected to an electric crushing roller 3. It also includes a fixed ring 101, an electric slider 102, a support ring 103, an electric slide rail 104, a moving block 105, a screen I 106, a screen II 107, a retaining ring 108, a suction pipe 109, a pump 1010, an electric push rod I 1017, and a drying assembly; the fixed ring 101 is fixedly connected to the cylinder 2; the fixed ring 101 has a sliding groove 11; two electric sliders 102 are slidably connected in the sliding groove 11; all the electric sliders 102 are fixedly connected to the support ring 103, and the support ring 103 is rotatably connected to the cylinder 2; the support ring 103 has several screen holes 31; an annular cavity 32 is formed between the lower side of the support ring 103 and the inner side of the cylinder 2; the support ring 103 is fixedly connected to two electric slide rails 104; each electric slide rail 104 has... A sliding connection includes a movable block 105; each movable block 105 is fixedly connected to an electric push rod I 1017; the telescopic ends of the two electric push rods I 1017 are jointly fixedly connected to a screen I 106, and the screen I 106 is slidably connected to the inner wall of the supporting ring 103, and the aperture of the screen I 106 is larger than the aperture of the screen hole 31; the cylinder 2 has an annular groove 22; a screen II 107 is fixedly connected in the annular groove 22, and the aperture of the screen II 107 is larger than the aperture of the screen I 106; a retaining ring 108 is fixedly connected in the annular groove 22; a suction pipe 109 is fixedly connected to the retaining ring 108, and the suction pipe 109 communicates with the annular groove 22, and the outlet of the suction pipe 109 faces the electric crushing roller 3; the suction pipe 109 is connected to a pump 1010; the cylinder 2 is connected to a drying assembly.
[0021] The drying assembly includes a fixed pipe 1011 and an electric fan 1012; the cylinder 2 is fixedly connected to two fixed pipes 1011; the two fixed pipes 1011 are rotatably connected to the electric fan 1012, and the electric fan 1012 is located directly below the electric crushing roller 3.
[0022] It also includes circular tube I 1013 and circular tube II 1014; several circular tubes I 1013 are fixedly connected to the cylinder 2, and the circular tubes I 1013 are connected to the annular cavity 32; several circular tubes II 1014 are fixedly connected to the cylinder 2, and the circular tubes II 1014 are connected to the annular cavity 32.
[0023] It also includes an electric push rod II 1015 and a hammer plate 1016; a thin-walled portion 23 is provided on the lower side of the cylinder 2; the cylinder 2 is bolted to the electric push rod II 1015; the extension end of the electric push rod II 1015 is fixed to the hammer plate 1016, and the hammer plate 1016 is in contact with the thin-walled portion 23.
[0024] It also includes round rods 1018; several round rods 1018 are fixedly connected to the lower side of the supporting ring 103, and the round rods 1018 are located in the annular cavity 32.
[0025] Filter screens are installed inside the circular tubes I 1013 and II 1014 to filter waste particles and prevent them from falling into the tubes and causing blockages.
[0026] To face Figure 1 Using the perspective as a reference to distinguish directions, during use, an external air pump is connected to circular pipe I 1013 and circular pipe II 1014. Then, the coarse waste particles are manually poured into the electric crushing roller 3 from the feed inlet 20 for crushing. The crushed waste particles fall downward onto the support ring 103. The electric slider 102 is controlled to drive the support ring 103 to rotate back and forth, causing the support ring 103 to shake the crushed waste particles. At the same time, the electric slide rail 104 is controlled to move the moving block 105 to slowly move the screen I 106 towards the screen II 107. The screen I 106 slowly pushes the larger particles upward along the inclined support ring 103, while the smaller particles with the correct particle size are filtered out by the screen I 106 and remain in the support ring 103. This allows the smaller particles with the correct particle size to fall downward from the screen hole 31 into the annular cavity 32, and finally from... The material is discharged from the outlet 21. When the large particles reach the screen II 107, they pass through the screen II 107 and enter the annular groove 22. At this time, the electric push rod I 1017 is controlled to drive the screen I 106 to move upward and get away from the waste particles in the support ring 103. Then, the electric slide rail 104 is controlled to move the moving block 105 to move the screen I 106 away from the screen II 107 and back to the initial position. Then, the electric push rod I 1017 is controlled to drive the screen I 106 to move downward and contact the inner wall of the support ring 103 again. At this time, the pump 1010 is started and the large particles in the annular groove 22 are sucked through the suction pipe 109. The large particles are then pulled back to the electric crushing roller 3 for further crushing. This process is repeated. When the large particles are separated and crushed for the second time, the drying component is controlled to dry the crushed waste particles.
