TY - JOUR
T1 - Effects of nano-twinning on the deformation and mechanical behaviours of TiAl alloys with distinct microstructure at elevated loading temperatures
AU - Hao, yanjun
AU - Liu, Jinxu
AU - Li, Shukui
AU - Li, Jianchong
AU - Liu, Xuzhen
AU - Feng, Xinya
N1 - Publisher Copyright:
© 2017 Elsevier B.V.
PY - 2017/9/29
Y1 - 2017/9/29
N2 - To study the influence of the microstructure on both the deformation mechanisms and mechanical properties of TiAl alloys at elevated temperatures, Ti-44Al (at%) alloy with a fully lamellar microstructure and Ti-47Al (at%) alloy with a duplex microstructure were prepared by adjusting the Al content. Hot compression tests at temperatures ranging from 600 ℃ to 1000 ℃ were performed on both the Ti-44Al and the Ti-47Al alloys. The analysis of the deformation mechanism reveals that nano-twinning is the dominant deformation mechanism of the γ phase. Nanoscale twins in a single γ phase traverse the whole γ phase grain, rather than becoming inhibited by the lamellar interfaces in the γ/α2 lamellar colonies. Thus, the length of nano-twins in a single γ phase is much longer than that in a γ phase lamella within γ/α2 lamellar colonies, resulting in a lower yield strength but better ductility. By increasing the loading temperature, the ductility of the γ/α2 lamellar colonies is markedly improved due to dynamic recrystallization (DRX), while the ductility of the single γ phase is improved by dislocations that traverse the twin boundaries at higher loading temperatures. Moreover, the effects of nano-twinning on the deformation and mechanical behaviours of TiAl alloys, especially at elevated loading temperatures, are discussed in detail.
AB - To study the influence of the microstructure on both the deformation mechanisms and mechanical properties of TiAl alloys at elevated temperatures, Ti-44Al (at%) alloy with a fully lamellar microstructure and Ti-47Al (at%) alloy with a duplex microstructure were prepared by adjusting the Al content. Hot compression tests at temperatures ranging from 600 ℃ to 1000 ℃ were performed on both the Ti-44Al and the Ti-47Al alloys. The analysis of the deformation mechanism reveals that nano-twinning is the dominant deformation mechanism of the γ phase. Nanoscale twins in a single γ phase traverse the whole γ phase grain, rather than becoming inhibited by the lamellar interfaces in the γ/α2 lamellar colonies. Thus, the length of nano-twins in a single γ phase is much longer than that in a γ phase lamella within γ/α2 lamellar colonies, resulting in a lower yield strength but better ductility. By increasing the loading temperature, the ductility of the γ/α2 lamellar colonies is markedly improved due to dynamic recrystallization (DRX), while the ductility of the single γ phase is improved by dislocations that traverse the twin boundaries at higher loading temperatures. Moreover, the effects of nano-twinning on the deformation and mechanical behaviours of TiAl alloys, especially at elevated loading temperatures, are discussed in detail.
KW - Dynamic recrystallization
KW - High temperature deformation
KW - Nanoscale twins
KW - Single γ phase
KW - Titanium aluminides
UR - http://www.scopus.com/inward/record.url?scp=85028304092&partnerID=8YFLogxK
U2 - 10.1016/j.msea.2017.08.077
DO - 10.1016/j.msea.2017.08.077
M3 - Article
AN - SCOPUS:85028304092
SN - 0921-5093
VL - 705
SP - 210
EP - 218
JO - Materials Science and Engineering: A
JF - Materials Science and Engineering: A
ER -