A yarn guide structure for an air fiber texturing machine

By designing the guide structure of the air fiber texturing machine and adopting a guiding mechanism and automatic oiling components, the problems of uneven manual oiling and inconvenient oil recovery were solved, achieving uniform oiling and static electricity removal of the fibers, improving production efficiency and saving costs.

CN116752305BActive Publication Date: 2026-05-29SUZHOU SANFA WARP KNITTING TEXTILE CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
SUZHOU SANFA WARP KNITTING TEXTILE CO LTD
Filing Date
2023-06-14
Publication Date
2026-05-29

AI Technical Summary

Technical Problem

Existing air fiber texturing machines suffer from problems such as high manual workload, uneven oiling, poor static electricity removal, and inconvenient oil recovery when oiling the guide yarn.

Method used

A guide structure for an air fiber texturer was designed, including a guiding mechanism, an oil recovery component, and an automatic oiling component. Driven by a servo motor, it achieves uniform guidance of the fiber filaments, automatic oiling, oil filtration, and oil recovery.

Benefits of technology

It achieves uniform oiling and electrostatic removal of fibers, reduces manual intervention, saves costs, effectively recovers excess oil, and improves production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses an air fiber texturing machine yarn guide structure, which comprises an equipment base, and an equipment box is arranged above the equipment base, and relates to the technical field of air fiber texturing machines. The air fiber texturing machine yarn guide structure realizes oiling while moving, has good oiling effect and good static electricity removing effect. The automatic oil injection assembly can automatically add oil, and manual intervention is not needed. The guiding mechanism is arranged to guide the air fiber covering yarn, realize uniform yarn collecting operation, and can be realized by a servo motor. The oil recovery assembly and the guiding mechanism are matched to filter the excess oil, realize automatic recovery, reduce oil waste, and do not need manual intervention and additional electric elements for driving. The operation of the whole device can be realized by a servo motor, and cost is effectively saved.
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Description

Technical Field

[0001] This invention relates to the field of air fiber textured machine technology, specifically to a guide wire structure for an air fiber textured machine. Background Technology

[0002] During the preparation of air-coated fiber, it is necessary to oil the air-coated fiber to remove static electricity from the fiber. Currently, when oiling the guide yarn of an air fiber textured machine, the oil is usually applied manually by using a brush to contact the fiber. Manual brushing increases the workload of workers and is prone to uneven oiling, resulting in poor static electricity removal. Some methods use immersion oiling of the air-coated fiber, but this is not convenient for timely oil replenishment and for recycling excess oil on the fiber. Furthermore, it is generally not convenient to achieve uniform winding of the fiber during the winding process. Therefore, this invention proposes a guide yarn structure for an air fiber textured machine to solve the above-mentioned problems. Summary of the Invention

[0003] To address the shortcomings of existing technologies, this invention provides a guide wire structure for an air fiber deformation 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 guide structure for an air fiber texturer, comprising a base, an equipment box mounted on top of the base, a take-up seat mounted on top of the base, connecting shafts rotatably extending through both sides of the take-up seat, a guide roller fixed between the two connecting shafts, a speed reducer mounted on the base, a servo motor mounted on the base, the output shaft end of the servo motor fixed to the input shaft end of the speed reducer, and the output shaft end of the speed reducer fixed to one of the connecting shaft ends. An oil-collecting seat is fixed inside the box. Upper guide rollers are installed on both sides of the top of the oil-collecting seat, and lower guide rollers are installed on both sides of the inner wall of the equipment box. An oil storage tank is fixed to the top of the oil-collecting seat by a bracket. A guiding mechanism is provided on the equipment base. The guiding mechanism can guide the fiber filaments so that the fiber filaments can be evenly wound on the guide rollers. An oil recovery component is provided between the oil-collecting seat and the equipment base. The oil recovery component works with the guiding mechanism to filter the oil and automatically draw the oil into the oil-collecting seat. An automatic oil filling component is provided between the oil storage tank and the oil-collecting seat.

[0005] Furthermore, the guiding mechanism includes a main pulley fixed to the end of another connecting shaft, a sliding frame sliding above the equipment base, a guide ring fixed to the top of the sliding frame via a vertical rod, a rear upright plate and a front upright plate fixed above the equipment base, a drive shaft rotatably extending through the front upright plate, a rotating block fixed to the surface of the drive shaft, a lever fixed through the rotating block, a toggle frame adapted to the lever fixed below the sliding frame, a transmission shaft rotatably extending through the rear upright plate, a secondary pulley fixed to the surface of the transmission shaft, a belt drive connecting the surfaces of the main pulley and the secondary pulley, a first bevel gear fixed to the surface of the transmission shaft, and a second bevel gear meshing with the first bevel gear fixed to the surface of the drive shaft.

