Anti-winding high-efficiency yarn winding device for spinning and use method
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-04
- Publication Date
- 2026-08-11
AI Technical Summary
[0005]本发明的目的在于提供一种防缠绕的纺纱用高效绕线装置及使用方法,以解决上述背景技术中提出纱线在导纱器绕线作业过程中的动态变化使得纱线容易在导纱器处发生偏移,进而导致缠绕,且多数传统装置缺乏有效的张力控制机制,在纱线缠绕过程中的张力不均匀,纱线在绕线筒上的缠绕就会出现松紧不一的情况,松的部分容易相互缠绕的问题
[0038] Step four: As the infrared detector detects the height of the yarn bobbin, it sends a stop command to the electric drive lever, prompting the worker to replace the yarn bobbin and continue the winding process.
Smart Images

Figure CN119059365B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of spinning equipment technology, specifically to an anti-tangling high-efficiency winding device for spinning and its usage method. Background Technology
[0002] With the continuous development of the textile industry, the requirements for spinning quality and production efficiency are increasing. The winding process is a crucial step in spinning, and its quality and efficiency directly affect the quality of the final yarn product and production costs. Yarn entanglement can lead to defects on the yarn surface, affecting the yarn's strength and appearance. In a market environment with increasingly stringent yarn quality requirements, textile companies urgently need winding devices that can prevent yarn entanglement to improve the quality of finished yarn products and meet the demands of high-end textile production. However, traditional winding devices have some shortcomings in many operations, such as:
[0003] Traditional spinning and winding devices typically use a simple straight-rod yarn guide as a fixed yarn guiding component. This yarn guide cannot adapt to the dynamic changes in the yarn's rotational speed and input speed during the winding process, causing the yarn to easily deviate at the yarn guide and thus become entangled. Furthermore, most traditional devices lack an effective tension control mechanism, resulting in uneven tension during the yarn winding process. Consequently, the yarn winding on the winding drum will be uneven in tightness, with the looser parts easily entangled with each other.
[0004] To address the aforementioned issues, there is an urgent need for innovative designs based on existing spinning and winding equipment. Summary of the Invention
[0005] The purpose of this invention is to provide an anti-tangling, high-efficiency winding device and method for spinning, in order to solve the problems mentioned in the background art, such as the dynamic changes of the yarn during the winding operation of the yarn guide, which make the yarn prone to deviate at the yarn guide and thus cause tangling, and the lack of an effective tension control mechanism in most traditional devices, resulting in uneven tension during the yarn winding process, and the yarn winding on the winding drum will be uneven, with the loose parts easily tangling with each other.
[0006] To achieve the above objectives, the present invention provides the following technical solution: an anti-tangling high-efficiency winding device for spinning and a method of use, comprising a mounting plate, which is configured as a rectangular plate structure for mounting the base layer of the winding device. A positioning plate one and a positioning plate two are symmetrically mounted on the upper end of the mounting plate, and an electric drive rotating rod is provided between the positioning plate one and the positioning plate two. The electric drive rotating rod and the winding drum are concentrically mounted and constitute the main working structure for winding yarn together with the winding drum.
[0007] The bottom end of the positioning plate is installed on the top of the electric drive push plate, and the electric drive push plate is slidably connected to the surface of the mounting plate. The roller of the electric drive rotating rod is equipped with a magnetic limiting component inside and on the surface, which is used to limit and install the winding drum sleeved on the electric drive rotating rod.
[0008] A tapered threaded guide rod is mounted on the surface of the mounting plate, positioned between positioning plate one and positioning plate two, and parallel to the centerline of positioning plate one and positioning plate two. The tapered threaded guide rod is configured as a tapered cylindrical structure, and its surface is provided with a helical groove. Support frames are symmetrically arranged at the upper end of the mounting plate, with guide rollers mounted on the side of the upper end of the support frames adjacent to the tapered threaded guide rod, and ceramic corrugated rods arranged on the other side of the upper end of the support frames. Two... A slide rail is provided, and a slide column is vertically installed inside the slide rail of the support frame. The surface of the slide column is arranged around the metal spring of the electromagnetic push plate, and the electromagnetic coil plate of the electromagnetic push plate is installed at the bottom end of the slide column. The electromagnetic push plate is composed of a U-shaped push plate, a metal spring and an electromagnetic coil plate. The two ends of the metal spring of the electromagnetic push plate are connected to the U-shaped push plate and the electromagnetic coil plate. The slide column passes through the tension roller, and the tension roller slides inside the slide rail of the support frame. The bottom end of the tension roller is fixedly connected to the U-shaped push plate of the electromagnetic push plate.
