Grain refinement in titanium prevents low temperature oxygen embrittlement

Измельчение зерна в титане предотвращает низкотемпературное охрупчивание кислородом
Yan Chong, Reza Gholizadeh, Tomohito Tsuru, Ruopeng Zhang, Koji Inoue, Wenqiang Gao, A. Godfrey, Masatoshi Mitsuhara, J. W. Morris, Andrew M. Minor, Nobuhiro Tsuji
2023-02-01

cryogenic temperaturegrain boundary segregationgrain refinementoxygen embrittlementultrafine-grained titanium
Interstitial oxygen embrittles titanium, particularly at cryogenic temperatures, which necessitates a stringent control of oxygen content in fabricating titanium and its alloys. Here, we propose a structural strategy, via grain refinement, to alleviate this problem. Compared to a coarse-grained counterpart that is extremely brittle at 77 K, the uniform elongation of an ultrafine-grained (UFG) microstructure (grain size ~ 2.0 µm) in Ti-0.3wt.%O is successfully increased by an order of magnitude, maintaining an ultrahigh yield strength inherent to the UFG microstructure. This unique strength-ductility synergy in UFG Ti-0.3wt.%O is achieved via the combined effects of diluted grain boundary segregation of oxygen that helps to improve the grain boundary cohesive energy and enhanced dislocation activities that contribute to the excellent strain hardening ability. The present strategy will not only boost the potential applications of high strength Ti-O alloys at low temperatures, but can also be applied to other alloy systems, where interstitial solution hardening results into an undesirable loss of ductility.
1
Grain refinement prevents severe cryogenic oxygen embrittlement in titanium, offering a structural alternative to stringent oxygen-content control.
2
Improved ductility results from reduced oxygen segregation at grain boundaries, higher grain-boundary cohesive energy, and enhanced dislocation activity supporting strain hardening.
3
The ultrafine-grained alloy retains the ultrahigh yield strength characteristic of its refined microstructure, achieving a strength–ductility synergy.
4
This grain-refinement strategy may enable high-strength Ti–O alloys for low-temperature applications and could extend to other interstitially hardened alloy systems.
5
Ultrafine-grained Ti-0.3wt.%O with approximately 2.0 µm grains increases uniform elongation at 77 K by an order of magnitude versus coarse-grained titanium.

Ultrafine-grained Ti-0.3wt.%O titanium at cryogenic temperature (77 K)

The strength–ductility synergy and mechanisms preventing oxygen-induced low-temperature embrittlement, including grain-boundary oxygen segregation and dislocation activity

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Publication Date
2023-02-01
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Authors
Yan Chong
Reza Gholizadeh
Tomohito Tsuru
Ruopeng Zhang
Koji Inoue
Wenqiang Gao
A. Godfrey
Masatoshi Mitsuhara
J. W. Morris
Andrew M. Minor
Nobuhiro Tsuji
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