Cashmere and mohair core-spun yarn spinning equipment
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-30
- Publication Date
- 2026-08-11
AI Technical Summary
针对现有技术的不足,本实用新型提供了羊绒马海毛包芯纱纺纱设备,解决了线轴对包芯纱收集后需要操作人员持续更换新的线轴费时费力同时工作效率较低的问题
1、本实用新型结构合理,通过将羊绒和马海毛固定在入料结构上,再分别将羊绒和马海毛的一端贯穿分线结构和纺纱结构,再将其一端固定在线轴上,通过对接电机转动底座,使线轴旋转即可完成对制作后的包芯纱进行张紧输送并收集,同时在对包芯纱进行收集时通过固定液压装置使线轴持续上下移动,从而使收集的包芯纱可均匀的分布在线轴表面,通过驱动电机转动齿轮,使纺纱结构旋转,即可将羊绒和马海毛制作成为包芯纱,通过移动液压装置使固定夹板向下移动,由于固定夹板向下移动,使移动夹板一侧的裁切刀将包芯纱进行截断,通过夹板电机驱动夹板丝杠,使移动夹板平行移动直至固定夹板和移动夹板将线轴夹紧固定,再通过移动液压装置使线轴向上移动,同时通过移动电机驱动移动丝杠,使线轴平行移动直至线轴移动至收集杆的上部,通过移动液压装置使线轴向下移动,使收集杆贯穿线轴,此时通过夹板电机驱动夹板丝杠,使移动夹板平行移动,从而使移动夹板与线轴分离,使线轴与收集杆连接,完成对收满后的线轴进行收集,通过将新的线轴放置在放置块上,通过移动液压装置使固定夹板向上移动,通过移动电机驱动移动丝杠使移动滑块平行移动直至新的线轴上部,通过移动液压装置使固定夹板向下移动,通过夹板电机驱动夹板丝杠,使移动夹板平行移动,直至固定夹板和移动夹板将新的线轴夹紧固定,通过移动液压装置使新的线轴向上移动,再通过移动电机驱动移动丝杠使新的线轴移动至夹具的上部,通过移动液压装置使新的线轴向下移动,使新的线轴贯穿夹具,再通过辅助电机驱动辅助丝杠,使两个夹具分别向相反方向移动从而将新的线轴内壁卡住,从而完成对新的线轴进行放置,减少了在对羊绒和马海毛制作成为包芯纱后,对其进行收集时需要操作人员频繁的对收集后的线轴进行更换,不仅增大了操作人员的工作量,还减缓了工作效率的情况,达到了可在线轴表面缠绕满包芯纱后对其进行自动收集,再将新的线轴放置在收集位置,操作人员仅需将裁切后的包芯纱重新固定在新的线轴上的效果。
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Figure CN224620142U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of core-spun yarn spinning technology, specifically to cashmere and mohair core-spun yarn spinning equipment. Background Technology
[0002] Core-spun yarn is a composite yarn consisting of a core yarn and a sheath yarn. By combining the outer fiber with the core yarn, the advantages of each can be brought into play, the shortcomings of both can be compensated, and the structure and characteristics of the yarn can be optimized by maximizing strengths and minimizing weaknesses.
[0003] The cashmere core-spun yarn spinning equipment disclosed in Chinese Utility Model Patent Application Publication No. CN221940721U uses a forward and reverse motor to drive a screw to rotate. The screw rotation drives a first movable block to move up and down, thereby driving a second rotating roller to move up and down, adjusting the distance between the second and first rotating rollers to adjust the tension of the cashmere core-spun yarn. This facilitates the adjustment of tension when cashmere core-spun yarn with different twists is run. However, the existing device does not solve the problem that after the cashmere and mohair are made into core-spun yarn, the operators need to frequently change the collected yarn spools. This not only increases the workload of the operators but also reduces work efficiency. During the processing of cashmere and mohair, the tensioning and conveying process is prone to breakage of cashmere or mohair due to static electricity, which affects subsequent processing and use. Therefore, we propose a new device to solve the above problems. Utility Model Content
[0004] (a) Technical problems to be solved To address the shortcomings of existing technologies, this utility model provides a cashmere and mohair core-spun yarn spinning equipment, which solves the problems of time-consuming and labor-intensive operation and low work efficiency caused by operators having to continuously replace new spools after collecting the core-spun yarn.