[0006] Furthermore, the oil recovery assembly includes a filter box fixed to the side of the oil holding base. A filter screen is fixed to the inner wall of the filter box, and a folded guide plate is fixed to the inner wall of the filter box. An oil outlet pipe extending to the outside of the filter box is connected to the center of the folded guide plate. An oil suction cylinder is fixed inside the equipment box by a straight rod. A triangular apex block is fixed to the sliding frame by a connecting rod. A piston slides on the inner wall of the oil suction cylinder. A guide rod is fixed above the piston. A through groove is opened on the side of the equipment box. A contact rod slides on the inner wall of the through groove. The guide rod is fixed to the contact rod. The contact rod contacts the triangular apex block. A return spring is fixed between the contact rod and the equipment box. One end of the oil outlet pipe is connected to the bottom of the oil suction cylinder. An oil delivery pipe is also connected to the bottom of the oil suction cylinder. An oil delivery check valve is fixed to the surface of the oil delivery pipe. An oil outlet check valve is fixed to the surface of the oil outlet pipe.

[0007] Furthermore, the automatic oil filling assembly includes a conduit connected to the bottom of the oil storage tank, an oil filling pipe connected to the surface of the conduit, an extension rod fixed to the inner wall of the oil holding seat, a swing block rotatably mounted on the surface of the extension rod, a sealing column slidingly mounted on the inner wall of the conduit, a rotating rod rotatably mounted on the surface of the swing block, a connecting strip fixed to the end of the sealing column, the connecting strip rotatably connected to the rotating rod, a floating ball fixed to the surface of the swing block via a fixing rod, a first spring block fixed to the surface of the extension rod, a second spring block fixed to the surface of the fixing rod, and a support spring fixed between the first spring block and the second spring block.

[0008] Furthermore, an oil guide groove is provided on the top of the oil holding seat, and an extrusion assembly for extruding the fiber filaments is provided on the oil guide groove.

[0009] Furthermore, the extrusion assembly includes mounting blocks fixed on both sides of the inner wall of the oil guide groove, a lower guide roller rotating between the two mounting blocks, a lower magnetic plate sliding on the inner side of each of the two mounting blocks, an upper guide roller rotating between the two lower magnetic plates, and an upper magnetic plate that cooperates with the lower magnetic plate fixed on the inner side of each of the two mounting blocks.

[0010] Furthermore, the sides of the upper and lower magnetic plates that are close to each other are magnetic poles of the same polarity.

[0011] Furthermore, slots for fiber filaments to pass through are provided on both sides of the equipment box, and a refueling pipe is connected to the top of the oil storage tank.

[0012] Beneficial effects

[0013] This invention provides a guide wire structure for an air fiber texturer. Compared with the prior art, it has the following advantages:

[0014] The guide structure of this air-fiber texturing machine allows for complete immersion and oiling of the air-coated fiber, enabling oiling while the machine is in motion. This results in excellent oiling and anti-static effects. The automatic oiling component adds oil automatically without manual intervention. The guiding mechanism facilitates the uniform winding of the air-coated fiber, all driven by a servo motor. The oil recovery component, in conjunction with the guiding mechanism, filters excess oil before automatic recovery, minimizing waste. The entire process requires no manual intervention or additional electrical components; the entire device is controlled by a single servo motor, effectively saving costs. Attached Figure Description

[0015] Figure 1 This is a three-dimensional sectional view of the structure of the present invention;

[0016] Figure 2 This is a schematic diagram showing the connection between the oil holding base and the oil storage tank of the present invention;

[0017] Figure 3 This is a cross-sectional view of the oil-holding structure of the present invention;

[0018] Figure 4 This is a schematic diagram of the wire take-up seat structure of the present invention;

[0019] Figure 5 This is a schematic diagram of the guiding mechanism of the present invention;

[0020] Figure 6 For the present invention Figure 5 A magnified view of a section at point A in the middle;

[0021] Figure 7 This is a schematic diagram of the internal structure of the catheter of the present invention;

[0022] Figure 8 This is a schematic diagram of a partial structure of the oil recovery component of the present invention;

[0023] Figure 9 This is a cross-sectional view of the oil pumping cylinder structure of the present invention;

[0024] Figure 10 This is a cross-sectional view of the filter box structure of the present invention;

[0025] Figure 11 This is a schematic diagram of the extrusion assembly of the present invention.

