Nested evolutionary algorithms for joint structure design and operation of micro-grids under variable electricity prices scenarios

R. Mallol-Poyato, S. Jiménez-Fernández, L. Cornejo-Bueno, P. Díaz-Villar, S. Salcedo-Sanz
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引用次数: 1

Abstract

This paper proposes to tackle the structure design and operation of a Micro-Grid in a jointly way, by means of a novel nested Evolutionary Algorithms (EAs) approach. Specifically, in an scenario of variable electricity prices in an hourly basis, we apply different EAs, nested, to obtain optimal values for the sizing of generators and Energy Storage System (ESS), also to obtain the optimal values for each access tariff periods (structure part of the MG), and ESS scheduling (operational part of the MG). The proposed nested EAs starts from an initial solution for the ESS scheduling given by a deterministic approach (DA algorithm), from which an initial structure part is obtained by means of a first evolution. This part is set, and a different EA is then applied to obtain an improved ESS scheduling, which will be set to apply a different EA for the structure part. This scheme is applied in a sequential fashion for a number of evolutions. We will show that the proposed evolution scheme is able to obtain excellent results in terms of MG design, better than those by a single EA with the same number of function evaluations.
变电价情景下微电网节点结构设计与运行的嵌套进化算法
本文提出了一种新的嵌套进化算法(nested Evolutionary Algorithms, EAs),将微电网的结构设计与运行结合起来。具体而言,在以小时为基础的可变电价场景中,我们应用不同的ea,嵌套,以获得发电机和储能系统(ESS)规模的最优值,以及每个接入电价周期(MG的结构部分)和ESS调度(MG的运行部分)的最优值。本文提出的嵌套ea从确定性方法(DA算法)给出的ESS调度初始解出发,通过首次进化得到初始结构部分。设置此部分,然后应用不同的EA以获得改进的ESS调度,该调度将被设置为对结构部分应用不同的EA。该方案以顺序的方式应用于许多进化。我们将证明所提出的进化方案能够在MG设计方面获得优异的结果,优于具有相同数量功能评估的单个EA。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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