A texturing machine using a pre-networked pipe structure

By employing a pre-net pipe structure and nozzle system to spray water vapor in the texturing machine, combined with the design of the wire clamp and wire feeding tube, the problems of fuzzing and repulsion caused by static electricity in the raw yarn are solved, improving the quality of finished products and the cleanliness of the working environment. At the same time, it reduces the risk of raw yarn damage and water waste, and enhances the automation level of the equipment.

CN118497942BActive Publication Date: 2026-04-03台州东海翔新材料有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-06-11
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

In existing texturing machines, the raw yarn is prone to fuzzing and mutual repulsion due to static electricity, which affects the quality of the finished product. Furthermore, the yarn is prone to breakage during the processing, and the working environment is not clean.

Method used

The system employs a pre-net pipe structure and nozzle system to spray water vapor onto the raw yarn to eliminate static electricity. Combined with the design of the yarn clamp and yarn feeding tube, it ensures smooth raw yarn transport and reduces friction. The water vapor spraying is controlled by an automated detection and opening/closing mechanism, which improves spraying efficiency and the degree of equipment automation.

Benefits of technology

It effectively eliminates static electricity in the raw yarn, reduces fuzzing and repulsion, improves finished product quality, keeps the working environment clean, reduces the risk of raw yarn damage, reduces water waste, and reduces labor intensity.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application relates to the technical field of textile equipment. A texturing machine using a pre-net pipe structure includes a frame, a winding drum, a pre-net pipe, and nozzles. The winding drum is connected to the frame and is used for winding raw yarn. The pre-net pipe is connected to the frame and is used for supplying water vapor. Several connecting pipes are provided around the outer periphery of the pre-net pipe, and these connecting pipes are connected to the pre-net pipe. The connecting pipes are spaced apart along the length of the pre-net pipe. The number of nozzles is the same as the number of connecting pipes and corresponds one-to-one. The nozzles are connected to the end of the connecting pipe furthest from the pre-net pipe and are used to spray water vapor onto the raw yarn. By setting up the pre-net pipe and nozzles, water vapor is sprayed onto the raw yarn to eliminate static electricity, reduce fuzzing and mutual repulsion, improve finished product quality, maintain a clean working environment, and protect the health and safety of workers.
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Description

Technical Field

[0001] This application relates to the technical field of textile equipment, and in particular to a texturing machine that uses a pre-net pipe structure. Background Technology

[0002] Texturing machines using pre-twisted tubular structures are textile machines that process raw yarns into elastic yarns with medium to low elasticity through false twisting.

[0003] The existing raw yarn is wound around the outer circumference of the winding drum. After the raw yarn is led out of the winding drum, it is stretched and deformed. The friction between the raw yarns or between the raw yarns and the equipment can easily generate static electricity. After static electricity occurs, the raw yarns will fray and repel each other, affecting the quality of the final elastic yarn. This needs to be improved. In addition, the process can easily cause the fuzzy yarns to break and detach from the raw yarn, affecting the working environment. Summary of the Invention

[0004] In order to reduce the possibility of raw yarn fuzzing, improve the quality of finished products, and maintain a clean working environment, this application provides a texturing machine that applies a pre-net pipe structure.

[0005] This application provides a texturing machine that utilizes a pre-networked pipeline structure, employing the following technical solution:

[0006] A texturing machine employing a pre-net pipe structure includes a frame, a winding drum, a pre-net pipe, and nozzles. The winding drum is connected to the frame and is used for winding raw yarn. The pre-net pipe is connected to the frame and is used for supplying water vapor. Several connecting pipes are provided around the outer periphery of the pre-net pipe and are connected to it. The connecting pipes are spaced apart along the length of the pre-net pipe. The number of nozzles is the same as the number of connecting pipes and corresponds one-to-one. Each nozzle is connected to the end of a connecting pipe away from the pre-net pipe and is connected to the connecting pipe. The nozzles are used to spray water vapor onto the raw yarn.

[0007] By adopting the above technical solution, setting up pre-net pipes and nozzles, and spraying water vapor onto the raw yarn to eliminate static electricity on the raw yarn, the static electricity on the raw yarn is reduced, the fuzzing and mutual repulsion of the raw yarn are reduced, the quality of the finished product is improved, the working environment is kept clean, and the life and health of the staff are protected.

