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Atomistic simulation of the atomic structure and diffusion within the core region of an edge dislocation in aluminum

机译:铝边缘位错核心区原子结构和扩散的原子模拟

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摘要

The core structure of an edge dislocation in aluminum is studied by molecular dynamics simulation with the glue potential. The edge dislocation of the 1/2[(1) over bar 10](111) type is observed to dissociate into two partials separating from each other by a distance of 9 Angstrom. The half width of the two partial dislocations is deduced to be 6.5 Angstrom giving a half width of the whole dislocation of 12 Angstrom. Dislocation mobility is studied by applying a shear stress on the crystal and by observing the corresponding shift of the Burgers vector density. After considering the mirror force on the dislocation exerted by the fixed boundaries, a Peierls stress of 0.75 x 10(-4) mu (mu is the shear modulus) for the motion of the whole dislocation is obtained. Atomic diffusion in the core region of the edge dislocation is simulated by hyper molecular dynamics method and the migration energy for vacancy diffusing in the dislocation core is calculated to approximate 0.5 eV. [References: 31]
机译:通过胶粘势的分子动力学模拟研究了铝中边缘位错的核心结构。观察到棒[10] [111]上的1/2 [(1)的边缘错位解离为彼此分开9埃距离的两个部分。推论出两个部分位错的一半宽度为6.5埃,给出了整个位错的一半宽度为12埃。通过在晶体上施加剪切应力并观察Burgers矢量密度的相应位移,研究位错迁移率。考虑到由固定边界施加的位错上的镜面力后,对于整个位错的运动,Peierls应力为0.75 x 10(-4)mu(mu为剪切模量)。通过超分子动力学方法模拟了位错核心区域的原子扩散,计算出位错核心中空位扩散的迁移能约为0.5 eV。 [参考:31]

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