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Adaptive Load Frequency Control with Dynamic Fuzzy Networks in Power Systems

机译:电力系统动态模糊网络的自适应负载频率控制

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This paper proposes a new controller based on neural network and fuzzy logic technologies for load frequency control to allow for the incorporation of both heuristics and deep knowledge to exploit the best characteristics of each. A "Dynamical Fuzzy Network (DFN)" that contains dynamical elements such as delayers or integrators in their processing units is used in the adaptive controller design for load frequency control. A DFN is connected between the two area power systems. The input signals of the DFN are the ACEs and their changes. The outputs of the DFN are the control signals for the two area load frequency control. Adaptation is based on adjusting parameters of DFN for load frequency control. This is done by minimizing the cost functional of load frequency errors. The cost gradients with respect to the network parameters are calculated by adjoint sensitivity. In this paper, it is illustrated that this control approach is more successful than conventional integral controller for load frequency control in two area systems.
机译:本文提出了一种基于神经网络和模糊逻辑技术的新控制器,用于负载频率控制,允许加入启发式和深度知识来利用每个的最佳特征。包含诸如其处理单元中的延迟器或集成器的动态元件的“动态模糊网络(DFN)”用于加载频率控制的自适应控制器设计。 DFN连接在两个区域电力系统之间。 DFN的输入信号是ACES及其更改。 DFN的输出是两个区域负载频率控制的控制信号。适应性基于调整DFN的参数进行负载频率控制。这是通过最小化负载频率误差的成本功能来完成的。通过伴随灵敏度计算相对于网络参数的成本梯度。在本文中,示出了该控制方法比传统的整体控制器更成功,用于两个区域系统中的负载频率控制。

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