Method for producing low-fuzz irregularly shaped fibers using the polyester FDY process

Adjustable ceramic guide frames in the FDY process for polyester fibers maintain yarn verticality and optimize vibration, addressing fuzzing issues in irregular shapes by using optical sensors for precise guide positioning, enhancing product quality.

JP7843101B2Active Publication Date: 2026-04-09JIANGSU HENGLI CHEM FIBER
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-09-22
Publication Date
2026-04-09

AI Technical Summary

Technical Problem

Existing polyester FDY processes for manufacturing irregularly shaped cross-section fibers face issues with high fuzz generation due to fixed ceramic guide spacing, leading to loop fuzzing and impaired product appearance, as well as suboptimal yarn vibration effects from uneven oil dispersion and fiber entanglement.

Method used

Adjustable ceramic guide frames that allow for dynamic lateral and vertical positioning to maintain the yarn bundle's vertical state within the pre-interlacer, using optical fiber sensors to detect yarn vibration and adjust guide positions for optimal vibration, reducing fuzz generation.

Benefits of technology

Significantly reduces fuzzing in irregularly shaped fibers by ensuring vertical yarn alignment and optimal vibration, improving product quality and reducing loop hairiness and breakage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The objective of the present invention is to provide a method for producing low-fluff irregular fiber using a polyester FDY process. The present invention provides a method for producing low-fluff irregular fiber using a polyester FDY process. When producing irregular fiber in the FDY process, the horizontal or vertical position of the ceramic guide in the pre-interlacing guide frame is adjusted to maintain the vertical state of the yarn bundle in the pre-interlacer and optimize the vibration effect, thereby producing low-fluff irregular fiber. The irregular cross-section fiber described above can be controlled to a fluff rate of 0.35-0.65% for triangular irregular fiber, 0.85-1.25% for trilobal irregular fiber, and 0.5-0.85% for flat irregular fiber. The method of the present invention can suppress fluffing caused by yarn bundle vibration and collision with the pre-interlacer, reduce loop fluffing caused by entanglement and yarn breakage between single yarns, and prevent fluffing during the hot drawing process by uniformly dispersing the oil agent, thereby significantly improving the quality of irregular cross-section fiber products.
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Description

Technical Field

[0001] The present invention belongs to the technical field of spinning processing, and relates to a method for manufacturing low-hairiness profiled fibers by a polyester FDY process.

Background Art

[0002] Profiled cross-section fibers are fibers having various cross-sectional shapes such as triangular, trilobal, flat, Y-shaped, etc. manufactured using a nozzle having a non-circular hole in spinning processing. Compared with circular cross-section fibers, there are problems that the requirements for the processing process and manufacturing equipment are more stringent, and hairiness is likely to occur during the running of the filaments.

[0003] In the polyester FDY process, usually, a pre-interlacer is installed between the oiling device and the heat roll. Its main function is to uniformly disperse the sizing agent applied to the yarn strip on the surface of each single filament, improve the bundling property and antistatic property of the yarn strip, enhance the spinning property, and suppress the generation of loop hairiness. As shown in FIG. 1, the pre-interlacer 7 is attached to the pre-interlace panel 10, and upper and lower frames for fixing ceramic guides and a compressed air supply pipe for interlacing are arranged on the panel. The yarn strip is dispersed and vibrated by the compressed air ejected from the pre-interlace nozzle with the upper and lower ceramic guides as fulcrums to equalize the sizing agent.

[0004] During the manufacturing of irregularly shaped cross-section fibers, a large amount of fuzz is generated in the preinterlacer, resulting in loop fuzzing and impairing the product's appearance. The main defects of existing equipment are as follows: 1. Although the spacing of the ceramic guides for preinterlacing is uniform (see Figures 1-2), if the width of the guide passage is larger than the yarn diameter, the upper and lower pivot points will have an angle difference as the yarn enters and exits the upper and lower ceramic guides. As a result, the yarn cannot maintain a vertical position within the preinterlacing passage, and the inclined yarn collides with the preinterlacer, generating fuzz. 2. The yarn vibration effect within the preinterlacer depends on the passage size, nozzle structure, interlacing pressure, yarn tension, and vibration distance (spacing between upper and lower ceramic guides). In existing equipment, the spacing between the upper and lower ceramic guides is fixed (see Figure 1), so the optimal vibration effect cannot be obtained by adjusting the pressure alone. When the pressure is insufficient, the inter-fiber adhesion strength decreases due to uneven oil dispersion, making fuzzing more likely during the heat roll stretching process. Conversely, when the pressure is excessive, entanglement and collision between fibers cause loops and breakage.

