A core physics design and analysis of micro-modular lead cooled fast reactor (MMLFR) cores for autonomous ultra-long-life operation

IF 2.6 3区 工程技术 Q1 NUCLEAR SCIENCE & TECHNOLOGY
Seungnam Lee, Ser Gi Hong
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Abstract

Minimizing core size with keeping an ultra-long-life operation cycle is very interesting for improving the inherent safety and sustainability of nuclear energy systems. Additionally, minimizing the excess reactivity change to less than 1$ for the small core is very helpful to make the small nuclear reactor to be safer by removing the prompt critical accident and to make it easy for autonomous operation by minimizing the movements of the control rods. In this work, Micro-Modular Lead-cooled Fast Reactor (MMLFR) cores of 35 MWth are neutronically designed by using the superb neutronic properties of the lead coolant and considering simple two-region cores of different fuel compositions. The results of the analysis showed that the final candidate cores have cycle lengths longer than 30 EFPYs (Effective Full Power Years) over which the burnup reactivity swings are less than 1$, achieve high burnups exceeding 58 MWd/kgHM, and possess all negative reactivity coefficients except for reactivity coefficients by coolant expansion. Also, it was shown that the final candidate cores can maintain the integrity of fuel rods from point of view of DPA, peak cladding and fuel centerline temperatures, and internal pressure and hoop stress for the fission gas plenum over the operation life.
自主超长寿命运行的微模块铅冷快堆堆芯物理设计与分析
最小化堆芯尺寸并保持超长寿命运行周期对于提高核能系统的固有安全性和可持续性是非常有趣的。此外,将小堆芯的过度反应性变化最小化到1美元以下,将有助于消除迅速发生的临界事故,使小型核反应堆更安全,并通过减少控制棒的移动,使其易于自主运行。在这项工作中,利用铅冷却剂的优异中子特性,并考虑不同燃料成分的简单双区堆芯,对35兆瓦的微模块铅冷快堆(MMLFR)堆芯进行了中子设计。分析结果表明,最终候选岩心的循环长度大于30 EFPYs(有效满功率年),燃烧反应性波动小于1美元,达到超过58 MWd/kgHM的高燃烧,并且除冷却剂膨胀的反应性系数外,所有反应性系数均为负。此外,从DPA、包层峰值温度和燃料中心线温度、裂变气体静压室内压和环向应力的角度来看,最终候选堆芯可以保持燃料棒的完整性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Nuclear Engineering and Technology
Nuclear Engineering and Technology 工程技术-核科学技术
CiteScore
4.80
自引率
7.40%
发文量
431
审稿时长
3.5 months
期刊介绍: Nuclear Engineering and Technology (NET), an international journal of the Korean Nuclear Society (KNS), publishes peer-reviewed papers on original research, ideas and developments in all areas of the field of nuclear science and technology. NET bimonthly publishes original articles, reviews, and technical notes. The journal is listed in the Science Citation Index Expanded (SCIE) of Thomson Reuters. NET covers all fields for peaceful utilization of nuclear energy and radiation as follows: 1) Reactor Physics 2) Thermal Hydraulics 3) Nuclear Safety 4) Nuclear I&C 5) Nuclear Physics, Fusion, and Laser Technology 6) Nuclear Fuel Cycle and Radioactive Waste Management 7) Nuclear Fuel and Reactor Materials 8) Radiation Application 9) Radiation Protection 10) Nuclear Structural Analysis and Plant Management & Maintenance 11) Nuclear Policy, Economics, and Human Resource Development
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