Chemical fiber drying and drawing machine for textile processing

By designing a chemical fiber drying and spinning machine that combines rotation and extrusion, the problem of poor fiber drying effect caused by saturated absorbent sponges was solved, achieving continuous drying and water removal of the fiber filaments and preventing the decline in the quality of chemical fibers.

CN120844216BActive Publication Date: 2025-11-21QIDONG JINYU TEXTILE TECH CO LTD
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Patent Information

Application Number
CN202511349237.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-09-22
Publication Date
2025-11-21
Estimated Expiration
2045-09-22

AI Technical Summary

Technical Problem

During the cooling process of the fiber filaments, the saturation of the absorbent sponge inside leads to a poor drying effect on the fiber, affecting the quality of the chemical fiber and even causing it to mold or deteriorate.

Method used

A chemical fiber drying and spinning machine for textile processing was designed, comprising a rotating mechanism, a cooling mechanism, an extrusion mechanism, a collecting mechanism, and a vibration mechanism. By combining centrifugal force with the extrusion of the sponge and water cooling, the machine achieves continuous water absorption and removal of the absorbent sponge, preventing the sponge from becoming saturated.

Benefits of technology

It effectively keeps the fibers dry, prevents dust and debris residue, ensures the quality of chemical fibers, avoids mold or deterioration problems, and improves the convenience of fiber storage and transportation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the technical field of yarn drawing machines, and discloses a chemical fiber drying yarn drawing machine for textile processing, which comprises a cooling box, a rotating mechanism is arranged on the cooling box, the rotating mechanism comprises an annular rotating box arranged in the cooling box, limit annular grooves are respectively arranged on the front face and the back face of the annular rotating box, two L-shaped limit rods are respectively fixedly installed on the left inner wall and the right inner wall of the cooling box, the application further comprises: the ends, which are close to each other, of a plurality of L-shaped limit rods extend into the two limit annular grooves respectively and are matched with the two limit annular grooves respectively, and a plurality of drainage holes are arranged on the outer wall of the annular rotating box. The rectangular limit rod drives the hole-fixed plate to rotate, the hole-fixed plate drives the water-absorbing sponge to rotate, centrifugal force is generated in the process of the rotation of the water-absorbing sponge, the water-absorbing sponge can be separated from the water absorbed by the centrifugal force, and the continuous water-absorbing function of the water-absorbing sponge can be maintained.
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Description

Technical Field

[0001] This invention relates to the field of spinning machine technology, specifically to a chemical fiber drying and spinning machine for textile processing. Background Technology

[0002] Chemical fibers are fibers with textile properties made from natural or synthetic polymers as raw materials through processes such as preparing spinning solutions, spinning, and post-treatment. The preparation of chemical fibers requires a spinning machine. Usually, natural or synthetic polymers or inorganic substances are first made into a spinning melt or solution, which is then filtered, metered, and extruded through a spinneret into a liquid stream, which is then solidified into fibers.

[0003] During the cooling process of the fiber filaments, the inside of the absorbent sponge gradually becomes saturated, which leads to a poor drying effect on the chemical fibers that are subsequently drawn into filaments. Consequently, the chemical fibers that are drawn into filaments are not completely dried before being wound into cylinders, which can cause the chemical fibers to become moldy and deteriorate. Summary of the Invention

[0004] The purpose of this invention is to provide a chemical fiber drying and drawing machine for textile processing, in order to solve the problem that during the cooling process of the fiber filaments, the inside of the water-absorbing sponge gradually becomes saturated, which leads to a poor drying effect of the chemical fibers drawn into filaments. Consequently, the chemical fibers drawn into filaments are not completely dried before being wound into cylinders, which can cause the filaments to become moldy and deteriorate.

