Textile waste silk recycling device
By improving the structure of the wire hooking and cutting components, the problems of difficulty in engaging and uneven cutting after the waste wire is hooked in the existing device have been solved, realizing stable grabbing and cutting of waste wire and eliminating the phenomenon of missed cutting.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- DONGTAI XINZHILI CLOTHING CO LTD
- Filing Date
- 2025-08-01
- Publication Date
- 2026-07-24
Smart Images

Figure CN120920472B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of waste filament recycling technology, specifically to a waste filament recycling and processing device for the textile industry. Background Technology
[0002] Rayon is a silky man-made fiber, mainly composed of cellulose, and has properties similar to cotton and linen fibers. In the textile industry, rayon is frequently used in fabric production. However, during the rayon production process, some broken or substandard waste is inevitably generated; this is known as waste rayon. Referring to a Chinese patent application with application number 202410869135.5, a waste filament recycling and processing device for the textile industry is disclosed. Through the cooperation of a hooking assembly, a drive motor, and a collection cylinder, the hooking assembly enters the collection cylinder from the bottom along a circular trajectory and exits from the side. During this process, the hooking rod can hook up the waste filaments inside the collection cylinder and pulls them as it leaves, thereby untangling the accumulated and tangled waste filaments. Simultaneously, the upward hooking method prevents the hooking up of metal sheets, plastics, or other debris, ensuring that the hooked waste filaments are free of impurities. A limiting block further assists in this process. The compression separates the two hook rods, making it easier for the cutter to cut the waste yarn and ensuring its uniformity. However, the hook assembly of the above-mentioned textile waste yarn recycling device cannot hold the waste yarn in place in time after hooking it. During the cutting process, the waste yarn is easy to fall off, resulting in some waste yarn being missed. At the same time, relying solely on the rotation of the hook part to hook the waste yarn makes it difficult to ensure that it can be inserted into the clump of waste yarn. As a result, the rotation of the hook part can easily push the waste yarn inside the collection cylinder upward. Therefore, we propose a textile waste yarn recycling device to solve the above-mentioned technical problems. Summary of the Invention
[0003] This invention provides the following technical solution: a waste filament recycling and processing device for the textile industry, comprising: A profile frame and a collection hopper, wherein the collection hopper is fixedly installed on the top of the profile frame for collecting waste filaments; The wire hooking assembly is rotatably mounted inside the profile frame and located at the bottom of the collection hopper. The wire hooking assembly is used to grab waste wire inside the collection hopper. The cutting assembly is vertically movable inside the profile frame and located on the side of the collection hopper for cutting waste wire.
[0004] As a preferred embodiment of the present invention, the hook assembly includes: Equilateral flanges are rotatably mounted inside the profile frame, and there are multiple flanges distributed at equal intervals on the left and right sides. The bent plate is fixedly installed at equal angles around the equilateral flange. One hook tip is fixedly installed at equal intervals on the surface of the bent plate at the end away from the equilateral flange. The slide bar is slidably installed inside the bending plate; Two hook-shaped tips are fixedly installed at equal intervals at the end of the slide bar away from the equilateral flange. A through-hole is provided inside the slide bar at one end near the equilateral flange. The support rod is fixedly installed inside multiple sockets and extends to the periphery of the two slide bars at the very end; Roller 1 is rotatably mounted on both ends of the outer wall of the support rod.
[0005] As a preferred embodiment of the present invention, the hook assembly further includes: The discs are symmetrically fixed inside the profile frame, and the outer wall of one of the rollers abuts against the outer surface of the discs. The serpentine grooves are opened at equal angles on the outer surface of the disc near the collection hopper. The sinkhole is located in the top area of the disc.
[0006] As a preferred embodiment of the present invention, the hook assembly further includes: The bearing housings are symmetrically and fixedly installed on the upper end of the crossbeam in the middle of the profile frame. The central shaft is rotatably mounted inside the left and right bearing seats, and its outer wall is fixedly connected to the inner wall of multiple equilateral flanges. The base plate is fixedly installed on the upper end of the bottom crossbeam of the profile frame; The two station plates are symmetrically fixedly installed on the top of the base plate, with the two station plates located between the two bearing seats. The two discs are respectively fixedly installed on the upper side of the two station plates by bolts.
