A winding device for producing a cotton metal wire composite thread

CN117104994BActive Publication Date: 2026-09-15南通虹纬纺织有限公司
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Patent Information

Application Number
CN202310951537.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-07-31
Publication Date
2026-09-15
Estimated Expiration
2043-07-31

AI Technical Summary

Technical Problem

[0004]对于这一结构,虽然可以对金属丝进行收卷工作,但是收卷完毕后对转轴拆卸不便捷,使得收卷工作变复杂,因此我们提出一种可以将收卷完毕的棉金属丝复合线辊进行便捷拆卸,使得收卷效率提高的一种棉金属丝复合线生产用的收卷装置

Benefits of technology

1.本发明棉金属丝复合线生产用的收卷装置,由收卷机构构成其一部件,当需要进行收卷工作时,将转轴放置在第一立板与第二立板内部,由于异形块外壁开设有第一滑槽,且第一限位块与第一滑槽内壁滑动设置,将转轴一端开设的斜槽与第一限位块外壁固定安装的卡块挤压卡接,在挤压的作用下,卡块推动第一限位块一侧设置的第一弹簧,使得卡块整体向第一滑槽内部滑动,当斜槽与卡块不在挤压时,在第一弹簧弹性的作用下,使得卡块与斜槽卡接,使得电机工作时,其输出端转杆开始转动时,带动异形块也随之转动,使得异形块外壁卡接的转轴也随之转动,将转轴放入第二立板内部时,转轴外壁与第二圆辊外壁挤压,使得第二圆辊外部设置的挤压块也随之受到挤压,使得挤压块一端固定安装的第二限位块在气压槽内部密封滑动,当第二限位块向气压槽内部滑动时,挤压气压槽内部的气体,使得气压槽远离第二限位块一端设置的第三限位块进行滑动,第三限位块外壁固定安装的第一滑块向远离气压槽的方向滑动,使得第一滑块外壁转动设置的第三圆辊与转轴外壁接触,转轴外壁与第二立板内部设置的第一圆辊滑动接触,以此对转轴远离电机的一端进行卡接工作,使得转轴转动的更加稳定,该结构可以使收卷完毕时,对收卷辊拆卸时更加便捷,当异形块转动时,在轻微的离心力作用下,使得卡块有一个向外的力,使得卡块与斜槽卡接的更加稳定,当收卷完毕时,将异形块与转轴呈垂直状态,将收卷辊整体向上提,在第二弹簧弹性的作用下,推动第二限位块向上移动,第二限位块对气压槽内部进行抽气,使得第三限位块向气压槽内部滑动,使得第三圆辊与转轴外壁不在接触。

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Abstract

The application discloses a winding device for cotton metal wire composite line production, which comprises a placing plate, supporting legs fixedly installed at the bottom of the placing plate, and a processing assembly arranged on the top surface of the placing plate. The processing assembly comprises a winding mechanism arranged on the top surface of the placing plate. A wire guide mechanism is arranged on the right side of the winding mechanism. A straightening mechanism is arranged on the right side of the wire guide mechanism. When the slide rod is pulled, the third sliding block fixedly installed at the end of the slide rod drives the second rotating roller to slide upwards, the cotton metal wire composite line is inserted above the first rotating roller, the slide rod is loosened, the second rotating roller and the first rotating roller clamp the cotton metal wire composite line under the elastic action of the third spring, when the reciprocating wire rod rotates, the second driving wheel sleeved on the outer wall of the wire rod also rotates, the second driving wheel drives the second driven wheel to rotate through the belt, the first rotating roller sleeved in the second driven wheel rotates, and the first rotating roller clamps and convey the cotton metal wire composite line.
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Description

Technical Field

[0001] This invention relates to the field of winding for the production of cotton-metal composite yarn, specifically a winding device for the production of cotton-metal composite yarn. Background Technology

[0002] Metal wire, also known as metal fiber, belongs to non-ferrous metals. It is made of gold, silver, copper and aluminum, etc., and has good ductility. The cross-section of metal wire is generally round or flat. It is often used to weave wire mesh or as electrical conductor. In the production of cotton metal wire composite thread, a winding device is required to collect the wire bundle.

