用联合检测方法识别不同工况下的PV串联电弧故障

Silei Chen, Xingwen Li
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引用次数: 20

摘要

近年来,由光伏串联电弧故障引起的光伏系统火灾事故不断增多,造成了巨大的经济损失,对光伏系统的运行安全构成了极大的威胁。然而,随着逆变器在引弧过程中电压的升高和最大功率点轨迹的出现,使得PV串联电弧故障的检测变得复杂。本文旨在提供一种服务于智能微电网的电弧故障断路器(AFCI)的联合检测方法。本文记录了利用增强电荷耦合器件(ICCD)将光伏串联电弧故障引入光伏系统的两种方法。通过适时将PV串联电弧故障引入系统,获取了不同模拟工况下的正常和故障电信号。采用时域统计方法和时频时域短时傅立叶变换(STFT)进行故障诊断。在每种方法中都提出了一个检测变量来准确地识别它。提出了一种基于两个检测变量的比较满意的联合算法,以防止系统暂态过程中的有害跳闸。为了适应光伏系统中不断变化的电信号,该检测算法还采用了动态阈值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
PV series arc fault recognition under different working conditions with joint detection method
In recent years, increasing fire accidents in the photovoltaic (PV) system by PV series arc fault cause huge economic losses and pose great threats to its operating safety. However, increasing PV voltage and maximum power point track (MPPT) from the inverter during arc ignition make PV series arc fault complex to be detected. This paper aims at providing a joint detection method to arc fault circuit interrupters (AFCI) serving for smart micro grid. In this paper, two methods to bring PV series arc fault into the PV system have been recorded by intensified charge-coupled device (ICCD). By introducing PV series arc fault into the system in due time, normal and fault electric signals have been acquired under different imitated working conditions. Statistic method from time domain and short time Fourier transformation (STFT) from time-frequency domain are chosen to diagnose this kind of fault. A detection variable from each method has been proposed to recognize it accurately. A relatively satisfying joint algorithm based on two proposed detection variables has been put forward to prevent unwanted nuisance trips from system transient process. To fit constantly varying electric signals in PV system, this detection algorithm also adopts dynamic threshold value.
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