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A Sequence-Component-Based Power-Flow Analysis for Unbalanced Droop-Controlled Hybrid AC/DC Microgrids

机译:基于序列分量的不平衡下垂控制交流/直流微电网潮流分析

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摘要

This paper proposes a generalized and efficient power-flow algorithm for islanded hybrid ac/dc microgrids. The algorithm considers the microgrid operational aspects, i.e., absence of a slack bus, unbalanced ac subgrid, droop-controlled ac and dc voltages and ac frequency, and coupling between the ac frequency and de voltage through interlinking converters. To attain high computational efficiency, the algorithm adopts three features. First, it models the ac subgrid elements in sequence components, thereby dividing the subgrid's set of equations into three smaller sets for faster parallel solution. This approach also accurately represents the different types of ac distributed generators. Second, the algorithm sequentially solves for the power-flow variables of the ac and dc subgrids, thus reducing the number of equations to be solved simultaneously, once again for further computational cost alleviation. Third, the algorithm implements the quadratically convergent Newton-Raphson technique to solve the decoupled sets of equations. The proposed algorithm is validated through comparisons with time-domain simulations, in MATLAB/Simulink, for test hybrid ac/dc microgrids of different configurations. Moreover, three case studies are introduced to examine the proposed algorithm's effectiveness in solving large-scale microgrids, to investigate its limits-enforcement capabilities, and to evaluate its performance as compared to conventional methods.
机译:本文提出了一种适用于孤岛交流/直流微电网的通用高效潮流算法。该算法考虑了微电网的运行方面,即没有松弛的母线,不平衡的交流子电网,下垂控制的交流和直流电压以及交流频率,以及通过互连转换器在交流频率和降压之间进行耦合。为了获得较高的计算效率,该算法采用了三个特征。首先,它在序列分量中对ac子网格元素进行建模,从而将子网格的方程组划分为三个较小的组,以实现更快的并行求解。这种方法还可以准确表示不同类型的交流分布式发电机。其次,该算法依次求解交流和直流子电网的功率流变量,从而减少了要同时求解的方程式的数量,再次降低了计算成本。第三,该算法实现了二次收敛的牛顿-拉夫森技术来求解解耦的方程组。通过在MATLAB / Simulink中与时域仿真进行比较,验证了所提出的算法,以测试不同配置的混合ac / dc微电网。此外,引入了三个案例研究,以检验所提出的算法在解决大型微电网中的有效性,研究其极限执行能力以及与常规方法相比评估其性能。

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