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Irradiation deformation near different atomic grain boundaries in α-Zr: An investigation of thermodynamics and kinetics of point defects

机译:α-Zr中不同原子晶界附近的辐照变形:点缺陷的热力学和动力学研究

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摘要

Understanding radiation performance of nanocrystalline Zr-based alloys is essential to develop internal components and external cladding materials with self-healing capabilities for longer and safer life cycles in harsh reactor environments. However, the precise role of interfaces in modifying defect production and evolution in α-Zr is not yet determined. Using atomistic simulation methods, we investigate the influence of different atomic grain boundaries (GBs) in thermodynamic and kinetic properties of defects on short timescales. We observe that the sink efficiency and sink strength of interfaces vary significantly with the boundary structures, with a preference to absorb interstitials (vacancies) when the GBs are semi-parallel (semi-perpendicular) relative to the basal planes. Further, we identify three distinct primary cascade geometries, and find that the residual defect clustering in grain interiors depends on how the atomic GBs modify the spatial distribution of defects within the crystal structure. Finally, we explain and discuss the dynamic results in terms of energetic and kinetic behaviors of defects near the pristine and damaged boundaries. Eventually, these will provide a microscopic reference for further improving the radiation response of Zr by using fine grains or by introducing a high density of dispersoids in material metallurgy.
机译:了解纳米晶Zr基合金的辐射性能对于开发具有自我修复功能的内部组件和外部覆层材料,在恶劣的反应堆环境中具有更长和更安全的生命周期至关重要。但是,界面在改变α-Zr缺陷产生和演化中的确切作用尚未确定。使用原子模拟方法,我们研究了短时标上不同原子晶界(GBs)对缺陷的热力学和动力学性质的影响。我们观察到界面的吸收效率和吸收强度随边界结构的变化而显着变化,当GBs相对于基底平面为半平行(半垂直)时,倾向于吸收间隙(空位)。此外,我们确定了三种不同的主要级联几何,并发现晶粒内部的残留缺陷簇集取决于原子GBs如何改变晶体结构内缺陷的空间分布。最后,我们根据原始和受损边界附近缺陷的能量和动力学行为来解释和讨论动力学结果。最终,这些将为进一步改善Zr的辐射响应提供微观参考,方法是使用细晶粒或通过在材料冶金学中引入高密度的弥散体。

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