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Texture and lattice strain evolution during tensile loading of Mg–Zn alloys measured by synchrotron diffraction

  • Xiaohua Zhou
  • , Changwan Ha
  • , Sangbong Yi
  • , Jan Bohlen
  • , Norbert Schell
  • , Yuanqing Chi
  • , Mingyi Zheng
  • , Heinz Günter Brokmeier*
  • *Corresponding author for this work
  • Clausthal University of Technology
  • Helmholtz-Zentrum Hereon
  • Harbin Institute of Technology

Research output: Contribution to journalArticlepeer-review

Abstract

To explore the effect of neodymium (Nd) on the deformation mechanisms of Mg–Zn alloys, texture and lattice strain developments of hot-rolled Mg–Zn (Z1) and Mg–Zn–Nd (ZN10) alloys were investigated using in situ synchrotron diffraction and compared with elasto-viscoplastic selfconsistent simulation under tensile loading. The Nd-containing ZN10 alloys show much weaker texture after hot rolling than the Nd-free Z1 alloy. To investigate the influence of the initial texture on the texture and lattice strain evolution, the tensile tests were carried out in the rolling and transverse direction. During tension, the {002}<100> texture components develop fast in Z1, which was not seen for ZN10. On the other hand, <100> fiber // loading direction (LD) developed in both alloys, although it was faster in ZN10 than in Z1. Lattice strain investigation showed that <101> // LD-oriented grains experienced plastic deformation first during tension, which can be related to basal slip activity. This was more apparent for ZN10 than for Z1. The simulation results show that the prismatic slip plays a vital role in the plastic deformation of Z1 directly from the beginning. In contrast, ZN10 plastic deformation starts with dominant basal slip but during deformation prismatic slip becomes increasingly important.

Original languageEnglish
Article number124
JournalMetals
Volume10
Issue number1
DOIs
StatePublished - Jan 2020
Externally publishedYes

Keywords

  • Elasto-viscoplastic self-consistent simulation (EVPSC)
  • Lattice strain
  • Mg-Nd-Zn
  • Synchrotron diffraction
  • Texture

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