Textile thread branching and winding device for textile processing and use method thereof

By designing automated moving, transferring, and cutting components, the problem of manually removing full take-up drums in existing technologies has been solved, enabling rapid collection and efficient winding of take-up drums, reducing labor consumption and dust pollution.

CN120943052APending Publication Date: 2025-11-14WUJIANG BEITIAN TEXTILE CO LTD
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Patent Information

Application Number
CN202511193918.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-25
Publication Date
2025-11-14

AI Technical Summary

Technical Problem

The existing wire winding device requires manual removal after the take-up drum is fully wound, resulting in high labor costs and reduced work efficiency.

Method used

Design a textile yarn splitting and winding device, comprising a moving component, a transfer component, and a cutting component, which automatically transfers a full take-up spool to a collection frame and cuts the textile yarn through mechanized equipment, reducing manual intervention.

Benefits of technology

It enables rapid collection of the take-up drum, improves the efficiency of wire winding, reduces manual labor costs, and reduces dust pollution through the dustproof cloth.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a textile thread branching and winding device for textile processing and a using method thereof, and relates to the technical field of textile equipment. The device comprises a machine frame and a driving shaft rotationally arranged on the machine frame, a plurality of sets of positioning shafts in transmission connection with the driving shaft are arranged on the machine frame in the length direction of the machine frame at intervals, each positioning shaft is provided with a positioning rod, and each positioning rod is sleeved with a take-up barrel used for winding spinning threads. A moving table is movably arranged on one side of the rack, and a moving assembly used for driving the moving table to move in the length direction of the rack is arranged on one side of the rack; a collecting frame used for collecting the take-up barrels is arranged on the side wall of the moving table, a transferring assembly is arranged on the moving table and used for transferring the take-up barrels into the collecting frame, and a cutting assembly is arranged on the moving table and used for cutting spinning threads; the winding device has the effects of quickly collecting the take-up barrel and improving the working efficiency of spinning thread branching and winding.
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Description

Technical Field

[0001] This application relates to the field of textile equipment technology, and in particular to a textile yarn separating and winding device for textile processing and its usage method. Background Technology

[0002] Textile fabrics are formed through the processes of raw materials, spinning, weaving, dyeing, and finishing. These processes are all indispensable. Therefore, various types of textile threads are needed in the textile fabric processing. During textile work, winding devices are usually used to wind and roll up these textile threads.

[0003] In related technologies, existing yarn winding devices include a frame and a drive shaft mounted on the frame and driven by a motor. Several sets of positioning shafts are rotatably mounted on the frame and are connected to the drive shaft. Each set of positioning shafts is movably fitted with a take-up bobbin for winding textile yarn. In use, rollers are used to drive all the take-up bobbins to rotate, thereby achieving the purpose of winding textile yarn separately.

[0004] Regarding the aforementioned technologies, after the take-up spool has wound enough yarn, it usually needs to be manually removed from the positioning shaft for storage in a timely manner. Otherwise, it is easy to cause the take-up spool to be wound with too much yarn, resulting in waste, which is very labor-intensive and affects the efficiency of the yarn splitting and winding process. Therefore, it needs to be improved. Summary of the Invention

[0005] In order to quickly collect the take-up drum and improve the efficiency of yarn winding, this application provides a yarn winding device for textile processing and its usage method.

[0006] Firstly, this application provides a textile yarn separating and winding device for textile processing, which adopts the following technical solution: A textile yarn winding and separating device for textile processing includes a frame and a drive shaft rotatably mounted on the frame. Several sets of positioning shafts, which are drively connected to the drive shaft, are spaced apart along the length of the frame. Each positioning shaft has a positioning rod, and each positioning rod is fitted with a take-up bobbin for winding textile yarn. A movable platform is movably mounted on one side of the frame, and a moving component is provided on the same side to drive the platform to move along the length of the frame. A collection frame for collecting the take-up bobbin is provided on the side wall of the movable platform. A transfer component is provided on the movable platform to transfer the take-up bobbin into the collection frame. A cutting component is provided on the movable platform to cut the textile yarn.

[0007] By adopting the above technical solution, the moving component drives the moving platform to move the transfer component and the cutting component to the corresponding positioning shaft and take-up drum. The cutting component cuts the textile thread connected to the take-up drum, and the transfer component transfers the take-up drum with sufficient textile thread to the collection frame for collection. This achieves rapid collection of the take-up drum and improves the efficiency of yarn winding. The use of mechanized equipment for timely unloading, transfer and collection of the take-up drum reduces the labor cost of manual collection.

