A false twist texturing machine
By introducing end plates, scrapers, and separation cylinders into the false twisting texturing machine, the problem of cooling tank blockage was solved, achieving circulating cooling of the coolant and separation of impurities, thus ensuring the cooling effect of the yarn.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- JIANGSU XINGKE TEXTILE TECH CO LTD
- Filing Date
- 2023-11-27
- Publication Date
- 2026-06-02
AI Technical Summary
The cooling tanks of existing false twist texturing machines are easily clogged by powder and impurities generated by yarn friction, affecting the cooling effect.
A false-twist texturing machine was designed, comprising an end plate, a scraper, a nozzle, and a separating cylinder. A piston block drives the coolant to move, the scraper removes dust, the separating cylinder separates impurities, and the nozzle sprays out coolant, thereby achieving the circulation and cooling of the coolant and the separation of impurities, and preventing clogging.
It effectively cleans impurities and dust from the cooling cylinder, ensures the circulation and cooling of the coolant, prevents blockage of the cooling tank, and guarantees the cooling effect of the wire.
Smart Images

Figure CN117385511B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of false twisting technology for yarns, specifically to a false twisting machine. Background Technology
[0002] Existing false-twist texturing machines have cooling devices equipped with cooling elements featuring cooling tanks. The cooling tank is connected to the outlet of a metering component via a delivery pipe, and the inlet of the metering component is connected to a coolant source via a delivery pipe. Coolant is delivered from the coolant source to the cooling tank by the metering device. The coolant enters the cooling tank through a coolant inlet at the bottom of the tank. The yarn enters the cooling tank through the yarn inlet and advances past the coolant inlet. Depending on the type of yarn, the coolant is supplied at a rate of 0.05 ml / min to 5 ml / min. Due to powder generated from friction between the yarn and the ceramic component after heating, and dust and thread ends adhering to the outer surface of the yarn, these impurities and powder flow with the coolant and adhere to the surface of the cooling tank, causing blockage and affecting the false-twist texturing of the yarn. Summary of the Invention
[0003] To address the shortcomings of existing technologies, this invention provides a false-twist texturing machine, which solves the problems mentioned in the background section.
[0004] To achieve the above objectives, the present invention provides the following technical solution: a false-twist texturing machine, comprising a base plate, a working box fixedly connected to the top of the base plate, a cooling cylinder fixedly connected inside the working box, a piston block slidably connected inside the cooling cylinder, a second sealing sleeve embedded in the center of the piston block, inlets on both sides of the cooling cylinder, cleaning cylinders installed on both sides of the piston block, cleaning grooves inside the cleaning cylinders, annular grooves inside the cleaning cylinders and located inside the cleaning grooves, a first rotating rod rotatably connected to one side of the inner cavity of each annular groove, a first transmission gear sleeved on the outer side of each first rotating rod, and a gear ring slidably connected inside each annular groove. Each of the gear rings is fixedly connected to a connecting block on one side. One end of each connecting block extends into the cleaning groove and is fitted with a first sealing sleeve. A scraper is installed inside each of the first sealing sleeves. Two push rods are installed at one end of each cleaning cylinder. One end of each push rod extends into the outside of the cooling cylinder. First drive boxes are fixedly connected to both sides of the cooling cylinder. Threaded rods are rotatably connected inside each of the first drive boxes. Push blocks are threadedly connected to the outside of each threaded rod. One end of each push block extends into the cooling cylinder and is fitted with an end plate. A suction head is embedded on one side of each end plate. A knife groove is opened on one side of each end plate at the scraper position. A heating device is installed inside the working box at the front end of the cooling cylinder.
[0005] Optionally, two fixed blocks are fixedly connected inside the working box, and a second lead screw is rotatably connected between the two fixed blocks. A first servo motor is fixedly connected to one side of one of the fixed blocks. The output end of the first servo motor is connected to one end of the second lead screw. A moving plate is threaded to the outer side of the second lead screw. A first push plate is provided at the bottom of the moving plate and on both sides of the cooling cylinder. A through hole is opened on one side of each of the first push plates. One end of each push rod is connected to one side of the first push plate. A second servo motor is fixedly connected to one side of each of the first push plates. The output end of each of the second servo motors is connected to one end of the first rotating rod.
