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The Effect of Crystallographic Orientation on Void Growth: A Molecular Dynamics Study
被引:0
|作者:
Bhatia, M. A.
[1
]
Solanki, K. N.
[1
]
Moitra, A.
[1
]
Tschopp, M. A.
[1
]
机构:
[1] Mississippi State Univ, Ctr Adv Vehicular Syst, Starkville, MS USA
来源:
TMS2011 SUPPLEMENTAL PROCEEDINGS, VOL 2: MATERIALS FABRICATION, PROPERTIES, CHARACTERIZATION, AND MODELING
|
2011年
关键词:
Void Growth;
Dislocation loop;
Molecular Dynamics;
Aluminum;
HOMOGENEOUS DISLOCATION NUCLEATION;
CRYSTAL ORIENTATION;
DUCTILE RUPTURE;
SINGLE-CRYSTALS;
COALESCENCE;
FRACTURE;
COPPER;
DEFORMATION;
PLASTICITY;
SIMULATION;
D O I:
暂无
中图分类号:
T [工业技术];
学科分类号:
08 ;
摘要:
in ductile materials, fracture involves void nucleation, growth and coalescence. The objective of this research is to understand how crystallographic orientation influences void growth in uniaxial tensile deformation of aluminum. We used molecular dynamics to simulate void growth in a spherical void embedded cubic specimen with periodic boundary conditions under remote uniaxial tension. The simulation results reveal how crystallographic orientation affects the yield stress and void growth corresponding to dislocation nucleation from the void surface and resulting in shear loops in perfect FCC lattice. Varying dislocation patterns/shear loops occur according to the specimens different orientations, thereby affirming the effect of crystallographic orientation. Consequently, atomistic simulations of this type can indeed inform continuum void growth models for application in multiscale models.
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页码:577 / 584
页数:8
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