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HIGH LINEAR ENERGY TRANSFER DEGRADATION STUDIES SIMULATING ALPHA RADIOLYSIS OF TRU SOLVENT EXTRACTION PROCESSES

机译:高线性能量转移降解研究模拟TRU溶剂萃取过程中的α放射性

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Treatment of used nuclear fuel through solvent extraction separation processes is hindered by radiolytic damage from radioactive isotopes present in used fuel. The nature of the damage caused by the radiation may depend on the radiation type, whether it be low linear energy transfer (LET) such as gamma radiation or high LET such as alpha radiation. Used nuclear fuel contains beta/gamma emitting isotopes but also a significant amount of transuranics which are generally alpha emitters. Studying the respective effects on matter of both of these types of radiation will allow for accurate prediction and modeling of process performance losses with respect to dose. Current studies show that alpha radiation has milder effects than that of gamma. This is important to know because it will mean that solvent extraction solutions exposed to alpha radiation may last longer than expected and need less repair and replacement. These models are important for creating robust, predictable, and economical processes that have strong potential for mainstream adoption on the commercial level. The effects of gamma radiation on solvent extraction ligands have been more extensively studied than the effects of alpha radiation. This is due to the inherent difficulty in producing a sufficient and confluent dose of alpha particles within a sample without leaving the sample contaminated with long lived radioactive isotopes. Helium ion beam and radioactive isotope sources have been studied in the literature. We have developed a method for studying the effects of high LET radiation in situ via ~(10)B activation and the high LET particles that result from the ~(10)B(n,α)~7Li reaction which follows. Our model for dose involves solving a partial differential equation representing absorption by ~(10)B of an isentropic field of neutrons penetrating a sample. This method has been applied to organic solutions of TBP and CMPO, two ligands common in TRU solvent extraction treatment processes. Rates of degradation of TBP and CMPO and their respective degradation products in the presence of high LET radiation are presented and discussed. These results are also compared to gamma studies performed in our lab and other gamma and alpha studies found in the literature. The possible application of this method to a variety of other solvent extraction ligands to study the effects of high LET radiation is also considered.
机译:通过溶剂萃取分离过程处理废核燃料受到废燃料中存在的放射性同位素的放射性破坏的阻碍。由辐射引起的损坏的性质可能取决于辐射类型,无论是低线性能量转移(LET)(例如,伽马射线)还是高LET(例如,α辐射)。用过的核燃料包含发射β/γ的同位素,但也包含大量的泛铀,这些泛铀通常是α发射体。研究这两种类型的辐射对物质的各自影响将允许针对剂量的过程性能损失进行准确的预测和建模。当前的研究表明,阿尔法辐射比伽马辐射具有更缓和的作用。要知道这一点很重要,因为这将意味着暴露于α辐射的溶剂萃取溶液的使用寿命可能比预期的更长,并且需要的维修和更换次数更少。这些模型对于创建健壮,可预测且经济的流程非常重要,这些流程对于在商业层面上被主流采用具有强大的潜力。与α射线的影响相比,对γ射线对溶剂萃取配体的影响已进行了更广泛的研究。这是由于固有的困难,即在样品中产生足够量的融合α粒子而又不使样品被长寿命放射性同位素污染的固有困难。文献已经研究了氦离子束和放射性同位素源。我们已经开发出一种方法,用于通过〜(10)B活化和随后的〜(10)B(n,α)〜7Li反应产生的高LET粒子来研究高LET辐射的影响。我们的剂量模型涉及求解一个偏微分方程,该微分方程表示穿透样品的中子等熵场的〜(10)B吸收。此方法已应用于TBP和CMPO的有机溶液,这是TRU溶剂萃取处理过程中常见的两个配体。介绍并讨论了在高LET辐射存在下TBP和CMPO及其各自降解产物的降解速率。这些结果也与我们实验室中进行的伽马研究以及文献中发现的其他伽马和α研究进行了比较。还考虑了将该方法可能用于多种其他溶剂萃取配体以研究高LET辐射的影响。

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