Microtension control for a yarn winding system with an IMC PID controller

被引:6
作者
Wang, Qing [1 ]
Li, Anqing [2 ]
Li, Yuanyuan [3 ]
Liu, Jixin [3 ]
Shen, Hui [1 ]
Li, Guoyong [4 ]
机构
[1] Qingdao Univ, Sch Electromech Engn, Qingdao, Shandong, Peoples R China
[2] Qilu Univ Technol, Sch Mech & Automot Engn, Jinan, Shandong, Peoples R China
[3] Qingdao Huanghai Univ, Mech & Elect Engn Coll, Qingdao, Shandong, Peoples R China
[4] Shandong Food & Drug Ctr Certificat & Evaluat, Jinan, Shandong, Peoples R China
关键词
IMC PID controller; feedforward compensation; microtension control; active roller; AC servo motor; TENSION; DESIGN;
D O I
10.1051/meca/2019042
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
In this paper, feedforward compensation and an internal model control (IMC) PID tuning method to maintain the yarn tension within a micro-boundary range are proposed. The proposed method can be used to improve the quality of products in textile industry. We first develop a mathematical model of the AC servo motor and yarn tension system. Based on the results of the mathematical model, an IMC PID controller is designed to control the microtension of the yarn. The proposed IMC-PID controller can be directly calculated from the time constant and time delay. Feedforward control is used to compensate for the linear velocity of the winding roller. To reduce the lateral vibrations of the yarn, we designed an active roller to nip the moving yarn. The active roller compensates for the variation in the diameter of the unwinding roller. The proposed method effectively improves the dynamics performance and the robustness of the system, and is appropriate for industrial application. Experimental instruments, including a tension sensor, an AC servo motor and a motion controller, equipped with a computer, are used to test the proposed method. The simulation and experimental results show the effectiveness of the proposed controller for the yarn microtension control system.
引用
收藏
页数:9
相关论文
共 50 条
[41]   Iterative Learning Control Based Fractional Order PID Controller for Magnetic Levitation System [J].
Hanif, Bushra ;
Shaikh, Inam-Ul-Hasan ;
Ali, Ahsan .
MEHRAN UNIVERSITY RESEARCH JOURNAL OF ENGINEERING AND TECHNOLOGY, 2019, 38 (04) :885-900
[42]   Load frequency control of interconnected five-area power system with pid controller [J].
Sahu, Avinash ;
Prasad, L. B. .
2017 IEEE INTERNATIONAL CONFERENCE ON INFORMATION, COMMUNICATION, INSTRUMENTATION AND CONTROL (ICICIC), 2017,
[43]   Study on High Performance Servo Control Based on IMC-PID Method [J].
Ni, Yebin ;
Wang, Yuting .
ADVANCES IN GUIDANCE, NAVIGATION AND CONTROL, 2023, 845 :1116-1125
[44]   Dynamics modeling and deviation control of the composites winding system [J].
Zhao, Pengbing ;
Shi, Yaoyao ;
Huang, Jin .
MECHATRONICS, 2017, 48 :12-29
[45]   Control of Flow Rate in Pipeline Using PID Controller [J].
Jafari, Raheleh ;
Razvarz, Sina ;
Vargas-Jarillo, Cristobal ;
Yu, Wen .
PROCEEDINGS OF THE 2019 IEEE 16TH INTERNATIONAL CONFERENCE ON NETWORKING, SENSING AND CONTROL (ICNSC 2019), 2019, :293-298
[46]   Fractional order PID controller for load frequency control [J].
Sondhi, Swati ;
Hote, Yogesh V. .
ENERGY CONVERSION AND MANAGEMENT, 2014, 85 :343-353
[47]   Sigmoid Based PID Controller Implementation for Rotor Control [J].
Ates, Abdullah ;
Alagoz, Baris Baykant ;
Yeroglu, Celaleddin ;
Alisoy, Hafiz .
2015 EUROPEAN CONTROL CONFERENCE (ECC), 2015, :458-463
[48]   Flow Control of Fluid in Pipelines Using PID Controller [J].
Razvarz, Sina ;
Vargas-Jarillo, Cristobal ;
Jafari, Raheleh ;
Gegov, Alexander .
IEEE ACCESS, 2019, 7 :25673-25680
[49]   Control quality enhancement using fractional PID controller [J].
Bettou, Khalfa ;
Charef, Abdelfatah .
INTERNATIONAL JOURNAL OF SYSTEMS SCIENCE, 2009, 40 (08) :875-888
[50]   Dissipative Control for Linear Systems via PID Controller [J].
Wang Shuping ;
Zhang Guoshan ;
Zuo Zhiqiang ;
Liu Wanquan .
2011 30TH CHINESE CONTROL CONFERENCE (CCC), 2011, :2222-2227