Warping machine for chemical fabric production and use method thereof
By designing a warping machine for the production of chemical fiber cloth, combining the cleaning function of the nozzle and absorption cavity and the continuous supply of anti-static liquid, the problem of fragmentation accumulation in the wire disk is solved, and the integration of cleaning and electrostatic removal of the wire disk is achieved, and the performance and fabric quality of the warping machine are improved.
Patent Information
- Application Number
- CN202510771788.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-11
- Publication Date
- 2025-07-29
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
When the existing chemical fiber fabric warping machine is used, the flocculation accumulates inside the wire disk during the wire transmission process, and the cleaning and electrostatic removal of the wire disk cannot be integrated.
A warping machine for the production of chemical fiber cloth is designed, including a control system, a guide mechanism and a positioning component. Through the cooperation of the nozzle and the absorption cavity, the floc inside the wire disk is cleaned, and the movement of the special-shaped sleeve plate and rack is carried out to ensure that the anti-static liquid on the surface of the wire disk is continuously effective and the electrostatic removal function is achieved.
The internal cleaning and electrostatic removal of the wire disk are integrated, ensuring the cleaning and anti-static effect during the yarn transmission process, and improving the working efficiency and fabric quality of the warping machine.
Smart Images

Figure CN120384351A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of textile equipment, and more specifically, to a warping machine for chemical fiber fabric production and its usage method. Background Art
[0002] A warping machine is an important piece of equipment in the textile industry. It is mainly used to wind yarns from bobbins or cops onto a warp beam in an orderly manner, preparing for subsequent weaving processes (such as sizing, drawing-in, weaving, etc.). Its core function is to ensure that the warp yarns are evenly arranged, have consistent tension, and form a warp beam that meets the process requirements.
[0003] The functions of a warping machine can be summarized as: efficiently, evenly, and controllably preparing warp yarns for weaving, and its performance directly affects the fabric quality and production efficiency. With technological progress, modern warping machines are developing towards high speed, high precision, and intelligence, becoming one of the core equipment for textile enterprises to enhance their competitiveness.
[0004] Currently, when the existing chemical fiber fabric warping machine is in use, since the silk threads are always at the same height or in a certain area during transmission, and when the silk threads are driven by the guide disk, broken flocs will accumulate in the interior of the guide disk, resulting in the inability of the existing chemical fiber fabric warping machine to perform the functions of internal cleaning and anti-static of the guide disk. Therefore, an equipment is needed to improve the above problems. Summary of the Invention
[0005] In view of the problems in the prior art, the present invention provides a warping machine for chemical fiber fabric production and its usage method.
[0006] The technical solution adopted by the present invention to solve its technical problems is: a warping machine for chemical fiber fabric production and its usage method, including a control system. At the top end inside the control system, a warping cylinder is fixedly installed. At the top of the rear end of the control system, a guiding mechanism is fixedly installed. The guiding mechanism includes a guiding device and a positioning component. The guiding device is slidably sleeved on the top end of the positioning component. The guiding device includes an absorption cavity, a displacement bracket, a guide disk, a positioning bottom rod, a sleeve rod, and a nozzle. The sleeve rod is fixedly installed at the front and rear bottom ends of the guide disk. The positioning bottom rod is fixedly installed at the bottom end of the sleeve rod. The displacement bracket is slidably inserted at both ends of the guide disk. The absorption cavity is fixedly installed between the two displacement brackets and is located behind the guide disk. The nozzle is fixedly installed at the front end of the top of the guide disk.
[0007] Specifically, the positioning component includes a transmission device and a support device, and the transmission device is fixedly installed at the center of the top end of the support device.
[0008] Specifically, the transmission device includes a first rack, a hexagonal rod, a return spring, a support base plate, a displacement key, a photoelectric inductor, a support side frame, a support sleeve, a special-shaped sleeve plate, a support shaft, a roller path, a first piston rod, a support base frame, an L-shaped air cylinder, an extension base frame, and a second piston rod. The support sleeve is slidably installed at the top end of the support side frame. The displacement key is fixedly installed at the side end of the support sleeve. The photoelectric inductor is fixedly installed at the side end of the support side frame. The special-shaped sleeve plate is fixedly installed between the two displacement keys. The first piston rod is fixedly installed at the top end of the special-shaped sleeve plate. The L-shaped air cylinder is fixedly installed at the top end of the support base frame. The second piston rod is slidably inserted into the top end interior of the L-shaped air cylinder. The extension base frame is fixedly installed at the rear end of the special-shaped sleeve plate. The first rack is fixedly installed at the rear end of the extension base frame. The hexagonal rod is fixedly installed at the inner top end of the support base frame. The support base plate is fixedly installed at the bottom end of the hexagonal rod. The return spring is fixedly installed between the special-shaped sleeve plate and the support base plate. The support shaft is rotatably installed at the side end of the support sleeve. The roller path is slidably sleeved on the outer ring of the support shaft.