[0005] To solve the above-mentioned technical problems, the present invention is achieved through the following technical solution:

[0006] This invention relates to a chemical fiber drying and spinning machine for textile processing, comprising a cooling box, a rotating mechanism on the cooling box, the rotating mechanism including an annular rotating box disposed within the cooling box, the annular rotating box having limiting annular grooves on its front and back sides, and two L-shaped limiting rods fixedly installed on the left and right inner walls of the cooling box, respectively. The machine also includes:

[0007] Several L-shaped limiting rods extend one end close to each other into two limiting annular grooves and are respectively adapted to the two limiting annular grooves. Several drainage holes are opened on the outer wall of the annular rotating box. Two rectangular limiting rods are fixedly installed inside the annular rotating box. Two perforated fixing plates are slidably sleeved on the two rectangular limiting rods. Water-absorbing sponges are fixedly installed on the side of the two perforated fixing plates close to each other. Fiber filaments are provided inside the cooling box. The fiber filaments penetrate the cooling box and are in contact with the two water-absorbing sponges.

[0008] Furthermore, rectangular fixing plates are fixedly installed on the two rectangular limiting rods respectively, and two telescopic springs are sleeved on the two rectangular limiting rods respectively. The ends of several telescopic springs that are close to each other are fixedly connected to the rectangular fixing plates, and the ends of several telescopic springs that are far from each other are fixedly connected to the two fixing plates with holes respectively.

[0009] Furthermore, the cooling box is provided with a compression mechanism, which includes a circular baffle fixedly installed on the inner wall of the top of the cooling box. The circular baffle covers the annular rotating box. Two trapezoidal limiting blocks are fixedly installed on the inner wall of the circular baffle. Sliding plates are fixedly installed on the opposite sides of the two perforated fixing plates. The opposite ends of the two sliding plates extend out of the annular rotating box.

[0010] Furthermore, a cooling mechanism is provided on the back of the cooling box. The cooling mechanism includes a water pump fixedly installed on the back of the cooling box. A water outlet pipe is fixedly installed at the end of the water pump, and a water inlet pipe is fixedly installed at the front end of the water pump. The front end of the water inlet pipe extends into the cooling box, and the end of the water outlet pipe extends into the cooling box. A transmission water tank is fixedly installed at the end of the water outlet pipe. A drain pipe is fixedly installed on the outer wall of the transmission water tank. A water outlet tank is fixedly installed on the top inner wall of the cooling box, and the top end of the drain pipe extends into the water outlet tank.

[0011] Furthermore, the transmission tank is provided with a transmission mechanism, which includes a transmission cylinder fixedly installed on the transmission tank. The transmission cylinder penetrates the transmission tank. Several transmission fan blades are fixedly installed on the outer wall of the transmission cylinder, and the several transmission fan blades are all adapted to the transmission cylinder. A transmission plate is fixedly installed on the outer wall of the transmission cylinder. Two Z-shaped transmission rods are fixedly installed on the left side of the transmission plate, and the left ends of the two Z-shaped transmission rods are fixedly connected to the annular rotating box.

[0012] Furthermore, a collection mechanism is provided inside the cooling box. The collection mechanism includes two rotating rods rotatably installed inside the cooling box, and filter plates are fixedly sleeved on the two rotating rods. A collection drawer is slidably installed inside the cooling box, and the front of the collection drawer extends outside the cooling box.

[0013] Furthermore, a vibration mechanism is provided inside the cooling box. The vibration mechanism includes a triangular plate fixedly installed inside the cooling box. Two arc-shaped square rods are fixedly installed at the bottom of the triangular plate. The two arc-shaped square rods pass through the two filter plates respectively and are slidably connected to the two filter plates respectively. The bottom ends of the two arc-shaped square rods are fixedly connected to the bottom inner wall of the cooling box. Vibration springs are respectively sleeved on the two arc-shaped square rods. The top ends of the two vibration springs are fixedly connected to the two filter plates respectively, and the bottom ends of the two vibration springs are fixedly connected to the bottom inner wall of the cooling box respectively. Vibration plates are fixedly installed on the two arc-shaped square rods respectively.

[0014] Furthermore, a movable mechanism is provided on the inner wall of the back of the cooling box. The movable mechanism includes a C-shaped plate fixedly installed on the inner wall of the back of the cooling box. A rectangular limiting slide rod is fixedly installed inside the C-shaped plate. A movable long plate is slidably sleeved on the rectangular limiting slide rod. A movable spring is sleeved on the rectangular limiting slide rod. The top end of the movable spring is fixedly connected to the movable long plate. The bottom end of the movable spring is fixedly connected to the C-shaped plate. A movable T-shaped plate is fixedly installed at the bottom of the movable long plate.