[0009] A limiting slide is installed on the surface of the mounting plate. The limiting slide and positioning plate one and positioning plate two are symmetrically arranged at both ends of the mounting plate surface. An electrically driven double-threaded rotating rod is provided inside the limiting slide. The electrically driven double-threaded rotating rod is connected to a positioning clamp assembly for guiding the winding direction of the yarn.
[0010] The positioning clamp assembly includes:
[0011] The limiting clamps are symmetrically arranged on the electric drive double threaded rotor, and the two limiting clamps are respectively connected to the opposite thread structure on the surface of the electric drive double threaded rotor.
[0012] An electric rotating roller is installed inside the limiting clamp, and the limiting clamp is configured as a U-shaped frame structure;
[0013] The contact strips are equidistantly installed on the surface of the electric roller.
[0014] The pressing sleeve is fitted onto the outer wall of the electric rotating roller, and a gap is left between the inner layer of the pressing sleeve and the contact energizing strip.
[0015] A communication connector is mounted on the upper end of the limiting clamp and is connected to the contact energizing strip.
[0016] By adopting the above technical solution, the yarn tension can be adjusted to make the winding of the yarn on the winding drum more regular, thus avoiding the entanglement caused by uneven tension.
[0017] Preferably, the magnetic limiting component includes:
[0018] A cylindrical clamp is symmetrically arranged on the surface of the electric drive rotor, and the cylindrical clamp is configured as an annular plate structure;
[0019] The gripping plate is symmetrically and slidably connected to the side wall of the cylindrical clamp, and the gripping plate is configured as an L-shaped arc plate.
[0020] A contact switch is mounted on the surface of the cylindrical clamp;
[0021] An electromagnet is installed inside the electrically driven rotating rod, with the other end of the electromagnet penetrating through a positioning plate.
[0022] A stop plate is arranged in a ring on the surface of the electric drive rotor, and a corrugated pipe connected to the electric drive rotor is provided in the inner layer of the stop plate;
[0023] Elastic silicone is symmetrically installed on both sides of the inner wall of the abutment, and the elastic silicone is sleeved and installed with the electric drive rod;
[0024] An infrared detector is slidably connected to the surfaces of the first and second positioning plates, and the output ends of the two infrared detectors are arranged opposite each other.
[0025] Using the above technical solution, the magnetic limiting component provides stable restraint for the yarn bobbin during high-speed rotation and winding.
[0026] Preferably, the cylindrical clamp and the gripper form a bowl-shaped structure, and the curvature of the gripper is consistent with the curvature of the electric drive rotor.
[0027] By adopting the above technical solution, the assembly of the cylindrical clamp and the gripping plate facilitates the limiting of the yarn bobbin end.
[0028] Preferably, the bottom of the infrared detector is higher than the top of the cylindrical clamp.
[0029] By adopting the above technical solution, the height of the infrared detector is controlled to avoid the impact of the cylindrical clamp on the winding process.
[0030] Preferably, the surface of the ceramic corrugated rod is provided with a spiral protrusion structure, and the ceramic corrugated rod is arranged parallel to the guide roller, and the diameter of the middle section of the guide roller is smaller than the diameter of the two sections of the rod.
[0031] By adopting the above technical solution, the spiral protrusions of the ceramic corrugated rod facilitate the guidance of the yarn feeding direction and reduce the entanglement between yarns.
[0032] Preferably, the diameter of the limiting clamp and the pressing sleeve is smaller than the diameter of the opening of the electric rotating roller.
[0033] The above technical solution, through the installation of limit clamps and pressing sleeves, is used to limit the stability of the electric rotating roller.
[0034] A method for using an anti-tangling, high-efficiency winding device for spinning, applied to the aforementioned winding device, includes the following operating steps:
[0035] Step 1: Separate positioning plate 1 and positioning plate 2 so that the electric drive rotating rod is sleeved with the yarn drum. The yarn drum is held in place by the gripping plate inside the cylindrical clamp. The contact switch is activated and the magnetic force generated by the electric magnet causes the diameter of the stop plate to expand and press against the yarn drum to maintain stability and keep the yarn winding height consistent.