[0026] In the diagram: 1-Equipment base, 2-Equipment box, 3-Take-up seat, 4-Coupling shaft, 5-Guide roller, 6-Reducer, 7-Guide mechanism, 71-Main pulley, 72-Sliding frame, 73-Upright pole, 74-Guide ring, 75-Rear upright plate, 76-Front upright plate, 77-Drive shaft, 78-Rotating block, 79-Toggle lever, 710-Toggle frame, 711-Transmission shaft, 712-Secondary pulley, 713-First bevel gear, 714-Second bevel gear, 8-Oil recovery assembly, 81-Filter box, 82-Filter screen, 83-Folded guide plate, 84-Oil outlet pipe, 85-Oil suction cylinder, 86-Triangular top block, 87-Piston, 88-Guide rod, 89-Contact rod, 810-Compound Position spring, 811-oil delivery pipe, 812-oil delivery check valve, 813-oil outlet check valve, 9-automatic oil injection assembly, 91-conduit pipe, 92-oil injection pipe, 93-extension rod, 94-swing block, 95-sealing column, 96-rotating rod, 97-connecting bar, 98-fixed rod, 99-floating ball, 910-first spring block, 911-second spring block, 912-support spring, 10-servo motor, 11-oil holding seat, 12-upper guide roller, 13-lower guide roller, 14-oil storage tank, 15-oil guide groove, 16-extrusion assembly, 161-mounting block, 162-lower guide roller, 163-lower magnetic plate, 164-upper guide roller, 165-upper magnetic plate, 17-groove. Detailed Implementation

[0027] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0028] Please see Figure 1-11This invention provides a technical solution: a guide structure for an air fiber textured machine, including a base 1, an equipment box 2 mounted on top of the base 1, and a take-up seat 3 mounted on top of the base 1. Two connecting shafts 4 are rotatably connected to both sides of the take-up seat 3. A guide roller 5 is fixed between the two connecting shafts 4 by a flange and bolts, which can wind up the fiber filaments during rotation. A reducer 6 is mounted on the base 1, which reduces the speed of a servo motor 10, enabling the guide roller 5 to wind up the fiber normally. The servo motor 10 is also mounted on the base 1, electrically connected to an external power source and controlled by a control switch. The output shaft end of the servo motor 10 is fixed to the input shaft end of the reducer 6, and the output shaft end of the reducer 6 is fixed to one end of one of the connecting shafts 4. An oil container 11 is fixed inside the equipment box 2, which can hold oil. Upper guide wheels 12 are mounted on both sides of the top of the oil container 11. The equipment box 2 has two lower guide rollers 13 installed on both sides of its inner wall to guide the fiber filaments, reduce friction between them, and effectively protect them. This allows the fiber filaments to move stably on the oil holding seat 11 for oiling. The top of the oil holding seat 11 is fixed with an oil storage tank 14 by a bracket. Both sides of the equipment box 2 have slots 17 for the fiber filaments to pass through. The top of the oil storage tank 14 is connected to an oil filling pipe. The equipment base 1 is equipped with a guide mechanism 7, which guides the fiber filaments so that they can be evenly wound on the guide roller 5. An oil recovery component 8 is installed between the oil holding seat 11 and the equipment base 1. The oil recovery component 8 works with the guide mechanism 7 to filter the oil and automatically draw it into the oil holding seat 11. An automatic oil filling component 9 is installed between the oil storage tank 14 and the oil holding seat 11.