[0009] Specifically, the support device includes an alignment rod, a first round rod, a second round rod, a limiting rod, a support frame, a rotating disk, a driving motor, a second rack, an accumulation cavity, a transmission gear, a guiding vertical rod, and a connecting side plate. The driving motor is fixedly installed at the inner bottom end of the support frame. The rotating disk is fixedly installed at the top end of the driving motor. The alignment rod is fixedly installed at the top end of the rotating disk. The limiting rods are symmetrically fixedly installed at the top end of the support frame, and the limiting rods are located above the driving motor. The first round rod and the second round rod are rotatably installed at the rear of the top of the support frame, and the second round rod is located in front of the first round rod. The transmission gear is rotatably installed on both sides of the top of the support frame near the second round rod. The guiding vertical rod is fixedly installed on both sides of the top of the support frame near the transmission gear, and the guiding vertical rod is located behind the transmission gear. The connecting side plate is slidably sleeved on the outer ring of the guiding vertical rod. The second rack is fixedly installed at the front end of the connecting side plate. The accumulation cavity is fixedly installed between the two connecting side plates, and the accumulation cavity is located below the second round rod.
[0010] Specifically, the sleeve rod is slidably sleeved on the outer ring of the limiting rod. The alignment bottom rod is slidably sleeved on the outer ring of the alignment rod. The support base frame and the support side frame are respectively fixedly installed on both sides of the support frame, and the support side frame is located on both sides of the support base frame. The first rack meshes with the transmission gear.
[0011] Specifically, the second rack meshes with the transmission gear. The photoelectric inductor is vertically aligned with the displacement key. An activity groove adapted to the displacement key is formed inside the support sleeve. The interior of the L-shaped air cylinder is provided in a hollow state, and a sealed cavity is formed among the second piston rod, the L-shaped air cylinder, and the first piston rod.
[0012] Specifically, a square groove is formed at the bottom end of the alignment bottom rod. A key is fixedly installed at the center of the side end of the displacement bracket close to the wire reel, and clamping grooves are formed inside both ends of the wire reel. The side end of the support bottom plate close to the roller path is connected to both sides of the support frame.
[0013] Specifically, the nozzle is inclined at 45° and aligned with the wire reel. Both ends of the roller path are in contact with the two displacement brackets. Electromagnetic valves are installed on the top ends of both the absorption cavity and the nozzle, and the electromagnetic valves are electrically connected to the photoelectric sensors.
[0014] Specifically, the accumulation cavity further includes a connecting pipe and a diversion cavity. The connecting pipes are symmetrically and fixedly installed at the top of the rear end of the accumulation cavity, and the diversion cavity is fixedly installed at the top end of the connecting pipe away from the accumulation cavity.
[0015] A method for using a warping machine for chemical fiber cloth production, which includes the following steps:
[0016] S1. First, pass the yarn through the inside of the wire reel and connect it to the warping cylinder, and then operate the control system to drive the warping cylinder to rotate, so as to carry out the warping work of the yarn. At the same time, the driving motor can be turned on to drive the rotating disc to rotate, so that the alignment rod can drive the wire reel to swing back and forth, thereby assisting the yarn in warping;
[0017] S2. Then, when the wire reel moves to the edge position, it can contact the second piston rod, so as to squeeze the second piston rod into the inside of the L-shaped air cylinder, so that the first piston rod can drive the special-shaped sleeve plate to move downward. At this time, the roller path can press the yarn to move downward, so that the yarn deviates from the original position. And when the special-shaped sleeve plate moves downward, it can drive the absorption cavity to move downward to the original position of the yarn at the same time. At this time, the nozzle and the absorption cavity can carry out the work of jetting and absorbing at the same time, and can absorb and clean the broken flocs attached to the original position of the yarn;
[0018] S3. Finally, when the special-shaped sleeve plate moves downward, it can drive the transmission gear to rotate through the first rack, so that the transmission gear can drive the second rack to move upward, so that the accumulation cavity can move upward to contact the bottom end of the second round rod, so that the antistatic liquid inside the accumulation cavity can wet the sponge piece inside the second round rod. And when the return spring drives the special-shaped sleeve plate to reset, the accumulation cavity can be separated from the second round rod, and the roller path can no longer press the yarn, so that the yarn can return to the original position.