[0015] The present invention has the following beneficial effects:

[0016] (1) The present invention provides a chemical fiber drying and spinning machine for textile processing. After cooling, the fiber filaments will pass through two water-absorbing sponges. The water-absorbing sponges will absorb the moisture on the fiber filaments to keep them dry and facilitate their later storage and transportation. During the rotation of the Z-shaped transmission rod, the ring rotating box will rotate. The ring rotating box will rotate the rectangular limiting rod. The rectangular limiting rod will rotate the perforated fixing plate. The perforated fixing plate will rotate the water-absorbing sponge. During the rotation of the water-absorbing sponge, centrifugal force will be generated. The centrifugal force will throw off the water absorbed on the water-absorbing sponge, thereby maintaining the continuous water absorption function of the water-absorbing sponge. The thrown-off water will be discharged from the drain hole and finally fall onto the bottom inner wall of the cooling box.

[0017] (2) The present invention provides a chemical fiber drying and spinning machine for textile processing. When in use, the water pump is started, the water pump draws water from the inner wall of the bottom of the cooling box and discharges it into the transmission water tank through the outlet pipe. Then the water enters the outlet water tank through the drain pipe from the transmission water tank. Finally, the water flows out from the groove at the bottom of the outlet water tank to uniformly cool the moving fiber filaments in the cooling box. When the water enters the transmission water tank, the water will impact the transmission fan blades under pressure. The transmission fan blades will rotate in the transmission water tank. The transmission fan blades will drive the transmission cylinder to rotate. The transmission cylinder will drive the transmission plate to rotate. The transmission plate will drive the two Z-shaped transmission rods to rotate, thereby converting the impact force of the water into the rotational force.

[0018] (3) In the present invention, a chemical fiber drying and spinning machine for textile processing, during the rotation of the annular rotating box, several L-shaped limiting rods will limit the annular rotating box in the limiting annular groove to ensure the stability of the annular rotating box during transmission. During the rotation of the annular rotating box, two sliding plates will be driven to rotate. During the rotation of the sliding plates, they will contact two trapezoidal limiting blocks. Under the action of the inclined surface of the trapezoidal limiting blocks, the sliding plates that contact the trapezoidal limiting blocks will slide closer to each other. At this time, several telescopic springs will be compressed and deformed. The two sliding plates will drive two perforated fixing plates to approach each other. The two perforated fixing plates will drive two water-absorbing sponges to approach each other and squeeze. The mutual squeezing of the water-absorbing sponges can further improve the discharge of water in the water-absorbing sponges and avoid the water saturation on the water-absorbing sponges, thereby affecting the water removal effect of the water-absorbing sponges on the fiber filaments.

[0019] (4) In the chemical fiber drying and spinning machine for textile processing of the present invention, during the cooling process of the fiber filaments by water, the debris and dust on the fiber filaments will fall onto the bottom inner wall of the cooling box. During the falling process of the water, it will first come into contact with two filter plates, and the debris and dust will be filtered out by the filter plates. The water will fall onto the bottom inner wall of the cooling box. During the rotation of the two Z-shaped transmission rods, they will come into contact with the movable long plate, and the movable long plate will descend. The movable long plate will drive the movable T-shaped plate to descend, and the movable T-shaped plate will simultaneously come into contact with the two filter plates, causing the two vibrating springs to vibrate. During compression deformation, the ends of the two filter plates near the collection tray will lift up. After the Z-shaped drive rod leaves the movable long plate, the movable long plate will rise under the elastic force of the movable spring. At this time, the filter plates will be driven to bounce up under the elastic force of the vibration spring. The filter plates will hit the vibrating plate, and the filter plates will vibrate. The vibration will shake the debris and dust on the filter plates into the collection tray, preventing water containing dust and debris from being cooled by the water pump again and remaining on the fiber filaments. This also prevents dust and debris from entering the absorbent sponge and affecting its water absorption effect.

