Textile waste recycling device

By designing a combination of cutting and separating components, the problem of incomplete shredding of textile waste during the shredding process is solved, achieving high efficiency in textile shredding and washing, and making it suitable for the recycling and treatment of textile waste.

CN119525247BActive Publication Date: 2026-05-01NANTONG QIAOFENG TEXTILE TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
NANTONG QIAOFENG TEXTILE TECHNOLOGY CO LTD
Filing Date
2024-10-21
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

In existing technologies, textile waste accumulates during the shredding process, resulting in some waste not being completely shredded, which affects the efficiency of subsequent cleaning work.

Method used

A textile waste recycling and processing device was designed, comprising a cutting component and a disintegration component. The cutting component and the disintegration component are driven by a motor to effectively shred the textiles and remove dyes and chemical coatings by contacting and rubbing with a cleaning agent during the cutting process.

Benefits of technology

This improved the shredding efficiency of textile waste, ensuring the smooth progress of subsequent cleaning and processing, and enhancing the working efficiency of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application belongs to the technical field of textile waste processing, and discloses a textile waste recycling device, which comprises a cleaning tank and a splash plate hingedly connected to the top of the cleaning tank. The cooperation of the cutting assembly and the differentiation assembly and other structures is provided, when the two differentiation assemblies revolve, the waste textiles will be accumulated on the protruding surface of the first flow distribution plate, the first flow distribution plate and the second flow distribution plate start to move in the vertical direction according to the shape of the two wave grooves, when the slots on the first flow distribution plate and the second flow distribution plate coincide with each other, the waste textiles will enter the slots, when the first flow distribution plate and the second flow distribution plate move again and stagger with each other, the blades in the slots will cut the textiles, the rubber bumps on the belt guide the water and the textiles to flow to the cutting knife, the textiles will be successfully contacted and cut by the cutting knife after being extruded by the bottom plate, and the cloth will be better cut in the continuous work of the motor, thereby facilitating the subsequent cleaning and processing work.
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Description

A textile waste recycling and processing device Technical Field

[0001] This invention belongs to the field of textile waste processing technology, specifically a textile waste recycling and processing device. Background Technology

[0002] Textile waste generally refers to waste generated during or after textile production, including scraps, offcuts, old clothes, used bedding, curtains, and carpets. These materials typically do not degrade naturally and require manual recycling and processing for reuse. Waste recycling also helps prevent environmental pollution, but fabrics that cannot be reused are used as fuel.

[0003] In existing technologies, textiles are typically shredded, washed, and then processed into recycled fibers. These recycled fibers can then be used in the manufacture of textile fabrics, thus achieving the goal of recycling. Current shredding technology generally involves directly cutting the textiles with a cutting blade in a machine. However, it is important to note that since the recycled textile waste is usually piled up in one place and is not intentionally broken up during retrieval, some waste will not be completely shredded during the shredding process, leading to low efficiency in subsequent washing. To address this, we provide a textile waste recycling and processing device. Summary of the Invention

[0004] To address the problems mentioned in the background art, the present invention provides a textile waste recycling and processing device, which solves the problem that recycled textile waste is usually all piled up in one place and is not deliberately broken up during the retrieval process. This results in some waste not being completely shredded during the shredding process, which in turn reduces the efficiency of subsequent washing work.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a textile waste recycling and processing device, comprising a washing tank and a splash guard hinged to the top of the washing tank, the splash guard being provided with a handle, a water outlet pipe communicating with the interior of the washing tank being provided at the bottom of the washing tank, a motor being provided at the bottom of the washing tank, and a balance ring being installed inside the washing tank via bearings, and further comprising...

[0006] The movement is located inside the cleaning tank and connected to the motor drive.

[0007] The deceleration assembly includes an outer ring that is movably installed inside the cleaning tank;

[0008] Cutting components installed inside the cleaning tank;

[0009] The cutting assembly includes a base plate, a first spindle, a cover plate, a first spring plate, a belt, and a cutting blade. The first spring plate is elastically connected to the base plate, and the base plate is hinged to the outer ring. The top of the base plate is connected to the cover plate through the first spindle and the cutting blade. The first spindle is driven by a chain to a power conversion assembly, and the first spindle is driven by a belt to the cutting blade. The belt is movably engaged between the base plate and the cover plate.

