Atomic-Scale Study of Plastic-Yield Criterion in Nanocrystalline Cu at High Strain Rates

Abstract

Large-scale molecular dynamics (MD) simulations are used to understand the macroscopic yield behavior of nanocrystalline Cu with an average grain size of 6 nm at high strain rates. The MD simulations at strain rates varying from 10(exp 9)/sec to 8 x 9 10(exp)9/sec suggest an asymmetry in the flow stress values in tension and compression, with the nanocrystalline metal being stronger in compression than in tension. The tension-compression strength asymmetry is very small at 10(exp 9)/sec, but increases with increasing strain rate. The calculated yield stresses and flow stresses under combined biaxial loading conditions (X-Y) gives a locus of points that can be described with a traditional ellipse. An asymmetry parameter is introduced that allows for the incorporation of the small tension-compression asymmetry. The biaxial yield surface (X-Y) is calculated for different values of stress in the Z direction, the superposition of which gives a full threedimensional (3-D) yield surface. The 3-D yield surface shows a cylinder that is symmetric around the hydrostatic axis. These results suggest that a von Mises-type yield criterion can be used to understand the macroscopic deformation behavior of nanocrystalline Cu with a grain size in the inverse Hall-Petch regime at high strain rates.

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Document Details

Document Type
Technical Report
Publication Date
Feb 01, 2010
Accession Number
ADA522976

Entities

People

  • A. M. Dongare
  • A. M. Rajendran
  • B. Lamattina
  • Donald W. Brenner
  • M.A. Zikry

Organizations

  • North Carolina State University

Tags

Communities of Interest

  • Advanced Electronics
  • Space

DTIC Thesaurus Topics

  • Aspect Ratio
  • Asymmetry
  • Computational Science
  • Engineering
  • Failure Mode And Effect Analysis
  • Grain Size
  • Laser Pulses
  • Materials
  • Materials Science
  • Micro-Machines
  • Molecular Dynamics
  • Peak Values
  • Plastic Deformation
  • Simulations
  • Strain Rate
  • Three Dimensional
  • Yield Strength

Fields of Study

  • Physics

Readers

  • Mechanical Engineering/Mechanics of Materials.
  • Powder metallurgy of Titanium alloys.
  • Thin Film Deposition Science.