纺织学报 ›› 2026, Vol. 47 ›› Issue (06): 214-222.doi: 10.13475/j.fzxb.20250603601

• 机械与设备 • 上一篇    下一篇

高速编织机携纱器运行轨道优化

李顺1,2,3, 李新荣1,2,3(), 张士杰1,2,3, 蒋全胜1,2,3, 贾彦军1,2,3   

  1. 1 天津工业大学 机械工程学院天津 300387
    2 天津工业大学 天津市现代机电装备技术重点实验室天津 300387
    3 天津工业大学绍兴柯桥研究院浙江 绍兴 312030
  • 收稿日期:2025-06-17 修回日期:2025-09-20 出版日期:2026-06-15 发布日期:2026-08-19
  • 通讯作者: 李新荣(1975—),男,教授,博士。主要研究方向为新型纺织机械设计研究。E-mail:lixinrong7507@hotmail.com
  • 作者简介:李顺(1999—),男,硕士生。主要研究方向为三维异型碳纤维编织机关键技术研究。
  • 基金资助:
    天津市自然科学基金项目(S24ZDE276)

Optimization of yarn carrier running tracks for high-speed braiding machines

LI Shun1,2,3, LI Xinrong1,2,3(), ZHANG Shijie1,2,3, JIANG Quansheng1,2,3, JIA Yanjun1,2,3   

  1. 1 School of Mechanical EngineeringTiangong UniversityTianjin 300387, China
    2 Tianjin Key Laboratory of Advanced Mechatronics Equipment TechnologyTiangong UniversityTianjin 300387, China
    3 Shaoxing Keqiao Institute of Tiangong UniversityShaoxingZhejiang 312030, China
  • Received:2025-06-17 Revised:2025-09-20 Published:2026-06-15 Online:2026-08-19

摘要:

随着编织机车速的要求不断提高,携纱器锭刀与轨道间的碰撞逐渐递增,直接影响了设备的使用寿命和编织物的质量。为此,采用“以曲代直”法对轨道进行优化。首先,对携纱器运动进行分析,建立携纱器运动轨迹理论模型;其次,基于三次抛物线型在直线-圆弧交接处构建缓和曲线轨道方程;然后将轨道盘看作凸轮,创建锭刀运行轨迹单元,依据摆线修正等速运动规律建立直线轨道部分优化曲线模型;最后,通过建立携纱器锭座、锭刀、轨道盘三维模型进行运动学仿真分析,并搭建二维扫描式激光测振仪、编织机底盘、轨道盘、角导轮等运动构件实验平台对所建模型进行验证。结果表明,在角导轮转速为210~330 r/min的实验及仿真测试下,优化后轨道消除了原直线轨道及直线-圆弧轨道交接处的速度、加速度尖点,加速度峰值降低28.16%,轨道振动位移峰值最高可减小64.29%,提高了编织机的整体性能,为高速编织机轨道的设计提供理论支撑。

关键词: 高速编织机, 携纱器, 轨道优化, 运动分析, 轨道碰撞

Abstract:

Objective During the high-speed operation of a braiding machine, significant impact collisions arise between the spindle knife and the track, resulting in excessive equipment vibration that adversely affects braiding quality. Consequently, it is essential to undertake an optimized design of the track to minimize collisions and thereby enhance the braiding quality.

Method The research adopts the method of "Substituting curves for straight lines" to study the trajectory of the yarn carrier. A theoretical model of yarn carrier trajectory was established and the equations of gentle curve orbit were formulated based on cubic parabola at the intersection of straight line and circular arc. The single orbit disk was regarded as a cam, and the partially optimized curve model of the straight line orbit was constructed according to the law of cycloid corrected isochronous combined motion. The model was tested by simulation and vibration experiments.