[0019] The beneficial effects of the present invention:
[0020] 1. In the present invention, the nozzle is cooperated with the absorption cavity, so that the shredded flocs inside the wire reel can be ejected and simultaneously absorbed and discharged by the absorption cavity. At the same time, when the wire reel moves left and right, it can contact the second piston rod, so that the special-shaped sleeve plate can move downward, and thus the roller path can squeeze the yarn inside the wire reel downward, so that the yarn inside the wire reel can descend. Moreover, by starting the nozzle and the absorption cavity in a fixed-point manner, when the roller path presses the yarn, the nozzle and the absorption cavity can be started, so that the yarn can be pressed downward to complete the cleaning work inside the wire reel.
[0021] 2. When the special-shaped sleeve plate moves downward in the present invention, it can drive the first rack to move downward, so that the first rack can drive the transmission gear to rotate, and thus the second rack moves upward. By connecting the second rack with the connecting side plate, the connecting side plate can drive the accumulation cavity to move upward, so that the antistatic liquid inside the accumulation cavity can contact the sponge sheet on the surface of the second round rod, ensuring that the sponge sheet always remains moist. Moreover, due to the elasticity of the return spring, it will drive the special-shaped sleeve plate to reset, so that the accumulation cavity can be separated from the second round rod to complete the integrated work of removing static electricity from the yarn. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] The present invention will be further described below with reference to the drawings and embodiments.
[0023] Figure 1 It is a front perspective three-dimensional structure schematic diagram of the main body in the present invention;
[0024] Figure 2 It is a front perspective three-dimensional structure schematic diagram of the wire feeding mechanism in the present invention;
[0025] Figure 3 It is a partial cross-sectional schematic diagram of the guiding device in the present invention;
[0026] Figure 4 It is a front perspective three-dimensional structure schematic diagram of the positioning component in the present invention;
[0027] Figure 5 It is a front perspective three-dimensional structure schematic diagram of the transmission device in the present invention;
[0028] Figure 6 It is a front perspective three-dimensional structure schematic diagram of the supporting device in the present invention;
[0029] Figure 7 In the present invention Figure 6 Local enlarged schematic diagram at A;
[0030] Figure 8 It is a front perspective three-dimensional structure schematic diagram of the second embodiment of the accumulation cavity in the present invention.
[0031] In the figure: 1 - feeding mechanism, 2 - warping cylinder, 3 - control system, 4 - guiding device, 5 - positioning component, 6 - absorption cavity, 7 - displacement bracket, 8 - wire reel, 9 - alignment bottom rod, 10 - sleeve rod, 11 - nozzle, 12 - transmission device, 13 - supporting device, 14 - first rack, 15 - hexagonal rod, 16 - return spring, 17 - supporting bottom plate, 18 - displacement key, 19 - photoelectric inductor, 20 - supporting side frame, 21 - supporting sleeve, 22 - special-shaped sleeve plate, 23 - supporting shaft, 24 - roller path, 25 - first piston rod, 26 - supporting base frame, 27 - L-shaped air cylinder, 28 - extended base frame, 29 - second piston rod, 30 - alignment rod, 31 - first round rod, 32 - second round rod, 33 - limiting rod, 34 - supporting frame, 35 - rotating disk, 36 - driving motor, 37 - second rack, 38 - accumulation cavity, 39 - transmission gear, 40 - guiding vertical rod, 41 - connecting side plate, 42 - diversion cavity, 43 - connecting pipe. Detailed implementation manners
[0032] In order to enable those skilled in the art of this technology to better understand the solution of this application, the technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings in the embodiments of this application. Obviously, the described embodiments are only a part of the embodiments of this application, rather than all the embodiments. Based on the embodiments in this application, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of this application.
