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Grain-size-independent plastic flow at ultrahigh pressures and strain rates

  • H. S. Park
  • , R. E. Rudd
  • , R. M. Cavallo
  • , N. R. Barton
  • , A. Arsenlis
  • , J. L. Belof
  • , K. J.M. Blobaum
  • , B. S. El-Dasher
  • , J. N. Florando
  • , C. M. Huntington
  • , B. R. Maddox
  • , M. J. May
  • , C. Plechaty
  • , S. T. Prisbrey
  • , B. A. Remington
  • , R. J. Wallace
  • , C. E. Wehrenberg
  • , M. J. Wilson
  • , A. J. Comley
  • , E. Giraldez
  • A. Nikroo, M. Farrell, G. Randall, George Thompson Gray

Research output: Contribution to journalArticlepeer-review

81 Scopus citations

Abstract

A basic tenet of material science is that the flow stress of a metal increases as its grain size decreases, an effect described by the Hall-Petch relation. This relation is used extensively in material design to optimize the hardness, durability, survivability, and ductility of structural metals. This Letter reports experimental results in a new regime of high pressures and strain rates that challenge this basic tenet of mechanical metallurgy. We report measurements of the plastic flow of the model body-centered-cubic metal tantalum made under conditions of high pressure (>100GPa) and strain rate (∼107s-1) achieved by using the Omega laser. Under these unique plastic deformation ("flow") conditions, the effect of grain size is found to be negligible for grain sizes >0.25μm sizes. A multiscale model of the plastic flow suggests that pressure and strain rate hardening dominate over the grain-size effects. Theoretical estimates, based on grain compatibility and geometrically necessary dislocations, corroborate this conclusion.

Original languageEnglish
Article number065502
JournalPhysical Review Letters
Volume114
Issue number6
DOIs
StatePublished - Feb 12 2015

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