Degradable glass fiber cloth offcut recycling and granulating device
By combining spiral grooves, sliders, ratchet wheels, and ratchet teeth, the biodegradable glass fiber cloth edge recycling and granulation device achieves efficient switching and stable cutting, solving the problems of low work efficiency and low pass rate, and realizing an efficient and stable granulation process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- SHANDONG SHUOYUAN NEW MATERIALS CO LTD
- Filing Date
- 2026-03-26
- Publication Date
- 2026-05-12
AI Technical Summary
Existing biodegradable glass fiber fabric edge recycling and granulation devices suffer from low working efficiency and low granulation qualification rate, and it is difficult to separate unqualified particles from qualified particles.
The design employs a combination of spiral grooves, sliders, ratchet, and ratchet teeth to achieve rapid switching and stability of the cutter. Combined with the push frame, lever, and push rod, it ensures stable movement of the sliding cylinder and timely screening of the screen. The screening is achieved by converting the motor into oscillating force, ensuring the stability and pass rate of granulation.
It improves work efficiency, increases the granulation qualification rate, ensures the separation of unqualified granules from qualified granules, and facilitates operation and cleaning.
Smart Images

Figure CN122008435A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of recycling and granulation equipment technology, and more particularly to a recycling and granulation equipment for biodegradable glass fiber fabric scraps. Background Technology
[0002] The biodegradable glass fiber cloth edge recycling and granulation device is a device for recycling and reusing edge materials generated during the production of biodegradable glass fiber cloth.
[0003] The biodegradable glass fiber cloth edge recycling and granulation device first feeds the edge material through a feeding mechanism. After pretreatment and cutting into appropriate sizes, it enters the crushing unit for finer processing. Next, it is washed to remove impurities, then dried to reduce the moisture content. Finally, in the melt granulation stage, the material is melted, extruded, and granulated to obtain reusable particles. During granulation, the wear of the blades can affect the granulation process, causing the particle size to not meet the requirements. This necessitates stopping the machine for replacement or grinding, resulting in low work efficiency. Furthermore, the mixing of non-compliant and compliant granules makes separation difficult, leading to a lower pass rate.
[0004] Therefore, we provide a biodegradable glass fiber fabric edge recycling and granulation device. Summary of the Invention
[0005] The purpose of this invention is to address the aforementioned technical problems by providing a biodegradable glass fiber fabric edge recycling and granulation device, achieving high working efficiency and high granulation qualification rate.
[0006] In view of this, the present invention provides a biodegradable glass fiber cloth edge recycling and granulation device, including an equipment platform and a support plate fixedly installed on the upper surface of the equipment platform. A fixing plate is provided on the upper surface of the support plate, and an equipment compartment is fixedly installed on the upper surface of the support plate. The upper surface of the fixed plate is provided with two symmetrically distributed push frames. One of the push frames has a push rod fixedly installed on one side. A sliding cylinder is provided between the two push frames. A cone is fixedly installed at one end of the sliding cylinder. Several protrusions are fixedly installed on the periphery of the cone. The push rod has a spiral groove on its periphery, and a slider is slidably connected to the inner wall of the spiral groove; The equipment compartment is equipped with a support body, and a drive hole is opened through the middle of the support body. A ratchet tooth is movably installed on the inner wall of the drive hole, and a ratchet wheel is installed inside the drive hole. The outer surface of the ratchet wheel is engaged with the ratchet tooth, and the slider is fixedly installed on the inner wall of the ratchet wheel. The support has two symmetrically distributed rotating cylinders that rotate through one side, and the inner wall of each cylinder has several grooves fixedly formed.
[0007] Preferably, the sliding cylinder has two symmetrically distributed sliding grooves on its periphery, and the two push frames are rotatably mounted with sliding rods at their opposite ends, with the two ends of the sliding rods slidingly contacting the inner walls of the two sliding grooves.
[0008] Preferably, a lever is fixedly installed on the periphery of the sliding cylinder, and two symmetrically distributed limiting blocks are fixedly installed on the inner wall of the sliding cylinder.