Results Firstly, an analysis of the yarn carrier's motion was conducted, and a theoretical model of its motion trajectory was established. It was discovered that abrupt changes in acceleration occurred at the junction of the straight-arc track and at the center of the straight track. Secondly, an analysis of the straight-arc track junction revealed that the discontinuity in the second-order derivative at this point led to the abrupt acceleration changes. Based on a cubic parabola, an optimization model for a transition curve was established, and calculations demonstrated that this model effectively reduced vibration at the junction. Subsequently, the track disc was regarded as a cam, and the straight track section was modeled and optimized according to the cycloid-modified uniform motion law. The results indicated that the track optimized using the cycloid-modified uniform motion law exhibited reductions of 8.04 times, 10.66 times, and 3.36 times in the three key characteristic parameters-quasi-velocity (VM), quasi-acceleration (AM), and quasi-jerk (JM)-significantly lowering the peak values of the original track's motion parameters. Finally, kinematic simulations and experiments were conducted separately, and the results showed that the track optimized using both the transition curve and the cycloid-modified uniform motion law could substantially reduce track impact collisions. By comparing the kinematic analysis curve of yarn carrier and the comparison of simulation results, it can be observed that when the angular guide wheel speeds of the braiding machine were set at 210, 240, 270, 300, and 330 r/min, respectively, both acceleration and velocity values decreased significantly. Additionally, the peaks at the junctions of the straight track and the straight-arc track were eliminated, with a reduction rate of 28.16%. From the Comparison of Vibration Displacement Before and After Track Optimization, it can be concluded that the vibration of the braiding machine track decreased by 52.94%, 60.21%, 64.29%, 56.53%, and 53.62%, respectively, substantially reducing vibration and enhancing the overall performance of the braiding machine.

Conclusion The use of the moderated curve model can eliminate the cusp at the intersection of tracks, and the optimization effect is positively correlated with the length of the moderated curve. The optimized track with the combination of gentle curve and cycloid modified isochronous combined motion law can make the spindle knife of yarn carrier run smoothly, the peak acceleration of spindle knife can be reduced by 28.16%, The peak vibration displacement of the weaving machine track can be reduced by 52.94%, 60.21%, 64.29%, 56.53% and 53.62% at the rotational speeds of the angle guide wheel of 210, 240, 270, 300, 330 r/min, respectively, which can greatly reduce the impact and noise of the high-speed knitting machine and improve

Key words: high-speed braiding machine, yarn carrier, track optimization, motion analysis, orbital collision

中图分类号: 

  • TS183.1

图1

锭刀运动示意图"

表1

跃度变化表"

转速/
(r·min-1
210 240 270 300 330
跃度突变值/
(m·s-3
677.56 1 011.40 1 440.06 1 975.39 2 629.25

图2

携纱器运动分析曲线图"

图3

部分传统轨道示意图"

图4

缓和曲线示意图"

图5

锭刀运行轨道单元"

表2

轨道特征参数评价表"

轨道类型 VM AM JM
传统直线轨道 12.056 9 75.355 1 224.154 8
摆线修正等速轨道 1.500 0 7.068 6 66.619 8

图6

轨道仿真虚拟样机模型"

图7

编织机轨道振动实验平台"

图8

仿真结果对比图"

图9

轨道优化前后振动位移对比图"

