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Inverse Optimal Control with Speed Gradient for a Power Electric System Using a Neural Reduced Model

机译:基于神经网络简化模型的电力系统速度梯度逆最优控制

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This paper presented an inverse optimal neural controller with speed gradient (SG) for discrete-time unknown nonlinear systems in the presence of external disturbances and parameter uncertainties, for a power electric system with different types of faults in the transmission lines including load variations. It is based on a discrete-time recurrent high order neural network (RHONN) trained with an extended Kalman filter (EKF) based algorithm. It is well known that electric power grids are considered as complex systems due to their interconections and number of state variables; then, in this paper, a reduced neural model for synchronous machine is proposed for the stabilization of nine bus system in the presence of a fault in three different cases in the lines of transmission.
机译:针对具有外部干扰和参数不确定性的离散时间未知非线性系统,针对输电线路中具有不同类型故障(包括负载变化)的电力系统,提出了一种具有速度梯度(SG)的逆最优神经控制器。它基于离散时间递归高阶神经网络(RHONN),该网络使用基于扩展卡尔曼滤波器(EKF)的算法进行训练。众所周知,由于电网的相互连接和状态变量的数量,电网被视为复杂的系统。然后,本文提出了一种简化的同步电机神经模型,用于在三种不同情况下的输电线路中存在故障的情况下稳定九总线系统。

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  • 来源
    《Mathematical Problems in Engineering》 |2014年第5期|514608.1-514608.21|共21页
  • 作者单位

    CUCEI, Universidad de Guadalajara, Apartado Postal 51-71, Col. Las Aguilas, 45079 Zapopan, JAL, Mexico;

    CINVESTAV, Unidad Guadalajara, Apartado Postal 31-438, Plaza La Luna, 45091 Guadalajara, JAL, Mexico;

    CUCEI, Universidad de Guadalajara, Apartado Postal 51-71, Col. Las Aguilas, 45079 Zapopan, JAL, Mexico;

    CUCEI, Universidad de Guadalajara, Apartado Postal 51-71, Col. Las Aguilas, 45079 Zapopan, JAL, Mexico;

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