[0033] The present invention will be further described below with reference to the accompanying drawings.
[0034] Embodiment 1
[0035] As Figure 1 、 Figure 2 and Figure 3 shown, a warping machine for chemical fiber cloth production and its use method according to the present invention include a control system 3. A warping cylinder 2 is fixedly installed at the inner top end of the control system 3, and a feeding mechanism 1 is fixedly installed at the top of the rear end of the control system 3. The feeding mechanism 1 includes a guiding device 4 and a positioning component 5. The guiding device 4 is slidably sleeved on the top end of the positioning component 5. The guiding device 4 includes an absorption cavity 6, a displacement bracket 7, a wire reel 8, an alignment bottom rod 9, a sleeve rod 10 and a nozzle 11. The sleeve rod 10 is fixedly installed at the front and rear bottom ends of the wire reel 8, the alignment bottom rod 9 is fixedly installed at the bottom end of the sleeve rod 10, the displacement bracket 7 is slidably inserted at both ends of the wire reel 8, the absorption cavity 6 is fixedly installed between the two displacement brackets 7, and the absorption cavity 6 is located behind the wire reel 8. The nozzle 11 is fixedly installed at the front end of the top of the wire reel 8.
[0036] As Figure 4, the positioning component 5 includes a transmission device 12 and a support device 13. The transmission device 12 is fixedly installed at the center of the top of the support device 13, and can support the transmission device 12 to work.
[0037] As Figure 5 , the transmission device 12 includes a first rack 14, a hexagonal rod 15, a return spring 16, a support bottom plate 17, a displacement key 18, a photoelectric inductor 19, a support side frame 20, a support sleeve 21, a special-shaped sleeve plate 22, a support shaft 23, a roller path 24, a first piston rod 25, a support base frame 26, an L-shaped air cylinder 27, an extension base frame 28 and a second piston rod 29. The support sleeve 21 is slidably installed at the top of the support side frame 20. The displacement key 18 is fixedly installed at the side end of the support sleeve 21. The photoelectric inductor 19 is fixedly installed at the side end of the support side frame 20. The special-shaped sleeve plate 22 is fixedly installed between the two displacement keys 18. The first piston rod 25 is fixedly installed at the top of the special-shaped sleeve plate 22. The L-shaped air cylinder 27 is fixedly installed at the top of the support base frame 26. The second piston rod 29 is slidably inserted into the top interior of the L-shaped air cylinder 27. The extension base frame 28 is fixedly installed at the rear end of the special-shaped sleeve plate 22. The first rack 14 is fixedly installed at the rear end of the extension base frame 28. The hexagonal rod 15 is fixedly installed at the inner top of the support base frame 26. The support bottom plate 17 is fixedly installed at the bottom end of the hexagonal rod 15. The return spring 16 is fixedly installed between the special-shaped sleeve plate 22 and the support bottom plate 17. The support shaft 23 is rotatably installed at the side end of the support sleeve 21. The roller path 24 is slidably sleeved on the outer ring of the support shaft 23. By aligning the roller path 24 with the wire reel 8, the roller path 24 can accurately press the yarn to displace downward.
[0038] As Figure 6 and Figure 7, the supporting device 13 includes an alignment rod 30, a first round rod 31, a second round rod 32, a limiting rod 33, a support frame 34, a rotating disk 35, a driving motor 36, a second rack 37, an accumulation cavity 38, a transmission gear 39, a guiding vertical rod 40 and a connecting side plate 41. The driving motor 36 is fixedly installed at the inner bottom end of the support frame 34, the rotating disk 35 is fixedly installed at the top end of the driving motor 36, the alignment rod 30 is fixedly installed at the top end of the rotating disk 35, the limiting rods 33 are symmetrically and fixedly installed at the top end of the support frame 34, and the limiting rods 33 are located above the driving motor 36. The first round rod 31 and the second round rod 32 are rotatably installed at the rear of the top of the support frame 34, and the second round rod 32 is located in front of the first round rod 31. The transmission gear 39 is rotatably installed on both sides of the top of the support frame 34 near the second round rod 32. The guiding vertical rod 40 is fixedly installed on both sides of the top of the support frame 34 near the transmission gear 39, and the guiding vertical rod 40 is located behind the transmission gear 39. The connecting side plate 41 is slidably sleeved on the outer circle of the guiding vertical rod 40. The second rack 37 is fixedly installed at the front end of the connecting side plate 41. The accumulation cavity 38 is fixedly installed between the two connecting side plates 41, and the accumulation cavity 38 is located below the second round rod 32. By sleeving the sleeve rod 10 slidably on the outer circle of the limiting rod 33, it can ensure that the wire reel 8 moves left and right in a straight line.
