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Manipulating TWIP/TRIP via oxygen-doping to synergistically enhance strength and ductility of metastable beta titanium alloys.

Authors :
Gao, Yue
Xiao, Wenlong
Kent, Damon
Wang, Junshuai
Jiang, Wentao
Meng, Fanqiang
Peng, Ziling
Fu, Yu
Ma, Chaoli
Source :
Journal of Materials Science & Technology; Apr2025, Vol. 215, p58-70, 13p
Publication Year :
2025

Abstract

• Synergistic enhancement in yield strength of over 95 % and ductility by more than 140 % in Ti-32Nb base alloys were achieved by interstitial oxygen doping. • Transformation induced plasticity and twinning induced plasticity were regulated by oxygen doping. • Complex sequence of strain induced twinning/phase transformation behaviors from β twinning to αʺ was revealed by ex-situ TEM, EBSD and in-situ HE-XRD. • Outlines a new approach for design of advanced TRIP/TWIP titanium alloys. Metastable β-Ti alloys exhibiting twinning-induced plasticity (TWIP) and transformation-induced plasticity (TRIP) generally have excellent ductility, but typically at the expense of relatively low yield strengths which has restricted their widespread use. Our work shows that interstitial oxygen can be employed to regulate β phase stability to significantly enhance both strength and ductility of TWIP/TRIP alloys. For a Ti-32Nb wt.% base alloy, inclusion of 0.3 wt.% O enhanced ductility by more than 140 %, reaching up to 54 % strain, and improved the tensile yield strength by over 95 % to 632 MPa. Compared to other common engineering alloys such as Ti-45Nb, elongation was increased by 29 %, and the yield strength increased by 182 MPa, respectively. Here, we elucidate on impacts of oxygen doping on TWIP/TRIP behaviors in the Ti-32Nb alloy. We reveal that oxygen regulates the critical stress for martensitic transformation, twinning, and dislocation slip. At lower oxygen doping concentrations (≤0.3 wt.% O), multi-stage martensitic transformation and martensitic twinning resulted in high ductility. In higher oxygen content alloys (≥0.5 wt.% O), deformation occurred initially via twinning, while strain induced martensite was subsequently induced in retained β phase regions. Oxygen concentrations control the deformation mechanisms, providing a flexible means to synergistically balance an alloy's strength and ductility. The use of oxygen to enhance stability of the β phase and regulate deformation behaviors is a promising new approach for creating high-performance TWIP/TRIP metastable β-Ti alloys with outstanding mechanical properties. [Display omitted] [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
10050302
Volume :
215
Database :
Supplemental Index
Journal :
Journal of Materials Science & Technology
Publication Type :
Periodical
Accession number :
181190239
Full Text :
https://doi.org/10.1016/j.jmst.2024.05.086