August 2012

Journal

Mesoscale Modeling and Validation of Texture Evolution during Asymmetric Rooling and Static Recrystallization of Magnesium Alloy AZ31B

By:
Radhakrishnan, Balasubram ; Gorti, Sarma B; Stoica, Grigoreta M; Muralidharan, Govindarajan ; Stoica, Alexandru D; Wang, Xun-Li ; Specht, Eliot D; Kenik, Edward A; Muth, Thomas R
Journal Name:
Metallurgical and Materials Transactions A
Page Number:
1509-1516
Volume:
43A
Issue Number:
5
Publication Date:
August 2012
View DOI Listing:
https://doi.org/10.1007/s11661-011-0896-4

Abstract

The focus of the present research is to develop an integrated deformation and recrystallization model for magnesium alloys at the microstructural length scale. It is known that in magnesium alloys nucleation of recrystallized grains occurs at various microstructural inhomogeneities such as twins and localized deformation bands. However, there is a need to develop models that can predict the evolution of the grain structure and texture developed during recrystallization and grain growth, especially when the deformation process follows a complicated deformation path such as in asymmetric rolling. The deformation model is based on a crystal plasticity approach implemented at the length scale of the microstructure that includes deformation mechanisms based on dislocation slip and twinning. The recrystallization simulation is based on a Monte Carlo technique that operates on the output of the deformation simulations. The nucleation criterion during recrystallization is based on the local stored energy and the Monte Carlo technique is used to simulate the growth of the nuclei due to local stored energy differences and curvature. The model predictions are compared with experimental data obtained through electron backscatter analysis and neutron diffraction.