Atomistic simulation of tantalum nanoindentation: Effects of indenter diameter, penetration velocity, and interatomic potentials on defect mechanisms and evolution
Journal article, 2014
Plasticity
SPHERICAL INDENTATION
Tantalum
MD simulation
MICRO-INDENTATION
SURFACE INDENTATION
NUCLEATION
TEMPERATURE-DEPENDENCE
METALLIC MATERIALS
INDENTATION EXPERIMENTS
Nanoindentation
STRAIN GRADIENT PLASTICITY
SINGLE-CRYSTALS
MOLECULAR-DYNAMICS SIMULATIONS
DISLOCATION
Twinning
Author
C. J. Ruestes
Consejo Nacional de Investigaciones Cientificas y Tecnicas
University of California, San Diego
Universidad Nacional de Cuyo
A. Stukowski
Technische Universitat Darmstadt
Y. Tang
Shanghai University
Diego Tramontina
Universidad Nacional de Cuyo
Paul Erhart
Chalmers, Applied Physics, Materials and Surface Theory
B. A. Remington
Lawrence Livermore National Laboratory
H. M. Urbassek
Technische Universitat Kaiserslautern
M. A. Meyers
University of California, San Diego
Eduardo Bringa
Universidad Nacional de Cuyo
Consejo Nacional de Investigaciones Cientificas y Tecnicas
Materials Science & Engineering A: Structural Materials: Properties, Microstructure and Processing
0921-5093 (ISSN)
Vol. 613 390-403Subject Categories (SSIF 2011)
Materials Engineering
Areas of Advance
Materials Science
DOI
10.1016/j.msea.2014.07.001