[0007] As a preferred embodiment of the present invention, the cutting component includes: The tool holder is slidably mounted on top of the profile frame and is located in front of the collection hopper; The cutters are fixedly installed at equal intervals on the left and right sides at the bottom of the cutter holder, and each cutter is located between two adjacent bending plates on the left and right sides; The guide rod is fixedly installed at the top left and top right ends of the tool holder, and moves through the inside of the top crossbeam of the profile frame; The shaft clamp is fixedly installed on the lower part of the outer wall of the guide rod; The U-shaped groove is formed on the side of the shaft clamp away from the guide rod; Roller 2 is rotatably installed inside the U-shaped groove; The cams are fixedly mounted on the outer wall of the central shaft, with the outer wall of the cams abutting against the outer wall of the rollers.
[0008] As a preferred embodiment of the present invention, the side of the bending plate is provided with a clearance groove for making way for the support rod, the support rod moves through the clearance groove, and a spring is fixedly installed inside the bending plate. The spring is fixedly installed between the end of the slide bar and the outer surface of the equilateral flange.
[0009] As a preferred embodiment of the present invention, a second spring is sleeved around the guide rod, and the second spring is fixedly installed between the bottom of the tool holder and the top of the shaft clamp.
[0010] As a preferred embodiment of the present invention, the second hook tip is located between two adjacent first hook tips, and the second hook tip is compatible with the specifications of the first hook tip.
[0011] As a preferred embodiment of the present invention, the bottom of the collecting hopper and the side near the cutting component are provided with a plurality of hook grooves evenly spaced on the left and right, wherein any one of the hook grooves is located between two adjacent cutters on the left and right, and the position of the hook groove corresponds one-to-one with the position of the bending plate, and the left and right width of the hook groove is 2mm greater than the left and right width of the bending plate.
[0012] As a preferred embodiment of the present invention, a reduction motor is fixedly installed on the bottom crossbeam of the profile frame, an active wedge pulley is fixedly installed on the output shaft of the reduction motor, a driven wedge pulley is fixedly installed on one end of the outer wall of the central shaft, the driven wedge pulley and the active wedge pulley are on the same side, and at least one wedge belt is sleeved on the periphery of the driven wedge pulley and the active wedge pulley.
[0013] Compared with the prior art, the beneficial effects of the present invention are: 1. In this invention, the central shaft is driven to rotate counterclockwise along the inside of the left and right bearing seats. The counterclockwise rotation of the central shaft drives multiple equilateral flanges, bending plates, hook tip one, slide bar and hook tip two to rotate together. They enter the inside of the collection hopper through the hook groove at the bottom of the collection hopper. The waste wire inside the collection hopper is hooked by hook tip one and hook tip two, pulled out from the hook groove on the side of the collection hopper, and carried to the cutting component station. At the same time, the cutting component cuts the waste wire.
[0014] 2. In this invention, when the first and second hook tips enter the collection hopper, the first roller rolls along the outer wall of the disc to the serpentine groove area. During the rolling of the first roller along the serpentine groove area, it pushes the slide bar to slide along the inner wall of the bending plate. The spring inside the bending plate also acts as a rebound force, causing the slide bar to slide back and forth along the inner wall of the bending plate. This causes multiple second hook tips to move back and forth together, opening up the bottom wall of the tangled waste wire inside the collection hopper so that the first hook tip can penetrate into the tangled waste wire instead of pushing the waste wire upward.
[0015] 3. In this invention, after roller 1 leaves the serpentine groove area, roller 1 immediately rolls into the sinking groove area. During this period, the rebound force of spring 1 drives the slide bar to slide along the inside of the bending plate towards the equilateral flange, thereby driving multiple hook tips 2 to move together, so that hook tips 2 and hook tips 1 at the corresponding positions form a biting and clamping effect on the waste wire. As the central shaft continues to rotate counterclockwise, hook tips 2 and hook tips 1 pull the biting and clamped waste wire out from the hook groove opening on the side of the collection hopper and cut it by the cutting component. Since the waste wire is bitten and clamped, the cutting can be more stable, thereby preventing the problem of missed cutting.
