TY - JOUR
T1 - First-principles calculation on the thermodynamic and elastic properties of precipitations in Al-Cu alloys
AU - Sun, Dongqiang
AU - Wang, Yongxin
AU - Zhang, Xinyi
AU - Zhang, Minyu
AU - Niu, Yanfei
N1 - Publisher Copyright:
© 2016 Elsevier Ltd
PY - 2016/12/1
Y1 - 2016/12/1
N2 - First-principles calculations based on density functional theory was used to investigate the structural, thermodynamic and elastic properties of precipitations, θ″, θ′ and θ, in Al-Cu alloys. The values of lattice constants accord with experimental results well. The structural stability of θ is the best, followed by θ′ and θ″. In addition, due to the highest bulk modulus, shear modulus and Young's modulus, θ possesses the best reinforcement effect in precipitation hardening process considered only from mechanical properties of perfect crystal. According to the values of B/G, Poisson's ratio and C11-C12, θ′ has the worst ductility, while θ″ has the best ductility, the ductility of θ is in the middle. The ideal tensile strength of θ″, θ′ and θ calculated along [100] and [001] directions are 20.87 GPa, 23.11 GPa and 24.70 GPa respectively. The analysis of electronic structure suggests that three precipitations all exhibit metallic character, and number of bonding electrons and bonding strength are the nature of different thermodynamic and elastic properties for θ″, θ′ and θ.
AB - First-principles calculations based on density functional theory was used to investigate the structural, thermodynamic and elastic properties of precipitations, θ″, θ′ and θ, in Al-Cu alloys. The values of lattice constants accord with experimental results well. The structural stability of θ is the best, followed by θ′ and θ″. In addition, due to the highest bulk modulus, shear modulus and Young's modulus, θ possesses the best reinforcement effect in precipitation hardening process considered only from mechanical properties of perfect crystal. According to the values of B/G, Poisson's ratio and C11-C12, θ′ has the worst ductility, while θ″ has the best ductility, the ductility of θ is in the middle. The ideal tensile strength of θ″, θ′ and θ calculated along [100] and [001] directions are 20.87 GPa, 23.11 GPa and 24.70 GPa respectively. The analysis of electronic structure suggests that three precipitations all exhibit metallic character, and number of bonding electrons and bonding strength are the nature of different thermodynamic and elastic properties for θ″, θ′ and θ.
KW - Aluminium alloys
KW - First-principles
KW - Ideal tensile strength
KW - Mechanical properties
UR - http://www.scopus.com/inward/record.url?scp=84994506913&partnerID=8YFLogxK
U2 - 10.1016/j.spmi.2016.09.012
DO - 10.1016/j.spmi.2016.09.012
M3 - 文章
AN - SCOPUS:84994506913
SN - 0749-6036
VL - 100
SP - 112
EP - 119
JO - Superlattices and Microstructures
JF - Superlattices and Microstructures
ER -