首页> 外文会议>2012 IEEE International Power Modulator and High Voltage Conference >Applying Hilbert-Huang transform on partialdischarge pattern recognition of a gas insulated switchgear
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Applying Hilbert-Huang transform on partialdischarge pattern recognition of a gas insulated switchgear

机译:Hilbert-Huang变换在气体绝缘开关柜局部放电模式识别中的应用

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This study proposes gas insulated switchgear (GIS) partial discharge (PD) pattern classification based on the Hilbert-Huang transform (HHT). First, this study establishes four defect types of 15 kV GIS and uses a commercial high-frequency current transformer (HFCT) sensor to measure the electrical signals caused by the PD phenomenon. The HHT can represent instantaneous frequency components through empirical mode decomposition (EMD), and then transform into a 3D Hilbert energy spectrum. Thereafter, it extracts the energy feature parameters from the 3D Hilbert spectrum by using the back-propagation neural network (BPNN) for PD recognition. This study verifies the effectiveness of the proposed method by examining the identification ability of the BPNN using 160 sets of GIS-generated PD patterns. The experiment result shows the method can classify various defect types easily. The method can also be employed by the construction unit to verify the GIS quality and determine the GIS insulation status.
机译:这项研究提出了基于Hilbert-Huang变换(HHT)的气体绝缘开关设备(GIS)局部放电(PD)模式分类。首先,本研究建立了15 kV GIS的四种缺陷类型,并使用了商用高频电流互感器(HFCT)传感器来测量由PD现象引起的电信号。 HHT可以通过经验模式分解(EMD)表示瞬时频率分量,然后转换为3D Hilbert能谱。此后,它使用反向传播神经网络(BPNN)进行PD识别,从3D Hilbert谱中提取能量特征参数。这项研究通过使用160组GIS生成的PD模式检查BPNN的识别能力,验证了该方法的有效性。实验结果表明,该方法可以很容易地对各种缺陷类型进行分类。施工单位还可以使用该方法来验证GIS质量并确定GIS绝缘状态。

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