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Comparative Study of Advanced Signal Processing Techniques for Islanding Detection in a Hybrid Distributed Generation System

机译:混合分布式发电系统中孤岛检测的高级信号处理技术比较研究

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摘要

In this paper, islanding detection in a hybrid distributed generation (DG) system is analyzed by the use of hyperbolic S-transform (HST), timetime transform, and mathematical morphology methods. The merits of these methods are thoroughly compared against commonly adopted wavelet transform (WT) and S-transform (ST) techniques, as a new contribution to earlier studies. The hybrid DG system consists of photovoltaic and wind energy systems connected to the grid within the IEEE 30-bus system. Negative sequence component of the voltage signal is extracted at the point of common coupling and passed through the above-mentioned techniques. The efficacy of the proposed methods is also compared by an energy-based technique with proper threshold selection to accurately detect the islanding phenomena. Further, to augment the accuracy of the result, the classification is done using support vector machine (SVM) to distinguish islanding from other power quality (PQ) disturbances. The results demonstrate effective performance and feasibility of the proposed techniques for islanding detection under both noise-free and noisy environments, and also in the presence of harmonics.
机译:在本文中,通过使用双曲S变换(HST),时间变换和数学形态学方法分析了混合分布式发电(DG)系统中的孤岛检测。将这些方法的优点与常用的小波变换(WT)和S变换(ST)技术进行了彻底比较,作为对早期研究的新贡献。混合式DG系统由连接到IEEE 30总线系统内的电网的光伏和风能系统组成。在公共耦合点提取电压信号的负序分量,并将其通过上述技术。还通过基于能量的技术与适当的阈值选择来比较所提出方法的功效,以准确检测孤岛现象。此外,为了提高结果的准确性,使用支持向量机(SVM)进行分类,以将孤岛与其他电能质量(PQ)干扰区分开。结果证明了所提出的技术在无噪声和嘈杂环境下以及在谐波存在下的孤岛检测的有效性能和可行性。

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