[0009] Preferably, a fixing cylinder is fixedly installed through one side of the inner wall of the equipment compartment. One end of the fixing cylinder inside the equipment compartment is rotatably connected to the support body, and the other end of the fixing cylinder extends to the outside of the equipment compartment. A second motor is fixedly installed on the outside of the equipment compartment. A drive shaft is fixedly installed on one end of the output shaft of the second motor. Two symmetrically distributed limiting grooves are opened on the outside of the drive shaft. The limiting grooves are slidably connected to the limiting block.
[0010] Preferably, the support plate has a movable groove at the corner of the upper surface, and there are two sets of movable grooves, with two in each set. A sliding body is fixedly installed at the corner of the lower surface of the fixed plate.
[0011] Preferably, a push rod is fixedly installed on the upper surface of the sliding body, the end of the sliding body away from the fixed plate is slidably connected to the inner wall of the moving groove, and a tension spring is hooked to one side of the sliding body, the end of the tension spring away from the sliding body is hooked to the inner wall of the moving groove.
[0012] Preferably, the upper surface of the fixed plate has two symmetrically distributed electric slide rails embedded in it, and the upper surfaces of the two electric slide rails are fixedly connected to the lower end of the push frame. A screen is slidably attached to the upper surface of the fixed plate, and two lifting blocks are fixedly installed on the upper surface of the screen.
[0013] Preferably, one end of the support extends to the outside of the equipment compartment, and a cutter is fixedly installed on one side of each of the two rotating drums, with a feed cylinder provided on one side of the cutter.
[0014] Preferably, the feed cylinder is fixedly installed through one side of the equipment compartment, and the other end of the feed cylinder extends to the outside of the equipment compartment, with one end of the feed cylinder fixedly connected to the main body of the equipment.
[0015] Preferably, the main body of the device is disposed on one side of the device platform, a motor is fixedly installed on the upper surface of the main body of the device, and a control module is fixedly installed on the upper surface of the device platform.
[0016] Compared with the prior art, the present invention provides a biodegradable glass fiber fabric selvage recycling and granulation device, which has the following beneficial effects: This invention, by combining spiral grooves, sliders, ratchet, and ratchet teeth, can convert the linear motion of the pusher frame into the rotational motion of the ratchet, enabling rapid switching between the two cutters, thereby achieving high work efficiency and high granulation qualification rate.
[0017] This invention, by setting a protrusion and a groove to cooperate, ensures the stability of the cutter during cutting, avoids the vibration of the cutter causing the granulation size to not meet the requirements, and thus further achieves the effect of high granulation qualification rate.
[0018] This invention, by setting up a lever, a push rod, and a tension spring, can convert the rotational force of the motor into an oscillating force, enabling the screen to screen the granules and ensuring the qualified rate of the granules.
[0019] This invention, by setting up a pusher frame, can provide a stable axial thrust, ensuring the accuracy of the sliding cylinder's movement. The symmetrical design also prevents the sliding cylinder from deviating, ensuring the uniformity of movement. At the same time, it can stabilize the sliding cylinder during granulation.
[0020] This invention, by setting up a sieve, enables immediate screening after granulation, thereby preventing unqualified particles from mixing with qualified particles. Furthermore, the sliding design facilitates removal and cleaning, improving operational convenience.
[0021] The parts of this device not covered herein are the same as or can be implemented using existing technologies. This invention has a simple structure and is easy to operate. Attached Figure Description
[0022] Figure 1 This is a schematic diagram of the overall structure of the biodegradable glass fiber fabric edge recycling and granulation device proposed in this invention; Figure 2 This is a schematic diagram of the cross-sectional structure of the equipment compartment of the biodegradable glass fiber fabric edge recycling and granulation device proposed in this invention; Figure 3 This is a schematic diagram of the equipment platform structure of the biodegradable glass fiber fabric edge recycling and granulation device proposed in this invention; Figure 4 This is a schematic diagram of the fixed plate structure of the biodegradable glass fiber fabric edge recycling and granulation device proposed in this invention; Figure 5 This is an enlarged schematic diagram of section A of the biodegradable glass fiber fabric edge recycling and granulation device proposed in this invention; Figure 6 This is a schematic diagram of the pusher frame structure of the biodegradable glass fiber fabric edge recycling and granulation device proposed in this invention; Figure 7 This is an enlarged schematic diagram of section B of the biodegradable glass fiber fabric edge recycling and granulation device proposed in this invention; Figure 8This is a schematic diagram of the cross-sectional structure of the sliding cylinder of the biodegradable glass fiber fabric edge recycling and granulation device proposed in this invention; Figure 9 This is a schematic diagram of the limiting block structure of the biodegradable glass fiber fabric edge recycling and granulation device proposed in this invention; Figure 10 This is a schematic diagram of the limiting groove structure of the biodegradable glass fiber fabric edge recycling and granulation device proposed in this invention; Figure 11 This is a schematic diagram of the support structure of the biodegradable glass fiber fabric edge recycling and granulation device proposed in this invention; Figure 12 This is an enlarged schematic diagram of section C of the biodegradable glass fiber fabric edge recycling and granulation device proposed in this invention; Figure 13 This is a schematic diagram of the screen structure of the biodegradable glass fiber cloth edge recycling and granulation device proposed in this invention.