[0005] In other words, there is a strong need to develop a method for reducing fuzziness in irregularly shaped cross-section fibers by adjusting the pre-interlace guide frame. [Overview of the project]

[0006] The present invention aims to solve the problems in the prior art and provide a method for manufacturing low-fuzzing, irregularly shaped cross-section fibers using a polyester FDY process. Specifically, the conventional fixed, equally spaced ceramic guides are changed to a structure that allows for lateral position adjustment. The lateral spacing of the ceramic guides is dynamically adjusted according to the pivot point position when the yarn bundle passes through the ceramic guides, enabling the yarn bundle to maintain a vertical state within the pre-interlacer. Furthermore, the conventional upper and lower ceramic guides with fixed vertical spacing are changed to a structure that allows for vertical spacing adjustment. The spacing of the upper and lower ceramic guides is adjusted according to the characteristics of the fiber type, optimizing the vibration effect of the yarn bundle in the poly-interlacer. By using the above method, we succeeded in significantly reducing the fuzzing of irregularly shaped cross-section fibers.

[0007] In detail, the present invention selects the following solutions. The method for producing low-fluffy irregularly shaped fibers using the polyester FDY process involves adjusting the lateral or vertical position of the ceramic guide in the pre-interlace guide frame during the FDY process to maintain the vertical state of the yarn bundle within the pre-interlacer and optimize the vibration effect, thereby producing low-fluffy irregularly shaped fibers. In this invention, irregularly shaped cross-section fibers refer to fibers having a triangular, trefoil, or flattened cross-section. In the case of triangular irregularly shaped fibers, the fluffing rate can be controlled to 0.35-0.65%, in the case of trefoil irregularly shaped fibers to 0.85-1.25%, and in the case of flattened irregularly shaped fibers to 0.5-0.85%. It has been demonstrated that by adopting the method of this invention, the fluffing rate of irregularly shaped cross-section fibers can be significantly reduced compared to conventional techniques. The vibration of the yarn within the preinterlacer is detected by optical fiber sensors. The optical fibers of the optical fiber sensors are divided into two groups, positioned directly in front of the preinterlacer yarn path (transmitting optical fiber) and directly behind it (receiving optical fiber), and both are arranged in a lateral array manner on the horizontal symmetry axis of the preinterlacer. The diameter of the optical fiber is smaller than the diameter of the single yarn to completely block the light from the transmitting optical fiber during the vibration process of the single yarn. The optical fiber sensors detect the distance to the left and right of the vertical central axis of the preinterlacer yarn path as all single yarns in the yarn bundle pass vertically from top to bottom along the horizontal symmetry axis of the yarn path. The distance value of the vertical central axis of the preinterlacer yarn path is set to 0, the distance to the left is a positive value, and the distance to the right is a negative value. After collecting the distance data, the central processing unit of the computer calculates the discrete distribution CV value of the distance by statistical calculation and generates a time-distance curve based on the distance data. At the distances where the single thread vibrates most maximally to the left and to the right, horizontal vibration upper and lower limits are drawn, respectively, and a median line is drawn in the middle of the vibration upper and lower limits. Using the median line as a reference, a line shifted 20% downward from the vibration upper limit is defined as the upper section line of the normal vibration interval, and a line shifted 20% upward from the vibration lower limit is defined as the lower section line (horizontal line) of the normal vibration interval. Furthermore, using the median line as a reference, a line shifted 30% downward from the upper section line is defined as the upper deviation line, and a line shifted 30% upward from the lower section line is defined as the lower deviation line (horizontal line). If the time-distance curve continuously appears in a region above the upper section line or below the lower section line within 2 ms, the entire region of the curve within that time period is marked with a red rectangle and defined as a "long segment". If a curve appears continuously within 2ms only in the region between the upper and lower deviation lines, the entire region of the curve within that time period is marked with a red rectangle and defined as a "short segment". If the discrete distance distribution CV value is less than 3.5% (a small CV value indicates uniform vibration), the midline coincides with the longitudinal central axis of the preinterlacer yarn path (i.e., the value is 0), and no "long segments" or "short segments" occur in the time-distance curve (the yarn is located on the preinterlacer central axis and maintains a vertical state, the vibration is just right, and there are no intermittent vibrations), it indicates that the yarn has maintained its vertical position within the preinterlacer and achieved the optimal vibration effect. Multiple optical fibers are placed within the pre-interlaced yarn passage. The diameter of the optical fibers is designed to be smaller than the diameter of the single filament, allowing for complete shielding of light emission from the optical fibers during the vibration process of the single filament. The photoelectric converter converts the light intensity received by the optical fiber into a voltage signal and compares it with a pre-set reference voltage signal in a comparator. If the detected voltage is below the reference value, it is determined that the single filament is not present; if it is above the reference value, it is determined that it is present. The central processing unit generates a time-distance curve based on this signal, detects the inclination and vibration state of the yarn within the pre-interlacer by analyzing the shape of the curve, and further performs a quantitative evaluation of the yarn vibration pattern. Based on the analysis results, the lateral and vertical positions of the guide frame are adjusted so that the yarn maintains a vertical state within the pre-interlaced yarn passage and achieves the optimal vibration effect, resulting in a significant reduction in the fuzz generation rate of irregularly shaped cross-section fibers compared to conventional processes.

[0008] Preferred embodiments of the present invention are shown below.

