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Challenges in Model Predictive Control Application for Transient Stability Improvement Using TCSC

机译:使用TCSC改进暂态稳定性的模型预测控制应用中的挑战

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Performance of a system is always dominated by constraints rather than dynamics. Conventional controllers determine off-line, a feedback policy that provides optimal control action based on minimization of one or more cost functions with or without constraints using linear or nonlinear model of the system. Increased system complexity and demanding performance requirements have rendered classical control laws inadequate in spite of their simplicity as in case of PID loop or robustness in case of H_2 or H_∞ control designs. The only generic control that can meet these challenges is Model Predictive Control (MPC). The most challenging MPC application would be maintaining stability after large disturbances in highly nonlinear, complex and hybrid system such as power system. The practical difficulties are due to large system having strong interactions in various parameters with hard constraints. The paper discusses various issues in tuning and maintaining constraints on states and control variables for a Single Machine Infinite Bus (SMIB) system using Thyristor Controlled Series Compensator (TCSC) as a controller.
机译:系统的性能始终由约束而不是动态控制。常规控制器确定离线,该反馈策略基于最小化一个或多个成本函数(使用或不使用系统的线性或非线性约束)来提供最佳控制动作。系统复杂性的提高和对性能的苛刻要求,尽管经典的控制定律简单易用,如PID回路或H_2或H_∞控制设计的鲁棒性,但仍使经典控制定律不足。能够应对这些挑战的唯一通用控件是模型预测控件(MPC)。 MPC最具挑战性的应用是在高度非线性,复杂和混合的系统(例如电力系统)中遭受大干扰后保持稳定性。实际的困难是由于大型系统在各种参数上具有强大的交互作用而受到严格的约束。本文讨论了在使用晶闸管控制的串联补偿器(TCSC)作为控制器的单机无限总线(SMIB)系统中,如何优化和维护状态和控制变量约束的各种问题。

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