Compression-sorting linkage mechanism of intelligent waste lining cloth recycling and classifying box
By combining the fabric cleaning component with the crushing and processing mechanism, the waste lining fabric is deeply processed using additive processing components, which solves the problems of cleanliness and surface shape changes after fabric bleaching, and improves the recycling and processing effect and corporate benefits.
Patent Information
- Application Number
- CN202511124742.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-12
- Publication Date
- 2025-10-31
AI Technical Summary
The existing intelligent recycling and sorting bins for waste lining fabrics have compression-sorting linkage mechanisms that alter the cleanliness and surface shape of the fabrics after bleaching, resulting in poor business performance.
The fabric cleaning component is reconstructed by combining the fabric cleaning component with the crushing and processing mechanism to generate a recycling component. The cleaned fabric is then subjected to in-depth processing through additive manufacturing components such as the lead screw motor, reciprocating lead screw, reciprocating block, printer compartment and nozzle.
This technology enables in-depth processing and overall improvement of waste lining fabrics, enhancing recycling efficiency and increasing corporate profits.
Smart Images

Figure CN120861574A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of waste lining processing technology, and in particular to a compression-sorting linkage mechanism for an intelligent recycling and sorting bin for waste lining. Background Technology
[0002] Waste fabric recycling refers to the collection, processing, and reuse of various home textile fabrics, cut fabrics, large pieces of fabric, pure cotton fabrics, filament fabrics, and whole rolls of fabric, as well as other surplus inventory materials. Although this industry is a niche sector within the recycling field, it is of great significance in terms of environmental protection and reducing resource waste. It is a crucial link in the home textile fabric recycling sector. From collection to sale, waste fabric recycling involves meticulous steps such as sorting, cutting, washing, and compression, ultimately transforming it into practical items such as eco-friendly shopping bags and carpets, reducing resource waste and creating dual value for both environmental protection and the economy.
[0003] Existing intelligent recycling and sorting bins for waste lining fabrics use compression-sorting linkage mechanisms. For example, application number CN201520838548.3 provides a bleaching device for waste fabrics, belonging to the field of garment processing equipment technology. It solves the problem of low bleaching efficiency in existing waste fabrics. This waste fabric bleaching device includes a barrel body, with two pressing cylinders rotatably connected inside the barrel. A rotating ring is also rotatably connected inside the barrel body. Several blades are circumferentially connected to the inner circumferential wall of the rotating ring. A driving component is provided on the barrel body. A discharge shell is fixedly connected to one side of the barrel body. A conveyor belt is connected inside the discharge shell. A gripping roller is rotatably connected inside the barrel body. A pressing roller is rotatably connected to the discharge port of the discharge shell. A power component capable of simultaneously driving the conveyor belt and the gripping roller to rotate is provided on the discharge shell. This waste fabric bleaching device can automatically bleach waste fabric with a high degree of automation; however, in the above technology, although the fabric can be bleached, the cleanliness and surface shape of the fabric will be changed after long-term use, and the cleaned fabric can only be used without a price, resulting in poor business benefits. To solve the above problems, we propose a compression-sorting linkage mechanism for intelligent recycling and sorting bins of waste lining fabric. Summary of the Invention
[0004] To address the aforementioned issues, this invention proposes a compression-sorting linkage mechanism for an intelligent recycling and sorting bin for waste lining fabric. This mechanism primarily utilizes a fabric cleaning component and a crushing and processing component in conjunction to reconstruct a recycling component. This allows the processing chamber, feed cover, output motor, rotating column, crushing head, output valve block, conveying pump, and output pipe to perform deep processing on the cleaned fabric. After processing, an additive manufacturing process is used to output the material via a lead screw motor, reciprocating lead screw, reciprocating block, printer chamber, and nozzle. This output achieves an overall improvement in recycling efficiency, thereby realizing the desired recycling effect.
[0005] To achieve the above objectives, the present invention provides the following technical solution:
[0006] A compression-sorting linkage mechanism for a smart recycling and sorting bin for waste lining fabric includes a detection and transmission component and a reconstructed recycling component. A sorting and carrying component is provided on one side below the detection and transmission component, and a fabric washing component is provided on one side below the sorting and carrying component. A crushing and processing mechanism is provided on one side below the fabric washing component, and a reconstructed recycling component is provided on one side below the crushing and processing mechanism.