[0003] As disclosed in Chinese Patent CN214166955U, an automatic winding device for metal wire production employs a motor and power conversion device, along with a sliding movable table. This allows the movable table to reciprocate during the winding process, ensuring the metal wire is evenly wound on the rotating shaft. This solves the problem of uneven winding caused by the fixed structure of traditional winding devices, demonstrating the practicality of this device. Furthermore, the use of two circular rollers, combined with springs, allows the metal wire to be tightly wound on the rollers during winding, resolving the issue of loose winding caused by the winding speed not keeping up with the metal wire production efficiency in traditional devices. This also demonstrates the feasibility of this device.

[0004] While this structure can wind up the metal wires, disassembling the shaft after winding is inconvenient, making the winding process more complicated. Therefore, we propose a winding device for the production of cotton-metal composite yarn that allows for easy disassembly of the wound cotton-metal composite yarn roller, thereby improving winding efficiency. Summary of the Invention

[0005] The purpose of this invention is to provide a winding device for the production of cotton-metal composite yarn, so as to solve the problems mentioned in the background art.

[0006] To solve the above-mentioned technical problems, the present invention provides the following technical solution: a winding device for producing cotton-metal composite yarn, comprising a placement plate, a support leg fixedly installed at the bottom of the placement plate, and a processing component disposed on the top surface of the placement plate, the processing component comprising a winding mechanism disposed on the top surface of the placement plate, a wire guide mechanism disposed on the right side of the winding mechanism, and a straightening mechanism disposed on the right side of the wire guide mechanism.

[0007] According to the above technical solution, the winding mechanism includes a first upright plate fixedly installed on the top surface of the placement plate. A support frame is fixedly installed on the outer wall of the first upright plate. A motor is fixedly installed at the end of the support frame away from the first upright plate. A rotating rod is fixedly installed at the output end of the motor. A first drive wheel is sleeved on the outer wall of the rotating rod. A shaped block is fixedly installed at the end of the rotating rod away from the motor output end. A first sliding groove is formed on the outer wall of the shaped block. A first spring is provided inside the first sliding groove. A first limiting block is slidably arranged inside the first sliding groove. A locking block is fixedly installed at the end of the first limiting block away from the first sliding groove. A rotating shaft is locked onto the outer wall of the shaped block. An inclined groove is formed on the inner wall of the rotating shaft. A locking groove is formed on the outer wall of the rotating shaft. A locking groove is fixedly installed on the inner wall of the locking groove. The device includes a hydraulic rod with an arc plate fixedly installed at the end away from the slot. A winding roller is provided on the outer wall of the rotating shaft. A second vertical plate is fixedly installed on the top surface of the placement plate. A pneumatic groove is formed on the inner wall of the second vertical plate. A third limiting block is slidably arranged inside the pneumatic groove. A first slider is fixedly installed at the end of the third limiting block away from the pneumatic groove. A third circular roller is provided inside the first slider. A second limiting block is slidably arranged at the end of the pneumatic groove away from the third limiting block. A pressing block is fixedly installed at the end of the second limiting block away from the pneumatic groove. A second circular roller is fixedly installed at the end of the pressing block away from the second limiting block. A second spring is fixedly installed at the end of the second limiting block away from the second circular roller. A first circular roller is provided on the inner side of the second vertical plate.

[0008] According to the above technical solution, the conductor mechanism includes a third upright plate fixedly installed on the top surface of the placement plate. A reciprocating screw is provided inside the third upright plate. A first driven wheel is sleeved on the outer wall of the reciprocating screw. A second driving wheel is sleeved on the outer wall of the reciprocating screw. A limit rod is provided inside the third upright plate. A moving block is sleeved on the outer wall of the reciprocating screw. A rotating column is rotatably provided on the top surface of the moving block. A guide ring is fixedly installed at the end of the rotating column away from the moving block. A sponge ring is provided on the inner side of the guide ring.

[0009] According to the above technical solution, the straightening mechanism includes a fourth upright plate fixedly installed on the top surface of the placement plate. A first rotating roller is provided inside the fourth upright plate. A second driven wheel is sleeved on the outer wall of the first rotating roller. A second sliding groove is opened inside the fourth upright plate. A second slider is slidably arranged inside the second sliding groove. A third slider is fixedly installed at the end of the second slider away from the second sliding groove. A sliding rod is fixedly installed on the top surface of the third slider. A third spring is sleeved on the outer wall of the sliding rod. A second rotating roller is rotatably arranged on the outer wall of the third slider.

[0010] According to the above technical solution, there are two card blocks, which are symmetrically distributed around the center line of the irregular block, and the outer wall of the card block is set with an inclined surface. The card block is slidably set inside the first sliding groove, which is used to squeeze and engage the card block with the inclined groove, so that when the irregular block rotates, it drives the rotating shaft to rotate.