[0020] Of course, any product implementing this invention does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description

[0021] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0022] Figure 1 This is a schematic diagram of the overall structure of the present invention;

[0023] Figure 2 This is a schematic diagram of the rear structure of the present invention;

[0024] Figure 3 This is a schematic cross-sectional view of the internal structure of the present invention;

[0025] Figure 4 For the present invention Figure 3 A magnified structural diagram of A in the middle;

[0026] Figure 5 This is a schematic diagram of the rear cross-sectional structure of the present invention;

[0027] Figure 6 This is a partial cross-sectional view of the transmission mechanism of the present invention;

[0028] Figure 7 For the present invention Figure 5 A magnified structural diagram of B in the diagram;

[0029] Figure 8 This is a schematic diagram of the internal structure of the present invention.

[0030] The attached diagram lists the components represented by each number as follows:

[0031] In the diagram: 1. Cooling tank; 100. Rotating mechanism; 101. Annular rotating box; 102. Limiting annular groove; 103. L-shaped limiting rod; 104. Drain hole; 105. Rectangular limiting rod; 106. Perforated fixing plate; 107. Water-absorbing sponge; 108. Fiber filament; 109. Rectangular fixing plate; 110. Telescopic spring; 2. Extrusion mechanism; 201. Circular baffle; 202. Trapezoidal limiting block; 203. Sliding plate; 3. Cooling mechanism; 301. Water pump; 302. Water outlet pipe; 303. Water inlet pipe; 304. Transmission water... 305. Drainage pipe; 306. Water outlet tank; 4. Transmission mechanism; 401. Transmission cylinder; 402. Transmission fan blade; 403. Transmission plate; 404. Z-shaped transmission rod; 5. Collection mechanism; 501. Rotating rod; 502. Filter plate; 503. Collection drawer; 6. Vibration mechanism; 601. Triangular plate; 602. Arc-shaped square rod; 603. Vibration spring; 604. Vibration plate; 7. Movable mechanism; 701. C-shaped plate; 702. Rectangular limiting slide bar; 703. Movable long plate; 704. Movable spring; 705. Movable T-shaped plate. Detailed Implementation

[0032] 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.

[0033] Please see Figure 1 - Figure 8As shown, the present invention is a chemical fiber drying and spinning machine for textile processing, including a cooling box 1, a rotating mechanism 100 provided on the cooling box 1, the rotating mechanism 100 including an annular rotating box 101 disposed inside the cooling box 1, the annular rotating box 101 having limiting annular grooves 102 respectively formed on the front and back sides, and two L-shaped limiting rods 103 respectively fixedly installed on the left and right inner walls of the cooling box 1, and further including:

[0034] Several L-shaped limiting rods 103 extend into two limiting annular grooves 102 at their close ends and are respectively adapted to the two limiting annular grooves 102. Several drainage holes 104 are provided on the outer wall of the annular rotating box 101. Two rectangular limiting rods 105 are fixedly installed inside the annular rotating box 101. Two perforated fixing plates 106 are slidably sleeved on the two rectangular limiting rods 105. Water-absorbing sponges 107 are fixedly installed on the close sides of the two perforated fixing plates 106. Fiber filaments 108 are provided inside the cooling box 1. The fiber filaments 108 penetrate the cooling box 1 and are in contact with the two water-absorbing sponges 107.

[0035] like Figure 4 As shown, rectangular fixing plates 109 are fixedly installed on the two rectangular limiting rods 105 respectively, and two telescopic springs 110 are respectively sleeved on the two rectangular limiting rods 105. The ends of several telescopic springs 110 that are close to each other are fixedly connected to the rectangular fixing plates 109, and the ends of several telescopic springs 110 that are far apart from each other are fixedly connected to the two fixing plates 106 with holes respectively.

[0036] When the perforated fixing plate 106 approaches, the telescopic springs 110 will move closer to each other and compress, causing the absorbent sponges 107 to squeeze each other. When the telescopic springs 110 return to their original state, the absorbent sponges 107 will move further apart, providing a squeezing and relaxing force to the absorbent sponges 107, enabling them to effectively absorb water.

