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Modelling the diffusion of self-interstitial atom clusters in Fe-Cr alloys

机译:模拟自填原子簇在Fe-Cr合金中的扩散

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摘要

The results of molecular dynamics simulations of the diffusion of self-interstitial atom clusters in Fe-Cr alloys of different Cr content are presented. It is shown that, with increasing Cr concentration, the cluster diffusivity first decreases and then increases, in accordance with the predictions of a model developed recently and based on molecular static calculations. The minimum diffusivity is found at about 10 at% Cr for small clusters and it shifts towards lower concentration with increasing cluster size. The migration energy of SIA clusters is found to lie in between the binding energy of a Cr atom with a crowdion and half of it. This indicates that the mechanism of cluster migration is via the movement of individual crowdions from one Cr atom to another. The values obtained statically are much higher and are argued to be more reliable due to better sampling of different configurations in a bigger simulation box.
机译:给出了分子间动力学模拟结果,研究了不同Cr含量的Fe-Cr合金中自填原子簇的扩散。结果表明,根据最近开发的模型的预测并基于分子静态计算,随着Cr浓度的增加,团簇扩散率先降低然后升高。对于小团簇,发现最小扩散系数约为10 at%Cr,并且随着团簇尺寸的增加,其向较低浓度转移。发现SIA团簇的迁移能介于Cr原子与簇之间的结合能和一半之间。这表明团簇迁移的机制是通过单个拥挤分子从一个Cr原子移动到另一个Cr原子而实现的。静态获得的值要高得多,并且由于在较大的仿真框中对不同配置的更好采样而被认为更可靠。

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