Clean type material returning equipment for non-woven fabric production
By using the conveying mechanism and auxiliary mechanism within the transmission frame, the problem of uneven crushing caused by loose fabric strips in nonwoven fabric production is solved, achieving more efficient crushing and reducing dust pollution, thereby improving production efficiency and equipment stability.
Patent Information
- Application Number
- CN202511266911.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-05
- Publication Date
- 2025-12-30
AI Technical Summary
In current nonwoven fabric production, the loose and disordered fabric strips are transported to the shredder, resulting in uneven shredding, which affects efficiency and increases dust pollution.
The conveying mechanism within the transmission frame includes a compaction plate, a magnetic plate, and an auxiliary mechanism. The compaction plate rotates and sprays water to achieve tight compression of the fabric. The magnetic plate and the arc-shaped pressure strip adapt to the undulations of the fabric surface. The round-headed sliding block increases the contact pressure, and the arc-shaped pressure strip and the swing plate automatically clean up debris.
This achieves tighter compaction of the fabric before pulverization, reducing dust generation, improving pulverization efficiency and product quality, and reducing equipment pollution and maintenance costs.
Smart Images

Figure CN121222784A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of crushing and recycling technology, specifically to a clean recycling device for nonwoven fabric production. Background Technology
[0002] Non-woven fabric, also known as non-woven cloth, needle-punched cotton, needle-punched non-woven fabric, etc., is made of polyester fiber and polyester fiber material and is made through needle punching process, which can produce different thicknesses, feel, hardness, etc.
[0003] A clean recycling device for nonwoven fabric production, as described in patent application CN111113721B, includes a horizontally arranged feed pipe, a vertically arranged shredding pipe below the feed pipe, a storage box, and cutting blades. The upper end of the shredding pipe is connected to the feed pipe through a conveying pipe, and the lower end of the shredding pipe is connected to the storage box. The cutting blades are rotatably arranged inside the shredding pipe. A feed port is opened on the upper wall of the feed pipe. A first electric push rod is fixed to each of the two end faces of the feed pipe. The output shaft of the first motor is connected to an extrusion head through a coaxially arranged rotating shaft. The extrusion head is a hemispherical groove, and the outer surface of this groove is clearance-fitted with the inner wall of the feed pipe. A filter screen is provided at the connection between the connecting pipe and the storage box.
[0004] In the nonwoven fabric production process, feeding a large number of fabric scraps into a shredder for crushing is a crucial step. Currently, there are many problems that urgently need to be solved in the process of transferring the fabric scraps to the shredder.
[0005] Existing methods typically involve directly feeding shredded fabric into the shredder via a conveyor. However, due to the loose texture and irregular shape of the shredded fabric, it falls freely into the shredder in a scattered and disordered state. This scattered state results in uneven distribution of the fabric within the shredder, causing significant differences in the force exerted on different parts of the shredding wheel during crushing. In some areas, the fabric is too concentrated, requiring more energy and time for the shredding wheel to break it; while in other areas, the fabric is too sparse, potentially causing the shredding wheel to idle or resulting in insufficient crushing. This severely impacts shredding efficiency, leading to prolonged overall shredding time and low production efficiency. Summary of the Invention
[0006] To address the shortcomings of existing technologies, this invention provides a clean recycling device for nonwoven fabric production, thereby solving the aforementioned problems.
[0007] To achieve the above objectives, the present invention is implemented through the following technical solution: a clean recycling device for non-woven fabric production, comprising a transmission frame, a motor fixedly connected to one side of the transmission frame, a connector fixedly connected to the bottom of the transmission frame, a pulverizer fixedly connected to the bottom of the connector, a pulverizing wheel provided inside the pulverizer, and a conveying mechanism provided inside the transmission frame;
[0008] The conveying mechanism includes:
[0009] The compaction plate is an arc-shaped plate structure. A rotating shaft is fixedly connected to the output end of the motor. One end of the rotating shaft passes through the transmission frame and is rotatably connected to the other side of the inner wall. A fixing sleeve is fixedly connected to the outer wall of the rotating shaft. A first connecting block, a sliding sleeve, and a second connecting block are provided at the bottom of the fixing sleeve. An elastic rigid strip is provided at the bottom of the rotating shaft. An arc-shaped seat is fixedly connected to the bottom of the inner wall of the transmission frame.
[0010] A first magnetic plate, the top of which is fixedly connected to the bottom of the arc-shaped seat, the first magnetic plate having an arc-shaped plate structure, and a second magnetic plate provided on the inner wall of the compacted plate.