[0037] like Figure 3 As shown, a compression mechanism 2 is provided inside the cooling box 1. The compression mechanism 2 includes a circular baffle 201 fixedly installed on the inner wall of the top of the cooling box 1. The circular baffle 201 covers the annular rotating box 101. Two trapezoidal limiting blocks 202 are fixedly installed on the inner wall of the circular baffle 201. Sliding plates 203 are fixedly installed on the opposite sides of the two perforated fixing plates 106. The opposite ends of the two sliding plates 203 extend to the outside of the annular rotating box 101.

[0038] During the rotation of the annular rotating box 101, two sliding plates 203 will rotate. During the rotation, the sliding plates 203 will contact two trapezoidal limiting blocks 202. Under the action of the inclined surface of the trapezoidal limiting blocks 202, the sliding plates 203 that contact the trapezoidal limiting blocks 202 will slide closer to each other. At this time, several telescopic springs 110 will undergo compression deformation. The two sliding plates 203 will drive the two perforated fixing plates 106 to move closer to each other. The two perforated fixing plates 106 will drive the two absorbent sponges 107 to move closer to each other and squeeze. The mutual squeezing of the absorbent sponges 107 can further improve the drainage of water inside the absorbent sponges 107 and prevent the absorbent sponges 107 from becoming saturated with water, thereby affecting the water removal effect of the absorbent sponges 107 on the fiber filaments 108.

[0039] like Figure 5 and Figure 8 As shown, a cooling mechanism 3 is provided on the back of the cooling box 1. The cooling mechanism 3 includes a water pump 301 fixedly installed on the back of the cooling box 1. A water outlet pipe 302 is fixedly installed at the end of the water pump 301. A water inlet pipe 303 is fixedly installed at the front end of the water pump 301. The front end of the water inlet pipe 303 extends into the cooling box 1. The end of the water outlet pipe 302 extends into the cooling box 1. A transmission water tank 304 is fixedly installed at the end of the water outlet pipe 302. A drain pipe 305 is fixedly installed on the outer wall of the transmission water tank 304. A water outlet tank 306 is fixedly installed on the inner wall of the top of the cooling box 1. The top end of the drain pipe 305 extends into the water outlet tank 306.

[0040] When in use, the water pump 301 is started. The water pump 301 draws water from the bottom inner wall of the cooling tank 1 and discharges it from the outlet pipe 302 into the transmission water tank 304. Then the water flows from the transmission water tank 304 into the outlet water tank 306 through the drain pipe 305. Finally, the water flows out from the groove at the bottom of the outlet water tank 306 to uniformly cool the moving fiber filaments 108 in the cooling tank 1. When the water enters the transmission water tank 304.

[0041] like Figure 6 As shown, a transmission mechanism 4 is provided on the transmission water tank 304. The transmission mechanism 4 includes a transmission cylinder 401 fixedly installed on the transmission water tank 304. The transmission cylinder 401 passes through the transmission water tank 304. Several transmission fan blades 402 are fixedly installed on the outer wall of the transmission cylinder 401. The several transmission fan blades 402 are all adapted to the transmission cylinder 401. A transmission plate 403 is fixedly installed on the outer wall of the transmission cylinder 401. Two Z-shaped transmission rods 404 are fixedly installed on the left side of the transmission plate 403. The left ends of the two Z-shaped transmission rods 404 are fixedly connected to the annular rotating box 101.

[0042] Water impacts the transmission fan blade 402 under pressure, causing the transmission fan blade 402 to rotate within the transmission water tank 304. The transmission fan blade 402 drives the transmission cylinder 401 to rotate, which in turn drives the transmission plate 403 to rotate. The transmission plate 403 then drives the two Z-shaped transmission rods 404 to rotate, thus converting the impact force of the water into a rotational force.

[0043] like Figure 1 and Figure 8 As shown, a collection mechanism 5 is provided inside the cooling box 1. The collection mechanism 5 includes two rotating rods 501 rotatably installed inside the cooling box 1. Filter plates 502 are fixedly sleeved on the two rotating rods 501. A collection drawer 503 is slidably installed inside the cooling box 1. The front of the collection drawer 503 extends outside the cooling box 1.