[0011] According to the above technical solution, there are three arc plates, which are equidistantly distributed on the outer wall of the rotating shaft. When the hydraulic rod is activated, the arc plates are pressed into contact with the inner wall of the take-up roller, so as to be suitable for take-up rollers with different inner diameters.

[0012] According to the above technical solution, there are four first rollers, which are symmetrically distributed around the center line of the extrusion block. The first rollers are arranged in an arc shape inside the second vertical plate to assist in limiting the rotation of the shaft, making the rotation of the shaft more stable.

[0013] According to the above technical solution, there are two third limiting blocks, which are symmetrically distributed around the center line of the second vertical plate. The outer wall of the third limiting block is sealed and slidably disposed with respect to the inner wall of the air pressure groove. When the second roller is squeezed, the gas inside the air pressure groove is squeezed when the second limiting block slides, pushing the third limiting block to move to the outside of the air pressure groove, so that the third roller rolls into contact with the outer wall of the rotating shaft.

[0014] According to the above technical solution, the moving block is slidably disposed on the outer wall of the limiting rod, the reciprocating screw is threadedly sleeved inside the moving block, and the rotating column is rotatably connected to the outer wall of the moving block, which is used to assist in the winding of the cotton-metal composite wire, and the Biman wire harness is randomly piled up on the outer wall of the winding roller.

[0015] According to the above technical solution, the third slider is slidably arranged inside the fourth vertical plate, and the second rotating roller is rotatably connected to the outer wall of the third slider. Under the action of the elasticity of the third spring, the second rotating roller cooperates with the first rotating roller to clamp the cotton-metal composite wire, so that the wound cotton-metal composite wire is straightened and tightened.

[0016] Compared with the prior art, the beneficial effects achieved by the present invention are: 1. The present invention relates to a winding device for producing cotton-metal composite yarn, comprising a winding mechanism as one component. When winding is required, the rotating shaft is placed inside the first and second vertical plates. Since the outer wall of the irregularly shaped block has a first sliding groove, and the first limiting block is slidably disposed with the inner wall of the first sliding groove, the inclined groove at one end of the rotating shaft is pressed and engaged with the locking block fixedly installed on the outer wall of the first limiting block. Under the action of compression, the locking block pushes the first spring disposed on one side of the first limiting block, causing the locking block to slide entirely into the first sliding groove. When the inclined groove and the locking block are no longer compressed, under the elastic action of the first spring, the locking block engages with the inclined groove. When the motor is working, its output end rotating rod begins to rotate, driving the irregularly shaped block to rotate as well, causing the rotating shaft engaged with the outer wall of the irregularly shaped block to rotate as well. When the rotating shaft is placed inside the second vertical plate, the outer wall of the rotating shaft is pressed against the outer wall of the second roller, causing the pressing block disposed outside the second roller to be compressed as well. This causes the second limiting block fixedly installed at one end of the pressing block to slide in a sealed manner inside the air pressure groove. When the second limiting block slides into the air pressure groove, it compresses the gas inside the air pressure groove, causing the third limiting block, located at the end of the air pressure groove away from the second limiting block, to slide. The first slider, fixedly mounted on the outer wall of the third limiting block, slides away from the air pressure groove, causing the third roller, rotatably mounted on the outer wall of the first slider, to contact the outer wall of the rotating shaft. The outer wall of the rotating shaft then slides into contact with the first roller, located inside the second vertical plate, thereby engaging the end of the rotating shaft away from the motor. This makes the rotation of the rotating shaft more stable. This structure makes it easier to disassemble the take-up roller after winding is complete. When the shaped block rotates, under the slight centrifugal force, the locking block has an outward force, making the locking block more stable in engagement with the inclined groove. When winding is complete, the shaped block is placed perpendicular to the rotating shaft, and the entire take-up roller is lifted upward. Under the elasticity of the second spring, the second limiting block is pushed upward, causing the second limiting block to draw air from the air pressure groove, causing the third limiting block to slide into the air pressure groove, so that the third roller is no longer in contact with the outer wall of the rotating shaft.

[0017] 2. The winding device for producing cotton-metal composite yarn of the present invention comprises a winding mechanism as one component. By activating the hydraulic rod, the arc plate and the inner wall of the winding roller are no longer in extrusive contact, thereby disassembling the rotating shaft and the winding roller. The hydraulic rod and the arc plate work together to make the rotating shaft suitable for winding rollers with different inner diameters. When the arc plate and the inner wall of the winding roller are in extrusive contact, the rotating shaft rotates, causing the winding roller extruded by the arc plate to rotate and wind up.

