基于动态时间规整的光伏系统直流串联电弧故障特征提取  被引量:3

DC SERIES ARC FAULT FEATURE EXTRACTION FOR PHOTOVOLTAIC SYSTEM BASED ON DYNAMIC TIMEWARPING

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作  者:李鑫 高伟[1] 杨耿杰[1] Li Xin;Gao Wei;Yang Gengjie(College of Electrical Engineering and Automation,Fuzhou University,Fuzhou 350108,China)

机构地区:[1]福州大学电气工程与自动化学院,福州350108

出  处:《太阳能学报》2023年第12期82-89,共8页Acta Energiae Solaris Sinica

基  金:福建省自然科学基金(2021J01633)。

摘  要:针对光伏系统直流串联电弧故障特征难以提取且算法普遍缺乏泛化性、适应性的问题,提出一种基于动态时间规整(DTW)的串联电弧故障特征提取新方法。首先计算电流信号的移动平均值(MA)来识别突变事件,采集异常信号;接着使用奇异谱分析(SSA)去除异常信号中的趋势成分,减小不同光伏系统信号之间的差异;随后,计算信号的DTW距离来提取有效特征;最后,使用特征向量的波形因子作为诊断判据,辨识出电弧、短路以及由逆变器启动、辐照度突变引起的干扰事件。实验结果表明,基于所提特征提取的电弧故障识别方法不仅速度快、特征辨识度高,而且适用于不同的逆变器系统,具有较强的适应性,综合性能优于对比方法。In light of challenges encountered in extracting DC series arc fault features within photovoltaic(PV)system and the observed limitations in algorithm generalization and adaptability,this study introduces a novel series arc fault feature extraction method based on dynamic time warping(DTW).Initially,the moving average(MA)value of the current signal is calculated to identify the mutation event and collect the abnormal signal.Then,the singular spectrum analysis(SSA)is used to remove the trend component of abnormal signals and reduce the differences between different PV system signals.Following this,the DTW distance of the signal is calculated to extract the valid features.In the end,the waveform factor of the identified feature vector serves as the diagnostic criterion to identify the arc fault,short circuit fault and the interference events caused by inverter start-up and irradiance mutation.The experimental results show that the arc fault identification method based on the proposed feature extraction is not only fast and highly recognizable,but also suitable for different inverter systems,has strong adaptability,and the comprehensive performance is better than that of the comparison method.

关 键 词:光伏系统 电弧 故障检测 动态时间规整 奇异谱分析 

分 类 号:TM615[电气工程—电力系统及自动化]

 

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