[0023] In the diagram: 1. Main body of the equipment; 2. Motor; 3. Equipment platform; 4. Second motor; 5. Feed cylinder; 7. Equipment compartment; 8. Support body; 9. Control module; 10. Conical body; 11. Fixed plate; 12. Support plate; 13. Push frame; 41. Drive shaft; 42. Limiting groove; 81. Cutter; 82. Rotary drum; 83. Groove; 84. Drive hole; 85. Push rod; 86. Fixed cylinder; 810. Spiral groove; 811. Ratchet; 812. Ratchet; 813. Slider; 101. Sliding cylinder; 102. Slide groove; 103. Pulley; 104. Limiting block; 109. Protrusion; 110. Push rod; 111. Screen; 112. Moving groove; 113. Sliding body; 114. Tension spring; 115. Lifting block; 121. Electric slide rail; 131. Sliding rod. Detailed Implementation
[0024] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0025] In the description of this invention, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.
[0026] Example: A biodegradable glass fiber fabric edge recycling and granulation device, such as... Figures 1-13As shown, the system includes a device platform 3, on the upper surface of which a control module 9 is fixedly mounted. The control module 9 includes a current detection module, a signal processing module, a relay control module, and a load circuit module. This allows the control module 9 to stop the motor 2 when the load on the second motor 4 increases, causing the current to rise to a limit value. Simultaneously, the electric slide rail 121 moves. When the load decreases and the current drops to the limit value, the control module 9 restarts the motor 2, and the electric slide rail 121 returns to its initial position. The control module 9 is existing technology and will not be described further. A support plate 12 is also fixedly mounted on the upper surface of the device platform 3 to support... The upper surface of the plate 12 is provided with a moving groove 112 at the corner. There are two sets of moving grooves 112, with two in each set. The upper surface of the support plate 12 is provided with a fixed plate 11. A screen 111 is slidably connected to the upper surface of the fixed plate 11. The screen 111 can be screened immediately after granulation, thereby avoiding the mixing of unqualified particles with qualified particles. The sliding design makes it easy to remove and clean, improving the convenience of operation. Two lifting blocks 115 are fixedly installed on the upper surface of the screen 111. Two symmetrically distributed electric slide rails 121 are embedded in the upper surface of the fixed plate 11. The upper surfaces of the two electric slide rails 121 are fixedly connected to the lower end of the push frame 13. Furthermore, a sliding body 113 is fixedly installed at the corner of the lower surface of the fixed plate 11, and a push rod 110 is fixedly installed on the upper surface of the sliding body 113. The push rod 110 can be moved by the toggle block 103, thereby causing the screen 111 to sieve, ensuring the qualified rate of particles and avoiding the clogging of the screen 111. The end of the sliding body 113 away from the fixed plate 11 is slidably connected to the inner wall of the moving groove 112. A tension spring 114 is hooked to one side of the sliding body 113, and the end of the tension spring 114 away from the sliding body 113 is hooked to the inner wall of the moving groove 112. An equipment compartment 7 is fixedly installed on the upper surface of the support plate 12. An openable compartment cover is installed at the top of the equipment compartment 7 for easy removal of the screen 111. A fixed cylinder 86 is fixedly installed through one side of the inner wall of the equipment compartment 7. The fixed cylinder 86 is located inside the equipment compartment 7. One end of the part is rotatably connected to the support body 8, and the other end of the fixed cylinder 86 extends to the outside of the equipment chamber 7. A second motor 4 is fixedly installed on the outside of the equipment chamber 7. The second motor 4 is a long-shaft servo motor. A drive shaft 41 is fixedly installed on one end of the output shaft of the second motor 4. Two symmetrically distributed