[0018] 3. The winding device for producing cotton-metal composite yarn of the present invention comprises a conductor mechanism as one component. When winding is performed, the motor is started, and the first driving wheel, which is fixedly mounted on the outer wall of the rotating rod at its output end, begins to rotate. The first driven wheel is driven to rotate via a belt, causing the reciprocating screw mounted inside the first driven wheel to rotate. Since the moving block is slidably set between its interior and the outer wall of the limiting rod, when the second driving wheel rotates, the moving block begins to move back and forth, inserting the cotton-metal composite yarn into the sponge ring. The sponge ring cleans the outer wall of the cotton-metal composite yarn, making the wound cotton-metal composite yarn cleaner. Because the rotating column and the moving block are rotatably connected, the cotton-metal composite yarn and the sponge ring will not jam during winding. When the moving block moves, the winding roller winds more evenly, preventing the cotton-metal composite yarn from piling up.

[0019] 4. The winding device for producing cotton-metal composite yarn of the present invention comprises a straightening mechanism as one component. When the winding operation is in progress, the slide bar is pulled, causing the third slider fixedly installed at the end of the slide bar to drive the second rotating roller to slide upward, inserting the cotton-metal composite yarn above the first rotating roller. When the slide bar is released, under the elastic action of the third spring, the second rotating roller and the first rotating roller clamp the cotton-metal composite yarn. When the reciprocating screw rotates, the second driving wheel sleeved on its outer wall also rotates accordingly. The second driving wheel drives the second driven wheel to rotate through the belt, causing the first rotating roller sleeved inside the second driven wheel to rotate, so that the first rotating roller clamps and conveys the cotton-metal composite yarn. When the winding roller winds up, under the elastic action of the third spring, the cotton-metal composite yarn is kept taut, resulting in a better winding effect. Attached Figure Description

[0020] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used in conjunction with embodiments of the invention to explain the invention and do not constitute a limitation thereof. In the drawings: Figure 1 This is a three-dimensional front view of a winding device for producing cotton-metal composite yarn according to the present invention. Figure 2 This is a three-dimensional back view of a winding device for producing cotton-metal composite yarn according to the present invention. Figure 3 This is a schematic diagram of the winding mechanism of a winding device for producing cotton-metal composite yarn according to the present invention. Figure 4 This is a partially exploded view of the winding mechanism of a winding device for producing cotton-metal composite yarn according to the present invention. Figure 5 This is a partially enlarged view of the winding mechanism of a winding device for producing cotton-metal composite yarn according to the present invention; Figure 6This is a schematic diagram of the internal winding mechanism of a winding device for producing cotton-metal composite yarn according to the present invention. Figure 7 This is a partial cross-sectional schematic diagram of the winding mechanism of a winding device for producing cotton-metal composite yarn according to the present invention. Figure 8 This is a schematic diagram of the wire mechanism of a winding device for producing cotton-metal composite yarn according to the present invention. Figure 9 This is a schematic diagram of the straightening mechanism of a winding device for producing cotton-metal composite yarn according to the present invention; Figure 10 This is a partial exploded view of the straightening mechanism of a winding device for producing cotton-metal composite yarn according to the present invention; In the diagram: 1. Placement plate; 2. Support leg; 3. Processing component; 31. Winding mechanism; 34. Wire guiding mechanism; 35. Straightening mechanism; 311. Support frame; 312. Motor; 313. Rotating rod; 314. First drive wheel; 315. Irregular block; 316. First upright plate; 317. Second upright plate; 318. First chute; 319. First spring; 320. First limiting block; 321. Locking block; 322. Rotating shaft; 323. Inclined groove; 324. Locking slot; 325. Hydraulic rod; 326. Arc plate; 327. Winding roller; 328. Pneumatic groove; 329. First circular roller; 330. Extrusion block; 33 1. Second roller; 332. Second limiting block; 333. Second spring; 334. Third limiting block; 335. First slider; 336. Third roller; 341. Third vertical plate; 342. Reciprocating screw; 343. Second driving wheel; 344. First driven wheel; 345. Limiting rod; 346. Moving block; 347. Rotating column; 348. Guide ring; 349. Sponge ring; 351. Fourth vertical plate; 352. First rotating roller; 353. Second driven wheel; 354. Second slide groove; 355. Second slider; 356. Third slider; 357. Second rotating roller; 358. Slide rod; 359. Third spring. Detailed Implementation