[0007] As a further technical solution, the detection and transmission component includes a first base, a first bed frame, a slotted base plate, a rotary motor, a conveyor belt, a central frame, a central lead screw, a lifting beam, a detection camera, a powered robotic arm, and an electric clamp. The first bed frame is arranged above the side of the first base, and the slotted base plate is arranged above the first bed frame. The inner side of the slotted base plate is provided with a conveyor belt connected to the output end of the rotary motor. The central frame is arranged above the middle of the slotted base plate, and the lifting beam for mounting the detection camera is threadedly connected to the central frame via a central lead screw. The powered robotic arm is arranged on the outer side of one end of the first bed frame, and the output end of the powered robotic arm is provided with an electric clamp.
[0008] As a further technical solution, the sorting and bearing assembly includes a second base, a hydraulic telescopic column, an open plate, a transverse screw, a transverse base block, and a sorting slot. The second base is disposed at one end of the first base, and a hydraulic telescopic column is disposed above the second base. An open plate is disposed at the output end of the hydraulic telescopic column. A transverse base block is threadedly connected to the open plate through a transverse screw, and a sorting slot is disposed above the transverse base block.
[0009] As a further technical solution, the fabric cleaning component includes a third base, a second bed frame, a first bed board, a cleaning chamber, a water inlet valve, a drain valve, a built-in rotating seat, a drive motor, a centrifuge cylinder, an end-to-end frame, an ultrasonic generator, a hydraulic telescopic frame, a top beam, a cover plate, an ozone tank, an ozone generator, an absorption plate, connecting pipes, and a heat exchanger. The third base is located at one end of the second base, the second bed frame is located above the third base, and the first bed board is located above the second bed frame. The cleaning chamber is located above the middle of the first bed board, and a water inlet valve is located on one side of the upper part of the cleaning chamber. A drain valve is located on one side of the lower part of the cleaning chamber. A built-in rotating seat is located on the inner bottom side of the cleaning chamber, and a centrifuge cylinder connected to the output end of the drive motor is located above the built-in rotating seat.
[0010] As a further technical solution, an end-to-end frame is provided above the side of the first bed board, and an ultrasonic generator is provided on the inner side of the end-to-end frame. A hydraulic telescopic frame is provided above the end-to-end frame, and a top beam is provided at the output end of the hydraulic telescopic frame. A cover plate is provided below the middle of the top beam, and an ozone tank is provided above the middle of the top beam. An ozone generator is provided on the inner bottom side of the cover plate. An absorption plate is provided on the outer side of the middle of the cleaning chamber, and a connecting pipe is provided on one side of the absorption plate. A heat exchanger is provided at one end of the connecting pipe.
[0011] As a further technical solution, the crushing and processing mechanism includes a fourth base, a third bed frame, a processing chamber, a feed cover, an output motor, a rotating column, a crushing head, an output valve block, a feeding pump and an output pipe. The fourth base is located at one end of the third base, the third bed frame is located above the fourth base, the processing chamber is located above the third bed frame, and the feed cover is located above the processing chamber.
[0012] As a further technical solution, an output motor is provided at one end of the processing chamber, and a rotating column is provided at the output end of the output motor. A crushing head is provided on the outer side of the rotating column. An output valve block is provided at the output end of the processing chamber, and a conveying pump is provided at the output end of the output valve block. An output pipe is provided at the output end of the conveying pump.
[0013] As a further technical solution, the reconstructed recycling component includes a fifth base, a sixth base, a transverse opening box, a lead screw motor, a reciprocating lead screw, a reciprocating block, a printer compartment, a nozzle, a pad block, a slotted base shell, a lower connecting frame, a feeding rod assembly, a bidirectional lead screw assembly, a reciprocating lifting frame, a tension rod, a clamping cylinder, a power motor, a receiving rod, an upper connecting frame, and a plasma generator. The fifth base is located on one side of the fourth base, and a transverse opening box is located above the fifth base. A reciprocating lead screw connected to the output end of the lead screw motor is located on the transverse opening box. A reciprocating block is threadedly connected to the reciprocating lead screw, and a printer compartment is located at one end of the reciprocating block. A nozzle is located at the output end of the printer compartment, and a sixth base is located at one end of the fifth base.
