4.7 Article

A titanium-nitrogen alloy with ultrahigh strength by ball milling and spark plasma sintering

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.msea.2022.143465

关键词

Ti-N alloy; Solid solution strengthening; Ultra-high yield strength; Ball milling; Spark plasma sintering

资金

  1. Guangdong Basic and Applied Basic Research Foundation [2021A1515012626]
  2. Na-tional Natural Science Foundation of China [51871077, JCYJ20180507184623297]
  3. Development and Reform Commission of Shenzhen Municipality-Shenzhen R & D Center for Al-based Hydrogen Hydrolysis Materials [ZX20190229]
  4. National Natural Science Foundation of China [JCYJ20180507184623297]
  5. Shenzhen Knowledge Innovation Plan-Fundamental Research (Discipline Distribution) [ZX20190229]
  6. Development and Reform Commission of Shenzhen Municipality-Shenzhen R & D Center for Al-based Hydrogen Hydrolysis Materials [51871077]
  7. Startup Foundation from Shenzhen and Startup Foundation from Harbin Institute of Technology (Shenzhen)

向作者/读者索取更多资源

This study successfully prepared ultra-high-strength Ti-N alloys with an N content of 2.66 wt% and a yield strength exceeding 2000 MPa. By combining fine-grain strengthening and solution strengthening, the strength of the Ti-N alloys was enhanced.
The high strength and low cost of titanium alloys have led to the development of these alloys for aerospace applications. In this study, ultra-high-strength Ti-N alloys were fabricated by ball-milling (BM) and spark plasma sintering (SPS), and the effects of the nitrogen content on the microstructure and mechanical properties of the alloys were studied. TiN powder was used as the raw material for doping the alloys with N atoms, and the N content was controlled by tuning the amount of TiN powder added. The yield strength of the Ti-N alloys increased with an increase in the N content and surpassed 2000 MPa when the N content reached 2.66 wt%. Quantitative analysis using the Hall-Petch equation and Labusch model demonstrated that fine-grain strengthening and solution strengthening worked in synergy to enhance the strength of the Ti-N alloys. The ultra-high strength Ti-N alloys can be applied in the aerospace field for structure use, such as aircraft engines, fasteners, and burn-resistant materials. The preparation of novel Ti-N alloys validates the theoretical application of ubiquitous elements in titanium alloys.

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