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Fault detection algorithm for grid-connected photovoltaic plants

机译:并网光伏电站的故障检测算法

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This paper presents detailed procedure for automatic fault detection and diagnosis of possible faults occurring in a grid-connected photovoltaic (GCPV) plant using statistical methods. The approach has been validated using an experimental data of climate and electrical parameters based on a 1.98 kWp plant installed at the University of Huddersfield, United Kingdom. There are few instances of statistical tools being deployed in the analysis of PV measured data. The main focus of this paper is, therefore, to create a system capable of simulating the theoretical performances of PV systems and to enable statistical analysis of PV measured data. The fault detection algorithm compares the measured and theoretical output power using statistical t-test. In order to determine the location of the fault, the ratio between the measured and theoretical DC power and voltage is monitored. The obtained results indicate that the fault detection algorithm can detect and locate accurately different types of faults. Some of the typical faults are fault in a photovoltaic module, photovoltaic string and faulty maximum power point tracker (MPPT) unit. A virtual instrumentation (VI) LabVIEW software was used in the system development and implementation. This system was used successfully for fault detection on the GCPV plant. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文介绍了使用统计方法自动故障检测和诊断并网光伏(GCPV)工厂中可能发生的故障的详细过程。该方法已使用基于英国哈德斯菲尔德大学安装的1.98 kWp电厂的气候和电气参数的实验数据进行了验证。在PV测量数据的分析中,很少部署统计工具。因此,本文的主要重点是创建一个能够模拟光伏系统理论性能并能够对光伏测量数据进行统计分析的系统。故障检测算法使用统计t检验比较测得的输出功率和理论输出功率。为了确定故障的位置,监视测量的和理论上的直流功率和电压之间的比率。所得结果表明,故障检测算法可以准确地检测和定位不同类型的故障。一些典型的故障是光伏模块,光伏串和最大功率点跟踪器(MPPT)单元故障。在系统开发和实施中使用了虚拟仪器(VI)LabVIEW软件。该系统已成功用于GCPV工厂的故障检测。 (C)2016 Elsevier Ltd.保留所有权利。

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