[0006] Optionally, two first pumps are installed inside the working box and below the cooling cylinder. Each first pump has a flow control valve at one end and is connected to one end of an end plate via the flow control valve. A second pump is installed inside the working box and to one side of each first pump. A first winding box is fixedly connected to one side of each first push plate. A winding roller is rotatably connected inside each first winding box. A first flexible hose is wound around the outside of each winding roller, and a connecting pipe is installed inside each winding roller. One end of each first flexible hose is connected to one end of the connecting pipe. A rotary joint is installed on one side of the first winding box, and the other end of each connecting pipe is connected to one end of the rotary joint. A fixed pipe is installed on the other end of the rotary joint. Two annular air chambers are opened inside the piston block. Nozzles are embedded on both sides of the piston block. The nozzles are connected to the inside of the scraper. One end of the fixed pipe extends into the annular air chamber. A spring is installed on one side of the inner cavity of the first winding box. One end of each winding roller is connected to the spring. One end of each first hose extends to the outside of the first winding box and is connected to one end of the second pump.
[0007] Optionally, a separation box is fixedly connected to the top of each base plate, a separation cylinder is rotatably connected to one side of the inner cavity of each separation box, a second winding box is fixedly connected to one side of each separation box, a collection drawer is placed inside each of the second winding boxes, a threaded shaft is rotatably connected to one side of each separation box, a push column is threadedly connected to the outer side of each threaded shaft, one end of each push column extends into the interior of the separation cylinder and is fitted with a second push plate, one side of each push column extends into the side of the separation box, a stopper is installed on the side of each push column near the second winding box, one end of each stopper extends into the interior of the second winding box, one end of each stopper is inserted into the interior of the separation cylinder, a plurality of filter holes are opened on the surface of each separation cylinder, and a second flexible hose is installed at the other end of each of the first pumps, one end of each second flexible hose extends to the outer side of the second push plate.
[0008] Optionally, a connecting box is fixedly connected to the top of each separation box, and a third rotating rod is rotatably connected inside each connecting box. A second transmission gear is sleeved on the outer side of each third rotating rod, and the bottom end of each second transmission gear extends into the separation box. A third transmission gear meshing with the second transmission gear is sleeved on the outer side of each separation cylinder. One end of each third rotating rod extends into the outer side of the connecting box. A second drive box is installed inside the working box and on one side of the second pump. One end of each third rotating rod extends into the second drive box and is sleeved with several fan blades. One end of each second pump extends into the second drive box.
[0009] Optionally, a third pump is installed inside the base plate and on one side of the second winding box, and a cooling device is installed on the top of the base plate and on one side of the second winding box. One end of the third pump extends into the cooling device, and the other end of the third pump extends into the separation box.
[0010] Optionally, a connecting rod is rotatably connected inside the working box and on both sides of the cooling cylinder. A second bevel gear meshing with the outer side of the connecting rod and the threaded shaft is sleeved on both the working box and on one side of the first drive box. A second rotating rod is rotatably connected inside the working box and on one side of the first drive box. One end of the threaded rod extends to the outer side of the first drive box. A first bevel gear meshing with the outer side of the second rotating rod and the threaded rod is sleeved on both the second rotating rod and the outer side of the threaded rod.
[0011] Optionally, a linkage box is fixedly connected to one side of the working box. Two third servo motors are installed at the top of the inner cavity of the linkage box. A first lead screw is rotatably connected to the bottom of the inner cavity of the linkage box and below the third servo motors. The output end of each of the third servo motors is connected to the top of the first lead screw. A slider is threaded to the outer side of each first lead screw. The slider is slidably connected to the inner cavity of the linkage box. A rack is installed at one end of each slider. One end of the second rotating rod and the connecting rod extends into the inner cavity of the linkage box. A first connecting rod is rotatably connected to the inner cavity of the linkage box and to the side of the second rotating rod. A first pulley connected by a belt drive is sleeved on the outer side of both the first connecting rod and the second rotating rod. A fourth transmission gear that cooperates with the rack is sleeved on the outer side of both the first connecting rod and the first connecting rod. A second connecting rod is rotatably connected to the inner cavity of the linkage box and below the first connecting rod. A second pulley connected by a belt drive is sleeved on the outer side of both the second connecting rod and the connecting rod. A fifth transmission gear that cooperates with the rack is sleeved on the outer side of both the second connecting rod and the first connecting rod.
