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Logically constrained optimal power flow: Solver-based mixed-integer nonlinear programming model

机译:逻辑约束的最优潮流:基于求解器的混合整数非线性规划模型

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摘要

There is increasing evidence of the shortage of solver-based models for solving logically-constrained AC optimal power flow problem (LCOPF). Although in the literature the heuristic-based models have been widely used to handle the LCOPF problems with logical terms such as conditional statements, logical-and, logical-or, etc., their requirement of several trials and adjustments plagues finding a trustworthy solution. On the other hand, a well-defined solver-based model is of much interest in practice, due to rapidity and precision in finding an optimal solution. To remedy this shortcoming, in this paper we provide a solver-friendly procedure to recast the logical constraints to solver-based mixed-integer nonlinear programming (MINLP) terms. We specifically investigate the recasting of logical constraints into the terms of the objective function, so it facilitates the pre-solving and probing techniques of commercial solvers and consequently results in a higher computational efficiency. By applying this recast method to the problem, two sub-power- and sub-function-based MINLP models, namely SP-MINLP and SF-MINLP, respectively, are proposed. Results not only show the superiority of the proposed models in finding a better optimal solution, compared to the existing approaches in the literature, but also the effectiveness and computational tractability in solving large-scale power systems under different configurations.
机译:越来越多的证据表明,缺乏基于求解器的模型来解决逻辑约束的交流最优潮流问题(LCOPF)。尽管在文献中基于启发式的模型已被广泛用于处理逻辑条件(如条件语句,逻辑和,逻辑或等)的LCOPF问题,但对它们的多次尝试和调整却困扰着他们寻找可信赖的解决方案。另一方面,由于找到最佳解的快速性和精确性,一个定义良好的基于​​求解器的模型在实践中备受关注。为了弥补这一缺点,本文提供了一种求解器友好的过程,可以将逻辑约束重铸为基于求解器的混合整数非线性规划(MINLP)术语。我们专门研究了将逻辑约束重新转换为目标函数的条件,因此它有助于商业求解器的预求解和探测技术,因此可提高计算效率。通过将此重铸方法应用于该问题,提出了两种分别基于子功能和子功能的MINLP模型,即SP-MINLP和SF-MINLP。与文献中的现有方法相比,结果不仅显示了所提出模型在寻找更好的最佳解决方案方面的优势,而且还显示了在不同配置下解决大型电力系统的有效性和计算可处理性。

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