[0014] As a further technical solution, a padding block is provided above the sixth base, and a slotted base shell is provided above the padding block. A lower connecting frame for mounting a feed bar assembly is provided on one side of the lower part of the slotted base shell. A bidirectional screw assembly is provided at the output end of the slotted base shell, and a reciprocating lifting frame for mounting a tension rod is threadedly connected to the output end of the bidirectional screw assembly. A clamping cylinder is provided on one outer side of the upper part of the slotted base shell, and a power motor is provided on another outer side of the upper part of the slotted base shell. A receiving rod is provided on the inner side of the upper part of the slotted base shell. An upper connecting frame is provided at one end of the upper part of the slotted base shell, and a plasma generator is provided on the inner side of one end of the upper connecting frame.
[0015] Compared with the prior art, the beneficial effects of the present invention are:
[0016] The invention device mainly utilizes the fabric cleaning component and the crushing and processing mechanism to reconstruct and generate a recycling component. This allows the processing chamber, feed cover, output motor, rotating column, crushing head, output valve block, feed pump and output pipe to perform deep processing on the cleaned fabric. After processing, the additive manufacturing screw motor, reciprocating screw, reciprocating block, printer chamber and nozzle are used for output. The output achieves an overall improvement in the recycling effect, thereby realizing the recycling effect. Attached Figure Description
[0017] Figure 1 A schematic diagram of the compression-sorting linkage mechanism of an intelligent recycling and sorting bin for waste lining fabric;
[0018] Figure 2 This is a schematic diagram of the structure viewed from below in this invention;
[0019] Figure 3 This is a schematic diagram of the structure of the classification and bearing component in this invention;
[0020] Figure 4 This is a schematic diagram of the fabric cleaning component in this invention;
[0021] Figure 5 This is a schematic diagram of the pulverizing mechanism in this invention;
[0022] Figure 6 This is a schematic diagram of the structure of the reconstructed recycling component in this invention.
[0023] In the diagram: 1. Detection and transmission component; 101. First base; 102. First bed frame; 103. Slotted base plate; 104. Rotary motor; 105. Conveyor belt; 106. Central frame; 107. Central lead screw; 108. Lifting beam; 109. Detection camera; 1010. Powered robotic arm; 1011. Electric clamp; 2. Classification and load-bearing component; 201. Second base; 202. Hydraulic telescopic column; 203. Open plate; 204. Transverse lead screw; 205. Horizontal base block; 206. Sorting tray; 3. Fabric washing component; 301. Third base; 302. Second bed frame; 303. First bed board; 304. Washing chamber; 305. Water inlet valve; 306. Drain valve; 307. Built-in rotating seat; 308. Drive motor; 309. Centrifuge cylinder; 3010. End-mounted frame; 3011. Ultrasonic generator; 3012. Hydraulic telescopic frame; 3013. Top beam; 3014. Cover plate; 3015. Ozone tank; 3016. Ozone generator; 3017, Absorption plate; 3018, Connecting pipe; 3019, Heat exchanger; 4. Crushing and processing mechanism; 401, Fourth base; 402, Third bed frame; 403, Processing chamber; 404, Feed cover; 405, Output motor; 406, Rotating column; 407, Crushing head; 408, Output valve block; 409, Feed pump; 4010, Output pipe; 5. Reconstruction and recycling components; 501, Fifth base; 502, Sixth base; 503, Horizontal 504. Opening box; 505. Lead screw motor; 506. Reciprocating lead screw; 507. Reciprocating block; 508. Printer compartment; 509. Nozzle; 5010. Pad block; 5011. Slotted base shell; 5012. Lower connecting frame; 5013. Feed bar assembly; 5014. Bidirectional lead screw assembly; 5015. Reciprocating lifting frame; 5016. Tensioning rod; 5017. Clamping cylinder; 5018. Power motor; 5019. Receiving rod; 5020. Upper connecting frame; 5020. Plasma generator. Detailed Implementation
[0024] In the description of this invention, it should be understood that the terms "center," "longitudinal," "lateral," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicating orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings, are only for the convenience of describing the 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, and therefore should not be construed as a limitation of the invention. Furthermore, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, a feature defined with "first," "second," etc., may explicitly or implicitly include one or more of that feature. In the description of this invention, unless otherwise stated, "a plurality of" means two or more.