[0005] (II) Technical Solution To achieve the above objectives, this utility model provides the following technical solution: a cashmere and mohair core-spun yarn spinning device, comprising a base plate, a fixed frame fixedly connected to the upper surface of the base plate, a feeding structure fixedly connected to the upper surface of the fixed frame, a yarn separating structure fixedly connected to the upper surface of the base plate, a fixed seat fixedly connected to the upper surface of the base plate, a spinning structure rotatably connected inside the fixed seat, a drive seat fixedly connected to the upper surface of the base plate, a drive motor fixedly connected inside the drive seat, and a gear inserted into one end of the drive motor.
[0006] Optionally, a fixed hydraulic device is fixedly connected to the upper surface of the equipment base plate, a motor base is fixedly connected to the upper surface of the fixed hydraulic device, a docking motor is fixedly connected inside the motor base, a base is inserted into one end of the docking motor, an auxiliary motor is fixedly connected inside the base, an auxiliary lead screw is inserted into one end of the auxiliary motor, a clamp is threaded through the surface of the auxiliary lead screw, a spool is sleeved on the surface of the clamp, and a collecting rod is fixedly connected inside the equipment base plate.
[0007] Optionally, the gear is located at the lower part of the spinning structure, and the gear meshes with the surface of the spinning structure.
[0008] Optionally, the spool has a positioning hole inside, the size of which is adapted to the size of the collecting rod.
[0009] Optionally, a fixing groove is provided on the upper surface of the base, and the base is slidably connected to the clamp through the fixing groove.
[0010] Optionally, the number of auxiliary lead screws is two, and the thread directions of the two auxiliary lead screws are opposite.
[0011] Optionally, a connecting seat is fixedly connected to one side of the equipment base plate, a movable motor is fixedly connected inside the connecting seat, a movable lead screw is inserted into one end of the movable motor, a movable slider is threaded through the surface of the movable lead screw, a movable hydraulic device is fixedly connected to the lower surface of the movable slider, a movable slide groove is provided on one side of the connecting seat, and the connecting seat is slidably connected to the movable slider through the movable slide groove.
[0012] Optionally, a fixed clamping plate is fixedly connected to the lower surface of the mobile hydraulic device, a clamping plate motor is fixedly connected inside the fixed clamping plate, a clamping plate screw is inserted into one end of the clamping plate motor, the surface thread of the clamping plate screw passes through the mobile clamping plate, a limiting rod is provided on one side of the fixed clamping plate, a limiting hole is opened on one side of the mobile clamping plate, and the limiting rod is slidably connected to the limiting hole.
[0013] Optionally, a placement frame is fixedly connected to the upper surface of the equipment base plate, a water tank is fixedly connected to the upper surface of the placement frame, a water pump is inserted into one side of the water tank, a pipe is inserted into one end of the water pump, an atomizing nozzle is fixedly connected to the lower surface of the placement frame, a sponge block is fixedly connected to the surface of the placement frame, and a pipe is opened inside the placement frame, the pipe being adapted to the atomizing nozzle through a through pipe.
