Back to Search Start Over

Precision control of oxygen content in CP-Ti for ultra-high strength through titanium oxide decomposition: An in-situ study.

Authors :
Shi, Xianzhe
Wang, Xiuxia
Chen, Biao
Umeda, Junko
Bahador, Abdollah
Kondoh, Katsuyoshi
Shen, Jianghua
Source :
Materials & Design. Mar2023, Vol. 227, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

Diagram of TiO decomposition and strengthening mechanism of HOC-Ti. [Display omitted] • An in-situ study revealed a complete decomposition of TiO particles in α-Ti matrix at elevated temperatures. • An intermediate product of low-valence titanium oxide (Ti 2 O) adjoining the TiO phase was observed in the process of TiO decomposition. • High strength commercially pure titanium was produced by precision control of oxygen content without expense of ductility. Oxygen has been known as an effective strengthening element in titanium (Ti) and its alloys. However, an over-dose of oxygen can also lead to embrittlement of Ti alloys. To precisely control and push the limit of oxygen in Ti and its alloys, we studied the decomposition process of Ti oxides in pure α-Ti matrix using an in-situ high-temperature scanning electron microscope. The experimental results revealed that TiO particles decomposed in α-Ti at elevated temperatures and the oxygen atoms gradually diffused into the matrix, following the Fick's second law. Then, the samples with different oxygen contents were produced using the aforementioned strategy, for which the oxygen content, microstructure, and mechanical properties were measured. The results revealed that the oxygen content can be precisely controlled, which can achieve an ultra-high tensile strength of close to 1100 MPa, at no expense of elongation-to-failure, with incorporating 0.87 wt% oxygen. An analysis showed that the strength contribution from oxygen follows the Labusch law. These findings offer a novel approach to design high-performance Ti alloys with non-toxic and cheap elements. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
02641275
Volume :
227
Database :
Academic Search Index
Journal :
Materials & Design
Publication Type :
Academic Journal
Accession number :
162850712
Full Text :
https://doi.org/10.1016/j.matdes.2023.111797