[0021] 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. Example 1

[0022] A preferred embodiment of the winding device for producing cotton-metal composite yarn provided by the present invention is as follows: Figures 1 to 10 As shown: A winding device for producing cotton-metal composite yarn, including a placement plate 1; The bottom of the placement plate 1 is fixedly installed with support legs 2; The processing assembly 3 is disposed on the top surface of the placement plate 1. The processing assembly 3 includes a winding mechanism 31 disposed on the top surface of the placement plate 1. A wire guide mechanism 34 is disposed on the right side of the winding mechanism 31, and a straightening mechanism 35 is disposed on the right side of the wire guide mechanism 34. The winding mechanism 31 includes a first upright plate 316 fixedly installed on the top surface of the placement plate 1. A support frame 311 is fixedly installed on the outer wall of the first upright plate 316. A motor 312 is fixedly installed on the end of the support frame 311 away from the first upright plate 316. A rotating rod 313 is fixedly installed on the output end of the motor 312. A first drive wheel 314 is sleeved on the outer wall of the rotating rod 313. A shaped block 315 is fixedly installed on the end of the rotating rod 313 away from the output end of the motor 312. A first sliding groove 318 is opened on the outer wall of the shaped block 315. A first spring 319 is disposed inside the first sliding groove 318. A first limiting block 320 is slidably disposed inside the first sliding groove 318. A locking block 3 is fixedly installed on the end of the first limiting block 320 away from the first sliding groove 318. 21. A rotating shaft 322 is snapped onto the outer wall of the irregular block 315. An inclined groove 323 is formed on the inner wall of the rotating shaft 322. A winding roller 327 is installed on the outer wall of the rotating shaft 322. A second vertical plate 317 is fixedly installed on the top surface of the placement plate 1. A pneumatic groove 328 is formed on the inner wall of the second vertical plate 317. A third limiting block 334 is slidably arranged inside the pneumatic groove 328. A first slider 335 is fixedly installed at the end of the third limiting block 334 away from the pneumatic groove 328. A first slider 335 is provided inside the first slider 335. The third roller 336, the air pressure groove 328, the end of which the second limiting block 334 is slidably provided with a second limiting block 332, the end of the second limiting block 332 away from the air pressure groove 328 is fixedly installed with a pressing block 330, the end of the pressing block 330 away from the second limiting block 332 is fixedly installed with a second roller 331, the end of the second limiting block 332 away from the second roller 331 is fixedly installed with a second spring 333, and the inner side of the second vertical plate 317 is provided with a first roller 329.

[0023] In this embodiment, when winding is required, the rotating shaft 322 is placed inside the first upright plate 316 and the second upright plate 317. Since the outer wall of the irregular block 315 has a first sliding groove 318, and the first limiting block 320 is slidably disposed with the inner wall of the first sliding groove 318, the inclined groove 323 at one end of the rotating shaft 322 is pressed and engaged with the locking block 321 fixedly installed on the outer wall of the first limiting block 320. Under the action of compression, the locking block 321 pushes the first spring 319 disposed on one side of the first limiting block 320, causing the locking block 321 to slide entirely into the first sliding groove 318. When the inclined groove 323 and the locking block 321 are no longer pressed, the first… Under the elastic action of spring 319, the locking block 321 engages with the inclined groove 323. When motor 312 operates, its output end rotating rod 313 begins to rotate, driving the irregular block 315 to rotate as well. This causes the rotating shaft 322, which is locked to the outer wall of the irregular block 315, to rotate as well. When the rotating shaft 322 is placed inside the second vertical plate 317, the outer wall of the rotating shaft 322 is pressed against the outer wall of the second roller 331, causing the pressing block 330 set outside the second roller 331 to be pressed as well. This causes the second limiting block 332, which is fixedly installed at one end of the pressing block 330, to slide in a sealed manner inside the air pressure groove 328. When the second limiting block 332 moves towards the air pressure groove 328... When the internal sliding mechanism 28 compresses the gas inside the air pressure groove 328, it causes the third limiting block 334, located at the end of the air pressure groove 328 away from the second limiting block 332, to slide. The first slider 335, fixedly mounted on the outer wall of the third limiting block 334, slides away from the air pressure groove 328, causing the third roller 336, rotatably mounted on the outer wall of the first slider 335, to contact the outer wall of the rotating shaft 322. The outer wall of the rotating shaft 322 then slides into contact with the first roller 329 located inside the second vertical plate 317. This engages the end of the rotating shaft 322 away from the motor 312, making the rotation of the rotating shaft 322 more stable. This structure allows for smoother winding after the rotation is complete. When the winding roller 327 is disassembled, it is more convenient. When the irregular block 315 rotates, under the action of slight centrifugal force, the locking block 321 has an outward force, which makes the locking block 321 and the inclined groove 323 more stable. When the winding is completed, the irregular block 315 is perpendicular to the rotating shaft 322, and the winding roller 327 is lifted upward as a whole. Under the elastic action of the second spring 333, the second limiting block 332 is pushed to move upward. The second limiting block 332 draws air from the air pressure groove 328, so that the third limiting block 334 slides into the air pressure groove 328, so that the third roller 336 is no longer in contact with the outer wall of the rotating shaft 322. Example 2

