基于神经网络的DSP-PC系统暂态稳定判据

S. Wei, K. Nakamura, M. Sone, H. Fujita
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引用次数: 3

摘要

暂态稳定评估在电力系统中起着重要的作用。暂态稳定研究的是由电力系统中的扰动引起的同步发电机的机电振荡。例如,在传输线故障的情况下,假设故障线路部分首先被隔离,然后重新合闸(重合闸);然后存在一个阈值参数,称为稳定临界清除时间(CCT)。本文提出了一种基于神经网络的自适应模式识别方法来估计临界清除时间。给出了数值算例来说明这种方法。在本研究所考虑的神经网络中,采用多DSP-PC系统(数字信号处理器-个人计算机系统),通过管道运算和并行运算来实现更快的反向传播。
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Neural network based power system transient stability criterion using DSP-PC system
Transient stability assessment plays an important role in power systems. The transient stability deals with the electromechanical oscillation of synchronous generators, created by a disturbance in the power system. For example, in the case of a transmission line fault, assume that faulted line section is first isolated and then reclosed (reclosure); there then exists a threshold parameter known as the stable critical clearing time (CCT). This paper describes a neural network based adaptive pattern recognition approach for estimation of the critical clearing time. Numerical examples are presented to illustrate this approach. In the neural network considered in this research work, a multi DSP-PC system (digital signal processor-personal computer system) is used for realizing faster backpropagation by applying pipeline operation and parallel operation.<>
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