[0025] In the description of this invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art will understand the specific meaning of the above terms in this invention based on the specific circumstances.
[0026] 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.
[0027] Please see Figure 1-6 In this embodiment of the invention, a compression-sorting linkage mechanism for a waste lining intelligent recycling and sorting bin includes a detection and transmission component 1 and a reconstruction and recycling component 5. A sorting and carrying component 2 is provided on one side below the detection and transmission component 1, and a fabric washing component 3 is provided on one side below the sorting and carrying component 2. A crushing and processing mechanism 4 is provided on one side below the fabric washing component 3, and the reconstruction and recycling component 5 is provided on one side below the crushing and processing mechanism 4.
[0028] The detection and transmission component 1 includes a first base 101, a first bed frame 102, a slotted base plate 103, a rotary motor 104, a conveyor belt 105, a central frame 106, a central lead screw 107, a lifting beam 108, a detection camera 109, a powered robotic arm 1010, and an electric clamp 1011. The first bed frame 102 is arranged above the side of the first base 101, and the slotted base plate 103 is arranged above the first bed frame 102. The conveyor belt 105, which is connected to the output end of the rotary motor 104, is arranged on the inner side of the slotted base plate 103. The central frame 106 is arranged above the middle of the slotted base plate 103, and the lifting beam 108, on which the detection camera 109 is installed, is threadedly connected to the central frame 106 through the central lead screw 107. The powered robotic arm 1010 is arranged on the outer side of one end of the first bed frame 102, and the electric clamp 1011 is arranged at the output end of the powered robotic arm 1010.
[0029] In an embodiment of the present invention, during use, the rotary motor 104 on the outer side of one end of the slotted substrate 103 outputs power to drive the output end to run, so that the rotary motor 104 outputs power to drive the conveyor belt 105 to run, so that the raw material is output after the output is running. After the raw material is output, the lifting beam 108 on the central lead screw 107 outputs power to drive the detection camera 109 to take pictures of the product. After taking pictures, the power robotic arm 1010 outputs power to drive the electric clamp 1011 to hinge and clamp the raw material and run it to the sorting box 206.
[0030] The sorting support component 2 includes a second base 201, a hydraulic telescopic column 202, an open plate 203, a transverse screw 204, a transverse base block 205, and a sorting slot 206. The second base 201 is located at one end of the first base 101. The hydraulic telescopic column 202 is located above the second base 201, and the output end of the hydraulic telescopic column 202 is provided with an open plate 203. The transverse base block 205 is threadedly connected to the open plate 203 through the transverse screw 204, and the sorting slot 206 is located above the transverse base block 205.
[0031] In embodiments of the present invention, the classification slots 206 on the horizontal base block 205 have multiple sets of slot-like structures, which can effectively classify and store items to achieve the effect of classification management and temporary storage.
[0032] The fabric cleaning component 3 includes a third base 301, a second bed frame 302, a first bed board 303, a cleaning chamber 304, a water inlet valve 305, a drain valve 306, a built-in rotating seat 307, a drive motor 308, a centrifuge cylinder 309, an end-mounting frame 3010, an ultrasonic generator 3011, a hydraulic telescopic frame 3012, a top beam 3013, a cover plate 3014, an ozone tank 3015, an ozone generator 3016, an absorption plate 3017, a connecting pipe 3018, and a heat exchanger 3019. The third base 301 is mounted on the second base. At one end of the base 201, a second bed frame 302 is provided above the third base 301, and a first bed board 303 is provided above the second bed frame 302. A cleaning chamber 304 is provided above the middle of the first bed board 303, and a water inlet valve 305 is provided on the upper side of the cleaning chamber 304. A drain valve 306 is provided on the lower side of the cleaning chamber 304. An internal rotating seat 307 is provided on the inner bottom side of the cleaning chamber 304, and a centrifuge cylinder 309 connected to the output end of the drive motor 308 is provided above the internal rotating seat 307.
