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Systematic Multi-variable H_∞ Control Design for Primary Frequency Regulation in Stand-alone Microgrids with High Penetration of Renewable Energy Sources

机译:具有高可再生能源高渗透的独立微电网中初级频率调节的系统多变量H_∞控制设计

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In this paper, a systematic design of a robust multi-variable control structure for primary frequency regulation in microgrids with high rate of renewable source penetration is proposed. The considered microgrid represents a diesel-photovoltaic-supercapacitor hybrid power generation system operating in stand-alone mode. The proposed control structure relies on a two-level architecture: classical PI-based current tracking controllers are placed on the low control level and receive references from an H_∞-control-based upper level. A comprehensive methodology that casts the specific engineering demands of microgrid operation into H_∞ control formalism is detailed. It is also shown how closed-loop dynamical performance requirements must at their turn be taken into account in the initial microgrid setup and sizing, namely in choosing and rating the energy storage system. Numerical simulations carried out in MATLAB?/Simulink? show the effectiveness of the proposed H_∞ robust control strategy on a MVA-rated microgrid.
机译:在本文中,提出了一种系统设计,用于具有高可再生源穿透速率的微射线初级频率调节的鲁棒多变量控制结构。所考虑的微电网表示以独立模式操作的柴油光伏超级电容器混合动力发电系统。所提出的控制结构依赖于两级架构:经典的PI基电流跟踪控制器放置在低控制级别上,并从基于H_1-CONTROL的上层接收引用。详细说明了一种综合方法,将微电网运行的特定工程需求投入H_∞控制形式主义。还示出了如何在初始微电网设置和尺寸中考虑闭环动态性能要求,即在选择和评定能量存储系统时。 Matlab中进行的数值模拟?/ Simulink?展示了在MVA级微电网上提出的H_6鲁棒控制策略的有效性。

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