[0029] In this embodiment, the guiding mechanism 7 includes a main pulley 71 fixed to the end of another connecting shaft 4. A sliding frame 72 is slidably mounted above the equipment base 1, allowing it to slide back and forth above the equipment base 1. A guide ring 74 is fixed to the top of the sliding frame 72 via a vertical rod 73, serving to guide the fiber filaments. The inner wall is coated with a Teflon coating to reduce friction with the fiber filaments, thereby effectively protecting them. A rear upright plate 75 and a front upright plate 76 are fixed above the equipment base 1. A drive shaft 77 rotates through the front upright plate 76. A rotating block 78 is fixed to the surface of the drive shaft 77. A lever 79 is fixed through the sliding frame 72, and an actuating frame 710 adapted to the lever 79 is fixed below the sliding frame 72. Through the cooperation of the lever 79 and the actuating frame 710, the entire sliding frame 72 can be driven to slide back and forth above the equipment base 1. A transmission shaft 711 is rotatably passed through the rear upright plate 75. A secondary pulley 712 is fixed on the surface of the transmission shaft 711. The surfaces of the main pulley 71 and the secondary pulley 712 are connected by belt drive. A first bevel gear 713 is fixed on the surface of the transmission shaft 711, and a second bevel gear 714 meshing with the first bevel gear 713 is fixed on the surface of the drive shaft 77.

[0030] In this embodiment, the oil recovery assembly 8 includes a filter box 81 fixed to the side of the oil holding base 11 for easy collection of excess oil. A filter screen 82 is fixed to the inner wall of the filter box 81 to facilitate the filtration of impurities in the oil. A folded guide plate 83 is fixed to the inner wall of the filter box 81 to facilitate the concentration of oil, allowing it to flow out through the oil outlet pipe 84. An oil outlet pipe 84, penetrating to the outside of the filter box 81, is connected to the center of the folded guide plate 83. An oil extraction cylinder 85 is fixed inside the equipment box 2 by a straight rod. A triangular apex block 86 is fixed to the sliding frame 72 by a connecting rod. A piston 87 slides on the inner wall of the oil extraction cylinder 85. The contact point between the piston 87 and the oil extraction cylinder 85 has good sealing performance, preventing leakage. A guide rod 88 is fixed above the piston 87. A through groove is provided on the side of the equipment box 2. The inner wall of the device has a sliding contact rod 89, and the guide rod 88 is fixed to the contact rod 89. The contact rod 89 contacts the triangular apex 86, and the triangular apex 86 moves back and forth continuously. In turn, the return spring 810 drives the contact rod 89 to slide up and down continuously. The return spring 810 is fixed between the contact rod 89 and the equipment box 2 to facilitate the rapid reset of the contact rod 89, which in turn allows the piston 87 to reset quickly. One end of the oil outlet pipe 84 is connected to the bottom of the oil extraction cylinder 85. The bottom of the oil extraction cylinder 85 is also connected to the oil delivery pipe 811. The surface of the oil delivery pipe 811 is fixed with an oil delivery check valve 812, which allows the oil to flow only unidirectionally from the oil delivery pipe 811 into the oil holding seat 11. The surface of the oil outlet pipe 84 is fixed with an oil outlet check valve 813, which allows the oil to flow only unidirectionally from the oil outlet pipe 84 into the oil extraction cylinder 85.

[0031] In this embodiment, the automatic oil filling assembly 9 includes a conduit 91 connected to the bottom of the oil storage tank 14. An oil filling pipe 92 is connected to the surface of the conduit 91. An extension rod 93 is fixed to the inner wall of the oil holding seat 11. A swing block 94 rotatably rotates on the surface of the extension rod 93. A sealing post 95, made of rubber, slides on the inner wall of the conduit 91 and can completely block the oil filling pipe 92. A rotating rod 96 rotatably rotates on the surface of the swing block 94. A connecting strip 97 is fixed to the end of the sealing post 95. The connecting strip 97 is rotatably connected to the rotating rod 96. The surface of the swing block 94 is connected to the oil filling pipe 92. A float ball 99 is fixed to the fixed rod 98 and can float on the oil surface inside the oil reservoir 11. A first spring block 910 is fixed to the surface of the extension rod 93 and a second spring block 911 is fixed to the surface of the fixed rod 98. A support spring 912 is fixed between the first spring block 910 and the second spring block 911. The support spring 912 facilitates the float ball 99 to maintain stable contact with the oil surface and allows the sealing column 95 to slide smoothly to the right after the liquid level drops, thereby allowing the oil to enter the oil injection pipe 92.

