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Multi-objective Transmission Expansion Planning Using an Elitist Non-dominated Sorting Genetic Algorithm with Fuzzy Decision Analysis

机译:基于模糊决策的精英非支配排序遗传算法的多目标传输扩展规划

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The main objective of transmission expansion planning in deregulated power systems is to provide a non-discriminatory competitive environment for all stakeholders, while maintaining power system reliability. In this paper, a static transmission expansion methodology is proposed using a multi-objective optimization framework that is able to handle different incommensurable objectives with conflicting or supporting relations. Investment cost, reliability, and congestion cost are considered in the optimization as three objectives. An elitist non-dominated sorting genetic algorithm is used followed by a fuzzy decision making analysis to obtain the final optimal solution. The crowding distance method is used to determine shared fitness values in the genetic algorithm. The proposed transmission planning method allows more flexibility by producing a set of Pareto-optimal solutions instead of the one optimal solution of the single-objective formulation. The proposed method is tested on the Luzon grid and the results are found to be superior to results obtained for the single-objective formulation and to historical plans by the grid operator.
机译:放松管制的电力系统中的输电扩展规划的主要目标是为所有利益相关者提供一个非歧视性的竞争环境,同时保持电力系统的可靠性。在本文中,提出了一种使用多目标优化框架的静态传输扩展方法,该框架能够处理具有冲突或支持关系的不同不可估量的目标。在优化中将投资成本,可靠性和拥塞成本视为三个目标。使用精英非支配排序遗传算法,然后进行模糊决策分析,以获得最终的最优解。拥挤距离法用于确定遗传算法中的共享适应度值。所提出的传输规划方法通过产生一组帕累托最优解而不是单目标公式的一个最优解,从而提供了更大的灵活性。所提出的方法在吕宋网格上进行了测试,发现该结果优于单目标公式化所获得的结果以及网格操作员的历史计划。

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