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Neural Networks Technique Applicability for Voltage Stability of Power Systems

机译:神经网络技术适用于电力系统的电压稳定性

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This paper demonstrates the use of the Artificial Neural Networks for voltage stability assessment of a sample power system. The neural network is trained with data containing a variety of loading factors by using scaling factor. The five-bus sample system is considered for application to neural network. Proportionally increase of total load demand is recorded with bus voltages. Comparison of actual value of different loading and corresponding voltage collapse index is done. Another comparison for voltage at test bus is done for actual solved by conventional methods results and test voltage values for corresponding obtained index. One more comparison done for MVAr requiring avoiding collapse. The multi-layer feed forward back propagation (L-M) method is used. With the input/output being known already, supervised learning is employed for training the network. The structure of the proposed neural network is also presented. Test results based on a simple power system are presented to illustrate the suitability of the proposed method.
机译:本文展示了使用人工神经网络用于样品电力系统的电压稳定性评估。通过使用缩放因子,通过包含各种装载因子的数据接受了神经网络。将五个总线示例系统考虑用于神经网络的应用。按比例增加总负载需求的增加用总线电压记录。完成了不同负载和相应的电压崩塌索引的实际值的比较。通过传统方法结果和测试电压值进行实际解决的测试总线的电压的另一比较,以进行相应的指数。对于MVAR需要避免崩溃的一个比较。使用多层进料前后反向传播(L-M)方法。通过已知的输入/输出已知,受到监督学习用于培训网络。还提出了所提出的神经网络的结构。提出了基于简单电力系统的测试结果来说明所提出的方法的适用性。

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