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Multiscale study of dynamic void collapse in single crystals
Kiran Solanki
, M. F. Horstemeyer
, M. I. Baskes
, H. Fang
Research output
:
Contribution to journal
›
Article
›
peer-review
30
Scopus citations
Overview
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Dive into the research topics of 'Multiscale study of dynamic void collapse in single crystals'. Together they form a unique fingerprint.
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Keyphrases
Single Crystal
100%
Embedded Atom Method
100%
Void Collapse
100%
Crack Initiation
66%
Flow Initiation
66%
Atomic Scale
33%
Strain Rate
33%
Kinematic Effect
33%
Finite Element Simulation
33%
Inelastic Response
33%
Localization Sites
33%
Finite Element
33%
Crack Initiation Site
33%
Dislocation nucleation
33%
Molecular Dynamics Calculations
33%
Inelastic Flow
33%
Spatial Regimes
33%
Copper Single Crystal
33%
Localization Effect
33%
Philo
33%
Initial Orientation
33%
Average Velocity
33%
Single Crystal Copper
33%
Pattern Localization
33%
Temporal Regimes
33%
Hollow Circular Cylinder
33%
Single Crystal Nickel
33%
Single Crystal Plasticity
33%
Engineering
Multiscale
100%
Crack Initiation
100%
Finite Element Simulation
33%
Anisotropic
33%
Rates of Strain
33%
Inelastic Response
33%
Good Agreement
33%
Face-Centered Cubic
33%
Finite Element Result
33%
Circular Cylinder
33%
Initial Orientation
33%
Average Velocity
33%
Single Crystal Plasticity
33%
Material Science
Single Crystal
100%
Crack Initiation
60%
Finite Element Method
40%
Nucleation
20%
Strain Rate
20%
Crystal Plasticity
20%