[0008] Preferably, the device further includes wire clamps, the number of which is the same as the number of nozzles and corresponds one-to-one. Each wire clamp includes a connecting seat, a fixed seat, and a rotating seat. The connecting seat is connected to the end of the nozzle away from the pre-net pipe. The connecting seat has a through hole that communicates with the nozzle. The fixed seat is connected to the connecting seat and has a plurality of air outlets evenly distributed on it. The air outlets communicate with the through hole, and the end of the air outlet away from the through hole faces the outer periphery of the raw yarn. The rotating seat is rotatably connected to the connecting seat, and the axis of rotation of the rotating seat is horizontal. The rotating seat is used to press against the side of the raw yarn away from the fixed seat.

[0009] By adopting the above technical solution, the connecting seat is connected to the nozzle, and the fixed seat and rotating seat clamp the raw filament, so that the raw filament and the nozzle maintain a suitable relative distance. The nozzle accurately sprays water vapor onto the outer periphery of the raw filament through the through hole and the air outlet, thereby improving the spraying efficiency of water vapor and reducing water waste.

[0010] Preferably, the wire clamp further includes an abutment block, which is made of flexible material and is connected to the side of the rotating seat near the fixed seat. The abutment block is used to press against the outer periphery of the raw yarn.

[0011] By adopting the above technical solution, the abutting block is made of flexible material, which reduces the wear on the raw yarn and the possibility of damage to the raw yarn. The abutting block presses against the outer periphery of the raw yarn, and the fuzz on the outside of the raw yarn is attached to the outer surface of the raw yarn.

[0012] Preferably, the device further includes a wire feeding tube and a wire guide, the number of which is the same as the number of wire clamps and corresponds one-to-one. The wire feeding tube and the wire guide are both connected to the frame. The wire feeding tube and the wire guide are located on both sides of the wire clamp along the direction of raw wire feeding. The wire feeding tube is used to feed the raw wire from the winding drum to the wire clamp. The axis of the outlet of the wire feeding tube is parallel to the rotation axis of the rotating seat. The wire guide is provided with a guide hole for the raw wire to pass through. The axis of the guide hole coincides with the outlet axis of the wire feeding tube.

[0013] By adopting the above technical solution, the wire feeding tube is used to accurately transport the raw wire to the wire clamp, reducing the possibility of multiple raw wires tangling together during the transport process and improving work efficiency; the axis of the guide hole coincides with the outlet axis of the wire feeding tube, which facilitates the smooth passage of the raw wire through the wire clamp and reduces the possibility of damage to the raw wire caused by friction between the raw wire and the wire clamp, wire feeding tube and wire guide assembly.

[0014] Preferably, it further includes a sealing plate, a second gear, and a second rack. The sealing plate is slidably embedded in the through hole, and the sliding direction of the sealing plate is perpendicular to the axis of the through hole. The second gear is rotatably connected to the connecting seat, and the rotation axis of the second gear is parallel to the rotation axis of the rotating seat. The rotating seat is used to drive the second gear to rotate. The second rack is slidably connected to the connecting seat, and the sliding direction of the second rack is parallel to the sliding direction of the sealing member. One end of the second rack is connected to the sealing plate.

[0015] By adopting the above technical solution, when the rotating seat is opened, the sealing plate closes the through hole, reducing the continuous spraying of water vapor from the air outlet when the wire clamp is not holding the raw wire, thus reducing the waste of water resources; when the rotating seat rotates against the raw wire, it drives the second gear to rotate, drives the second rack to slide, and drives the sealing plate to slide, so that the through hole is connected to the nozzle, so as to realize the spraying of water vapor on the outer periphery of the raw wire held in the wire clamp.

[0016] Preferably, it further includes a traction mechanism, which includes a mounting base, a rubber ring frame, rollers, a traction rubber ring, and a rotating shaft. The rotating shaft is rotatably connected to the frame, and the axis of rotation of the rotating shaft is horizontal. The mounting base is connected to the frame, and the rubber ring frame is rotatably connected to the mounting base. The axis of rotation of the rubber ring frame is parallel to the axis of rotation of the rotating shaft. There are two rollers, which are rotatably connected to the rubber ring frame. The axis of rotation of the rollers is parallel to the axis of rotation of the rotating shaft. The traction rubber ring is sleeved on the outer circumference of the two rollers, and the traction rubber ring cooperates with the rotating shaft to form a feeding port for the raw yarn.