[0016] 4. In this invention, when roller 1 moves from the sinking trough area to the outer wall of the disc again, roller 1 is squeezed away from the center of the disc. At the same time, roller 1 squeezes the slide along the inner wall of the bending plate away from the equilateral flange through the support rod, which further drives multiple hook tips 2 to move together, so that hook tips 2 and hook tips 1 open, the waste wire that was bitten and clamped loses its clamping and naturally falls into the bottom guide groove of the profile frame, and is finally discharged through the bottom guide groove of the profile frame. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the structure from the right rear view of the present invention; Figure 2 This is a schematic diagram of the right front view structure of the present invention; Figure 3 In this invention Figure 2 A schematic diagram of a partial structure; Figure 4 This is a schematic diagram of the bottom view structure of the collecting hopper in this invention; Figure 5 This is a schematic diagram of the hook assembly in the present invention. Figure 1 ; Figure 6 This is a schematic diagram of the hook assembly in the present invention. Figure 2 ; Figure 7 In this invention Figure 6 A magnified structural diagram of part A; Figure 8 This is a side view of the hook assembly in this invention. Figure 9 In this invention Figure 8 Structural diagram Figure 2 ; Figure 10 This is a schematic diagram of the unfolded structure of the bending plate and the slide bar in this invention; Figure 11 In this invention Figure 10 A schematic diagram of the enlarged structure of part B; Figure 12 This is a schematic diagram of the sheet metal unfolded structure of the bent plate in this invention.
[0018] In the diagram: 100, Profile frame; 200, Hook assembly; 201, Equilateral flange; 202, Bending plate; 203, Hook tip one; 204, Sliding bar; 205, Hook tip two; 206, Insertion hole; 207, Support rod; 208, Roller one; 209, Disc; 2010, Serpentine groove; 2011, Sinking groove; 2012, Bearing seat; 2013, Central shaft; 2014, Station plate; 2015, Base plate; 2 016. Spring 1; 2002. Clearance groove; 300. Cutting assembly; 301. Tool holder; 302. Cutting blade; 303. Guide rod; 304. Shaft clamp; 305. U-shaped groove; 306. Roller 2; 307. Cam; 308. Spring 2; 309. Linear bearing; 400. Collection hopper; 401. Wire hook groove; 501. Gear motor; 502. Driving wedge pulley; 503. Driven wedge pulley; 504. Wedge belt. Detailed Implementation
[0019] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0020] Please see Figures 1-12 The technical solution provided by the present invention specifically includes the following embodiments: A waste filament recycling and processing device for the textile industry includes a profile frame 100, a filament hooking assembly 200, a cutting assembly 300, and a collection hopper 400. The collection hopper 400 is fixedly installed on the top of the profile frame 100 for collecting waste filaments. The filament hooking assembly 200 is rotatably installed inside the profile frame 100 and located at the bottom of the collection hopper 400. The filament hooking assembly 200 is used to grab the waste filaments inside the collection hopper 400. The cutting assembly 300 is movably installed inside the profile frame 100 and located on the side of the collection hopper 400 for cutting waste filaments. The bottom of the collection hopper 400 and the side near the cutting assembly 300 are provided with multiple filament hooking slots 401 that are evenly spaced from left to right.
[0021] For further details, please refer to [link / reference]. Figures 5-11 As shown: The wire hook assembly 200 includes an equilateral flange 201, a bending plate 202, a first wire hook tip 203, a slide bar 204, a second wire hook tip 205, a socket 206, a support rod 207, a first roller 208, a bearing seat 2012, and a central shaft 2013. Multiple equilateral flanges 201 are rotatably mounted inside the profile frame 100 and are evenly spaced on the left and right sides. The bending plate 202 is fixedly installed at equal angles around the equilateral flange 201. The first wire hook tip 203 is fixedly installed at equal intervals on the surface of the bending plate 202 at the end furthest from the equilateral flange 201. The slide bar 204 is slidably installed inside the bending plate 202. The second wire hook tip 205 is fixedly installed at equal intervals on the slide bar 204 at the end furthest from the equilateral flange 201. At one end of the flange 201, the second hook tip 205 is located between two adjacent hook tips 203, and the specifications of the second hook tip 205 and the first hook tip 203 are compatible. The insertion hole 206 is opened through the slide bar 204 near one end of the equilateral flange 201. The support rod 207 is fixedly installed inside the multiple insertion holes 206 and extends to the periphery of the two slide bars 204 at the very end. The roller 208 is rotatably installed at both ends of the outer wall of the support rod 207. The bearing seats 2012 are symmetrically fixedly installed on the upper end of the crossbeam in the middle of the profile frame 100. The central shaft 2013 is rotatably installed inside the left and right bearing seats 2012, and its outer wall is fixedly connected to the inner wall of the multiple equilateral flanges 201.