[0012] This invention provides a false-twist texturing machine, which has the following beneficial effects:
[0013] 1. This false-twist texturing machine, equipped with an end plate, scraper, and nozzle, can push the coolant inside the cooling cylinder towards the suction head via a piston block, thereby discharging impurities and dust from inside the cooling cylinder. Simultaneously, it circulates and cools the coolant inside the cooling cylinder to ensure effective cooling of the yarn being transported within. When the cleaning cylinder reaches the end, the first servo motor stops working for a period of time. At this time, the output of the second servo motor drives the first rotating rod to rotate, causing the first rotating rod to drive the gear ring to move circumferentially via the first transmission gear. This causes the gear ring to drive the scraper to move circumferentially via the connecting block and the first sealing sleeve, thereby scraping off dust and impurities from the surface of the piston block and the end plate. Then, the end plate moves, discharging the coolant between the end plate and the piston block through the suction head, thus cleaning the inner cavity of the cooling cylinder and preventing blockage.
[0014] 2. This false-twist texturing machine, equipped with a separating cylinder, a second push plate, and a second transmission gear, allows coolant to flow from the second drive box into the second pump. The coolant moves via fan blades, which in turn drive a third rotating rod. This third rotating rod, through the second transmission gear, drives the third transmission gear to rotate, causing the separating cylinder to rotate. This forces the coolant through filter holes into the separating box, separating it from impurities and dust. When the second pump is shut off, the coolant between the piston block and the end plate is discharged into the separating cylinder for filtration. The slider moves the rack, which, through the fifth transmission gear, drives the second connecting rod to rotate. This, through the second pulley, drives the connecting rod to rotate, which in turn drives the threaded shaft through the second bevel gear. This causes the pusher to push the second push plate and the stopper to move, opening one end of the separating cylinder. The second push plate then pushes the impurities and dust separated inside the separating cylinder into the second winding box, where they fall into the collection drawer for easy cleaning. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the internal structure of the present invention;
[0016] Figure 2 This is a schematic diagram of the internal structure of the linkage box of the present invention;
[0017] Figure 3 This is a schematic diagram of the internal structure of the winding box of the present invention;
[0018] Figure 4 This is a schematic diagram of the outer structure of the second winding box of the present invention;
[0019] Figure 5 This is a side sectional view of the cooling cylinder structure of the present invention;
[0020] Figure 6 This is a side view of the end plate structure of the present invention;
[0021] Figure 7 For the present invention Figure 1 Enlarged view of point A;
[0022] Figure 8 For the present invention Figure 1 Enlarged view of point B;
[0023] Figure 9 For the present invention Figure 1 Enlarged view of point C.
[0024] In the diagram: 1. Base plate; 2. Heating device; 3. Cooling cylinder; 4. Fixing block; 5. First servo motor; 6. Moving plate; 7. First push plate; 8. Through hole; 9. Push rod; 10. Piston block; 11. Cleaning cylinder; 12. Annular groove; 13. First rotating rod; 14. First transmission gear; 15. Gear ring; 16. Connecting block; 17. First sealing sleeve; 18. Scraper; 19. Annular air chamber; 20. Nozzle; 21. Second servo motor; 23. First drive box; 24. Threaded rod; 25. Push block; 26. Second rotating rod; 27. First bevel gear; 28. Suction head; 29. First pump; 30. End plate; 32. Knife groove; 33. First winding box; 34. Winding roller; 35. First hose; 36. Spring; 37. Connecting pipe; 38. Rotary joint; 39. Separation box; 40. Separator 41. Cylinder; 42. Filter hole; 43. Second winding box; 44. Collection drawer; 45. Threaded shaft; 46. Connecting rod; 47. Second bevel gear; 48. Push column; 59. Second push plate; 50. Second pump; 51. Second drive box; 52. Connecting box; 53. Third rotating rod; 54. Second transmission gear; 55. Third transmission gear; 56. Linkage box; 57. Third servo motor; 58. First lead screw; 59. Slider; 60. Rack; 61. First connecting rod; 62. First pulley; 63. Fourth transmission gear; 64. Second connecting rod; 65. Second pulley; 66. Fifth transmission gear; 67. Working box; 68. Fan blade; 69. Plug; 70. Second sealing sleeve; 71. Second hose; 72. Second lead screw; 73. Third pump; 74. Cooling device; 75. Fixed pipe. Detailed Implementation
[0025] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0026] Example 1
