Journal of Textile Research ›› 2026, Vol. 47 ›› Issue (06): 204-213.doi: 10.13475/j.fzxb.20250908901

• Machinery & Equipment • Previous Articles     Next Articles

Effect of jet vortex spinning nozzle parameters on fiber motion

WANG Qing(), WU Jiahui, ZHAO Shihang, LIU Jiayi   

  1. College of Mechanical and Electrical EngineeringXi'an Polytechnic University, Xi'anShaanxi 710048, China
  • Received:2025-09-24 Revised:2026-03-09 Online:2026-06-15 Published:2026-08-19

Abstract:

Objective To gain an in-depth understanding of the fiber motion inside the air-jet vortex spinning nozzle under the action of high-speed airflow, a fluid-structure interaction (FSI) approach was adopted, taking into account the frictional effects between the fiber and the nozzle wall.

Method The study investigates the synergistic effects between nozzle parameters and fiber dynamics. A fiber-airflow FSI model is firstly established, and a two-way coupled FSI simulation platform is constructed in ANSYS Workbench. Then, the fundamental spinning mechanism is elucidated through the analysis of flow field characteristics under a benchmark nozzle configuration. Finally, based on the developed FSI platform, the effects of friction and nozzle parameters on the fiber trajectory and motion stability are examined.

Results Fiber motion patterns and trajectories are significantly altered by friction, which is considered a prerequisite for successful yarn twisting. The influence of nozzle structural parameters on fiber motion was found substantial, and fiber movement were effectively optimized through rational design of these parameters, thereby enhancing yarn quality. When the fiber-wall friction effect was taken into account, more pronounced wall-adhering fiber motion was observed, and fiber movement was decelerated by frictional resistance, resulting in a noticeable lag at the same time points. When the friction coefficient is 0.3, the fiber's displacement at 0.002 5 seconds is significantly lagging compared to cases with friction coefficients of 0 and 0.1. The optimal nozzle inclination was found to be 70°, at which a balanced vortex allowed sufficient fiber twisting and maximized yarn strength, whereas a 60° nozzle inclination caused insufficiently fiber twist due to dominant axial flow, and a 80° nozzle inclination led to excessive radial flow producing a less concentrated vortex. As the nozzle diameter increased from 0.3 mm to 0.5 mm, the jet flow rate was significantly enhanced, and the aerodynamic traction on fibers increased. Consequently, the moving velocities of both axial and radial fibers were accelerated, and fibers exhibited a more regular sinusoidal motion. With a twisting chamber diameter of 7 mm, fibers moved the fastest and entered the twisting zone quickly, with a concentrated and strong vortex flow that ensures sufficient twisting, resulting in high yarn strength, low hairiness, and a relatively firm texture. When the nuzzle chamber diameter became 8 mm, the vortex region was enlarged and the vertex weakened, leading to slower fiber motion and more regular and stable sinusoidal motion and yielding an overall favorable fiber state. Further, with a twisting chamber diameter of 9 mm, the vortex region was enlarged more and the vertex weakened more, the fiber wavelike motion was most regular, but twisting efficiency became the lowest, producing yarn with low strength, higher hairiness, yet a softer hand feel. Extending the distance between the guide pin and hollow spindle from 1 mm to 1.5 mm lengthened the free-motion zone, allowing more time for vortex-induced dispersion and twisting, which enhanced yarn strength, reduces hairiness, and improves overall yarn quality.

Conclusion The frictional interaction between the fibers and the nozzle wall induces both rolling and sliding of the fibers along the wall surface, thereby decelerating the motion of the fiber tail and preventing it from being directly entrained into the hollow spindle. This process provides sufficient time and spatial conditions for the airflow to twist and entangle the fiber tail, ultimately facilitating its wrapping around the surface of the core fibers, i.e., the realization of twisting. It is therefore evident that the frictional effect constitutes a prerequisite for the successful twisting and

Key words: jet vortex spinning, fiber motion, fluid-structure interaction, swirling flow, nozzle structure, friction effect

CLC Number: 

  • TS103.2

Fig.1

Nozzle structure modeling. (a)Guide component structure model;(b)Internal flow channel of guide component;(c)Cross section of nozzle structure"

Fig.2

Fiber grid division"

Fig.3

Flow-solid coupling solution technology route"

Fig.4

Fluid domain 2-D model"

Tab.1

Research approach"