[0039] The sleeve rod 10 is slidably sleeved on the outer circle of the limiting rod 33, the alignment bottom rod 9 is slidably sleeved on the outer circle of the alignment rod 30. The support base frame 26 and the support side frame 20 are respectively fixedly installed on both sides of the support frame 34, and the support side frame 20 is located on both sides of the support base frame 26. The first rack 14 meshes with the transmission gear 39, the second rack 37 meshes with the transmission gear 39. The photoelectric inductor 19 is vertically aligned with the displacement key 18. An activity groove adapted to the displacement key 18 is formed inside the support sleeve 21. The inside of the L-shaped air cylinder 27 is provided in a hollow state, and a sealed cavity is formed among the second piston rod 29, the L-shaped air cylinder 27 and the first piston rod 25. A square groove is formed at the bottom end of the alignment bottom rod 9. A key is fixedly installed at the center of the side end of the displacement bracket 7 close to the wire reel 8, and clamping grooves are formed inside both ends of the wire reel 8. The side end of the support bottom plate 17 close to the roller path 24 is connected to both sides of the support frame 34. The nozzle 11 is inclined at 45° and aligned with the wire reel 8. Both ends of the roller path 24 are in contact with the two displacement brackets 7. Electromagnetic valves are installed on the top ends of the absorption cavity 6 and the nozzle 11, and the electromagnetic valves are electrically connected to the photoelectric inductor 19.
[0040] A method for using a warping machine for chemical fiber cloth production, which includes the following steps:
[0041] S1. First, connect the yarn to the warping cylinder 2 through the inside of the wire guide disc 8, and then operate the control system 3 to drive the warping cylinder 2 to rotate, so that the warping work of the yarn can be carried out. At the same time, the driving motor 36 can be turned on to drive the rotating disc 35 to rotate, so that the alignment rod 30 can drive the wire guide disc 8 to swing back and forth, thereby assisting the yarn in warping;
[0042] S2. After that, when the wire guide disc 8 moves to the edge position, it can contact the second piston rod 29, so that the second piston rod 29 can be squeezed into the inside of the L-shaped air cylinder 27, so that the first piston rod 25 can drive the special-shaped sleeve plate 22 to move downward. At this time, the roller path 24 can press the yarn to move downward, so that the yarn deviates from the original position. Moreover, when the special-shaped sleeve plate 22 moves downward, it can drive the absorption cavity 6 to move downward to the original position of the yarn at the same time. At this time, the nozzle 11 and the absorption cavity 6 can perform the work of jetting and absorption synchronously, and the flocs attached to the original position of the yarn can be absorbed and cleaned;
[0043] S3. Finally, when the special-shaped sleeve plate 22 moves downward, it can drive the transmission gear 39 to rotate through the first rack 14, so that the transmission gear 39 can drive the second rack 37 to move upward. Thus, the accumulation cavity 38 can move upward to contact the bottom end of the second round rod 32, so that the anti-static liquid inside the accumulation cavity 38 can wet the sponge piece inside the second round rod 32. And when the return spring 16 drives the special-shaped sleeve plate 22 to reset, the accumulation cavity 38 can be separated from the second round rod 32, and the roller path 24 can no longer press the yarn, so that the yarn can return to the original position.
