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A Modular Neural Network Scheme Applied to Fault Diagnosis in Electric Power Systems

机译:模块化神经网络方案在电力系统故障诊断中的应用

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摘要

This work proposes a new method for fault diagnosis in electric power systems based on neural modules. With this method the diagnosis is performed by assigning a neural module for each type of component comprising the electric power system, whether it is a transmission line, bus or transformer. The neural modules for buses and transformers comprise two diagnostic levels which take into consideration the logic states of switches and relays, both internal and back-up, with the exception of the neural module for transmission lines which also has a third diagnostic level which takes into account the oscillograms of fault voltages and currents as well as the frequency spectrums of these oscillograms, in order to verify if the transmission line had in fact been subjected to a fault. One important advantage of the diagnostic system proposed is that its implementation does not require the use of a network configurator for the system; it does not depend on the size of the power network nor does it require retraining of the neural modules if the power network increases in size, making its application possible to only one component, a specific area, or the whole context of the power system.
机译:这项工作提出了一种基于神经模块的电力系统故障诊断的新方法。通过这种方法,可以通过为包括电力系统的每种类型的组件(无论是传输线,总线还是变压器)分配神经模块来执行诊断。用于总线和变压器的神经模块包括两个诊断级别,其中考虑了内部和备用的开关和继电器的逻辑状态,但用于传输线的神经模块也具有第三个诊断级别,其中记录故障电压和电流的波形图以及这些波形图的频谱,以验证传输线是否实际上已发生故障。所提出的诊断系统的一个重要优点是它的实现不需要为该系统使用网络配置器。它不依赖于电力网络的规模,如果电力网络的规模增加,它也不需要重新训练神经模块,从而使得其仅适用于电力系统的一个组件,特定区域或整个环境。

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