第三代激光铀浓缩技术的扩散评估

IF 0.7 Q3 INTERNATIONAL RELATIONS Science & Global Security Pub Date : 2016-05-03 DOI:10.1080/08929882.2016.1184528
Ryan Snyder
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引用次数: 12

摘要

长期以来,人们一直在努力开发一种商业上可行的基于激光的铀浓缩工艺,最初是原子分离,后来是分子同位素分离,但取得的成功有限。本文讨论了第三代激光浓缩技术的模型,其中CO2激光被拉曼散射产生16 μm光子,在绝热膨胀的自由载气射流中激发六氟化铀-235分子的振动模式,允许通过冷凝抑制部分分离铀同位素。作为全球激光富集项目的一部分,正在开发的SILEX(通过激光激发分离同位素)过程可能是这种分离技术的一个例子。提出了一种理想的非对称级联铀浓缩到武器级水平,并分析了最低激光性能要求。讨论了最佳运行参数、物理空间约束和能效估计。还提供了对所需技术技能的评估。最后,在线增刊中提供的材料讨论了在此过程中可能使用的激光器,并介绍了二聚体的形成,基于激光的富集级联,以及用于估计富集因子的模型。
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A Proliferation Assessment of Third Generation Laser Uranium Enrichment Technology
ABSTRACT Long-standing efforts to develop a commercially viable laser-based process for uranium enrichment, initially with atomic and later molecular isotope separation, have had limited success. This article discusses a model for a third generation of laser enrichment technology where CO2 laser light is Raman scattered to generate 16 μm photons that excite a vibrational mode in uranium-235 hexafluoride molecules within an adiabatically expanding free carrier gas jet, allowing for the partial separation of uranium isotopes by condensation repression. The SILEX (Separation of Isotopes by Laser Excitation) process being developed as part of the Global Laser Enrichment project may be one example of this separation technique. An ideal, asymmetric cascade for enriching uranium to weapon-grade levels is presented, and an analysis of the minimum laser performance requirements is included. Optimal running parameters, physical space constraints, and energy efficiency estimates are discussed. An assessment of the technical skills required is also provided. Finally, material available in an online supplement discusses possible lasers that may be utilized in such a process, and offers an introduction to dimer formation, a laser-based enrichment cascade, and a model for estimating the enrichment factor.
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来源期刊
Science & Global Security
Science & Global Security INTERNATIONAL RELATIONS-
CiteScore
1.00
自引率
14.30%
发文量
8
期刊最新文献
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