首页> 外文会议>Electrical Insulation, 1998. Conference Record of the 1998 IEEE International Symposium on >Detection of oil-paper equilibrium moisture content in power transformers using hybrid intelligent interpretation of polarisation spectrums from recovery voltage measurements
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Detection of oil-paper equilibrium moisture content in power transformers using hybrid intelligent interpretation of polarisation spectrums from recovery voltage measurements

机译:使用来自恢复电压测量的极化光谱的混合智能解释,检测电力变压器中的油纸平衡水分含量

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Detection of moisture in oil and paper is a key factor in determining the health of insulation in a power transformer. High moisture content severely degrades the insulating strength of oil and paper and may eventually cause failure. It is therefore highly desirable to detect incipient failure. Recently, a method based on Recovery Voltage Measurement (RVM) on transformers has been successfully used by Pacific Power International in the Australian state of New South Wales to identify conditions such as contaminated bushings, traces of solvent in oil, effectiveness of vacuum dry out and treatment of oil, local moisture ingress, and presence of static charges in oil. A Matlab based hybrid Expert System-Neural Network software has been developed to interpret above conditions from measured RVM data on 60 (sixty) power transformers. In this paper, details of this non-destructive and non-intrusive technique and some interesting results are presented.
机译:检测油和纸中的水分是确定电力变压器绝缘状况的关键因素。高水分含量会严重降低油和纸的绝缘强度,并最终可能导致故障。因此,非常需要检测初期故障。最近,太平洋电力国际公司已经在澳大利亚新南威尔士州的太平洋电力国际公司成功地使用了一种基于变压器恢复电压测量(RVM)的方法来识别各种条件,例如受污染的套管,油中的溶剂痕迹,真空干燥的有效性以及处理油,局部水分进入以及油中存在静电荷。已经开发了基于Matlab的混合专家系统-神经网络软件,以从60个(六十个)电力变压器上测得的RVM数据中解释上述条件。在本文中,将详细介绍这种非破坏性和非侵入性技术,并给出一些有趣的结果。

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