[0036] Step 2: The yarn is passed between two limit clamps pushed by an electrically driven double-threaded rotating rod. The yarn is then pressed through the contact energizing bar to generate a signal, thus providing a stable output for the yarn to work.
[0037] Step 3: The yarn is guided by the bucket-shaped guide frame inside the support frame to wind around the ceramic corrugated rod surface. While adjusting the tension, the yarn winding is reduced. The tension roller located at the bottom of the support frame is pushed by the electric magnetic push plate to adjust the height and control the tension. Finally, the guide roller guides the yarn towards the tapered threaded guide rod.
[0038] Step four: As the infrared detector detects the height of the yarn bobbin, it sends a stop command to the electric drive lever, prompting the worker to replace the yarn bobbin and continue the winding process.
[0039] The above technical solution facilitates stable and efficient winding and coiling of yarn, thus improving the quality of finished yarn products.
[0040] Compared with the prior art, the beneficial effects of the present invention are: the anti-tangling high-efficiency winding device for spinning and its method of use:
[0041] 1. The positioning clamp assembly on the surface of the mounting plate, together with the rollers inside the support frame, provides tension traction for the yarn output. The tapered threaded guide rod installed inside the support frame adopts a spiral protrusion design to prevent the yarn from deviating during rapid yarn feeding. It works with the tension roller installed below to further pull the yarn tension. When the electric rotating roller in the positioning clamp assembly comes into contact with the yarn, the contact energized strips on both sides of the yarn synchronously receive signals. When the tension is excessive, the pressure on the contact energized strips changes, causing the communication connector to adjust the magnetic strength of the electromagnetic push plate, so that the tension roller comes close to the ceramic corrugated rod and the guide roller, thereby relaxing the yarn. Through the dynamic changes of the contact energized strips and yarn feeding, the yarn tension can be quickly controlled, thereby ensuring that the yarn tension is uniform and stable throughout the winding process, maintaining the yarn tension within a suitable range, making the yarn winding on the winding drum more regular, and avoiding the entanglement phenomenon caused by uneven tension leading to uneven yarn tightness on the winding drum.
[0042] 2. The tapered threaded guide rod installed between the guide roller and the electric drive rotor adopts a spiral structure. The spiral groove inside the tapered threaded guide rod helps maintain uniform tension during the yarn holding and conveying process, while limiting the height of the yarn conveyed to the electric drive rotor. This further ensures that the yarn can accurately enter the electric drive rotor for winding after leaving the guide roller, thus preventing the yarn from tangling in the final stage before entering the winding drum. The magnetic limiting component set on the electric drive rotor uses an electrically generated magnetic rod to push the abutment plate to quickly maintain the alignment of the yarn drum with the center line of the electric drive rotor. This facilitates the installation of yarn drums with different widths and diameters. The cylindrical clamp and gripping plate telescopically hold the two ends of the yarn drum to prevent the yarn drum from slipping during the winding process, improving the winding quality and increasing the range of applications and flexibility of the device. Attached Figure Description
[0043] Figure 1 This is a schematic diagram of the overall external three-dimensional structure of the present invention;
[0044] Figure 2 This is a schematic diagram of the overall internal side cross-section of the present invention.
[0045] Figure 3 This is a schematic diagram of the overall three-dimensional structure of the magnetic limiting component of the present invention;
[0046] Figure 4 This is a three-dimensional schematic diagram of the cylindrical clamp and its installation structure according to the present invention;
[0047] Figure 5 This is a schematic diagram of the three-dimensional structure of the electrogenerated magnetic rod and the elastic silicone installed in this invention;
[0048] Figure 6 This is a three-dimensional structural diagram of the installation position of the tapered threaded guide rod and the support frame of the present invention;
[0049] Figure 7 This is a three-dimensional structural diagram of the support frame and sliding column installation of the present invention;
[0050] Figure 8 This is a schematic diagram of the overall three-dimensional structure of the positioning clamp assembly of the present invention;
[0051] Figure 9 This is a side-sectional three-dimensional structural diagram of the contact energizing strip and pressing sleeve of the present invention;
[0052] Figure 10 This is a three-dimensional structural diagram of the contact energizing strip and the pressing sleeve of the present invention.
