Strength–ductility combination of fine-grained magnesium alloy with high deformation twin density

F. Zhao, T. Suo, B. Chen, Y. L. Li

Research output: Contribution to journalArticlepeer-review

48 Scopus citations

Abstract

The objective of present study is to determine the effects of grain size and deformation twin density on mechanical behaviors linked to microstructure evolution of AZ31 magnesium (Mg) alloy. The AZ31 Mg alloy was processed by warm sever plastic deformation method and followed by dynamic compression (strain rate ∼ 1 × 103 s−1, plastic strain ∼ 10%). Uniaxial tensile experiments at room temperature have revealed that AZ31 Mg alloy is exhibited enhanced strength with grain refinement and high deformation twin density. The improved strength of AZ31 Mg alloy is attributed to the hindering effect of increasing grain boundaries (GBs) and twin boundaries (TBs) on dislocation motion, thereby making plastic deformation more difficult. As a result, the large reduction in ductility has been found for fine grained AZ31 Mg alloy (grain size is about 2–3 μm). But with increasing deformation twin density after dynamic compression (especially in fine grained samples), the obvious ductility enhancement has been found in both coarse grained and fine grained AZ31 Mg alloy. With mechanical behaviors properly described, both strength and ductility can be simultaneously achieved in fine grained and high twin density AZ31 Mg alloy.

Original languageEnglish
Pages (from-to)350-359
Number of pages10
JournalJournal of Alloys and Compounds
Volume798
DOIs
StatePublished - 25 Aug 2019

Keywords

  • AZ31 Mg alloy
  • Deformation twins
  • Grain refinement
  • Mechanical behaviors
  • Microstructure evolution

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