Title of article :
First-principles data for solid-solution strengthening of magnesium: From geometry and chemistry to properties Original Research Article
Author/Authors :
Joseph A. Yasi، نويسنده , , Louis G. Hector Jr ، نويسنده , , Dallas R. Trinkle، نويسنده ,
Issue Information :
دوهفته نامه با شماره پیاپی سال 2010
Pages :
10
From page :
5704
To page :
5713
Abstract :
Solid-solution strengthening results from solutes impeding the glide of dislocations. Existing theories of strength rely on solute/dislocation interactions, but do not consider dislocation core structures, which need an accurate treatment of chemical bonding. Here, we focus on strengthening of Mg, the lightest of all structural metals and a promising replacement for heavier steel and aluminum alloys. Elasticity theory, which is commonly used to predict the requisite solute/dislocation interaction energetics, is replaced with quantum-mechanical first-principles calculations to construct a predictive mesoscale model for solute strengthening of Mg. Results for 29 different solutes are displayed in a “strengthening design map” as a function of solute misfits that quantify volumetric strain and slip effects. Our strengthening model is validated with available experimental data for several solutes, including Al and Zn, the two most common solutes in Mg. These new results highlight the ability of quantum-mechanical first-principles calculations to predict complex material properties such as strength.
Keywords :
Magnesium alloys , Plastic deformation , Dislocations , Density-functional theory
Journal title :
ACTA Materialia
Serial Year :
2010
Journal title :
ACTA Materialia
Record number :
1145154
Link To Document :
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