[0010] Two separation components are arranged circumferentially inside the cleaning tank;

[0011] The differentiation component includes a balance shaft hinged to the top of the outer ring, on which a first diverter plate and a second diverter plate are movably mounted respectively. The second diverter plate is elastically hinged to the outer ring through a second spring plate.

[0012] The power conversion component is located inside the cleaning tank. The motor drives the cutting component and the differentiation component through the reduction component and the power conversion component.

[0013] Preferably, the cutting assembly has three sets of structures except for the spring plate, and they are arranged vertically. The three cutting assemblies are fixedly connected to each other. The upper cover plate is hinged to the balance ring. The inner wall of the cleaning tank has cutting grooves equal in number to the number of cutting assemblies. The cutting blade moves in the cutting grooves. The outer periphery of the belt is provided with rubber protrusions and there is a gap between the belt and the inner wall of the cleaning tank.

[0014] Preferably, the top of the balance shaft is hinged to the balance ring, and the inner wall of the cleaning tank is provided with two intersecting wave grooves, and the first diverter plate and the second diverter plate are respectively disposed inside the two wave grooves.

[0015] Preferably, both the first and second diverter plates have slots of the same size, and blades are provided at both the upper and lower ends of the slots.

[0016] Preferably, the deceleration assembly further includes an internal gear disposed inside the outer ring, and two meshing gears are disposed at the bottom of the outer ring, namely a sun gear and a planet gear. The sun gear is connected to the output shaft of the motor, and the planet gear is mounted inside the cleaning tank through bearings and meshes with the internal gear.

[0017] Preferably, the output shaft of the motor passes through the bottom of the cleaning tank, and a rubber sealing ring is provided at the connection between the output shaft of the motor and the cleaning tank. The output shaft of the motor drives the outer ring to rotate through an internal gear and two gears, and the rotational speed of the outer ring is less than the rotational speed of the motor output shaft.

[0018] Preferably, the power conversion assembly includes two filter plates fixedly installed at the upper and lower ends inside the cleaning tank, a transmission ring movably installed on the top of the filter plates, a second main shaft fixedly installed on the top of the sun gear, and two turbines respectively provided on the second main shaft.

[0019] Preferably, there are three transmission rings arranged vertically, each transmission ring is connected to the other by a support ring, and all three transmission rings are fixedly mounted on the second main shaft. The transmission rings are connected to the first main shaft by a chain.

[0020] Preferably, the filter plate and the support ring are combined to form a cavity, and the top and bottom of the cavity are sealed by the inner wall of the cleaning tank. The support ring is provided with diamond-shaped slots at equal angles in the circumferential direction, and the outer circumference of the transmission ring is provided with water grooves at equal angles in the circumferential direction.

[0021] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0022] This invention utilizes a combination of cutting and separating components. When the two separating components revolve, waste textiles accumulate on the protruding surface of the first separating plate. The first and second separating plates move vertically in an alternating pattern according to the shapes of the two wave grooves. When the grooves on the first and second separating plates overlap, the waste textiles enter the grooves. When the first and second separating plates move again and intersect, the blades in the grooves cut the textiles. Rubber protrusions on the belt guide water and textiles towards the cutting blade. After being squeezed by the base plate, the textiles smoothly contact the cutting blade and are cut by it. With the continuous operation of the motor, the fabric is better shredded, facilitating subsequent cleaning and processing.

[0023] This invention, through the coordinated arrangement of cutting and separating components, allows the cutting and separating components to rotate around the center point of the motor output shaft while the shredding process is underway. The cut textiles will continuously come into contact with water containing detergent and rub against each other, thereby rubbing off the dyes and chemical coatings in the waste textiles, further improving the working efficiency of the device. Attached Figure Description

[0024] Figure 1 is a schematic diagram of the external structure of the cleaning tank of the present invention;

[0025] picture 2 This is a schematic diagram of the internal structure of the cleaning tank of the present invention;

[0026] Figure 3 is a schematic cross-sectional view of the internal structure of the cleaning tank of the present invention;

[0027] Figure 4 is a schematic diagram of the interaction between the differentiation component inside the cleaning tank of the present invention and the outer ring structure;

[0028] Figure 5 is a schematic diagram of the exploded structure of the differentiation component inside the cleaning tank of the present invention;

[0029] Figure 6 is a schematic diagram showing the internal structure of the cleaning tank and the structure of the cutting component of the present invention.