[0022] Specifically, the central shaft 2013 is driven to rotate counterclockwise along the interior of the left and right bearing seats 2012. Figure 8 In the L direction), the central shaft 2013 rotates counterclockwise, causing multiple equilateral flanges 201, bending plates 202, hook tip one 203, slide bar 204 and hook tip two 205 to rotate together. They enter the collection hopper 400 through the hook groove 401 at the bottom of the collection hopper 400, hook the waste wire inside the collection hopper 400 through the hook tip one 203 and hook tip two 205, pull it out from the hook groove 401 on the side of the collection hopper 400, and carry it to the cutting component 300 station, where the cutting component 300 cuts the waste wire.
[0023] For further details, please refer to [link / reference]. Figure 7 , Figure 8 As shown: The hook assembly 200 also includes a disc 209, a serpentine groove 2010, a sinking trough 2011, a station plate 2014, and a base plate 2015. The disc 209 is symmetrically fixed inside the profile frame 100. The outer wall of the roller 208 abuts against the outer surface of the disc 209. The serpentine groove 2010 is opened at equal angles on the outer surface of the disc 209 near the collection hopper 400. The sinking trough 2011 is opened in the top area of the disc 209. The base plate 2015 is fixedly installed on the upper end of the bottom crossbeam of the profile frame 100. The station plates 2014 are symmetrically fixedly installed on the top of the base plate 2015, and the two station plates 2014 are located between the two bearing seats 2012. A spring 2016 is fixedly installed inside the bending plate 202. The spring 2016 is fixedly installed between the end of the slide bar 204 and the outer surface of the equilateral flange 201.
[0024] Specifically, during the counterclockwise rotation of the central shaft 2013, which drives the rotation of multiple equilateral flanges 201, bending plates 202, hook tip one 203, slide bar 204, and hook tip two 205, the slide bar 204 also drives the roller one 208 to roll along the outer wall of the disc 209 through the connection between the insertion hole 206 and the support rod 207. When hook tip one 203 and hook tip two 205 enter the collection hopper 400, the roller one 208 just rolls along the outer wall of the disc 209. As the disc 209 rolls to the serpentine groove 2010 area, the roller 208, while rolling along the serpentine groove 2010 area, pushes the slider 204 to slide along the inner wall of the bending plate 202. The spring 2016 inside the bending plate 202 also acts as a rebound force, causing the slider 204 to slide back and forth along the inner wall of the bending plate 202. This, in turn, drives multiple wire-hooking tips 205 to move back and forth together, clearing away the tangled waste wire from the bottom wall of the collection hopper 400. This allows the hook tip 203 to penetrate the waste wire clump without pushing it upwards. After roller 208 leaves the serpentine groove 2010 area, it immediately rolls into the sinkhole 2011 area. During this process, the rebound force of spring 2016 drives slide bar 204 along the inside of bending plate 202 towards the equilateral flange 201, thereby moving multiple hook tips 205 together, causing the hook... The second tip 205 and the corresponding hook tip 203 form a biting and clamping effect on the waste wire. As the central shaft 2013 continues to rotate counterclockwise, the second tip 205 and the first tip 203 pull the biting and clamping waste wire out from the hook groove 401 opened on the side of the collection hopper 400 and cut it by the cutting component 300. Since the waste wire is bitten and clamped, the cutting can be more stable, thus preventing the problem of missing cuts. When roller 208 moves from the sink trough 2011 area to the outer wall of disc 209 again, it is pressed away from the center of disc 209. At the same time, roller 208 presses the slide bar 204 along the inner wall of bending plate 202 away from equilateral flange 201 through support rod 207. This further drives multiple hook tips 205 to move together, causing hook tips 205 to open with hook tips 203. The waste wire that was clamped is no longer clamped and naturally falls into the bottom guide groove of profile frame 100, and is finally discharged through the bottom guide groove of profile frame 100.
