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An alternative approach using pattern recognition for power transformer protection

机译:一种替代方法,采用电力变压器保护模式识别

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This paper presents an alternative approach using the differential logic associated to artificial neural networks (ANNs) in order to distinguish between inrush currents and internal faults for the protection of power transformers. The study of the current distortion originated from current transformer (CTs) saturation is one of the main aims of the work. The alternative transients program (ATP) has been chosen as the computational tool to simulate a power transformer under fault and energization situations. The radius basis function (RBF) neural network is proposed as an alternative approach in order to distinguish the situations described, using a smaller amount of data for the training purpose if compared with networks such as the multilayer perceptron (MLP). The MLP neural network with the backpropagation method is also implemented for comparison purposes. A wide range of architectures is evaluated and the work shows the best net configurations obtained. The ANN results are then compared to those obtained by the traditional differential protection algorithm. Encouraging results related to the application of the new method are presented.
机译:本文呈现了一种使用与人工神经网络(ANNS)相关联的差分逻辑的替代方法,以区分浪涌电流和用于保护电力变压器的内部故障。对源自电流变压器(CTS)饱和度的电流失真的研究是该工作的主要目的之一。替代的瞬态程序(ATP)被选为计算工具,以在故障和激励情况下模拟电力变压器。提出了半径基函数(RBF)神经网络作为替代方法,以便在与诸如多层Perceptron(MLP)之类的网络相比的情况下使用较少量的培训目的进行培训目的的情况。还为比较目的实现了具有BackPropagation方法的MLP神经网络。评估广泛的架构,工作显示了所获得的最佳净配置。然后将ANN结果与传统差分保护算法获得的结果进行比较。提出了令人鼓舞的结果,与应用新方法有关。

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