Effect of microstructure and crystallographic texture on mechanical anisotropy of Ti-Nb microalloyed hot rolled 800 MPa HSLA steel

被引:23
作者
Das Bakshi, S. [1 ]
Javed, N. [2 ]
Sasidhar, K. N. [3 ]
Dhande, T. [2 ]
Sharma, V. [4 ]
Mukherjee, M. [4 ]
机构
[1] Tata Steel, Flat Prod, Prod Technol, Jamshedpur, Bihar, India
[2] Benaras Hindu Univ, Indian Inst Technol, Varanasi, Uttar Pradesh, India
[3] Indian Inst Technol, Roorkee, Uttar Pradesh, India
[4] Tata Steel, Res & Dev Div, Jamshedpur, Bihar, India
关键词
HSLA steel; Toughness anisotropy; Delamination; EBSD; Crystallographic texture; CHARPY IMPACT TOUGHNESS; X100 PIPELINE STEEL; LOW-CARBON; FRACTURE-TOUGHNESS; CLEAVAGE FRACTURE; NOTCH TOUGHNESS; LINE-PIPE; DELAMINATION; STRENGTH; INCLUSIONS;
D O I
10.1016/j.matchar.2017.12.039
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The impact toughness of a Ti + Nb HSLA steel plate, conventionally hot rolled in the austenitic region, were measured at four different directions at 0 degrees C, -20 degrees C and -40 degrees C respectively. The microstructure was characterised using light optical microscope, scanning electron microscope (SEM) followed by evaluation of hot rolled texture using X-ray diffraction (XRD) and orientation distribution function (ODF) obtained from electron back-scattered diffraction (EBSD). The anisotropy in the yield strength (YS) and Charpy impact toughness (CVN) were examined in the light of orientation distribution function (ODF) obtained from EBSD. The skeleton lines, showing intensity distribution, f(g), of the fcc-to-bcc transformation texture, namely the alpha-fiber (<110>parallel to RD), the gamma-fiber (<111)parallel to ND) and epsilon-fiber (<110>parallel to TD) are considered to explain the observed anisotropy along with microstructural features. The major components like, {112}<110>, {113}<110>, {332}<113>, {111}012> and {111}<110>, their relative intensity distribution, are found to cause the observed anisotropy in yield strength and impact toughness. A stronger presence of {113}<110> component of the alpha-fiber over relatively weaker {332} <113> component of the epsilon-fiber further augments the observed toughness anisotropy. In absence of any microstructural banding, strong the presence of {113}<110> and {112}<110> can also cause delamination in ductile fracture mode.
引用
收藏
页码:346 / 357
页数:12
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