Jing Li, Tan Shi, Chen Zhang, Ping Zhang, Shehu Adam Ibrahim, Zhipeng Sun, Yuanming Li, Chuanbao Tang, Qing Peng, Chenyang Lu
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引用次数: 0
摘要
间隙扩散对锆合金中的辐射缺陷演变非常重要。本研究采用分子动力学模拟,利用各种原子间位势研究了 α-Zr 及其与 1.0% Nb 和 1.0% Sn 的合金中的间隙扩散。在所使用的各种电位中,纯 Zr 的扩散各向异性存在明显差异。这是因为各种间隙构型之间的迁移障碍存在很大差异。研究发现,通过直接参与扩散过程或改变扩散物种周围的化学环境,引入小浓度的铌和锡溶质原子会显著影响扩散各向异性。基于纯锆中间隙能量的适度一致性,准确描述锆合金中的间隙扩散预计会更加复杂。这项研究强调了仔细验证和选择原子间势的重要性,并突出了了解溶质原子对间隙扩散影响的必要性。
A Comparative Study on Force-Fields for Interstitial Diffusion in α-Zr and Zr Alloys
Interstitial diffusion is important for radiation defect evolution in zirconium alloys. This study employed molecular dynamics simulations to investigate interstitial diffusion in α-Zr and its alloys with 1.0 at.% Nb and 1.0 at.% Sn using a variety of interatomic potentials. Pronounced differences in diffusion anisotropy were observed in pure Zr among the employed potentials. This was attributed to the considerable differences in migration barriers among the various interstitial configurations. The introduction of small concentrations of Nb and Sn solute atoms was found to significantly influence diffusion anisotropy by either directly participating in the diffusion process or altering the chemical environment around the diffusing species. Based on the moderate agreement of interstitial energetics in pure Zr, accurately describing interstitial diffusion in Zr alloys is expected to be more complex. This work underscores the importance of the careful validation and selection of interatomic potentials and highlights the need to understand the effects of solute atoms on interstitial diffusion.