先进反应堆低浓铀支持的富集动力学

IF 0.9 Q3 NUCLEAR SCIENCE & TECHNOLOGY
Amanda M. Bachmann, R. Fairhurst-Agosta, Zoë Richter, Nathan P. Ryan, Madicken Munk
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引用次数: 1

摘要

过渡到高含量低浓缩铀燃料反应堆将改变当前核燃料循环的材料要求,就浓缩铀的质量和分离功单位容量而言。本研究使用Cyclus模拟了多种燃料循环情景,以比较先进反应堆的部署类型和能源增长需求如何影响向高含量低浓缩铀燃料反应堆过渡的材料需求。考虑的燃料循环情景包括美国现有的轻水反应堆,以及向超安全核公司微型模块化反应堆或美国现有轻水反应堆的x -能源Xe-100反应堆过渡的零增长和1%增长。这项工作探讨了一些感兴趣的参数,包括部署的先进反应堆的数量、送往反应堆的浓缩铀的质量,以及为反应堆浓缩天然铀所需的分离工作单元容量。与部署Xe-100反应堆相比,部署微型模块化反应堆需要更高的平均质量和分离功容量,并且与过渡前的轻水反应堆相比,需要更低的浓缩铀质量和更高的分离功容量。与转型前的轻水反应堆相比,为Xe-100反应堆提供燃料所需的浓缩铀和分离工作单元容量更少。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enrichment dynamics for advanced reactor HALEU support
Transitioning to High Assay Low Enriched Uranium-fueled reactors will alter the material requirements of the current nuclear fuel cycle, in terms of the mass of enriched uranium and Separative Work Unit capacity. This work simulates multiple fuel cycle scenarios using Cyclus to compare how the type of the advanced reactor deployed and the energy growth demand affect the material requirements of the transition to High Assay Low Enriched Uranium-fueled reactors. Fuel cycle scenarios considered include the current fleet of Light Water Reactors in the U.S. as well as a no-growth and a 1% growth transition to either the Ultra Safe Nuclear Corporation Micro Modular Reactor or the X-energy Xe-100 reactor from the current fleet of U.S. Light Water Reactors. This work explored parameters of interest including the number of advanced reactors deployed, the mass of enriched uranium sent to the reactors, and the Separative Work Unit capacity required to enrich natural uranium for the reactors. Deploying Micro Modular Reactors requires a higher average mass and Separative Work Unit capacity than deploying Xe-100 reactors, and a lower enriched uranium mass and a higher Separative Work Unity capacity than required to fuel Light Water Reactors before the transition. Fueling Xe-100 reactors requires less enriched uranium and Separative Work Unit capacity than fueling Light Water Reactors before the transition.
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来源期刊
EPJ Nuclear Sciences & Technologies
EPJ Nuclear Sciences & Technologies NUCLEAR SCIENCE & TECHNOLOGY-
CiteScore
1.00
自引率
20.00%
发文量
18
审稿时长
10 weeks
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