[1]许家忠, 倪梦健, 李新, 等. 基于张力补偿的变张力控制方法研究[J]. 复合材料科学与工程, 2023(4): 27-33.
XU Jiazhong, NI Mengjian, LI Xin, et al. Research on variable tension control method based on tension compensation[J]. Composites Science and Engineering, 2023(4): 27-33.
[2]汪良, 王恒升, 郭新平, 等. 隔膜分切机放卷张力串级控制器设计[J]. 电机与控制学报, 2023, 27(10): 181-192.
WANG Liang, WANG Hengsheng, GUO Xinping, et al. Design of a cascade controller for unwinding tension of diaphragm slitting machine[J]. Electric Machines and Control, 2023, 27(10): 181-192.
[3]蒋林军, 张华. 无传感参数自适应纱线卷绕张力控制方法[J]. 纺织学报, 2022, 43(4): 167-173.
JIANG Linjun, ZHANG Hua. Sensorless parameter adaptive tension control method of winding yarns[J]. Journal of Textile Research, 2022, 43(4): 167-173.
[4]PONNIAH G, ZUBAIR M, DOH Y H, et al. Fuzzy decoupling to reduce propagation of tension disturbances in roll-to-roll system[J].The International Journal of Advanced Manufacturing Technology, 2014, 71: 153-163.
[5]汪林俊, 林富生, 宋志峰, 等. 基于自适应PID参数的织机纱线张力控制系统研究[J]. 棉纺织技术, 2023, 51(9): 56-59.
WANG Linjun, LIN Fusheng, SONG Zhifeng, et al. Research on yarn tension control system of loom based on adaptive PID parameter[J]. Cotton Textile Technology, 2023, 51(9): 56-59.
[6]张保家, 杨涛, 张有信, 等. 基于模糊PID的微细金属丝拉拔张力控制研究[J]. 现代制造工程, 2021(10): 107-113.
ZHANG Baojia, YANG Tao, ZHANG Youxin, et al. Research on tension control of fine wire drawing based on fuzzy PID[J]. Modern Manufacturing Engineering, 2021(10): 107-113.
[7]王志广, 郭亚东. 基于模糊PID的包装覆膜自适应恒张力控制方法[J]. 包装工程, 2022, 43(17): 203-207.
WANG Zhiguang, GUO Yadong. An adaptive constant tension control method based on fuzzy PID for packaging film[J]. Packaging Engineering, 2022, 43(17): 203-207.
[8]米君杰, 姚建勇, 邓文翔. 基于神经网络的缠绕过程张力积分鲁棒控制[J]. 机械工程学报, 2021, 57(24): 74-82.
MI Junjie, YAO Jianyong, DENG Wenxiang. Neural network based RISE control of winding tension[J]. Journal of Mechanical Engineering, 2021, 57(24): 74-82.
[9]何奎, 刘善慧, 史文亮, 等. 卷筒料印刷装备收卷张力系统解耦控制研究[J]. 包装工程, 2020, 41(19): 209-216.
HE Kui, LIU Shanhui, SHI Wenliang, et al. Decoupling control for rewinding tension system of the roll to roll printing equipment[J]. Packaging Engineering, 2020, 41(19): 209-216.
[10]任斌武, 招启军, 张夏阳, 等. 基于蚁群算法的直升机姿态自抗扰控制[J/OL]. 航空动力学报: 1-13[2024-01-25]. https://doi.org/10.13224/j.cnki.jasp.20230464.
REN Binwu, ZHAO Qijun, ZHANG Xiayang, et al. Helicopter attitude active disturbance rejection control based on ant colony algorithm[J/OL]. Journal of Aerospace Power: 1-13[2024-01-05]. https://doi.org/10.13224/j.cnki.jasp.20230464.
[11]陈明霞, 卢澎澎, 张寒. 塑料薄膜收卷张力的线性自抗扰控制策略[J]. 工程塑料应用, 2021, 49(8): 74-80.
CHEN Mingxia, LU Pengpeng, ZHANG Han. Linear active disturbance rejection control strategy of plastic film winding tension[J]. Engineering Plastics Application, 2021, 49(8): 74-80.
[12]KANG H K, LEE C W, SHIN K H, et al. Modeling and matching design of a tension controller using pendulum dancer in roll-to-roll systems[J]. IEEE Transactions on Industry Applications, 2011, 47(4): 1558-1566.
[13]SHAO M Y, WU J M, WANG Y, et al. Research on modeling method of winding tension system for gravure printing machine[C]// 2016 Symposium on Piezoelectricity, Acoustic Waves, and Device Applications (SPAWDA). Xi'an, China. IEEE, 2016: 110-114.
[14]赵希梅, 陈广国, 金鸿雁. 基于改进灰狼优化算法的PMSM滑模自抗扰控制[J]. 电机与控制学报, 2022, 26(11): 132-140.
ZHAO Ximei, CHEN Guangguo, JIN Hongyan. Sliding mode active disturbance rejection control for PMSM based on improved grey wolf optimization algorithm[J]. Electric Machines and Control, 2022, 26(11): 132-140.
[15]石雅凯, 陈晓静, 荣峰. 基于改进灰狼算法的自动导航小车控制策略[J]. 科学技术与工程, 2023, 23(23): 9965-9972.
SHI Yakai, CHEN Xiaojing, RONG Feng. Automated guided vehicle control strategy based on improved gray wolf algorithm[J]. Science Technology and Engineering, 2023, 23(23): 9965-9972.
[16]邓飞, 魏祎璇, 刘奕巧, 等. 灰狼优化算法的改进及其应用[J]. 统计与决策, 2023, 39(11): 18-24.
DENG Fei, WEI Yixuan, LIU Yiqiao, et al. Improvement and application of grey wolf optimization algorithm[J]. Statistics & Decision, 2023, 39(11): 18-24.
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