大型电力变压器监测与诊断的神经模糊计算

O. Roizman, V. Davydov
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引用次数: 10

摘要

电力变压器绝缘状态监测和诊断的参数和方法有很多。我们专注于其中的几个。绝缘系统的含水率是对电力变压器完整性诊断越来越重要的参数之一。绝缘油与绝缘纸之间的水分迁移是一个非常复杂的非线性过程,具有许多不确定性。应用自适应神经模糊系统辨识方法,从油的水分特性在线测量中预测固体绝缘材料的水分含量。介绍了纸油绝缘系统平均含水率的实测值与预测值的比较。讨论了电力变压器神经模糊热模型的建立、智能传感器技术、模糊信号调理和电力变压器局部放电的评价。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Neuro-fuzzy computing for large power transformers monitoring and diagnostics
There are number of parameters and methods available for condition monitoring and diagnosis of power transformer insulation. We concentrate on a few of them. One of the parameters, which is becoming more and more vital for diagnostics of the integrity of a power transformer, is the moisture content of the insulation system. Migration of moisture between oil and paper insulation is a very complex, nonlinear process with many uncertainties. An adaptive neuro-fuzzy system identification is applied to predict the moisture content of solid insulation from on-line measurements of moisture characteristics of oil. The comparison of the measured and predicted values of the average moisture content in a paper-oil insulation system is presented. Development of a neuro-fuzzy thermal model of a power transformer, intelligent sensor technology, fuzzy signal conditioning and evaluation of partial discharges in power transformers are also discussed.
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