Modeling and analysis of droop based hybrid control strategy for parallel inverters in islanded microgrids

Shike Wang, Zeng Liu, Jinjun Liu, Baojin Liu, Xin Meng, Ronghui An
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引用次数: 3

Abstract

The well-known active power-frequency and reactive power-voltage amplitude droop scheme is widely used in islanded microgrids to automatically share load power and regulate output voltage of parallel voltage-controlled inverters (VCIs) in microgrids. However, droop controlled VCIs tend to lose stability as droop slopes increasing. Meanwhile, parameter discrepancies extend synchronization time between VCIs which degrade system dynamic performance. In order to compensating above limitations of traditional method, this paper proposed a droop based hybrid control strategy by exploiting advantages from both voltage-controlled and current-controlled inverters. Capturing the detail of inner control loops, a small-signal state-space model is derived to analyze characteristics of the overall parallel system. Comparing to traditional method, eigenvalues of the hybrid control strategy indicate better stability and dynamic performance. In agreement with theoretical analysis, both simulation and experimental results are presented to validate the advantages of this proposed strategy.
孤岛微电网并联逆变器基于下垂的混合控制策略建模与分析
众所周知的有功工频无功电压幅降方案被广泛应用于孤岛微电网中,用于自动分担负载功率和调节并联压控逆变器(VCIs)的输出电压。然而,随着下垂坡度的增加,下垂控制的vci趋于失稳。同时,参数差异延长了vci之间的同步时间,降低了系统的动态性能。为了弥补传统方法的上述局限性,本文利用压控和流控逆变器的优点,提出了一种基于下垂的混合控制策略。在捕获内部控制回路细节的基础上,推导了一个小信号状态空间模型来分析整个并联系统的特性。与传统控制方法相比,混合控制策略的特征值显示出更好的稳定性和动态性能。仿真和实验结果与理论分析一致,验证了该策略的优越性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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