New Formulation through Artificial Neural Networks in the Diagnosis of Faults in Power Systems: A Modular Approach

A. Flores, E. Quiles, E. García, F. Morant
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引用次数: 1

Abstract

In this work a new method is proposed for the diagnosis of faults in electric power transmission systems based on neural modularity. This method performs the diagnosis through the assignation of a generic neural module for each type of element conforming the transmission system, whether it be line, bus or transformer. A total of three generic neural modules are designed, one for each type of element. These neural modules are grouped together in repetition according to the element to be diagnosed and taking into account its breakers and relays, both primary and back-up. The most important and novel aspect of this method is that only three neural modules are required, one for each type of element, and they can be called upon for the diagnosis as a function, the moment a change of state is detected in any of the breakers, primary or back-up, relating to the element under diagnosis.
基于人工神经网络的电力系统故障诊断新公式:模块化方法
本文提出了一种基于神经模块的输电系统故障诊断新方法。该方法通过为符合传输系统的每种类型的元件(无论是线路、母线还是变压器)分配通用神经模块来进行诊断。共设计了三个通用神经模块,每个模块对应一个类型的元素。这些神经模块按照要诊断的要素,并考虑到它的断路器和继电器,包括主要的和备用的,重复地组合在一起。该方法最重要和新颖的方面是只需要三个神经模块,每种类型的元素一个,并且当检测到与诊断元素相关的任何断路器(主断路器或备用断路器)状态变化时,它们可以作为一个函数被调用进行诊断。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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