[0032] In this embodiment, an oil guide groove 15 is provided on the top of the oil holding seat 11 to facilitate the smooth flow of oil. An extrusion assembly 16 for extruding the fiber filaments is provided on the oil guide groove 15. The extrusion assembly 16 includes mounting blocks 161 fixed on both sides of the inner wall of the oil guide groove 15. A lower guide roller 162 rotates between the two mounting blocks 161. A lower magnetic plate 163 slides on the inner side of each of the two mounting blocks 161. An upper guide roller 164 rotates between the two lower magnetic plates 163. An upper magnetic plate 165 that cooperates with the lower magnetic plate 163 is fixed on the inner side of each of the two mounting blocks 161. The sides of the upper magnetic plate 165 and the lower magnetic plate 163 that are close to each other are like magnetic poles. By utilizing the repulsive force between like magnetic poles, the upper guide roller 164 can press down and cooperate with the lower guide roller 162 to extrude the fiber filaments without affecting the movement of the fiber filaments, thus expelling excess oil from the fiber filaments.

[0033] Furthermore, any content not described in detail in this specification is existing technology known to those skilled in the art.

[0034] During operation, after the air-coated fiber is formed, it passes through the equipment box 2 and the oil holder 11, and then its end is fixed to the surface of the guide roller 6. The servo motor 10 is started, which in turn drives the guide roller 5 to rotate through the reducer 6, thereby achieving the winding of the air-coated fiber. At the same time, the transmission shaft 711 is driven to rotate by the cooperation of the main pulley 71 and the auxiliary pulley 712. In turn, the drive shaft 77 is driven to rotate by the cooperation of the first bevel gear 713 and the second bevel gear 714. The drive shaft 77 is further rotated by the rotation block 78 and the lever 7. 9 and the actuating frame 710 drive the entire sliding frame 72 to reciprocate back and forth, so that the guide ring 74 can evenly wind the air-coated fiber onto the surface of the guide roller 6. At the same time, as the air-coated fiber moves in the oil holder 11, it will absorb a lot of oil. As the oil decreases, the liquid level will drop, causing the float ball 99 to descend, causing the swing block 94 to rotate clockwise. This, in turn, pulls the connecting strip 97 through the rotating rod 96, causing the entire sealing column 95 to slide, so that the end of the oil injection pipe 92 is not blocked, and thus the oil can pass through the guide. The oil flows into the oil injection pipe 92 through pipe 91, allowing the oil to enter the oil collection seat 11. As the liquid level in the oil collection seat 11 rises, the floating ball 99 rises, causing the swing block 94 to rotate counterclockwise. This allows the sealing column 95 to seal the oil injection pipe 92, stopping the oil injection operation. Under the pressure of the lower guide roller 162 and the upper guide roller 164, excess oil in the fiber air-coated yarn is squeezed down and flows through the oil guide groove 15 to the filter box 81. The oil filtered by the filter screen 82 is concentrated at the center of the folded guide plate 83. When the sliding frame 72 reciprocates back and forth, it drives the triangular top block 86 to reciprocate back and forth, thereby continuously squeezing the contact rod 89. With the cooperation of the return spring 810, the piston 87 is driven to move up and down through the guide rod 88. When the piston 87 moves upward, the oil is sucked into the oil pumping cylinder 85 through the oil outlet pipe 84 and the oil outlet check valve 813. When the piston 87 moves downward, the oil in the oil pumping cylinder 85 is forced out and pushed into the oil holding seat 11 through the oil delivery pipe 811 and the oil delivery check valve 812, reducing the waste of oil.

