Literature DB >> 27002063

Understanding dislocation mechanics at the mesoscale using phase field dislocation dynamics.

I J Beyerlein1, A Hunter2.   

Abstract

In this paper, we discuss the formulation, recent developments and findings obtained from a mesoscale mechanics technique called phase field dislocation dynamics (PFDD). We begin by presenting recent advancements made in modelling face-centred cubic materials, such as integration with atomic-scale simulations to account for partial dislocations. We discuss calculations that help in understanding grain size effects on transitions from full to partial dislocation-mediated slip behaviour and deformation twinning. Finally, we present recent extensions of the PFDD framework to alternative crystal structures, such as body-centred cubic metals, and two-phase materials, including free surfaces, voids and bi-metallic crystals. With several examples we demonstrate that the PFDD model is a powerful and versatile method that can bridge the length and time scales between atomistic and continuum-scale methods, providing a much needed understanding of deformation mechanisms in the mesoscale regime.
© 2016 The Author(s).

Entities:  

Keywords:  crystals; dislocations; grain boundaries; interfaces;  metals

Year:  2016        PMID: 27002063      PMCID: PMC4810878          DOI: 10.1098/rsta.2015.0166

Source DB:  PubMed          Journal:  Philos Trans A Math Phys Eng Sci        ISSN: 1364-503X            Impact factor:   4.226


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1.  Generalized Gradient Approximation Made Simple.

Authors: 
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8.  Prediction of dislocation cores in aluminum from density functional theory.

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