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Fabrication of 2 GPa multiphase core-shell nanocrystalline titanium alloys using martensite decomposition under thermomechanical coupling conditions

  • Wenkang Li
  • , Hai Wang*
  • , Konrad Koenigsmann
  • , Xianzhe Ran
  • , Kai Wang
  • , Jinxuan Zhao
  • , Yi Li
  • , Shuyuan Zhang
  • , Guangcai Ma
  • , Yingying Shen
  • , Hui Liu
  • , Ling Ren*
  • , Ke Yang
  • *Corresponding author for this work
  • Northeastern University China
  • CAS - Institute of Metal Research
  • University of Virginia

Research output: Contribution to journalLetterpeer-review

Abstract

Grain refinement is a well-known technique that can be used to improve the strength of titanium alloys. However, when the grain size is refined to below 100 nm, even during the fabrication process, nanocrystalline titanium alloys lose their excellent mechanical properties as grain coarsening invariably occurs. In this work, we describe the fabrication of triple, quadruple, and quintuple phase core-shell nanocrystalline titanium alloys using martensite decomposition under thermomechanical coupling conditions. Experimental results indicate that increasing the number of phases present in the core-shell microstructure is beneficial for grain refinement. This is due to the pinning properties of the multiphase core-shell microstructure, which lead to increased microstructural stability of the nanocrystalline titanium alloys. The α grain size in the quintuple phase core-shell Ti6Al4V5Cu3Ni2Co0.7Si alloy is 80 ± 50 nm with an ultrahigh strength of 2 GPa. The results of the present study provide insight into the development of future ultrahigh strength titanium alloys.

Original languageEnglish
Article number180008
JournalJournal of Alloys and Compounds
Volume1023
DOIs
StatePublished - 15 Apr 2025

Keywords

  • Martensite decomposition
  • Nanocrystalline
  • Stability
  • Titanium alloy
  • Ultrahigh strength

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