[0017] By adopting the above technical solution, when pulling the silk thread, simply place the silk thread on the outer periphery of the rotating shaft, then pull the leather ring frame to rotate towards the rotating shaft, so that the traction leather ring is placed on the rotating shaft, making the traction leather ring and the rotating shaft fit tightly together. Through the cooperation of the traction leather ring and the rotating shaft, a feeding port for the silk thread is formed; by rotating the rotating rod, the traction leather ring is driven to rotate, so as to pull the silk thread.

[0018] Preferably, it further includes an opening and closing element, which is rotatably embedded in the connecting pipe, and the rotation axis of the opening and closing element is perpendicular to the axial direction of the connecting pipe. The opening and closing element is used to control the opening and closing of the connecting pipe.

[0019] By adopting the above technical solution, an opening and closing device is set to control the opening and closing of the connecting pipe, so as to control whether water vapor is sprayed onto the raw filament through the nozzle, thereby reducing water waste.

[0020] Preferably, it further includes a first gear, a first rack, a detection component, and a drive cylinder. The first gear is connected to the opening and closing member, and the axis of the first gear coincides with the rotation axis of the opening and closing member. The first rack is slidably connected to the connecting pipe and meshes with the first gear. The detection component is connected to the rubber ring frame and is used to detect the rotational speed of the roller and generate a detection result. The detection result includes whether the roller rotates. The drive cylinder is connected to the pre-net pipe and drives the first rack to slide according to the detection result of the detection component.

[0021] By adopting the above technical solution, when the traction mechanism pulls the raw filament to move, the roller rotates. The detection component detects the rotation of the roller and transmits the signal to the drive cylinder. The piston rod of the drive cylinder extends, pushes the first rack to slide, drives the first gear to rotate, drives the opening and closing parts to rotate, realizes the connection of the connecting pipe, improves the automation level of the equipment, and reduces the labor intensity of the workers.

[0022] In summary, this application includes at least one of the following beneficial technical effects:

[0023] 1. Set up pre-net pipes and nozzles to spray water vapor onto the raw yarn to eliminate static electricity on the raw yarn, reduce fuzzing and mutual repulsion of the raw yarn, improve the quality of finished products, maintain a clean working environment, and protect the life and health of workers;

[0024] 2. The connecting seat is connected to the nozzle, and the fixed seat and rotating seat clamp the raw wire, so that the raw wire and the nozzle maintain a suitable relative distance. The nozzle accurately sprays water vapor to the outer periphery of the raw wire through the through hole and the air outlet, thereby improving the spraying efficiency of water vapor and reducing water waste.

[0025] 3. When the traction mechanism pulls the raw filament to move, the roller rotates. The detection component detects the rotation of the roller and transmits the signal to the drive cylinder. The piston rod of the drive cylinder extends, pushes the first rack to slide, drives the first gear to rotate, drives the opening and closing parts to rotate, realizes the connection of the connecting pipe, improves the automation level of the equipment, and reduces the labor intensity of the workers. Attached Figure Description

[0026] Figure 1 This is a schematic diagram of a texturing machine that uses a pre-networked pipeline structure.

[0027] Figure 2 This is a partial sectional view of a texturing machine that uses a pre-networked pipe structure.

[0028] Figure 3 yes Figure 1 Enlarged view of point A in the middle.

[0029] Figure 4 This is a partial structural diagram of a texturing machine that utilizes a pre-networked pipeline structure.

[0030] Figure 5 This is a basic sectional view of a texturing machine that applies a pre-networked pipe structure.

