Centralized Voltage Signal-Based Fault Detection and Classification for Islanded AC Microgrid

Anusuya Arunan, J. Ravishankar, E. Ambikairajah
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Abstract

Insignificant fault current in inverter-based islanded AC microgrids makes fault detection challenging. This paper introduces a voltage signal-based fault assessment method for islanded AC microgrids. It considers a new set of features such as instantaneous jumps in amplitude, phase angle and frequency of voltage signal for fault detection and classification. Hilbert transform is used to extract the above features in the time domain. The proposed method can detect any kind of disturbance occurring in the system including step changes in loads and generations and faults, within a cycle. It can also identify whether the detected disturbance is a fault or a non-fault disturbance, by considering the rate of change of frequency calculated over a cycle in addition to the instantaneous jumps in voltage. Fault type classification is performed with the introduced instantaneous features, where support vector machine and artificial neural network classifiers are trained separately, and their performances are tested with unknown test data. The proposed method is validated with balanced as well as unbalanced islanded AC microgrid systems. Further, the performance of the proposed method is verified with both clean and noisy data.
基于集中电压信号的孤岛交流微电网故障检测与分类
在基于逆变器的孤岛交流微电网中,故障电流的不显著给故障检测带来了挑战。介绍了一种基于电压信号的孤岛交流微电网故障评估方法。它考虑了电压信号的幅值、相位角和频率的瞬时跳变等一系列新的特征来进行故障检测和分类。利用希尔伯特变换在时域中提取上述特征。该方法可以在一个周期内检测出系统中发生的任何类型的干扰,包括负载的阶跃变化和故障的产生。除了电压的瞬时跳跃外,它还可以通过考虑一个周期内计算的频率变化率来识别检测到的干扰是故障还是非故障干扰。利用引入的瞬时特征进行故障类型分类,分别训练支持向量机和人工神经网络分类器,并使用未知的测试数据对其性能进行测试。该方法在平衡和不平衡孤岛交流微电网系统中得到了验证。此外,用干净数据和噪声数据验证了该方法的性能。
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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