[0033] In an embodiment of the present invention, the product to be processed is then placed in the centrifuge tube 309 inside the cleaning chamber 304. Then, the drive motor 308 is used to output power to drive the output end to run, so that the centrifuge tube 309 rotates at high speed. Then, the drain valve 306 is closed, and the water inlet valve 305 is used to inject sufficient cleaning liquid into the cleaning chamber 304, thereby achieving a cleaning effect.
[0034] An end-to-end frame 3010 is provided above the side of the first bed board 303, and an ultrasonic generator 3011 is provided on the inner side of the end-to-end frame 3010. A hydraulic telescopic frame 3012 is provided above the end-to-end frame 3010, and a top beam 3013 is provided at the output end of the hydraulic telescopic frame 3012. A cover plate 3014 is provided below the middle part of the top beam 3013. An ozone tank 3015 is provided above the middle part of the top beam 3013. An ozone generator 3016 is provided on the inner bottom side of the cover plate 3014. An absorption plate 3017 is provided on the outer side of the middle part of the cleaning chamber 304, and a connecting pipe 3018 is provided on one side of the absorption plate 3017. A heat exchanger 3019 is provided at one end of the connecting pipe 3018.
[0035] In an embodiment of the present invention, ultrasonic cleaning is achieved by outputting ultrasonic waves through the ultrasonic generator 3011 on the inner side of the end-to-end frame 3010. Then, after the ozone tank 3015 is in operation, the ozone generator 3016 outputs ozone substances to achieve disinfection. In conjunction with the absorption plate 3017, connecting pipe 3018 and heat exchanger 3019, the product undergoes a large temperature difference to achieve the effect of temperature difference treatment.
[0036] The crushing and processing mechanism 4 includes a fourth base 401, a third bed frame 402, a processing chamber 403, a feed cover 404, an output motor 405, a rotating column 406, a crushing head 407, an output valve block 408, a conveying pump 409, and an output pipe 4010. The fourth base 401 is located at one end of the third base 301. The third bed frame 402 is located above the fourth base 401, and the processing chamber 403 is located above the third bed frame 402. The feed cover 404 is located above the processing chamber 403.
[0037] In an embodiment of the present invention, after processing, sufficient processed material is fed into the processing chamber 403 through the feed cover 404 on the processing chamber 403, and sufficient processing agent is injected.
[0038] One end of the processing chamber 403 is provided with an output motor 405, and the output end of the output motor 405 is provided with a rotating column 406. The outer side of the rotating column 406 is provided with a crushing blade 407. The output end of the processing chamber 403 is provided with an output valve block 408, and the output end of the output valve block 408 is provided with a feed pump 409. The output end of the feed pump 409 is provided with an output pipe 4010.
[0039] In an embodiment of the present invention, the output motor 405 is then used to output power to drive the output end to run, so that the rotating column 406 and the crushing head 407 rotate at high speed to achieve the effect of deep processing, so as to form a reconstructed raw material. Then, the output valve block 408 and the feed pump 409 output power to run and input the raw material into the printer compartment 507 through the output pipe 4010.
[0040] The reconstructed recycling component 5 includes a fifth base 501, a sixth base 502, a horizontal opening box 503, a lead screw motor 504, a reciprocating lead screw 505, a reciprocating block 506, a printer compartment 507, a nozzle 508, a pad block 509, a slotted base shell 5010, a lower connecting frame 5011, a feeding bar assembly 5012, a bidirectional lead screw assembly 5013, a reciprocating lifting frame 5014, a tension rod 5015, a clamping cylinder 5016, a power motor 5017, a receiving rod 5018, and an upper connecting frame 5019. The plasma generator 5020, the fifth base 501 is located on one side of the fourth base 401, the fifth base 501 is located above the horizontal opening box 503, and the horizontal opening box 503 is provided with a reciprocating screw 505 connected to the output end of the screw motor 504. The reciprocating screw 505 is threadedly connected to a reciprocating block 506, and a printer compartment 507 is provided at one end of the reciprocating block 506. A nozzle 508 is provided at the output end of the printer compartment 507. The fifth base 501 is located at one end of the sixth base 502.
