An integrated finishing device for yarn spinning
Through the coordination of the rotating shaft, reciprocating screw and commutator, combined with the cleaning and adsorption devices, the problem of concentrated yarn winding on the take-up wheel is solved, and the uniform winding of the yarn and the improvement of the quality of the textile products are achieved.
Patent Information
- Application Number
- CN202211311627.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-10-25
- Publication Date
- 2025-09-12
- Estimated Expiration
- 2042-10-25
AI Technical Summary
The phenomenon of concentrated yarn entanglement on the take-up wheel causes uneven yarn length, affecting the quality of textile products.
The rotating shaft and reciprocating screw are matched with a commutator to make the yarn reciprocate on the take-up wheel, and the residual fibers on the yarn are removed by a cleaning device and an adsorption device to evenly wind the yarn.
The yarn is evenly wound on the take-up wheel, the possibility of fiber winding on the take-up wheel is reduced, the quality of the textile product is improved, and the equipment manufacturing and maintenance costs are reduced.
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Figure CN115744465B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of yarn textile equipment, and in particular to an integrated finishing device for yarn textile. Background Art
[0002] Yarn textiles involve weaving various yarn fibers into products of a certain fineness, such as rope making, thread making, knitting, and embroidery. Yarn textiles are broadly divided into two processes: spinning and weaving. Depending on the length of the fibers that make up the yarn, yarns can be categorized as short-staple yarns, long-staple yarns, and combination yarns, a combination of short and long fibers.
[0003] After the fibers that make up the yarn are stretched and twisted into shape on the yarn production equipment, they need to pass through the yarn finishing equipment. The yarn finishing equipment is used to wind the formed yarn onto the take-up wheel to facilitate the arrangement of the yarn and prevent the yarn from being stacked in a messy manner or entangled in the wrong order, thus providing convenience for the subsequent yarn spinning operations.
[0004] Commonly used yarn finishing equipment winds the yarn onto a rotating take-up wheel. Usually, as the yarn is gradually wound around the take-up wheel, the position of the take-up wheel and the yarn transmission direction are relatively fixed, and the yarn is concentratedly wound on the take-up wheel, resulting in large differences in the outer diameters of the yarn winding. In this case, if the yarn enters the textile operation link, the take-up wheel with the same rotation speed will input different lengths of yarn to the textile equipment within unit time, which can easily cause the output yarn to be loose, thereby affecting the quality of the textile products. Summary of the Invention
[0005] In order to alleviate the phenomenon of concentrated entanglement of yarn on the take-up wheel, the present application provides an integrated finishing device for yarn weaving.
[0006] The present application provides an integrated finishing device for yarn spinning, which adopts the following technical solution:
[0007] The cam is threadedly connected to the guide rail and the guide rail is pivotally connected to the upper and lower ends of the cam, and the cam is pivotally connected to the guide rail by a threaded connection to the guide rail. The cam is pivotally connected to the guide rail by a threaded connection to the guide rail. The cam is pivotally connected to the guide rail and the guide rail is pivotally connected to the lower and upper ends of the cam.
[0008] Through the above technical solution, when the operator needs to wind the yarn onto the take-up wheel, he first installs the take-up wheel on the rotating shaft, then passes the yarn through the reversing tube and ties it to the take-up wheel, and then rotates the rotating shaft and the reciprocating screw. The rotating shaft drives the take-up wheel to rotate, so that the yarn is gradually wound around the take-up wheel, and the reciprocating screw drives the reversing tube to move back and forth through the connecting block, and the reversing tube drives the yarn to move back and forth relative to the take-up wheel. Therefore, in the process of the take-up wheel rotating to wind the yarn, the yarn to be wound into the take-up wheel makes a reciprocating motion relative to the take-up wheel, so that the yarn is evenly wound on the take-up wheel, thereby alleviating the phenomenon of concentrated winding of the yarn on the take-up wheel.
[0009] In a preferred example, the present application can be further configured as follows: a motor is mounted on the support plate 1, the output shaft of the motor is coaxially connected to a worm 1, a worm wheel 1 is mounted on the rotating shaft, the worm wheel 1 and the worm 1 are engaged with each other, and a worm wheel 2 is mounted on the reciprocating screw, the worm wheel 2 and the worm 1 are engaged with each other.
