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Strongly correlated breeding of high-speed dislocations

  • Johns Hopkins University
  • Xi'an Jiaotong University
  • Massachusetts Institute of Technology

Research output: Contribution to journalArticlepeer-review

28 Scopus citations

Abstract

Under very high stresses, dislocations can be accelerated to approach the speed of shear wave over a distance as short as 101 nm. Our atomistic simulations demonstrate that dislocations with such high speeds often react in counter-intuitive manners that are beyond textbook descriptions of conventional dislocation behavior. A high-speed dislocation can “rebound” when hitting a free surface rather than simply annihilate. When two high-speed dislocations collide, they can “penetrate” through each other. An individual dislocation can even spontaneously generate multiple dislocations via self-dissociation. These anomalous mechanisms lead to rapid proliferation of dislocations that are strongly correlated both spatially and temporally, and as such may play a role in high-stress and high-strain-rate plastic deformation; a potentially related case is nanoscale pristine single crystals, which often yield via a large strain burst at ultrahigh stresses.

Original languageEnglish
Pages (from-to)229-241
Number of pages13
JournalActa Materialia
Volume119
DOIs
StatePublished - 15 Oct 2016

Keywords

  • High-speed dislocations
  • Nanoscale metal surface
  • Nanoscale single crystals
  • Strongly correlated plasticity

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