[0024] A preferred embodiment of the winding device for producing cotton-metal composite yarn provided by the present invention is as follows: Figures 1 to 10 As shown: A groove 324 is provided on the outer wall of the rotating shaft 322, and a hydraulic rod 325 is fixedly installed on the inner wall of the groove 324. An arc plate 326 is fixedly installed on the end of the hydraulic rod 325 away from the groove 324.

[0025] In this embodiment, the hydraulic rod 325 is activated so that the arc plate 326 is no longer in extrusive contact with the inner wall of the take-up roller 327, thereby disassembling the rotating shaft 322 and the take-up roller 327. The hydraulic rod 325 and the arc plate 326 work together to make the rotating shaft 322 suitable for take-up rollers 327 with different inner diameters. When the arc plate 326 is in extrusive contact with the inner wall of the take-up roller 327, the rotating shaft 322 rotates, causing the take-up roller 327, which is extruded by the arc plate 326, to rotate and rewind. Example 3

[0026] A preferred embodiment of the winding device for producing cotton-metal composite yarn provided by the present invention is as follows: Figures 1 to 10 As shown: The conductor mechanism 34 includes a third upright plate 341 fixedly installed on the top surface of the placement plate 1. A reciprocating screw 342 is provided inside the third upright plate 341. A first driven wheel 344 is sleeved on the outer wall of the reciprocating screw 342. A second driving wheel 343 is sleeved on the outer wall of the reciprocating screw 342. A limit rod 345 is provided inside the third upright plate 341. A moving block 346 is sleeved on the outer wall of the reciprocating screw 342. A rotating column 347 is rotatably provided on the top surface of the moving block 346. A guide ring 348 is fixedly installed at the end of the rotating column 347 away from the moving block 346. A sponge ring 349 is provided on the inner side of the guide ring 348.

[0027] In this embodiment, when the winding operation is performed, the motor 312 is started, and the first drive wheel 314, which is fixedly installed on the outer wall of the rotating rod 313 at its output end, starts to rotate. The first driven wheel 344 is driven to rotate via the belt, causing the reciprocating screw 342, which is installed inside the first driven wheel 344, to start to rotate. Since the moving block 346 is slidably set inside the outer wall of the limiting rod 345, when the second drive wheel 343 rotates, the moving block 346 starts to move back and forth, inserting the cotton-metal composite thread into the sponge ring 349. The sponge ring 349 cleans the outer wall of the cotton-metal composite thread, making the wound cotton-metal composite thread cleaner. Since the rotating column 347 is rotatably connected to the moving block 346, the cotton-metal composite thread and the sponge ring 349 will not get stuck during winding. When the moving block 346 moves, the winding roller 327 is wound more evenly, preventing the cotton-metal composite thread from piling up. Example 4

[0028] A preferred embodiment of the winding device for producing cotton-metal composite yarn provided by the present invention is as follows: Figures 1 to 10As shown: The straightening mechanism 35 includes a fourth vertical plate 351 fixedly installed on the top surface of the placement plate 1. A first rotating roller 352 is provided inside the fourth vertical plate 351. A second driven wheel 353 is sleeved on the outer wall of the first rotating roller 352. A second sliding groove 354 is opened inside the fourth vertical plate 351. A second slider 355 is slidably arranged inside the second sliding groove 354. A third slider 356 is fixedly installed at the end of the second slider 355 away from the second sliding groove 354. A sliding rod 358 is fixedly installed on the top surface of the third slider 356. A third spring 359 is sleeved on the outer wall of the sliding rod 358. A second rotating roller 357 is rotatably arranged on the outer wall of the third slider 356.