[0010] Through the above technical solution, when the operator needs to wind the yarn onto the take-up wheel, by starting the motor, the output shaft of the motor drives the worm gear 1 to rotate. On the one hand, the worm gear 1 drives the rotating shaft to rotate through the worm gear 1, and the rotating shaft drives the take-up wheel to rotate, so that the yarn is wound onto the take-up wheel. On the other hand, the worm gear 1 drives the worm gear 2 to rotate, and the worm gear 2 drives the reciprocating screw to rotate, so that the yarn reciprocates with the reversing tube.
[0011] In a preferred example, the present application can be further configured as follows: the cleaning device includes a cleaning cylinder rotatably mounted on the machine body, the yarn passes through the cleaning cylinder and the reversing tube in sequence and then is wound around the take-up wheel, a fiber brush is radially arranged in the cleaning cylinder, and the yarn passes through the bristles of the fiber brush.
[0012] Through the above technical solution, after the yarn is produced from the yarn production equipment, it passes through the cleaning cylinder and the reversing tube in sequence and is wound on the take-up wheel. In the process of the yarn passing through the rotating cleaning cylinder, the cleaning cylinder drives the fiber brush to rotate. The fiber brush can clean the residual fiber on the yarn from the yarn, reducing the possibility of the fiber yarn on the yarn being wound on the take-up wheel, and also reducing the possibility of the fiber entering the textile equipment with the yarn, thereby improving the quality of the textile product.
[0013] In a preferred example, the present application can be further configured as follows: a worm gear three is mounted on the support plate one, the worm gear three and the worm one are meshed with each other, a worm gear two is mounted on the worm gear three, a worm gear four is mounted on the outer circumference of the cleaning barrel, the worm gear two and the worm gear four are meshed with each other.
[0014] Through the above technical solution, the output shaft of the motor drives worm one to rotate, worm one drives worm gear three to rotate, worm gear three drives worm two to rotate, worm two drives worm gear four to rotate, and worm gear four drives the fiber brush to rotate through the cleaning cylinder, thereby completing the cleaning of the residual fibers on the yarn.
[0015] In a preferred example, the present application can be further configured as follows: the adsorption device includes an adsorption box, an adsorption plate and fan blades, the adsorption box is installed on the machine body, the adsorption plate is installed in the adsorption box, and the fan blades are rotatably installed in the adsorption box.
[0016] Through the above technical solution, the rotating fan blades can accelerate the flow of air, so that the fibers cleaned by the fiber brush are adsorbed on the adsorption plate as the air flows, thereby reducing the fibers floating in the external environment.
[0017] In a preferred example, the present application can be further configured as follows: the adsorption box is installed at an end of the cleaning cylinder away from the take-up wheel.
[0018] With the above technical solution, since the adsorption box is arranged at the end of the cleaning cylinder away from the take-up wheel, the fibers falling on the take-up wheel can be reduced.
[0019] In a preferred example, the present application can be further configured as follows: a transmission shaft is installed on the fan blade, a pulley 1 is installed on the transmission shaft, a pulley 2 is installed on the worm gear 1, a belt is commonly provided on the pulley 1 and the pulley 2, and the pulley 1 and the pulley 2 are driven by the belt.
[0020] Through the above technical solution, the output shaft of the motor drives worm one to rotate, worm one drives pulley two to rotate, pulley two drives pulley one to rotate through a belt, and pulley one drives the fan blades to rotate through a transmission shaft, thereby accelerating the air flow speed, so that the fibers cleaned by the fiber brush are adsorbed on the adsorption plate as the air flows.
[0021] In a preferred example, the present application can be further configured as follows: a cleaning box is installed on the adsorption box, a through groove is opened on the side wall of the adsorption box, the adsorption box is connected to the cleaning box through the through groove, the adsorption plate is slidably installed in the cleaning box through the through groove, a cleaning brush is installed on the inner wall of the cleaning box, and the bristles of the cleaning brush abut against the adsorption plate.
[0022] Through the above technical solution, when the adsorption plate slides in the cleaning box, the bristles of the cleaning brush abut against the adsorption plate, and the fibers collected by the adsorption plate are hindered by the cleaning brush. The fibers on the adsorption plate can be cleaned off the adsorption plate to ensure that the holes on the adsorption plate are unobstructed, thereby maintaining the adsorption effect of the adsorption plate on the fibers.
[0023] In a preferred example, the present application can be further configured as follows: a connecting rod is installed between the adsorption plate and the reversing tube, one end of the connecting rod is fixedly connected to the adsorption plate, and the other end of the connecting rod is fixedly connected to the reversing tube.