[0044] The working principle of Embodiment 1 is as follows: When in use, first pass the external chemical fiber yarn through the bottom end of the first round rod 31, then pass the chemical fiber yarn through the top end of the second round rod 32, and then pass through the inside of the wire guiding disc 8 and fix it to the warping cylinder 2. Then, operate the control system 3 to drive the warping cylinder 2 to rotate. Thus, the warping cylinder 2 can warp the chemical fiber yarn. At the same time, the driving motor 36 can be started to drive the rotating disc 35 to rotate. By sliding and inserting the alignment rod 30 into the square groove inside the bottom end of the alignment bottom rod 9, when the driving motor 36 drives the alignment rod 30 to rotate, the wire guiding disc 8 can be driven to move left and right inside the support frame 34. By sliding and sleeving the sleeve rod 10 on the limiting rod 33, the wire guiding disc 8 can be supported to move linearly. Subsequently, when the wire guiding disc 8 moves to contact the second piston rod 29, the second piston rod 29 can be extruded into the inside of the L-shaped air cylinder 27, so that the first piston rod 25 can drive the special-shaped sleeve plate 22 to move downward. At this time, when the special-shaped sleeve plate 22 moves downward, the displacement key 18, the support shaft 23 and the support sleeve 21 can be driven to move downward simultaneously. When the support shaft 23 moves downward, the roller path 24 can be driven to move downward. By sliding and sleeving the front and rear ends of the displacement support 7 on the support shaft 23, when the support shaft 23 moves downward, the displacement support 7 and the support shaft 23 can be driven to move downward simultaneously, so that the roller path 24 can press the chemical fiber yarn inside the wire guiding disc 8 to move downward, so that the chemical fiber yarn can be separated from the original position. At the same time, when the first piston rod 25 moves downward to the limit position, the absorption cavity 6 can be driven to move downward to the original position of the chemical fiber yarn. And the displacement key 18 can contact the photoelectric sensor 19. The nozzle 11 is connected to the outside trachea through the electromagnetic valve above the absorption cavity 6, and the electromagnetic valve on the nozzle 11 and the absorption cavity 6 is electrically connected to the photoelectric sensor 19. When the photoelectric sensor 19 is triggered, the nozzle 11 and the absorption cavity 6 can be started. Thus, the nozzle 11 can blow out the broken flocs at the original position of the chemical fiber yarn from the inside of the wire guiding disc 8, and the absorption cavity 6 can absorb the fallen broken flocs in time, completing the work of cleaning the inside of the wire guiding disc 8 without stopping the machine. At the same time, when the special-shaped sleeve plate 22 moves downward, the first rack 14 can also be driven to move downward. By meshing the first rack 14 with the transmission gear 39, when the first rack 14 moves downward along the surface of the transmission gear 39, the second rack 37 can be driven to move upward. When the second rack 37 moves upward, the connecting side plate 41 and the accumulation cavity 38 can be driven to move upward. Thus, the anti-static liquid inside the accumulation cavity 38 can contact the sponge piece on the surface of the second round rod 32, so as to ensure that the sponge piece on the surface of the second round rod 32 is always in a wet state. When the chemical fiber yarn passes through the top surface of the second round rod 32, it can contact the sponge piece on the surface of the second round rod 32, so that the sponge piece can immerse a small amount of anti-static liquid into the chemical fiber yarn, effectively reducing the probability of generating static electricity when the chemical fiber yarn is processed subsequently. Subsequently, when the alignment rod 30 drives the alignment bottom rod 9 to move in the reverse direction,The wire reel 8 can be disengaged from the second piston rod 29. At this time, the elastic force of the return spring 16 will drive the special-shaped sleeve plate 22 to move upward and reset, so that the roller path 24 no longer presses on the chemical fiber yarn. Thus, the chemical fiber yarn returns to its original position. At the same time, when the special-shaped sleeve plate 22 moves upward and resets, the first rack 14 can synchronously move upward, so that the transmission gear 39 can be driven to rotate reversely. Thus, the second rack 37 can move downward, so that the accumulation cavity 38 can move downward and reset. By sliding the connecting side plate 41 on the outer circle of the guiding vertical rod 40, the accumulation cavity 38 can be supported to move up and down linearly, improving the docking accuracy between the accumulation cavity 38 and the second round rod 32, and completing the work of cleaning the inside of the wire reel 8 and removing static electricity from the chemical fiber yarn.
[0045] Embodiment 2
[0046] On the basis of Embodiment 1, as Figure 8 shown, the accumulation cavity 38 further includes a connecting pipe 43 and a diversion cavity 42. The connecting pipe 43 is symmetrically and fixedly installed at the top of the rear end of the accumulation cavity 38, and the diversion cavity 42 is fixedly installed at the top end of the connecting pipe 43 away from the accumulation cavity 38.