[0011] Preferably, the second magnetic plate and the first magnetic plate are magnetic, and the magnetic properties of the opposite sides of the second magnetic plate and the first magnetic plate are attracted to each other.
[0012] Preferably, the bottom of the fixed sleeve is fixedly connected to the top of the first connecting block, the outer wall of the first connecting block is slidably connected to the inner wall of the sliding sleeve, and the inner wall of the sliding sleeve is slidably connected to the top of the second connecting block.
[0013] Preferably, the bottom of the second connecting block is fixedly connected to the top of the compaction plate, and an elastic rigid strip is fixedly connected to the bottom of the rotating shaft, with the other end of the elastic rigid strip fixedly connected to the top of the compaction plate.
[0014] Preferably, the inner wall of the compaction plate is provided with a sliding groove, and a round-headed sliding block is slidably connected to the inner wall of the sliding groove.
[0015] Preferably, an auxiliary mechanism is provided at the bottom of the compaction plate. The auxiliary mechanism includes an arc-shaped pressure strip, which is fixedly connected to the bottom of the compaction plate. A limit rod is fixedly connected to one side of the arc-shaped pressure strip, and the limit rod is used to limit the swing plate.
[0016] Preferably, the outer wall of the arc-shaped pressure strip is slidably connected to a swing plate, and the inner wall of the swing plate is provided with a sliding groove. The inner wall of the swing plate is slidably connected to the outer wall of the arc-shaped pressure strip through the sliding groove.
[0017] Preferably, the compaction plate has a water storage cavity inside and a spray hole at the bottom. A threaded cap is threadedly installed on one side of the compaction plate, and a one-way air inlet is provided inside the threaded cap for replenishing external air after the water in the water storage cavity is sprayed out through the spray hole.
[0018] This invention provides a clean recycling device for nonwoven fabric production. It has the following beneficial effects:
[0019] 1. This invention uses a conveying mechanism to compress the fabric before crushing. The compressed fabric has a denser structure and can be broken up more quickly and evenly during the crushing process. The compacted fabric experiences more uniform force on each part during crushing, resulting in more consistent particle size. At the same time, loose fabric tends to generate a lot of dust during crushing, while the amount of dust generated by the compressed fabric is significantly reduced. This improves the working environment, reduces the health hazards of dust to operators, and also reduces dust pollution and clogging of the equipment, ensuring the normal operation of the equipment.
[0020] 2. By setting up a conveying mechanism, the round-headed sliding block can increase the concentration of contact pressure between the pressing plate and the fabric. Under the same total pressure, the round-headed column can apply pressure more concentratedly to local areas of the fabric, so that the fabric is subjected to greater pressure in these areas, thereby more effectively pressing and compacting the fabric. Especially for some thicker or loosely textured fabrics, it can better reduce their internal gaps, so that the fabric is uniformly constrained in all directions, preventing local loosening or displacement of the fabric during the pressing process, and ensuring the stability and reliability of the pressing.
[0021] 3. By setting up an auxiliary mechanism, water is sprayed while pressing a large amount of fabric scraps at the bottom, enhancing the pressing effect. Water has a certain viscosity and fluidity, and with each spray hole, the automatic and evenly distributed spraying method allows the fabric fibers to better adhere and interweave with each other during the pressing process. At the same time, the water fills the gaps between the fabric fibers. When the pressing plate applies pressure, the water plays a role in transmitting and evenly distributing the pressure, allowing the pressure to act more effectively on each part of the fabric, making the fabric scraps more compact, reducing the looseness and gaps between the fabric, improving the pressing quality, and spraying evenly without manual spraying, saving water resources and improving work efficiency.
[0022] 4. By setting up an auxiliary mechanism, the curved pressure strips are used for pressing instead of directly pressing through the bottom of the pressing plate. This avoids the uneven pressing caused by the pressing plate directly descending and pressing. If the fabric surface is uneven, the raised parts will receive greater pressure when the plate contacts the fabric, while the concave parts will receive less pressure, resulting in uneven pressing. The narrow, horizontal curved pressure strips can better adapt to the undulations of the fabric surface. Each thin strip can contact the fabric independently, adjusting the pressure distribution according to the local height, making the pressure on the fabric more even and the pressing effect more consistent. Furthermore, direct pressing by the pressing plate may cause gaps or slippage in the middle layers. The horizontal thin strips can insert between the fabric layers like a comb, increasing the contact points with each layer, enhancing interlayer friction, effectively preventing misalignment and loosening of the fabric layers, and ensuring the tightness and stability of the multi-layer fabric pressing.
