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A critical review on probabilistic load flow studies in uncertainty constrained power systems with photovoltaic generation and a new approach

机译:光伏发电不确定性约束电力系统中概率潮流研究的批判性综述

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摘要

A power system with large integration of renewable energy based generations is inherently associated with different types of uncertainties. In such cases, probabilistic load flow is a vital tool for delivering comprehensive information for power system planning and operation. Efforts have been made in this paper to perform a critical review on different probabilistic load flow models, uncertainty characterization and uncertainty handling methods, since from its inspection in 1974. An efficient analytical method named multivariate-Gaussian mixture approximation is proposed for precise estimation of probabilistic load flow results. The proposed method considers the uncertainties pertaining to photovoltaic generations and load demands. At the same time, it effectively incorporates multiple input correlations. In order to examine the performance of the proposed method, modified IEEE 118-bus test system is taken into consideration and results are compared with univariate-Gaussian mixture approximation, series expansion based cumulant methods and Monte Carlo simulation. Effect of various correlation cases on distribution of result variables is also studied. The effectiveness of the proposed method is justified in terms of accuracy and execution time.
机译:具有大量基于可再生能源发电的电力系统固有地与不同类型的不确定性相关联。在这种情况下,概率潮流是为电力系统规划和运行提供全面信息的重要工具。自1974年进行检查以来,本文一直在努力对不同的概率潮流模型,不确定性表征和不确定性处理方法进行严格审查。提出了一种有效的分析方法,称为多元高斯混合逼近,用于精确估计概率潮流结果。所提出的方法考虑了与光伏发电和负荷需求有关的不确定性。同时,它有效地合并了多个输入相关性。为了检验该方法的性能,考虑了改进的IEEE 118总线测试系统,并将结果与​​单变量-高斯混合逼近,基于序列展开的累积量方法和蒙特卡洛模拟进行了比较。还研究了各种相关情况对结果变量分布的影响。在准确性和执行时间方面证明了所提出方法的有效性。

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