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Frequency and Voltage Control Strategy of Standalone Microgrids With High Penetration of Intermittent Renewable Generation Systems

机译:高渗透率的间歇式可再生发电系统独立微电网的频率和电压控制策略

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摘要

In this paper, we propose a frequency and voltage control strategy for a standalone microgrid with high penetration of intermittent renewable generation systems, which might cause large frequency and voltage deviation in the system due to unpredictable output power fluctuations. To this end, a battery energy storage system (BESS) is suggested for generating the nominal system frequency instead of a synchronous generator, from a frequency control perspective. This makes the system frequency independent of the mechanical inertia of the synchronous generator. However, a BESS has a capacity limitation; a synchronous generator is used to maintain the state of charge (SOC) of the BESS at a certain value. For voltage control, we proposed that a reactive power/active power (Q/P) droop control be added to the conventional reactive power controller. By adding a Q/P droop control, renewable generation acquires a voltage-damping effect, which dramatically alleviates the voltage fluctuation induced by its own output power fluctuation. Simulation results prove the effectiveness of the proposed control strategy from both frequency and voltage control perspectives.
机译:在本文中,我们为间歇性可再生发电系统的高渗透率的独立微电网提出了一种频率和电压控制策略,该策略可能由于不可预测的输出功率波动而导致系统中较大的频率和电压偏差。为此,从频率控制的角度出发,建议使用电池能量存储系统(BESS)来生成标称系统频率,而不是同步发电机。这使得系统频率与同步发电机的机械惯性无关。但是,BESS具有容量限制。同步发电机用于将BESS的充电状态(SOC)保持在某个值。对于电压控制,我们建议将无功/有功(Q / P)下降控制添加到常规无功控制器中。通过添加Q / P下垂控制,可再生能源发电获得了降压效果,从而大大减轻了其自身输出功率波动引起的电压波动。仿真结果从频率和电压控制的角度证明了所提出的控制策略的有效性。

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