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MIXED OXIDE LWR ASSEMBLY DESIGN OPTIMIZATION USING DIFFERENTIAL EVOLUTION ALGORITHMS

机译:基于微分进化算法的混合氧化物LWR装配设计优化

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Two new multi-objective differential evolution (DE) algorithms are used to optimize heterogeneous low-enriched uranium + mixed oxide fuel assemblies for use in a pressurized water reactor. The objectives were to maximize plutonium content and minimize the power peaking factor. A performance comparison to a genetic algorithm is used to evaluate the applicability of DE algorithms to nuclear fuel assembly design optimization problems. Results show that DE performs highly competitively against a more established algorithm and can arguably better represent the trade-off between both objectives through greater variety in the number of different pin arrangements explored and a higher reliability in finding the 'true' Pareto-front.
机译:两种新的多目标微分演化(DE)算法用于优化压水堆中使用的非均质低浓铀+混合氧化物燃料组件。目的是使p含量最大化,并使功率峰值因子最小化。与遗传算法的性能比较用于评估DE算法对核燃料组件设计优化问题的适用性。结果表明,相对于更成熟的算法,DE表现出极强的竞争力,并且可以说,通过探索更多不同的引脚排列数量,以及找到“真正的” Pareto-front的更高可靠性,可以更好地表示两个目标之间的折衷。

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