Research on anti-vibration tension control based on self-coupling fractional-order PID

Author:

Liang Jianguo1,Duan Yujie1,Wen Xinyu2ORCID,Zhao Yinan3,Gao Haifeng1,Zhao Xiaodong1,Emmanuel Uwayezu1

Affiliation:

1. College of Mechanical and Vehicle Engineering, Taiyuan University of Technology, China

2. School of Electronic Information Engineering, Taiyuan University of Science and Technology, China

3. School of Mechanical Engineering, Tongji University, China

Abstract

Constant tension control is essential for excellent winding quality. However, the system’s nonlinearity and external disturbance make it challenging to guarantee tension control accuracy with conventional control methods. Thus, a self-coupling fractional-order proportional–integral–derivative (SC-FOPID) control scheme combined with a disturbance observer is proposed to enhance the system’s anti-vibration performance. The fractional-order dynamic model of the unwinding roller and swing rod is established by analyzing the tension mechanism. Based on deliberate analysis and calculation, the vibration shock signal can be decomposed into periodic sinusoidal disturbance and bounded noise approximately. As such, an output-based anti-vibration method using a fractional-order model can be realized, where a back recursive disturbance observer is designed to estimate the periodic component. Simultaneously, the bounded noise exhibited in vibration can be attenuated by the SC-FOPID controller. The stability is guaranteed using the Lyapunov theorem, and the simulation results show the proposed method’s effectiveness in improving the tension control performance.

Funder

Shanxi Province key research and development plan

Shanxi Provincial Natural Science Fund

Key Research and Development Projects of Shanxi Province

Major Science and Technology Project of Shanxi Province

National Natural Science Foundation of China

Publisher

SAGE Publications

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