[0025] For further details, please refer to [link / reference]. Figure 3 , Figure 5 and Figure 7 As shown: The cutting assembly 300 includes a tool holder 301, a cutter 302, a guide rod 303, a shaft clamp 304, a U-shaped groove 305, a roller 306, and a cam 307. The tool holder 301 is slidably mounted on the top of the profile frame 100 and is located on the front of the collection hopper 400. The cutters 302 are fixedly mounted at equal intervals on the left and right sides at the bottom of the tool holder 301, and each cutter 302 is located between two adjacent bending plates 202. The guide rod 303 is fixedly mounted on the top left and top right ends of the tool holder 301 and moves through the interior of the top crossbeam of the profile frame 100. The shaft clamp 304 is fixedly mounted on the lower part of the outer wall of the guide rod 303. The U-shaped groove 305 is formed... On the side of the shaft clamp 304 away from the guide rod 303, the second roller 306 is rotatably installed inside the U-shaped groove 305. The cams 307 are fixedly installed on the outer wall of the central shaft 2013, and the outer wall of the cam 307 abuts against the outer wall of the second roller 306. The guide rod 303 is sleeved with a second spring 308, which is fixedly installed between the bottom of the tool holder 301 and the top of the shaft clamp 304. Any one of the hook grooves 401 is located between two adjacent cutters 302, and the position of the hook groove 401 corresponds one-to-one with the position of the bending plate 202. The left and right width of the hook groove 401 is 2mm greater than the left and right width of the bending plate 202.
[0026] Specifically, during the rotation of the central shaft 2013, it also drives the two left and right cams 307 to rotate together. The rotation of the two cams 307 causes the two rollers 306 to lift, which causes the shaft clamp 304, guide rod 303, tool holder 301 and cutter 302 to move upward. At the same time, as the shaft clamp 304 moves upward, it compresses the spring 308 to store energy. Therefore, as the cams 307 continue to rotate, and as the shaft clamp 304 and other components move upward, the spring 308 rebounds, causing the tool holder 301, cutter 302, guide rod 303 and shaft clamp 304 to move up and down along the inside of the linear bearing 309. The cutter 302, which moves up and down, cuts the waste wire that is engaged with the wire hook assembly 200 as it rotates.
[0027] For further details, please refer to [link / reference]. Figure 7 , Figure 11 As shown: The side of the bending plate 202 is provided with a clearance groove 2002 for making way for the support rod 207, and the support rod 207 moves through the clearance groove 2002.
[0028] Specifically, by opening a clearance groove 2002, a clearance effect is provided for the support rod 207, so that the movement of the support rod 207 is not interfered with by the bending plate 202, thus ensuring that the support rod 207 can move smoothly.
[0029] For further details, please refer to [link / reference]. Figure 2 , Figure 3 As shown: A geared motor 501 is fixedly installed on the bottom crossbeam of the profile frame 100. A drive wedge pulley 502 is fixedly installed on the output shaft of the geared motor 501. A driven wedge pulley 503 is fixedly installed on one end of the outer wall of the central shaft 2013. The driven wedge pulley 503 and the drive wedge pulley 502 are on the same side. At least one wedge belt 504 is sleeved on the periphery of the driven wedge pulley 503 and the drive wedge pulley 502.
[0030] Specifically, the output shaft of the geared motor 501 drives the active wedge pulley 502 to rotate, which in turn drives the driven wedge pulley 503 and the central shaft 2013 to rotate counterclockwise along the inside of the left and right bearing seats 2012 under the connection of the wedge belt 504. Figure 8 In the L direction), the central shaft 2013 rotates counterclockwise, driving multiple equilateral flanges 201, bending plates 202, hook tip one 203, slide bar 204 and hook tip two 205 to rotate together, thereby realizing the operation of the hook assembly 200 and the cutting assembly 300.