[0008] Preferably, the moving component includes a moving screw and a moving motor; the moving screw is rotatably mounted on one side of the frame, and the length direction of the moving screw is parallel to the length direction of the frame; the moving screw passes through the moving table and is threadedly connected to the moving table; the moving motor is located at the end of the moving screw to drive the moving screw to rotate.

[0009] By adopting the above technical solution, the output end of the mobile motor drives the mobile screw to rotate, and the rotating mobile screw drives the mobile stage, thereby driving the mobile stage to move the transfer component and the cutting component.

[0010] Preferably, the transfer assembly includes a mounting plate, a transfer cylinder, a transfer plate, a baffle plate, a tilting cylinder, and a lifting cylinder; the mounting plate is slidably disposed on the top of the moving platform, and the transfer cylinder is disposed between the mounting plate and the moving platform to drive the mounting plate closer to or away from the positioning rod; the transfer plate is disposed on the mounting plate, and the end of the transfer plate facing the positioning rod has a clearance notch for the positioning rod to abut against, and the other end of the transfer plate is located above the collecting frame; the baffle plate is disposed on both sides of the transfer plate in the width direction to prevent the take-up drum from detaching from the transfer plate; the tilting cylinder is rotatably disposed on the end of the mounting plate away from the positioning rod, and the lifting cylinder is rotatably disposed on the end of the mounting plate facing the positioning rod, and the output ends of both the tilting cylinder and the lifting cylinder are rotatably connected to the transfer plate.

[0011] By adopting the above technical solution, the output end of the transfer cylinder extends, driving the mounting plate and transfer plate to gradually approach the positioning rod. The output ends of the tilting cylinder and the lifting cylinder extend to lift the transfer plate, causing the take-up drum to gradually detach from the positioning rod. Then, the output end of the tilting cylinder retracts, causing the transfer plate to tilt towards the collection frame, so that the take-up drum on the transfer plate can quickly roll into the collection frame, achieving rapid collection of the take-up drum.

[0012] Preferably, the cutting assembly includes an extension shaft, a rotating arm, a cutting blade, a torque member, and a power member; the extension shaft is disposed at the end of the transfer plate facing the positioning rod, the rotating arm is rotatably disposed on the extension shaft, and the cutting blade is disposed on the rotating arm for cutting the textile thread; the torque member is disposed between the rotating arm and the transfer plate to drive the rotating arm to move the cutting blade away from the textile thread through its own torque; the power member is disposed on the transfer plate to drive the rotating arm to move the cutting blade closer to the textile thread.

[0013] By adopting the above technical solution, the power component drives the rotating arm to move the cutting blade close to and cut the textile thread, so as to facilitate the transfer of the take-up drum; after the power component cancels the drive of the rotating arm, the torque component uses its own torque to drive the rotating arm and the cutting blade to reset, so as to facilitate the movement of the cutting assembly.

[0014] Preferably, the power component includes a traction rope and a wire harness; the traction rope is disposed on the side wall of the rotating arm facing the positioning rod, the wire harness is disposed on the transfer plate, and the end of the traction rope away from the rotating arm passes through the wire harness and is connected to the mounting plate.

[0015] By adopting the above technical solution, as the transfer plate moves away from the mounting plate and the take-up drum is raised, the mounting plate applies tension to the traction rope, causing the traction rope to drive the rotating arm to move the cutting blade closer to the textile thread and cut it. With the lifting and moving of the transfer plate, the cutting blade is driven to rotate, reducing the need for an additional power source to drive the cutting blade to rotate, thus saving costs.

[0016] Preferably, the top of the collection frame is covered with a dustproof cloth, and a feed inlet for the take-up reel to pass through is provided through the dustproof cloth. An elastic band for tightening the feed inlet is provided around the feed inlet on the dustproof cloth.

[0017] By adopting the above technical solution, the dustproof cloth reduces the amount of lint and dust in the textile workshop falling into the collection box and contaminating the textile thread on the take-up drum. The elastic band gathers the feed inlet, further reducing the phenomenon of external lint and dust entering the collection box. When the take-up drum falls into the middle of the elastic band, it uses its own weight to open the elastic band so that it can pass through the feed inlet and enter the collection box.

[0018] Preferably, a number of fixed shafts are rotatably arranged on one side of the frame along the length of the frame, and each fixed shaft is connected to the drive shaft; the fixed shafts and the positioning shafts are respectively arranged in a one-to-one correspondence, the fixed shafts are provided with fixed gears, and each positioning shaft is fitted with a transmission gear that meshes with the fixed gear; a drive assembly for driving the transmission gears to move closer to or away from the fixed gears is provided on one side of the frame.