[0023] 5. By setting up an auxiliary mechanism, the swing plate on the arc-shaped pressure strip at the bottom of the compaction plate slides back and forth continuously on the arc-shaped pressure strip depending on its position. This peels off a large amount of scrap fabric and particles that adhere to the surface of the compaction plate and the arc-shaped pressure strip when they are pressed together. Without the automatic peeling function of the swing plate, frequent manual stops are required to clean the scrap fabric and particles on the surface of the compaction plate and the arc-shaped pressure strip. This not only consumes a lot of manpower and time, but also affects the continuity of production. The real-time sliding peeling of the swing plate realizes the automatic cleaning of debris, reduces the frequency and workload of manual maintenance, and lowers equipment maintenance costs. Attached Figure Description
[0024] Figure 1 This is a schematic diagram of the structure of the present invention;
[0025] Figure 2 This is a cross-sectional structural diagram of the present invention;
[0026] Figure 3 This is a schematic diagram of the conveying mechanism of the present invention;
[0027] Figure 4 This is a schematic diagram of the transmission frame structure of the present invention;
[0028] Figure 5 For the present invention Figure 2 Enlarged view of point A;
[0029] Figure 6 This is a schematic diagram of the disassembled structure of the conveying mechanism of the present invention;
[0030] Figure 7 For the present invention Figure 3 Enlarged view of point B;
[0031] Figure 8 This is a schematic diagram of the auxiliary mechanism of the present invention. Figure 1 ;
[0032] Figure 9This is a schematic diagram of the auxiliary mechanism of the present invention. Figure 2 .
[0033] In the diagram: 1. Conveying frame; 3. Conveying mechanism; 301. Compacting plate; 302. Rotating shaft; 303. Fixing sleeve; 304. First connecting block; 305. Sliding sleeve; 306. Second connecting block; 307. Sliding groove; 308. Round-headed sliding block; 309. Elastic rigid strip; 310. First magnetic plate; 311. Second magnetic plate; 313. Arc-shaped seat; 4. Auxiliary mechanism; 401. Arc-shaped pressure strip; 402. Swinging plate; 403. Limiting rod; 404. Sliding groove; 405. Spray hole; 406. Threaded cap; 5. Crusher; 6. Crushing wheel; 7. Connecting piece; 8. Motor. Detailed Implementation
[0034] Example 1: Please refer to Figure 1-4 The present invention provides a technical solution: a clean recycling equipment for non-woven fabric production, including a transmission frame 1, a motor 8 fixedly connected to one side of the transmission frame 1, a connector 7 fixedly connected to the bottom of the transmission frame 1, a crusher 5 fixedly connected to the bottom of the connector 7, a crushing wheel 6 inside the crusher 5, and a conveying mechanism 3 inside the transmission frame 1.
[0035] Conveying mechanism 3 includes:
[0036] The compaction plate 301 is an arc-shaped plate structure. The output end of the motor 8 is fixedly connected to the rotating shaft 302. One end of the rotating shaft 302 passes through the transmission frame 1 and is rotatably connected to the other side of the inner wall of the 2. The outer wall of the rotating shaft 302 is fixedly connected to the fixing sleeve 303. The bottom of the fixing sleeve 303 is provided with a first connecting block 304, a sliding sleeve 305, and a second connecting block 306. The bottom of the rotating shaft 302 is provided with an elastic rigid strip 309. The bottom of the inner wall of the transmission frame 1 is fixedly connected to the arc-shaped seat 313.
[0037] The first magnetic plate 310 is fixedly connected at the top to the bottom of the arc-shaped seat 313. The first magnetic plate 310 has an arc-shaped plate structure. The inner wall of the compacted plate 301 is provided with a second magnetic plate 311.
[0038] When using it in the production of nonwoven fabric, when a large number of shredded fabric strips are put into the shredder 5 and shredded by the shredding wheel 6, the large number of shredded fabric strips need to be uniformly transported and discharged into the shredder 5 through the conveyor frame 1 first.