[0009] In the method for producing low-fluffy irregularly shaped fibers using the polyester FDY process described above, the pre-interlace guide frame includes a grooved frame, a ceramic guide, a positioning block, a retaining plate, and screws I, and further comprises sliding grooves and screws II installed at both ends of the grooved frame. The ceramic guide and positioning block are mounted within the grooved frame and fixed by the retaining plate and screws I. The ceramic guide and positioning block are arranged alternately in the order of one positioning block, one ceramic guide, the next positioning block, and the next ceramic guide, that is, one ceramic guide is installed between two positioning blocks.

[0010] The grooved frame and pre-interlacer are both positioned horizontally, and the pre-interlacer is fixed to the center of the pre-interlace panel.

[0011] The grooved frame is divided into two sections, upper and lower. The upper grooved frame is located above the pre-interracer, and the lower grooved frame is located below the pre-interracer.

[0012] The slide groove has an inwardly recessed trapezoidal structure. On both the left and right sides of the pre-interlaced panel, there are slide rails with a convex trapezoidal structure that corresponds to the slide groove structure. The slide groove is fitted into the slide rail, and the slide groove and slide rail are fixed together by screws II. The vertical distance between the upper and lower ceramic guides is adjusted by moving the slide groove up and down on the slide rail. One screw II is provided on each of the left and right ends of the grooved frame, and screw II includes a set screw and a handle. When the handle is tightened clockwise by hand, the set screw connected to the handle moves inward into the slide groove, contacts and compresses against the slide rail, and fixes the vertical distance between the upper and lower ceramic guides.

[0013] If the distance coordinate corresponding to the median of the time-distance curve is positive, and fuzz appears at the upper left corner of the pre-interlacer, it indicates that the yarn bundle is tilted generally to the left and counterclockwise within the pre-interlace thread path. In this case, the size of the upper positioning block should be adjusted to move the upper yarn bundle guide position to the right.

[0014] If the distance coordinate corresponding to the midline of the time-distance curve is positive, and fuzz appears at the lower left corner of the pre-interlacer, it indicates that the yarn bundle is tilted generally to the left and clockwise within the pre-interlace passage. In this case, the size of the lower positioning block should be adjusted to move the lower yarn bundle guide position to the right.

[0015] If the distance coordinate corresponding to the midpoint of the time-distance curve is negative, and fuzz appears at the lower right corner of the pre-interlacer, it indicates that the yarn bundle is tilted generally to the right and counterclockwise within the pre-interlace thread path. In this case, the size of the lower positioning block should be adjusted to move the lower yarn bundle guide position to the left.

[0016] If the distance coordinate corresponding to the midline of the time-distance curve is negative, and fuzz appears at the upper right corner of the pre-interlacer, it indicates that the yarn bundle is tilted generally to the right and clockwise within the pre-interlace thread path. In this case, the size of the upper positioning block should be adjusted to move the upper yarn bundle guide position to the left.

[0017] Based on the passage width of the ceramic guide and the contact point between the thread and the guide, the minimum machining deviation of the positioning block width between ceramic guides is set to 0.25 mm, meaning that the minimum adjustment unit for the lateral guide position is 0.25 mm.

[0018] If "long segments" appear in the curve, it indicates excessive vibration of the yarn bundle, making loop fraying likely due to entanglement and collision of single threads. In this case, the vertical distance between the upper and lower grooved frames should be reduced to increase the tension of the yarn bundle and shorten the vibration distance, thereby improving the vibration effect. The adjustment range is usually 1 mm closer to the upper and lower guide frames.

[0019] If "short segments" appear in the curve, it indicates insufficient vibration of the yarn bundle, leading to intermittent vibration of individual threads. This results in uneven oiling of the yarn and fuzzing due to heat stretching. In this case, the vertical distance between the upper and lower grooved frames should be increased, the tension reduced, and the vibration distance extended to improve the vibration effect. The adjustment range is typically 1 mm apart between the upper and lower guide frames.

[0020] In the method for producing low-fluffy irregularly shaped fibers using the polyester FDY process described above, the width of the positioning block is 3 to 5 mm, and the widths of each positioning block may be equal or different.

[0021] In the method for manufacturing low-hairiness profiled fibers by the polyester FDY process, the ceramic guides installed in the upper grooved frame are of the "U" type, and the ceramic guides in the lower grooved frame are of the "fork" type (these are components well-known in the industry).

[0022] In the method for manufacturing low-hairiness profiled fibers by the polyester FDY process, the passage width of all the ceramic guides is set to 1.5 mm and is designed to be larger than the diameter of ordinary profiled cross-section fibers.

[0023] In the method for manufacturing low-hairiness profiled fibers by the polyester FDY process, the lateral widths of both the "U" type and "fork" type ceramic guides are 12 mm.

[0024] In the method for manufacturing low-hairiness profiled fibers by the polyester FDY process, the surface of the slide rail and the inner surface of the slide groove are mirror-finished so that the slide groove can smoothly move up and down by the slide rail, and the vertical distance between the upper and lower ceramic guides is adjusted.

[0025] In the method for manufacturing low-hairiness profiled fibers by the polyester FDY process, a gap of 0.3 - 0.5 mm is provided between the slide groove and the slide rail on each side to ensure smooth up and down movement.

