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Frequency control using on-line learning method for island smart grid with EVs and PVs

机译:基于在线学习方法的带电动汽车和光伏汽车的岛屿智能电网的频率控制

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Due to the intermittent power generation from renewable energy in the smart grid (i.e., photovoltaic (PV) or wind farm), large frequency fluctuation occurs when the load-frequency control (LFC) capacity is not enough to compensate the unbalance of generation and load demand. This problem may become worsen when the system is in island operating. Meanwhile, in the near future, electric vehicles (EVs) will be widely used by customers, where the EV station could be treated as dispersed battery energy storage. Therefore, the vehicle-to-grid (V2G) power control can be applied to compensate for inadequate LFC capacity, thus improving the island smart grid frequency stability. In this paper, an on-line learning method, called goal representation adaptive dynamic programming (GrADP), is adopted to coordinate control of units in an island smart grid. In the controller design, adaptive supplementary control signals are provided to proportional-integral (PI) controllers by online GrADP according to the utility function. Simulations on a benchmark smart grid with micro turbine (MT), EVs and PVs demonstrate the superior control effect and robustness of the proposed coordinate controller over the original PI controller and fuzzy controller.
机译:由于智能电网(例如光伏(PV)或风电场)中的可再生能源间歇性发电,当负载-频率控制(LFC)容量不足以补偿发电和负载的不平衡时,会发生较大的频率波动要求。当系统在孤岛运行时,此问题可能会变得更加严重。同时,在不久的将来,电动汽车(EV)将被客户广泛使用,其中EV站可被视为分散的电池能量存储。因此,可以应用车辆到电网(V2G)功率控制来补偿LFC容量不足,从而提高孤岛智能电网的频率稳定性。本文采用一种称为目标表示自适应动态规划(GrADP)的在线学习方法来协调岛智能电网中的单元控制。在控制器设计中,根据实用程序功能,通过在线GrADP将自适应辅助控制信号提供给比例积分(PI)控制器。在具有微型涡轮(MT),电动汽车和光伏汽车的基准智能电网上进行的仿真表明,与原始PI控制器和模糊控制器相比,所建议的坐标控制器具有出色的控制效果和鲁棒性。

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