Fault diagnosis method of transformer based on cloud theory and entropy weight

Zhicheng Xie, Kun Yu, Shu Su, Zhengtian Li, Xiangning Lin, Weihong Xiong
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引用次数: 2

Abstract

In this paper, we propose a method to identify potential faults in power transformers. Firstly, the cloud distribution model of gases under different fault types are established respectively, which are the basis for building the cloud knowledge base. Secondly, the membership grades between test sample and different fault types can be calculated by weighting the gases using entropy weight method. Finally, the effectiveness and the superior data learning ability of this method can be verified by comparing the diagnostic accuracy with three-ratio method introduced by IEEE and the existing cloud method under different amount of samples. The result of this method can provide effective reference for the maintenance planning of transformer.
基于云理论和熵权的变压器故障诊断方法
本文提出了一种电力变压器潜在故障的识别方法。首先,分别建立了不同故障类型下气体的云分布模型,这是构建云知识库的基础;其次,利用熵权法对气体进行加权,计算出测试样本与不同故障类型的隶属度;最后,在不同样本量下,通过对比IEEE引入的三比法和现有的云方法的诊断准确率,验证了该方法的有效性和优越的数据学习能力。该方法的研究结果可为变压器的检修计划提供有效的参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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