[0047] When implementing this embodiment, through the interconnection of the connecting pipe 43 with the diversion cavity 42 and the accumulation cavity 38, when the amount of the anti-static liquid inside the accumulation cavity 38 is too small, the anti-static liquid can be added to the inside of the diversion cavity 42, so that the anti-static liquid can be added to the inside of the accumulation cavity 38 through the connecting pipe 43, completing the work of replenishing the anti-static liquid inside the accumulation cavity 38.
[0048] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirits of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A warping machine for producing chemical fiber cloth, including a control system (3). At the inner top of the control system (3), a warping cylinder (2) is fixedly installed. At the top of the rear end of the control system (3), a guiding and feeding mechanism (1) is fixedly installed. It is characterized in that: The feeding mechanism (1) includes a guiding device (4) and a positioning member (5). The guiding device (4) is slidably sleeved on the top end of the positioning member (5). The guiding device (4) includes an absorption cavity (6), a displacement bracket (7), a wire reel (8), a positioning bottom rod (9), a sleeve rod (10), and a nozzle (11). The sleeve rod (10) is fixedly installed at the front and rear bottom ends of the wire reel (8). The positioning bottom rod (9) is fixedly installed at the bottom end of the sleeve rod (10). The displacement bracket (7) is slidably inserted at both ends of the wire reel (8). The absorption cavity (6) is fixedly installed between the two displacement brackets (7), and the absorption cavity (6) is located behind the wire reel (8). The nozzle (11) is fixedly installed at the front end of the top of the wire reel (8).
2. The warping machine for chemical fiber cloth production according to claim 1, characterized in that: The positioning member (5) includes a transmission device (12) and a support device (13). The transmission device (12) is fixedly installed at the center of the top end of the support device (13).
3. The warping machine for chemical fiber cloth production according to claim 2, characterized in that: The transmission device (12) includes a first rack (14), a hexagonal rod (15), a return spring (16), a support bottom plate (17), a displacement key (18), a photoelectric inductor (19), a support side frame (20), a support sleeve (21), a special-shaped sleeve plate (22), a support shaft (23), a roller path (24), a first piston rod (25), a support base frame (26), an L-shaped air cylinder (27), an extension base frame (28), and a second piston rod (29). The support sleeve (21) is slidably installed at the top end of the support side frame (20). The displacement key (18) is fixedly installed at the side end of the support sleeve (21). The photoelectric inductor (19) is fixedly installed at the side end of the support side frame (20). The special-shaped sleeve plate (22) is fixedly installed between the two displacement keys (18). The first piston rod (25) is fixedly installed at the top end of the special-shaped sleeve plate (22). The L-shaped air cylinder (27) is fixedly installed at the top end of the support base frame (26). The second piston rod (29) is slidably inserted into the top end interior of the L-shaped air cylinder (27). The extension base frame (28) is fixedly installed at the rear end of the special-shaped sleeve plate (22). The first rack (14) is fixedly installed at the rear end of the extension base frame (28). The hexagonal rod (15) is fixedly installed at the inner top end of the support base frame (26). The support bottom plate (17) is fixedly installed at the bottom end of the hexagonal rod (15). The return spring (16) is fixedly installed between the special-shaped sleeve plate (22) and the support bottom plate (17). The support shaft (23) is rotatably installed at the side end of the support sleeve (21). The roller path (24) is slidably sleeved on the outer ring of the support shaft (23).
4. The warping machine for chemical fiber cloth production according to claim 3, characterized in that: The support device (13) includes an alignment rod (30), a first round rod (31), a second round rod (32), a limiting rod (33), a support frame (34), a rotating disk (35), a driving motor (36), a second rack (37), an accumulation cavity (38), a transmission gear (39), a guiding vertical rod (40), and a connecting side plate (41). The driving motor (36) is fixedly installed at the inner bottom end of the support frame (34). The rotating disk (35) is fixedly installed at the top of the driving motor (36). The alignment rod (30) is fixedly installed at the top of the rotating disk (35). The limiting rods (33) are symmetrically and fixedly installed at the top of the support frame (34), and the limiting rods (33) are located above the driving motor (36). The first round rod (31) and the second round rod (32) are rotatably installed at the rear of the top of the support frame (34), and the second round rod (32) is located in front of the first round rod (31). The transmission gear (39) is rotatably installed on both sides of the top of the support frame (34) near the second round rod (32). The guiding vertical rods (40) are fixedly installed on both sides of the top of the support frame (34) near the transmission gear (39), and the guiding vertical rods (40) are located behind the transmission gear (39). The connecting side plate (41) is slidably sleeved on the outer circle of the guiding vertical rod (40). The second rack (37) is fixedly installed at the front end of the connecting side plate (41). The accumulation cavity (38) is fixedly installed between the two connecting side plates (41), and the accumulation cavity (38) is located below the second round rod (32).