[0026] In the method for manufacturing low-hairiness profiled fibers by the polyester FDY process, scales are displayed in the area near the slide rail of the pre-interlace panel, and 60 mm above and below are marked based on the horizontal symmetry axis of the pre-interlace panel.

[0027] In the method for manufacturing low-hairiness profiled fibers by the polyester FDY process, the parameters of the FDY process are as follows: the winding speed is 3800 - 5300 m / min, the speed of the first roll is 2400 - 3980 m / min, the draw ratio of the hot roll is 1.1 - 1.6, the pre-interlace pressure is 0.025 - 0.055 MPa, and the oil agent adhesion rate is 0.8 - 1.2%.

[0028] In the method for manufacturing low-hairiness profiled fibers by the polyester FDY process, the sampling frequency of the optical fiber sensor is set to 100 kHz, that is, 100 data are collected per 1 ms.

[0029] The method for manufacturing low-hairiness profiled fibers by the polyester FDY process of the present invention can suppress the generation of hairiness due to the collision between the yarn bundle vibration and the pre-interlacer by adjusting the horizontal and vertical positions of the pre-interlacer guide frame, reduce the loop hairiness caused by the entanglement and breakage between single yarns, and prevent the hairiness in the hot drawing process due to the uniform dispersion of the oil agent. Therefore, the quality of the profiled cross-section fiber products is greatly improved.

Brief Description of the Drawings

[0030] [Figure 1] It is a front view of a conventional pre-interlacer device. [Figure 2] It is a top view of the guide frame inside a conventional pre-interlacer device. [Figure 3] It is a front view of the pre-interlacer device of the present invention. [Figure 4] It is a top view of the guide frame inside the pre-interlacer device of the present invention. [Figure 5] It is a top view of the ceramic guide. [Figure 6] It is a front view of the ceramic guide. [Figure 7] It is a top view of the guide frame slide groove. [Figure 8] It is an oblique projection view of the guide frame slide groove. [Figure 9] It is a partial schematic view of the upper guide frame assembled on the pre-interlacer panel. [Figure 10] It is a schematic view of the state of the yarn to be pre-interlaced and the yarn located at different fulcrums of the ceramic guide. [Figure 11] It is a schematic view of the yarn vibration inside the pre-interlacer. [Figure 12]This is a front view of the optical fiber to be placed inside the preinterlacer. [Figure 13] This is a top view of the optical fiber layout within the preinterlacer. [Figure 14] This is a schematic diagram showing the state in which the thread is tilted to the left and counterclockwise within the pre-interlace thread passage. [Figure 15] This is a schematic diagram showing the yarn strands in a state where they are positioned to the left and tilted clockwise within the pre-interlace thread pathway. [Figure 16] This is a schematic diagram showing the state in which the thread is tilted to the right and counterclockwise within the pre-interlace thread passage. [Figure 17] This is a schematic diagram showing the yarn strands in a state where they are positioned to the right and tilted clockwise within the pre-interlace thread pathway. [Figure 18] This is a time-distance curve diagram showing a "long segment". [Figure 19] This is a time-distance curve diagram showing the "short segment". [Modes for carrying out the invention]

[0031] The present invention will be described in more detail below with reference to examples, but the present invention is not limited to the following examples as long as it does not exceed the gist of the invention. Furthermore, while engineers in the art may modify the present invention in various ways after reading its contents, such modifications are still limited to the claims of the present invention as equivalent forms of the present invention.

