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Solute-induced precipitation nanosized Ti-rich phase greatly enhances the plasticity of Mo-Ti-Zr alloys

  • Shi Lei Li
  • , Ping Hu
  • , Hai Rui Xing
  • , Hua Wang
  • , Wen Zhang
  • , Li Yu
  • , Jing Liang
  • , Kai Chen
  • , Tian Chang
  • , Hai Long Xu
  • , Jian Feng Li
  • , Kuai She Wang
  • Northwest Institute for Nonferrous Metal Research
  • Xi'an University of Architecture and Technology
  • Xi'an Jiaotong University
  • Xi’an International Science and Technology Cooperation Base for Manufacturing of Special Powder and Powder Metallurgy
  • Ltd.

科研成果: 期刊稿件文章同行评审

2 引用 (Scopus)

摘要

To optimize the mechanical strength and ductility of low-oxygen Titanium-Zirconium-Molybdenum (LO-TZM) alloys, systematic solution-quenching heat treatment was applied to specimens with various oxygen concentrations. Remarkable microstructural evolution was observed in the alloy with an oxygen content of 280 ppm: nanoscale Ti-rich precipitates (∼20 nm in diameter) formed within the molybdenum (Mo) matrix. The refined microstructure yields an ultimate tensile strength of 733 MPa and exceptional ductility (28.7 % elongation). The stress–strain curve exhibited a distinct yield plateau accompanied by macroscopic Lüders band formation, evidencing substitutional solid solution strengthening. The enhanced plasticity is attributed to three synergistic mechanisms: (1) elimination of embrittling coarse oxide inclusions via oxygen reduction, (2) precipitation strengthening from solution-derived nanoscale Ti-rich phases, and (3) improved grain boundary cohesion due to suppressed oxygen segregation. These combined effects enable the alloy to retain high strength meanwhile achieving unprecedented ductility. Importantly, the nanoscale Ti-rich precipitates exhibit superior thermal stability, retaining their morphological integrity even after exposure to high-temperature environments. This characteristic further expands the alloy’s potential for high-temperature service scenarios.

源语言英语
期刊论文编号115279
期刊Materials and Design
261
DOI
出版状态已出版 - 1月 2026
已对外发布

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