TY - JOUR
T1 - An in-situ study on deformation and cracking initiation in oxygen-doped commercial purity titanium
AU - Shen, Jianghua
AU - Chen, Biao
AU - Umeda, Junko
AU - Zhang, Jiong
AU - Li, Yulong
AU - Kondoh, Katsuyoshi
N1 - Publisher Copyright:
© 2020 Elsevier Ltd
PY - 2020/9
Y1 - 2020/9
N2 - Oxygen solid solution has been long known as a double-edge sword to Ti alloys, where, on the one hand, it has a strong strengthening effect while, on the other hand, it also embrittles the alloys. In the present work, in-situ observations using SEM and EBSD were carried out under tension to explore the mechanism that controls those effects. The results suggest that, by increasing oxygen content, the 〈a+c〉 type slip becomes more favorable than the 〈a〉 type, other than suppressing deformation twinning. As a result, the crack nucleation sites transit from grain boundaries (especially at triple junctions) into grain interior with a planar shape, which finally leads to easy cleavage. Comprehensive analysis and discussion suggest that the transition of fracture mode is due to the presence of oxygen solutes that modify the local stress state of geometrically necessary dislocation (GND) pile-ups, which then interfere with the condition for {112¯2¯} twin nucleation and turn to the activation of {112¯2}〈a+c〉 slips.
AB - Oxygen solid solution has been long known as a double-edge sword to Ti alloys, where, on the one hand, it has a strong strengthening effect while, on the other hand, it also embrittles the alloys. In the present work, in-situ observations using SEM and EBSD were carried out under tension to explore the mechanism that controls those effects. The results suggest that, by increasing oxygen content, the 〈a+c〉 type slip becomes more favorable than the 〈a〉 type, other than suppressing deformation twinning. As a result, the crack nucleation sites transit from grain boundaries (especially at triple junctions) into grain interior with a planar shape, which finally leads to easy cleavage. Comprehensive analysis and discussion suggest that the transition of fracture mode is due to the presence of oxygen solutes that modify the local stress state of geometrically necessary dislocation (GND) pile-ups, which then interfere with the condition for {112¯2¯} twin nucleation and turn to the activation of {112¯2}〈a+c〉 slips.
KW - Cracking
KW - In-situ experiment
KW - Oxygen
KW - Slip systems
KW - Titanium
UR - http://www.scopus.com/inward/record.url?scp=85086899514&partnerID=8YFLogxK
U2 - 10.1016/j.mechmat.2020.103519
DO - 10.1016/j.mechmat.2020.103519
M3 - 文章
AN - SCOPUS:85086899514
SN - 0167-6636
VL - 148
JO - Mechanics of Materials
JF - Mechanics of Materials
M1 - 103519
ER -