[0027] The working steps of the drying component are as follows: When the waste particles fall from below the electric crushing roller 3 after being crushed, the electric fan 1012 is started. The electric fan 1012 rotates and blows cold air from the outside through the fixed pipe 1011 from left to right towards the core crushing area of the electric crushing roller 3. Subsequently, cold air is blown out from the fixed pipe 1011 on the other side, thus performing preliminary drying on the waste particles being crushed. At the same time, after small particles of the qualified particle size enter the annular cavity 32, the external air pump is started and the annular cavity 32 is sucked in through the circular pipe II 1014, while the cold air from the outside enters the annular cavity 32 through the circular pipe I 1013, causing the small particles in the annular cavity 32 to slowly move towards the discharge port 21 under the action of the airflow. The small particles are then dried again. Since the cylinder 2 is tilted, the small particles tend to move against the wind to the side away from the discharge port 21 under their own gravity, thus prolonging the contact time between the small particles and the cold air. At the same time, based on this windward movement of the small particles, the circular tube II 1014 maintains a fixed drying wind speed for the annular cavity 32, so that the small particles will only be sucked to the discharge port 21 and fall out when their own weight is less than the wind force. Otherwise, the damp small particles will remain in the annular cavity 32 until they are dried to a predetermined degree where their own weight is less than the wind force, thus improving the drying efficiency. At the same time, the circular tube II 1014 can also remove the plastic debris that falls into the annular cavity 32 during the suction process, thus improving the quality of the small particles.
[0028] Simultaneously, while the circular tubes I 1013 and II 1014 are blowing air to dry the small particles in the annular cavity 32, the electric push rod II 1015 is controlled to drive the hammer plate 1016 to move up and down reciprocally to hammer the thin-walled part 23 of the cylinder 2, causing the thin-walled part 23 to vibrate, which in turn causes the small particles in the annular cavity 32 to vibrate reciprocally, increasing the gap between the small particles, improving the contact effect between the cold air and the small particles, and thus improving the drying efficiency.
[0029] Meanwhile, considering that the surface of the crushed small particles will have many protruding burrs, which will reduce the quality of the particles, in order to solve this problem, when the electric slider 102 drives the support ring 103 to rotate back and forth, it drives the round rod 1018 to move, so that the round rod 1018 reciprocates and rubs the small particles that fall into the annular cavity 32, removing the burrs on the surface of the small particles, thereby making the surface of the small particles relatively smooth and flat, improving the quality of the particles, and the powder that is ground off is drawn away by the round tube II 1014.
[0030] Example 2, based on Example 1, such as Figure 1 and Figures 6-8As shown, it also includes a fixed frame 201, a connecting plate 202, a conveyor belt 203, a motor 204, and a collection hopper 205; the cylinder 2 is fixedly connected to two symmetrically distributed fixed frames 201; each fixed frame 201 is fixedly connected to a connecting plate 202, and an electromagnet is provided inside the connecting plate 202, and the two connecting plates 202 are arranged in a V-shape; each connecting plate 202 is rotatably connected to a conveyor belt 203; each fixed frame 201 is fixedly connected to a motor 204, and the output shaft of the motor 204 is fixedly connected to the corresponding conveyor belt 203; each fixed frame 201 is fixedly connected to a collection hopper 205, and the collection hopper 205 is in contact with the corresponding conveyor belt 203.
[0031] It also includes a cylinder 206, a rectangular plate 207 and a cutter 208; the cylinder 2 is fixedly connected to the cylinder 2; the telescopic end of the cylinder 206 is fixedly connected to the rectangular plate 207, and the rectangular plate 207 is located between the two conveyor belts 203; each of the rectangular plates 207 has a cutting blade 71 on its upper side; the rectangular plate 207 is connected to several cutters 208.