[0032] As shown in Figures 3 to 9, the pre-interlacing apparatus includes a pre-interlacing panel 10, a pre-interlacer 7, and a pre-interlacing guide frame. The pre-interlacer 7 is fixed to the center of the pre-interlacing panel 10. The pre-interlace guide frame consists of a grooved frame, a ceramic guide, a positioning block 4, a retaining plate 5, a screw I6, and slide grooves 13 and screws II14 installed at both ends of the grooved frame. The grooved frame is divided into upper and lower sections; the upper grooved frame 11 is located above the pre-interlacer 7, and the lower grooved frame 12 is located below the pre-interlacer 7, both positioned horizontally with respect to the pre-interlacer 7. The slide groove 13 has an inwardly concave trapezoidal structure. On both the left and right sides of the pre-interlace panel 10, slide rails 8, which have an outwardly convex trapezoidal structure relative to the slide groove 13, are installed vertically. The slide groove 13 is fitted into the slide rail 8 and fixed with screws II14. The surface of the slide rail 8 and the inner surface of the slide groove 13 are smoothly finished, and a gap of 0.3 to 0.5 mm is provided between the slide groove and the slide rail on each side, allowing the slide groove 13 to move up and down easily by the slide rail 8, thereby adjusting the vertical distance between the upper and lower guide ceramic components. In the area near the slide rail 8 of the pre-interlaced panel 10, scales 9 are displayed at intervals of 60 mm above and below the horizontal axis of symmetry of the pre-interlaced panel. A "U-shaped" ceramic guide 2 is installed in the upper grooved frame 11, and a "fork-shaped" ceramic guide 3 is installed in the lower grooved frame 12. The lateral width of both the "U-shaped" and "fork-shaped" ceramic guides is 12 mm, and the passage width of all ceramic guides is 1.5 mm. The ceramic guides and positioning blocks 4 are installed in the grooved frame and fixed by a retaining plate 5 and screws I6. The ceramic guides and positioning blocks are arranged alternately in the order of one positioning block, one ceramic guide, the next positioning block, and the next ceramic guide. The width of the positioning blocks is 3 to 5 mm, and the width of each block may be the same or different. The minimum machining deviation of the width of the positioning blocks is possible up to 0.25 mm, which makes the minimum left-right adjustment unit of the lateral guide position 0.25 mm. As shown in Figures 10 to 13, within the preinterlacer 7, the yarn 1 is blown by compressed air injected from the nozzle 17, causing vibration, and the vibration of the yarn is detected by an optical fiber sensor. The optical fibers of the optical fiber sensor are divided into two groups, positioned directly in front of the preinterlacer yarn path (emitting optical fiber 15) and directly behind it (receiving optical fiber 16), and both are arranged in a lateral array manner on the horizontal symmetry axis of the preinterlacer. The sampling frequency of the optical fiber sensor is set to 100 kHz, meaning that data is collected 100 times per 1 ms. The diameter of the optical fiber is made smaller than the diameter of the single yarn. The optical fiber sensor detects the distance to the left and right of the vertical central axis 18 of the preinterlacer yarn path when all single yarns in the yarn bundle pass vertically from top to bottom along the horizontal symmetry axis of the yarn path. The distance value of the vertical central axis of the preinterlacer yarn path is set to 0, the distance to the left is set to a positive value, and the distance to the right is set to a negative value. After collecting distance data, the computer's central processing unit calculates the discrete distribution CV value of the distance using statistical calculations and generates a time-distance curve based on the distance data. As shown in Figures 18 and 19, horizontal vibration upper limit line 20 and vibration lower limit line 21 are drawn at the distance where the monofilament vibrates maximally to the left and to the right, respectively, and a median line 19 is drawn in the middle of the vibration upper and lower limits. Using the median line as a reference, the line obtained by shifting the vibration upper limit line downward by 20% is defined as the upper section line 22 of the normal vibration interval, and the line obtained by shifting the vibration lower limit line upward by 20% is defined as the lower section line 23 (horizontal line) of the normal vibration interval. Furthermore, using the median line as a reference, the line obtained by shifting the upper section line downward by 30% is defined as the upper deviation line 24, and the line obtained by shifting the lower section line upward by 30% is defined as the lower deviation line 25 (horizontal line). If a time-distance curve appears consecutively within 2ms in an area above the upper section line or below the lower section line, the entire area of ​​the curve within that time period is marked with a red rectangle and defined as a "long segment" 26. If a curve appears consecutively only in the area between the upper and lower deviation lines within 2ms, the entire area of ​​the curve within that time period is marked with a red rectangle and defined as a "short segment" 27. If the discrete distribution CV value of the distance is less than 3.5%, the median coincides with the longitudinal central axis 18 of the preinterlacer yarn path, and no "long segments" or "short segments" occur in the time-distance curve, it indicates that the yarn remained vertical within the preinterlacer and achieved the optimal vibration effect. If the distance coordinate corresponding to the median of the time-distance curve is positive, and fuzz appears at the upper left corner of the pre-interlacer, it indicates that the yarn bundle is tilted generally to the left and counterclockwise within the pre-interlace thread path (Figure 14). In this case, the size of the upper positioning block should be adjusted to move the upper yarn bundle guide position to the right. If the distance coordinate corresponding to the midline of the time-distance curve is positive, and fuzzing occurs at the lower left corner of the pre-interlacer, it indicates that the yarn bundle is generally tilted to the left and clockwise within the pre-interlace passage (Figure 15). In this case, the size of the lower positioning block should be adjusted to move the lower yarn bundle guide position to the right. If the distance coordinate corresponding to the midline of the time-distance curve is negative, and fuzzing occurs at the lower right corner of the pre-interlacer, it indicates that the yarn bundle is tilted generally to the right and counterclockwise within the pre-interlace thread path (Figure 16). In this case, the size of the lower positioning block should be adjusted to move the lower yarn bundle guide position to the left. If the distance coordinate corresponding to the midline of the time-distance curve is negative, and fuzzing occurs at the upper right corner of the preinterlacer, it indicates that the yarn bundle is tilted generally to the right and clockwise within the preinterlace thread path (Figure 17). In this case, the size of the upper positioning block should be adjusted to move the upper yarn bundle guide position to the left. As shown in Figure 18, if "long segments" appear in the curve, the vibration of the yarn bundle is excessive, and loop fraying is likely to occur due to entanglement and collision of single threads. In this case, the vertical distance between the upper and lower grooved frames should be reduced to increase the tension of the yarn bundle and shorten the vibration distance, thereby improving the vibration effect. The adjustment range is usually 1 mm closer to the upper and lower guide frames. As shown in Figure 19, if "short segments" appear in the curve, it indicates insufficient vibration of the yarn bundle, making intermittent vibration of the single yarn more likely. This leads to uneven oiling of the yarn and fuzzing due to heat stretching. In this case, the vertical distance between the upper and lower grooved frames should be increased, the tension reduced, and the vibration distance extended to improve the vibration effect. The adjustment range is usually 1 mm apart between the upper and lower guide frames. In the present invention Fuzz percentage The test method for shaped fibers follows industry standard FZ / T 50054-2021 "Online Intelligent Test of Chemical Fiber Filament Package Appearance". Fuzz percentage The task is to test it.

