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Detection of Arc Faults in PV Systems Using Compressed Sensing

机译:使用压缩感检测光伏系统电弧故障

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摘要

As photovoltaic systems grow in size, there has been an increasing desire to automate the detection of arc faults. Any automated system for arc detection must be as fast and accurate as possible: delayed detection of electrical arcs can lead to fire and considerable system damage, while false positives that cause preventative system shutdown are associated with a significant financial cost. In this article, we present a novel approach to detect arcs in dc microgrids via their high-frequency (HF) spectral pattern using ideas from compressed sensing. The acquisition and analysis of HF signals using analog-to-digital converter technology typically requires costly hardware and is not feasible for on-site installation at power plants. However, sparsifying the signal by filtering everything but a narrow HF band enables the use of a modulated wideband converter to sample the arc signature at sub-Nyquist frequencies. We then calculate a characteristic band power within the selected spectrum slice over time and show that it can be used to reliably detect arc events via simple thresholding. We have evaluated our methods on both simulated and experimentally generated arc signals. Finally, we perform statistical analysis of power distributions using linear discriminant analysis in order to identify the frequency range best suited for arc detection.
机译:随着光伏系统的成长,越来越渴望自动检测电弧故障。任何用于电弧检测的自动化系统都必须尽可能快速准确:电弧的延迟检测可能导致火灾和相当大的系统损坏,而导致预防性系统关闭的误报率与显着的财务成本相关。在本文中,我们介绍了一种新的方法,可以通过从压缩感测的思想通过其高频(HF)光谱模式来检测DC微电网中的电弧。使用模数转换器技术的HF信号采集和分析通常需要昂贵的硬件,并且在发电厂的现场安装是不可行的。但是,通过过滤所有内容,但窄的HF频段使得使用调制宽带转换器来对信号进行缩小,以便在子奈奎斯特频率下对电弧签名进行采样。然后,我们随着时间的推移计算所选频谱切片内的特征频带电力,并显示它可以通过简单的阈值处理来可靠地检测电弧事件。我们在模拟和实验生成的弧信号上评估了我们的方法。最后,我们使用线性判别分析进行功率分布的统计分析,以识别最适合电弧检测的频率范围。

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