[0035] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0036] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A guide structure for an air fiber texturer, comprising a base (1), an equipment box (2) mounted above the base (1), and a take-up seat (3) mounted above the base (1), characterized in that: The take-up seat (3) has connecting shafts (4) that rotate through both sides. A guide roller (5) is fixed between the two connecting shafts (4). A reducer (6) is installed on the equipment base (1). A servo motor (10) is also installed on the equipment base (1). The output shaft end of the servo motor (10) is fixed to the input shaft end of the reducer (6). The output shaft end of the reducer (6) is fixed to the end of one of the connecting shafts (4). An oil holding seat (11) is fixed inside the equipment box (2). Upper guide rollers (12) are installed on both sides of the top of the oil holding seat (11). The inner walls of the equipment box (2) are... All are equipped with a lower guide roller (13). The top of the oil holding seat (11) is fixed with an oil storage tank (14) by a bracket. The equipment base (1) is provided with a guide mechanism (7). The guide mechanism (7) can guide the fiber so that the fiber can be evenly wound on the guide roller (5). An oil recovery component (8) is provided between the oil holding seat (11) and the equipment base (1). The oil recovery component (8) works with the guide mechanism (7) to filter the oil and automatically extract the oil into the oil holding seat (11). An automatic oil injection component (9) is provided between the oil storage tank (14) and the oil holding seat (11). The guiding mechanism (7) includes a main pulley (71) fixed at the end of another connecting shaft (4), a sliding frame (72) sliding above the equipment base (1), a guide ring (74) fixed at the top of the sliding frame (72) by a pole (73), a rear plate (75) and a front plate (76) fixed above the equipment base (1), a drive shaft (77) rotatably passing through the front plate (76), a rotating block (78) fixed on the surface of the drive shaft (77), and a lever (79) fixed through the rotating block (78). A toggle frame (710) adapted to the lever (79) is fixed below the sliding frame (72). A transmission shaft (711) is rotatably passed through the rear upright plate (75). A secondary pulley (712) is fixed on the surface of the transmission shaft (711). The surfaces of the main pulley (71) and the secondary pulley (712) are connected by belt drive. A first bevel gear (713) is fixed on the surface of the transmission shaft (711). A second bevel gear (714) meshing with the first bevel gear (713) is fixed on the surface of the drive shaft (77). The oil recovery assembly (8) includes a filter box (81) fixed to the side of the oil holding base (11). A filter screen (82) is fixed to the inner wall of the filter box (81). A folded guide plate (83) is fixed to the inner wall of the filter box (81). An oil outlet pipe (84) that extends through the center of the folded guide plate (83) to the outside of the filter box (81) is connected to the center of the folded guide plate (83). An oil extraction cylinder (85) is fixed inside the equipment box (2) by a straight rod. A triangular apex block (86) is fixed on the sliding frame (72) by a connecting rod. A piston (87) slides on the inner wall of the oil extraction cylinder (85). A guide rod (88) is fixed above the piston (87). The equipment box (2) has a through groove on its side, and a contact rod (89) slides on the inner wall of the through groove. The guide rod (88) is fixed to the contact rod (89). The contact rod (89) contacts the triangular top block (86). A return spring (810) is fixed between the contact rod (89) and the equipment box (2). One end of the oil outlet pipe (84) is connected to the bottom of the oil pump (85). The bottom of the oil pump (85) is also connected to the oil delivery pipe (811). An oil delivery check valve (812) is fixed on the surface of the oil delivery pipe (811). An oil outlet check valve (813) is fixed on the surface of the oil outlet pipe (84).

2. The guide wire structure of an air fiber texturer according to claim 1, characterized in that: The automatic oil filling assembly (9) includes a conduit (91) connected to the bottom of the oil storage tank (14), an oil filling pipe (92) connected to the surface of the conduit (91), an extension rod (93) fixed to the inner wall of the oil holding seat (11), a swing block (94) rotatably connected to the surface of the extension rod (93), a sealing column (95) slidably connected to the inner wall of the conduit (91), a rotating rod (96) rotatably connected to the surface of the swing block (94), a connecting strip (97) fixed to the end of the sealing column (95), the connecting strip (97) rotatably connected to the rotating rod (96), a floating ball (99) fixed to the surface of the swing block (94) by a fixing rod (98), a first spring block (910) fixed to the surface of the extension rod (93), a second spring block (911) fixed to the surface of the fixing rod (98), and a support spring (912) fixed between the first spring block (910) and the second spring block (911).

3. The guide wire structure of an air fiber texturer according to claim 1, characterized in that: The top of the oil container (11) is provided with an oil guide groove (15), and an extrusion assembly (16) for extruding the fiber filaments is provided on the oil guide groove (15).

4. The guide wire structure of an air fiber texturer according to claim 3, characterized in that: The extrusion assembly (16) includes mounting blocks (161) fixed on both sides of the inner wall of the oil guide groove (15), a lower guide roller (162) rotating between the two mounting blocks (161), a lower magnetic plate (163) slidably connected to the inner side of each of the two mounting blocks (161), an upper guide roller (164) rotating between the two lower magnetic plates (163), and an upper magnetic plate (165) fixed to the inner side of each of the two mounting blocks (161) for use with the lower magnetic plate (163).

5. The guide wire structure of an air fiber texturer according to claim 4, characterized in that: The sides of the upper magnetic plate (165) and the lower magnetic plate (163) that are close to each other are the same magnetic poles.

6. The guide wire structure of an air fiber texturer according to claim 1, characterized in that: Both sides of the equipment box (2) are provided with slots (17) for fiber filaments to pass through, and the top of the oil storage tank (14) is connected to a refueling pipe.