Title of article
Techniques to accelerate convergence of stress-controlled molecular dynamics simulations of dislocation motion
Author/Authors
Cereceda، نويسنده , , David and Manuel Perlado، نويسنده , , J. Jalilian-Marian، نويسنده , , Jaime، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2012
Pages
4
From page
272
To page
275
Abstract
Dislocation mobility —the relation between applied stress and dislocation velocity—is an important property to model the mechanical behavior of structural materials. These mobilities reflect the interaction between the dislocation core and the host lattice and, thus, atomistic resolution is required to capture its details. Because the mobility function is multiparametric, its computation is often highly demanding in terms of computational requirements. Optimizing how tractions are applied can be greatly advantageous in accelerating convergence and reducing the overall computational cost of the simulations. In this paper we perform molecular dynamics simulations of ½ 〈1 1 1〉 screw dislocation motion in tungsten using step and linear time functions for applying external stress. We find that linear functions over time scales of the order of 10–20 ps reduce fluctuations and speed up convergence to the steady-state velocity value by up to a factor of two.
Keywords
Molecular dynamics , Tungsten , Mobility , STRESS , Screw dislocation
Journal title
Computational Materials Science
Serial Year
2012
Journal title
Computational Materials Science
Record number
1689797
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