[0039] When the fabric strip falls through the transmission frame 1, it falls into the arc-shaped seat 313 below the transmission frame 1 and is placed on the arc-shaped seat 313. At this time, the motor 8 is started to control the rotating shaft 302 to rotate. When the rotating shaft 302 rotates, it drives the fixed sleeve 303 to rotate synchronously. The fixed sleeve 303 drives the pressing plate 301 at its bottom to rotate through the first connecting block 304, the sliding sleeve 305, and the second connecting block 306. After the pressing plate 301 rotates around the fixed sleeve 303 and the rotating shaft 302 for one revolution, it rotates to the top of the arc-shaped seat 313. The second magnetic plate 311 inside the pressing plate 301 and the first magnetic plate 310 at the bottom of the arc-shaped seat 313 are magnetically attracted to each other. This causes the pressing plate 301 to drive the first connecting block 304, the sliding sleeve 305, and the second connecting block 306 to slide and stretch. The pressing plate 301 and the arc-shaped seat 313 are then connected. The surface bonding presses the cloth strips that fall on the arc-shaped seat 313, flattening them so that several cloth strips are tightly flattened together. Then, as the fixed sleeve 303 and the rotating shaft 302 continue to rotate, the pressing plate 301 below continues to rotate towards the crusher 5, pushing the pressed cloth strips into the crushing wheel 6 inside the crusher 5, thus performing the pressing work before crushing the cloth. The compressed cloth structure is more compact, and it can be broken more quickly and evenly during the crushing process. When the tightly flattened cloth is crushed, the force on each part is more uniform, which can make the size of the crushed cloth particles more consistent. At the same time, loose cloth is prone to generating a lot of flying dust during crushing, while the amount of dust generated during the crushing process of compressed cloth is significantly reduced, which is conducive to improving the working environment, reducing the harm of dust to the health of operators, and also reducing dust pollution and blockage of equipment, ensuring the normal operation of the equipment.
[0040] Example 2: Please refer to Figure 1-6 Based on Embodiment 1, this invention provides a technical solution: Currently, the compression effect is unsatisfactory for some special types of fabrics. For example, for thicker or looser fabrics, flat-plate compression, due to its relatively dispersed pressure distribution, struggles to penetrate deep into the fabric and effectively reduce internal voids. During compression, the fabric is prone to localized loosening or displacement, resulting in an unstable fabric structure after compression. In subsequent processing steps such as crushing, uneven stress on different parts of the fabric not only affects the uniformity of processing, leading to significant differences in particle size after crushing and reducing product quality, but also increases energy consumption and wear on processing equipment, shortening its lifespan. Therefore, the second magnetic plate 311 and the first magnetic plate 310 are magnetic, with opposite poles attracting each other on opposite sides of the second magnetic plate 311 and the first magnetic plate 310.
[0041] The bottom of the fixed sleeve 303 is fixedly connected to the top of the first connecting block 304, the outer wall of the first connecting block 304 is slidably connected to the inner wall of the sliding sleeve 305, and the inner wall of the sliding sleeve 305 is slidably connected to the top of the second connecting block 306.
[0042] The bottom of the second connecting block 306 is fixedly connected to the top of the compaction plate 301, and the bottom of the rotating shaft 302 is fixedly connected to an elastic rigid strip 309, the other end of which is fixedly connected to the top of the compaction plate 301.
[0043] The inner wall of the compaction plate 301 is provided with a sliding groove 307, and a round-headed sliding block 308 is slidably connected to the inner wall of the sliding groove 307.
[0044] When the pressing plate 301 is in close contact with the arc-shaped seat 313, the round-headed sliding block 308 at the bottom of the pressing plate 301 is pressed into the sliding groove 307 inside the pressing plate 301, and squeezes the built-in spring inside the sliding groove 307, so that the round-headed sliding block 308 is subjected to force to further press the fabric. By using several round-headed sliding blocks 308 densely pressing the fabric, the round-headed sliding blocks 308 can increase the concentration of contact pressure between the pressing plate and the fabric. Under the same total pressure, the round-headed column can apply pressure more concentratedly to local areas of the fabric, so that the fabric is subjected to greater pressure in these areas, thereby more effectively pressing and compacting the fabric. Especially for some thicker or loose fabrics, it can better reduce their internal gaps, so that the fabric can be uniformly constrained in all directions, preventing local loosening or displacement of the fabric during the pressing process, and ensuring the stability and reliability of the pressing.
