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首页> 外文期刊>IEEE Transactions on Dielectrics and Electrical Insulation >Source Classification of Partial Discharge for Gas Insulated Substation using Waveshape Pattern Recognition
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Source Classification of Partial Discharge for Gas Insulated Substation using Waveshape Pattern Recognition

机译:基于波形模式识别的气体绝缘变电站局部放电源分类

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摘要

Frequency-domain analysis of ultra-high frequency (UHF) signals for source identification of partial discharge (PD) occurring, in SF{sub}6 inside gas-insulated substation (GIS) has been widely covered in literature. In this, Fast Fourier Transform and Discrete Wavelet Transform based techniques have been extensively applied to derive classifying features from transformed patterns. On the other hand, it appears feasible to develop a time-domain classifier, which derives features directly from the original waveshape. The time-domain classifier is conceptually simple, and requires potentially less computing resources and simpler algorithmic interface with other intelligent techniques due to elimination of frequency-domain transformation. A novel classifier to extract features directly from time-domain waveforms is proposed for classifying SF{sub}6 PD from air corona and among the three types of SF{sub}6 PD, regardless of changes in PD locations and measurement conditions. Three sets of classifying features are proposed. Encouraging results have been achieved with comprehensive experimental data, which verifies and proves the usefulness and feasibility of the time-domain classifier.
机译:在气体绝缘变电站(GIS)内部的SF {sub} 6中,超高频(UHF)信号的频域分析用于部分放电(PD)的源识别已被广泛报道。在这种情况下,基于快速傅里叶变换和离散小波变换的技术已被广泛应用于从变换后的模式中得出分类特征。另一方面,开发时域分类器似乎是可行的,该分类器直接从原始波形中得出特征。时域分类器在概念上很简单,并且由于消除了频域变换,因此可能需要更少的计算资源和与其他智能技术的更简单算法接口。提出了一种直接从时域波形中提取特征的新颖分类器,用于从电晕中以及三种类型的SF {sub} 6 PD中对SF {sub} 6 PD进行分类,而与PD位置和测量条件的变化无关。提出了三套分类特征。综合实验数据获得了令人鼓舞的结果,这些数据验证并证明了时域分类器的实用性和可行性。

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