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Master–Slave-Splitting Based Distributed Global Power Flow Method for Integrated Transmission and Distribution Analysis

机译:基于主从分裂的分布式全局潮流计算方法

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With the recent rapid development of smart grid technology, the distribution grids become more active, and the interaction between transmission and distribution grids becomes more significant. However, in traditional power flow calculations, transmission and distribution grids are separated, which is not suitable for such future smart grids. To achieve a global unified power flow solution to support an integrated analysis for both transmission and distribution grids, we propose a global power flow (GPF) method that considers transmission and distribution grids as a whole in this paper. We construct GPF equations, and develop a master–slave-splitting (MSS) iterative method with convergence guarantee to alleviate boundary mismatches between the transmission and distribution grids. In our method, the GPF problem is split into a transmission power flow and a number of distribution power flow sub-problems, which supports on-line geographically distributed computation. Each sub-problem can be solved using a different power flow algorithm to capture the different features of transmission and distribution grids. An equivalent method is proposed to improve the convergence of the MSS-based GPF calculation for distribution grids that include loops. Numerical simulations validate the effectiveness of the proposed method, in particular when the distribution grid has loops or distributed generators.
机译:随着近来智能电网技术的飞速发展,配电网变得更加活跃,输配电网之间的相互作用变得越来越重要。但是,在传统的潮流计算中,输电网和配电网是分开的,这不适用于此类未来的智能电网。为了实现全球统一的潮流解决方案以支持对输配电网格的综合分析,我们提出了一种将输配电网格作为整体考虑的全局潮流(GPF)方法。我们构造了GPF方程,并开发了具有收敛保证的主从分裂(MSS)迭代方法,以减轻输配电网格之间的边界不匹配。在我们的方法中,GPF问题分为传输功率流和多个配电功率子问题,这些问题支持在线地理分布计算。每个子问题都可以使用不同的潮流算法来解决,以捕获输电和配电网的不同特征。提出了一种等效方法来提高基于MSS的GPF计算在包含回路的配电网中的收敛性。数值模拟验证了所提出方法的有效性,特别是当配电网具有回路或分布式发电机时。

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