[0027] Please see Figure 1 , Figure 3 , Figures 4 to 9This invention provides a technical solution: a false-twist texturing machine, including a base plate 1, a working box 67 fixedly connected to the top of the base plate 1, a cooling cylinder 3 fixedly connected inside the working box 67, a piston block 10 slidably connected inside the cooling cylinder 3, a second sealing sleeve 70 embedded in the middle of the piston block 10, inlets on both sides of the cooling cylinder 3, cleaning cylinders 11 installed on both sides of the piston block 10, cleaning grooves opened inside the cleaning cylinders 11, annular grooves 12 opened inside the cleaning cylinders 11 and located inside the cleaning grooves, a first rotating rod 13 rotatably connected to one side of the inner cavity of the annular groove 12, a first transmission gear 14 sleeved on the outer side of the first rotating rod 13, a gear ring 15 slidably connected inside the annular groove 12, a connecting block 16 fixedly connected to one side of the gear ring 15, and one end of the connecting block 16 extending... A first sealing sleeve 17 is installed inside the cleaning tank. A scraper 18 is installed on the inner side of the first sealing sleeve 17. Two push rods 9 are installed at one end of the cleaning cylinder 11. One end of the push rod 9 extends to the outside of the cooling cylinder 3. A first drive box 23 is fixedly connected to both sides of the cooling cylinder 3. A threaded rod 24 is rotatably connected inside the first drive box 23. A push block 25 is threadedly connected to the outside of the threaded rod 24. One end of the push block 25 extends into the cooling cylinder 3 and is installed with an end plate 30. A suction head 28 is embedded on one side of the end plate 30. A knife groove 32 is opened on one side of the end plate 30 at the position of the scraper 18. A heating device 2 is installed inside the working box 67 at the front end of the cooling cylinder 3. When the end plate 30 moves, the scraper 18 can be embedded into the knife groove 32, so that the end plate 30 can move.
[0028] The working box 67 has two fixed blocks 4 fixedly connected inside, and a second lead screw 72 is rotatably connected between the two fixed blocks 4. A first servo motor 5 is fixedly connected to one side of one fixed block 4. The output end of the first servo motor 5 is connected to one end of the second lead screw 72. A moving plate 6 is threadedly connected to the outside of the second lead screw 72. A first push plate 7 is provided at the bottom of the moving plate 6 and on both sides of the cooling cylinder 3. A through hole 8 is opened on one side of the first push plate 7. One end of the push rod 9 is connected to one side of the first push plate 7. A second servo motor 21 is fixedly connected to one side of the first push plate 7. The output end of the second servo motor 21 is connected to one end of the first rotating rod 13. The output end of the second servo motor 21 drives the first rotating rod 13 to rotate, which can drive the first sealing sleeve 17 to drive the scraper 18 to move in a circle, scraping off the impurities and dust on the surface of the piston block 10 and the end plate 30.
[0029] Inside the working box 67, below the cooling cylinder 3, are two first pumps 29. A flow control valve is installed at one end of each first pump 29, and both pumps 29 are connected to one end of the end plate 30 via the flow control valve. Inside the working box 67, to one side of each first pump 29, is a second pump 50. A first take-up box 33 is fixedly connected to one side of each first push plate 7. A take-up roller 34 is rotatably connected inside each first take-up box 33. A first flexible hose 35 is wound around the outside of each take-up roller 34. A connecting pipe 37 is installed inside each take-up roller 34, and one end of each first flexible hose 35 is connected to one end of each connecting pipe 37. A rotary joint 38 is installed on one side of each first take-up box 33, and the other end of each connecting pipe 37 is connected to the rotary joint. One end of the head 38 is connected, and the other end of the rotary joint 38 is equipped with a fixed tube 75. Two annular air chambers 19 are opened inside the piston block 10. Both sides of the piston block 10 are inlaid with nozzles 20, and the nozzles 20 are connected to the inside of the scraper 18. One end of the fixed tube 75 extends into the annular air chamber 19. A spring 36 is installed on one side of the inner cavity of the first winding box 33. One end of the winding roller 34 is connected to the spring 36. One end of the first hose 35 extends to the outside of the first winding box 33 and is connected to one end of the second pump 50. When the first push plate 7 moves, it pulls the first hose 35 out from the outside of the winding roller 34, or the spring 36 drives the winding roller 34 to reset and rotate, and winds up the excess first hose 35.