[0044] During the cooling process of the fiber 108 by water, the debris and dust on the fiber 108 will fall onto the bottom inner wall of the cooling box 1. As the water falls, it will first come into contact with the two filter plates 502, and the debris and dust will be filtered down by the filter plates 502. The water will then fall onto the bottom inner wall of the cooling box 1.

[0045] like Figure 7 As shown, a vibration mechanism 6 is provided inside the cooling box 1. The vibration mechanism 6 includes a triangular plate 601 fixedly installed inside the cooling box 1. Two arc-shaped square rods 602 are fixedly installed at the bottom of the triangular plate 601. The two arc-shaped square rods 602 pass through the two filter plates 502 respectively and are slidably connected to the two filter plates 502 respectively. The bottom ends of the two arc-shaped square rods 602 are fixedly connected to the bottom inner wall of the cooling box 1. Vibration springs 603 are respectively sleeved on the two arc-shaped square rods 602. The top ends of the two vibration springs 603 are fixedly connected to the two filter plates 502 respectively, and the bottom ends of the two vibration springs 603 are fixedly connected to the bottom inner wall of the cooling box 1. Vibration plates 604 are fixedly installed on the two arc-shaped square rods 602 respectively.

[0046] When the two vibrating springs 603 are compressed and deformed, the ends of the two filter plates 502 near the collection tray 503 will lift up. The filter plates 502 will bounce up under the elastic force of the vibrating springs 603 and collide with the vibrating plate 604. At this time, the filter plates 502 vibrate, and the vibration will shake the debris and dust on the filter plates 502 into the collection tray 503. This prevents water containing dust and debris from being cooled by the water pump 301 again and remaining on the fiber filaments 108. It also prevents dust and debris from entering the absorbent sponge 107 and affecting the absorbent effect of the absorbent sponge 107.

[0047] like Figure 5 and Figure 8As shown, a movable mechanism 7 is provided on the inner wall of the back of the cooling box 1. The movable mechanism 7 includes a C-shaped plate 701 fixedly installed on the inner wall of the back of the cooling box 1. A rectangular limiting slide rod 702 is fixedly installed inside the C-shaped plate 701. A movable long plate 703 is slidably sleeved on the rectangular limiting slide rod 702. A movable spring 704 is sleeved on the rectangular limiting slide rod 702. The top end of the movable spring 704 is fixedly connected to the movable long plate 703, and the bottom end of the movable spring 704 is fixedly connected to the C-shaped plate 701. A movable T-shaped plate 705 is fixedly installed at the bottom of the movable long plate 703.

[0048] During the rotation of the two Z-shaped drive rods 404, they will come into contact with the movable long plate 703, which will descend. The movable long plate 703 will drive the movable T-shaped plate 705 to descend, and the movable T-shaped plate 705 will simultaneously come into contact with the two filter plates 502. After the Z-shaped drive rods 404 leave the movable long plate 703, the movable long plate 703 will rise under the elastic force of the movable spring 704.

[0049] In use, the water pump 301 is started, drawing water from the bottom inner wall of the cooling tank 1 and draining it through the outlet pipe 302 into the transmission water tank 304. The water then flows from the transmission water tank 304 through the drain pipe 305 into the outlet water tank 306. Finally, the water flows out from the groove at the bottom of the outlet water tank 306, uniformly cooling the moving fiber filaments 108 inside the cooling tank 1. When the water enters the transmission water tank 304, the water impacts the transmission fan blades 402 under pressure, causing them to rotate within the transmission water tank 304. The transmission fan blades 402 drive the transmission cylinder 401 to rotate, which in turn drives the transmission plate 403 to rotate. The transmission plate 403 then drives the two Z-shaped transmission rods 404 to rotate. This converts the impact force of the water into a rotational force. The cooled fiber filaments 108 pass through two absorbent sponges 107, which absorb the moisture on the fiber filaments 108 to keep them dry and facilitate their later storage and transportation. During the rotation of the Z-shaped transmission rod 404, the annular rotating box 101 will rotate, which in turn will drive the rectangular limiting rod 105 to rotate. The rectangular limiting rod 105 will drive the perforated fixing plate 106 to rotate, which in turn will drive the absorbent sponges 107 to rotate. During the rotation of the absorbent sponges 107, centrifugal force will be generated, and the water that is thrown out will be discharged from the drain hole 104 and finally fall onto the bottom inner wall of the cooling box 1.

