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Towards a Comprehensive DGA Health Index

机译:迈向全面的DGA健康指数

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Dissolved Gas Analysis (DGA) is a widely adopted method for transformer diagnostics and maintenance decision-making. Traditional methods for DGA estimation classify the transformer health state according to predefined gas ratios and intervals. However, these methods are unable to deal wit h conflicting outputs because their diagnostics output is a single value. There are data-driven DGA classification methods which overcome the limitations of traditional methods, but usually, the DGA result is not considered in isolation and the analysis of other complementary variables can enhance the transformer health state estimation process. Accordingly, this paper presents a novel DGA-based health index formulation combining data-driven models with expert knowledge. Results confirm that the proposed approach is effective for classifying transformer faults and for identifying incipient abnormal patterns.
机译:溶解气体分析(DGA)是一种广泛采用的变压器诊断和维护决策方法。 DGA估计的传统方法根据预定义的气体比和间隔对变压器健康状态进行分类。但是,这些方法无法处理Wit H冲突的输出,因为它们的诊断输出是单个值。有数据驱动的DGA分类方法,克服了传统方法的局限性,但通常情况下,DGA结果不考虑在隔离,并且对其他互补变量的分析可以增强变压器卫生状态估计过程。因此,本文提出了一种基于DGA的健康指标制定,将数据驱动模型与专业知识相结合。结果证实,该方法对分类变压器故障和识别初期异常模式有效。

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