[0032] The cutter 208 is set at an angle to increase the contact area between the cutter 208 and the long strip of cable sheath, thereby increasing the cutting area of the cutter 208 on the long strip of cable sheath and reducing the probability of missed cuts.
[0033] The rectangular plate 207 and the cutter 208 are detachably connected, which makes it easy to disassemble and replace the worn cutter 208 after long-term use.
[0034] Considering that waste particles may contain fine copper wires, copper powder, and other metallic foreign objects during storage and transportation, if these metal fragments enter the electric crushing roller 3 and are crushed together, they will damage the blades of the electric crushing roller 3 or the screw of the subsequent extruder. To solve this problem, before the waste particles are poured in, when the two conveyor belts 203 are in operation, the electromagnets in the control connecting plate 202 are energized, causing the electromagnets in the connecting plate 202 to generate magnetic attraction. Then, the control motor 204 is started, and the output shaft of the motor 204 drives the conveyor belt 203 to rotate. Taking the rear conveyor belt 203 as an example, the conveyor belt 203 rotates counterclockwise from the left-to-right perspective. Then, the waste particles are manually poured into the two V-shaped... The waste particles fall onto the electric crushing roller 3 through the gap between the two conveyor belts 203 and are crushed. The two conveyor belts 203 limit the waste particles, ensuring that the waste particles are fed evenly and preventing a large number of waste particles from accumulating in one place on the electric crushing roller 3, thereby improving crushing efficiency. At the same time, the metal fragments in the waste particles are attracted to the conveyor belts 203 by magnetic attraction, thus separating the metal fragments from the waste particles. As the conveyor belts 203 rotate, the metal fragments are conveyed upward. When the metal fragments come into contact with the collection hopper 205, the metal fragments and the collection hopper 205 move relative to each other, so that the metal fragments are scraped into the collection hopper 205 for collection.
[0035] Furthermore, considering that when crushing long strips of waste cable sheaths, the sheaths are prone to tangling and knotting when wound into the electric crushing roller 3, resulting in inconsistent particle size and reduced particle quality, this problem is addressed by controlling cylinder 206 before feeding to move rectangular plate 207 and cutter 208 upwards appropriately, causing rectangular plate 207 and cutter 208 to disengage from the gap between the two conveyor belts 203. Figure 8 As shown, the gap between the rectangular plate 207 and the conveyor belt 203 is increased to facilitate the unloading of cable sheaths larger than the waste particles. When several long cable sheaths are placed into the gap between the rectangular plate 207 and the conveyor belt 203, the control motor 204 is started. The output shaft of the motor 204 drives the conveyor belt 203 to rotate. Taking the rear conveyor belt 203 as an example, the conveyor belt 203 rotates clockwise from a left-to-right perspective, causing the conveyor belt 203 to squeeze the cable sheaths downward into the gap between the two conveyor belts 203 until... Under its own gravity, the cable sheath falls downward into the electric crushing roller 3 below, causing relative movement between the long cable sheath and the cutter 208. This allows the cutter 208 to pre-cut the long cable sheath into short strips for easier crushing. When the long cable sheath is hanging on the upper side of the rectangular plate 207, it is cut by the cutting edge 71. At the same time, when crushing waste particles, multiple cutters 208 divide the gap between the two conveyor belts 203 into multiple relatively independent feeding spaces in the front-to-back direction, further improving the uniformity of feeding.
[0036] Although the present invention has been described in detail with reference to the above embodiments, it will be apparent to those skilled in the art that various changes or modifications can be made to the invention without departing from the principles and spirit of the invention as defined by the claims. Therefore, the detailed description of the embodiments in this disclosure is for illustrative purposes only and is not intended to limit the invention; rather, the scope of protection is defined by the content of the claims.
