Numéro |
J. Phys. IV France
Volume 11, Numéro PR5, Septembre 2001
5th European Mechanics of Materials Conference on Scale Transitions from Atomistics to Continuum PlasticityEUROMECH-MECAMAT'2001 |
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Page(s) | Pr5-127 - Pr5-134 | |
DOI | https://doi.org/10.1051/jp4:2001516 |
EUROMECH-MECAMAT'2001
J. Phys. IV France 11 (2001) Pr5-127-Pr5-134
DOI: 10.1051/jp4:2001516
A disclination-based model for grain subdivision and its impact on the macroscopic mechanical behaviour of f.c.c. polycrystals
M. Seefeldt, L. Delannay, B. Peeters, E. Aernoudt and P. Van HoutteDepartment of Metallurgy and Materials Engineering, Katholieke Universiteit Leuven, Kasteelpark ARENBERG 44, 3001 Heverlee, Belgium
Abstract
An integrated substructure and texture evolution model is used to study grain subdivision and
anisotropic work-hardening at f.c.c. materials under cold plane strain deformation. The substructure development
is modelled with the help of coupled evolution equations for dislocation and disclination densities,
separately for the twelve f.c.c. slip systems and six cell wall and fragment boundary families. The texture
development is modelled with the help of a full constraints Taylor code. The couplings between the two
consist in the slip rates calculated by the Taylor algorithm and driving the evolution equations, and in
the critical resolved shear stresses calculated from the defect densities and entering into the Taylor code.
The model is used to predict the subdivision patterns depending on the grain orientation as well as the
substructure contribution to the anisotropy in the macroscopic mechanical response.
© EDP Sciences 2001