[0014] In summary, the technical effects and advantages of this utility model are as follows: 1. This utility model has a reasonable structure. Cashmere and mohair are fixed to the feeding structure, and one end of each is passed through the yarn separating structure and the spinning structure, with the other end fixed to the bobbin. The bobbin is rotated by a connecting motor to complete the tensioning, conveying, and collection of the produced core-spun yarn. Simultaneously, during the collection of the core-spun yarn, a fixed hydraulic device continuously moves the bobbin up and down, ensuring the collected core-spun yarn is evenly distributed on the bobbin surface. By driving a motor to rotate the gears, the spinning structure is rotated, thus producing core-spun yarn from the cashmere and mohair. The fixed hydraulic device is then used to move the bobbin. The clamping plate moves downwards. As the fixed clamping plate moves downwards, the cutting blade on one side of the moving clamping plate cuts the core-spun yarn. The clamping plate motor drives the clamping plate screw, causing the moving clamping plate to move parallel until the fixed and moving clamping plates clamp the spool securely. Then, the moving hydraulic device moves the spool upwards, and simultaneously, the moving motor drives the moving screw, causing the spool to move parallel until it reaches the top of the collecting rod. The moving hydraulic device then moves the spool downwards, allowing the collecting rod to pass through the spool. At this point, the clamping plate motor drives the clamping plate screw, causing the moving clamping plate to move parallel, thus separating the moving clamping plate from the spool and connecting the spool to the collecting rod. After collecting the spools, a new spool is placed on the placement block. A hydraulic device moves the fixed clamp upwards, and a moving motor drives a sliding screw to move the sliding block parallel to the top of the new spool. The hydraulic device then moves the fixed clamp downwards, and a clamping motor drives a clamping screw to move the sliding clamp parallel to the top of the fixture. This continues until the fixed and sliding clamps clamp the new spool securely. The hydraulic device then moves the new spool upwards again, and the moving motor drives a sliding screw to move the spool to the top of the fixture. Finally, the hydraulic device moves the new spool downwards... The new spool passes through the clamp, and the auxiliary motor drives the auxiliary screw, causing the two clamps to move in opposite directions to hold the inner wall of the new spool in place. This completes the placement of the new spool, reducing the need for operators to frequently change the collected spools after cashmere and mohair have been processed into core-spun yarn. This not only increases the workload of operators but also slows down work efficiency. The new spool can be automatically collected after the core-spun yarn is fully wound on its surface, and then placed in the collection position. Operators only need to fix the cut core-spun yarn onto the new spool.
[0015] 2. In this utility model, a water pump pumps clean water from inside the water tank into the pipeline, and then the clean water is atomized and sprayed onto cashmere and mohair through an atomizing nozzle. At the same time, a sponge block absorbs and collects the falling water droplets, thereby increasing the humidity of the cashmere and mohair. This reduces the risk of breakage of the cashmere or mohair due to static electricity during the tensioning and conveying process, which can affect subsequent processing and use. This achieves the effect of humidifying the cashmere and mohair before processing, reducing static electricity and thus reducing breakage. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the structure of this utility model; Figure 2 This is a schematic diagram of the base plate structure of the equipment of this utility model; Figure 3 This is a schematic diagram of the fixing base structure of this utility model; Figure 4 This is an exploded view of the spool structure of this utility model; Figure 5 This is a schematic diagram of the connector structure of this utility model; Figure 6 This is an exploded view of the placement rack structure of this utility model.
