纺织学报 ›› 2026, Vol. 47 ›› Issue (06): 204-213.doi: 10.13475/j.fzxb.20250908901

• 机械与设备 • 上一篇    下一篇

喷气涡流纺喷嘴参数对纤维运动的影响

王青(), 吴加辉, 赵世航, 刘甲怡   

  1. 西安工程大学 机电工程学院陕西 西安 710048
  • 收稿日期:2025-09-24 修回日期:2026-03-09 出版日期:2026-06-15 发布日期:2026-08-19
  • 作者简介:王青(1985—),女,副教授,博士。主要研究方向为流固耦合机制。E-mail:qingkong1123@163.com
  • 基金资助:
    陕西省自然科学基础研究计划项目(2025JC-YBQN-007)

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 Published:2026-06-15 Online:2026-08-19

摘要:

为深入理解喷气涡流纺喷嘴内部纤维在高速气流作用下的运动行为,基于流固耦合原理,考虑纤维和壁面间的摩擦效应,研究喷嘴参数与纤维运动之间的协同效应。首先构建纤维-气流流固耦合求解模型,并基于ANSYS Workbench 搭建流固双向耦合求解平台;接着,通过基准构型流场特性分析,阐明喷气涡流纺纱原理;最后,基于流固耦合求解平台,研究摩擦效应、喷嘴参数对纤维运动轨迹和运动稳定性的影响。研究结果表明:摩擦力会显著改变纤维的运动形式和运动轨迹,是保证顺利加捻成纱的前提;喷嘴结构参数对纤维运动规律影响显著,通过合理设计喷嘴结构参数,可有效改善纤维运动形式,达到提高成纱质量目的。本文研究结果可为喷嘴结构优化与喷纱稳定性控制提供理论参考。

关键词: 喷气涡流纺, 纤维运动, 流固耦合, 回旋气流, 喷嘴结构, 摩擦效应

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

中图分类号: 

  • TS103.2

图1

喷嘴结构建模"

图2

纤维网格划分"

图3

流固耦合求解技术路线"

图4

流体域二维模型"

表1

研究方案"

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

图5

喷嘴中充分发展的气流场"

图6

气流场截面速度云图失量图"

图7

μ=0纤维在流场中的运动情况"

图8

μ=0.1纤维在流场中的运动情况"

图9

μ=0.3纤维在流场中的运动情况"

图10

不同喷孔倾角时纤维尾端轨迹"

图11

不同喷孔直径时纤维尾端轨迹"

图12

不同加捻腔直径时纤维尾端轨迹"

图13

不同导引针与空心锭子间距时纤维尾端轨迹"

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