Claims
1. A waste recycling device for cable processing, comprising a support (1), a cylinder (2), and an electric crushing roller (3) rotatably connected to the cylinder (2); the support (1) is fixedly connected to the inclined cylinder (2); an inlet (20) is provided on the upper side of the cylinder (2); and an outlet (21) is provided on the lower side of the cylinder (2); characterized in that: It also includes a fixed ring (101); the fixed ring (101) is fixedly connected to the cylinder (2); the fixed ring (101) has a groove (11); several electric sliders (102) are slidably connected in the groove (11); all the electric sliders (102) are fixedly connected to a support ring (103), and the support ring (103) is rotatably connected to the cylinder (2); the support ring (103) has several sieve holes (31); an annular cavity (32) is formed between the lower side of the support ring (103) and the inner side of the cylinder (2); the support ring (103) is fixedly connected to two electric slide rails (104); each electric slide rail (104) is slidably connected to a moving block (105); each moving block (105) is fixedly connected to an electric push rod I (1017); the two electric push rods I ( The telescopic ends of 1017 are fixedly connected to screen I (106), and screen I (106) is slidably connected to the inner wall of the support ring (103), and the aperture of screen I (106) is larger than the aperture of screen hole (31); the cylinder (2) is provided with an annular groove (22); screen II (107) is fixedly connected in the annular groove (22), and the aperture of screen II (107) is larger than the aperture of screen I (106); a retaining ring (108) is fixedly connected in the annular groove (22); a suction pipe (109) is fixedly connected to the retaining ring (108), and the suction pipe (109) is connected to the annular groove (22), and the outlet of the suction pipe (109) is directly facing the electric crushing roller (3); the suction pipe (109) is connected to a pump (1010); the cylinder (2) is connected to a drying component for drying waste particles.
2. The cable processing waste recycling device according to claim 1, characterized in that, The drying assembly includes a fixed pipe (1011) and an electric fan (1012); the cylinder (2) is fixedly connected to two fixed pipes (1011); the two fixed pipes (1011) are rotatably connected to the electric fan (1012), and the electric fan (1012) is located directly below the electric crushing roller (3).
3. The cable processing waste recycling device according to claim 2, characterized in that, It also includes a circular tube II (1014); the cylinder (2) is fixedly connected to several circular tubes I (1013), and the circular tubes I (1013) are connected to the annular cavity (32); the cylinder (2) is fixedly connected to several circular tubes II (1014), and the circular tubes II (1014) are connected to the annular cavity (32).
4. The cable processing waste recycling device according to claim 3, characterized in that, It also includes a hammer plate (1016); a thin-walled section (23) is provided on the lower side of the cylinder (2); an electric push rod II (1015) is fixedly connected to the cylinder (2); the extension end of the electric push rod II (1015) is fixedly connected to the hammer plate (1016), and the hammer plate (1016) is in contact with the thin-walled section (23).
5. The cable processing waste recycling device according to claim 4, characterized in that, It also includes round rods (1018); several round rods (1018) located in the annular cavity (32) are fixedly connected to the lower side of the supporting ring (103).
6. The cable processing waste recycling device according to claim 5, characterized in that, Filter screens are installed inside the circular tube I (1013) and the circular tube II (1014).
7. The cable processing waste recycling device according to claim 3, characterized in that, It also includes a fixed frame (201), a connecting plate (202), a conveyor belt (203), a motor (204), and a collection hopper (205); the cylinder (2) is fixedly connected to two fixed frames (201); each fixed frame (201) is fixedly connected to a connecting plate (202), and an electromagnet is provided in the connecting plate (202), and the two connecting plates (202) are arranged in a V shape; each connecting plate (202) is rotatably connected to a conveyor belt (203); each fixed frame (201) is fixedly connected to a motor (204), and the output shaft of the motor (204) is fixedly connected to the corresponding conveyor belt (203); each fixed frame (201) is fixedly connected to a collection hopper (205), and the collection hopper (205) is in contact with the corresponding conveyor belt (203).
8. The cable processing waste recycling device according to claim 1, characterized in that, It also includes a cylinder (206), a rectangular plate (207) and a cutter (208); the cylinder (2) is fixedly connected to the cylinder (2); the telescopic end of the cylinder (206) is fixedly connected to the rectangular plate (207), and the rectangular plate (207) is located between the two conveyor belts (203); each of the rectangular plates (207) has a cutting edge (71) on its upper side; the rectangular plate (207) is connected to several cutters (208).
9. A device for recycling and reusing waste materials from cable processing according to claim 8, characterized in that, The cutter (208) is set at an angle.
10. A device for recycling and reusing waste materials from cable processing according to claim 8, characterized in that, The rectangular plate (207) and the cutter (208) are detachably connected.