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ANALYSIS OF MAJOR GROUP STRUCTURES USED FOR NUCLEAR REACTOR SIMULATIONS

机译:用于核反应堆模拟的主要组结构分析

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Nuclear reactor simulation is often based on multi-group cross-section libraries. The structure and resolution of these libraries have a strong influence on the accuracy and computational time; hence, number of groups and energy structure must be carefully considered. The relationship between group structures and how they impact generated cross-sections can be a critical parameter. Common energy boundaries shared among major group structures were identified and the relative kinship among those was reconstructed in an effort to build a family tree of major group structures. Stochastic code Serpent2 [1] was employed to generate cross-sections of selected isotopes at different reactor compositions and conditions, using the investigated energy group structures. The impact on their generation was quantified by spectral weighted deviation. The 35 major energy structures were divided into three basic families. The key parameters distinguishing them were their applicability to thermal or fast reactors and their applicability in neutronic or multiphysics investigations. A sensitivity threshold of the generated cross-sections over the group structure resolution was investigated. The aim was to identify a group structure with very low dependency on the actual reactor spectrum.
机译:核反应堆模拟通常基于多组截面库。这些库的结构和分辨率对准确性和计算时间有很大的影响。因此,必须仔细考虑基团的数量和能量结构。组结构之间的关系以及它们如何影响生成的横截面可能是一个关键参数。确定主要群体结构之间共享的共同能量边界,并重建它们之间的相对亲属关系,以建立主要群体结构的族谱。随机代码Serpent2 [1]用于利用研究的能级结构在不同反应堆组成和条件下生成选定同位素的截面。通过谱加权偏差来量化对其产生的影响。 35个主要的能源结构分为三个基本族。区分它们的关键参数是它们在热反应堆或快堆中的适用性以及它们在中子学或多物理场研究中的适用性。研究了在组结构分辨率上生成的横截面的灵敏度阈值。目的是确定对实际反应堆光谱的依赖性极低的族结构。

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