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Exploring the relation between transonic dislocation glide and stacking fault width in FCC metals

  • Kathryn R. Jones
  • , Khanh Dang
  • , Daniel N. Blaschke
  • , Saryu J. Fensin
  • , Abigail Hunter

Research output: Contribution to journalArticlepeer-review

3 Scopus citations

Abstract

Theory predicts limiting gliding velocities that dislocations cannot overcome. Computational and recent experiments have shown that these limiting velocities are soft barriers and dislocations can reach transonic speeds in high rate plastic deformation scenarios. In this paper we systematically examine the mobility of edge and screw dislocations in several face centered cubic (FCC) metals (Al, Au, Pt, and Ni) in the extreme large-applied-stress regime using molecular dynamics simulations. Our results show that edge dislocations are more likely to move at transonic velocities due to their high mobility and lower limiting velocity than screw dislocations. Importantly, among the considered FCC metals, the dislocation core structure determines the dislocation’s ability to reach transonic velocities. This is likely due to the variation in stacking fault width due to relativistic effects near the limiting velocities.

Original languageEnglish
Article number025020
JournalModelling and Simulation in Materials Science and Engineering
Volume33
Issue number2
DOIs
StatePublished - Mar 15 2025

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