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Atomistic simulations of the effect of embedded hydrogen and helium on the tensile properties of monocrystalline and nanocrystalline tungsten

  • Zhe Chen
  • , Laszlo J. Kecskes
  • , Kaigui Zhu*
  • , Qiuming Wei
  • *Corresponding author for this work
  • Beihang University
  • University of North Carolina at Charlotte
  • U.S. Army Research Laboratory

Research output: Contribution to journalArticlepeer-review

Abstract

Uniaxial tensile properties of monocrystalline tungsten (MC-W) and nanocrystalline tungsten (NC-W) with embedded hydrogen and helium atoms have been investigated using molecular dynamics (MD) simulations in the context of radiation damage evolution. Different strain rates have been imposed to investigate the strain rate sensitivity (SRS) of the samples. Results show that the plastic deformation processes of MC-W and NC-W are dominated by different mechanisms, namely dislocation-based for MC-W and grain boundary-based activities for NC-W, respectively. For MC-W, the SRS increases and a transition appears in the deformation mechanism with increasing embedded atom concentration. However, no obvious embedded atom concentration dependence of the SRS has been observed for NC-W. Instead, in the latter case, the embedded atoms facilitate GB sliding and intergranular fracture. Additionally, a strong strain enhanced He cluster growth has been observed. The corresponding underlying mechanisms are discussed.

Original languageEnglish
Pages (from-to)190-200
Number of pages11
JournalJournal of Nuclear Materials
Volume481
DOIs
StatePublished - 1 Dec 2016

Keywords

  • Irradiation
  • Molecular dynamics
  • Plasma facing materials
  • Tension
  • Tungsten

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