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An efficient multi-objective evolutionary approach for solving the operation of multi-reservoir system scheduling in hydro-power plants

机译:一种有效的多目标进化方法,用于解决水电站多水库系统调度的运行

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This paper tackles the short-term hydro-power unit commitment problem in a multi-reservoir system — a cascade-based operation scenario. For this, we propose a new mathematical modeling in which the goal is to maximize the total energy production of the hydro-power plant in a sub-daily operation, and, simultaneously, to maximize the total water content (volume) of reservoirs. For solving the problem, we discuss the Multi-objective Evolutionary Swarm Hybridization (MESH) algorithm, a recently proposed multi-objective swarm intelligence-based optimization method which has obtained very competitive results when compared to existing evolutionary algorithms in specific applications. The MESH approach has been applied to find the optimal water discharge and the power produced at the maximum reservoir volume for all possible combinations of turbines in a hydro-power plant. The performance of MESH has been compared with that of well-known evolutionary approaches such as NSGA-II, NSGA-III, SPEA2, and MOEA/D in a realistic problem considering data from a hydro-power energy system with two cascaded hydro-power plants in Brazil. Results indicate that MESH showed a superior performance than alternative multi-objective approaches in terms of efficiency and accuracy, providing a profit of $412,500 per month in a projection analysis carried out.
机译:本文在多水库系统中解决了短期水电站承诺问题 - 基于级联的操作场景。为此,我们提出了一种新的数学建模,其中目标是最大限度地提高水电站的总能量生产在次日操作中,同时最大化储层的总水含量(体积)。为了解决问题,我们讨论了多目标进化的Swarm杂交(网格)算法,最近提出的基于多目标群体智能的优化方法,其与特定应用中的现有进化算法相比获得了非常竞争力的结果。已经应用了网眼方法来查找最佳排水和在最大储层体积中产生的功率,以获得水力发电厂中的所有可能组合的涡轮机的所有组合。将网格的性能与众所周知的进化方法(如NSGA-II,NSGA-III,SPEA2和MOEA / D)进行比较,考虑到具有两个级联水电站的水力电能系统的数据植物在巴西。结果表明,网格表现出比效率和准确性方面的替代多目标方法优越的性能,在进行预测分析中提供每月412,500美元的利润。

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