[0030] The bottom plate 1 is fixedly connected to the top of a separation box 39. A separation cylinder 40 is rotatably connected to one side of the inner cavity of the separation box 39. A second winding box 42 is fixedly connected to one side of the separation box 39. A collection drawer 43 is placed inside the second winding box 42. A threaded shaft 44 is rotatably connected to one side of the separation box 39. A pusher 47 is threadedly connected to the outer side of the threaded shaft 44. One end of the pusher 47 extends into the interior of the separation cylinder 40 and is fitted with a second push plate 48. One side of the pusher 47 extends into the separation box. On the side of the push column 47, a stopper 69 is installed on the side near the second winding box 42. One end of the stopper 69 extends into the interior of the second winding box 42, and the other end of the stopper 69 is inserted into the interior of the separator 40. Several filter holes 41 are opened on the surface of the separator 40. A second hose 71 is installed on the other end of the first pump 29. One end of the second hose 71 extends to the outside of the second push plate 48, which can automatically clean the impurities and dust separated from the coolant inside the separator 40.
[0031] The top of the separation box 39 is fixedly connected to a connecting box 52. A third rotating rod 53 is rotatably connected inside the connecting box 52. A second transmission gear 54 is sleeved on the outside of the third rotating rod 53. The bottom end of the second transmission gear 54 extends into the separation box 39. A third transmission gear 55 that meshes with the second transmission gear 54 is sleeved on the outside of the separation cylinder 40. One end of the third rotating rod 53 extends into the outside of the connecting box 52. A second drive box 51 is installed inside the working box 67 and on one side of the second pump 50. One end of the third rotating rod 53 extends into the second drive box 51 and is sleeved with several fan blades 68. One end of the second pump 50 extends into the second drive box 51. Coolant can flow into the second pump 50, pushing the fan blades 68 to move, thereby driving the third rotating rod 53 to rotate, causing the separation cylinder 40 to rotate. The coolant is separated from dust and impurities by centrifugal force.
[0032] A third pump 73 is installed inside the base plate 1 and on one side of the second winding box 42. A cooling device 74 is installed on the top of the base plate 1 and on one side of the second winding box 42. One end of the third pump 73 extends into the cooling device 74 and the other end extends into the separation box 39. The cooling liquid after separating impurities and dust is drawn out from the separation box 39 and then fed into the cooling device 74 for recooling. After recooling, it is discharged into the cooling cylinder 3 to cool the filament conveyed inside the cooling cylinder 3.
[0033] Example 2
[0034] Please see Figure 1 , Figure 2 and Figure 8 The present invention provides a technical solution: a connecting rod 45 is rotatably connected inside the working box 67 and on both sides of the cooling cylinder 3. A second bevel gear 46 meshing with the outer side of the connecting rod 45 and the threaded shaft 44 is sleeved on both sides. A second rotating rod 26 is rotatably connected inside the working box 67 and on one side of the first drive box 23. One end of the threaded rod 24 extends to the outer side of the first drive box 23. A first bevel gear 27 meshing with the outer side of the second rotating rod 26 and the threaded rod 24 is sleeved on both sides, so that the threaded shaft 44 and the second rotating rod 26 can be driven to rotate by the rack 60.
[0035] The working box 67 is fixedly connected to a linkage box 56 on one side. Two third servo motors 57 are installed at the top of the inner cavity of the linkage box 56. A first lead screw 58 is rotatably connected to the bottom of the inner cavity of the linkage box 56, below the third servo motors 57. The output ends of the third servo motors 57 are connected to the top of the first lead screw 58. A slider 59 is threaded to the outer side of each first lead screw 58. The sliders 59 are slidably connected to the inner cavity of the linkage box 56. A rack 60 is installed at one end of each slider 59. One end of the second rotating rod 26 and the connecting rod 45 extends into the inner cavity of the linkage box 56, and the inner cavity of the linkage box 56, located on one side of the second rotating rod 26, is rotated... A first connecting rod 61 is movably connected to the second rotating rod 26. A first pulley 62, which is connected to the first connecting rod 61 by a belt drive, is fitted on the outer side of the first connecting rod 61. A fourth transmission gear 63, which cooperates with the rack 60, is fitted on the outer side of the first connecting rod 61. A second connecting rod 64 is rotatably connected inside the linkage box 56 and located below the first connecting rod 61. A second pulley 65, which is connected to the second connecting rod 45 by a belt drive, is fitted on the outer side of the second connecting rod 64. A fifth transmission gear 66, which cooperates with the rack 60, is fitted on the outer side of the second connecting rod 64. The rack 60 can drive the threaded shaft 44 and the second rotating rod 26 to rotate.