5. The warping machine for chemical fiber cloth production according to claim 4, characterized in that: The sleeve rod (10) is slidably sleeved on the outer circle of the limiting rod (33). The alignment bottom rod (9) is slidably sleeved on the outer circle of the alignment rod (30). The support base frame (26) and the support side frame (20) are respectively fixedly installed on both sides of the support frame (34), and the support side frame (20) is located on both sides of the support base frame (26). The first rack (14) meshes with the transmission gear (39).
6. The warping machine for chemical fiber cloth production according to claim 5, characterized in that: The second rack (37) meshes with the transmission gear (39). The photoelectric inductor (19) is vertically aligned with the displacement key (18). An activity groove adapted to the displacement key (18) is formed inside the support sleeve (21). The inside of the L-shaped air cylinder (27) is provided in a hollow state, and a sealed cavity is formed among the second piston rod (29), the L-shaped air cylinder (27), and the first piston rod (25).
7. The warping machine for chemical fiber cloth production according to claim 6, characterized in that: A square groove is formed at the bottom end of the alignment bottom rod (9). A key is fixedly installed at the center of the side end of the displacement bracket (7) close to the wire reel (8), and clamping grooves are formed inside both ends of the wire reel (8). The side end of the support bottom plate (17) close to the roller path (24) is connected to both sides of the support frame (34).
8. The warping machine for chemical fiber cloth production according to claim 7, characterized in that: The nozzle (11) is inclined at 45° and aligned with the wire reel (8). Both ends of the roller path (24) are in contact with the two displacement brackets (7). Electromagnetic valves are installed on the top ends of the absorption cavity (6) and the nozzle (11), and the electromagnetic valves are electrically connected to the photoelectric inductor (19).
9. The warping machine for chemical fiber cloth production according to claim 8, characterized in that: The accumulation cavity (38) further includes a connecting pipe (43) and a diversion cavity (42). The connecting pipe (43) is symmetrically and fixedly installed at the top of the rear end of the accumulation cavity (38), and the diversion cavity (42) is fixedly installed at the top end of the connecting pipe (43) away from the accumulation cavity (38).
10. A method for using a warping machine for producing chemical fiber cloth, which uses the warping machine for producing chemical fiber cloth described in claim 9, and is characterized in that, It includes the following steps: S1. First, pass the yarn through the inside of the wire reel (8) and connect it to the warping cylinder (2). Then, operate the control system (3) to drive the warping cylinder (2) to rotate, so as to carry out the warping work of the yarn. At the same time, the driving motor (36) can be turned on to drive the rotating disk (35) to rotate, so that the alignment rod (30) can drive the wire reel (8) to swing back and forth, thereby assisting the yarn in warping; S2. Then, when the wire reel (8) is displaced to the edge position, it can contact the second piston rod (29), so as to squeeze the second piston rod (29) into the inside of the L-shaped air cylinder (27), so that the first piston rod (25) can drive the special-shaped sleeve plate (22) to move downward. At this time, the roller path (24) can press the yarn to move downward, so that the yarn deviates from the original position. Moreover, when the special-shaped sleeve plate (22) moves downward, it can drive the absorption cavity (6) to move downward to the original position of the yarn at the same time. At this time, the nozzle (11) and the absorption cavity (6) can perform the work of jetting and absorbing synchronously, and the broken flocs attached to the original position of the yarn can be absorbed and cleaned; S3. Finally, when the special-shaped sleeve plate (22) moves downward, it can drive the transmission gear (39) to rotate through the first rack (14), so that the transmission gear (39) can drive the second rack (37) to move upward. Thus, the accumulation cavity (38) can move upward to contact the bottom end of the second round rod (32), so that the antistatic liquid inside the accumulation cavity (38) can wet the sponge sheet inside the second round rod (32). Moreover, when the return spring (16) drives the special-shaped sleeve plate (22) to reset, the accumulation cavity (38) can be separated from the second round rod (32), and the roller path (24) can no longer press the yarn, so that the yarn can return to the original position.