[0045] Example 3: Please refer to Figure 1-9 Based on Embodiments 1 and 2, this invention provides a technical solution: In scenarios where enhanced fabric compaction is required, adding an appropriate amount of water can improve the adhesion and interweaving of fabric fibers, thereby enhancing compaction quality. However, existing methods of adding water mostly involve manual spraying, which has many drawbacks. Manual spraying makes it difficult to ensure uniform distribution of water on the fabric surface, easily resulting in excessive or insufficient spraying in certain areas, leading to unstable compaction. Moreover, manual operation is inefficient, increasing production time and labor costs, and also wasting water resources. Furthermore, manual spraying makes it difficult to flexibly adjust the spraying amount and timing according to the real-time needs of the compaction process, making precise water control impossible. Therefore, an auxiliary mechanism 4 is provided at the bottom of the compaction plate 301. The auxiliary mechanism 4 includes an arc-shaped pressure strip 401, which is fixedly connected to the bottom of the compaction plate 301. A limiting rod 403 is fixedly connected to one side of the arc-shaped pressure strip 401, and the limiting rod 403 is used to limit the swing plate 402.
[0046] A swing plate 402 is slidably connected to the outer wall of the arc-shaped pressure strip 401. A sliding groove 404 is provided on the inner wall of the swing plate 402. The inner wall of the swing plate 402 is slidably connected to the outer wall of the arc-shaped pressure strip 401 through the sliding groove 404.
[0047] The compaction plate 301 has a water storage chamber inside and a spray hole 405 at the bottom. A threaded cover 406 is threadedly installed on one side of the compaction plate 301. The threaded cover 406 has a one-way air inlet inside, which is used to replenish the outside air after the water in the water storage chamber is sprayed out through the spray hole 405.
[0048] The compaction plate 301 is filled with water beforehand through the threaded cap 406. The compaction plate 301 has a water storage cavity. When the compaction plate 301 presses the fabric strips, the round-headed sliding block 308 is pushed into the sliding groove 307, which presses the water in the water storage cavity and sprays it out through the spray hole 405. This achieves the simultaneous pressing of a large amount of fabric scraps at the bottom and spraying water, enhancing the pressing effect. Water has a certain viscosity and fluidity. With each automatic and large-scale evenly distributed spraying method of the spray hole 405, the water sprayed onto the fabric scraps during the pressing process can better adhere and interweave the fabric fibers. At the same time, the water fills the gaps between the fabric fibers. When the compaction plate 301 applies pressure, the water plays the role of transmitting and evenly distributing the pressure, allowing the pressure to act more effectively on each part of the fabric, making the fabric scraps more compact, reducing the looseness and gaps between the fabric, improving the pressing quality, spraying evenly, eliminating the need for manual spraying, saving water resources, and improving work efficiency.
[0049] Furthermore, when the pressing plate 301 presses the fabric, it does so through the contact between the arc-shaped pressure strip 401 and the surface of the fabric and the arc-shaped seat 313. The arc-shaped pressure strip 401 is used for pressing, rather than directly pressing through the bottom of the pressing plate 301. This avoids the unevenness that can occur when the pressing plate 301 descends directly to press, especially if the fabric surface is uneven. The raised parts will experience greater pressure first, while the recessed parts will experience less pressure, leading to uneven pressing. The narrow, transverse arc-shaped pressure strip 401 better adapts to the undulations of the fabric surface. Each strip can independently contact the fabric, adjusting the pressure distribution according to local height, resulting in more even pressure and a more consistent pressing effect. Direct pressing with the pressing plate 301 may cause gaps or slippage in the middle layers. The transverse strips can insert between the fabric layers like a comb, increasing the contact points with each layer, enhancing interlayer friction, effectively preventing misalignment and loosening of the fabric layers, and ensuring the tightness and stability of the multi-layer fabric pressing.
[0050] When the fixed sleeve 303 drives the rotating shaft 302 and the compaction plate 301 to rotate continuously, the swing plate 402 on the arc-shaped pressure strip 401 at the bottom of the compaction plate 301 will slide back and forth on the arc-shaped pressure strip 401 from side to side depending on its position. This will peel off a large amount of scrap fabric and particles that adhere to the surface of the compaction plate 301 and the surface of the arc-shaped pressure strip 401 when they are pressed together. Without the automatic peeling function of the swing plate 402, it would be necessary to manually stop the machine frequently to clean the scrap fabric and particles on the surface of the compaction plate 301 and the arc-shaped pressure strip 401. This would not only consume a lot of manpower and time, but also affect the continuity of production. The real-time sliding peeling of the swing plate 402 realizes the automatic cleaning of debris, reduces the frequency and workload of manual maintenance, and lowers the equipment maintenance cost.
