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Study on Filtering and Eigenvalue Extraction of Partial Discharge Signal of GIS

机译:GIS局部放电信号的滤波与特征值提取研究

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At present, GIS (Gas Insulated Switchgears) has been more and more widely used in ultra-high voltage power system. But its structure is complex to disassemble hardly, and difficult to locate and maintain in case of failure. Therefore, it is necessary to conduct partial discharge detection on GIS to master the types and characteristics of its internal defects and avoid further deterioration of insulation defects. This paper introduces the filtering processing of signals in detecting GIS partial discharge by uhf method. It extracts statistical operators as pattern discriminating characteristic values by drawing various spectral diagrams, and finally uses BP neural network to realize pattern recognition to judge fault types. A large number of experiments show that the method has a high recognition rate and a good experimental effect.
机译:目前,GIS(气体绝缘开关设备)已越来越广泛地用于超高压电力系统中。但是其结构复杂,难以拆卸,并且在发生故障的情况下很难定位和维护。因此,有必要对GIS进行局部放电检测,以掌握其内部缺陷的类型和特征,避免绝缘缺陷的进一步恶化。介绍了用超高频方法检测GIS局部放电时信号的滤波处理。通过绘制各种频谱图,提取统计算子作为模式识别特征值,最后利用BP神经网络实现模式识别,以判断故障类型。大量实验表明,该方法具有较高的识别率和良好的实验效果。

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