[0050] During the rotation of the annular rotating box 101, several L-shaped limiting rods 103 will limit the annular rotating box 101 within the limiting annular groove 102 to ensure the stability of the annular rotating box 101 during transmission. The rotation of the annular rotating box 101 will drive the two sliding plates 203 to rotate. During rotation, the sliding plates 203 will contact the two trapezoidal limiting blocks 202. Under the action of the inclined surface of the trapezoidal limiting blocks 202, the sliding plates 203 in contact with the trapezoidal limiting blocks 202 will slide closer to each other. At this time, several telescopic springs 110 will undergo compression deformation. The two sliding plates 203 will drive the two perforated fixing plates 106 to move closer to each other. The two perforated fixing plates 106 will drive the two absorbent sponges 107 to move closer and squeeze each other. The squeezing of the absorbent sponges 107 further improves the drainage of water from the absorbent sponges 107. During the cooling process of the fiber filaments 108 by water, debris and dust on the fiber filaments 108 will fall into the cooling water. During the descent of the water, it first contacts two filter plates 502 on the bottom inner wall of the cooling tank 1. Debris and dust are filtered out by the filter plates 502. The water then falls onto the bottom inner wall of the cooling tank 1. As the two Z-shaped drive rods 404 rotate, they contact the movable long plate 703, causing the movable long plate 703 to descend. The movable long plate 703 drives the movable T-shaped plate 705 to descend as well. The movable T-shaped plate 705 simultaneously contacts both filter plates 502, causing the two vibrating springs 603 to vibrate. During compression deformation, the ends of the two filter plates 502 near the collection tray 503 will lift up. After the Z-shaped transmission rod 404 leaves the movable long plate 703, the movable long plate 703 will rise under the elastic force of the movable spring 704. At this time, the filter plates 502 will be driven to bounce up under the elastic force of the vibration spring 603. The filter plates 502 will hit the vibration plate 604, and the filter plates 502 will vibrate. The vibration will shake the debris and dust on the filter plates 502 into the collection tray 503.

[0051] The preferred embodiments of the present invention disclosed above are merely illustrative of the invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the invention to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the invention, thereby enabling those skilled in the art to better understand and utilize the invention. The invention is limited only by the claims and their full scope and equivalents.

Claims

1. A chemical fiber drying and drawing machine for textile processing, comprising a cooling box (1), a rotating mechanism (100) is arranged on the cooling box (1), the rotating mechanism (100) comprises an annular rotating box (101) arranged in the cooling box (1), limit annular grooves (102) are respectively arranged on the front surface and the back surface of the annular rotating box (101), two L-shaped limit rods (103) are respectively fixedly installed on the left inner wall and the right inner wall of the cooling box (1), characterized in that, Also includes: Two rectangular limit rods (105) are respectively fixedly installed on the two rectangular limit rods (105), two hole fixing plates (106) are respectively sleeved on the two rectangular limit rods (105), one side of the two hole fixing plates (106) is respectively fixedly installed with water absorbing sponge (107), the cooling box (1) is provided with fiber filament (108), the fiber filament (108) penetrates the cooling box (1), the fiber filament (108) is in contact with two water absorbing sponges (107); Two rectangular limit rods (105) are respectively fixedly installed on the two rectangular limit rods (105), two hole fixing plates (106) are respectively sleeved on the two rectangular limit rods (105), one side of the two hole fixing plates (106) is respectively fixedly installed with water absorbing sponge (107), the cooling box (1) is provided with fiber filament (108), the fiber filament (108) penetrates the cooling box (1), the fiber filament (108) is in contact with two water absorbing sponges (107); The cooling box (1) is provided with extrusion mechanism (2), the extrusion mechanism (2) includes circular blocking shell (201) fixedly installed on the top inner wall of cooling box (1), the circular blocking shell (201) covers annular rotating box (101), two trapezoidal limit blocks (202) are fixedly installed on the inner wall of the circular blocking shell (201), two sliding plates (203) are respectively fixedly installed on the side of the two hole fixing plates (106) away from each other, and the ends of the two sliding plates (203) away from each other extend to the outside of the annular rotating box (101).