[0031] In this solution, a waste textile filament recycling and processing device operates by placing waste textile filaments into a collection hopper 400 for collection. The collection hopper 400 then collects the waste filaments. Next, the output shaft of a reduction motor 501 drives a drive wedge pulley 502 to rotate. Further, under the connection of a wedge belt 504, this drives a driven wedge pulley 503 and a central shaft 2013 to rotate counterclockwise along the interior of two left and right bearing seats 2012. Figure 8In the L-direction, the central shaft 2013 rotates counterclockwise, causing multiple equilateral flanges 201, bending plates 202, hook tips 1 203, slide bars 204, and hook tips 205 to rotate together. The wires enter the collection hopper 400 through the hook groove 401 at the bottom, and hook the waste wires inside the collection hopper 400 through hook tips 1 203 and 205. Simultaneously, the slide bar 204, through the connection between the insertion hole 206 and the support rod 207, drives roller 2. Roller 208 rolls along the outer wall of disc 209. When hook tip 1 203 and hook tip 205 enter the collection hopper 400, roller 208 rolls along the outer wall of disc 209 to the serpentine groove 2010 area. During this rolling motion, roller 208 pushes slide bar 204 along the inner wall of bending plate 202. The spring 2016 inside bending plate 202 also acts as a rebound force, causing slide bar 204 to slide along the inner wall of bending plate 202. The wall slides back and forth, causing multiple hook tips 205 to move back and forth together, clearing the tangled waste wire from the bottom wall of the collection hopper 400 so that the hook tips 203 can penetrate into the tangled waste wire without pushing the waste wire upwards. After the roller 208 leaves the serpentine groove 2010 area, the roller 208 immediately rolls into the sinking groove 2011 area. During this process, the rebound force of the spring 2016 drives the slide bar 204 along the inside of the bending plate 202. The part slides towards the equilateral flange 201, which in turn drives multiple hook tips 205 to move together, so that hook tips 205 and hook tips 1 203 at the corresponding positions form a biting and clamping effect on the waste wire. As the central shaft 2013 continues to rotate counterclockwise, hook tips 205 and hook tips 1 203 pull the biting and clamping waste wire out from the hook groove 401 opened on the side of the collection hopper 400 and carry it to the cutting assembly 300 station. During the rotation of the central shaft 2013, it also drives the two left and right cams 307 to rotate together. The rotation of the two cams 307 causes the two rollers 306 to lift, causing the shaft clamp 304, guide rod 303, tool holder 301 and cutter 302 to move upward. At the same time, as the shaft clamp 304 moves upward, it compresses the spring 308 to store energy. Therefore, as the cams 307 continue to rotate, and as the shaft clamp 304 and other components move upward, the spring 308 rebounds, causing the tool holder 301, cutter 302, guide rod 303 and shaft clamp 304 to move up and down along the inside of the linear bearing 309. The cutter 302, which moves up and down, cuts the waste wire that is engaged with the wire hook assembly 200 as it rotates. The section of waste wire that is not held will naturally fall into the guide groove at the bottom of the profile frame 100 after cutting. Because the waste wire is engaged and held, the cutting can be more stable, thus preventing the problem of missed cutting. When roller 208 moves from the sink trough 2011 area to the outer wall of disc 209 again, it is pressed away from the center of disc 209. At the same time, roller 208 presses the slide bar 204 along the inner wall of bending plate 202 away from equilateral flange 201 through support rod 207. This further drives multiple hook tips 205 to move together, causing hook tips 205 to open with hook tips 203. The waste wire that was clamped is no longer clamped and naturally falls into the bottom guide groove of profile frame 100, and is finally discharged through the bottom guide groove of profile frame 100.
[0032] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the invention.