[0031] Explanation of reference numerals in the attached figures:

[0032] 1. Frame; 11. Base plate; 12. Support plate; 13. Raw wire mounting frame; 131. First vertical rod; 132. First horizontal rod; 133. Connector; 134. Mounting rod; 14. Wire feeding mounting frame; 141. Second vertical rod; 142. Second horizontal rod; 143. Mounting plate; 1431. Mounting hole; 144. First horizontal plate; 1441. Support base; 15. Second horizontal plate; 16. Third horizontal plate;

[0033] 2. Winding spool;

[0034] 3. Pre-network pipeline; 31. Main pipe; 32. Connecting pipe;

[0035] 4. Nozzle;

[0036] 5. Cable clamp; 51. Connecting seat; 511. Through hole; 512. Connecting post; 513. Mounting groove; 514. Slide groove; 515. Receiving groove; 52. Fixing seat; 521. Air vent; 522. Positioning post; 5221. Rounded corner; 53. Rotating seat; 531. Positioning hole; 532. Groove; 54. Abutment block;

[0037] 6. Wire feeding tube; 61. Vertical tube; 62. Horizontal tube;

[0038] 7. Wire guide; 71. Guide hole;

[0039] 8. Opening and closing mechanism; 81. Sealing plate; 82. Second gear; 83. Second rack; 84. Opening and closing component; 841. Valve core; 8411. Connecting hole; 842. Connecting rod; 85. First gear; 86. First rack; 87. Detection assembly; 88. Drive cylinder; 89. Transmission assembly; 891. Driving pulley; 892. Driven pulley; 893. Belt body; 894. Connecting shaft;

[0040] 9. Traction mechanism; 91. Traction assembly; 911. Mounting base; 912. Belt frame; 913. Roller; 914. Traction belt; 92. Shaft; 921. Ring groove; 93. Drive motor. Detailed Implementation

[0041] The present application will be further described in detail below with reference to the accompanying drawings.

[0042] Reference Figure 1This application discloses a texturing machine using a pre-mesh pipe structure, comprising a frame 1 and a winding drum 2. The frame 1 includes a base plate 11, support plates 12, and a raw wire mounting frame 13. Two support plates 12 are provided, symmetrically distributed along the width direction of the base plate 11. The lower end of each support plate 12 is fixedly connected to the upper surface of the base plate 11 along its length. The raw wire mounting frame 13 is located between the two support plates 12. The raw wire mounting frame 13 includes a first vertical rod 131, a first horizontal rod 132, a connector 133, and a mounting rod 134. The lower end of the first vertical rod 131 is fixedly connected to the upper end of the base plate 11. The length direction of the first vertical rod 131 is vertical, and several first vertical rods 131 are provided, spaced apart along the width direction of the base plate 11. In this embodiment, two first vertical rods 131 are provided. The number of connectors 133 is the same as the number of first vertical rods 131 and they correspond one-to-one. Connectors 133 are fixedly connected to the upper end of the first vertical rod 131, and both ends of the first horizontal rod 132 are fixedly connected to two connectors 133 respectively. One end of the mounting rod 134 is fixedly connected to the outer periphery of the first vertical rod 131, and the end of the mounting rod 134 away from the first vertical rod 131 is inclined upward. In this embodiment, the angle between the mounting rod 134 and the horizontal plane is less than 15 degrees. There are several mounting rods 134, which are divided into two groups. One first vertical rod 131 corresponds to one group of mounting rods 134, and the mounting rods 134 in the same group are distributed at intervals along the length of the first vertical rod 131. In this embodiment, there are four mounting rods 134 in one group. The end of the mounting rod 134 away from the first vertical rod 131 passes through the inner periphery of the winding drum 2, which is used for winding the raw yarn.

[0043] Reference Figure 1 and Figure 2A texturing machine employing a pre-net pipe 3 structure further includes the pre-net pipe 3, nozzles 4, and wire clamps 5. The pre-net pipe 3 is used for water vapor circulation and includes a main pipe 31 and connecting pipes 32. The main pipe 31 is fixedly connected to the upper end of the support plate 12, and its length direction is parallel to the width direction of the base plate 11. One end of the connecting pipe 32 is fixedly connected to the outer periphery of the main pipe 31, and the axis of the connecting pipe 32 is vertical. The connecting pipe 32 is located below the main pipe 31, and there are several connecting pipes 32, spaced apart along the length direction of the main pipe 31. The number of connecting pipes 32, nozzles 4, and wire clamps 5 is the same as the number of mounting rods 134 and corresponds one-to-one. One end of the nozzle 4 is coaxially fixedly connected to the end of the connecting pipe 32 away from the main pipe 31, and the nozzle 4 communicates with the connecting pipe 32. The wire clamp 5 includes a connecting seat 51, a fixed seat 52, a rotating seat 53, and an abutment block 54. A connecting post 512 is fixedly connected to the upper end of the connecting seat 51. The connecting post 512 is threaded into the nozzle. The connecting seat 51 has a mounting groove 513 on one side along the axis of the main pipe 31. A through hole 511 is provided on the upper wall of the mounting groove 513. The axis of the through hole 511 coincides with the axis of the connecting post 512 and is connected to the nozzle. The fixing seat 52 is embedded in the mounting groove 513. The fixing seat 52 has several air outlets 521 evenly distributed. The air outlets 521 are connected to the through holes 511. The end of the air outlet 521 away from the through hole 511 faces the outer periphery of the original wire held in the wire clamp 5.

