TY - JOUR
T1 - Morphological evolution of γ' and γ'' precipitation in a model superalloy
T2 - Insights from 3D phase-field simulations
AU - Wang, Chan
AU - Umair, Muhammad
AU - Jiang, Yuxun
AU - Nerella, Dhanunjaya K.
AU - Ali, Muhammad Adil
AU - Steinbach, Ingo
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/6/20
Y1 - 2025/6/20
N2 - This study explores the role of nucleation conditions of γ'' and γ' strengthening phases in determining the microstructural characteristics of Ni-based superalloys. A 3D phase-field model is employed to investigate the competitive growth behavior of these phases under aging conditions at 850 K. The analysis reveals that the initial nucleation conditions significantly affect the equilibrium phase morphology, including size dispersion and spatial distribution, while the final equilibrium volume fractions remain constant. Equal initial nucleation densities of γ'' and γ' phases promote a more uniform spatial distribution, reduced size dispersion, and decreased von Mises stress, leading to improved precipitation strengthening. This is particularly important, as both precipitate phases show an opposite sign of the misfit compared to the matrix. This leads to a minimum state of elastic energy for an even distribution of precipitates in an alternating setting and allows for tuning of the equilibrium fraction, constrained by elastic interaction. These findings highlight the importance of optimizing preferential nucleation to enhance the microstructure and properties of Ni-based superalloys.
AB - This study explores the role of nucleation conditions of γ'' and γ' strengthening phases in determining the microstructural characteristics of Ni-based superalloys. A 3D phase-field model is employed to investigate the competitive growth behavior of these phases under aging conditions at 850 K. The analysis reveals that the initial nucleation conditions significantly affect the equilibrium phase morphology, including size dispersion and spatial distribution, while the final equilibrium volume fractions remain constant. Equal initial nucleation densities of γ'' and γ' phases promote a more uniform spatial distribution, reduced size dispersion, and decreased von Mises stress, leading to improved precipitation strengthening. This is particularly important, as both precipitate phases show an opposite sign of the misfit compared to the matrix. This leads to a minimum state of elastic energy for an even distribution of precipitates in an alternating setting and allows for tuning of the equilibrium fraction, constrained by elastic interaction. These findings highlight the importance of optimizing preferential nucleation to enhance the microstructure and properties of Ni-based superalloys.
KW - Distribution
KW - Morphology
KW - Phase-field simulation
KW - The γ’’ and γ’ phases
KW - Volume fraction
UR - http://www.scopus.com/inward/record.url?scp=105004912652&partnerID=8YFLogxK
U2 - 10.1016/j.commatsci.2025.113972
DO - 10.1016/j.commatsci.2025.113972
M3 - Article
AN - SCOPUS:105004912652
SN - 0927-0256
VL - 256
JO - Computational Materials Science
JF - Computational Materials Science
M1 - 113972
ER -