[0019] By adopting the above technical solution, the drive component drives the transmission gear and the fixed gear to mesh stably, so as to drive the positioning shaft and the positioning rod to drive the take-up drum to wind the textile thread; after the take-up drum has wound a sufficient amount of textile thread, the drive component drives the transmission gear away from the fixed gear, pausing the rotation of the positioning shaft and the take-up drum, so as to facilitate the transfer component to transfer the take-up drum stably, reducing the phenomenon of excessive wear between the textile thread wound on the take-up drum and the transfer plate during the process of the transfer plate lifting the take-up drum.

[0020] Preferably, the drive assembly includes a fixed plate, a positioning block, a sliding rod, an elastic element, an anti-detachment plate, and a drive component; the fixed plate is disposed on one side of the frame, and the fixed plate and the positioning shaft are respectively respectively arranged in a one-to-one correspondence; the positioning block is disposed on the side of the fixed plate facing the fixed shaft, and each positioning shaft is rotatably disposed on the corresponding positioning block; the sliding rod is disposed on the side wall of the positioning block facing the fixed plate, and the end of the sliding rod away from the positioning block passes through the fixed plate; the elastic element is disposed between the fixed plate and the positioning block to drive the positioning block and the positioning shaft closer to the fixed shaft; the anti-detachment plate is disposed on the end of the sliding rod away from the positioning block to prevent the sliding rod from detaching from the fixed plate; the drive component is disposed on the fixed plate to drive the sliding rod and the positioning block away from the fixed shaft.

[0021] By adopting the above technical solution, the driving component drives the sliding rod and the positioning block away from the fixed shaft, causing the transmission gear to gradually move away from the fixed gear, and causing the elastic component to deform and contract, thereby pausing the rotation of the positioning shaft and the take-up reel to facilitate transfer; after the driving component cancels the drive on the sliding rod, the elastic component restores its deformation, using its own elastic force to drive the positioning block to move the transmission gear closer to the fixed gear, and making the transmission gear and the fixed gear stably mesh and transmit power, so as to restore the rotation of the positioning shaft and the positioning rod.

[0022] Preferably, the driving component includes a guide rod, a sliding plate, a resetting component, and a driving plate; the guide rod is disposed on the fixed plate, the sliding plate is sleeved on the guide rod, the end of the sliding plate facing the anti-detachment plate has a through-hole for the sliding rod to abut, the end of the sliding plate facing the anti-detachment plate has a lifting slope to facilitate lifting the anti-detachment plate, and the side wall of the anti-detachment plate facing the sliding plate has a guide slope; the resetting component is disposed between the sliding plate and the fixed plate to drive the sliding plate away from the anti-detachment plate by its own elasticity; the driving plate is disposed at the end of the transfer plate facing the fixed plate, and the end of the driving plate facing the sliding plate has a guide surface to facilitate pushing the sliding plate closer to the anti-detachment plate.

[0023] By adopting the above technical solution, during the process of the transfer cylinder driving the transfer plate closer to the positioning rod, the drive plate uses its own guide surface to drive the sliding plate gradually closer to the anti-detachment plate, and uses the lifting inclined surface on the sliding plate to drive the anti-detachment plate to drive the sliding rod, positioning block, and transmission gear gradually away from the fixed gear. When the transfer plate tilts, the drive plate maintains stable contact with the end of the sliding plate away from the anti-detachment plate to keep the transmission gear disengaged from the fixed gear. When the transfer plate drives the drive plate away from the sliding plate, the reset component uses its own elastic force to drive the sliding plate to reset, so that the elastic component can use its own elastic force to drive the transmission gear and the fixed gear to resume meshing. By using the transfer cylinder to drive the transfer plate, the sliding plate is driven, realizing the linkage between the structures, reducing the need for an additional power source to drive the sliding plate to move, and saving costs.

[0024] Secondly, This application provides a method for using a yarn separating and winding device for textile processing, comprising the following steps: Movement: The moving component drives the moving block to move the collection box, transfer components, and cut; Cutting: The cutting component cuts the textile thread; Transfer: The transfer component drives the take-up drum after the yarn winding is completed to disengage from the positioning rod and transfers the take-up drum into the collection box.