limiting grooves 42 are opened on the outside of the drive shaft 41. The limiting grooves 42 are slidably connected to the limiting block 104. Two symmetrically distributed push frames 13 are provided on the upper surface of the fixed plate 11. The push frames 13 can provide stable axial thrust to ensure the accuracy of the movement of the sliding cylinder 101. The symmetrical design avoids the sliding cylinder 101 from deflecting and ensures the uniformity of movement. It can also stabilize the sliding cylinder 101 during granulation. Slide rods 131 are rotatably installed at both ends of the two push frames 13. Furthermore, a push rod 85 is fixedly installed on one side of one of the push frames 13. When the push rod 85 is close to the support body 8, the support body 8 can rotate. When the push rod 85 is away from the support body 8, the support body 8 will not rotate, thus ensuring that the rotation of the support body 8 is not affected by the conical body 10. The two ends of the slide rod 131 slide in contact with the inner walls of the two slide grooves 102. A sliding cylinder 101 is provided between the two push frames 13. The length of the sliding cylinder 101, the drive shaft 41, the limiting groove 42, and the distance from the support body 8 are set according to the actual use, and will not be elaborated here. A lever 103 is fixedly installed on the periphery of the sliding cylinder 101, and two symmetrically distributed limiting blocks 104 are fixedly installed on the inner wall of the sliding cylinder 101. Two symmetrically distributed sliding grooves 102 are provided on the periphery of the moving cylinder 101. The cooperation between the sliding grooves 102 and the sliding rod 131 ensures that the sliding cylinder 101 will not deviate during movement. A conical body 10 is fixedly installed at one end of the sliding cylinder 101. Several protrusions 109 are fixedly installed on the periphery of the conical body 10. The design of the protrusions 109 and the grooves 83 ensures that the output force of the second motor 4 is stably transmitted, ensuring the cutting stability of the cutter 81 and improving the granulation qualification rate. A spiral groove 810 is provided on the periphery of the push rod 85. The spiral groove 810 can convert the linear motion of the push frame 13 into the rotational motion of the ratchet 812, thereby completing the switching between the two cutters 81 and achieving a rapid switching effect. Furthermore, a slider 813 is slidably connected to the inner wall of the spiral groove 810. A support body 8 is provided inside the equipment compartment 7, with one end of the support body 8 extending to the outside of the equipment compartment 7. A drive hole 84 is provided through the middle of the support body 8. A ratchet 811 is movably installed on the inner wall of the drive hole 84, and a ratchet 812 is provided inside the drive hole 84. The outer surface of the ratchet 812 engages with the ratchet 811. The arrangement of the ratchet 812 and the ratchet 811 ensures that when the push rod 85 approaches the support body 8, the ratchet 812 can push the ratchet 811 to rotate the support body 8. When the push rod 85 moves away from the support body 8, the ratchet 812 cannot push the ratchet 811. 11. Thus, the support body 8 cannot rotate. The slider 813 is fixedly installed on the inner wall of the ratchet 812. There are two symmetrically distributed rotating cylinders 82 that rotate through one side of the support body 8. A cutter 81 is fixedly installed on one side of each rotating cylinder 82. A feed cylinder 5 is provided on one side of the cutter 81. The feed cylinder 5 is fixedly installed through one side of the equipment compartment 7, and the other end of the feed cylinder 5 extends to the outside of the equipment compartment 7. One end of the feed cylinder 5 is fixedly connected to the equipment body 1. The equipment body 1 is set on one side of the equipment platform 3. A motor 2 is fixedly installed on the upper surface of the equipment body 1. Several grooves 83 are fixedly opened on the inner wall of the rotating cylinder 82.
