4.4 Article

Microstructure evolution and mechanical properties of a hot-rolled Ti alloy

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出版社

ELSEVIER SCIENCE INC
DOI: 10.1016/j.pnsc.2020.11.007

关键词

Titanium alloys; Microstructure evolution; Mechanical properties; Hot rolling

资金

  1. National Natural Science Foundation of China [51571031]
  2. Belarusian Republican Foundation [BITBLR2020004]
  3. Beijing Institute of Technology [BITBLR2020004]

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The research on a hot-rolled titanium alloy sheet along the thickness direction revealed that the central region experienced larger deformation and formation of fine grains, resulting in distinct microstructures across the sheet. The surface exhibited the highest yield strength but the lowest elongation due to softening induced by dynamic recrystallization and strengthening by concentrated dislocations.
The microstructure evolution and mechanical properties of a hot-rolled Ti-5.1Al-2.5Cr-0.5Fe-4.5Mo- 1.1Sn-1.8Zr2.9Zn titanium alloy sheet along the thickness direction were investigated. The results indicated that the hotrolled titanium alloy sheet presented different microstructures along the thickness direction owing to the uneven distribution of stress and temperature during the hot rolling. The grains in central region underwent a larger deformation, leading to relative complete grain fragmentation and the formation of fine grains. During the air cooling process followed by hot rolling, the fraction of a phase precipitated in the central region was lower than that in the regions near the surface of the sheet. During hot rolling process, more deformation energy transformed to thermal energy and lower cooling rate in the central region promoted the alpha ->beta phase transformation, resulting in the increasing of the dynamic recrystallization in the beta phase. By contrast, the dynamic recrystallization for a phase decreased. Distinct {0001} a and {001} beta textures were observed, and these textures were markedly strengthened with the increasing distance from the central region. Due to the softening induced by dynamic recrystallization and the strengthening by concentrated dislocations, the surface of the sheet exhibits highest yield strength and lowest elongation.

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