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DEVELOPMENT OF RAPID MICROSEPARATIONS OF URANIUM AND PLUTONIUM FOR NUCLEAR FORENSICS APPLICATIONS

机译:铀和R的快速微分离技术在核法学研究中的应用。

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The rapid separation and purification of uranium and plutonium from a field sample is important in identifying the presence of these signatures in nuclear forensics applications. A small separation unit would allow for simple and fast determinations of liquid samples and could be field-deployable when coupled with the appropriate sample digestor and detection systems. This separation system offers significant improvements to traditional separation methods which employ a sequence of tedious, time-consuming steps and generate large waste volumes. We have been developing a portable, separations system for U and Pu separations from iron-rich samples based upon an extraction chromatographic resin packed into a microcolumn. The microfluidic design minimizes elution volumes and concentrates the elements of interest in a purified stream. Flowsheet development and testing was demonstrated on the microcolumn system with an acidified, iron, uranium, and plutonium nitrate stream. The recovery of Pu was optimized by examining various reducing agents at different concentrations for rapid, quantitative recovery from the flow-through design. Quantitative recovery of U and Pu was achieved in the appropriate stripping stages and provided purified and concentrated U and Pu streams (95% of U and 98% of Pu was recovered with high purity; <1% of Pu or U in the respective streams). High selectivity was demonstrated from isotopic analyses of the purified streams. The microfluidic system suggests automation in a small, footprint unit while exploiting the extraction chromatographic resins as the primary means of concentrating the radionuclides from the raw acidic feed and separating the elements into purified streams.
机译:从田间样品中快速分离和纯化铀和in对于识别核法证学应用中这些特征的存在很重要。较小的分离单元可以轻松,快速地测定液体样品,并且在与适当的样品消解器和检测系统结合使用时可以现场部署。该分离系统对传统的分离方法进行了重大改进,传统的分离方法采用了一系列繁琐,耗时的步骤,并产生大量废物。我们一直在开发一种便携式的分离系统,用于基于装在微柱中的萃取色谱树脂从富铁样品中进行U和Pu分离。微流体设计最大程度地减少了洗脱体积,并将目标元素浓缩到了纯化的物流中。在微柱系统上用酸化的铁,铀和硝酸p物流证明了流程图的开发和测试。通过检查不同浓度的各种还原剂,可以从流通设计中快速定量地回收Pu,从而优化了Pu的回收率。在适当的汽提阶段可实现U和Pu的定量回收,并提供纯化和浓缩的U和Pu物流(95%的U和98%的Pu以高纯度回收; <1%的Pu或U在相应的物流中) 。从纯化流的同位素分析证明了高选择性。微流体系统建议在一个小的占地面积单元中实现自动化,同时利用萃取色谱树脂作为从原始酸性进料中浓缩放射性核素并将元素分离成纯化物流的主要手段。

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