[0044] Reference Figure 2 and Figure 3 The rotating seat 53 is rotatably connected to the connecting seat 51, and the rotation axis of the rotating seat 53 is perpendicular to the axis of the main tube 31. The rotating seat 53 is provided with a positioning hole 531, the axis of which is parallel to but does not coincide with the rotation axis of the rotating seat 53. The fixed seat 52 is fixedly connected to the positioning post 522 on both sides along the raw yarn feeding direction. The outer periphery of the positioning post 522 away from the fixed seat 52 is provided with a rounded corner 5221. The positioning post 522 is used to embed into the positioning hole 531 to fix the rotating seat 53. The rotating seat 53 is provided with a groove 532 on the side facing the fixed seat 52. The abutment block 54 is embedded in the groove 532. The abutment block 54 is made of flexible material and is used to press against the outer periphery of the raw yarn. In this embodiment, the abutment block 54 is made of sponge material.

[0045] Reference Figure 2A texturing machine using a pre-net pipe 3 structure also includes an opening and closing mechanism 8. The opening and closing mechanism 8 includes a sealing plate 81, a second gear 82, a second rack 83, and a transmission assembly 89. The number of sealing plates 81, second gears 82, second racks 83, and transmission assemblies 89 is the same as the number of connecting seats 51 and they correspond one-to-one. A sliding groove 514 is provided at the wall of the through hole 511, and the sealing plate 81 is slidably embedded in the sliding groove 514. The sliding direction of the sealing plate 81 is parallel to the axis of the main pipe 31. The connecting seat 51 is provided with a receiving groove 515, which communicates with the sliding groove 514. The transmission assembly 89 includes a driving pulley 891, a driven pulley 892, and a belt body 893. The driving pulley 891 is rotatably embedded in the receiving groove 515. The rotation axis of the driving pulley 891 coincides with the rotation axis of the rotating seat 53. The driving pulley 891 is coaxially and fixedly connected to a connecting shaft 894. Both ends of the connecting shaft 894 pass through the connecting seat 51 and extend into the receiving groove 515. Both ends of the connecting shaft 894 are fixedly connected to the rotating seat 53. The driven pulley 892 is rotatably embedded in the receiving groove 515. The rotation axis of the driven pulley 892 is parallel to the rotation axis of the driving pulley 891. The belt body 893 is sleeved on the outer periphery of the driving pulley 891 and the driven pulley 892. The second gear 82 is coaxially and fixedly connected to one side of the driven pulley 892 along the axial direction. The second rack 83 is slidably embedded in the receiving cavity. The sliding direction of the second rack 83 is parallel to the sliding direction of the closing plate 81. The end of the second rack 83 near the through hole 511 is fixedly connected to the closing plate 81.