[0053] In the diagram: 1. Mounting plate; 2. Positioning plate one; 3. Positioning plate two; 4. Electric drive rotating rod; 5. Cylindrical clamp; 6. Grip plate; 7. Contact switch; 8. Electromagnetic rod; 9. Support plate; 10. Elastic silicone; 11. Infrared detector; 12. Electric drive push plate; 13. Tapered threaded guide rod; 14. Support frame; 15. Ceramic corrugated rod; 16. Guide roller; 17. Tension roller; 18. Sliding column; 19. Electromagnetic push plate; 20. Bucket-shaped guide frame; 21. Limiting slide; 22. Electric drive double threaded rotating rod; 23. Limiting clamp; 24. Electric rotating roller; 25. Contact energizing strip; 26. Pressing sleeve; 27. Communication connector. Detailed Implementation
[0054] 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.
[0055] Please see Figures 1-10 The present invention provides a technical solution: an anti-tangling high-efficiency winding device for spinning, comprising a mounting plate 1, a positioning plate one 2, a positioning plate two 3, an electric drive rotating rod 4, a cylindrical clamp 5, a gripping plate 6, a contact switch 7, an electromagnet 8, a stop plate 9, elastic silicone 10, an infrared detector 11, an electric drive push plate 12, a tapered threaded guide rod 13, a support frame 14, a ceramic corrugated rod 15, a guide roller 16, a tension roller 17, a sliding column 18, an electromagnetic push plate 19, a bucket-shaped guide frame 20, a limiting slide frame 21, an electric drive double threaded rotating rod 22, a limiting clamp 23, an electric rotating roller 24, a contact energizing strip 25, a pressing sleeve 26, and a communication connector 27;
[0056] Among them, the mounting plate 1 is a rectangular plate structure for mounting the base layer of the winding device. The upper end of the mounting plate 1 is symmetrically equipped with positioning plate 1 2 and positioning plate 2 3, and an electric drive rotating rod 4 is provided between positioning plate 1 2 and positioning plate 2 3. The electric drive rotating rod 4 is installed in a concentric circle with the winding drum, and together with the winding drum, it forms the main working structure for winding the yarn.
[0057] The bottom end of the positioning plate 2 3 is installed on the top end of the electric drive push plate 12, and the electric drive push plate 12 is slidably connected to the surface of the mounting plate 1. The roller of the electric drive rotating rod 4 is equipped with a magnetic limiting component inside and on the surface, which is used to limit and install the winding drum sleeved on the electric drive rotating rod 4.
[0058] A tapered threaded guide rod 13 is mounted on the surface of the mounting plate 1, positioned between positioning plate 2 and positioning plate 3, and parallel to the centerline of positioning plate 2 and positioning plate 3. The tapered threaded guide rod 13 has a tapered cylindrical structure, and its surface is decorated with a spiral groove. A support frame 14 is symmetrically arranged on the upper end of the mounting plate 1. A guide roller 16 is mounted on the upper end of the support frame 14 adjacent to the tapered threaded guide rod 13, and a ceramic corrugated rod 15 is arranged on the other side of the upper end of the support frame 14. Two symmetrically arranged guide rollers 16 are mounted inside the support frame 14. A slide rail is provided, and a slide column 18 is vertically installed inside the slide rail of the support frame 14. The surface of the slide column 18 is surrounded by the metal spring of the electromagnetic push plate 19, and the electromagnetic coil plate of the electromagnetic push plate 19 is installed at the bottom of the slide column 18. The electromagnetic push plate 19 is composed of a U-shaped push plate, a metal spring and an electromagnetic coil plate. The two ends of the metal spring of the electromagnetic push plate 19 are connected to the U-shaped push plate and the electromagnetic coil plate. The slide column 18 passes through the tension roller 17, and the tension roller 17 slides inside the slide rail of the support frame 14. The bottom end of the tension roller 17 is fixedly connected to the U-shaped push plate of the electromagnetic push plate 19.
[0059] The limiting slide 21 is installed on the surface of the mounting plate 1. The limiting slide 21 is symmetrically arranged at both ends of the surface of the mounting plate 1 with the positioning plate 1 2 and the positioning plate 2 3. The limiting slide 21 is equipped with an electrically driven double threaded rotating rod 22. The electrically driven double threaded rotating rod 22 is connected to a positioning clamp assembly for guiding the winding direction of the yarn.
