Disturbance Suppression Discrete Integral Sliding Mode Current Control of Experimental Advanced Superconducting Tokamak Fast Control Power Supply

被引:0
作者
Huang H. [1 ]
Chen Z. [1 ]
Wang H. [1 ]
机构
[1] School of Electrical Engineering and Automation, Hefei University of Technology, Hefei
来源
Diangong Jishu Xuebao/Transactions of China Electrotechnical Society | 2024年 / 39卷 / 10期
关键词
discrete integral; Experimental advanced superconducting Tokamak (EAST) fast control power supply; observer feedforward compensation; sliding mode control; sliding mode disturbance;
D O I
10.19595/j.cnki.1000-6753.tces.230275
中图分类号
学科分类号
摘要
The primary performance of the fast control power supply for the experimental advanced superconducting Tokamak (EAST) is to quickly track the reference signal, realize the excitation of the load coil, and feedback control the vertical displacement of the plasma. The load coil of the EAST fast control power supply is affected by the internal components and the plasma in the vacuum. The coil inductance will fluctuate slowly in a small range, and there will be mutual inductance electromotive force interference on the coil. The traditional proportional-integral (PI) control has shortcomings in the current tracking control process. Sliding mode control has been widely used due to its advantages of simple control and strong robustness. To realize disturbance suppression and cope with load fluctuation, a discrete integral sliding mode control method with disturbance suppression is proposed based on the system state equation of the EAST fast control power supply. The control disturbance caused by inductance fluctuation and mutual inductance electromotive force on the load side is equivalent to lumped disturbance. The observation of lumped disturbance is realized using a sliding mode disturbance observer. In order to compensate for the lumped disturbance on the load side, a discrete integral sliding mode controller and a sliding mode disturbance observer are combined to perform feedforward compensation control. A variable gain observer structure is designed based on the observed current error and the tracking current error to balance the chattering magnitude and convergence speed in the sliding mode control process. Thus, the gain is adaptively adjusted with the observed current error. According to the observer error stability conditions, the adaptive adjustment range of the observer gain is determined. The stability of the designed sliding mode controller is analyzed to ensure sufficient convergence of the sliding mode controller. A novel smooth saturation function is designed to address insufficient chattering suppression of traditional symbolic and linear saturation functions in sliding mode control. By analyzing the gain characteristics and convergence time characteristics of different saturation functions, the designed new smooth saturation function with continuous differentiability in the full definition domain and great switching gain is demonstrated to provide a faster overall convergence rate. Combined with a gain adaptive disturbance observer, the proposed new smooth saturation function can achieve rapid convergence and further chattering suppression of the control system. Simulation and experimental results show that the proposed control method has better current tracking characteristics and faster dynamic response than traditional PI control under small output current overshoot. It has outstanding disturbance rejection performance, current tracking performance, and strong robustness. As a result, accurate excitation of the coil inductance can be achieved to ensure vertical displacement closed-loop feedback control of the plasma, even considering load side disturbance. © 2024 China Machine Press. All rights reserved.
引用
收藏
页码:3141 / 3151
页数:10
相关论文
共 24 条
  • [1] Ji Xin, Song Yangtian, Shen Ge, Et al., Engineering design of EAST passive stabilization loop, Journal of Fusion Energy, 34, pp. 504-508, (2015)
  • [2] Xu Shuiqing, Huang Wenzhan, He Yigang, Et al., Open-circuit fault diagnosis method of neutral point clamped three-level grid-connected inverter based on adaptive sliding mode observer, Transactions of China Electrotechnical Society, 38, 4, pp. 1010-1022, (2023)
  • [3] Fang Xin, Wang Limei, Zhang Kang, High order non-singular fast terminal sliding mode control of permanent magnet linear motor based on disturbance observer, Transactions of China Electrotechnical Society, 38, 2, pp. 409-421, (2023)
  • [4] Guo Xin, Huang Shoudao, Peng Yu, Et al., Sliding mode control of IPMSM speed regulation system based on an improved double power reaching law and global fast terminal sliding mode observer, Transactions of China Electrotechnical Society, 38, 1, pp. 190-203, (2023)
  • [5] Cao Xueqian, Ge Qiongxuan, Zhu Jinquan, Et al., Harmonic current suppression strategy for high-speed maglev train based on integral sliding mode, Transactions of China Electrotechnical Society, 37, 22, pp. 5817-5825, (2022)
  • [6] Yang Pengwei, Kang Yilong, Miao Shihong, Et al., Improved sliding mode control strategy for railway static power conditioner in V/v traction power supply system, High Voltage Engineering, 46, 6, pp. 2218-2229, (2020)
  • [7] Zheng Changming, Tomislav D, Zhang Jiasheng, Et al., Composite robust quasi-sliding mode control of DC-DC Buck converter with constant power loads, IEEE Journal of Emerging and Selected Topics in Power Electronics, 9, 2, pp. 1455-1464, (2021)
  • [8] Fang Xin, Wang Limei, Zhang Kang, Discrete integral sliding mode smoothing control of H-type platform direct drive servo system, Electric Machines and Control, 26, 6, pp. 101-111, (2022)
  • [9] Wang Zuo, Li Shihua, Li Qi, Discrete-time fast terminal sliding mode control design for DC-DC Buck converters with mismatched disturbances, IEEE Transactions on Industrial Informatics, 16, 2, pp. 1204-1213, (2020)
  • [10] Hou Shixi, Chu Yundi, Chen Chen, Fuzzy neural network based global sliding mode control for active power filter, Control and Decision, 35, 10, pp. 2330-2335, (2020)