[0030] Figure 7 is a schematic diagram of the overall structure of the cutting assembly inside the cleaning tank of the present invention;

[0031] Figure 8 is a schematic diagram of the exploded structure of the cutting component inside the cleaning tank of the present invention;

[0032] Figure 9 is a cross-sectional schematic diagram of the internal structure of the cleaning tank and the deceleration assembly of the present invention;

[0033] Figure 10 is a schematic diagram of the exploded disassembled structure of the cleaning tank and the deceleration assembly of the present invention.

[0034] Figure 11 is a schematic diagram of the cross-sectional structure of the internal chain of the cleaning tank of the present invention.

[0035] In the diagram: 1. Cleaning tank; 2. Splash guard; 3. Handle; 4. Motor; 5. Cutting assembly; 51. Base plate; 52. Main shaft one; 53. Cover plate; 54. Spring plate one; 55. Belt; 56. Cutting blade; 6. Power conversion assembly; 61. Filter plate; 62. Transmission ring; 63. Support ring; 64. Main shaft two; 65. Turbine; 7. Divider assembly; 71. Balance shaft; 72. Divider plate one; 73. Divider plate two; 74. Spring plate two; 8. Reduction assembly; 81. Outer ring; 82. Internal gear; 83. Gear; 9. Chain; 10. Water outlet pipe; 11. Balance ring; 12. Wave groove; 13. Cutting groove. Detailed Implementation

[0036] 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.

[0037] As shown in Figures 1 to 11, the present invention provides a textile waste recycling and processing device, including a washing tank 1 and a splash guard 2 hinged to the top of the washing tank 1. The splash guard 2 is provided with a handle 3. A water outlet pipe 10 communicating with the interior of the washing tank 1 is provided at the bottom of the washing tank 1. A motor 4 is provided at the bottom of the washing tank 1. A balance ring 11 is installed inside the washing tank 1 via bearings. The device also includes…

[0038] The reduction gear assembly 8 is located inside the cleaning tank 1 and is connected to the motor 4 for transmission.

[0039] The deceleration assembly 8 includes an outer ring 81 that is movably installed inside the cleaning tank 1;

[0040] It also includes a cutting assembly 5 disposed inside the cleaning tank 1;

[0041] The cutting assembly 5 includes a base plate 51, a main shaft 52, a cover plate 53, a spring plate 54, a belt 55, and a cutting blade 56. The spring plate 54 is elastically connected to the base plate 51. The base plate 51 is hinged to the outer ring 81. The top of the base plate 51 is connected to the cover plate 53 through the main shaft 52 and the cutting blade 56. The main shaft 52 is connected to the power conversion assembly 6 through a chain 9. The main shaft 52 is connected to the cutting blade 56 through a belt 55. The belt 55 is movably engaged between the base plate 51 and the cover plate 53.

[0042] It also includes two differentiation components 7 arranged circumferentially inside the cleaning tank 1;

[0043] The separation component 7 includes a balance shaft 71 hinged to the top of the outer ring 81. A first splitter plate 72 and a second splitter plate 73 are movably mounted on the balance shaft 71. The second splitter plate 73 is elastically hinged to the outer ring 81 through a second spring plate 74.

[0044] It also includes a power conversion component 6 installed inside the cleaning tank 1, and the motor 4 drives the cutting component 5 and the differentiation component 7 to work through the reduction component 8 and the power conversion component 6.

[0045] The cutting assembly 5 has three sets of structures except for the spring plate 54, which are arranged vertically. The three cutting assemblies 5 are fixedly connected to each other. The upper cover plate 53 is hinged to the balance ring 11. The inner wall of the cleaning tank 1 has cutting grooves 13 in the same number as the cutting assemblies 5. The cutting blade 56 moves in the cutting grooves 13. The outer periphery of the belt 55 is provided with rubber protrusions and there is a gap between the belt and the inner wall of the cleaning tank 1.

[0046] The top of the balance shaft 71 is hinged to the balance ring 11. The inner wall of the cleaning tank 1 is provided with two intersecting wave grooves 12. The first diversion plate 72 and the second diversion plate 73 are respectively disposed inside the two wave grooves 12.

[0047] Both the first flow divider 72 and the second flow divider 73 have slots of the same size, and blades are provided at both the upper and lower ends of the slots.

[0048] Using the above scheme: First, open the splash guard 2 by handle 3, then pour water with cleaning agent and waste textiles into the cleaning tank 1. However, it should be noted that the waste textiles must be located between the two separation components 7 and not in contact with the cutting component 5. Then, the motor 4 can be started. The motor 4 drives the cutting component 5 and the two separation components 7 to rotate around the output shaft of the motor 4 through the reduction component 8 and the power conversion component 6.