[0060] Referring to the attached diagrams in the instruction manual Figures 1-10 As shown, the positioning plate 2 and positioning plate 3, mounted on the upper end of the mounting plate 1, together with the electric drive rotating rod 4, form a tooling structure, facilitating further winding of the yarn bobbin. The bucket-shaped guide frame 20, installed between the support frames 14, is as follows... Figure 6As shown, the yarn is guided by the bucket-shaped structure inside the bucket-shaped guide frame 20 to the surface of the ceramic corrugated rod 15, avoiding the yarn from tangling during tension adjustment. The sliding column 18 located inside the support frame 14 works with the tension roller 17 to adjust the height. The U-shaped push plate of the electromagnetic push plate 19 installed at one end of the tension roller 17 works with the electromagnetic coil and metal spring inside the electromagnetic push plate 19 to adjust the height between the two tension rollers 17, which facilitates the tension adjustment of the yarn brought down from the ceramic corrugated rod 15. Finally, the yarn is conveyed into the threaded groove on the surface of the tapered threaded guide rod 13 through the guide roller 16. The yarn is wound around the spiral groove on the surface of the tapered threaded guide rod 13, which facilitates the stable introduction of the yarn into the direction of the electric drive rotor 4 while avoiding the yarn from tangling.
[0061] The magnetic limiting component includes:
[0062] Cylindrical clamp 5 is symmetrically arranged on the surface of electric drive rotating rod 4, and the cylindrical clamp 5 is set as an annular plate structure. The cylindrical clamp 5 and the gripping plate 6 form a bowl-shaped structure, and the curvature of the gripping plate 6 is consistent with the curvature of the electric drive rotating rod 4.
[0063] The gripper 6 is symmetrically and slidably connected to the side wall of the cylindrical clamp 5, and the gripper 6 is set as an L-shaped arc plate.
[0064] Contact switch 7 is mounted on the surface of cylindrical clamp 5;
[0065] An electric magnetic rod 8 is installed inside the electric drive rotating rod 4, and the other end of the electric magnetic rod 8 passes through the positioning plate 2.
[0066] The abutment plate 9 is arranged in a ring on the surface of the electric drive rotor 4, and the inner layer of the abutment plate 9 is provided with a corrugated pipe connected to the electric drive rotor 4;
[0067] Elastic silicone 10 is symmetrically installed on both sides of the inner wall of the back plate 9, and elastic silicone 10 is sleeved and installed with electric drive rotating rod 4;
[0068] Infrared detector 11 is slidably connected to the surfaces of positioning plate 1 2 and positioning plate 2 3 respectively, and the output ends of the two infrared detectors 11 are set opposite to each other. The bottom height of the infrared detector 11 is higher than the top height of the cylindrical clamp 5.
[0069] Referring to the attached diagrams in the instruction manual Figures 1-10As shown, the electric drive rotating rod 4, installed between positioning plate 2 and positioning plate 3, provides a sleeve for the yarn bobbin. The electric drive push plate 12 pushes positioning plate 3 outward, causing positioning plate 3 to move the electric drive rotating rod 4 to facilitate the insertion of the yarn bobbin. During use, as the cylindrical clamp 5 is pulled, the gripping plate 6 inside clamps the yarn bobbin's end surface, limiting the sleeve's position. As positioning plate 3 slides, the contact switch 7 on the back of the cylindrical clamp 5 is pressed and opened. At this time, the contact switch 7 activates the power device of the electric magnetic rod 8, causing... The electromagnetic rod 8 generates magnetic force, pushing the inner spring of the corrugated tube inside the abutment plate 9 outward, causing the abutment plate 9 to contact the inner wall of the yarn bobbin, increasing the contact area. The elastic silicone 10 located on the inner wall of the abutment plate 9 is used to maintain the connection and tension with the surface of the electric drive rotor 4, and to maintain the constraint on the yarn bobbin. After the electric drive rotor 4 motor rotates, it drives the output roller to drive the yarn bobbin to rotate at high speed for winding and take-up. The rod structure located between the positioning plate 1 2 and the positioning plate 2 3, such as... Figures 1-3 As shown, it is convenient to pull the yarn winding direction, and to facilitate the yarn fed by the auxiliary tapered threaded guide rod 13 to be quickly and efficiently wound into the yarn bobbin surface. The infrared detector 11 installed on the surface of the positioning plate 1 2 and the positioning plate 2 3 adjusts its detection height according to the winding length and thickness requirements. After the yarn winding thickness reaches the detection height of the infrared detector 11, the rotation of the electric drive rotating rod 4 is stopped, which increases the uniformity of the winding thickness of each yarn roll. The electric drive push plate 12 pushes and drives the electric drive rotating rod 4 and the yarn bobbin on the surface to move, so that the yarn is evenly wound on the surface of the yarn bobbin.
