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Partial discharge pattern analysis using multi-class support vector machine to estimate cavity size and position in solid insulation

机译:使用多级支持向量机进行局部放电模式分析,以估计固体绝缘中的腔尺寸和位置

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摘要

Partial discharge (PD) measurement is used for a diagnosis and performance assessment of the solid insulation material inside the high-voltage (HV) equipment. PD measurement indicates the presence of voids, cracks and imperfection present in solid insulation material. The major problem associated with this measured PD signal is heavily contaminated by noise which results in reduction in PD pattern recognition. The objective of this work is to measure and de-noise the PD signal due to cavity and recognize two different size of cavities present in three different locations, namely near HV electrode, center and lower electrode. In first part, the measured PD signal is de-noised using translation invariant wavelet transform. In second part, the three-dimensional (phi-q-n) PD patterns are extracted from the de-noised PD data. Then, it is subjected to canny edge detection technique, and the features like horizontal and vertical fractal dimension averages are evaluated using fractal image compression-based semi-variance technique. For classification, multi-class nonlinear support vector machine has been proposed to classify position and size of the cavity based on the PD fingerprints. The findings of this proposed work can be used to design a solid basis for an recognition of cavity size and position in an electrical apparatus.
机译:局部放电(PD)测量用于高压(HV)设备内的固体绝缘材料的诊断和性能评估。 PD测量表示固体绝缘材料中存在的空隙,裂缝和缺陷。与该测量的PD信号相关的主要问题受到噪声的严重污染,导致PD图案识别的降低。这项工作的目的是通过腔腔测量和致噪声PD信号,并且识别在三个不同位置存在的两个不同尺寸的空腔,即在HV电极,中心和下电极附近。在第一部分中,使用转换不变小波变换来脱节测量的PD信号。在第二部分中,从去噪PD数据中提取三维(PHI-Q-N)PD图案。然后,将其经受脆弱的边缘检测技术,并且使用基于分形图像压缩的半方差技术来评估水平和垂直分形维数平均值的特征。对于分类,已经提出了多级非线性支持向量机以基于PD指纹对腔的位置和尺寸进行分类。该提出的工作的发现可用于设计坚固的基础,以识别电气设备中的腔体尺寸和位置。

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