Dislocation Dynamics Simulations of Junctions in Hexagonal Close-Packed Crystals
Author(s) -
ChiChin Wu,
Sylvie Aubry,
Peter W. Chung,
A. Arsenlis
Publication year - 2012
Publication title -
mrs proceedings
Language(s) - English
Resource type - Journals
eISSN - 1946-4274
pISSN - 0272-9172
DOI - 10.1557/opl.2012.234
Subject(s) - materials science , dislocation , hexagonal crystal system , slip (aerodynamics) , peierls stress , condensed matter physics , shear (geology) , shear stress , critical resolved shear stress , crystallography , composite material , dislocation creep , thermodynamics , physics , shear rate , chemistry , viscosity
The formation and strength of dislocations in the hexagonal closed packed material beryllium are studied through dislocation junctions and the critical stress required to break them. Dislocation dynamics calculations (using the code ParaDiS) of junction maps are compared to an analytical line tension approximation in order to validate our model. Results show that the two models agree very well. Also the critical shear stress necessary to break 30{sup o} - 30{sup o} and 30{sup o} - 90{sup o} dislocation junctions is computed numerically. Yield surfaces are mapped out for these junctions to describe their stability regions as function of resolved shear stresses on the glide planes. The example of two non-coplanar binary dislocation junctions with slip planes [2-1-10] (01-10) and [-12-10] (0001) corresponding to a prismatic and basal slip respectively is chosen to verify and validate our implementation.
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