Molecular Dynamics Simulation of the Effect of Hydrogen on the Interaction Between Dislocations in Alpha-Iron

S. Oyinbo, T. Jen
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Abstract

In this study, we use extensive molecular dynamics (MD) calculations based on a highly-accurate interatomic potential to examine how hydrogen atoms impact the mechanisms behind the mobilities of edge and screw dislocations in alpha-iron (α-Fe) at a temperature ranging from 300 K to 500 K. The dislocation mobility in α-Fe is shown to be temperature and hydrogen concentration-dependent in this MD investigation. It is demonstrated from the results that hydrogen impurities that are efficient in locking dislocations exist in the form of complexes that are scattered discretely along the dislocation line and that these complexes operate as extremely effective impediments to the mobility of dislocations. The hydrogen impact on the edge dislocation motion from the dislocation velocities versus shear stress reveals that the movement of edge dislocations in α-Fe with hydrogen is much damped as the hydrogen concentration increases. Furthermore, the motion of screw dislocations in the α-Fe is by the process of kink-pair nucleation and migration. according to the simulation results, the locking mechanism of the cross-slip seen along the dislocation path is due to the strong-feature energy landscape and inherent energy fluctuation in the system, resulting in jogs formation.
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氢对α -铁位错相互作用影响的分子动力学模拟
在这项研究中,我们使用基于高精度原子间电位的广泛分子动力学(MD)计算来研究在300 K至500 K的温度范围内,氢原子如何影响α-铁(α-Fe)中边位错和螺旋位错迁移背后的机制。在MD研究中,α-Fe中的位错迁移率与温度和氢浓度有关。结果表明,有效锁定位错的氢杂质以配合物的形式存在,这些配合物沿着位错线离散地分散,并且这些配合物对位错的迁移起着极其有效的阻碍作用。从位错速度与剪应力的关系来看,氢对α-Fe中位错边缘运动的影响表明,随着氢浓度的增加,α-Fe中位错边缘的运动受到很大的抑制。此外,α-Fe中螺位错的运动是通过扭结对成核和迁移过程进行的。仿真结果表明,位错路径上交叉滑移的锁定机制是由于系统中强特征能量景观和固有能量波动导致的,从而形成慢跑。
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