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Assembly design of a fluoride salt-cooled high temperature commercial-scale reactor: Neutronics evaluation and parametric analysis

机译:氟化物盐冷却高温商业尺度反应器的组装设计:中子学评估和参数分析

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In this study, a novel assembly design is proposed for a fluoride salt-cooled high-temperature commercial-scale (FHCR) reactor. It employs tristructural isotropic (TRISO) fuel particles nestled within removable cylindrical beryllium carbide (Be2C) moderator blocks, which are further contained within prismatic graphite blocks. As the name implies, the FHCR is a preconception of a 3400 MW(t) commercial power reactor that uses FLiBe (LiF-BeF2) as the primary coolant of choice. This paper uses the SERPENT 2 code to conduct a parametric neutronics study on the two-dimensional lattice assembly design of the FHCR. The calculations examine the effects of various fuel enrichment levels, TRISO particle packing fractions, fuel compacts' pitch sizes, and moderating materials on the cycle length, while also determining the neutron spectrum and various nuclide inventories. Finally, a preliminary core is modeled based on the study conducted on the assembly design. Based on the negative values of the fuel temperature coefficients (FTC), moderator temperature coefficients (MTC), and coolant temperature coefficients (CTC) obtained, the design is determined to be safe. This new assembly design is also able to achieve k(eff) 1 for approximately 3.55 years, translating to a burn-up of 160.6 MWd/KgU. (C) 2019 Elsevier Ltd. All rights reserved.
机译:在该研究中,提出了一种新的装配设计,用于氟化物冷却的高温商业规模(FHCR)反应器。它采用嵌合在可移除的圆柱形铍(BE2C)中间体块内嵌入的肌肤直流孔(Triso)燃料颗粒,其进一步包含在棱柱形石墨块内。顾名思义,FHCR是一种3400 MW(T)商用电源电抗器的先注,该电抗器使用植物(LIF-BEF2)作为首选的主要冷却剂。本文使用Serpent 2代码对FHCR的二维格组装设计进行参数学中子研究。该计算检查各种燃料富集水平,三粒颗粒包装级分,燃料压缩尺寸和调节材料在循环长度上的影响,同时还确定中子谱和各种核素库存。最后,基于在装配设计上进行的研究建模初步核心。基于燃料温度系数(FTC)的负值,所得冷却剂温度系数(MTC)和冷却剂温度系数(CTC),确定设计是安全的。这种新的装配设计也能够实现约3.55年的K(EFF)> 1,转化为160.6 MWD / KGU的烧伤。 (c)2019 Elsevier Ltd.保留所有权利。

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