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Design optimization methods for high-performance research reactor core design

机译:高性能研究堆堆芯设计的设计优化方法

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Common objectives of high-performance research reactors include neutron scattering, materials irradiation, and isotope production. The design of a core that optimizes these multiple objectives often presents a multidimensional (i.e., in design space), multiobjective optimization problem. The developed systematic approach discussed herein draws on response surface methodology to validate and leverage a surrogate model to serve in place of high-fidelity computational analyses. Optimization and design analysis methods leverage this surrogate model to provide a flexible tool for generating optimized designs and understanding the impact of design decisions on desired metrics. In applications to High Flux Isotope Reactor (HFIR) low-enriched uranium (LEU) core designs, neutronic, isotopic evolution, and thermal hydraulic analyses are used to generate key performance and safety metrics for assessing the feasibility and fitness of given designs. Three optimized designs that consider different desired metrics and constraints (e.g., key metric weighting and fabrication constraints) are presented, providing potential design options that satisfy the requirements for HFIR's conversion from high enriched uranium to LEU fuel.
机译:高性能研究反应堆的共同目标包括中子散射,材料辐照和同位素生产。优化这些多个目标的核心设计通常会带来多维(即在设计空间中)多目标优化问题。本文讨论的已开发系统方法采用响应面方法来验证和利用替代模型来代替高保真计算分析。优化和设计分析方法利用此替代模型来提供灵活的工具,用于生成优化的设计并了解设计决策对所需指标的影响。在高通量同位素反应堆(HFIR)的低浓铀(LEU)堆芯设计中,中子学,同位素演化和热水力分析被用于生成关键性能和安全指标,以评估给定设计的可行性和适用性。提出了三种优化设计,这些设计考虑了不同的期望指标和约束条件(例如关键指标权重和制造约束条件),提供了满足HFIR从高浓铀转化为LEU燃料的要求的潜在设计选项。

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