[0017] In the diagram: 1. Equipment base plate; 2. Fixed frame; 3. Feeding structure; 4. Separating structure; 5. Fixed seat; 6. Spinning structure; 7. Drive seat; 8. Drive motor; 9. Gear; 10. Fixed hydraulic device; 11. Motor seat; 12. Connecting motor; 13. Base; 14. Auxiliary motor; 15. Auxiliary lead screw; 16. Clamp; 17. Bollard; 18. Collecting rod; 19. Connecting seat; 20. Moving motor; 21. Moving lead screw; 22. Moving slider; 23. Moving hydraulic device; 24. Fixed clamping plate; 25. Clamping plate motor; 26. Clamping plate lead screw; 27. Moving clamping plate; 28. Placement rack; 29. Water tank; 30. Water pump; 31. Pipeline; 32. Atomizing nozzle; 33. Sponge block. Detailed Implementation
[0018] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0019] Example: Reference Figures 1-6The cashmere and mohair core-spun yarn spinning equipment shown includes a base plate 1, a fixed frame 2 fixedly connected to the upper surface of the base plate 1, a feeding structure 3 fixedly connected to the upper surface of the fixed frame 2, a yarn separating structure 4 fixedly connected to the upper surface of the base plate 1, a fixed seat 5 fixedly connected to the upper surface of the base plate 1, a spinning structure 6 rotatably connected inside the fixed seat 5, a drive seat 7 fixedly connected to the upper surface of the base plate 1, a drive motor 8 fixedly connected inside the drive seat 7, and a gear 9 inserted into one end of the drive motor 8. A fixed hydraulic device 10 is fixedly connected to the upper surface of the base plate 1. A motor base 11 is fixedly connected to the upper surface of the fixed hydraulic device 10. A docking motor 12 is fixedly connected inside the motor base 11. A base 13 is inserted into one end of the docking motor 12. An auxiliary motor 14 is fixedly connected inside the base 13. An auxiliary lead screw 15 is inserted into one end of the auxiliary motor 14. A clamp 16 is threaded through the surface of the auxiliary lead screw 15. A bobbin 17 is sleeved on the surface of the clamp 16. A collecting rod 18 is fixedly connected inside the base plate 1.
[0020] As a preferred embodiment of this example, Figures 1-5As shown, a fixed frame 2 is fixedly connected to the upper surface of the equipment base plate 1. A feeding structure 3 is fixedly connected to the upper surface of the fixed frame 2. A branching structure 4 is fixedly connected to the upper surface of the equipment base plate 1. A fixed seat 5 is fixedly connected to the upper surface of the equipment base plate 1. A spinning structure 6 is rotatably connected inside the fixed seat 5. A drive seat 7 is fixedly connected to the upper surface of the equipment base plate 1. A drive motor 8 is fixedly connected inside the drive seat 7. A gear 9 is inserted into one end of the drive motor 8. The gear 9 is located at the lower part of the spinning structure 6 and meshes with the surface of the spinning structure 6. A fixed hydraulic device 10 is fixedly connected to the upper surface of the equipment base plate 1. A motor seat 11 is fixedly connected to the upper surface of the fixed hydraulic device 10. A docking motor 12 is fixedly connected inside the motor seat 11. One end of the motor 12 is inserted into a base 13. An auxiliary motor 14 is fixedly connected inside the base 13. One end of the auxiliary motor 14 is inserted into an auxiliary lead screw 15. There are two auxiliary lead screws 15, and the threads of the two auxiliary lead screws 15 are opposite. A clamp 16 passes through the threads on the surface of the auxiliary lead screw 15. A fixing groove is opened on the upper surface of the base 13. The base 13 is slidably connected to the clamp 16 through the fixing groove. A bobbin 17 is sleeved on the surface of the clamp 16. A collecting rod 18 is fixedly connected inside the equipment base plate 1. A positioning hole is opened inside the bobbin 17. The size of the positioning hole is adapted to the size of the collecting rod 18. A placement block is opened on the upper surface of the equipment base plate 1 near the collecting rod 18. A connecting seat 19 is fixedly connected to one side of the equipment base plate 1. A movable motor 20 is fixedly connected inside the connecting seat 19. A movable lead screw 21 is inserted into one end of the movable motor 20. A movable slider 22 passes through the threaded surface of the movable lead screw 21. A movable