[0036] In summary, during operation, the false-twist texturing machine heats the yarn through the heating device 2, then cools it inside the cooling cylinder 3 before removing it from the cooling cylinder 3 and entering the false-twist mechanism for false twisting. During the cooling process, the output of the first servo motor 5 drives the second lead screw 72 to rotate, causing the moving plate 6 to move the two first push plates 7. One push plate 7 pushes the push rod 9 into the cooling cylinder 3, while the other push plate 7 moves the push rod 9 outwards from the cooling cylinder 3. Simultaneously, the first pump 29 absorbs the coolant inside the cooling cylinder 3 through the suction head 28 and discharges it into the separation cylinder 40, where it passes through the filter holes 4. 1. Water, dust, and impurities are separated. The coolant is drawn out by the third pump 73 and discharged into the cooling device 74. After being re-cooled by the cooling device 74, the second pump 50 draws the coolant out of the cooling device 74 through the fan blade 68, and then discharges it into the annular air chamber 19 through the first hose 35, connecting pipe 37, rotary joint 38, and fixed pipe 75. Then, it is sprayed into the cooling cylinder 3 through the nozzle 20, thereby filtering the coolant inside the cooling cylinder 3 to prevent dust and impurities from accumulating inside the cooling cylinder 3. At the same time, the coolant inside the cooling cylinder 3 can be circulated and cooled to ensure the cooling effect on the yarn.
[0037] When the coolant flows from inside the second drive box 51 to inside the second pump 50, the coolant moves through the fan blade 68, causing the fan blade 68 to drive the third rotating rod 53 to rotate. The third rotating rod 53 then drives the third transmission gear 55 to rotate through the second transmission gear 54, causing the separation cylinder 40 to rotate. This causes the coolant to be thrown out through the filter hole 41 into the separation box 39. When the cleaning cylinder 11 moves to the end, the first servo motor 5 stops working for a period of time. At this time, the output end of the second servo motor 21 drives the first rotating rod 13 to rotate, causing the first rotating rod 13 to drive the gear ring 15 to move circumferentially through the first transmission gear 14. This causes the gear ring 15 to drive the scraper 18 to move circumferentially through the connecting block 16 and the first sealing sleeve 17, thereby scraping off the dust and impurities on the surface of the piston block 10 and the end plate 30. At the same time, the first pump 29 and the second pump 50 continue to work, replacing the coolant between the piston block 10 and the end plate 30. Then, the output end of the third servo motor 57 drives the first lead screw 58 to rotate, causing the slider to... 59 drives the rack 60 to move, causing the rack 60 to drive the fourth transmission gear 63 to rotate. This causes the first connecting rod 61 to drive the second rotating rod 26 to rotate via the first pulley 62. The second rotating rod 26 drives the threaded rod 24 to rotate, causing the push block 25 to push the end plate 30 to move. This causes the end plate 30 and the suction head 28 to move, drawing out the coolant between the piston block 10 and the end plate 30 through the suction head 28. At the same time, the second pump 50 is turned off, allowing the coolant to be filtered through the separator 40. The slider 59 drives the rack 60 to rotate. As rack 60 continues to move, it drives the second connecting rod 64 to rotate via the fifth transmission gear 66, and drives the connecting rod 45 to rotate via the second pulley 65. This causes the connecting rod 45 to drive the threaded shaft 44 to rotate via the second bevel gear 46, which in turn causes the pusher 47 to push the second pusher plate 48 and the stopper 69 to move, opening one end of the separating cylinder 40. The second pusher plate 48 then pushes the impurities and dust separated inside the separating cylinder 40 into the second winding box 42, allowing the impurities and dust to fall into the collecting drawer 43.