[0024] Through the above technical solution, in the process of the reciprocating screw driving the connecting block to move back and forth, on the one hand, the yarn can be evenly wound on the take-up wheel, and on the other hand, the adsorption plate can be driven to move back and forth through the connecting rod, so that the cleaning brush can clean the fiber from the adsorption plate.
[0025] In summary, this application has the following beneficial technical effects:
[0026] 1. When the take-up wheel rotates to rewind the yarn, the yarn to be wound into the take-up wheel makes a reciprocating motion relative to the take-up wheel, so that the yarn is evenly wound on the take-up wheel, thereby alleviating the phenomenon of concentrated winding of the yarn on the take-up wheel;
[0027] 2. The rotating fiber brush on this device can clean the remaining fibers from the yarn, reducing the possibility of the fibers on the yarn being entangled on the take-up wheel, and also reducing the possibility of the fibers entering the textile equipment along with the yarn, thereby improving the quality of the finished textile product;
[0028] 3. The rotating shaft, reciprocating screw, cleaning cylinder and fan blades in this application are all powered by a common power source, namely the motor, thereby reducing the manufacturing and maintenance costs of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] Figure 1 It is a schematic diagram of the overall structure of an embodiment of the present application, mainly illustrating the structure of the machine body, support plate 1, support plate 2 and take-up wheel.
[0030] Figure 2 yes Figure 1 The cross-sectional schematic diagram along the AA direction mainly illustrates the internal structure of the cleaning cylinder, adsorption box and cleaning box.
[0031] Figure 3 yes Figure 2 The enlarged schematic diagram of part B mainly illustrates the structure of the commutator, connecting rod, reciprocating screw, and guide rod.
[0032] Figure 4 yes Figure 2 The enlarged schematic diagram of part C in the middle mainly illustrates the structure of the adsorption plate, cleaning brush, fan blades and guide wheel.
[0033] Description of reference numerals:
[0034] 1. Machine body; 10. Yarn; 11. Support plate 1; 12. Support plate 2; 121. Sliding groove; 13. Rotating shaft; 131. Take-up wheel; 132. Worm gear 1; 14. Reciprocating screw; 141. Worm gear 2; 15. Guide rod; 16. Motor; 161. Worm gear 1; 1611. Pulley 2; 162. Support plate 3; 17. Worm gear 3; 171. Worm gear 2; 18. Support ring; 181. Support rod; 19. Support column; 2. Commutator; 21. Commutation tube; 211. Horn tube; 22. Connecting block; 3. Cleaning device; 31. Cleaning cylinder; 311. Fiber brush; 312. Worm gear four; 4. Adsorption device; 41. Adsorption box; 411. Pulley one; 412. Belt; 413. Through groove; 42. Adsorption plate; 421. Connecting rod; 43. Fan blade; 431. Drive shaft; 5. Cleaning box; 51. Cleaning brush; 6. Guide wheel. DETAILED DESCRIPTION
[0035] The following is combined with Figure 1 -Attached Figure 4 This application is described in further detail.
[0036] An embodiment of the present application discloses an integrated finishing device for yarn weaving.
[0037] Reference Figure 1 and Figure 2 As shown, an integrated finishing device for weaving yarn 10 includes a horizontally arranged body 1, with a support plate 11 and a support plate 2 12 vertically fixedly connected to both sides of the top of the body 1, the support plate 11 and the support plate 2 12 are arranged opposite to each other, and a rotating shaft 13 and a reciprocating screw 14 are rotatably installed between the support plate 11 and the support plate 2 12, the length direction of the rotating shaft 13 is consistent with the length direction of the reciprocating screw 14, and a take-up wheel 131 is coaxially connected to the rotating shaft 13. A commutator 2 for changing the transmission direction of the yarn 10 is installed on the reciprocating screw 14. The commutator 2 includes a reversing tube 21 and a connecting block 22. The reversing tube 21 is fixedly connected to the connecting block 22. The axis of the reversing tube 21 and the axis of the reciprocating screw 14 are perpendicular to each other. The yarn 10 passes through the reversing tube 21 and is wound around the take-up wheel 131. The connecting block 22 is threadedly connected to the reciprocating screw 14. A guide rod 15 is installed on the support plate 11, and the connecting block 22 is slidably installed on the guide rod 15.
[0038] Reference Figure 1 and Figure 3 As shown, both ends of the reversing tube 21 are fixedly connected with a trumpet tube 211, and the trumpet tube 211 is in the shape of a hollow cone. The ends with smaller inner diameters of the two trumpet tubes 211 are fixedly connected to the ends of the reversing tube 21. When the yarn 10 passes through the reversing tube 21, the friction between the yarn 10 and the ends of the reversing tube 21 can be reduced due to the setting of the trumpet tube 211.
