基于智能模式识别技术的分布式生成混合系统孤岛检测

S. Mohanty, N. Kishor, P. Ray, J. Catalão
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引用次数: 16

摘要

本文基于小波变换(WT)、s变换(ST)、双曲s变换(HST)和tt变换的特征提取,提出了基于分布式发电(DG)的混合系统中的孤岛问题。混合系统由DG资源,如光伏(PV),燃料电池(FC)和风能系统(WES)连接到电网。考虑在共耦合点提取的电压信号的负序分量,用于检测这些资源从电网中孤岛。以时频分析的形式对DG系统的不同工况进行了研究。为了验证图形结果,还报道了HST轮廓的能量含量和标准差(STD)。结果表明,在无噪声和有噪声情况下,hs -变换、tt -变换在孤岛事件检测方面优于小波变换和s变换。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Islanding detection in a distributed generation based hybrid system using intelligent pattern recognition techniques
In this paper, islanding in a distributed generation (DG) based hybrid system is presented based on extracted features of wavelet transform (WT), S-transform (ST), Hyperbolic S-transform (HST) and TT-Transform. The hybrid system comprises of DG resources like photovoltaic (PV), fuel cell (FC) and wind energy systems (WES) connected to the grid. The negative sequence component of the voltage signal extracted at the point of common coupling (PCC) is considered for detection of islanding of these resources from the grid. The study for different scenarios of DG system is presented in the form of time-frequency analysis. The energy content and standard deviation (STD) of HST contour is also reported in order to validate the graphical results. The results demonstrate the advantages of HS-transform, TT-Transform over wavelet transform and S-transform in detection of islanding events under noise-free as well as noisy scenarios.
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