Reliable power disturbance detection using wavelet decomposition or harmonic model based Kalman filtering

M. Caujolle, M. Petit, G. Fleury, L. Berthet
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引用次数: 11

Abstract

This paper proposes a method for detecting Power Quality (PQ) disturbances measured on distribution networks. The detection efficiencies of two types of detection vectors are compared: the estimation error returned by a Kalman Filter (KF) based on a harmonic model and the detail coefficients given by a Multi-Resolution Analysis (MRA). The detection capabilities of different state-models and wavelet families are tested on waveform recordings of PQ disturbances including faults, transformer energizing, capacitor bank switching or ripple control.
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利用小波分解或基于谐波模型的卡尔曼滤波进行可靠的电力干扰检测
提出了一种检测配电网电能质量(PQ)扰动的方法。比较了两种检测向量的检测效率:基于谐波模型的卡尔曼滤波(KF)返回的估计误差和多分辨率分析(MRA)给出的细节系数。不同状态模型和小波族的检测能力在PQ干扰的波形记录上进行了测试,包括故障、变压器激励、电容器组开关或纹波控制。
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