[0025] In summary, this application includes at least one of the following beneficial technical effects: 1. By setting a moving component to drive the moving platform to move the transfer component and the cutting component to the corresponding positioning axis and take-up drum, the cutting component will cut the textile thread connected to the take-up drum, and the transfer component will transfer the take-up drum with sufficient textile thread to the inside of the collection frame for collection, thereby realizing the rapid collection of the take-up drum and improving the work efficiency of yarn winding. 2. By setting up a dustproof cloth, the amount of lint and dust in the textile workshop falling into the collection box and contaminating the textile thread on the take-up drum is reduced. The elastic band binds the feed inlet, further reducing the phenomenon of external lint and dust entering the collection box. 3. By setting the drive assembly to drive the transmission gear and the fixed gear to mesh stably, the positioning shaft and positioning rod can be driven to drive the take-up drum to wind the textile thread. After the take-up drum has wound enough textile thread, the drive assembly drives the transmission gear away from the fixed gear, pausing the rotation of the positioning shaft and the take-up drum. This allows the transfer assembly to transfer the take-up drum stably, reducing the phenomenon of excessive wear between the textile thread wound on the take-up drum and the transfer plate during the process of the transfer plate lifting the take-up drum. Attached Figure Description

[0026] Figure 1This is a schematic diagram of the structure of a textile yarn splitting and winding device and its usage method in textile processing, according to an embodiment of this application.

[0027] Figure 2 This is a structural diagram used to illustrate the connection relationship between the transfer component and the mobile station.

[0028] Figure 3 This is a structural diagram used to illustrate the connection relationship between the cutting assembly and the transfer plate.

[0029] Figure 4 It is a structural diagram used to illustrate the connection relationship between the fixed shaft, the positioning shaft, and the drive assembly.

[0030] Explanation of reference numerals in the attached figures: 1. Frame; 11. Drive shaft; 12. Positioning shaft; 121. Transmission gear; 13. Positioning rod; 131. Take-up drum; 14. Moving table; 15. Collection frame; 151. Dustproof cloth; 152. Feed inlet; 153. Elastic band; 16. Fixed shaft; 161. Fixed gear; 2. Moving assembly; 21. Moving screw; 22. Moving motor; 3. Transfer assembly; 31. Mounting plate; 32. Transfer cylinder; 33. Transfer plate; 331. Clearance notch; 34. Baffle plate; 35. Tilting cylinder; 3 6. Lifting cylinder; 4. Cutting assembly; 41. Extension shaft; 42. Rotating arm; 43. Cutting blade; 44. Torque component; 45. Power component; 451. Traction rope; 452. Cable tie ring; 5. Drive assembly; 51. Fixing plate; 52. Positioning block; 53. Sliding rod; 54. Elastic component; 55. Anti-detachment plate; 56. Drive component; 561. Guide rod; 562. Sliding plate; 5621. Insertion notch; 5622. Lifting ramp; 563. Reset component; 564. Drive plate; 5641. Guide surface. Detailed Implementation

[0031] The following is in conjunction with the appendix Figure 1-4 This application will be described in further detail.

[0032] This application discloses a textile yarn splitting and winding device and its usage method for textile processing, which is used to quickly collect the take-up drum and improve the working efficiency of splitting and winding.

[0033] Reference Figure 1 and Figure 2A textile thread winding and splitting device for textile processing includes a frame 1 fixed to the ground by anchor bolts. A drive shaft 11 driven by a motor is rotatably mounted on the frame 1. Several sets of positioning shafts 12 are rotatably mounted on one side of the frame 1. All positioning shafts 12 are spaced apart along the length of the frame 1, and each set of positioning shafts 12 is connected to the drive shaft 11. A prism-shaped positioning rod 13 is fixedly mounted on the top of each set of positioning shafts 12, and a take-up drum 131 is movably engaged on each set of positioning rods 13 for winding textile thread.

[0034] Reference Figure 1 and Figure 2 A movable platform 14 is mounted on the ground on one side of the frame 1, and a movable assembly 2 is also mounted on the ground on the same side of the frame 1 to drive the movable platform 14 to move along the length of the frame 1. A collection frame 15 is fixedly mounted on the side wall of the movable platform 14 away from the frame 1 to collect the take-up drum 131. A transfer assembly 3 is mounted on the movable platform 14 to transfer the take-up drum 131 from the positioning rod 13 into the collection frame 15. A cutting assembly 4 is mounted on the movable platform 14 to cut the textile thread connected to the take-up drum 131.

