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USING NEURO-WAVELET TECHNIQUE FOR ADAPTIVE SINGLE PHASE AUTORECLOSURE OF TRANSMISSION LINES

机译:使用神经小波技术进行传输线的自适应单相自动卷晶

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Adaptive Single Pole Autoreclosure (SPAR) offers many advantages over conventional techniques. In the case of transient faults, the secondary arc time can be accurately determined, and in the case of permanent fault, breaker reclosure can be avoided. This paper describes, in some details, the design of SPAR technique based on Discrete Wavelet Transform (DWT) and Artificial Neural Networks (ANNS). The technique uses information extracted from the residual voltage of the opened phase using DWT. Simulation work for fault cases including transient and permanent single phase to ground faults in both medium and long Extra High Voltage (EHV) transmission systems have been done using ATP-EMTP program. The validity of the proposed technique is checked through simulation and actual records obtained from the Egyptian 500kV transmission system. The outcome of this study indicates that neural network based DWT technique (neuro-wavelet) can be used as an attractive and effective means of achieving an adaptive autoreclosure scheme.
机译:自适应单极自动曝光(SPAR)提供了与传统技术相比的许多优点。在瞬态故障的情况下,可以精确地确定次级电弧时间,并且在永久性故障的情况下,可以避免断路器闭合。本文在一些细节中描述了基于离散小波变换(DWT)和人工神经网络(ANNS)的SPAR技术的设计。该技术使用使用DWT从打开相位的残余电压提取的信息。使用ATP-EMTP程序已经完成了在中等和长超高电压(EHV)传输系统中的瞬态和永久单相的故障情况下的故障情况下的故障情况下的故障情况。通过从埃及500kV传输系统获得的仿真和实际记录来检查所提出的技术的有效性。该研究的结果表明,基于神经网络的DWT技术(神经小波)可以用作实现自适应自动压缩方案的吸引力和有效的手段。

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