[0033] Example 1 The method for manufacturing low-fuzz trifle shaped fibers using the polyester FDY process employs the aforementioned pre-interlacing apparatus, with 12 ceramic guides in each of the upper and lower sections. When manufacturing trifle shaped fibers in the FDY process, the lateral and vertical positions of the ceramic guides on the pre-interlacing guide frame are adjusted while the yarn is moving through the thread path. This achieves an optimal vibration effect while the yarn bundle maintains its vertical position within the pre-interlacer, thereby producing 55 dtex / 72 f trifle shaped fibers. In the FDY process, the winding speed is set to 4900 m / min, the first roll speed to 3875 m / min, the heat roll stretching ratio to 1.32, the pre-interlace pressure to 0.05 MPa, and the oil adhesion rate to 1.18%. To achieve the optimal vibration effect while the yarn bundle remains vertical within the pre-interlacer, the widths of the 1-13# positioning blocks between the upper "U-shaped" ceramic guides are set to 4.5 mm, 4 mm, 4 mm, 4.25 mm, 4 mm, 4.25 mm, 4 mm, 3.75 mm, 4 mm, 3.5 mm, 4 mm, 4 mm, 4 mm, and 4.5 mm respectively. The widths of the 1-13# positioning blocks between the lower "fork-shaped" ceramic guides are set to 3.5 mm, 4 mm, 4 mm, 4 mm, 4 mm, 4 mm, 4 mm, 4 mm, 4 mm, 4.5 mm, 4 mm, 4.5 mm, and the distance between the upper and lower ceramic guides is set to 82 mm. The fluffiness of the resulting 55dtex / 72f trilobed deformed fiber was 1.03%.

[0034] Comparative Example 1 A method for producing trifoliate shaped fibers using a polyester FDY process. The specific procedure is basically the same as in Example 1, but the only difference is that the conventional pre-network apparatus shown in Figure 1 is used, the spacing between ceramic guides between two adjacent spindles is fixed at 4 mm, and the distance between the upper and lower ceramic guides is fixed at 70 mm. The resulting 55dtex / 72f trifoliate modified fiber had a fluffiness of 2.28%. The comparison with Example 1 shows that the fluffing rate was reduced by 1.25% in Example 1. This is because, when manufacturing 55dtex / 72f trilobed cross-section fibers, the number of single fibers is large and the specific surface area of ​​the cross-section is large. In conventional techniques, it is necessary to increase the interlacing pressure to ensure uniform oil application to the fibers, but the increased pressure causes entanglement and collision between the single fibers, making fluffing more likely. In the present invention, by adjusting the distance between the upper and lower ceramic guides from 70 mm to 82 mm and fine-tuning the width of each positioning block, the vibration effect of the yarn bundle is improved, and the fluffing rate of the irregularly shaped fibers is successfully reduced.

[0035] Example 2 The method for manufacturing low-fuzz triangular irregular fibers using the polyester FDY process employs the aforementioned pre-interlacing apparatus, with 12 ceramic guides each in the upper and lower sections. When manufacturing three-lobed irregular fibers in the FDY process, the lateral and vertical positions of the ceramic guides on the pre-interlacing guide frame are adjusted while the yarn is moving through the thread path. This achieves an optimal vibration effect while the yarn bundle maintains its vertical position within the pre-interlacer, thereby manufacturing triangular irregular fibers with a density of 53 dtex / 36 f. In the FDY process, the winding speed is set to 5000 m / min, the first roll speed to 3650 m / min, the heat roll stretching ratio to 1.39, the pre-interlace pressure to 0.045 MPa, and the oil adhesion rate to 1.12%. To achieve the optimal vibration effect while the yarn bundle remains vertical within the pre-interlacer, the widths of the 1-13 positioning blocks between the upper "U-shaped" ceramic guides are set to 4.25 mm, 4 mm, 4 mm, 4.5 mm, 4 mm, 4.25 mm, 4 mm, 3.5 mm, 4 mm, 3.75 mm, 4 mm, 4.25 mm, and the widths of the 1-13 positioning blocks between the lower "fork-shaped" ceramic guides are set to 3.75 mm, 4 mm, 4 mm, 4 mm, 4 mm, 4 mm, 4 mm, 4 mm, 4 mm, 4.25 mm, 4 mm, 4.25 mm, and the distance between the upper and lower ceramic guides is set to 58 mm. The resulting triangular deformed fiber with a density of 53 dtex / 36 f has a fluffiness of 0.55%.

