TY - JOUR
T1 - Impact of the plastic deformation microstructure in metals on the kinetics of recrystallization
T2 - A phase-field study
AU - Hamed, Ahmed
AU - Rayaprolu, Sreekar
AU - Winther, Grethe
AU - El-Azab, Anter
N1 - Funding Information:
A.E. acknowledges the support from the US Department of Energy, Office of Science, Division of Materials Sciences and Engineering, through award number DE-SC0017718, and from the National Science Foundation, Division of Civil, Mechanical, and Manufacturing Innovation (CMMI), through award number 1663311 at Purdue University. The initial effort of this work was supported by DOE-NE-In-pile instrumentation program at Idaho National Laboratory through a subcontract at Purdue University.
Publisher Copyright:
© 2022 Acta Materialia Inc.
PY - 2022/11
Y1 - 2022/11
N2 - The sensitivity of recrystallization kinetics in metals to the heterogeneity of microstructure and deformation history is a widely accepted experimental fact. However, most of the available recrystallization models employ either a mean field approach or use grain-averaged parameters, and thus neglecting the mesoscopic heterogeneity induced by prior deformation. In the present study, we investigate the impact of deformation-induced dislocation (subgrain) structure on the kinetics of recrystallization in metals using the phase-field approach. The primary focus here is upon the role of dislocation cell boundaries. The free energy formulation of the phase-field model accounts for the heterogeneity of the microstructure by assigning localized energy to the resulting dislocation microstructure realizations generated from experimental data. These microstructure realizations are created using the universal scaling laws for the spacing and the misorientation angles of both the geometrically necessary and incidental dislocation boundaries. The resulting free energy is used into an Allen-Cahn based model of recrystallization kinetics, which are solved using the finite element method. The solutions thus obtained shed light on the critical role of the spatial heterogeneity of deformation in the non-smooth growth of recrystallization nuclei and on the final grain structure. The results showed that, in agreement with experiment, the morphology of recrystallization front exhibits protrusions and retrusions. By resolving the subgrain structure, the presented algorithm paves the way for developing predictive kinetic models that fully account for the deformed state of recrystallizing metals.
AB - The sensitivity of recrystallization kinetics in metals to the heterogeneity of microstructure and deformation history is a widely accepted experimental fact. However, most of the available recrystallization models employ either a mean field approach or use grain-averaged parameters, and thus neglecting the mesoscopic heterogeneity induced by prior deformation. In the present study, we investigate the impact of deformation-induced dislocation (subgrain) structure on the kinetics of recrystallization in metals using the phase-field approach. The primary focus here is upon the role of dislocation cell boundaries. The free energy formulation of the phase-field model accounts for the heterogeneity of the microstructure by assigning localized energy to the resulting dislocation microstructure realizations generated from experimental data. These microstructure realizations are created using the universal scaling laws for the spacing and the misorientation angles of both the geometrically necessary and incidental dislocation boundaries. The resulting free energy is used into an Allen-Cahn based model of recrystallization kinetics, which are solved using the finite element method. The solutions thus obtained shed light on the critical role of the spatial heterogeneity of deformation in the non-smooth growth of recrystallization nuclei and on the final grain structure. The results showed that, in agreement with experiment, the morphology of recrystallization front exhibits protrusions and retrusions. By resolving the subgrain structure, the presented algorithm paves the way for developing predictive kinetic models that fully account for the deformed state of recrystallizing metals.
KW - Grain growth
KW - Phase-field simulations
KW - Plastic deformation microstructures
KW - Protrusions/retrusions
KW - Recrystallization
UR - https://www.scopus.com/pages/publications/85137561305
UR - https://www.mendeley.com/catalogue/d19777a9-ce2f-347b-881c-8434ca6658a1/
U2 - 10.1016/j.actamat.2022.118332
DO - 10.1016/j.actamat.2022.118332
M3 - Article
AN - SCOPUS:85137561305
SN - 1359-6454
VL - 240
JO - Acta Materialia
JF - Acta Materialia
M1 - 118332
ER -