[0035] Reference Figure 1 and Figure 2 The moving component 2 includes a moving screw 21 and a moving motor 22. The moving screw 21 is rotatably mounted on the ground on one side of the frame 1 via a bearing bracket, and the length direction of the moving screw 21 is parallel to the length direction of the frame 1. The moving screw 21 passes through the moving platform 14 and is threadedly connected to the moving platform 14. The moving motor 22 is fixedly mounted on the end bearing bracket of the moving screw 21, and the output end of the moving motor 22 is keyed to the end of the moving screw 21 to drive the moving screw 21 to rotate, thereby driving the moving platform 14 to move.

[0036] Reference Figure 1 and Figure 2 The transfer assembly 3 includes a mounting plate 31, a transfer cylinder 32, a transfer plate 33, a baffle plate 34, a tilting cylinder 35, and a lifting cylinder 36. The mounting plate 31 is slidably mounted on the top of the moving table 14 via a slider. The transfer cylinder 32 is fixedly connected to the top wall of the moving table 14, and the output end of the transfer cylinder 32 is fixedly connected to the mounting plate 31 so that the mounting plate 31 can be driven to move closer to or away from the positioning rod 13 by the extension and retraction movement of the output end of the transfer cylinder 32.

[0037] Reference Figure 1 and Figure 2The transfer plate 33 is located on the side of the mounting plate 31 away from the moving table 14. The end of the transfer plate 33 facing the positioning rod 13 has a clearance notch 331 for the positioning rod 13 to abut. The other end of the transfer plate 33 is located above the collection frame 15. The baffle plate 34 is bent and formed on both sides of the transfer plate 33 in the width direction. The baffle plate 34 extends along the length direction of the transfer plate 33 to prevent the take-up drum 131 from detaching from the transfer plate 33.

[0038] Reference Figure 1 and Figure 2 The tilting cylinder 35 and the lifting cylinder 36 are both rotatably connected to the mounting plate 31. The tilting cylinder 35 is located at the end of the mounting plate 31 away from the positioning rod 13, and the lifting cylinder 36 is located at the end of the mounting plate 31 facing the positioning rod 13. The output ends of the tilting cylinder 35 and the lifting cylinder 36 are rotatably connected to the transfer plate 33.

[0039] Reference Figure 1 and Figure 2 The output ends of the tilting cylinder 35 and the lifting cylinder 36 are used to perform synchronous lifting and lowering movements, thereby driving the transfer plate 33 and the baffle plate 34 to move synchronously. By driving the output end of the tilting cylinder 35 to retract and / or the output end of the lifting cylinder 36 to extend, the transfer plate 33 can be tilted toward the direction of the collection frame 15, so as to guide the material on the transfer plate 33 to roll toward the inside of the collection frame 15.

[0040] Reference Figure 2 and Figure 3 The cutting assembly 4 includes an extension shaft 41, a rotating arm 42, a cutting blade 43, a torque member 44, and a power member 45. The extension shaft 41 is fixedly mounted on the end of the transfer plate 33 facing the positioning rod 13 via a bracket, and the rotating arm 42 is movably sleeved on the extension shaft 41. The cutting blade 43 is fixedly mounted on the rotating arm 42, and the rotating arm 42 can drive the cutting blade 43 to rotate around the extension shaft 41 to facilitate cutting the textile thread.

[0041] Reference Figure 2 and Figure 3 In this embodiment, the torque element 44 is a torsion spring. The torque element 44 is sleeved on the extension shaft 41, one end of the torque element 44 is glued to the rotating arm 42, and the other end of the torque element 44 is glued to the bracket at the end of the transfer plate 33. The torque of the torque element 44 itself drives the rotating arm 42 to rotate the cutting blade 43 in a direction away from the textile thread.

[0042] Reference Figure 2 and Figure 3A power unit 45 is mounted on a transfer plate 33 to drive a rotating arm 42 to move a cutting blade 43 closer to the textile thread. The power unit 45 includes a traction rope 451 and a wire loop 452. The traction rope 451 is adhesively mounted to the side wall of the rotating arm 42 at the clearance notch 331 facing the transfer plate 33. Wire loops 452 are sequentially and spaced along the length of the transfer plate 33 and fixedly mounted on the bottom wall of the transfer plate 33. The end of the traction rope 451 furthest from the rotating arm 42 passes through all the wire loops 452 and is adhesively connected to the mounting plate 31. This allows the traction rope 451 to guide the rotating arm 42 to rotate the cutting blade 43 towards the textile thread when the transfer plate 33 moves upward.

