Title of article
Solute strengthening of both mobile and forest dislocations: The origin of dynamic strain aging in fcc metals Original Research Article
Author/Authors
M.A. Soare، نويسنده , , W.A. Curtin، نويسنده ,
Issue Information
دوهفته نامه با شماره پیاپی سال 2008
Pages
16
From page
4046
To page
4061
Abstract
A full rate-dependent constitutive theory for dynamic strain aging is developed based on two key ideas. The first idea is that both solute strengthening and forest strengthening must exist and must exhibit aging phenomena. The second idea is that a single physical aging mechanism, cross-core diffusion within a dislocation core, controls the aging of both the solute and forest strengthening mechanisms. All the material parameters in the model, apart from forest dislocation density evolution parameters, are derivable from atomistic-scale studies so that the theory contains essentially no adjustable parameters. The model predicts the steady-state stress/strain/strain-rate/temperature/concentration dependent material response for a variety of Al–Mg alloys, including negative strain-rate sensitivity, in qualitative and quantitative agreement with available experiments. The model also reveals the origin of non-additivity of solute and forest strengthening, and explains observed non-standard transient stress behavior in strain-rate jump tests.
Keywords
Plastic deformation , Aluminum alloys , Strain-rate sensitivity , Dislocations , Constitutive equations
Journal title
ACTA Materialia
Serial Year
2008
Journal title
ACTA Materialia
Record number
1143771
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