[0049] As the two separating components 7 rotate, waste textiles will accumulate on the protruding surface of the first separating plate 72. The first separating plate 72 and the second separating plate 73 begin to move vertically according to the shape characteristics of the two wave grooves 12. Since the two wave grooves 12 are intersecting, the first separating plate 72 and the second separating plate 73 will move up and down vertically in an intersecting manner. When the slots on the first separating plate 72 and the second separating plate 73 overlap or align, the waste textiles will enter the slots. When the first separating plate 72 and the second separating plate 73 move again and intersect, the blades in the slots will cut the textiles. After the textiles are cut by the two separating components 7, they will come into contact with the cutting component 5.

[0050] The power conversion component 6 drives the main shaft 52 to rotate via the chain 9. The main shaft 52 then drives the belt 55 to rotate. The rubber protrusions on the belt 55 guide the water to flow onto the cutting blade 56. It should also be noted that the textiles will move with the water to the edge of the cutting blade 56. As the base plate 51 continues to rotate around the center point of the output shaft of the motor 4, the textiles will be squeezed by the base plate 51 and will come into contact with the cutting blade 56 and be cut by the cutting blade 56. The cutting blade 56 is located in the cutting groove 13, which allows the waste textiles to be cut more thoroughly, thus facilitating subsequent cleaning and processing.

[0051] When there is too much textile material between the base plate 51 and the inner wall of the cleaning tank 1 and it is piled up, which makes it impossible for the cutting blade 56 to cut smoothly, the spring plate 54 will bend and increase the gap between the base plate 51 and the cleaning tank 1. At this time, the textile material can pass through the cutting assembly 5 and reach the edge of the diversion plate 72. Similarly, when the gap between the diversion plate 72 and the cleaning tank 1 is not enough for the textile material to pass through, the spring plate 74 will also bend and allow the textile material to pass through smoothly. However, since the diversion plate 72 will move up and down according to the shape characteristics of the wave groove 12, the textile material will not continue to be piled up.

[0052] It is worth noting that while the shredding process is underway, the textiles, in conjunction with the cutting component 5 and the separation component 7, are in continuous contact with water containing cleaning agent and rub against each other. This process can also rub off the dyes and chemical coatings in the waste textiles, further improving the working efficiency of the device.

[0053] Since the balance shaft 71 and the top cover plate 53 are hinged to the balance ring 11, the output shaft of the motor 4 can drive the two separating components 7 and the cutting component 5 to rotate through the reduction assembly 8, which can be more stable.

[0054] The structure in the cutting assembly 5, excluding the spring sheet 54, does not necessarily need to be set in three sets; the quantity needs to be set according to the situation.

[0055] As shown in Figures 3, 6, 9, and 10, the deceleration assembly 8 also includes an internal gear 82 disposed inside the outer ring 81. Two meshing gears 83 are disposed at the bottom of the outer ring 81. The two gears 83 are a sun gear and a planet gear, respectively. The sun gear is connected to the output shaft of the motor 4, and the planet gear is installed inside the cleaning tank 1 through bearings and meshes with the internal gear 82.

[0056] The output shaft of motor 4 passes through the bottom of cleaning tank 1. A rubber sealing ring is provided at the connection between the output shaft of motor 4 and cleaning tank 1. The output shaft of motor 4 drives the outer ring 81 to rotate through internal gear 82 and two gears 83. The rotational speed of the outer ring 81 is less than the rotational speed of the output shaft of motor 4.

[0057] Using the above scheme: the output shaft of motor 4 drives gear 83 to rotate, and another gear 83 is mounted on the cleaning tank 1. At this time, gear 83 will also drive inner gear 82 and outer ring 81 to rotate. Outer ring 81 drives cutting component 5 and differentiation component 7 to rotate and work. However, the speed of outer ring 81 will be less than the speed of gear 83, so that cutting component 5 and differentiation component 7 will not cause waste cloth to get stuck between the inner wall of cleaning tank 1 and the outer periphery of cutting component 5 and differentiation component 7 due to excessive speed, thereby improving the smoothness of device operation.

[0058] As shown in Figures 2, 3, 6, 9, and 11, the power conversion assembly 6 includes two filter plates 61 fixedly installed at the upper and lower ends inside the cleaning tank 1. A transmission ring 62 is movably installed on the top of the filter plate 61. A second main shaft 64 is fixedly installed on the top of the sun gear. Two turbines 65 are respectively installed on the second main shaft 64.