[0043] Reference Figure 2 and Figure 3 Several sets of fixed shafts 16 are rotatably mounted on the ground on one side of the frame 1. All fixed shafts 16 are spaced apart along the length of the frame 1, and each set of fixed shafts 16 is connected to the drive shaft 11 via a worm gear structure. The fixed shafts 16 and positioning shafts 12 are installed one-to-one. Fixed gears 161 are fixedly sleeved on the fixed shafts 16, and each set of positioning shafts 12 is fixedly sleeved with a transmission gear 121. The transmission gears 121 and the fixed gears 161 are located on the same horizontal plane, and each set of transmission gears 121 meshes with the corresponding fixed gear 161 to drive all positioning shafts 12 and positioning rods 13 to rotate.

[0044] Reference Figure 1 and Figure 4 A drive assembly 5 is installed between the frame 1 and the moving platform 14 to drive the transmission gear 121 closer to or further away from the fixed gear 161. The drive assembly 5 includes a fixed plate 51, a positioning block 52, a sliding rod 53, an elastic element 54, an anti-detachment plate 55, and a drive element 56. The fixed plate 51 is fixedly installed on the ground between the frame 1 and the moving platform 14, and the fixed plate 51 and the positioning shaft 12 are installed in a one-to-one correspondence. The sliding rod 53 slides through each set of fixed plates 51, and the positioning block 52 is fixedly connected to the end of each set of sliding rods 53 facing the corresponding positioning shaft 12, and each set of positioning shafts 12 is rotatably connected to the corresponding positioning block 52.

[0045] Reference Figure 1 and Figure 4In this embodiment, the elastic element 54 is a spring; the elastic element 54 is sleeved on each set of sliding rods 53, one end of the elastic element 54 is glued to the positioning block 52, and the other end of the elastic element 54 is glued to the corresponding fixing plate 51. An anti-detachment plate 55 is fixedly installed on the end of the sliding rod 53 away from the positioning block 52, and the side wall of the anti-detachment plate 55 facing the sliding rod 53 abuts against the fixing plate 51 to prevent the sliding rod 53 from detaching from the fixing plate 51. The elastic element 54, through its own elastic force, drives the corresponding positioning block 52 and positioning shaft 12 closer to the corresponding fixing shaft 16, and makes the corresponding transmission gear 121 stably mesh with the corresponding fixed gear 161.

[0046] Reference Figure 1 and Figure 4 The driving component 56 is mounted on the fixed plate 51 to drive the sliding rod 53 and the positioning block 52 to move the positioning shaft 12 away from the corresponding fixed shaft 16. The driving component 56 includes a guide rod 561, a sliding plate 562, a reset component 563, and a driving plate 564; the guide rod 561 is fixedly mounted on the fixed plate 51, and the sliding plate 562 is slidably sleeved on the guide rod 561. In this embodiment, the reset component 563 is a spring, sleeved on the guide rod 561, with one end of the reset component 563 glued to the sliding plate 562 and the other end glued to the fixed plate 51. The reset component 563 drives the sliding plate 562 to move away from the anti-detachment plate 55 through its own elastic force.

[0047] Reference Figure 1 and Figure 4 The sliding plate 562 has a through-hole notch 5621 at its end facing the anti-detachment plate 55, allowing the sliding rod 53 to slide into it. The sliding plate 562 has a lifting ramp 5622 at its end facing the anti-detachment plate 55 to facilitate lifting the anti-detachment plate 55, and the anti-detachment plate 55 has a guide ramp on its side wall facing the sliding plate 562 to facilitate cooperation with the lifting ramp 5622. The drive plate 564 is fixedly installed at the end of the transfer plate 33 facing the fixed plate 51, and the drive plate 564 has a guide surface 5641 at its end facing the sliding plate 562 to facilitate pushing the sliding plate 562 towards the anti-detachment plate 55, thereby driving the anti-detachment plate 55 to the side of the sliding plate 562 away from the fixed plate 51, and causing the sliding rod 53 and the positioning shaft 12 to move away from the fixed shaft 16.

[0048] Reference Figure 1 and Figure 2 The top of the collection frame 15 is detachably covered with a dustproof cloth 151 via Velcro. A feed inlet 152 is provided through the middle of the dustproof cloth 151, allowing the take-up reel 131 to pass through and fall into the collection frame 15. An elastic band 153 is sewn onto the dustproof cloth 151 around the feed inlet 152. In this embodiment, the elastic band 153 can be made of highly elastic rubber to secure the feed inlet 152.

[0049] The implementation principle of a textile yarn separating and winding device for textile processing according to an embodiment of this application is as follows: The output of the moving motor 22 drives the moving screw 21 to rotate, thereby moving the moving table 14 and making the transfer plate 33 face the positioning shaft 12 of the take-up drum 131 to be unloaded. The transfer cylinder 32 drives the mounting plate 31 to gradually approach the positioning shaft 12, so that the positioning shaft 12 gradually moves into the clearance notch 331 of the transfer plate 33.