[0046] Reference Figure 1A texturing machine using a pre-wire pipe 3 structure also includes a wire feeding tube 6. The frame 1 also includes a wire feeding mounting frame 14. The wire feeding mounting frame 14 includes a second vertical rod 141, a second horizontal rod 142, a mounting plate 143, and a first horizontal plate 144. The lower end of the second vertical rod 141 is fixedly connected to the upper end of the base plate 11. One end of the second horizontal rod 142 is fixedly connected to the upper end of the second vertical rod 141, and the other end of the second horizontal rod 142 is fixedly connected to the outer periphery of the first horizontal rod 132. One end of the mounting plate 143 is fixedly connected to the outer periphery of the second vertical rod 141. The length direction of the mounting plate 143 is parallel to the axis of the main pipe 31. The mounting plate 143 has a plurality of mounting holes 1431. The number of mounting holes 1431 and the number of wire feeding tubes 6 are the same as the number of wire clamps 5 and correspond one-to-one. The plurality of mounting holes 1431 are spaced apart along the length direction of the mounting plate 143. The wire feeding tube 6 is used to transport the raw wire from the winding drum 2 to the wire clamp 5. The wire feeding tube 6 includes a vertical tube 61 and a horizontal tube 62. The vertical tube 61 is embedded in the mounting hole 1431, and the length direction of the vertical tube 61 is vertical. One end of the horizontal tube 62 is fixedly connected to the upper end of the vertical tube 61, and the end of the horizontal tube 62 away from the vertical tube 61 faces the wire clamp 5. The length direction of the first horizontal plate 144 is parallel to the length direction of the main tube 31, and both ends of the first horizontal plate 144 are fixedly connected to two support plates 12 respectively. The upper end of the first horizontal plate 144 is fixedly connected to a number of support seats 1441. The number of support seats 1441 is the same as the number of wire feeding tubes 6 and they correspond one-to-one. The end of the horizontal tube 62 away from the vertical tube 61 abuts against the upper end of the support seat 1441.

[0047] Reference Figure 1 and Figure 4 A texturing machine using a pre-net pipe 3 structure also includes a wire guide 7. The frame 1 further includes a second horizontal plate 15, the length of which is parallel to the length of the first horizontal plate 144. Both ends of the second horizontal plate 15 are fixedly connected to two support plates 12 along its length. The second horizontal plate 15 is located on the side of the wire clamp 5 away from the first horizontal plate 144. The wire guide 7 is fixedly connected to the lower end of the second horizontal plate 15. The wire guide 7 has a guide hole 71, the axis of which coincides with the axis of the horizontal pipe.

[0048] A texturing machine using a pre-wire pipe 3 structure also includes a traction mechanism 9. The traction mechanism 9 includes a rotating shaft 92 and a drive motor 93. The two ends of the rotating shaft 92 are rotatably connected to two support plates 12. The rotation axis of the rotating shaft 92 is parallel to the axis of the main pipe 31. The rotating shaft 92 is located on the side of the wire guide 7 away from the wire clamp 5. Several annular grooves 921 are provided on the outer circumference of the rotating shaft 92, spaced apart along the length of the rotating shaft 92. The annular grooves 921 are used for embedding the raw wire. The number of annular grooves 921 is the same as the number of wire guides 7 and corresponds one-to-one. The housing of the drive motor 93 is fixedly connected to the support plate 12, and the output shaft of the drive motor 93 is coaxially fixedly connected to one end of the rotating shaft 92.

[0049] The frame 1 also includes a third horizontal plate 16, the length of which is parallel to the length of the second horizontal plate 15. Both ends of the third horizontal plate 16 are fixedly connected to two support plates 12 along its length. The third horizontal plate 16 is located below the rotating shaft 92. The traction mechanism 9 also includes traction components 91, the number of which corresponds one-to-one with the number of annular grooves 921. Each traction component 91 includes a mounting base 911, a rubber ring frame 912, a roller 913, and a traction rubber ring 914. The mounting base 911 is fixedly connected to the side of the third horizontal plate 16 away from the guide wire 7. One end of the rubber ring frame 912 is rotatably connected to the mounting base 911, and the axis of rotation of the rubber ring frame 912 is parallel to the length of the third horizontal plate 16. Roller 913 is rotatably connected to one side of the rubber ring frame 912 along the length of the third horizontal plate 16. The rotation axis of roller 913 is parallel to the rotation axis of rubber ring frame 912. In this embodiment, there are two rollers 913, and the rotation axes of the two rollers 913 are parallel and do not coincide. Traction rubber ring 914 is sleeved on the outer circumference of the two rollers 913, and the traction rubber ring 914 cooperates with the bottom of the groove 532 to form a feeding port for the raw yarn.