[0070] The positioning fixture assembly includes:
[0071] The limiting clamps 23 are symmetrically arranged on the electric drive double threaded rotating rod 22, and the two limiting clamps 23 are respectively connected to the opposite thread structure on the surface of the electric drive double threaded rotating rod 22. The diameter of the limiting clamps 23 and the pressing sleeve 26 is smaller than the opening diameter of the electric rotating roller 24.
[0072] An electric rotating roller 24 is installed inside a limiting clamp 23, and the limiting clamp 23 is configured as a U-shaped frame structure;
[0073] Contact energizing strips 25 are equidistantly mounted on the roller surface of the electric rotating roller 24;
[0074] The pressing sleeve 26 is fitted on the outer wall of the electric rotating roller 24, and there is a gap between the inner layer of the pressing sleeve 26 and the contact energizing strip 25.
[0075] Communication connector 27 is mounted on the upper end of limit clamp 23 and is connected to contact energizing strip 25. An insulating gasket is provided between communication connector 27 and limit clamp 23, and a wire is connected between the two communication connectors 27.
[0076] Referring to the attached diagrams in the instruction manual Figures 1-10 As shown, when in use, the electrically driven double-threaded rotating rod 22 inside the limiting slide 21 is set perpendicular to the yarn at the mounting position of the mounting plate 1, so that the two limiting clamps 23 set on the surface of the electrically driven double-threaded rotating rod 22, as shown... Figure 8 As shown, the two limiting clamps 23 are connected by two threaded structures on the surface of the electrically driven double-threaded rotating rod 22, which facilitates the opposite movement of the two limiting clamps 23 and the clamping of the yarn. A communication connector 27 is located at the upper end of the two limiting clamps 23, allowing the communication connector 27 to receive signals from the contact energizing strip 25 on the surface of the electric rotating roller 24. The electric rotating roller 24, installed inside the limiting clamps 23, provides a mounting base for the contact energizing strip 25. As the pressing sleeve 26 is fitted over the contact energizing strip 25, the yarn is clamped by the limiting clamps 23, and the pressing sleeve 26 applies pressure to the contact energizing strip 25, causing the contact energizing strip 25 to send a message to the communication connector 27. The message is then transmitted through the communication connector 27 to the electric roller 24. The drive rod 4 and the electromagnetic push plate 19 send a message. When the yarn breaks or snaps, the pressing sleeve 26 loses external pressure and separates from the contact energizing strip 25. At this time, the communication connector 27 receives the signal and sends a stop message to the drive rod 4 and the electromagnetic push plate 19. The spiral setting of the tapered threaded guide rod 13 helps to avoid yarn entanglement and prevents the broken yarn from affecting the stability of the drive rod 4 and the sleeve. The communication connector 27 installed at the top of the limit clamp 23 helps to limit the stability of the rotation of one end of the electric roller 24, effectively preventing yarn entanglement and controlling yarn tension. It reduces the friction and stretching of the yarn during the winding process, thereby protecting the physical properties of the yarn, improving the quality of the yarn, and facilitating the production of high-quality spun yarn products.