2. A chemical fiber drying and drawing machine for textile processing according to claim 1, characterized in that: The back of the cooling box (1) is provided with cooling mechanism (3), the cooling mechanism (3) includes water pump (301) fixedly installed on the back of the cooling box (1), the end of the water pump (301) is fixedly installed with water outlet pipe (302), the front end of the water pump (301) is fixedly installed with water inlet pipe (303), the front end of the water inlet pipe (303) extends into the cooling box (1), the end of the water outlet pipe (302) extends into the cooling box (1), the end of the water outlet pipe (302) is fixedly installed with transmission water tank (304), the outer wall of the transmission water tank (304) is fixedly installed with drain pipe (305), the top inner wall of the cooling box (1) is fixedly installed with water outlet tank (306), and the top end of the drain pipe (305) extends into the water outlet tank (306).

3. A chemical fiber drying and drawing machine for textile processing according to claim 2, characterized in that: The transmission water tank (304) is provided with a transmission mechanism (4), the transmission mechanism (4) includes a transmission cylinder (401) fixedly installed on the transmission water tank (304), the transmission cylinder (401) penetrates the transmission water tank (304), a plurality of transmission vanes (402) are fixedly installed on the outer wall of the transmission cylinder (401), a plurality of transmission vanes (402) are matched with the transmission cylinder (401), a transmission plate (403) is fixedly installed on the outer wall of the transmission cylinder (401), two Z-shaped transmission rods (404) are fixedly installed on the left side of the transmission plate (403), and the left ends of the two Z-shaped transmission rods (404) are fixedly connected with the annular rotating box (101).

4. A chemical fiber drying and drawing machine for textile processing according to claim 1, characterized in that: The cooling box (1) is provided with a collecting mechanism (5), the collecting mechanism (5) includes two rotating rods (501) rotatably installed in the cooling box (1), and filter plates (502) are fixedly sleeved on the two rotating rods (501); the cooling box (1) is slidably installed with a collecting drawer (503), and the front face of the collecting drawer (503) extends out of the cooling box (1).

5. A chemical fiber drying and drawing machine for textile processing according to claim 4, characterized in that: The cooling box (1) is provided with a vibration mechanism (6), the vibration mechanism (6) includes a triangular plate (601) fixedly installed in the cooling box (1), two arc-shaped square rods (602) are fixedly installed at the bottom of the triangular plate (601), the two arc-shaped square rods (602) penetrate through the two filter plates (502) respectively, the two arc-shaped square rods (602) are slidably connected with the two filter plates (502) respectively, the bottom ends of the two arc-shaped square rods (602) are fixedly connected with the inner wall at the bottom of the cooling box (1), vibration springs (603) are sleeved on the two arc-shaped square rods (602) respectively, the top ends of the two vibration springs (603) are fixedly connected with the two filter plates (502) respectively, the bottom ends of the two vibration springs (603) are fixedly connected with the inner wall at the bottom of the cooling box (1), and vibration plates (604) are fixedly installed on the two arc-shaped square rods (602) respectively.

6. A chemical fiber drying and drawing machine for textile processing according to claim 1, characterized in that: The back inner wall of the cooling box (1) is provided with a movable mechanism (7), the movable mechanism (7) includes an L-shaped plate (701) fixedly installed on the back inner wall of the cooling box (1), a rectangular limiting sliding rod (702) is fixedly installed in the L-shaped plate (701), a movable long plate (703) is slidably sleeved on the rectangular limiting sliding rod (702), a movable spring (704) is sleeved on the rectangular limiting sliding rod (702), the top end of the movable spring (704) is fixedly connected with the movable long plate (703), the bottom end of the movable spring (704) is fixedly connected with the L-shaped plate (701), and a movable T-shaped plate (705) is fixedly installed at the bottom of the movable long plate (703).

Citation Information

Patent Citations

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