ANN based reactive power control of an autonomous wind-diesel hybrid power plant using PMIG and SG

P. Sharma, B. Hoff, R. Meena
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引用次数: 12

Abstract

This paper presents an artificial neural network (ANN) technique for tuning of the proportional and integral (PI) gains of the static synchronous compensator which is used as a reactive power compensator in a wind diesel hybrid power system. The gains are optimized for typical values of the load voltage characteristics (nq) by conventional techniques. The method of multilayer feed forward ANN with error back propagation training is used to tune the gains of the STATCOM controller. The ANN tune STATCOM controller gain which is implemented for the compensation of reactive power of the wind-diesel hybrid power system. The permanent-magnet induction generator is connected with wind energy conversion system and synchronous generator is coupled to diesel engine set to meet the load demand. The dynamic responses of the system for small (1%) step increase in load reactive power with and without 1% step increase in input wind power are shown.
基于神经网络的PMIG和SG自主风柴油混合电厂无功控制
本文提出了一种基于人工神经网络(ANN)的同步补偿器的比例积分增益整定技术,该补偿器用于风力-柴油混合动力系统的无功补偿。利用传统技术对负载电压特性(nq)的典型值进行了增益优化。采用误差反向传播训练的多层前馈人工神经网络方法对STATCOM控制器的增益进行调谐。采用人工神经网络调节STATCOM控制器增益,实现了对风-柴混合动力系统无功功率的补偿。永磁感应发电机与风能转换系统连接,同步发电机与柴油机机组耦合,满足负荷需求。给出了当输入风电功率增加1%时和不增加1%时负载无功功率增加1%时系统的动态响应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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