[0059] There are three transmission rings 62 arranged vertically. Each transmission ring 62 is connected to the other by a support ring 63. All three transmission rings 62 are fixed on the second main shaft 64. The transmission rings 62 are connected to the first main shaft 52 by a chain 9.

[0060] The filter plate 61 and the support ring 63 together form a cavity. The top and bottom of the cavity are sealed by the inner wall of the cleaning tank 1. The support ring 63 has diamond-shaped slots at equal angles in the circumferential direction, and the transmission ring 62 has water grooves at equal angles in the circumferential direction on its outer periphery.

[0061] Using the above scheme: the output shaft of motor 4 drives the second main shaft 64 to rotate through gear 83. At this time, the second main shaft 64 will drive each turbine 65 and the transmission ring 62 to rotate.

[0062] The transmission ring 62 will drive the main shaft 52 to rotate through the chain 9, thereby enabling the cutting component 5 to enter the working state. The outer gear 83 meshes with the inner gear 82. At this time, the rotation direction of the main shaft 64 is opposite to that of the main shaft 52, that is, the rotation speed of the main shaft 52 increases, thereby cutting the waste textiles better.

[0063] During the rotation of turbine 65, it draws water from inside the cleaning tank 1 into the chamber, while the textiles are blocked by filter plate 61, thus preventing the threads in the cut textiles from getting tangled on the main shaft 64 or turbine 65. After the water is drawn into the chamber, it will eventually be sprayed back into the cleaning tank 1 through the diamond-shaped slot and the water tank. As shown in Figure 9, the openings of the chain 9, the diamond-shaped slot, and the water tank all face the chain 9. This ensures that the crushing of the threads in the textiles under the impact of the water flow does not affect the transmission of the chain 9, further improving the smoothness of the device's operation.

[0064] It should be noted that the number of transmission rings 63 changes according to the number of drive shafts 52.

[0065] Working principle and usage process of this invention:

[0066] First, open the splash guard 2 by using handle 3. Then, pour water containing cleaning agent and waste textiles into the cleaning tank 1. Note that the waste textiles must be placed between the two power conversion components 6 and not in contact with the cutting component 5. Then, start the motor 4. The output shaft of the motor 4 drives the gear 83 to rotate. The other gear 83 is mounted on the cleaning tank 1. At this time, the gear 83 will also drive the inner gear 82 and the outer ring 81 to rotate. The outer ring 81 drives the base plate 51 and the balance shaft 71 to rotate and work.

[0067] Diverter plate 1 72 and diverter plate 2 73 start to move according to the two wave grooves 12 and move back and forth in a vertical direction. When the grooves on diverter plate 1 72 and diverter plate 2 73 overlap, the waste textiles will enter the grooves. When diverter plate 1 72 and diverter plate 2 73 move again and cross each other, the blades in the grooves will cut the textiles. After the textiles are cut by the two diverter components 7, they will come into contact with the cutting component 5.

[0068] The output shaft of motor 4 drives the second main shaft 64 to rotate via gear 83. At this time, the second main shaft 64 will drive each turbine 65 and the transmission ring 62 to rotate. The transmission ring 62 will drive the first main shaft 52 to rotate via chain 9.

[0069] The rotation of the main shaft 52 will drive the belt 55 to rotate. The rubber protrusions on the belt 55 guide the water to flow onto the cutting blade 56. The textile will also move with the water to the edge of the cutting blade 56. As the base plate 51 continues to rotate around the center point of the output shaft of the motor 4, the textile will be squeezed by the base plate 51 and will successfully contact the cutting blade 56 and be cut by the cutting blade 56.

[0070] While the shredding process is underway, the textiles, in conjunction with the cutting component 5 and the separation component 7, are in continuous contact with water containing detergent and rub against each other, which can also rub off the dyes and chemical coatings in the waste textiles.

[0071] The water outlet pipe 10 is connected to an external water pipe. After the device has finished working, the textiles in the cleaning tank 1 can be taken out and the external water pipe valve can be opened, at which time the water will be discharged.