设计
方案
μ θ/(°) d1/mm d2/mm l/mm
基准 0.1 70 0.4 8 1
方案一 0、0.1、0.3 70 0.4 8 1
方案二 0.3 60、70、80 0.4 8 1
方案三 0.1 60 0.3、0.4、0.5 8 1
方案四 0.1 80 0.4 7、8、9 1
方案五 0.1 70 0.3 8 1、1.5

Fig.5

A fully developed airflow field in nozzle. (a)Velocity vector diagram;(b)Speed trace diagram;(c)Pressure cloud map;(d)Speed cloud map"

Fig.6

Cross-sectional velocity cloud diagram(a) and Section velocity vector diagram(b)"

Fig.7

μ=0 motion of fiber in flow field"

Fig.8

μ=0.1 motion of fiber in flow field"

Fig.9

μ=0.3 motion of fiber in flow field"

Fig.10

Trajectory of fiber tail end at different nozzle inclination"

Fig.11

Trajectory of fiber tail end with different nozzle diameter"

Fig.12

Trajectory of fiber tail end with different twist chamber diameter"

Fig.13

Trajectory of fiber tail end with different spacing between guide needle and hollow ingot"

[1] TYAGI G, SHARMA D K, SALHOTRA K R. Process-structure-property relationship of polyester-cotton MVS yarns: part I-influence of processing variables on yarn structural parameters[J]. Indian Journal of Fibre & Textile Research, 2004, 29( 12): 419-428.
[2] TYAGI G K, SHARMA D, SALHOTRA K R. Process structure property relationship of polyester-cotton MVS yarns: part II: influence of processing variables on the yarn characteristics[J]. Indian Journal of Fibre & Textile Research, 2004, 29( 12): 429-435.
[3] TAKEMURA M, CHIBA K, NAKAMURA K. Motion of flexible fibers in a Newtonian flow: part 2: evolution of the configuration of a single fiber in a simple shear flow[J]. Journal of Textile Engineering, 2001, 47(3): 77-91.
[4] TORNBERG A K, SHELLEY M J. Simulating the dynamics and interactions of flexible fibers in Stokes flows[J]. Journal of Computational Physics, 2004, 196(1): 8-40.
[5] ELDEEB M, MOUČKOVÁ E. Numerical simulation of the yarn formation process in Rieter air jet spinning[J]. The Journal of the Textile Institute, 2017, 108(7): 1219-1226.
[6] BHATTI M R A, TAUSIF M, MIR M A, et al. Effect of key process variables on mechanical properties of blended vortex spun yarns[J]. The Journal of Textile Institute, 2019, 110(6): 932-940.
[7] 陈彩红. 喷气涡流纺喷嘴内部流场及纤维成纱机理的研究[D]. 杭州: 浙江理工大学, 2017.
CHEN Caihong. Study on internal flow field of nozzle and fiber yarn forming mechanism of MVS[D]. Hangzhou: Zhejiang Sci-Tech University, 2017.
[8] 王青, 叶明露, 梁高翔, 等. 喷嘴参数对喷气涡流纺内流场特性的影响研究[J]. 丝绸, 2022, 59(4): 39-44.
WANG Qing, YE Minglu, LIANG Gaoxiang, et al. Influence of nozzle parameters on the characteristics of the internal flow field in air-jet vortex spinning[J]. Journal of Silk, 2022, 59(4): 39-44.
[9] WANG Q, LV X S, DANG S, et al. Fiber movement during twisting in air vortex spinning[J]. Textile Research Journal, 2024, 94(3/4): 484-493.
[10] 梁高翔, 王青, 吕绪山, 等. 喷气涡流纺喷嘴参数对内流场特性的影响[J]. 轻工机械, 2023, 41(1): 16-22, 29.
LIANG Gaoxiang, WANG Qing, LÜ Xushan, et al. Influence of nozzle parameters on internal flow field characteristics of air-jet vortex spinning[J]. Light Industry Machinery, 2023, 41(1): 16-22, 29.
[11] 袁龙超. 基于气流与纤维耦合作用的喷气涡流纺喷嘴结构研究[D]. 天津: 天津工业大学, 2018.
YUAN Longchao. Research on nozzle structure of air-jet vortex spinning based on coupling effect of airflow and fibers[D]. Tianjin: Tiangong University, 2018.
[12] 韩晨晨, 程隆棣, 高卫东, 等. 基于有限元模型的喷气涡流纺纤维运动轨迹模拟[J]. 纺织学报, 2018, 39(2): 32-37.