[0077] Working principle: When using this anti-tangling high-efficiency winding device for spinning, the yarn is first fed between two limiting clamps 23. The electric double-threaded rotating rod 22 drives the two limiting clamps 23 closer together, causing the clamps formed by the two electric rotating rollers 24 to hold the yarn. At this time, the clamped yarn synchronously presses the pressing sleeves 26 on both sides against the contact energizing strip 25. The contact energizing strip 25 sends a signal to the communication connector 27. The signal line of the communication connector 27 controls the electromagnetic push plate 19 and the electric rotating rod 4 to send messages. When a yarn breaks or snaps during the yarn feeding process by the rotating roller 24, the pressure on the contact energizing strip 25 decreases, causing the communication connector 27 to send a signal to the electromagnetic push plate 19 and the electric drive rotor 4. At this time, the electromagnetic push plate 19 relaxes the tension roller 17's traction on the yarn, and the electric drive rotor 4 slows down the winding process to prevent the broken yarn from affecting the overall stable operation of the electric drive rotor 4. The bucket-shaped guide frame 20, located inside the support frame 14, adopts a bucket-shaped structure to facilitate the concentration of yarns from different directions to a single point. The yarn is guided upwards through the bucket-shaped guide frame 20 and abuts against the ceramic corrugated rod 15, causing the spiral structure of the ceramic corrugated rod 15 to wrap around the yarn, preventing tangling during yarn feeding. Two tension rollers 17 located below the ceramic corrugated rod 15 adjust the tension using the height difference of the push plate 19. The yarn then winds upwards along the guide roller 16 near the ceramic corrugated rod 15, around the threaded grooves on the surface of the tapered threaded guide rod 13, preventing the yarn from tangling with other yarns during winding. The tapered threaded guide rod 13 feeds yarn into the yarn bobbin inside the positioning plate 2 via a groove on its surface. During use, the positioning plate 3 is pushed to one side by the electric drive pusher plate 12, causing the electric drive rotating rod 4 to separate from the positioning plate 2, making it easier for the yarn bobbin to fit onto the surface of the electric drive rotating rod 4. The spring inside the bellows of the abutment plate 9 located on the surface of the electric drive rotating rod 4 is affected by the magnetic force generated by the electric magnetic rod 8, causing the abutment plate 9 to expand outward and quickly press against the yarn bobbin, maintaining the stability of the center line of the yarn bobbin and the center line of the electric drive rotating rod 4, which helps to ensure that the yarn tension is uniform and stable throughout the winding process.
[0078] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention.
Claims
1. A high-efficiency anti-tangling winding device for spinning, comprising: Mounting plate (1) is configured as a rectangular plate structure for mounting the base layer of the winding device. Positioning plate one (2) and positioning plate two (3) are symmetrically mounted on the upper end of the mounting plate (1). An electric drive rotating rod (4) is provided between positioning plate one (2) and positioning plate two (3). The electric drive rotating rod (4) is installed in a concentric circle with the winding drum and forms the main working structure for winding yarn with the winding drum. The feature is that: the bottom end of the positioning plate 2 (3) is installed on the top end of the electric drive push plate (12), and the electric drive push plate (12) is slidably connected to the surface of the mounting plate (1). The roller of the electric drive rotating rod (4) is equipped with a magnetic limiting component inside and on the surface, which is used to limit and install the winding drum sleeved on the electric drive rotating rod (4). A tapered threaded guide rod (13) is mounted on the surface of the mounting plate (1), and the tapered threaded guide rod (13) is located between the first positioning plate (2) and the second positioning plate (3), and the tapered threaded guide rod (13) is parallel to the center line of the first positioning plate (2) and the second positioning plate (3). The tapered threaded guide rod (13) is configured as a tapered cylindrical structure, and the surface of the tapered threaded guide rod (13) is configured as a spiral groove. A support frame (14) is symmetrically arranged on the upper end of the mounting plate (1), and a guide roller (16) is installed on the side of the upper end of the support frame (14) adjacent to the tapered threaded guide rod (13). A ceramic corrugated rod (15) is arranged on the other side of the upper end of the support frame (14). The support frame (14) is internally aligned with the center line of the mounting plate (14). It is said that two slide rails are provided, and a slide column (18) is vertically installed in the slide rail of the support frame (14). The surface of the slide column (18) is surrounded by the metal spring of the electromagnetic push plate (19), and the electromagnetic coil plate of the electromagnetic push plate (19) is installed at the bottom of the slide column (18). The electromagnetic push plate (19) is composed of a U-shaped push plate, a metal spring and an electromagnetic coil plate. The two ends of the metal spring of the electromagnetic push plate (19) are connected to the U-shaped push plate and the electromagnetic coil plate. The slide column (18) passes through the tension roller (17), and the tension roller (17) slides in the slide rail of the support frame (14). The bottom end of the tension roller (17) is fixedly connected to the U-shaped push plate of the electromagnetic push plate (19). A limiting slide (21) is installed on the surface of the mounting plate (1). The limiting slide (21) is symmetrically arranged at both ends of the surface of the mounting plate (1) with the positioning plate one (2) and the positioning plate two (3). An electric drive double threaded rotating rod (22) is provided inside the limiting slide (21). The electric drive double threaded rotating rod (22) is connected to a positioning clamp assembly for guiding the winding direction of the yarn. The positioning fixture assembly includes: The limiting clamps (23) are symmetrically arranged on the electric drive double threaded rotating rod (22), and the two limiting clamps (23) are respectively connected to the opposite thread structure on the surface of the electric drive double threaded rotating rod (22); An electric rotating roller (24) is installed inside the limiting clamp (23), and the limiting clamp (23) is configured as a U-shaped frame structure; Contact energizing strips (25) are equidistantly mounted on the surface of the electric rotating roller (24); The pressing sleeve (26) is fitted on the outer wall of the electric rotating roller (24), and there is a gap between the inner layer of the pressing sleeve (26) and the contact energizing strip (25); A communication connector (27) is mounted on the upper end of the limiting clamp (23) and is connected to the contact energizing strip (25).
