An intelligent method for fault diagnosis in photovoltaic systems

Yassine Chouay, M. Ouassaid
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引用次数: 13

Abstract

This paper presents a diagnostic method based on I-V characteristic analysis and Artificial Neural Networks (ANN). A number of attributes are estimated using a simulation model based on a set of working conditions such as solar irradiance and module's temperature. The estimated attributes are then compared with those obtained from the real PV array measurements, which lead to the detection of possible faulty operating conditions. After detecting the presence of possible fault, tow algorithms are developed in order to isolate and identify eight different types of faults. The simulation results show that the proposed method can detect and classify the different faults occurring in a PV array with a high accuracy.
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光伏系统故障智能诊断方法研究
本文提出了一种基于I-V特征分析和人工神经网络(ANN)的诊断方法。使用基于一组工作条件(如太阳辐照度和模块温度)的模拟模型估计了许多属性。然后将估计的属性与光伏阵列的实际测量结果进行比较,从而检测出可能存在的故障运行状态。在检测到可能存在的故障后,开发了两种算法来隔离和识别八种不同类型的故障。仿真结果表明,该方法能够对光伏阵列中发生的各种故障进行高精度的检测和分类。
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