[0041] In an embodiment of the present invention, when reconstruction is required, the lead screw motor 504 on the horizontal opening box 503 is used to run, which causes the reciprocating lead screw 505 to run, which causes the reciprocating block 506 to run reciprocally, and finally processed by the printer compartment 507 and sprayed through the nozzle 508.
[0042] A pad block 509 is provided above the sixth base 502, and a slotted base shell 5010 is provided above the pad block 509. A lower connecting frame 5011 for installing a feed rod assembly 5012 is provided on one side of the lower part of the slotted base shell 5010. A bidirectional screw assembly 5013 is provided at the output end of the slotted base shell 5010, and a reciprocating lifting frame 5014 for installing a tension rod 5015 is threadedly connected to the output end of the bidirectional screw assembly 5013. A clamping cylinder 5016 is provided on the outer side of one set above the slotted base shell 5010, and a power motor 5017 is provided on the outer side of another set above the slotted base shell 5010. A receiving rod 5018 is provided on the inner side of the upper part of the slotted base shell 5010. An upper connecting frame 5019 is provided at one end of the upper part of the slotted base shell 5010, and a plasma generator 5020 is provided on the inner side of one end of the upper connecting frame 5019.
[0043] In an embodiment of the present invention, the material is then fed in using the feed bar assembly 5012 on the lower connecting frame 5011. After the bidirectional screw assembly 5013 outputs and runs, the reciprocating lifting frame 5014 cooperates with the stretching rod 5015 to achieve the stretching effect. Finally, the material is processed by the take-up rod 5018 in conjunction with the plasma generator 5020 to form the material into a coil.
[0044] The working principle of this invention is as follows: In use, the rotary motor 104 on the outer side of one end of the slotted base plate 103 outputs power to drive the output end to run, so that the rotary motor 104 outputs power to drive the conveyor belt 105 to run, so that the raw material is output. After the raw material is output, the lifting beam 108 on the central lead screw 107 is driven to run, and the detection camera 109 takes a picture of the product. After the picture is taken, the power robotic arm 1010 is driven to run, and the electric clamp 1011 hinges and clamps the raw material and moves it to the sorting box 206. The sorting box 206 on the horizontal base block 205 has multiple sets of slot-shaped structures. This allows for effective categorized storage, achieving both classification management and temporary storage. Next, the products to be processed are placed inside the centrifuge drum 309 within the cleaning chamber 304. The drive motor 308 then powers the output end, causing the centrifuge drum 309 to rotate at high speed. The drain valve 306 is then closed, and the inlet valve 305 injects sufficient cleaning fluid into the cleaning chamber 304, achieving a cleaning effect. Ultrasonic cleaning is achieved by outputting ultrasound through the ultrasonic generator 3011 on the inner side of the end-mounted frame 3010. Finally, the ozone generator 3016 outputs ozone after the ozone tank 3015 is activated. The material is sterilized, and with the help of the absorption plate 3017, connecting pipe 3018, and heat exchanger 3019, the product undergoes a significant temperature difference to achieve a temperature difference treatment effect. After treatment, sufficient processed material is fed into the processing chamber 403 through the feed cover 404, along with a sufficient amount of treatment agent. Then, the output motor 405 drives the output end to operate, causing the rotating column 406 and the crushing head 407 to rotate at high speed to achieve a deep processing effect, forming a reconstructed raw material. Finally, the output valve block 408 and the conveying pump 409 output power to operate the material through the output pipe. 4010 is input into the printer compartment 507. When reconstruction is required, the lead screw motor 504 on the horizontal opening box 503 is used to drive the reciprocating lead screw 505, which in turn drives the reciprocating block 506 to reciprocate. Finally, after being processed by the printer compartment 507, the material is sprayed through the nozzle 508. Then, the material is fed into the feed bar assembly 5012 on the lower connecting frame 5011. After being driven by the bidirectional lead screw assembly 5013, the reciprocating lifting frame 5014 works with the tension rod 5015 to achieve a stretching effect. Finally, after being processed by the take-up rod 5018 and the plasma generator 5020, the material is wound and formed.