[0039] Reference Figure 1 and Figure 2 As shown, the side wall of support plate 11 away from support plate 2 12 is fixedly connected to support plate 3 162, the top surface of support plate 3 162 is installed with motor 16, the output shaft of motor 16 is coaxially connected to worm 161, the length direction of worm 161 is consistent with the length direction of the support plate, worm gear 1 132 is coaxially connected to the rotating shaft 13, worm gear 1 132 and worm gear 1 161 are meshed with each other, and worm gear 2 141 is installed on the reciprocating screw 14, worm gear 2 141 and worm gear 1 161 are meshed with each other.
[0040] When the operator needs to wind the yarn 10 onto the take-up wheel 131, by starting the motor 16, the output shaft of the motor 16 drives the worm 161 to rotate. On the one hand, the worm 161 drives the rotating shaft 13 to rotate through the worm gear 132, and the rotating shaft 13 drives the take-up wheel 131 to rotate, so that the yarn 10 is wound on the take-up wheel 131; on the other hand, the worm 161 drives the worm gear 2 141 to rotate, and the worm gear 2 141 drives the reciprocating screw 14 to rotate, so that the yarn 10 reciprocates with the reversing tube 21. Therefore, in the process of the take-up wheel 131 rotating to wind up the yarn 10, the yarn 10 to be wound into the take-up wheel 131 reciprocates relative to the take-up wheel 131, so that the yarn 10 is evenly wound on the take-up wheel 131, thereby alleviating the phenomenon of concentrated winding of the spinning on the take-up wheel 131.
[0041] Reference Figure 1 and Figure 2 As shown, the machine body 1 is provided with a cleaning device 3 for cleaning the residual fibers on the yarn 10, and the machine body 1 is provided with an adsorption device 4 for adsorbing the cleaned fibers.
[0042] Reference Figure 1 and Figure 4 As shown, support rods 181 are fixedly connected to the opposing inner sidewalls of support plate 11 and support plate 2 12, and a support ring 18 is mounted on the mutually adjacent ends of the two support rods 181. The cleaning device 3 includes a cleaning cylinder 31, which is rotatably mounted within the support ring 18. The yarn 10 sequentially passes through the cleaning cylinder 31 and the reversing tube 21 before being wound around the take-up wheel 131. A fiber brush 311 is radially arranged within the cleaning cylinder 31, and the yarn 10 passes through the bristles of the fiber brush 311.
[0043] The outer circumference of the cleaning cylinder 31 is fixedly connected to a worm gear 4 312, and a worm 2 171 is rotatably mounted on the support plate 11. The worm gear 4 312 and the worm 2 171 are meshed with each other. The worm gear 3 17 is coaxially connected to the worm 2 171. The worm gear 3 17 is mounted on the support plate 11 through the worm 2 171. The worm gear 3 17 and the worm 1 161 are meshed with each other.
[0044] As the yarn 10 is gradually wound around the take-up wheel 131, the output shaft of the motor 16 drives the worm 161 to rotate, the worm 161 drives the worm gear 3 17 to rotate, the worm gear 3 17 drives the worm 2 171 to rotate, the worm 2 171 drives the worm gear 4 312 to rotate, and the worm gear 4 312 drives the fiber brush 311 to rotate through the cleaning cylinder 31. The fiber brush 311 can clean the residual fiber on the yarn 10 from the yarn 10, reducing the possibility of the fiber on the yarn 10 being wound around the take-up wheel 131, thereby reducing the possibility of the fiber entering the textile equipment with the yarn 10, thereby improving the quality of the textile product.
[0045] Reference Figure 1 and Figure 4 As shown, the top surface of the machine body 1 is fixedly connected to a support column 19, which is arranged vertically. The adsorption device 4 includes an adsorption box 41, which is fixedly connected to the top surface of the support column 19. The adsorption box 41 is installed on the machine body 1 through the support column 19. The adsorption box 41 is arranged at the end of the cleaning cylinder 31 away from the take-up wheel 131. The tail of the cleaning cylinder 31 is rotated and installed on the adsorption box 41, and the cleaning cylinder 31 is connected to the adsorption box 41. A guide wheel 6 is rotatably installed in the adsorption box 41. The yarn 10 enters the adsorption box 41 from the top surface of the adsorption box 41, and passes through the guide wheel 6, the cleaning cylinder 31, and the reversing tube 21 in sequence before being wound on the take-up wheel 131. An adsorption plate 42 is installed in the adsorption box 41, and a fan blade 43 is rotatably installed on the side of the adsorption plate 42 away from the take-up wheel 131. The fan blade 43 is located in the adsorption box 41, and the adsorption plate 42 is located between the fan blade 43 and the guide wheel 6. A transmission shaft 431 is installed on the fan blade 43, and a pulley 1 411 is coaxially connected to the transmission shaft 431. A pulley 2 1611 is coaxially connected to the worm 1 161. A belt 412 is commonly sleeved on the pulley 1 411 and the pulley 2 1611, and the pulley 1 411 and the pulley 2 1611 are driven by the belt 412.
