种姓
氢
扩散
材料科学
亥姆霍兹自由能
氢脆
脆化
热力学
俘获
有效扩散系数
有限元法
声子
间质缺损
凝聚态物理
化学物理
冶金
化学
带隙
腐蚀
物理
医学
生态学
光电子学
有机化学
放射科
兴奋剂
生物
磁共振成像
作者
Javier Sánchez,Álvaro Ridruejo,Pedro L. de Andrés
标识
DOI:10.1016/j.tafmec.2020.102803
摘要
The presence of interstitial hydrogen in steel produces embrittlement, which poses a severe risk to the integrity of structural components. Although real steel, as a multi-phase material with crystal defects at several scales is too complex a system to be modelled utilizing ab-initio calculations, mechanisms of hydrogen (H) diffusion in metals have attracted interest and have been widely described in the literature. Here, we study from first-principles (DFT code CASTEP) the role of phonons on the diffusion of hydrogen at different temperatures in a bcc iron lattice (Fe16H) via a calculation of Helmholtz’s free energy, which has been fed into COMSOL for finite element calculations. The diffusion coefficient of hydrogen between 250 K and 700 K was obtained and, the increment in the diffusion barrier at the higher temperatures, traditionally attributed to a transition regime, is now explained by the contribution of phonons. The effect of different traps sites on hydrogen diffusion is studied by using the FEM model.
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