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Partial discharge pattern recognition of insulation models of power transformers

机译:电力变压器绝缘模型的局部放电模式识别

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To analyze the statistical characteristics of partial discharges (PDs) in power transformers, 7 types of experimental models simulating PD in transformers and 3 types of models simulating interfering PD in air are designed and model experiments are conducted in a screened room. Using a digital measuring device with the sampling rate of 50 kHz, the quantity phase information of PD pulse current in models is obtained after the signal is processed by a peak-holding hardware. The PD features are extracted using the 3D pattern chart and then a group of three-layer back-propagation ANNs (artificial neural networks) is used to recognize the PD patterns. The investigation shows that ANN has enough ability to recognize different PD in oil-paper insulation of power transformers and PD interference from air can be recognized and eliminated.
机译:为了分析电力变压器局部放电的统计特性,设计了7种模拟变压器局部放电的实验模型和3种模拟空气中局部放电的模型,并在屏蔽室内进行了模型实验。使用采样率为50 kHz的数字测量设备,在通过峰值保持硬件处理信号之后,可以获得模型中PD脉冲电流的相位信息。使用3D模式图提取PD特征,然后使用一组三层反向传播ANN(人工神经网络)识别PD模式。调查表明,人工神经网络具有足够的能力来识别电力变压器油纸绝缘中的不同局部放电,并且可以识别和消除来自空气的局部放电干扰。

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