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Ab initio modelling of vacancy-solute dragging in dilute irradiated iron-based alloys

机译:稀辐照铁基合金中空位-溶质拖曳的从头算模型

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The formation of solute-defect nanoclusters in RPV steels is the main cause of radiation induced embrit-tlement. Solute atoms may diffuse in the alloy by a vacancy drag mechanism, depending on the strength of interaction with point defects. A multifrequency model based on ab initio computed migration barriers was applied in order to investigate the possibility of solute drag in iron-based bcc binary alloys containing Ni, Cr, Cu or Mn, and the obtained solute diffusion coefficients were compared with previous experiments. The results show that Ni is expected to be dragged at temperatures below approximately 900 K, while Cr and Mn are not involved in the dragging mechanism. As for Cu, the results are controversial because the computed migration barriers are strongly affected by the particular choice of the ab initio method.
机译:RPV钢中溶质缺陷纳米团簇的形成是辐射诱导的脆化的主要原因。溶质原子可能会通过空位拖曳机制扩散到合金中,具体取决于与点缺陷相互作用的强度。为了研究在含Ni,Cr,Cu或Mn的铁基bcc二元合金中溶质拖曳的可能性,应用了基于从头算的迁移壁垒的多频模型,并将所得溶质扩散系数与以前的实验进行了比较。结果表明,预计在低于约900 K的温度下会拖动Ni,而Cr和Mn不会参与拖动机制。至于铜,结果是有争议的,因为从头算方法的特定选择强烈影响了计算的迁移壁垒。

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