[0045] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above, and that the invention can be implemented in other specific forms without departing from its spirit or essential characteristics. Therefore, the embodiments should be considered in all respects as exemplary and non-limiting, and the scope of the invention is defined by the appended claims rather than the foregoing description. Thus, all variations falling within the meaning and scope of equivalents of the claims are intended to be included within the present invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
[0046] Furthermore, it should be understood that although this specification describes embodiments, not every embodiment contains only one independent technical solution. This narrative style is merely for clarity. Those skilled in the art should consider the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.
Claims
1. A compression-sorting linkage mechanism for an intelligent recycling and sorting bin for waste lining fabric, comprising a detection and transmission component (1) and a reconstructed recycling component (5), characterized in that: A classification carrier component (2) is provided on one side below the detection and transmission component (1), and a fabric cleaning component (3) is provided on one side below the classification carrier component (2). A crushing processing mechanism (4) is provided on one side below the fabric cleaning component (3), and a reconstruction generation recycling component (5) is provided on one side below the crushing processing mechanism (4).
2. The compression-sorting linkage mechanism of the intelligent recycling and sorting bin for waste lining fabric according to claim 1, characterized in that: The detection and transmission component (1) includes a first base (101), a first bed frame (102), a slotted base plate (103), a rotary motor (104), a conveyor belt (105), a central frame (106), a central lead screw (107), a lifting beam (108), a detection camera (109), a powered robotic arm (1010), and an electric clamp (1011). The first bed frame (102) is arranged above the side of the first base (101), and the slotted base plate (103) is arranged above the first bed frame (102). The slotted substrate (103) has a conveyor belt (105) connected to the output end of a rotary motor (104) on its inner side. A central frame (106) is provided above the middle part of the slotted substrate (103), and a lifting beam (108) for mounting a detection camera (109) is threadedly connected to the central frame (106) via a central lead screw (107). A powered robotic arm (1010) is provided on the outer side of one end of the first bed frame (102), and an electric clamp (1011) is provided at the output end of the powered robotic arm (1010).
3. The compression-sorting linkage mechanism of the intelligent recycling and sorting bin for waste lining fabric according to claim 2, characterized in that: The sorting support component (2) includes a second base (201), a hydraulic telescopic column (202), an open plate (203), a transverse screw (204), a transverse base block (205), and a sorting slot (206). The second base (201) is disposed at one end of the first base (101). The hydraulic telescopic column (202) is disposed above the second base (201), and the output end of the hydraulic telescopic column (202) is provided with an open plate (203). The transverse base block (205) is threadedly connected to the open plate (203) through the transverse screw (204), and the sorting slot (206) is disposed above the transverse base block (205).
4. The compression-sorting linkage mechanism of the intelligent recycling and sorting bin for waste lining fabric according to claim 3, characterized in that: The fabric cleaning component (3) includes a third base (301), a second bed frame (302), a first bed board (303), a cleaning chamber (304), a water inlet valve (305), a drain valve (306), a built-in rotating seat (307), a drive motor (308), a centrifuge cylinder (309), an end-mounted frame (3010), an ultrasonic generator (3011), a hydraulic telescopic frame (3012), a top beam (3013), a cover plate (3014), an ozone tank (3015), an ozone generator (3016), an absorption plate (3017), a connecting pipe (3018), and a heat exchanger (3019). The third base (301) is located on the second bed frame. At one end of the base (201), a second bed frame (302) is provided above the third base (301), and a first bed board (303) is provided above the second bed frame (302). A cleaning chamber (304) is provided above the middle part of the first bed board (303), and a water inlet valve (305) is provided on the upper side of the cleaning chamber (304). A drain valve (306) is provided on the lower side of the cleaning chamber (304). An internal rotating seat (307) is provided on the inner bottom side of the cleaning chamber (304), and a centrifuge cylinder (309) connected to the output end of a drive motor (308) is provided above the internal rotating seat (307).
