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Stochastic model predictive control for optimal economic operation of a residential DC microgrid

机译:随机模型预测控制可优化住宅直流微电网的经济运行

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In this paper we present power flow optimization of a residential DC microgrid that consists of photovoltaic array, batteries stack and fuel cells stack with electrolyser, and is connected to the grid via bidirectional power converter. The optimization problem aims to minimize microgrid operating costs and is formulated using a linear program that takes into account the storages charge and discharge efficiency. To account for power predictions uncertainty, optimization problem is defined in a stochastic framework by using chance constraints. Since we assume that the error in realization of power predictions will be compensated by utility grid, chance constraints are defined for power exchange between the microgrid and the utility grid. Finally, we investigate a stochastic model predictive control for the closed-loop power management in the microgrid. Performance verification of the proposed approach is performed on simulations for two-month period.
机译:在本文中,我们介绍了住宅直流微电网的功率流优化,该微电网由光伏阵列,电池堆和带有电解槽的燃料电池堆组成,并通过双向功率转换器连接到电网。优化问题旨在最小化微电网的运营成本,并使用考虑了存储充放电效率的线性程序来制定优化问题。为了解决功率预测的不确定性,通过使用机会约束在随机框架中定义了优化问题。由于我们假设电力预测实现中的错误将由公用电网补偿,因此为微电网和公用电网之间的电力交换定义了机会约束。最后,我们研究了微电网中闭环电源管理的随机模型预测控制。在两个月的时间里,对仿真方法进行了性能验证。

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