hydraulic device 23 is fixedly connected to the lower surface of the movable slider 22. A movable groove is provided on one side of the connecting seat 19, and the connecting seat 19 is slidably connected to the movable slider 22 through the movable groove. A fixed clamping plate 24 is fixedly connected to the lower surface of the movable hydraulic device 23. A clamping plate motor 25 is fixedly connected inside the fixed clamping plate 24. A clamping plate lead screw 26 is inserted into one end of the clamping plate motor 25, and a movable clamping plate 27 passes through the threaded surface of the clamping lead screw 26. A limiting rod is provided on one side of the fixed clamping plate 24, and a limiting hole is provided on one side of the movable clamping plate 27. The limiting rod slides with the limiting hole. The connecting and movable clamping plate 27 has a cutting blade on one side. During use, cashmere and mohair are fixed on the feeding structure 3, and one end of the cashmere and mohair is passed through the yarn separating structure 4 and the spinning structure 6 respectively. Then, one end is fixed on the bobbin 17. By rotating the base 13 through the docking motor 12, the bobbin 17 is rotated to complete the tensioning, conveying and collecting of the produced core-spun yarn. At the same time, when collecting the core-spun yarn, the fixed hydraulic device 10 makes the bobbin 17 move up and down continuously, so that the collected core-spun yarn can be evenly distributed on the surface of the bobbin 17. By driving the motor 8 to rotate the gear 9, the spinning structure 6 is rotated, and cashmere and mohair are made into core-spun yarn. The fixed clamping plate 24 is moved downward by the movable hydraulic device 23.As the fixed clamping plate 24 moves downward, the cutting blade on one side of the movable clamping plate 27 cuts the core-spun yarn. The clamping plate motor 25 drives the clamping plate screw 26, causing the movable clamping plate 27 to move parallel until the fixed clamping plate 24 and the movable clamping plate 27 clamp the spool 17 securely. Then, the movable hydraulic device 23 moves the spool 17 upward, while the movable motor 20 drives the movable screw 21, causing the spool 17 to move parallel until it reaches the upper part of the collecting rod 18. Finally, the movable hydraulic device 23 moves the spool 17 downward, causing the collecting rod 18 to... The thread spool 17 is passed through. At this time, the clamping screw 26 is driven by the clamping motor 25 to move the moving clamping plate 27 in parallel, thereby separating the moving clamping plate 27 from the thread spool 17 and connecting the thread spool 17 to the collecting rod 18, completing the collection of the full thread spool 17. By placing the new thread spool 17 on the placement block, the fixed clamping plate 24 is moved upward by the moving hydraulic device 23, and the moving slider 22 is moved in parallel until it reaches the upper part of the new thread spool 17 by the moving screw 21 driven by the moving motor 20 until it reaches the upper part of the new thread spool 17. The fixed clamping plate 24 is moved downward by the moving hydraulic device 23. The movement is initiated by the clamping motor 25 driving the clamping screw 26, causing the moving clamping plate 27 to move parallel until the fixed clamping plate 24 and the moving clamping plate 27 clamp the new spool 17. The moving hydraulic device 23 then moves the new spool 17 upwards, and the moving motor 20 drives the moving screw 21 to move the new spool 17 to the upper part of the clamp 16. The moving hydraulic device 23 then moves the new spool 17 downwards, allowing it to pass through the clamp 16. Finally, the auxiliary motor 14 drives the auxiliary screw 15, causing the two clamps 16 to move in opposite directions. The new spool 17 is automatically placed by moving the yarn to lock it in place on the inner wall. This reduces the need for frequent replacement of the collected spool 17 after cashmere and mohair have been processed into core-spun yarn, which not only increases the workload of the operators but also slows down the work efficiency. The new spool 17 can be automatically collected after being fully wound with core-spun yarn, and then a new spool 17 can be placed in the collection position. The operator only needs to re-fix the cut core-spun yarn onto the new spool 17.