[0038] The output of the third servo motor 57 drives the first lead screw 58 to reset and rotate, causing the slider 59 to drive the rack 60 to reset and move. The rack 60 then drives the second connecting rod 64 to reset and rotate via the fifth transmission gear 66, and drives the connecting rod 45 to reset and rotate via the second pulley 65. The connecting rod 45 then drives the threaded shaft 44 to reset and rotate via the second bevel gear 46. This causes the pusher 47 to drive the second push plate 48 and the stopper 69 to move, so that the stopper 69 closes one end of the separating cylinder 40. The second push plate 48 moves to its original position, and then the slider 59... The moving rack 60 resets and moves, causing the rack 60 to drive the fourth transmission gear 63 to reset and rotate, causing the first connecting rod 61 to drive the second rotating rod 26 to reset and rotate via the first pulley 62. The second rotating rod 26 drives the threaded rod 24 to reset and rotate, causing the push block 25 to push the end plate 30 to reset and move, causing the end plate 30 and the suction head 28 to reset and move, so that the end plate 30 moves to its original position. Then the first servo motor 5 continues to work, and so on, reciprocating between the left and right ends to treat the coolant inside the cooling cylinder 3 and prevent blockage inside the cooling cylinder 3.
[0039] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A false-twist texturing machine, comprising a base plate (1), characterized in that: A working box (67) is fixedly connected to the top of the base plate (1). A cooling cylinder (3) is fixedly connected inside the working box (67). A piston block (10) is slidably connected inside the cooling cylinder (3). A second sealing sleeve (70) is embedded in the middle of the piston block (10). An inlet is opened on both sides of the cooling cylinder (3). A cleaning cylinder (11) is installed on both sides of the piston block (10). A cleaning groove is opened inside the cleaning cylinder (11). An annular groove (12) is opened inside the cleaning cylinder (11) and on the inner side of the cleaning groove. A first rotating rod (13) is rotatably connected to one side of the inner cavity of the annular groove (12). A first transmission gear (14) is sleeved on the outer side of the first rotating rod (13). A gear ring (15) is slidably connected inside the annular groove (12). A connecting block (16) is fixedly connected to one side of the gear ring (15). One end of each of the 6) extends into the cleaning groove and is fitted with a first sealing sleeve (17). A scraper (18) is fitted inside the first sealing sleeve (17). Two push rods (9) are fitted at one end of each of the cleaning cylinders (11). One end of each push rod (9) extends into the outside of the cooling cylinder (3). A first drive box (23) is fixedly connected to both sides of the cooling cylinder (3). A threaded rod (24) is rotatably connected inside the first drive box (23). A push block (25) is threadedly connected to the outside of each threaded rod (24). One end of each push block (25) extends into the cooling cylinder (3) and is fitted with an end plate (30). A suction head (28) is embedded on one side of each end plate (30). A knife groove (32) is opened on one side of each end plate (30) at the position of the scraper (18). A heating device (2) is installed inside the working box (67) at the front end of the cooling cylinder (3).
2. The false-twist texturing machine according to claim 1, characterized in that: The work box (67) is fixedly connected to two fixed blocks (4), and a second lead screw (72) is rotatably connected between the two fixed blocks (4). A first servo motor (5) is fixedly connected to one side of one of the fixed blocks (4). The output end of the first servo motor (5) is connected to one end of the second lead screw (72). A moving plate (6) is threadedly connected to the outside of the second lead screw (72). A first push plate (7) is provided at the bottom of the moving plate (6) and on both sides of the cooling cylinder (3). A through hole (8) is opened on one side of the first push plate (7). One end of the push rod (9) is connected to one side of the first push plate (7). A second servo motor (21) is fixedly connected to one side of the first push plate (7). The output end of the second servo motor (21) is connected to one end of the first rotating rod (13).
3. The false-twist texturing machine according to claim 2, characterized in that: Two first pumps (29) are installed inside the working box (67) and below the cooling cylinder (3). A flow control valve is installed at one end of each first pump (29). Each first pump (29) is connected to one end of the end plate (30) through the flow control valve. A second pump (50) is installed inside the working box (67) and on one side of each first pump (29). A first take-up box (33) is fixedly connected to one side of each first push plate (7). A take-up roller (34) is rotatably connected inside each first take-up box (33). A first flexible hose (35) is wound around the outside of each take-up roller (34). A connecting pipe (37) is installed inside each take-up roller (34). One end of each first flexible hose (35) is connected to one end of the connecting pipe (37). A rotary joint (38) is installed on one side of the box (33), and the other end of the connecting pipe (37) is connected to one end of the rotary joint (38). A fixed pipe (75) is installed on the other end of the rotary joint (38). Two annular air chambers (19) are opened inside the piston block (10). Nozzles (20) are embedded on both sides of the piston block (10). The nozzles (20) are connected to the inside of the scraper (18). One end of the fixed pipe (75) extends into the annular air chamber (19). A spring (36) is installed on one side of the inner cavity of the first winding box (33). One end of the winding roller (34) is connected to the spring (36). One end of the first hose (35) extends to the outside of the first winding box (33) and is connected to one end of the second pump (50).
