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Adaptive Critic Design Based Neuro-Fuzzy Controller for a Static Compensator in a Multimachine Power System

机译:基于自适应批判设计的神经模糊控制器的多机电力系统静态补偿器

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This paper presents a novel nonlinear optimal controller for a static compensator (STATCOM) connected to a power system, using artificial neural networks and fuzzy logic. The action dependent heuristic dynamic programming, a member of the adaptive Critic designs family, is used for the design of the STATCOM neuro-fuzzy controller. This neuro-fuzzy controller provides optimal control based on reinforcement learning and approximate dynamic programming. Using a proportional-integrator approach the proposed controller is capable of dealing with actual rather than deviation signals. The STATCOM is connected to a multimachine power system. Two multimachine systems are considered in this study: a 10-bus system and a 45-bus network (a section of the Brazilian power system). Simulation results are provided to show that the proposed controller outperforms a conventional PI controller in large scale faults as well as small disturbances
机译:本文提出了一种新型的非线性最优控制器,用于使用电力系统,神经网络和模糊逻辑的静态补偿器(STATCOM)。基于动作的启发式动态编程是自适应Critic设计家族的成员,用于STATCOM神经模糊控制器的设计。这种神经模糊控制器基于强化学习和近似动态编程提供了最佳控制。使用比例积分器方法,所提出的控制器能够处理实际信号而不是偏差信号。 STATCOM连接到多机电源系统。本研究考虑了两个多机系统:一个10总线系统和一个45总线网络(巴西电力系统的一部分)。仿真结果表明,该控制器在大规模故障和小扰动情况下均优于传统的PI控制器。

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