[0046] As the yarn 10 is gradually wound around the take-up wheel 131, the output shaft of the motor 16 drives the worm 161 to rotate, the worm 161 drives the pulley 2 1611 to rotate, the pulley 2 1611 drives the pulley 1 411 to rotate through the belt 412, and the pulley 1 411 drives the fan blade 43 to rotate through the transmission shaft 431, which can accelerate the flow of air, so that the fibers cleaned by the fiber brush 311 are adsorbed on the adsorption plate 42 as the air flows, so as to reduce the fibers floating in the external environment, which is beneficial to the protection of the working environment and operators.
[0047] Reference Figure 1 、 Figure 3 as well as Figure 4As shown, a cleaning box 5 is fixedly connected to both sides of the adsorption box 41. A through slot 413 is provided on the side walls of both sides of the adsorption box 41. The two cleaning boxes 5 are connected to the adsorption box 41 through the two through slots 413 in a one-to-one correspondence. The length of the adsorption plate 42 is greater than the distance between the two through slots 413. The adsorption plate 42 is slidably installed in the through slot 413. A cleaning brush 51 is fixedly connected to each cleaning box 5 near the inner wall. The bristles of the cleaning brush 51 abut against the adsorption plate 42. A connecting rod 421 is installed between the adsorption plate 42 and the reversing tube 21. The connecting rod 421 is "U"-shaped. A sliding slot 121 is provided on the support plate 11 for the sliding of the connecting rod 421. The sliding slot 121 is set through the support plate 11. One end of the connecting rod 421 is fixedly connected to the adsorption plate 42, and the other end of the connecting rod 421 is fixedly connected to the reversing tube 21.
[0048] In the process of the reciprocating screw 14 driving the connecting block 22 to move back and forth, on the one hand, the yarn 10 can be evenly wound on the take-up wheel 131, and on the other hand, the reversing tube 21 drives the adsorption plate 42 to move back and forth in the cleaning box 5 through the connecting rod 421. The fibers collected by the adsorption plate 42 are obstructed by the cleaning brush 51, and the fibers on the adsorption plate 42 can be cleaned off the adsorption plate 42 to ensure that the holes on the adsorption plate 42 are unobstructed, thereby maintaining the adsorption effect of the adsorption plate 42 on the fibers.
[0049] The working principle of this embodiment is as follows: when the operator needs to wind the yarn 10 onto the take-up wheel 131, the take-up wheel 131 is first installed on the rotating shaft 13; then, the yarn 10 passes through the suction box 41, causing the yarn 10 to be diverted by the guide wheel 6, and then enters the cleaning cylinder 31 and the reversing tube 21 in sequence, and is tied to the take-up wheel 131; then, the motor 16 is started, which, on the one hand, drives the take-up wheel 131 to rotate through the worm 161, the worm gear 132 and the rotating shaft 13, so that the yarn 10 is wound around the take-up wheel 131;
[0050] On the one hand, the reversing tube 21 is driven to move back and forth by the worm 161, the worm gear 2 141 and the reciprocating screw 14, so that the yarn 10 to be wound into the take-up wheel 131 reciprocates relative to the take-up wheel 131, so that the yarn 10 is evenly wound on the take-up wheel 131, thereby alleviating the phenomenon of concentrated winding of the yarn on the take-up wheel 131;
[0051] On the one hand, the fiber brush 311 is driven to rotate by the worm 161, the worm gear 3 17, the worm gear 4 312 and the worm 2 171 to clean the residual fibers on the yarn 10, thereby reducing the possibility that the fibers on the yarn 10 will be entangled on the take-up wheel 131;
[0052] On the one hand, the fan blades 43 are driven to rotate by the worm 161, the pulley 1 411, the pulley 2 1611 and the belt 412, so that the fibers cleaned by the fiber brush 311 are adsorbed on the adsorption plate 42 as the air flows, thereby reducing the fibers floating in the external environment, which is beneficial to protecting the working environment and operators.
