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Atomic scale modelling of hexagonal structured metallic fission product alloys

机译:六角形结构金属裂变产物合金的原子尺度建模

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Noble metal particles in the Mo-Pd-Rh-Ru-Tc system have been simulated on the atomic scale using density functional theory techniques for the first time. The composition and behaviour of the epsilon phases are consistent with high-entropy alloys (or multi-principal component alloys)—making the epsilon phase the only hexagonally close packed high-entropy alloy currently described. Configurational entropy effects were considered to predict the stability of the alloys with increasing temperatures. The variation of Mo content was modelled to understand the change in alloy structure and behaviour with fuel burnup (Mo molar content decreases in these alloys as burnup increases). The predicted structures compare extremely well with experimentally ascertained values. Vacancy formation energies and the behaviour of extrinsic defects (including iodine and xenon) in the epsilon phase were also investigated to further understand the impact that the metallic precipitates have on fuel performance.
机译:首次使用密度泛函理论技术对Mo-Pd-Rh-Ru-Tc系统中的贵金属颗粒进行了原子模拟。 ε相的组成和行为与高熵合金(或多主要成分合金)一致-使ε相成为当前描述的唯一六角密堆积高熵合金。构型熵效应被认为可预测随着温度升高合金的稳定性。对Mo含量的变化进行建模,以了解合金结构和燃料燃耗行为的变化(这些合金中Mo摩尔含量随燃耗的增加而降低)。预测的结构与实验确定的值相比非常好。还研究了ε相中的空位形成能和外在缺陷(包括碘和氙)的行为,以进一步了解金属沉淀物对燃料性能的影响。

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