Claims
1. A waste textile recycling and processing device, characterized in that: include: A profile frame (100) and a collection hopper (400), wherein the collection hopper (400) is fixedly installed on the top of the profile frame (100) for collecting waste filaments; The wire hook assembly (200) is rotatably disposed inside the profile frame (100) and located at the bottom of the collection hopper (400). The wire hook assembly (200) is used to grab waste wire inside the collection hopper (400). The cutting assembly (300) is vertically movable inside the profile frame (100) and located on the side of the collection hopper (400) for cutting waste wire; The hook assembly (200) includes: Equilateral flanges (201) are rotatably mounted inside the profile frame (100), and there are multiple flanges, which are evenly spaced on the left and right sides. The bent plate (202) is fixedly installed at equal angles around the equilateral flange (201); The first hook tip (203) is fixedly installed at equal intervals on the surface of the bent plate (202) at the end away from the equilateral flange (201); The slide bar (204) is slidably installed inside the bending plate (202); Two hook-shaped tips (205) are fixedly installed at equal intervals at one end of the slide bar (204) away from the equilateral flange (201); A socket (206) is provided inside the slide bar (204) near one end of the equilateral flange (201); The support rod (207) is fixedly installed inside multiple sockets (206) and extends to the periphery of the two end slides (204); Roller 1 (208) is rotatably mounted on both ends of the outer wall of the support rod (207); The disc (209) is symmetrically fixed inside the profile frame (100), and the outer wall of the roller (208) abuts against the outer surface of the disc (209); A serpentine groove (2010) is opened at equal angles on the outer surface of the disc (209) near the collecting hopper (400); A sinkhole (2011) is located in the top area of the disc (209); The side of the bending plate (202) is provided with a clearance groove (2002) for making way for the support rod (207). The support rod (207) moves through the clearance groove (2002). A spring (2016) is fixedly installed inside the bending plate (202). The spring (2016) is fixedly installed between the end of the slide bar (204) and the outer surface of the equilateral flange (201).
2. The textile waste filament recycling and processing device according to claim 1, characterized in that: The hook assembly (200) also includes: The bearing housing (2012) is symmetrically fixed on the upper end of the crossbeam in the middle of the profile frame (100); The central shaft (2013) is rotatably installed inside the left and right bearing seats (2012), and its outer wall is fixedly connected to the inner wall of multiple equilateral flanges (201); The base plate (2015) is fixedly installed on the upper end of the bottom crossbeam of the profile frame (100); The two station plates (2014) are symmetrically fixed on the top of the base plate (2015), and the two station plates (2014) are located between the two bearing seats (2012). The two discs (209) are respectively fixed on the upper side of the two station plates (2014) by bolts.
3. The textile waste filament recycling and processing device according to claim 2, characterized in that: The cutting assembly (300) includes: The tool holder (301) is slidably mounted on top of the profile frame (100) and located on the front of the collection hopper (400); The cutter (302) is fixedly installed at equal intervals on the left and right sides at the bottom of the cutter holder (301), and any one cutter (302) is located between two adjacent bending plates (202); The guide rod (303) is fixedly installed at the top left and top right ends of the tool holder (301) and moves through the inside of the top crossbeam of the profile frame (100); A shaft clamp (304) is fixedly installed on the lower part of the outer wall of the guide rod (303); A U-shaped groove (305) is formed on the side of the shaft clamp (304) away from the guide rod (303); Roller 2 (306) is rotatably installed inside the U-shaped groove (305); Cams (307) are fixedly installed on the outer wall of the central shaft (2013) on the left and right sides, and the outer wall of the cams (307) abuts against the outer wall of the rollers (306).
4. The textile waste filament recycling and processing device according to claim 3, characterized in that: The guide rod (303) is surrounded by a spring (308), which is fixedly installed between the bottom of the tool holder (301) and the top of the shaft clamp (304).
5. The textile waste filament recycling and processing device according to claim 4, characterized in that: The second hook tip (205) is located between two adjacent first hook tips (203), and the second hook tip (205) is compatible with the specifications of the first hook tip (203).
6. The textile waste filament recycling and processing device according to claim 5, characterized in that: The bottom of the collection hopper (400) and its side near the cutting assembly (300) are provided with multiple equally spaced hook grooves (401). Each hook groove (401) is located between two adjacent cutters (302), and the position of the hook groove (401) corresponds one-to-one with the position of the bending plate (202). The left and right width of the hook groove (401) is 2 mm greater than the left and right width of the bending plate (202).
7. The textile waste filament recycling and processing device according to claim 6, characterized in that: A geared motor (501) is fixedly installed on the bottom crossbeam of the profile frame (100). An active wedge pulley (502) is fixedly installed on the output shaft of the geared motor (501). A driven wedge pulley (503) is fixedly installed on one end of the outer wall of the central shaft (2013). The driven wedge pulley (503) is on the same side as the active wedge pulley (502). At least one wedge belt (504) is sleeved on the periphery of the driven wedge pulley (503) and the active wedge pulley (502).