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Intelligent secondary control in smart microgrids: an on-line approach for islanded operations

机译:智能微电网中的智能辅助控制:孤岛作业的在线方法

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Dealing with islanded microgrids (MGs), this paper aims at improving the secondary control process to restrict the fluctuations in both the voltage and frequency signals. With the aim of retrieving these parameters at the nominal values, an intelligent control scheme is devised to adjust the corresponding control parameters. To do so, an on-line self-optimizing control approach is embedded in the MG's central controller. In the tuning process, evolutionary-based techniques such as genetic algorithms provide proper initial adjustment for the parameters. Subsequently, an artificial neural network (ANN) is triggered to provide accurate online modification of the control parameters. Specifically, the training capability of the ANN mechanism along with its extensibility feature avoids the dependency of the controller on the operating point conditions and accommodates different changes and uncertainty reflections. Detailed simulation studies are conducted to investigate the performance of the proposed approach, and the results are discussed in depth.
机译:针对孤岛微电网(MGs),本文旨在改进次级控制过程,以限制电压和频率信号的波动。为了以标称值取回这些参数,设计了一种智能控制方案来调整相应的控制参数。为此,将在线自优化控制方法嵌入到MG的中央控制器中。在调整过程中,基于进化的技术(例如遗传算法)可为参数提供适当的初始调整。随后,触发人工神经网络(ANN)以提供控制参数的准确在线修改。特别地,ANN机制的训练能力及其可扩展性避免了控制器对工作点条件的依赖,并适应了不同的变化和不确定性反映。进行了详细的仿真研究,以研究该方法的性能,并对结果进行了深入讨论。

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