[0050] Reference Figure 4 and Figure 5 The opening and closing mechanism 8 also includes a detection component 87, a drive cylinder 88, a first rack 86, a first gear 85, and an opening and closing element 84. The detection component 87 is fixedly connected to the side of the rubber ring frame 912 facing the roller 913. The detection component 87 is used to detect the rotational speed of the roller 913 and generate a detection result, including whether the roller 913 is rotating. In this embodiment, the detection component 87 uses a speed sensor. The opening and closing plate includes a valve core 841 and a connecting rod 842. The valve core 841 is rotatably embedded in the connecting tube 32, and the rotation axis of the valve core 841 is perpendicular to the axis of the connecting tube 32. The valve core 841 is provided with a connecting hole 8411. One end of the connecting rod 842 is fixedly connected to the outer periphery of the valve core 841, and the axis of the connecting rod 842 coincides with the rotation axis of the valve core 841. The other end of the connecting rod 842 passes through the connecting tube 32. The first gear 85 is coaxially fixedly connected to the end of the connecting rod 842 away from the valve core 841. The first rack 86 is slidably connected to the connecting pipe 32, and the sliding direction of the first rack 86 is parallel to the axis of the main pipe 31. The first rack 86 meshes with the first gear 85. The cylinder body of the drive cylinder 88 is fixedly connected to the outer periphery of the main pipe 31, and the piston rod of the drive cylinder 88 is fixedly connected to one end of the first rack 86 along the length direction of the main pipe 31. The drive cylinder 88 drives the first rack 86 to slide according to the detection result of the detection component 87. In this embodiment, the drive cylinder 88 is a pneumatic cylinder.

[0051] The implementation principle of a texturing machine using a pre-net pipe 3 structure in this application embodiment is as follows: the raw filament wound around the outer circumference of the winding drum 2 is fed to the wire clamp 5 through the wire feeding pipe 6. The rotating seat 53 rotates, driving the abutment block 54 to rotate. The abutment block 54 and the fixed seat 52 clamp the raw filament. The rotating seat 53 drives the driving pulley 891 to drive, and through the belt body 893, drives the driven pulley 892 to rotate, which in turn drives the second gear 82 to rotate, drives the second rack 83 to slide, and drives the sealing block to slide, so that the through hole 511 opens. The raw filament passes through the wire guide 7 and is embedded in the ring groove 921. The rotating ring frame 912 rotates, driving the traction ring 914 to rotate, so that the traction ring 914 and the rotating shaft 92 abut against the outer circumference of the raw filament. The drive motor 93 rotates, causing the raw yarn to slide, which in turn causes the traction belt 914 to rotate, and the roller 913 to rotate. The detection component 87 detects the rotation speed of the roller 913 and generates a detection result, which includes whether the roller 913 is rotating. The drive cylinder 88 receives the detection mechanism of the detection component 87. If the detection result is that the roller 913 is rotating, the piston rod of the drive cylinder 88 extends, causing the first gear 85 to slide, which in turn causes the first gear 85 to rotate, which in turn causes the connecting rod 842 to rotate, which in turn causes the valve core 841 to rotate, so that the connecting pipe 32 is connected. This allows the water vapor in the main pipe 31 to pass through the connecting pipe 32, the nozzle, the through hole 511, and the air outlet 521 in sequence and then spray onto the outer periphery of the raw yarn, thereby eliminating static electricity on the raw yarn, reducing fuzzing and mutual repulsion of the raw yarn, and improving the quality of the finished product.

