Voltage and frequency control of solar – battery – diesel based islanded microgrid

L. Vuić, J. Hivziefendic, M. Saric, Jakub Osmić
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Abstract

Abstract Islanded microgrids with low-inertia distributed energy resources (DERs) are prone to frequency fluctuations. With the increasing integration of DERs in microgrids, the complexity of control and stability has also increased. Moreover, the integration of DERs into microgrids may result in a power imbalance between energy supply and demand during sudden changes in load or energy generation. This can cause frequency variations in the microgrid, which could have disastrous consequences such as equipment damage or even blackouts. This paper proposes a control strategy to ensure the efficient operation of an islanded hybrid microgrid consisting of a PV generator, battery energy storage system (BESS), and emergency diesel generator. According to Energy Exchange Model proposed in this paper, the hybrid system presented operates independently without being connected to the electrical grid, where the PV system and BESS act as the main energy sources, while the emergency diesel generator provides active power backup with voltage and frequency regulation. The novel in this paper is also that DER aids in frequency regulation during active power transients by delivering and absorbing active power in accordance with the inverter's suggested P droop control strategy. In this way inverter droop control decreases system frequency nadir emulating so called “synthetic inertia”. To design both the islanded hybrid system and the proposed control strategy, the MATLAB/Simulink environment is utilized. Based on the results, it can be concluded that the analyzed microgrid system is capable of maintaining stability and operating efficiently in a range of operating conditions.
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基于太阳能-电池-柴油的岛式微电网的电压和频率控制
摘要 采用低惯性分布式能源资源(DER)的孤岛微电网容易出现频率波动。随着 DER 在微电网中的集成度越来越高,控制和稳定性的复杂性也随之增加。此外,在负荷或发电量突然变化时,将 DER 集成到微电网中可能会导致能源供需之间的功率不平衡。这可能会导致微电网的频率变化,从而造成设备损坏甚至停电等灾难性后果。本文提出了一种控制策略,以确保由光伏发电机、电池储能系统(BESS)和应急柴油发电机组成的孤岛式混合微电网的高效运行。根据本文提出的能量交换模型,所介绍的混合系统可在不与电网连接的情况下独立运行,其中光伏系统和电池储能系统作为主要能源,而应急柴油发电机则提供具有电压和频率调节功能的有功备用电源。本文的新颖之处还在于,在有功功率瞬态期间,DER 可根据逆变器建议的 P 下垂控制策略提供和吸收有功功率,从而帮助进行频率调节。通过这种方式,逆变器下垂控制可降低系统频率低谷,模拟所谓的 "合成惯性"。为了设计孤岛式混合系统和建议的控制策略,使用了 MATLAB/Simulink 环境。根据结果可以得出结论,所分析的微电网系统能够在各种运行条件下保持稳定并高效运行。
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