[0053] On the other hand, the reversing tube 21 drives the adsorption plate 42 to move back and forth in the cleaning box 5 through the connecting rod 421, and the cleaning brush 51 can clean the fibers on the adsorption plate 42 from the adsorption plate 42 to ensure that the holes on the adsorption plate 42 are unobstructed, thereby maintaining the adsorption effect of the adsorption plate 42 on the fibers.
[0054] The embodiments of this specific implementation method are all preferred embodiments of the present application and are not intended to limit the scope of protection of the present application in turn. Therefore, any equivalent changes made based on the structure, shape, and principle of the present application should be included in the scope of protection of the present application.
Claims
1. An integrated finishing device for yarn textiles, characterized in that: The invention comprises a machine body (1), wherein a support plate 1 (11) and a support plate 2 (12) are installed on the machine body (1), a rotating shaft (13) and a reciprocating screw (14) are rotatably installed between the support plate 1 (11) and the support plate 2 (12), the length direction of the rotating shaft (13) is consistent with the length direction of the reciprocating screw (14), a take-up wheel (131) is installed on the rotating shaft (13), a commutator (2) is installed on the reciprocating screw (14), the commutator (2) comprises a reversing tube (21) and a connecting block (22), the reversing tube (21) is installed on the connecting block (22), the yarn (10) passes through the reversing tube (21) and is wound around the take-up wheel (131). On the reel (131), the connecting block (22) is threadedly connected to the reciprocating screw (14), a guide rod (15) is installed on the support plate (11), and the connecting block (22) is slidably installed on the guide rod (15), and the body (1) is provided with a cleaning device (3) for cleaning the residual fibers on the yarn (10) and an adsorption device (4) for adsorbing the cleaned fibers; the cleaning device (3) includes a cleaning cylinder (31) rotatably installed on the body (1), the yarn (10) passes through the cleaning cylinder (31) and the reversing tube (21) in sequence and is then wound on the take-up reel (131), and the cleaning cylinder (31) is radially arranged in the inside. A fiber brush (311) is provided, and the yarn (10) passes through the bristles of the fiber brush (311); the adsorption device (4) comprises an adsorption box (41), an adsorption plate (42) and a fan blade (43), the adsorption box (41) is installed on the machine body (1), the adsorption plate (42) is installed in the adsorption box (41), and the fan blade (43) is rotatably installed in the adsorption box (41); a motor (16) is installed on the support plate (11), and the output shaft of the motor (16) is coaxially connected to a worm (161), and a worm gear (132) is installed on the rotating shaft (13), and the worm gear (132) and the worm (161) are mutually connected. The reciprocating screw (14) is equipped with a worm wheel 2 (141), and the worm wheel 2 (141) and the worm gear 1 (161) are engaged with each other; the adsorption box (41) is installed at one end of the cleaning cylinder (31) away from the take-up wheel (131); the fan blade (43) is equipped with a transmission shaft (431), the transmission shaft (431) is equipped with a pulley 1 (411), the worm gear 1 (1611) is equipped with a pulley 2 (1611), the pulley 1 (411) and the pulley 2 (1611) are both provided with a belt (412), and the pulley 1 (411) and the pulley 2 (1611) are driven by the belt (412);A cleaning box (5) is installed on the adsorption box (41), a through slot (413) is provided on the side wall of the adsorption box (41), the adsorption box (41) is connected to the cleaning box (5) through the through slot (413), the adsorption plate (42) is slidably installed in the cleaning box (5) through the through slot (413), a cleaning brush (51) is installed on the inner wall of the cleaning box (5), and the bristles of the cleaning brush (51) abut against the adsorption plate (42); a connecting rod (421) is installed between the adsorption plate (42) and the reversing tube (21), one end of the connecting rod (421) is fixedly connected to the adsorption plate (42), and the other end of the connecting rod (421) is fixedly connected to the reversing tube (21).
2. The integrated finishing device for yarn textile according to claim 1, characterized in that: A worm gear three (17) is mounted on the support plate one (11), and the worm gear three (17) and the worm one (161) are meshed with each other. A worm gear two (171) is mounted on the worm gear three (17), and a worm gear four (312) is mounted on the outer peripheral surface of the cleaning cylinder (31), and the worm gear two (171) and the worm gear four (312) are meshed with each other.
Citation Information
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