[1] DING C, GU X, LU C. Simulation of the hexagonal 3D braiding process for stent preforms[J]. Textile Research Journal, 2024, 94(5-6): 691-703.
[2] LI J, YIN Y, HUANG Q, et al. Three-dimensional braiding machine with variable braiding pattern[J]. The Journal of the Textile Institute, 2024, 115(10): 2011-2019.
[3] YANG X, SAHO H, JIANG J, et al. Structural simulation and design of preform in Tsuzuki rotary three-dimensional braider[J]. Journal of Donghua University(Natural Science), 2021, 47(6): 51-57.
[4] HU X, ZHANG Y, MENG Z, et al. Tension modeling and analysis of braiding carriers during radial-direction and axial-direction braiding[J]. The Journal of Textile Institute, 2019, 110: 1190-1201.
[5] MENG Z, DU C, HOU X, et al. Modeling and analysis of tension system used in rotating yarn compensation carrier[J]. The Journal of Textile Institute, 2023, 114(2): 225-233.
[6] 徐海亮, 刘宜胜, 袁嫣红. 三维编织机携纱器运动仿真分析与实验研究[J]. 机电工程, 2017, 34(5): 465-469.
XU Hailiang, LIU Yisheng, YUAN Yanhong. Motion simulation and experiment of yarn carrier in three-dimensional braiding machine[J]. Journal of Mechanical & Electrical Engineering, 2017, 34(5): 465-469.
[7] MA W, CHEN K, DING L. Trajectory optimization of maypole braiding machine carrier[J]. Mathematical Models in Engineering, 2015, 1(2): 72-82.
[8] 刘宜胜, 徐海亮, 吴震宇, 等. 三维编织机运动仿真分析及其轨道优化设计[J]. 纺织学报, 2017, 38(4): 134-139.
LIU Yisheng, XU Hailiang, WU Zhenyu, et al. Motion simulation analysis and track optimal design for three-dimensional braiding machine[J]. Journal of Textile Research, 2017, 38(4): 134-139.
[9] 马文锁, 陈凯, 丁磊. 五月柱圆管编织机锭子运动学分析及其轨迹优化[J]. 机械设计与制造, 2017(3): 43-47.
MA Wensuo, CHEN Kai, DING Lei. Kinematics analysis and trajectory optimization of the carrier in the circular maypole braider[J]. Machinery Design & Manufacture, 2017(3): 43-47.
[10] ZHANG Y, DU C, SUN Y. Dynamical analysis of carrier-track contact model in a braiding machine[J]. Technical Gazette, 2022, 29(2): 528-535.
[11] ZHANG H, CHEN Q, WU G. Continuous curvature parking path planning for unmanned mining trucks using transition curves and model predictive control[J]. SAE International Journal of Commercial Vehicles, 2024, 18(1): 41-55.
[12] 林远扬, 李苗, 马卫华, 等. 中低速磁浮最小曲线半径及缓和曲线长度研究[J]. 振动与冲击, 2024, 43(6): 301-310.
LIN Yuanyang, LI Miao, MA Weihua, et al. Minimum curve radius and transition curve length of a medium and low speed maglev[J]. Journal of Vibration and Shock, 2024, 43(6): 301-310.
[13] WEI Z, CHEN J, JIN G, et al. Research on dynamic analysis and simulation of cam mechanism considering contact collision[J]. Iranian Journal of Science and Technology, Transactions of Mechanical Engineering, 2024, 48(3): 1177-1190.
[14] NGUYEN V T, KIM D J. Flexible cam profile synthesis method using smoothing spline curves[J]. Mechanism and Machine Theory, 2007, 42(7): 825-838.
[15] 胡安华. 回旋线与三次抛物线缓和曲线线形及设计参数对比探讨[J]. 高速铁路技术, 2023, 14(2): 28-32.
HU Anhua. Comparison and discussion on alignment and design parameters of clothoid and cubic parabola as transition curve[J]. High Speed Railway Technology, 2023, 14(2): 28-32.
[1] 胡崴琳, 白洁, 刘丹, 白濛, 李娟, 李启正. 基于机器学习模型的电子纺织品研究进展[J]. 纺织学报, 2026, 47(01): 268-276.
[2] 丁彩红, 贺少旭. 管状织物的六角形三维编织工艺设计[J]. 纺织学报, 2025, 46(03): 216-224.
[3] 刘宜胜 徐海亮 吴震宇 袁嫣红. 三维编织机运动仿真分析及其轨道优化设计[J]. 纺织学报, 2017, 38(04): 134-139.
[4] 董红坤 贺辛亥 郑占阳 钟鹏 王俊勃. 用于三维编织可控增减纱的携纱器设计[J]. 纺织学报, 2016, 37(4): 143-147.
[5] 范晓健 李晶 刘红卫 王善凯 孙晓盼. 碳纤维层叠布用缝纫机的改进设计与三维仿真[J]. 纺织学报, 2016, 37(10): 141-144.
[6] 罗娟 郗欣甫 孙以泽. 用于簇绒地毯织机的新型钩刀割绒机构[J]. 纺织学报, 2016, 37(06): 118-123.
[7] 王浩程.. 六连杆打纬机构的MAPLE动态设计及分析[J]. 纺织学报, 2006, 27(6): 32-35.
[8] 丁彩红;张少平;孙以泽. 地毯簇绒机簇绒针传动机构运动分析[J]. 纺织学报, 2006, 27(5): 37-40.
[9] 林建龙;孟春玲;傅程;门桂香. 电脑刺绣机针杆机构质心轨迹研究[J]. 纺织学报, 2005, 26(1): 70-72.
[10] 袁守华;朱国华. 织机六连杆打纬机构的计算机辅助设计[J]. 纺织学报, 1999, 20(01): 37-39.
[11] 徐山青;洪小南;吴蔚东. DLW型喷气织机电子送经机构分析[J]. 纺织学报, 1998, 19(03): 24-26.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!