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Application of Neural Networks to the Identification of Steady State Equivalents of External Power Systems

机译:神经网络在外部电力系统稳识中的应用

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This paper suggests an approach based on artificial neural networks to identify steady state equivalents of external power systems. The underlying idea is to train an artificial neural network ANN to learn the behaviour or an external power system. After training, the ANN can be attached to the study system at its boundary buses, replacing the external power system and reproducing its behaviour. The equivalent model proposed in the article expresses the relationship between the power flows in the interconnection lines and the phase and voltage of the boundary buses. Thus, no external system information is required for constructing the equivalent The model is functional in both directions, i.e. using power flows as inputs and phasor voltages as outputs or using phasor voltages as inputs and power flows as outputs. The method was implemented and evaluated on the EEEE-30 bus system and on the Chinese Jiangxi province power system containing 294 buses. The results show that, given appropriate training, the ANN can serve as a model for a power system in an accurate and robust manner. Contrary to the classical methods, the non-linear character of the ANN enables it to accurately model the functioning of the external system also after major operating condition changes such as branch and generator outages
机译:本文建议了一种基于人工神经网络的方法来识别外部电力系统的稳态等同物。潜在的想法是培训一个人工神经网络,以学习行为或外部电力系统。培训后,ANN可以在其边界总线上附加到学习系统,更换外部电力系统并再现其行为。制品中提出的等效模型表达了互连线中功率流与边界总线的相位和电压之间的关系。因此,在两个方向上构造模型不需要外部系统信息,即使用功率流量作为输入和相量电压作为输出或使用量量电压作为输入和功率流量作为输出。该方法在EEEE-30总线系统上实施和评估,并在江西省含有294公交车的中国江西省电力系统。结果表明,鉴于适当的培训,ANN可以用作电力系统的模型,以准确和稳健的方式。与经典方法相反,ANN的非线性特性使其能够在经过主要操作条件的变化之后准确地模拟外部系统的功能,例如分支和发电机中断

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