4.7 Article

High-throughput determination of mechanical and diffusion properties of Ti-Ta-Fe alloys

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ELSEVIER
DOI: 10.1016/S1003-6326(22)66070-9

关键词

Ti-Ta-Fe alloys; diffusion couple; nanoindentation; interdiffusion coefficients; mechanical properties

资金

  1. National Natural Science Foundation for Youth of China [51701083]
  2. Guangzhou Science and Technology Association Young Talent Lifting Project, China [X20210201054]
  3. Open Fund of National Joint Engineering Research Center for Abrasion Control and Molding of Metal Materials, China [HKDNM201903]
  4. Guangdong Basic and Applied Basic Research Foundation, China [2019A1515110095]

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The mechanical and diffusion properties of Ti-Ta-Fe alloys in the Ti-rich region were investigated using a high-throughput method, nanoindentation, and diffusion couple techniques. A composition-dependent database was established to study the processability of Ti alloys, and it was found that the Fe content should be controlled for Ti alloys with high hardness and low Young's modulus.
The mechanical and diffusion properties of Ti-Ta-Fe alloys in the Ti-rich region were investigated by utilizing a high-throughput method, with the combination of nanoindentation and diffusion couple techniques. Five groups of ternary Ti-Ta-Fe diffusion couples were prepared after annealing at 1273 K for 25 h. The composition-dependent mechanical properties of bcc Ti-Ta-Fe system were experimentally determined by means of nanoindentation and electron probe microanalysis (EPMA) techniques. Moreover, the interdiffusion coefficients of Ti-Ta-Fe alloys at 1273 K were confirmed from the composition gradients of the ternary diffusion couples with the support of a pragmatic numerical inverse method. A composition-dependent database on the mechanical and diffusion properties of Ti-Ta-Fe alloys was carefully established and utilized for the discussion of the processability during the hot working. The results indicated that the content of Fe should be controlled for the Ti alloys with high hardness and low Young's modulus.

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