4. A false-twist texturing machine according to claim 3, characterized in that: A separation box (39) is fixedly connected to the top of each of the base plates (1). A separation cylinder (40) is rotatably connected to one side of the inner cavity of each separation box (39). A second winding box (42) is fixedly connected to one side of each separation box (39). A collection drawer (43) is placed inside each of the second winding boxes (42). A threaded shaft (44) is rotatably connected to one side of each separation box (39). A pusher (47) is threadedly connected to the outer side of each threaded shaft (44). One end of each pusher (47) extends into the interior of the separation cylinder (40) and is fitted with a second pusher plate (48). One side of the push column (47) extends to the side of the separation box (39). A stopper (69) is installed on the side of the push column (47) near the second winding box (42). One end of the stopper (69) extends into the interior of the second winding box (42). One end of the stopper (69) is inserted into the interior of the separation cylinder (40). Several filter holes (41) are opened on the surface of the separation cylinder (40). A second hose (71) is installed on the other end of the first pump (29). One end of the second hose (71) extends to the outside of the second push plate (48).
5. A false-twist texturing machine according to claim 4, characterized in that: The top of each separation box (39) is fixedly connected to a connecting box (52). A third rotating rod (53) is rotatably connected inside each connecting box (52). A second transmission gear (54) is sleeved on the outside of each third rotating rod (53). The bottom end of the second transmission gear (54) extends into the separation box (39). A third transmission gear (55) meshing with the second transmission gear (54) is sleeved on the outside of each separation cylinder (40). One end of each third rotating rod (53) extends into the outside of the connecting box (52). A second drive box (51) is installed inside the working box (67) and on one side of the second pump (50). One end of each third rotating rod (53) extends into the second drive box (51) and is sleeved with several fan blades (68). One end of each second pump (50) extends into the second drive box (51).
6. A false-twist texturing machine according to claim 1, characterized in that: A third pump (73) is installed inside the base plate (1) and on one side of the second winding box (42). A cooling device (74) is installed on the top of the base plate (1) and on one side of the second winding box (42). One end of the third pump (73) extends into the cooling device (74), and the other end of the third pump (73) extends into the separation box (39).
7. A false-twist texturing machine according to claim 1, characterized in that: Inside the working box (67) and on both sides of the cooling cylinder (3), there are rotatably connected connecting rods (45). The connecting rods (45) and the outer side of the threaded shaft (44) are fitted with meshing second bevel gears (46). Inside the working box (67) and on one side of the first drive box (23), there are rotatably connected second rotating rods (26). One end of the threaded rod (24) extends to the outer side of the first drive box (23). The outer side of the second rotating rod (26) and the threaded rod (24) are fitted with meshing first bevel gears (27).
8. A false-twist texturing machine according to claim 7, characterized in that: A linkage box (56) is fixedly connected to one side of the working box (67). Two third servo motors (57) are installed on the top of the inner cavity of the linkage box (56). A first lead screw (58) is rotatably connected to the bottom of the inner cavity of the linkage box (56) and below the third servo motors (57). The output end of the third servo motors (57) is connected to the top end of the first lead screw (58). A slider (59) is threaded to the outside of the first lead screw (58). The slider (59) is slidably connected to the inner cavity of the linkage box (56). A rack (60) is installed on one end of the slider (59). One end of the second rotating rod (26) and the connecting rod (45) extends into the inner cavity of the linkage box (56). 6) A first connecting rod (61) is rotatably connected to the inner cavity and on one side of the second rotating rod (26). A first pulley (62) connected by belt drive is sleeved on the outer side of the first connecting rod (61) and the second rotating rod (26). A fourth transmission gear (63) that cooperates with the rack (60) is sleeved on the outer side of the first connecting rod (61). A second connecting rod (64) is rotatably connected to the inner cavity of the linkage box (56) and below the first connecting rod (61). A second pulley (65) connected by belt drive is sleeved on the outer side of the second connecting rod (64) and the connecting rod (45). A fifth transmission gear (66) that cooperates with the rack (60) is sleeved on the outer side of the second connecting rod (64).