[0027] Compared with the prior art, the screen 111 that slides on the upper surface of the fixed plate 11 can perform screening immediately after granulation, effectively avoiding the mixing of unqualified particles with qualified particles. Moreover, the screen 111 can be easily removed by the operator for cleaning through the lifting block 115, which significantly improves the convenience of operation. In the prior art, similar devices do not have the ability to perform screening in a timely manner after granulation. Compared with the prior art, the second motor 4 can transmit power to the sliding cylinder 101 through the drive shaft 41, the limiting groove 42, the limiting block 104, and the protrusion 109 of the cone 10 on the sliding cylinder 101 cooperates with the groove 83 on the inner wall of the rotating cylinder 82 to ensure the stability of the cutter 81 during cutting. At the same time, the spiral groove 810 on the periphery of the push rod 85 is used in combination with the slider 813, the ratchet 812, and the ratchet tooth 811. Existing similar devices do not have the ability to switch, so the present invention can effectively improve the working efficiency of the equipment and the quality of granulation. Working principle: During granulation, the second motor 4 drives the cutter 81 to rotate, thereby cutting the extruded glass fiber. When the cutter 81 becomes worn and dull, the cutting action changes to impact, increasing the load on the second motor 4 and the current. When the current reaches the set limit, the control module 9 stops the motor 2, and the electric slide rail 121 starts operating. The electric slide rail 121 moves the pusher 13 closer to the second motor 4. The movement of the pusher 13 causes the sliding cylinder 101 to move. The limiting block 104 inside the sliding cylinder 101 begins to slide on the limiting groove 42. At this time, the cone 10 can... The cone 10 begins to separate from the rotating cylinder 82, and the protrusion 109 on the cone 10 begins to separate from the groove 83 on the rotating cylinder 82. At the same time, the push rod 85 on the push frame 13 moves. The movement of the push rod 85 causes the slider 813 to slide on its inner wall through the spiral groove 810. As the slider 813 slides, the ratchet 812 begins to rotate. However, the rotation direction of the ratchet 812 is not able to make its outer side engage with the ratchet tooth 811. Therefore, the ratchet 812 rotates freely. At this time, the sliding cylinder 101 continues to move. When the limiting block 104 moves to the other end of the inner wall of the limiting groove 42, the sliding cylinder 101 stops moving, and the cone 10 and the rotating cylinder 82 are completely separated. The protrusion 109 and the groove 83... The components are completely separated. At this time, the load and current of the second motor 4 decrease. When the current decreases to the set limit, the control module 9 can restart the motor 2 and the electric slide rail 121 moves to the initial position. At the same time, the pusher 13 begins to move to the initial position under the sliding of the electric slide rail 121, and the limit block 104 also moves to the initial position on the limit groove 42. Meanwhile, the push rod 85 pushes the slider 813 again. The rotation of the slider 813 can rotate the ratchet 812. This rotation of the ratchet 812 can form a locking state with the ratchet tooth 811. The ratchet tooth 811 in the locking state can rotate the support body 8. At the same time, the push rod 85 continues to move forward and penetrates... The support body 8 rotates to the other side of the fixed cylinder 86, and the worn cutter 81 rotates to the outside of the equipment chamber 7. The new cutter 81 rotates to the working position, thus completing the conversion of the cutter 81. At the same time, the push block 103 moves the push rod 110 under the rotation of the sliding cylinder 101. The push rod 110, which is subjected to the pushing force, transmits the pushing force to the screen 111. At this time, the screen 111 moves to one side, and the sliding body 113 moves with the screen 111. The sliding body 113 stretches the tension spring 114. When the push block 103 stops rotating and moves the push rod 110, the tension spring 114 can quickly return to its original position, thus completing the swing of the screen 111 and completing the screening of particles.
