Bridging Atomistic/Continuum Scales in Solids with Moving Dislocations
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Abstract
We propose a multiscale method for simulating solids with moving dislocations. Away from atomistic ubdomains where the atomistic dynamics are fully resolved, a dislocation is represented by a localized jump profile, superposed on a defect-free field. We assign a thin relay zone around an atomistic subdomain to detect the dislocation profile and its propagation speed at a selected relay time. The detection technique utilizes a lattice time history integral treatment. After the relay, an atomistic computation is performed only for the defect-free field. The method allows one to effectively absorb the fine scale fluctuations and the dynamic dislocations at the interface between the atomistic and continuum domains. In the surrounding region, a coarse grid computation is adequate.
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Cite this article:
TANG Shao-Qiang, LIU Wing K., KARPOV Eduard G., HOU Thomas Y.. Bridging Atomistic/Continuum Scales in Solids with Moving Dislocations[J]. Chin. Phys. Lett., 2007, 24(1): 161-164.
TANG Shao-Qiang, LIU Wing K., KARPOV Eduard G., HOU Thomas Y.. Bridging Atomistic/Continuum Scales in Solids with Moving Dislocations[J]. Chin. Phys. Lett., 2007, 24(1): 161-164.
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TANG Shao-Qiang, LIU Wing K., KARPOV Eduard G., HOU Thomas Y.. Bridging Atomistic/Continuum Scales in Solids with Moving Dislocations[J]. Chin. Phys. Lett., 2007, 24(1): 161-164.
TANG Shao-Qiang, LIU Wing K., KARPOV Eduard G., HOU Thomas Y.. Bridging Atomistic/Continuum Scales in Solids with Moving Dislocations[J]. Chin. Phys. Lett., 2007, 24(1): 161-164.
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