TY - JOUR
T1 - In situ EBSD/HR-DIC-based investigation on anisotropy mechanism of a near α titanium plate with strong transverse texture
AU - Jia, Runchen
AU - Zeng, Weidong
AU - Zhao, Zibo
AU - Wang, Boning
AU - Xu, Jianwei
AU - Wang, Qingjiang
N1 - Publisher Copyright:
© 2023
PY - 2023/3/3
Y1 - 2023/3/3
N2 - The effect of strong transverse(T) texture on anisotropy deformation mechanism of Ti60 plate was in-situ investigated using the EBSD and the high resolution-digital image correlation (HR-DIC) technique. The yield strength and the ultimate tensile strength is in descending order: TD > RD > 45°, and the ductility shows the opposite trend. The tensile anisotropy related to the discrepancy of activated slip systems in RD, 45°, and TD. In yielding stage, prism slip dominated in RD, basal slip dominated in the 45° direction, while pyram slip dominated in TD. The anisotropy coefficient χ was proposed to evaluate the resistance discrepancy based on all the activated slip systems, which well explained the trend of the tensile strength anisotropy. The ductility anisotropy has been analyzed through slip transmission and slip-GB interaction using HR-DIC technology, which is determined by residual dislocation under different tensile directions. The slip transmission can be easily achieved when the Burgers vector of incoming grain is a [2‾ 110] and the Burgers vector of outcoming grain is a [112‾ 0] in 45° direction, which can effectively weaken stress concentration on the grain boundary leading to the greatest ductility among three tensile directions. The dislocation structures in three directions have been analyzed under two-beam condition and weak beam dark field (WBDF) images.
AB - The effect of strong transverse(T) texture on anisotropy deformation mechanism of Ti60 plate was in-situ investigated using the EBSD and the high resolution-digital image correlation (HR-DIC) technique. The yield strength and the ultimate tensile strength is in descending order: TD > RD > 45°, and the ductility shows the opposite trend. The tensile anisotropy related to the discrepancy of activated slip systems in RD, 45°, and TD. In yielding stage, prism slip dominated in RD, basal slip dominated in the 45° direction, while pyram slip dominated in TD. The anisotropy coefficient χ was proposed to evaluate the resistance discrepancy based on all the activated slip systems, which well explained the trend of the tensile strength anisotropy. The ductility anisotropy has been analyzed through slip transmission and slip-GB interaction using HR-DIC technology, which is determined by residual dislocation under different tensile directions. The slip transmission can be easily achieved when the Burgers vector of incoming grain is a [2‾ 110] and the Burgers vector of outcoming grain is a [112‾ 0] in 45° direction, which can effectively weaken stress concentration on the grain boundary leading to the greatest ductility among three tensile directions. The dislocation structures in three directions have been analyzed under two-beam condition and weak beam dark field (WBDF) images.
KW - Anisotropy mechanism
KW - Digital image correction
KW - Dislocation structures
KW - In-situ tensile
KW - Transverse texture
UR - http://www.scopus.com/inward/record.url?scp=85147843274&partnerID=8YFLogxK
U2 - 10.1016/j.msea.2023.144743
DO - 10.1016/j.msea.2023.144743
M3 - 文章
AN - SCOPUS:85147843274
SN - 0921-5093
VL - 867
JO - Materials Science and Engineering: A
JF - Materials Science and Engineering: A
M1 - 144743
ER -