[0021] like Figure 6As shown, in this embodiment, a placement rack 28 is fixedly connected to the upper surface of the equipment base plate 1, and a water tank 29 is fixedly connected to the upper surface of the placement rack 28. A water pump 30 is inserted into one side of the water tank 29, and a pipe 31 is inserted into one end of the water pump 30. An atomizing nozzle 32 is fixedly connected to the lower surface of the placement rack 28, and a sponge block 33 is fixedly connected to the surface of the placement rack 28. A pipe is opened inside the placement rack 28, and the pipe 31 is adapted to the atomizing nozzle 32 through a through pipe. During use, the water pump 30 pumps clean water from the water tank 29 through the pipe 31. 1. Water is discharged into the pipeline and then sprayed onto cashmere and mohair through atomizing nozzles 32. At the same time, sponge blocks 33 absorb and collect the falling water droplets, thereby increasing the humidity of cashmere and mohair. This reduces the risk of breakage of cashmere or mohair due to static electricity during the tensioning and conveying process, which can affect subsequent processing and use. This achieves the effect of humidifying cashmere and mohair before processing, reducing static electricity and thus reducing breakage.
[0022] The working principle of this practical application is as follows: In operation, cashmere and mohair are first fixed onto the feed structure 3. Then, one end of each cashmere and mohair is threaded through the yarn splitting structure 4 and the spinning structure 6, respectively, and the other end is fixed to the bobbin 17. The base 13 is rotated by the connecting motor 12, causing the bobbin 17 to rotate, thus completing the tensioning, conveying, and collection of the produced core-spun yarn. Simultaneously, during the collection of the core-spun yarn, the bobbin 17 is continuously moved up and down by the fixed hydraulic device 10, ensuring that the collected core-spun yarn is evenly distributed on the surface of the bobbin 17. The spinning structure 6 is rotated by the drive motor 8, thus producing core-spun yarn from the cashmere and mohair. The water pump 30 pumps clean water from inside the water tank 29... Water is discharged into the pipeline through pipe 31, and then atomized and sprayed onto cashmere and mohair through atomizing nozzle 32. Simultaneously, sponge block 33 absorbs and collects the falling water droplets, thus increasing the humidity of the cashmere and mohair. The fixed clamping plate 24 moves downwards via the moving hydraulic device 23. As the fixed clamping plate 24 moves downwards, the cutting blade on one side of the moving clamping plate 27 cuts the core-spun yarn. The clamping plate motor 25 drives the clamping plate screw 26, causing the moving clamping plate 27 to move parallel until the fixed clamping plate 24 and the moving clamping plate 27 clamp the spool 17 securely. Then, the moving hydraulic device 23 moves the spool 17 upwards, while the moving motor 20 drives the moving screw 21, causing... The spool 17 moves parallel until it reaches the upper part of the collecting rod 18. The hydraulic device 23 then moves the spool 17 downwards, allowing the collecting rod 18 to pass through it. At this point, the clamping motor 25 drives the clamping screw 26, causing the moving clamping plate 27 to move parallel, thus separating it from the spool 17 and connecting it to the collecting rod 18. This completes the collection of the full spool 17. A new spool 17 is placed on the placement block, and the hydraulic device 23 moves the fixed clamping plate 24 upwards. The motor 20 drives the moving screw 21, causing the moving slider 22 to move parallel until it reaches the upper part of the new spool 17. The hydraulic device 23 then moves the slider 22. The fixed clamp 24 is moved downwards, and the clamp screw 26 is driven by the clamp motor 25 to move the movable clamp 27 in parallel until the fixed clamp 24 and the movable clamp 27 clamp the new spool 17. The new spool 17 is then moved upwards by the movable hydraulic device 23, and then the movable screw 21 is driven by the movable motor 20 to move the new spool 17 to the upper part of the clamp 16. The new spool 17 is then moved downwards by the movable hydraulic device 23 so that it passes through the clamp 16. Then the auxiliary screw 15 is driven by the auxiliary motor 14 to move the two clamps 16 in opposite directions to lock the inner wall of the new spool 17, thus completing the placement of the new spool 17.
[0023] All electrical components mentioned in this article are connected to an external main controller and 220V AC mains power, and the main controller can be a conventional known device such as a computer that can control it.
[0024] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model 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 utility model should be included within the protection scope of the present utility model.