[0050] The output ends of the tilting cylinder 35 and the lifting cylinder 36 rise simultaneously, causing the transfer plate 33 to gradually lift the take-up drum 131 sleeved on the positioning rod 13. At the same time, the mounting plate 31 drives the traction rope 451 to pull the rotating arm 42, causing the rotating arm 42 to drive the cutting blade 43 to rotate and cut the textile thread. Finally, the take-up drum 131 gradually detaches from the positioning rod 13 and remains between the transfer plate 33 and the baffle plate 34.

[0051] The output end of the tilting cylinder 35 is controlled to retract, causing the transfer plate 33 to tilt towards the collection frame 15. The take-up drum 131 on the transfer plate 33 gradually rolls into the collection frame 15 under its own gravity, realizing the rapid collection of the take-up drum 131 and improving the working efficiency of the wire winding.

[0052] This application also discloses a method for using a textile yarn separating and winding device in textile processing, comprising the following steps: Movement: The moving component 2 drives the moving block to move the collection box 15, the transfer component 3, and the cutter; Cutting: Cutting component 4 pairs of textile threads; Transfer: The transfer component 3 drives the take-up drum 131, which has finished winding the textile thread, to disengage from the positioning rod 13 and transfers the take-up drum 131 into the collection frame 15.

[0053] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A textile thread winding device for textile processing, comprising a frame (1) and a drive shaft (11) rotatably mounted on the frame (1), wherein a plurality of positioning shafts (12) are spaced apart along the length of the frame (1) and are connected to the drive shaft (11) for transmission; each positioning shaft (12) is provided with a positioning rod (13), and each positioning rod (13) is fitted with a take-up bobbin (131) for winding textile thread; characterized in that: A movable platform (14) is movably provided on one side of the frame (1), and a moving component (2) is provided on one side of the frame (1) to drive the movable platform (14) to move along the length direction of the frame (1); a collection frame (15) for collecting the take-up drum (131) is provided on the side wall of the movable platform (14), a transfer component (3) is provided on the movable platform (14) to transfer the take-up drum (131) into the collection frame (15), and a cutting component (4) is provided on the movable platform (14) to cut the textile thread.

2. The textile yarn separating and winding device for textile processing according to claim 1, characterized in that: The moving component (2) includes a moving screw (21) and a moving motor (22); the moving screw (21) is rotatably mounted on one side of the frame (1), and the length direction of the moving screw (21) is parallel to the length direction of the frame (1). The moving screw (21) passes through the moving platform (14), and the moving screw (21) is threadedly connected to the moving platform (14). The moving motor (22) is located at the end of the moving screw (21) to drive the moving screw (21) to rotate.

3. The textile yarn separating and winding device for textile processing according to claim 1, characterized in that: The transfer assembly (3) includes a mounting plate (31), a transfer cylinder (32), a transfer plate (33), a baffle plate (34), a tilting cylinder (35), and a lifting cylinder (36); the mounting plate (31) is slidably disposed on the top of the moving platform (14), and the transfer cylinder (32) is disposed between the mounting plate (31) and the moving platform (14) to drive the mounting plate (31) closer to or away from the positioning rod (13); the transfer plate (33) is disposed on the mounting plate (31), and the end of the transfer plate (33) facing the positioning rod (13) is provided with a spacer for the positioning rod (13) to move closer to or away from the positioning rod (13). 3) The recessed clearance (331) is inserted, and the other end of the transfer plate (33) is located above the collection frame (15); the baffle plate (34) is set on both sides of the width direction of the transfer plate (33) to restrict the take-up drum (131) from leaving the transfer plate (33); the tilting cylinder (35) is rotatably set at the end of the mounting plate (31) away from the positioning rod (13), and the lifting cylinder (36) is rotatably set at the end of the mounting plate (31) facing the positioning rod (13), and the output ends of the tilting cylinder (35) and the lifting cylinder (36) are rotatably connected to the transfer plate (33).

4. The textile yarn separating and winding device for textile processing according to claim 3, characterized in that: The cutting assembly (4) includes an extension shaft (41), a rotating arm (42), a cutting blade (43), a torque member (44), and a power member (45). The extension shaft (41) is located at the end of the transfer plate (33) facing the positioning rod (13). The rotating arm (42) is rotatably mounted on the extension shaft (41). The cutting blade (43) is mounted on the rotating arm (42) for cutting textile threads. The torque member (44) is located between the rotating arm (42) and the transfer plate (33) to drive the rotating arm (42) to move the cutting blade (43) away from the textile thread through its own torque. The power member (45) is located on the transfer plate (33) for driving the rotating arm (42) to move the cutting blade (43) closer to the textile thread.