5. The compression-sorting linkage mechanism of the intelligent recycling and sorting bin for waste lining fabric according to claim 4, characterized in that: An end frame (3010) is provided above the side of the first bed board (303), and an ultrasonic generator (3011) is provided on the inner side of the end frame (3010). A hydraulic telescopic frame (3012) is provided above the end frame (3010), and a top beam (3013) is provided at the output end of the hydraulic telescopic frame (3012). A cover plate (3014) is provided below the middle part of the top beam (3013), and an ozone tank (3015) is provided above the middle part of the top beam (3013). An ozone generator (3016) is provided on the inner bottom side of the cover plate (3014). An absorption plate (3017) is provided on the outer side of the middle part of the cleaning chamber (304), and a connecting pipe (3018) is provided on one side of the absorption plate (3017). A heat exchanger (3019) is provided at one end of the connecting pipe (3018).
6. The compression-sorting linkage mechanism of the intelligent recycling and sorting bin for waste lining fabric according to claim 4, characterized in that: The crushing and processing mechanism (4) includes a fourth base (401), a third bed frame (402), a processing chamber (403), a feed cover (404), an output motor (405), a rotating column (406), a crushing head (407), an output valve block (408), a feed pump (409), and an output pipe (4010). The fourth base (401) is located at one end of the third base (301). The third bed frame (402) is located above the fourth base (401), and the processing chamber (403) is located above the third bed frame (402). The feed cover (404) is located above the processing chamber (403).
7. The compression-sorting linkage mechanism of the intelligent recycling and sorting bin for waste lining fabric according to claim 6, characterized in that: One end of the processing chamber (403) is provided with an output motor (405), and the output end of the output motor (405) is provided with a rotating column (406). The outer side of the rotating column (406) is provided with a crushing blade (407). The output end of the processing chamber (403) is provided with an output valve block (408), and the output end of the output valve block (408) is provided with a feed pump (409). The output end of the feed pump (409) is provided with an output pipe (4010).
8. The compression-sorting linkage mechanism of the intelligent recycling and sorting bin for waste lining fabric according to claim 6, characterized in that: The reconstructed recycling component (5) includes a fifth base (501), a sixth base (502), a transverse box opening (503), a lead screw motor (504), a reciprocating lead screw (505), a reciprocating block (506), a printer compartment (507), a nozzle (508), a pad block (509), a slotted base shell (5010), a lower connecting frame (5011), a feed bar assembly (5012), a bidirectional lead screw assembly (5013), a reciprocating lifting frame (5014), a tension rod (5015), a clamping cylinder (5016), a power motor (5017), a receiving rod (5018), an upper connecting frame (5019), and a plasma... The sub-generator (5020) has a fifth base (501) disposed on one side of the fourth base (401). A horizontal opening box (503) is disposed above the fifth base (501), and a reciprocating screw (505) connected to the output end of a screw motor (504) is disposed on the horizontal opening box (503). The reciprocating screw (505) is threadedly connected to a reciprocating block (506), and a printer compartment (507) is disposed at one end of the reciprocating block (506). A nozzle (508) is disposed at the output end of the printer compartment (507). A sixth base (502) is disposed at one end of the fifth base (501).
9. The compression-sorting linkage mechanism of the intelligent recycling and sorting bin for waste lining fabric according to claim 8, characterized in that: A pad block (509) is provided above the sixth base (502), and a slotted base shell (5010) is provided above the pad block (509). A lower connecting frame (5011) for mounting a feed bar assembly (5012) is provided on one side of the lower part of the slotted base shell (5010). A bidirectional screw assembly (5013) is provided at the output end of the slotted base shell (5010), and a reciprocating lifting mechanism for mounting a tension rod (5015) is threaded to the output end of the bidirectional screw assembly (5013). The frame (5014) has a clamping cylinder (5016) on one outer side above the slotted base shell (5010), a power motor (5017) on another outer side above the slotted base shell (5010), a receiving rod (5018) on the inner side above the slotted base shell (5010), an upper connecting frame (5019) on one end above the slotted base shell (5010), and a plasma generator (5020) on the inner side of one end of the upper connecting frame (5019).
Citation Information
Patent Citations
Bleaching apparatus of old and useless cloth
CN205152588U