Attractiveness of Fissile Material in Nuclear Wastes from Different Fuel Cycles

裂变材料 核工程 乏核燃料 环境科学 放射性废物 混合氧化物燃料 核燃料循环 废物管理 裂变产物 燃料循环 核材料 放射化学 核化学 化学 工程类 核物理学 中子 物理
作者
Milos Atz,Massimiliano Fratoni
出处
期刊:Nuclear Technology [Taylor & Francis]
卷期号:210 (5): 795-813 被引量:4
标识
DOI:10.1080/00295450.2023.2246736
摘要

AbstractNuclear fuel cycle advancements will result in new types of fissile material, including nuclear wastes, that require security and safeguards. Nuclear wastes may be more vulnerable for diversion by non-state actors, and chemical processing to recover fissile material is not an insurmountable challenge. Previous work has applied a figure of merit (FOM) to assess material attractiveness and security risks. This analysis applies the material attractiveness FOM to wastes produced by fuel cycles from the Fuel Cycle Evaluation and Screening (FCES) study. Two aspects of security risk are studied: (1) the time before the fissile material in the waste becomes attractive and (2) the number of waste packages required to obtain a critical mass of fissile material. Two fuel cycles are presented to highlight detailed results: (1) once-through use of low-enriched U in light water reactors (LWRs) and (2) continuous recycle of Pu in sodium fast reactors (SFRs). Increasing LWR used nuclear fuel (UNF) package loading increases the time to attractiveness, but the larger packages contain enough Pu for multiple critical masses. The high-level waste (HLW) from processing the SFR fuels has similar FOM behavior but longer time to attractiveness due to the concentration of fission products. More HLW packages are required to obtain a critical mass; that number can be further increased by increasing the separation efficiency. Extended to all FCES fuel cycles, the minimum time before attractiveness is generally lower for UNF than for HLW because radioactivity is concentrated in HLW. For nearly all fuel cycles that produce UNF, only one package is required to recover enough fissile material for a critical mass. Notably, some advanced fuel cycles produce HLW, of which only two packages need to be recovered to obtain a critical mass, even when the target fissile material is recycled. Going forward, an assessment of the security risks posed by fissile material in nuclear wastes will need to quantify the challenge posed by separations. Ultimately, the assessment could inform security and response measures; whether any of the observations might affect these measures could be an area for future work. Finally, future analysis could study whether different fuel cycle wastes are more attractive for use in radiological dispersal devices or radiological exposure devices.Keywords: Waste managementfuel cyclenuclear energymaterial attractivenessnuclear security Disclosure StatementNo potential conflict of interest was reported by the author(s).Additional informationFundingThis material is based on work supported by the National Science Foundation Graduate Research Fellowship under grant number 1752814. This research used the Savio computational cluster resource provided by the Berkeley Research Computing program at the University of California, Berkeley (supported by the University of California, Berkeley, Chancellor, Vice Chancellor for Research, and Chief Information Officer).
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