5. A textile yarn separating and winding device for textile processing according to claim 4, characterized in that: The power component (45) includes a traction rope (451) and a wire harness (452); the traction rope (451) is disposed on the side wall of the rotating arm (42) facing the positioning rod (13), and the wire harness (452) is disposed on the transfer plate (33). The end of the traction rope (451) away from the rotating arm (42) passes through the wire harness (452) and is connected to the mounting plate (31).

6. The textile yarn separating and winding device for textile processing according to claim 1, characterized in that: The top of the collection frame (15) is covered with a dustproof cloth (151), and the dustproof cloth (151) has a feed inlet (152) through which the take-up drum (131) can pass. The dustproof cloth (151) is surrounded by an elastic band (153) for gathering the feed inlet (152).

7. A textile yarn separating and winding device for textile processing according to claim 3, characterized in that: A plurality of fixed shafts (16) are rotatably arranged on one side of the frame (1) along the length direction of the frame (1), and each fixed shaft (16) is connected to the drive shaft (11) for transmission. The fixed shafts (16) and the positioning shafts (12) are respectively arranged in a one-to-one correspondence. A fixed gear (161) is provided on the fixed shaft (16), and a transmission gear (121) that meshes with the fixed gear (161) is sleeved on each positioning shaft (12). A drive assembly (5) for driving the transmission gear (121) to move closer to or away from the fixed gear (161) is provided on one side of the frame (1).

8. A textile yarn separating and winding device for textile processing according to claim 7, characterized in that: The drive assembly (5) includes a fixed plate (51), a positioning block (52), a sliding rod (53), an elastic element (54), an anti-detachment plate (55), and a drive element (56); the fixed plate (51) is disposed on one side of the frame (1), and the fixed plate (51) and the positioning shaft (12) are respectively disposed in a one-to-one correspondence; the positioning block (52) is disposed on the side of the fixed plate (51) facing the fixed shaft (16), and each positioning shaft (12) is rotatably disposed on the corresponding positioning block (52); the sliding rod (53) is disposed on the side of the positioning block (52) facing the fixed plate (51). The sliding rod (53) is located at the end of the fixed plate (51) away from the positioning block (52), and the end of the sliding rod (53) away from the positioning block (52) passes through the fixed plate (51); the elastic element (54) is disposed between the fixed plate (51) and the positioning block (52) to drive the positioning block (52) and the positioning shaft (12) closer to the fixed shaft (16); the anti-detachment plate (55) is disposed at the end of the sliding rod (53) away from the positioning block (52) to limit the sliding rod (53) from detaching from the fixed plate (51); the driving element (56) is disposed on the fixed plate (51) to drive the sliding rod (53) and the positioning block (52) away from the fixed shaft (16).

9. A textile yarn separating and winding device for textile processing according to claim 8, characterized in that: The driving component (56) includes a guide rod (561), a sliding plate (562), a reset component (563), and a driving plate (564); the guide rod (561) is disposed on the fixed plate (51), the sliding plate (562) is sleeved on the guide rod (561), the end of the sliding plate (562) facing the anti-detachment plate (55) has a through-hole (5621) for the sliding rod (53) to abut, and the end of the sliding plate (562) facing the anti-detachment plate (55) has a lifting ramp (56) to facilitate lifting the anti-detachment plate (55). 22), and the anti-detachment plate (55) has a guide slope on the side wall facing the sliding plate (562); the reset member (563) is disposed between the sliding plate (562) and the fixed plate (51) to drive the sliding plate (562) away from the anti-detachment plate (55) by its own elastic force; the drive plate (564) is disposed at the end of the transfer plate (33) facing the fixed plate (51), and the end of the drive plate (564) facing the sliding plate (562) has a guide surface (5641) to facilitate pushing the sliding plate (562) closer to the anti-detachment plate (55).

10. A method of using a textile yarn separating and winding device as described in any one of claims 1-9, characterized in that: Includes the following steps: Movement: The moving component (2) drives the moving block to move the collection box (15), the transfer component (3), and the cutter; Cutting: The cutting component (4) cuts the textile thread; Transfer: The transfer component (3) drives the take-up drum (131) after the winding of the textile thread is completed to disengage from the positioning rod (13) and transfers the take-up drum (131) into the collection frame (15).