HAN Chenchen, CHENG Longdi, GAO Weidong, et al. Simulation of fiber trajectory in jet vortex spinning based on finite element model[J]. Journal of Textile Research, 2018, 39(2): 32-37.
[13] 韩晨晨, 程隆棣, 高卫东, 等. 传统型与自捻型喷气涡流纺的对比[J]. 纺织学报, 2018, 39(1): 25-31.
HAN Chenchen, CHENG Longdi, GAO Weidong, et al. Comparative analysis of conventional and self twist jet vortex spinning[J]. Journal of Textile Research, 2018, 39(1): 25-31.
[14] 尚珊珊, 郁崇文, 杨建平, 等. 喷气涡流纺纺纱过程中的气流场数值模拟[J]. 纺织学报, 2019, 40(3): 160-167.
SHANG Shanshan, YU Chongwen, YANG Jianping, et al. Numerical simulation of airflow field in vortex spinning process[J]. Journal of Textile Research, 2019, 40(3): 160-167.
[15] SHANG S S, YANG J P, YU C W. Numerical simulation of the airflow field in vortex spinning processing[J]. Textile Research Journal, 2019, 89(6): 1113-1127.
[16] 尚珊珊, 余子开, 郁崇文, 等. 喷气涡流纺旋转气流场及纱体运动的数值模拟[J]. 东华大学学报(自然科学版), 2019, 45(5): 665-675.
SHANG Shanshan, YU Zikai, YU Chongwen, et al. Numerical simulation of swirling airflow field and yarn motion in vortex spinning[J]. Journal of Donghua University (Natural Science), 2019, 45(5): 665-675.
[17] SHANG S S, LIU Y K, YU Z K, et al. Numerical simulation and experimental research of fiber motion in vortex spinning[J]. Textile Research Journal, 2023, 93(13/14): 3171-3187.
[18] 郭臻. 基于气流成纱机理的新型纺纱核心技术研究[D]. 天津: 天津工业大学, 2019:11-54.
GUO Zhen. Research on the new core spinning technology based on airflow forming mechanism[D]. Tianjin: Tiangong University, 2019: 11-54.
[19] 郭臻, 李新荣, 卜兆宁, 等. 喷气涡流纺中纤维运动的三维数值模拟[J]. 纺织学报, 2019, 40(5): 131-135.
GUO Zhen, LI Xinrong, BU Zhaoning, et al. Three-dimensional numerical simulation of fiber movement in nozzle of murata vortex spinning[J]. Journal of Textile Research, 2019, 40(5): 131-135.
[20] PEI Z G, HE J. Experimental study on the formation of core-spun yarn manufactured on a modified vortex spinning system[J]. Textile Research Journal, 2019, 89(21/22): 4383-4397.
[21] 裴泽光, 洪新强. 喷气涡流纺包芯纱的成纱原理及设备的研究与应用进展[J]. 纺织导报, 2022(4): 25-29.
PEI Zeguang, HONG Xinqiang. Research and application progress on air-jet vortex core-spun yarn formation principle and related equipment[J]. China Textile Leader, 2022(4): 25-29.
[22] 王兴宝, 奚传智, 王科, 等. 抽吸式喷气涡流纺装置及纺制金属丝包芯纱的实验分析[J]. 现代纺织技术, 2023, 31(1): 176-184.
WANG Xingbao, XI Chuanzhi, WANG Ke, et al. Experimental study on spinning core-spun yarn containing a metal wire based on the vortex spinning nozzle with air suction[J]. Advanced Textile Technology, 2023, 31(1): 176-184.
[23] 朱江阳, 奚传智, 王泳智, 等. 抽吸孔结构对喷气涡流纺喷嘴气流场的影响[J]. 棉纺织技术, 2023, 51(8): 19-25.
ZHU Jiangyang, XI Chuanzhi, WANG Yongzhi, et al. Effects of air suction hole structure on nozzle airflow of air jet vortex spinning[J]. Cotton Textile Technology, 2023, 51(8): 19-25.
[24] 邵英海, 赵业平, 韩贤国, 等. 喷气涡流纺纱机及其关键技术的应用与研究进展[J]. 纺织学报, 2024, 45(3): 209-218.
SHAO Yinghai, ZHAO Yeping, HAN Xianguo, et al. Progress of research and application in air-jet vortex spinning machine and key technologies[J]. Journal of Textile Research, 2024, 45(3): 209-218.
[25] XI C Z, WANG J Y, WANG Y Z, et al. Numerical investigation on the dependence of air consumption on injector parameters of the vortex spinning system for producing viscose yarns[J]. The Journal of Textile Institute, 2025, 116(5): 921-935.
