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Neural network based preventive control support system for power system stability enhancement

机译:基于神经网络的预防控制支持系统,用于提高电力系统的稳定性

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The authors propose an application of a newly developed neural network to the preventive control of a power system. The purpose of the proposed control is to improve the damping effect of the system on electromechanical modes by reallocating load to generators. Since the neural network has flexible learning capability the authors apply it to identify the complex and nonlinear relation between the damping effect and the distribution of generating power. The trained neural network acts as the support system which aids an operator in performing the generating reallocation for enhancing the system stability. Furthermore, the authors develop a new type of neural network which can deal with the equal constraints about the output layer in the error-back-propagation type of neural network because it is important for the generating reallocation to satisfy the equal constraint about the energy balance between generation and load.
机译:作者提出了一种新开发的神经网络在电力系统预防控制中的应用。所提出的控制的目的是通过将负载重新分配给发电机来改善系统对机电模式的阻尼效果。由于神经网络具有灵活的学习能力,因此作者将其应用于识别阻尼效应与发电功率分配之间的复杂非线性关系。受过训练的神经网络充当支持系统,可帮助操作员执行生成重新分配以增强系统稳定性。此外,作者开发了一种新型的神经网络,它可以处理误差反向传播型神经网络中关于输出层的相等约束,因为对于生成重新分配而言,满足关于能量平衡的相等约束非常重要在发电和负荷之间。

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