纺织学报 ›› 2026, Vol. 47 ›› Issue (1): 214-222.doi: 10.13475/j.fzxb.20250601901
李金键1, 薛元1,2(
), 陈宥融2, 陈国方2, 田飞飞2, 李进忠2
LI Jinjian1, XUE Yuan1,2(
), CHEN Yourong2, CHEN Guofang2, TIAN Feifei2, LI Jinzhong2
摘要:
为解决转杯纺纱过程中某些锭位因偶发性断头或满卷后自动换筒造成的纱线断头问题,基于可实现单锭单控的全自动转杯纺纱平台,通过对单锭自动接头功能及其机制的分析,构建了尾纱生头长度、停留位置及储纱长度数学模型,并进一步研究了转杯纺转杯内纤维的搭接情况,然后根据种子纱与纤维流重叠长度及加捻时间构建了可调控接头形态结构的数学模型。在此基础上,通过可编程逻辑控制器(PLC)多层次控制技术指导相关机械结构的时序动作,实现断纱后的高速接头。通过TQFK90A转杯纺纱机进行了30组验证实验,通过USTER®TESTER 5及MatLab对纱线进行对比分析,结果显示:30组实验的接头成功率为100%,接头最大直径平均值为0.578 mm,为正常纱线直径的1.778倍;接头平均强力为10.76 cN/tex,为正常纱线强力的88.1%。符合FZ/T 93015—2021《转杯纺纱机》规定的接头质量指标及FZ/T 12001-2015《转杯纺棉本色纱》规定的单纱断裂强度指标。
中图分类号:
| [1] | 丁文胜, 叶晋浦, 邹专勇, 等. 转杯纺纱机的发展现状及趋势[J]. 纺织导报, 2024(4): 50-52. |
| DING Wensheng, YE Jinpu, ZOU Zhuanyong, et al. Development status and trend of rotor spinning machines[J]. China Textile Leader, 2024(4): 50-52. | |
| [2] | 陈宥融, 薛元, 李金键, 等. 基于抽气式气流转杯纺纱机的自动生头接头方法: 118932559A[P]. 2024-11-12. |
| CHEN Yourong, XUE Yuan, LI Jinjian, et al. Automated head raw and splicing methods based on pumped airflow rotor spinning machines: 118932559A[P]. 2024-11-12. | |
| [3] | 立达集团: 新型转杯纺系统及其转杯纺新机型[J]. 国际纺织导报, 2019, 47(7): 59. |
| Rieter Group: new rotor-spinning system & machines[J]. Melliand China, 2019, 47(7): 59. | |
| [4] | GUJAR J, 朱鹏程. 确保高品质接头的转杯纺纱机快速启动装置[J]. 国际纺织导报, 2015, 43(2): 32, 35. |
| GUJAR J, ZHU Pengcheng. Fast startup of rotor spinning machine with best piecing quality[J]. Melliand China, 2015, 43(2): 32, 35. | |
| [5] | 盛亮均, 吕永法, 戴小平. 全自动转杯纺接头小车运行仿真模型及其优化[J]. 现代纺织技术, 2010, 18(5): 6-9. |
| SHENG Liangjun, LÜ Yongfa, DAI Xiaoping. Movement simulation and optimization of the end-piecener for the automatic rotor spinning[J]. Advanced Textile Technology, 2010, 18(5): 6-9. | |
| [6] | 盖佳. 经纬智能: 打造全流程智慧纺纱工厂, 赋能传统纺织转型升级[J]. 中国纺织, 2024(9): 48-49. |
| GAI Jia. Jingwei intelligent: building a full-process intelligent spinning factory and empowering the transformation and upgrading of traditional textiles[J]. China Textile, 2024(9): 48-49. | |
| [7] | 冯小芳, 刘艳君. 国外新型全自动转杯纺纱机自动化与智能化运用[J]. 纺织科技进展, 2014(5): 15-18. |
| FENG Xiaofang, LIU Yanjun. Automation and intelligence of foreign new automatic rotor spinning machine and its application[J]. Progress in Textile Science & Technology, 2014(5): 15-18. | |
| [8] | 熊礼波, 颉向宁, 尚立生. 转杯纺电子清纱器的发展现状及趋势[J]. 棉纺织技术, 2025, 53(10): 93-96. |
| XIONG Libo, XIE Xiangning, SHANG Lisheng. Development status and trend of rotor spinning electronic yarn clearer[J]. Cotton Textile Technology, 2025, 53(10): 93-96. | |
| [9] | 汪军. 转杯纺技术发展回顾与趋势展望[J]. 棉纺织技术, 2023, 51(10): 33-40. |
| WANG Jun. Review and trend prospect of rotor spinning technology development[J]. Cotton Textile Technology, 2023, 51(10): 33-40. | |
| [10] | 马克永. BD200SN型转杯纺纱机生头原理及应用[J]. 棉纺织技术, 1995, 23(3): 54-55. |
| MA Keyong. Principle and application of rotor spinning machine BD200SN[J]. Cotton Textile Technology, 1995, 23(3): 54-55. | |
| [11] | 方介英, 熊涛, 梁巧林. ACO288转杯纺机自动接头原理及技术浅析[J]. 中国设备工程, 2002(6): 30-32. |
| FANG Jieying, XIONG Tao, LIANG Qiaolin. Analysis on the principle and technology of automatic joint of ACO288 rotor spinning machine[J]. China Plant Engineering, 2002(6): 30-32. | |
| [12] | 狄剑锋. 优化转杯纺纱接头质量的研究[J]. 纺织学报, 1997, 18(5): 9-12. |
|
DI Jianfeng. A study on optimization of piecing quality in rotor spinning[J]. Journal of Textile Research, 1997, 18(5): 9-12.