[0028] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A biodegradable glass fiber cloth edge recycling and granulation device, comprising a machine platform (3) and a support plate (12) fixedly installed on the upper surface of the machine platform (3), characterized in that, A fixing plate (11) is provided on the upper surface of the support plate (12), and an equipment compartment (7) is fixedly installed on the upper surface of the support plate (12). The upper surface of the fixed plate (11) is provided with two symmetrically distributed pushers (13), one of which has a push rod (85) fixedly installed on one side, and a sliding cylinder (101) is provided between the two pushers (13). A cone (10) is fixedly installed at one end of the sliding cylinder (101), and several protrusions (109) are fixedly installed on the periphery of the cone (10). The push rod (85) has a spiral groove (810) on its periphery, and a slider (813) is slidably connected to the inner wall of the spiral groove (810). The equipment compartment (7) is provided with a support body (8), and a drive hole (84) is provided through the middle of the support body (8). A ratchet (811) is movably installed on the inner wall of the drive hole (84), and a ratchet (812) is provided inside the drive hole (84). The outer surface of the ratchet (812) is engaged with the ratchet (811), and the slider (813) is fixedly installed on the inner wall of the ratchet (812). The support (8) has two symmetrically distributed rotating cylinders (82) on one side, and the inner wall of the rotating cylinder (82) is fixedly provided with several grooves (83).
2. The biodegradable glass fiber fabric edge recycling and granulation device according to claim 1, characterized in that, The sliding cylinder (101) has two symmetrically distributed sliding grooves (102) on its periphery. The two pushers (13) are rotatably mounted with sliding rods (131) at their opposite ends. The two ends of the sliding rods (131) slide in contact with the inner walls of the two sliding grooves (102).
3. The biodegradable glass fiber fabric edge recycling and granulation device according to claim 2, characterized in that, A lever (103) is fixedly installed on the periphery of the sliding cylinder (101), and two symmetrically distributed limiting blocks (104) are fixedly installed on the inner wall of the sliding cylinder (101).
4. The biodegradable glass fiber fabric edge recycling and granulation device according to claim 3, characterized in that, A fixed cylinder (86) is fixedly installed through one side of the inner wall of the equipment compartment (7). One end of the fixed cylinder (86) inside the equipment compartment (7) is rotatably connected to the support body (8), and the other end of the fixed cylinder (86) extends to the outside of the equipment compartment (7). A second motor (4) is fixedly installed on the outside of the equipment compartment (7). A drive shaft (41) is fixedly installed on one end of the output shaft of the second motor (4). Two symmetrically distributed limiting grooves (42) are opened on the outside of the drive shaft (41). The limiting grooves (42) slide with the limiting block (104).
5. The biodegradable glass fiber fabric edge recycling and granulation device according to claim 1, characterized in that, The support plate (12) has a moving groove (112) at the corner of the upper surface. There are two sets of moving grooves (112), and two in each set. A sliding body (113) is fixedly installed at the corner of the lower surface of the fixing plate (11).
6. The biodegradable glass fiber fabric edge recycling and granulation device according to claim 5, characterized in that, A push rod (110) is fixedly installed on the upper surface of the sliding body (113). The end of the sliding body (113) away from the fixed plate (11) is slidably connected to the inner wall of the moving groove (112). A tension spring (114) is hooked to one side of the sliding body (113). The end of the tension spring (114) away from the sliding body (113) is hooked to the inner wall of the moving groove (112).
7. The biodegradable glass fiber fabric edge recycling and granulation device according to claim 6, characterized in that, The upper surface of the fixed plate (11) has two symmetrically distributed electric slide rails (121) embedded in it. The upper surfaces of the two electric slide rails (121) are fixedly connected to the lower end of the push frame (13). A screen (111) is slidably attached to the upper surface of the fixed plate (11). Two lifting blocks (115) are fixedly installed on the upper surface of the screen (111).
8. The biodegradable glass fiber fabric edge recycling and granulation device according to claim 1, characterized in that, One end of the support (8) extends to the outside of the equipment compartment (7), and a cutter (81) is fixedly installed on one side of each of the two rotating drums (82), and a feed cylinder (5) is provided on one side of the cutter (81).
9. The biodegradable glass fiber fabric edge recycling and granulation device according to claim 8, characterized in that, The feed cylinder (5) is fixedly installed through one side of the equipment compartment (7), and the other end of the feed cylinder (5) extends to the outside of the equipment compartment (7). One end of the feed cylinder (5) is fixedly connected to the main body of the equipment (1).
10. The biodegradable glass fiber fabric edge recycling and granulation device according to claim 9, characterized in that, The main body of the equipment (1) is located on one side of the equipment platform (3). A motor (2) is fixedly installed on the upper surface of the main body of the equipment (1), and a control module (9) is fixedly installed on the upper surface of the equipment platform (3).