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Weighted Multiple Predictor-corrector Interior Point Method for Optimal Power Flow

机译:最优潮流的加权多重预测校正内点法

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摘要

The interior point method is considered one of the most efficient methods for solving different types of optimal power flow problems. In this article, a weighted multiple predictor-corrector interior point method is proposed and applied to solve two non-linear optimal power flow problems, which include the generation cost minimization problem and the active power loss minimization problem. A two-stage line-search strategy is employed to obtain the optimal composite direction in order to improve the convergence property of the predictor-corrector interior point method. The proposed method is evaluated on three IEEE test systems and three large-scale systems ranging in size from 57 to 2790 buses. Numerical results demonstrate that, compared with the original multiple predictor-corrector interior point method, the proposed method can converge to an optimal power flow solution with a fewer iterations and faster computational time. Moreover, comparison numerical studies show that the proposed method can be faster and more robust than that traditional predictor-corrector interior point method and its variants.
机译:内点法被认为是解决不同类型的最优潮流问题的最有效方法之一。本文提出了一种加权多重预测-校正器内点法,并将其应用于解决两个非线性最优潮流问题,即发电成本最小化问题和有功功率损失最小化问题。为了改善预测器-校正器内点法的收敛性,采用了两阶段的线搜索策略来获得最佳的合成方向。该方法在3种IEEE测试系统和3种大型系统上进行了评估,这些系统的大小从57到2790总线不等。数值结果表明,与原始的多预测器-校正器内点法相比,该方法可以收敛到最优潮流算法,迭代次数更少,计算时间更快。此外,比较数值研究表明,与传统的预测器-校正器内点方法及其变体相比,该方法可以更快,更健壮。

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