[0072] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0073] 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 alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A textile waste recycling and processing device, comprising a washing tank (1) and a splash guard (2) hinged to the top of the washing tank (1), wherein a handle (3) is provided on the splash guard (2), a water outlet pipe (10) communicating with the interior of the washing tank (1) is provided at the bottom of the washing tank (1), a motor (4) is provided at the bottom of the washing tank (1), and a balance ring (11) is installed inside the washing tank (1) via a bearing connection, characterized in that: It also includes a reduction gear assembly (8) movably disposed inside the cleaning tank (1) and driven by the motor (4); the reduction gear assembly (8) includes an outer ring (81) movably installed inside the cleaning tank (1); and a cutting assembly (5) disposed inside the cleaning tank (1); the cutting assembly (5) includes a base plate (51), a main shaft (52), a cover plate (53), a spring plate (54), a belt (55), and a cutting blade (56), the spring plate (54) being elastically connected to the base plate (51), the base plate (51) being hinged to the outer ring (81), the top of the base plate (51) being connected to the cover plate (53) via the main shaft (52) and the cutting blade (56), the main shaft (52) being driven by the motor (4). The chain (9) is connected to the power conversion assembly (6) for transmission. The main shaft (52) is connected to the cutting blade (56) for transmission via the belt (55). The belt (55) is movably engaged between the base plate (51) and the cover plate (53). Two separation assemblies (7) are arranged circumferentially inside the cleaning tank (1). The separation assembly (7) includes a balance shaft (71) hinged to the top of the outer ring (81). A first diverter plate (72) and a second diverter plate (73) are movably mounted on the balance shaft (71). The second diverter plate (73) is elastically hinged to the outer ring (81) via a second spring plate (74). The power conversion assembly (6) is arranged inside the cleaning tank (1). The motor (4) is connected to the cutting blade (56) via a reduction assembly (8). The power conversion component (6) drives the cutting component (5) and the differentiation component (7) to work; the cutting component (5) has three sets of structures except for the spring plate (54) and is arranged vertically. The three cutting components (5) are fixedly connected to each other. The cover plate (53) is hinged to the balance ring (11). The inner wall of the cleaning tank (1) is provided with a number of cutting grooves (13) equal to the number of cutting components (5). The cutting blade (56) moves in the cutting grooves (13). The outer periphery of the belt (55) is provided with rubber protrusions and there is a gap between it and the inner wall of the cleaning tank (1). The top of the balance shaft (71) is hinged to the balance ring (11). The inner wall of the cleaning tank (1) is provided with a number of cutting grooves (13) equal to the number of cutting components (5). Two intersecting wave grooves (12) are provided, and the first diverter plate (72) and the second diverter plate (73) are respectively movably disposed inside the two wave grooves (12); the first diverter plate (72) and the second diverter plate (73) are provided with slots of the same size, and the upper and lower ends of the slots are provided with blades; the deceleration assembly (8) also includes an internal gear (82) disposed inside the outer ring (81), and the bottom of the outer ring (81) is provided with two meshing gears (83), the two gears (83) being a sun gear and a planet gear respectively, the sun gear being connected to the output shaft of the motor (4), and the planet gear being mounted inside the cleaning tank (1) through bearings and meshing with the internal gear (82);The power conversion assembly (6) includes two filter plates (61) fixedly installed at the upper and lower ends inside the cleaning tank (1). A transmission ring (62) is movably installed on the top of the filter plate (61). A second main shaft (64) is fixedly installed on the top of the sun gear. Two turbines (65) are respectively provided on the second main shaft (64). There are three transmission rings (62) in total, arranged vertically. Each transmission ring (62) is connected to the other by a support ring (63). All three transmission rings (62) are fixedly installed on the second main shaft (64). The transmission rings (62) are connected to the first main shaft (52) by a chain (9).

2. The textile waste recycling and processing device according to claim 1, characterized in that: The output shaft of the motor (4) passes through the bottom of the cleaning tank (1). A rubber sealing ring is provided at the connection between the output shaft of the motor (4) and the cleaning tank (1). The output shaft of the motor (4) drives the outer ring (81) to rotate through the internal gear (82) and two gears (83). The rotational speed of the outer ring (81) is less than the rotational speed of the output shaft of the motor (4).

3. The textile waste recycling and processing device according to claim 1, characterized in that: The filter plate (61) and the support ring (63) together form a cavity. The top and bottom of the cavity are sealed by the inner wall of the cleaning tank (1). The support ring (63) has diamond-shaped slots at equal angles in the circumferential direction. The transmission ring (62) has water grooves at equal angles in the circumferential direction on its outer periphery.

Citation Information

Patent Citations

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