[0029] In this embodiment, when the winding operation is in progress, the slide bar 358 is pulled, causing the third slider 356 fixedly installed at the end of the slide bar 358 to drive the second roller 357 to slide upward, inserting the cotton-metal composite wire into the top of the first roller 352. The slide bar 358 is then released, and under the elastic action of the third spring 359, the second roller 357 and the first roller 352 clamp the cotton-metal composite wire. When the reciprocating screw 342 rotates, the second driving wheel 343 sleeved on its outer wall also rotates accordingly. The second driving wheel 343 drives the second driven wheel 353 to rotate through the belt, causing the first roller 352 sleeved inside the second driven wheel 353 to rotate, thus clamping and conveying the cotton-metal composite wire. When the winding roller 327 winds up, the cotton-metal composite wire is kept taut under the elastic action of the third spring 359, resulting in a better winding effect.

[0030] Furthermore, there are two locking blocks 321, which are symmetrically distributed around the center line of the irregular block 315. The outer wall of the locking block 321 is set with an inclined surface. The locking block 321 is slidably set inside the first sliding groove 318, which is used to squeeze and lock the locking block 321 and the inclined groove 323, so that when the irregular block 315 rotates, it drives the rotating shaft 322 to rotate.

[0031] Furthermore, there are three arc plates 326, which are equidistantly distributed on the outer wall of the rotating shaft 322. When the hydraulic rod 325 is activated, the arc plates 326 are pressed into contact with the inner wall of the take-up roller 327, so as to be suitable for take-up rollers 327 with different inner diameters.

[0032] Furthermore, there are four first rollers 329, symmetrically distributed around the center line of the extrusion block 330, and the first rollers 329 are arranged in an arc shape inside the second vertical plate 317 to assist in limiting the rotation of the rotating shaft 322, making the rotation of the rotating shaft 322 more stable. There are two third limiting blocks 334, symmetrically distributed around the center line of the second vertical plate 317. The outer wall of the third limiting block 334 is sealed and slidably arranged with the inner wall of the air pressure groove 328. When the second roller 331 is extruded, the second limiting block 332 slides, extruding the gas inside the air pressure groove 328 and pushing the third limiting block 334 to move outward of the air pressure groove 328, so that the third roller 336 rolls into contact with the outer wall of the rotating shaft 322.

[0033] Going a step further, the moving block 346 is slidably set on the outer wall of the limiting rod 345, the reciprocating screw 342 is threadedly sleeved on the inner wall of the moving block 346, and the rotating column 347 is rotatably connected to the outer wall of the moving block 346. This is used to assist in the winding of the cotton-metal composite wire, and the Biman wire harness is randomly piled up on the outer wall of the winding roller 327.

[0034] In addition, the third slider 356 is internally slidably arranged with the fourth vertical plate 351, and the second roller 357 is rotatably connected to the outer wall of the third slider 356. Under the elastic action of the third spring 359, the second roller 357 cooperates with the first roller 352 to clamp the cotton-metal composite wire, so that the wound cotton-metal composite wire is straightened and tightened.