[0036] Comparative Example 2 A method for manufacturing triangular irregularly shaped fibers using a polyester FDY process. The specific procedure is basically the same as in Example 2, but the only difference is that the conventional pre-network apparatus shown in Figure 1 is used, the spacing between ceramic guides between two adjacent spindles is fixed at 4 mm, and the distance between the upper and lower ceramic guides is fixed at 70 mm. The resulting 53dtex / 36f triangular deformed fiber had a fluffiness of 1.60%. The comparison with Example 2 shows that the fluffing rate was reduced by 1.05% in Example 2. This was achieved by adjusting the distance between the upper and lower ceramic guides from 70 mm to 58 mm and fine-tuning the width of each positioning block during the production of 53 dtex / 36 f triangular cross-section fibers, thereby improving the vibration effect of the yarn bundle and successfully reducing the fluffing rate of the irregularly shaped fibers.

[0037] Example 3 The method for manufacturing low-fuzz flat irregular fiber using the polyester FDY process employs the aforementioned pre-interlacing apparatus, with 12 ceramic guides each in the upper and lower sections. When manufacturing trefoil irregular fiber in the FDY process, the lateral and vertical positions of the ceramic guides on the pre-interlacing guide frame are adjusted while the yarn is moving through the thread path. This achieves an optimal vibration effect while the yarn bundle maintains its vertical position within the pre-interlacer, thereby producing 33 dtex / 24 f flat irregular fiber. In the FDY process, the winding speed is set to 5200 m / min, the first roll speed to 3850 m / min, the heat roll stretching ratio to 1.38, the pre-interlace pressure to 0.035 MPa, and the oil adhesion rate to 1.02%. To achieve the optimal vibration effect while the yarn bundle remains vertical within the pre-interlacer, the widths of the 1-13# positioning blocks between the upper "U-shaped" ceramic guides are set to 4 mm, 4.25 mm, 4 mm, 4.5 mm, 4.25 mm, 4 mm, 4 mm, 3.75 mm, 4 mm, 3.75 mm, 4 mm, 4.25 mm, and the widths of the 1-13# positioning blocks between the lower "fork-shaped" ceramic guides are set to 3.5 mm, 4 mm, 4.25 mm, 4 mm, 4 mm, 4 mm, 4 mm, 4 mm, 4.25 mm, 4 mm, 4 mm, 4 mm, 4.25 mm, and the distance between the upper and lower ceramic guides is set to 64 mm. The fluffiness of the obtained 53dtex / 36f flat irregular fiber was 0.67%.

[0038] Comparative Example 3 A method for manufacturing flat, irregularly shaped fibers using a polyester FDY process. The specific procedure is basically the same as in Example 3, but the only difference is that the conventional pre-network apparatus shown in Figure 1 is used, the spacing between ceramic guides between two adjacent spindles is fixed at 4 mm, and the distance between the upper and lower ceramic guides is fixed at 70 mm. The resulting 33dtex / 24f flat irregular fiber had a fluffiness of 2.01%. The comparison with Example 3 shows that the fluffing rate was reduced by 1.34% in Example 3. This was achieved by adjusting the distance between the upper and lower ceramic guides from 70 mm to 64 mm and fine-tuning the width of each positioning block during the production of 33 dtex / 24 f flattened cross-section fibers, thereby improving the vibration effect of the yarn bundle and successfully reducing the fluffing rate of the irregularly shaped fibers. [Explanation of Symbols]

[0039] 1-Thread, 2-"U-shaped" ceramic guide, 3-"Fork-shaped" ceramic guide, 4-Positioning block, 5-Press plate, 6-Screw I, 7-Preinterlacer, 8-Slide rail, 9-Scale, 10-Preinterlace panel, 11-Upper grooved frame, 12-Lower grooved frame, 13-Slide groove, 14-Screw II, 15-Light-emitting optical fiber, 16-Light-receiving optical fiber, 17-Nozzle, 18-Preinterlacer thread passage longitudinal central axis, 19-Center line, 20-Upper vibration limit line, 21-Lower vibration limit line, 22-Upper segment line, 23-Lower segment line, 24-Upper deviation line, 25-Lower deviation line, 26-Long segment, 27-Short segment