[0052] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A texturing machine using a pre-net pipe structure, characterized in that: The device includes a frame (1), a winding drum (2), a pre-net pipe (3), and nozzles (4); the winding drum (2) is connected to the frame (1); the winding drum (2) is used for winding the raw yarn; the pre-net pipe (3) is connected to the frame (1); the pre-net pipe (3) is used for supplying water vapor; the pre-net pipe (3) has several connecting pipes (32) on its outer periphery; the connecting pipes (32) are connected to the pre-net pipe (3); the several connecting pipes (32) are spaced apart along the length of the pre-net pipe (3); the number of nozzles (4) is the same as the number of connecting pipes (32) and they correspond one-to-one; the nozzles (4) are connected to the end of the connecting pipes (32) away from the pre-net pipe (3); the nozzles (4) are connected to the connecting pipes (32); the nozzles (4) are used to spray water vapor onto the raw yarn; It also includes wire clamps (5); the number of wire clamps (5) is the same as the number of nozzles (4) and they correspond one-to-one; the wire clamps (5) include a connecting seat (51), a fixed seat (52) and a rotating seat (53); It also includes a sealing plate (81), a second gear (82), and a second rack (83); the sealing plate (81) is slidably embedded in the through hole (511); the sliding direction of the sealing plate (81) is perpendicular to the axis of the through hole (511); the second gear (82) is rotatably connected to the connecting seat (51); the rotation axis of the second gear (82) is parallel to the rotation axis of the rotating seat (53); the rotating seat (53) is used to drive the second gear (82) to rotate; the second rack (83) is slidably connected to the connecting seat (51); the sliding direction of the second rack (83) is parallel to the sliding direction of the sealing member; one end of the second rack (83) is connected to the sealing plate (81); It also includes a traction mechanism (9); the traction mechanism (9) includes a mounting base (911), a rubber ring frame (912), rollers (913), a traction rubber ring (914), and a rotating shaft (92); the rotating shaft (92) is rotatably connected to the frame (1); the rotation axis of the rotating shaft (92) is horizontal; the mounting base (911) is connected to the frame (1); the rubber ring frame (912) is rotatably connected to the mounting base (911); the rotation axis of the rubber ring frame (912) is parallel to the rotation axis of the rotating shaft (92); there are two rollers (913); the two rollers (913) are rotatably connected to the rubber ring frame (912); the rotation axis of the rollers (913) is parallel to the rotation axis of the rotating shaft (92); the traction rubber ring (914) is sleeved on the outer circumference of the two rollers (913); the traction rubber ring (914) and the rotating shaft (92) cooperate to form a feeding port for the raw yarn; It also includes a closing element (84); the closing element (84) is rotatably embedded in the connecting pipe (32); the rotation axis of the closing element (84) is perpendicular to the axis of the connecting pipe (32); the closing element (84) is used to control the opening and closing of the connecting pipe (32); It also includes a first gear (85), a first rack (86), a detection component (87), and a drive cylinder (88); the first gear (85) is connected to the opening and closing component (84); the axis of the first gear (85) coincides with the rotation axis of the opening and closing component (84); the first rack (86) is slidably connected to the connecting pipe (32); the first rack (86) meshes with the first gear (85); the detection component (87) is connected to the rubber ring frame (912); the detection component (87) is used to detect the rotation speed of the roller (913) and generate a detection result, the detection result including whether the roller (913) rotates; the drive cylinder (88) is connected to the pre-net pipe (3); the drive cylinder (88) drives the first rack (86) to slide according to the detection result of the detection component (87).

2. The texturing machine for applying a pre-networked pipeline structure according to claim 1, characterized in that: The connecting seat (51) is connected to the end of the nozzle (4) away from the pre-net pipe (3); the connecting seat (51) is provided with a through hole (511); the through hole (511) is connected to the nozzle (4); the fixed seat (52) is connected to the connecting seat (51); the fixed seat (52) is evenly distributed with a plurality of air outlet holes (521); the air outlet holes (521) are connected to the through hole (511); the end of the air outlet hole (521) away from the through hole (511) faces the outer periphery of the raw yarn; the rotating seat (53) is rotatably connected to the connecting seat (51); the rotation axis of the rotating seat (53) is horizontal; the rotating seat (53) is used to press against the side of the raw yarn away from the fixed seat (52).

3. The texturing machine for applying a pre-networked pipeline structure according to claim 2, characterized in that: The wire clamp (5) also includes an abutment block (54); the abutment block (54) is made of flexible material; the abutment block (54) is connected to the side of the rotating seat (53) near the fixed seat (52); the abutment block (54) is used to press against the outer periphery of the raw filament.

4. The texturing machine for applying a pre-networked pipeline structure according to claim 2, characterized in that: It also includes a wire feeding tube (6) and a wire guide (7); the number of the wire feeding tubes (6) and the wire guide (7) is the same as the number of the wire clamps (5) and they correspond one-to-one; the wire feeding tubes (6) and the wire guides (7) are both connected to the frame (1); the wire feeding tubes (6) and the wire guides (7) are located on both sides of the wire clamps (5) along the direction of raw wire feeding; the wire feeding tubes (6) are used to feed the raw wire from the winding drum (2) to the wire clamps (5); the axis of the outlet of the wire feeding tubes (6) is parallel to the rotation axis of the rotating seat (53); the wire guides (7) are provided with guide holes (71); the guide holes (71) are used for the raw wire to pass through; the axis of the guide holes (71) coincides with the outlet axis of the wire feeding tubes (6).

Citation Information

Patent Citations

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