doi: 10.1177/004051754801800102 |
|
| [13] | 谢春萍, 傅佳佳. 新型纺纱[M]. 3版. 北京: 中国纺织出版社, 2020: 29-31. |
| XIE Chunping, FU Jiajia. New spinning[M]. 3rd ed. Beijing: China Textile & Apparel Press, 2020: 29-31. | |
| [14] |
李玲, 丁倩, 汪军. 转杯纺并合效应模型的构建与解析[J]. 纺织学报, 2023, 44(12): 43-49.
doi: 10.13475/j.fzxb.20220806301 |
|
LI Ling, DING Qian, WANG Jun. Model construction and analysis based on rotor spinning merging effect[J]. Journal of Textile Research, 2023, 44(12): 43-49.
doi: 10.13475/j.fzxb.20220806301 |
|
| [15] | AHMED S, SYDUZZAMAN M, MAHMUD M S, et al. Comparative study on ring, rotor and air-jet spun yarn[J]. European Scientific Journal, 2015, 11(2):1857-1881. |
| [16] | HLADNIK A, PAVKO-ČUDEN A, FARAJIKHAH S, et al. Image segmentation based determination of elastane core yarn diameter[J]. Fibres and Textiles in Eastern Europe, 2016, 24(2): 29-36. |
| [17] | 王文帝, 辛斌杰, 邓娜, 等. 单一视角下自适应阈值法的纱线毛羽识别及其应用[J]. 纺织学报, 2019, 40(5): 150-156. |
| WANG Wendi, XIN Binjie, DENG Na, et al. Identification and application of yarn hairiness using adaptive threshold method under single vision[J]. Journal of Textile Research, 2019, 40(5): 150-156. | |
| [18] | 周志宇, 刘迎春, 张建新. 基于自适应Canny算子的柑橘边缘检测[J]. 农业工程学报, 2008, 24(3): 21-24. |
| ZHOU Zhiyu, LIU Yingchun, ZHANG Jianxin. Orange edge detection based on adaptive Canny operator[J]. Transactions of the Chinese Society of Agricultural Engineering, 2008, 24(3): 21-24. |
| [1] | 邵秋, 杨瑞华. 再循环棉/原棉转杯纺纱线的耐磨性[J]. 纺织学报, 2025, 46(03): 64-71. |
| [2] | 李金键, 薛元, 陈宥融. 时序分布的段彩竹节纱及三通道转杯成纱工艺设计[J]. 纺织学报, 2025, 46(03): 72-81. |
| [3] | 张定眺, 王倩茹, 邱芳, 李凤艳. 改进转杯纺输纤通道气流场及其纤维伸直形态的模拟[J]. 纺织学报, 2025, 46(02): 100-105. |
| [4] | 李玲, 史倩倩, 田顺, 汪军. 输纤通道对称性对双喂入双分梳转杯纺气流场以及纱线特性的影响[J]. 纺织学报, 2025, 46(02): 69-77. |
| [5] | 汪燕燕, 薛元, 陈宥融, 陈国方. 四基色纤维构建的全色域混色模型及彩色纱纺制[J]. 纺织学报, 2025, 46(01): 62-71. |
| [6] | 龚新霞, 邵秋, 杨瑞华. 纤维在转杯纺纺纱器中的运动和形态变化分析[J]. 纺织学报, 2024, 45(12): 199-205. |
| [7] | 张定眺, 王倩茹, 邱芳, 李凤艳. 转杯纺分梳排杂区气流场的多维数值模拟对比[J]. 纺织学报, 2024, 45(10): 64-71. |
| [8] | 李玲, 丁倩, 汪军. 转杯纺并合效应模型的构建与解析[J]. 纺织学报, 2023, 44(12): 43-49. |
| [9] | 杨瑞华, 何闯, 龚新霞, 陈鹤文. 转杯纺分梳排杂区的气流场数值模拟[J]. 纺织学报, 2022, 43(10): 31-35. |
| [10] | 毛慧敏, 孙磊, 屠佳佳, 史伟民. 纱线自动接头机关键技术[J]. 纺织学报, 2022, 43(09): 21-26. |
| [11] | 汪军, 史倩倩, 李玲, 张玉泽. 双喂给双分梳转杯纺技术研究进展[J]. 纺织学报, 2022, 43(08): 12-20. |
| [12] | 杨瑞华, 潘博, 郭霞, 王利军, 李健伟. 环锭纺及转杯纺和喷气涡流纺混色纱的纤维混合效果研究[J]. 纺织学报, 2021, 42(07): 76-81. |
| [13] | 史倩倩, 王姜, 张玉泽, 林惠婷, 汪军. 转杯纺纱器气流场形成机制的数值分析[J]. 纺织学报, 2021, 42(02): 180-184. |
| [14] | 邓茜茜, 杨瑞华, 徐亚亚, 高卫东. 转杯纺混色棉纱的纤维混合均匀度[J]. 纺织学报, 2019, 40(07): 31-37. |
| [15] | 杨瑞华, 徐亚亚, 韩瑞叶, 薛元, 高卫东. 多通道转杯纺混色纱的Friele配色模型[J]. 纺织学报, 2019, 40(03): 44-48. |
|
||