Claims

1. When manufacturing shaped fibers in the FDY process, by adjusting the lateral or vertical position of the ceramic guide in the pre-interlace guide frame in the yarn transport path, the yarn bundle is held vertically within the pre-interlacer, achieving an optimal vibration effect and producing low-fluff shaped fibers. The aforementioned modified fiber is a triangular modified fiber, a trefoil modified fiber, or a flat modified fiber, and when the modified fiber is a triangular modified fiber, the fluffing rate is 0.35 to 0.65%, when the modified fiber is a trefoil modified fiber, the fluffing rate is 0.85 to 1.25%, and when the modified fiber is a flat modified fiber, the fluffing rate is 0.5 to 0.85%. The vibration of the yarn bundle within the preinterlacer is detected by an optical fiber sensor. The optical fibers of the sensor are divided into two sets, positioned directly in front of and directly behind the yarn path of the preinterlacer, and both are arranged in a lateral array manner on the horizontal axis of symmetry of the preinterlacer. The diameter of the optical fiber is smaller than the diameter of the single yarn. The optical fiber sensor detects the left-right distance at which a single yarn is deviated from the vertical central axis of the yarn path of the preinterlacer when all single yarns in the yarn bundle pass through the horizontal axis of symmetry of the yarn path in a vertical direction from top to bottom. The distance value of the vertical central axis of the yarn path of the preinterlacer is set to 0, the distance to the left is set to a positive value, and the distance to the right is set to a negative value. After sampling the distance data, the central processing unit of the computer calculates the discrete distribution CV value of the distance using statistics. Based on the data, a time-distance curve is generated. Horizontal vibration upper and lower limits are drawn at the distance where the single thread vibrates maximally to the left and to the right, respectively. A reference midline is drawn in the middle of the upper and lower vibration limits. The line obtained by shifting the upper vibration limit downward by 20% is defined as the upper section line of the normal vibration interval. The line obtained by shifting the lower vibration limit upward by 20% is defined as the lower section line of the normal vibration interval. The line obtained by shifting the upper section line downward by 30% is defined as the upper deviation line. The line obtained by shifting the lower section line upward by 30% is defined as the lower deviation line. If a region above the upper section line or below the lower section line appears in the time-distance curve for 2 ms, the entire region of the curve within this time period is defined as a "long segment." If a region between the upper deviation line and the lower deviation line appears in the curve for 2 ms, the entire region of the curve within this time period is defined as a "short segment." If the discrete distance distribution CV value is less than 3.5%, the median line and the longitudinal central axis of the thread path of the preinterlacer coincide, and no "long segments" or "short segments" appear in the time-distance curve, it indicates that the thread bundle is held vertically within the preinterlacer and the optimal vibration effect has been achieved. A method for producing low-fluffy irregularly shaped fibers by a polyester FDY process, characterized by the following:

2. The pre-interlace guide frame comprises a grooved frame, a ceramic guide, a positioning block, a retaining plate, a screw I, and slide grooves and screws II installed at both ends of the grooved frame. The ceramic guide and positioning block are mounted within the grooved frame so as to be secured by a retaining plate and screw I. The ceramic guides and positioning blocks are arranged alternately. Both the grooved frame and the pre-interracer are positioned horizontally. The pre-interlacer is fixed in the center of the pre-interlacing panel. The grooved frame is divided into two sections, upper and lower. The upper grooved frame is located above the pre-interracer, and the lower grooved frame is located below the pre-interracer. The slide groove has a trapezoidal structure that is recessed inward. On both the left and right sides of the pre-interlaced panel, there are slide rails, which are trapezoidal structures that protrude outward and engage with slide grooves. The slide groove engages with the slide rail, and the slide groove and slide rail are fixed by screw II. By moving the slide groove up and down along the slide rail, the vertical distance between the upper and lower ceramic guides is adjusted. A method for producing low-fluffy irregularly shaped fibers by the polyester FDY process described in feature 1.

3. The width of the positioning block is 3 to 5 mm. A method for producing low-fluffy irregularly shaped fibers by the polyester FDY process described in feature 2.

4. The ceramic guide mounted in the upper grooved frame is "U-shaped," and the ceramic guide mounted in the lower grooved frame is "fork-shaped." A method for producing low-fluffy irregularly shaped fibers by the polyester FDY process described in feature 2.

5. The thread passage width of all ceramic guides is 1.5 mm. A method for producing low-fluffy irregularly shaped fibers by the polyester FDY process described in feature 4.

6. The lateral width of both the "U-shaped" ceramic guide and the "fork-shaped" ceramic guide is 12 mm. A method for producing low-fluffy irregularly shaped fibers by the polyester FDY process described in feature 5.

7. The surface of the slide rail and the inner surface of the slide groove are given a mirror finish. A method for producing low-fluffy irregularly shaped fibers by the polyester FDY process described in feature 2.

8. A gap of 0.3 to 0.5 mm is formed between the slide groove and the slide rail on each side. A method for producing low-fluffy irregularly shaped fibers by the polyester FDY process described in feature 2.

9. A scale is provided in the area of ​​the pre-interlaced panel that is close to the slide rail. A method for producing low-fluffy irregularly shaped fibers by the polyester FDY process described in feature 2.

10. The winding speed is 3800 to 5300 m / min. The roll speed is 2400-3980 m / min. The heat roll stretching ratio is 1.1 to 1.

6. The pre-interlace pressure is 0.025 to 0.055 MPa. The oil adhesion rate is 0.8-1.2%. A method for producing low-fluffy irregularly shaped fibers by the polyester FDY process described in feature 1.

11. The sampling frequency of the optical fiber sensor is 100 kHz. A method for producing low-fluffy irregularly shaped fibers by the polyester FDY process described in feature 1.

Citation Information

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