[1] XIAO Qi, WANG Yuhan, QU Jing, PENG Jiajia, WANG Weifu, CHEN Wen. Hydroxylamine-composite protease modification of wool and its anti-pilling performance [J]. Journal of Textile Research, 2026, 47(05): 161-171.
[2] HU Sheng, LI Wenchao, ZHAO Xiaohui, LIU Wenhui. Influence of nozzle structure optimization of foreign fiber sorting machine on airflow stability [J]. Journal of Textile Research, 2026, 47(05): 220-227.
[3] FU Jiaqi, JI Chenxiang, YANG Ruihua. Simulation and experimental study on airflow field and fiber motion in air-jet vortex spinning [J]. Journal of Textile Research, 2026, 47(01): 89-97.
[4] MIAO Lulu, GU Jiahua, TAO Huaguan, SUN Guojun, ZOU Zhuanyong. Influence of air-jet vortex spinning process on properties of three-component blended yarns [J]. Journal of Textile Research, 2025, 46(09): 112-119.
[5] MIAO Lulu, MENG Xiaoyi, DONG Zhengmei, PENG Qian, HE Linwei, ZOU Zhuanyong. Effect of heat treatment on mechanical property of core-spun yarn from low melting point polyester filament made by air-jet vortex spinning [J]. Journal of Textile Research, 2024, 45(11): 73-79.
[6] SHAO Yinghai, ZHAO Yeping, HAN Xianguo, CAO Jipeng, ZHANG Mingguang, CHEN Wen. Progress of research and application in air-jet vortex spinning machine and key technologies [J]. Journal of Textile Research, 2024, 45(03): 209-218.
[7] FAN Jule, ZHANG Yuze, WANG Jun. Simulation of accelerating point distribution for floating fibers during dynamic drafting [J]. Journal of Textile Research, 2024, 45(03): 44-48.
[8] MIAO Lulu, DONG Zhengmei, ZHU Fanqiang, RONG Hui, HE Linwei, ZHENG Guoquan, ZOU Zhuanyong. Influence of core filament type and delivery speed on performance of air-jet vortex spun core-spun yarns [J]. Journal of Textile Research, 2023, 44(12): 50-57.
[9] WANG Qing, LIANG Gaoxiang, YIN Junqing, SHENG Xiaochao, LÜ Xushan, DANG Shuai. Establishment of novel model and performance analysis of airflow drafting channel [J]. Journal of Textile Research, 2023, 44(11): 52-60.
[10] CUI Yuemin, CHENG Longdi, HE Shanshan, LÜ Jindan, CUI Yihuai. Simulation of fiber motion in drafting zone based on cyclic iterative method [J]. Journal of Textile Research, 2023, 44(02): 76-82.
[11] SUN Jian, JIANG Boyi, ZHANG Shoujing, HU Sheng. Influence of different nozzle structures and parameters on nozzle performance of foreign fiber sorters [J]. Journal of Textile Research, 2022, 43(10): 169-175.
[12] ZOU Zhuanyong, MIAO Lulu, DONG Zhengmei, ZHENG Guoquan, FU Na. Effect of air-jet vortex spinning process on properties of viscose/polyester core-spun yarns [J]. Journal of Textile Research, 2022, 43(08): 27-33.
[13] NIU Xuejuan, XU Yanhui. Study on spreading behavior of carbon fiber bundles under different fractal flow path conditions [J]. Journal of Textile Research, 2022, 43(06): 165-170.
[14] LIU Yisheng, ZHOU Xinlei, LIU Dandan. Effect of yarn's initial position on yarn tucked-in in pneumatic tucked-in selvedge apparatus [J]. Journal of Textile Research, 2022, 43(03): 168-175.
[15] LI Tianhua, LI Jingjing, ZHANG Keqin, ZHAO Huijing, MENG Kai. Numerical simulation of hemodynamics in spiral artificial blood vessel [J]. Journal of Textile Research, 2022, 43(03): 17-23.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!