Claims
1. A cashmere and mohair core yarn spinning apparatus comprising an apparatus base plate (1), characterized by: A fixed frame (2) is fixedly connected to the upper surface of the equipment base plate (1). A feeding structure (3) is fixedly connected to the upper surface of the fixed frame (2). A splitting structure (4) is fixedly connected to the upper surface of the equipment base plate (1). A fixed seat (5) is fixedly connected to the upper surface of the equipment base plate (1). A spinning structure (6) is rotatably connected inside the fixed seat (5). A drive seat (7) is fixedly connected to the upper surface of the equipment base plate (1). A drive motor (8) is fixedly connected inside the drive seat (7). A gear (9) is inserted into one end of the drive motor (8). A fixed hydraulic device (10) is connected, and a motor base (11) is fixedly connected to the upper surface of the fixed hydraulic device (10). A docking motor (12) is fixedly connected inside the motor base (11). A base (13) is inserted into one end of the docking motor (12). An auxiliary motor (14) is fixedly connected inside the base (13). An auxiliary lead screw (15) is inserted into one end of the auxiliary motor (14). A clamp (16) is threaded through the surface of the auxiliary lead screw (15). A bobbin (17) is sleeved on the surface of the clamp (16). A collecting rod (18) is fixedly connected inside the equipment base plate (1).
2. The cashmere and mohair core-spun yarn spinning equipment according to claim 1, characterized in that: The gear (9) is located at the lower part of the spinning structure (6), and the gear (9) meshes with the surface of the spinning structure (6).
3. The cashmere and mohair core-spun yarn spinning equipment according to claim 1, characterized in that: The spool (17) has a positioning hole inside, the size of which is adapted to the size of the collecting rod (18).
4. The cashmere and mohair core-spun yarn spinning equipment according to claim 1, characterized in that: The upper surface of the base (13) is provided with a fixed sliding groove, and the base (13) is slidably connected to the clamp (16) through the fixed sliding groove.
5. The cashmere and mohair core-spun yarn spinning equipment according to claim 1, characterized in that: The number of auxiliary lead screws (15) is two, and the thread directions between the two auxiliary lead screws (15) are opposite.
6. The cashmere and mohair core-spun yarn spinning equipment according to claim 1, characterized in that: A connecting seat (19) is fixedly connected to one side of the equipment base plate (1). A moving motor (20) is fixedly connected inside the connecting seat (19). A moving screw (21) is inserted into one end of the moving motor (20). A moving slider (22) is threaded through the surface of the moving screw (21). A moving hydraulic device (23) is fixedly connected to the lower surface of the moving slider (22). A moving groove is provided on one side of the connecting seat (19). The connecting seat (19) is slidably connected to the moving slider (22) through the moving groove.
7. The cashmere and mohair core-spun yarn spinning equipment according to claim 6, characterized in that: A fixed clamping plate (24) is fixedly connected to the lower surface of the mobile hydraulic device (23). A clamping plate motor (25) is fixedly connected inside the fixed clamping plate (24). A clamping plate screw (26) is inserted into one end of the clamping plate motor (25). A movable clamping plate (27) is threaded through the surface of the clamping plate screw (26). A limiting rod is provided on one side of the fixed clamping plate (24). A limiting hole is opened on one side of the movable clamping plate (27). The limiting rod is slidably connected to the limiting hole.
8. The cashmere and mohair core-spun yarn spinning equipment according to claim 1, characterized in that: A placement rack (28) is fixedly connected to the upper surface of the equipment base plate (1). A water tank (29) is fixedly connected to the upper surface of the placement rack (28). A water pump (30) is inserted into one side of the water tank (29). A pipe (31) is inserted into one end of the water pump (30). An atomizing nozzle (32) is fixedly connected to the lower surface of the placement rack (28). A sponge block (33) is fixedly connected to the surface of the placement rack (28). A pipeline is opened inside the placement rack (28). The pipeline (31) is adapted to the atomizing nozzle (32) through the through pipeline.
Citation Information
Patent Citations
Cashmere covering yarn spinning equipment
CN221940721U