[0051] The threaded cap 406 has a one-way air inlet inside, which is used to replenish the outside air after the water in the water storage chamber is sprayed out through the spray hole 405. Both the spray hole 405 and the one-way air inlet inside the threaded cap 406 are unidirectional and cannot flow backward.
[0052] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A clean recycling device for nonwoven fabric production, comprising a conveyor frame (1), a motor (8) fixedly connected to one side of the conveyor frame (1), a connector (7) fixedly connected to the bottom of the conveyor frame (1), a pulverizer (5) fixedly connected to the bottom of the connector (7), and a pulverizing wheel (6) provided inside the pulverizer (5), characterized in that: The transmission frame (1) is internally provided with a conveying mechanism (3); The conveying mechanism (3) comprises: A compaction plate (301) is in an arc-shaped plate structure, a motor (8) output end is fixedly connected with a rotating shaft (302), one end of the rotating shaft (302) penetrates through the transmission frame (1) and is rotatably connected with the other side of the inner wall of the transmission frame (1), the outer wall of the rotating shaft (302) is fixedly connected with a fixed sleeve (303), the bottom of the fixed sleeve (303) is provided with a first connecting block (304), a sliding sleeve (305) and a second connecting block (306), the bottom of the rotating shaft (302) is provided with an elastic hard strip (309), and the bottom of the inner wall of the transmission frame (1) is fixedly connected with an arc-shaped seat (313). A first magnetic plate (310) is fixedly connected with the bottom of the arc-shaped seat (313), the first magnetic plate (310) is in an arc-shaped plate structure, and the inner wall of the compaction plate (301) is provided with a second magnetic plate (311).
2. A cleaning type rework device for nonwoven production according to claim 1, characterized in that: The second magnetic plate (311) has magnetism with the first magnetic plate (310), and the magnetism of the opposite side of the second magnetic plate (311) and the first magnetic plate (310) is opposite-pole attraction.
3. A cleaning-type recycling device for nonwoven fabric production according to claim 2, characterized in that: The bottom of the fixed sleeve (303) is fixedly connected with the top of the first connecting block (304), the outer wall of the first connecting block (304) is slidingly connected with the inner wall of the sliding sleeve (305), and the inner wall of the sliding sleeve (305) is slidingly connected with the top of the second connecting block (306).
4. The cleaning type material recycling apparatus for nonwoven fabric production according to claim 3, characterized in that: The bottom of the second connecting block (306) is fixedly connected with the top of the compaction plate (301), the bottom of the rotating shaft (302) is fixedly connected with the elastic hard strip (309), and the other end of the elastic hard strip (309) is fixedly connected with the top of the compaction plate (301).
5. A cleaning-type recycling device for nonwoven fabric production according to claim 4, characterized in that: The inner wall of the compaction plate (301) is provided with a sliding groove (307), and the sliding groove (307) is slidingly connected with a round-head sliding block (308).
6. A cleaning-type recycling device for nonwoven fabric production according to claim 5, characterized in that: The bottom of the compaction plate (301) is provided with an auxiliary mechanism (4), the auxiliary mechanism (4) comprises an arc-shaped pressing strip (401), the arc-shaped pressing strip (401) is fixedly connected with the bottom of the compaction plate (301), one side of the arc-shaped pressing strip (401) is fixedly connected with a limiting rod (403), and the limiting rod (403) is used for limiting the swing plate (402).
7. A cleaning-type recycling device for nonwoven fabric production according to claim 6, characterized in that: The outer wall of the arc-shaped pressing strip (401) is slidingly connected with the swing plate (402), the inner wall of the swing plate (402) is provided with a sliding groove (404), and the inner wall of the swing plate (402) is slidingly connected with the outer wall of the arc-shaped pressing strip (401) through the sliding groove (404).
8. A cleaning-type recycling device for nonwoven fabric production according to claim 7, characterized in that: The compaction plate (301) is internally provided with a water storage cavity, the bottom of the compaction plate (301) is provided with a spraying hole (405), the spraying hole (405) is provided, a threaded cover (406) is threadedly installed on one side of the compaction plate (301), the inside of the threaded cover (406) is provided with a one-way air inlet, and water in the water storage cavity is sprayed out through the spraying hole (405) and then supplemented to the outside air.
Citation Information
Patent Citations
Clean recycling equipment for nonwoven fabric production
CN111113721B