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首页> 外文期刊>IEEE Transactions on Power Delivery >Neural networks for combined control of capacitor banks and voltage regulators in distribution systems
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Neural networks for combined control of capacitor banks and voltage regulators in distribution systems

机译:神经网络,用于配电系统中电容器组和电压调节器的组合控制

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摘要

A neural network for controlling shunt capacitor banks and feeder voltage regulators in electric distribution systems is presented. The objective of the neural controller is to minimize total I/sup 2/R losses and maintain all bus voltages within standard limits. The performance of the neural network for different input selections and training data is discussed and compared. Two different input selections are tried, one using the previous control states of the capacitors and regulator along with measured line flows and voltage which is equivalent to having feedback and the other with measured line flows and voltage without previous control settings. The results indicate that the neural net controller with feedback can outperform the one without. Also, proper selection of a training data set that adequately covers the operating space of the distribution system is important for achieving satisfactory performance with the neural controller. The neural controller is tested on a radially configured distribution system with 30 buses, 5 switchable capacitor banks and a nine tap line regulators to demonstrate the performance characteristics associated with these principles. Monte Carlo simulations show that a carefully designed and relatively compact neural network with a small but carefully developed training set can perform quite well under slight and extreme variation of loading conditions.
机译:提出了一种用于控制配电系统中并联电容器组和馈线电压调节器的神经网络。神经控制器的目的是使总I / sup 2 / R损耗最小化,并使所有总线电压保持在标准范围内。讨论并比较了神经网络针对不同输入选择和训练数据的性能。尝试了两种不同的输入选择,一种选择使用电容器和调节器的先前控制状态,以及所测得的线路流量和电压,这等效于具有反馈,而另一种使用所测得的线路流量和电压,而无需进行先前的控制设置。结果表明,具有反馈的神经网络控制器的性能优于没有反馈的神经网络控制器。同样,适当选择训练数据集以充分覆盖分配系统的操作空间对于使用神经控制器实现令人满意的性能也很重要。在具有30条总线,5个可切换电容器组和9个抽头线路调节器的径向配置的配电系统上对神经控制器进行了测试,以证明与这些原理相关的性能特征。蒙特卡洛模拟显示,经过精心设计且相对紧凑的神经网络,并带有少量但经过精心开发的训练集,可以在轻微和极端变化的载荷条件下表现出色。

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