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A Partial Discharge Localization Method in Transformers Based on Linear Conversion and Density Peak Clustering

机译:基于线性转换和密度峰聚类的变压器局部放电定位方法

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摘要

The detection of partial discharge (PD) is a crucial method to evaluate the insulation status of transformers. The main difficulties of the current localization algorithms are the complexity of the solution and sensitivity to time delay errors. This article proposes a PD localization method in transformers based on linear conversion and density peak clustering (DPC). First, to reduce the complexity of solving the localization equations, the nonlinear localization equations are transformed into linear localization equations by eliminating the second-order terms. Then, to reduce the influence of time delay errors on localization accuracy, the initial localization values are located by multiple acoustic emission (AE) sensors. Finally, the optimal PD coordinates are determined by clustering the initial location values using density peaks clustering algorithm with automatic finding centers (AFC-DPC). The experimental results show that the proposed method can improve PD localization accuracy in transformers, and the average localization error is 5.30 cm.
机译:局部放电(PD)的检测是评估变压器的绝缘状态的重要方法。当前定位算法的主要困难是解决方案的复杂性和时间延迟误差的敏感性。本文提出了一种基于线性转换和密度峰聚类(DPC)变压器的PD定位方法。首先,为了降低求解定位方程的复杂性,通过消除二阶项,将非线性定位方程转换为线性定位方程。然后,为了减少时间延迟误差对定位精度的影响,初始定位值由多个声发射(AE)传感器定位。最后,通过使用具有自动查找中心(AFC-DPC)的密度峰聚类算法聚类初始位置值来确定最佳PD坐标。实验结果表明,该方法可以提高变压器的PD定位精度,平均定位误差为5.30厘米。

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