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Distributed MPC of the standalone hybrid wind and solar generation system based on neural network modeling

机译:基于神经网络建模的独立式混合式风能和太阳能发电系统的分布式MPC

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In this paper, we proposed a distributed model predictive control (DMPC) strategy for optimal management and operation of a wind and solar hybrid generation system which consists of wind and photovoltaic generation subsystems, a battery bank and an ac load. Due to the nonlinearity of the system, data-driven modeling with back propagation (BP) neural network is used for each power generation subsystem. And it is linearized online to calculate the control policy from a quadratic programming problem. The performance of the distributed model predictive control is shown through computer simulation, which illustrates the efficacy and feasibility of the proposed method.
机译:在本文中,我们提出了一种分布式模型预测控制(DMPC)策略,用于对由风能和光伏发电子系统,电池组和交流负载组成的风光互补发电系统进行最佳管理和运行。由于系统的非线性,每个发电子系统都使用带有反向传播(BP)神经网络的数据驱动建模。并且可以在线进行线性化,以根据二次规划问题来计算控制策略。通过计算机仿真显示了分布式模型预测控制的性能,说明了该方法的有效性和可行性。

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