PID控制器
控制理论(社会学)
计算机科学
控制器(灌溉)
沉降时间
控制工程
电子速度控制
伺服电动机
发电机(电路理论)
调速器
MATLAB语言
水力发电
工程类
阶跃响应
控制(管理)
功率(物理)
物理
操作系统
电气工程
生物
航空航天工程
人工智能
量子力学
温度控制
农学
作者
Rupesh Kumari,K. K. Prabhakaran,Karthik Desingu,Thanga Raj Chelliah,S. V. Appa Sarma
出处
期刊:IEEE Transactions on Industry Applications
[Institute of Electrical and Electronics Engineers]
日期:2021-01-01
卷期号:57 (1): 941-952
被引量:11
标识
DOI:10.1109/tia.2020.3028798
摘要
Hydroturbine control system (HTCS) is a nonlinear, nonminimum phase system comprising of speed/frequency sensors, hydraulic servo motors, wicket gates, gate position feedback mechanism, and proportional integral derivative (PID) controller (governor). Governor controls the guide vane opening (GVO) corresponding to the input (speed/frequency). Nowadays, HTCS becomes more intricate insight of variable speed doubly-fed induction generator for compensating wide variation in water head. Hence, robust control techniques are necessary for the optimal utilization of hydropower potential. In this article, a brief review of HTCS is given and a complimentary sliding-mode controller (CSMC) is designed for GVO serving a 250 MW hydrogenerating unit. The CSMC control law is derived and the stability is verified through the Lyapunov function. Simulation is carried out through the MatLab Simulink environment for a 250 MW HTCS. Then, the performance of CSMC for GVO and its influence on the generator characteristics are analyzed and compared with the traditional PID controller. The simulation results demonstrate the efficacy of the controller during the startup process, subsynchronous, and super synchronous mode of operations. It is inferred that the proposed CSMC has three times faster settling time than that of the traditional PID controller. Experimental validation is carried out with a scaled-down laboratory prototype. Furthermore, future scope and design challenges associated with the hydropower control system are illustrated.
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