[0035] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0036] Finally, it should be noted that the above are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A winding device for producing cotton-metal composite yarn, comprising a placement plate (1); The bottom of the placement plate (1) is fixedly installed with a support leg (2); And the processing assembly (3) disposed on the top surface of the placement plate (1), characterized in that: The processing component (3) includes a winding mechanism (31) disposed on the top surface of the placement plate (1), a wire guide mechanism (34) disposed on the right side of the winding mechanism (31), and a straightening mechanism (35) disposed on the right side of the wire guide mechanism (34). The winding mechanism (31) includes a first upright plate (316) fixedly installed on the top surface of the placement plate (1). A support frame (311) is fixedly installed on the outer wall of the first upright plate (316). A motor (312) is fixedly installed at the end of the support frame (311) away from the first upright plate (316). A rotating rod (313) is fixedly installed at the output end of the motor (312). A first drive wheel (314) is sleeved on the outer wall of the rotating rod (313). A shaped block (315) is fixedly installed at the end of the rotating rod (313) away from the output end of the motor (312). The outer wall of the irregular block (315) has a first groove (318), inside which a first spring (319) is installed. A first limiting block (320) is slidably disposed inside the first groove (318). A locking block (321) is fixedly installed at the end of the first limiting block (320) away from the first groove (318). A rotating shaft (322) is engaged with the outer wall of the irregular block (315). A slanted groove (323) is formed on the inner wall of the rotating shaft (322). A locking groove (324) is formed on the outer wall of the rotating shaft (322). A hydraulic rod is fixedly installed on the inner wall of the locking groove (324). 325), an arc plate (326) is fixedly installed at the end of the hydraulic rod (325) away from the slot (324), a take-up roller (327) is provided on the outer wall of the rotating shaft (322), a second vertical plate (317) is fixedly installed on the top surface of the placement plate (1), a pneumatic groove (328) is provided on the inner wall of the second vertical plate (317), a third limiting block (334) is slidably arranged inside the pneumatic groove (328), a first slider (335) is fixedly installed at the end of the third limiting block (334) away from the pneumatic groove (328), and a first slider (335) is provided inside the first slider (335). The third circular roller (336) has a second limiting block (332) slidably disposed at one end of the air pressure groove (328) away from the third limiting block (334). A pressing block (330) is fixedly installed at one end of the second limiting block (332) away from the air pressure groove (328). A second circular roller (331) is fixedly installed at one end of the pressing block (330) away from the second limiting block (332). A second spring (333) is fixedly installed at one end of the second limiting block (332) away from the second circular roller (331). A first circular roller (329) is disposed on the inner side of the second vertical plate (317). The wire guide mechanism (34) includes a third upright plate (341) fixedly installed on the top surface of the placement plate (1). A reciprocating screw (342) is provided inside the third upright plate (341). A first driven wheel (344) is sleeved on the outer wall of the reciprocating screw (342). A second driving wheel (343) is sleeved on the outer wall of the reciprocating screw (342). A limit rod (345) is provided inside the third upright plate (341). A moving block (346) is sleeved on the outer wall of the reciprocating screw (342). A rotating column (347) is rotatably provided on the top surface of the moving block (346). A guide ring (348) is fixedly installed at one end of the rotating column (347) away from the moving block (346). A sponge ring (349) is provided on the inner side of the guide ring (348). The straightening mechanism (35) includes a fourth upright plate (351) fixedly installed on the top surface of the placement plate (1). A first rotating roller (352) is provided inside the fourth upright plate (351). A second driven wheel (353) is sleeved on the outer wall of the first rotating roller (352). A second sliding groove (354) is opened inside the fourth upright plate (351). A second slider (355) is slidably arranged inside the second sliding groove (354). A third slider (356) is fixedly installed at the end of the second slider (355) away from the second sliding groove (354). A sliding rod (358) is fixedly installed on the top surface of the third slider (356). A third spring (359) is sleeved on the outer wall of the sliding rod (358). A second rotating roller (357) is rotatably arranged on the outer wall of the third slider (356).

2. The winding device for producing cotton-metal composite yarn according to claim 1, characterized in that: There are two card blocks (321), which are symmetrically distributed around the center line of the irregular block (315), and the outer wall of the card block (321) is set with an inclined surface. The card block (321) is slidably set inside the first sliding groove (318).

3. The winding device for producing cotton-metal composite yarn according to claim 1, characterized in that: There are three arc plates (326), which are equidistantly distributed on the outer wall of the rotating shaft (322).

4. The winding device for producing cotton-metal composite yarn according to claim 1, characterized in that: There are four first rollers (329), which are symmetrically distributed around the center line of the extrusion block (330), and the first rollers (329) are arranged in an arc shape inside the second vertical plate (317).

5. A winding device for producing cotton-metal composite yarn according to claim 1, characterized in that: There are two third limiting blocks (334), which are symmetrically distributed around the center line of the second upright plate (317). The outer wall of the third limiting block (334) is sealed and slidably disposed with respect to the inner wall of the air pressure groove (328).

6. The winding device for producing cotton-metal composite yarn according to claim 1, characterized in that: The moving block (346) is slidably disposed on the outer wall of the limiting rod (345), the reciprocating screw (342) is threadedly sleeved on the inside of the moving block (346), and the rotating column (347) is rotatably connected to the outer wall of the moving block (346).

7. A winding device for producing cotton-metal composite yarn according to claim 1, characterized in that: The third slider (356) is slidably disposed inside the fourth upright plate (351), and the second rotating roller (357) is rotatably connected to the outer wall of the third slider (356).

Citation Information

Patent Citations

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    CN214166955U

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