2. The high-efficiency anti-tangling winding device for spinning according to claim 1, characterized in that: The magnetic limiting component includes: A cylindrical clamp (5) is symmetrically arranged on the surface of the electric drive rotor (4), and the cylindrical clamp (5) is configured as an annular plate structure; The gripper (6) is symmetrically slidably connected to the side wall of the cylindrical clamp (5), and the gripper (6) is set as an L-shaped arc plate. A contact switch (7) is mounted on the surface of the cylindrical clamp (5); An electric magnetic rod (8) is installed inside the electric drive rotating rod (4), and the other end of the electric magnetic rod (8) passes through the positioning plate (2). A stop plate (9) is arranged in a ring on the surface of the electric drive rotor (4), and a corrugated pipe connected to the electric drive rotor (4) is provided in the inner layer of the stop plate (9); Elastic silicone (10) is symmetrically installed on both sides of the inner wall of the abutment plate (9), and the elastic silicone (10) is sleeved and installed with the electric drive rod (4); An infrared detector (11) is slidably connected to the surfaces of the first positioning plate (2) and the second positioning plate (3), and the output ends of the two infrared detectors (11) are arranged opposite to each other.
3. The high-efficiency anti-tangling winding device for spinning according to claim 2, characterized in that: The cylindrical clamp (5) and the gripper (6) form a bowl-shaped structure, and the curvature of the gripper (6) is consistent with the curvature of the electric drive rotor (4).
4. The high-efficiency anti-tangling winding device for spinning according to claim 2, characterized in that: The bottom height of the infrared detector (11) is higher than the top height of the cylindrical clamp (5).
5. The anti-tangling high-efficiency winding device for spinning and its method of use according to claim 1, characterized in that: The surface of the ceramic corrugated rod (15) is provided with a spiral protrusion structure, and the ceramic corrugated rod (15) is arranged parallel to the guide roller (16), and the diameter of the middle section of the guide roller (16) is smaller than the diameter of the two sections of the rod.
6. The high-efficiency anti-tangling winding device for spinning according to claim 1, characterized in that: The diameter of the limiting clamp (23) and the pressing sleeve (26) is smaller than the opening diameter of the electric rotating roller (24).
7. A method of using an anti-tangling, high-efficiency winding device for spinning, applied to the winding device of claim 1 above, characterized in that, The following steps are included: Step 1: Separate positioning plate 1 (2) and positioning plate 2 (3) so that the electric drive rotating rod (4) is fitted with the yarn drum. The inner gripping plate (6) of the cylindrical clamp (5) holds the two ends of the yarn drum to keep it stable. The contact switch (7) starts the electric magnetic rod (8) to generate magnetic force, which causes the diameter of the abutment plate (9) to expand and press against the yarn drum to keep it stable and maintain the consistent yarn winding height. Step 2: The yarn is passed between two limit clamps (23) pushed by the electric double threaded rotating rod (22), and passes through the contact energizing strip (25) to generate a signal, so as to provide stable output for the yarn to work; Step 3: The yarn is guided by the bucket-shaped guide frame (20) set inside the support frame (14) to spiral around the surface of the ceramic corrugated rod (15). While adjusting the tension, the yarn winding is reduced. The tension roller (17) set at the bottom of the support frame (14) is pushed and adjusted in height by the push plate of the electromagnetic push plate (19) to control the tension. Finally, the guide roller (16) guides the yarn towards the tapered threaded guide rod (13). Step 4: As the infrared detector (11) detects the height of the yarn bobbin, it sends a stop command to the electric drive rod (4), prompting the staff to replace the yarn bobbin and continue the winding work.
Citation Information
Patent Citations
Yarn roll tensioning device for spinning
CN115352963A
Anti-winding yarn winder for spinning
CN116946805A