一种新型被动孤岛检测方法的研究

Dong Xie, Dajin Zang, Peng Gao, Jun-Jia Wang, Zhu Zhu
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引用次数: 0

摘要

在分布式发电系统中,孤岛检测是并网逆变器必不可少的功能。针对传统被动和主动孤岛检测方法在性能上的不足,本文提出了一种新的被动孤岛检测方法。该方法首先通过提升小波变换从逆变器输出电压信号和逆变器输出电流信号中提取特征参数,然后通过BP神经网络对提取的特征参数进行模式识别,从而判断是否存在孤岛现象。仿真和实验结果验证了本文提出的孤岛检测方法的有效性,具有检测速度快、非检测区小、不影响电能质量等特点;与传统的孤岛检测方法相比,该方法的检测性能有了显著提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Research on a novel passive islanding detection method
In distributed generation systems, islanding detection is a necessary function of grid-connected inverters. In view of the performance disadvantages of traditional passive and active islanding detection methods, this paper proposes a novel passive islanding detection method. The proposed method first extracts characteristic parameters from the inverter output voltage signal and inverter output current signal through lifting wavelet transform, and then conducts the pattern recognition of these extracted characteristic parameters via BP neural network, so as to judge if there is an islanding phenomenon. As verified by the simulation and experiment results, the islanding detection method proposed in this paper is effective, and is featured by high detection speed and small non-detection zone, without affecting electric energy quality; its detection performance has been remarkably improved in comparison with that of traditional islanding detection methods.
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