TY - JOUR
T1 - Influence of primary crystal orientation on deformation and crack nucleation around dense film cooling holes in Ni-based single crystal superalloy
AU - Li, Zhenwei
AU - Wen, Zhixun
AU - Yuan, Yi
AU - Yue, Zhufeng
N1 - Publisher Copyright:
© 2024
PY - 2026/6
Y1 - 2026/6
N2 - The influence of primary crystal orientation on deformation and microcrack nucleation behavior around dense film cooling holes (FCHs) in Ni-based single crystal thin-walled plate are investigated based on in situ tensile tests, multi-level characterization and crystal plastic finite element method (CPFEM). Difference of mechanical behavior, slip deformation and crack formation pattern between two special crystal orientations are revealed. Results show that the [111] oriented specimens have a less deformation and simpler fracture path than the [011] oriented specimens, but their yield strength is higher. The different of slip systems activation between two crystal orientations is implemented by CPFEM. Combined the atomic force microscope (AFM) characterization, the slip bands intensity along the [011] and [111] crystal orientation is quantified. The crack initiation threshold stress of the [111] orientation is higher than that of [011] orientation. Microcracks start to form along the slip bands at the position around the FCH where the cumulative shear plastic strain was greatest. The predicted slip bands and crack nucleation obtained from CPFEM simulations show good agreement with experimental observations. The dislocation structure at crack tip plastic zone of two orientation is revealed. The [011] orientation demonstrates a more homogeneous dislocation shearing of the γ/γ' phase compared to the [111] orientation, indicating a more uniform plasticity and crack resistance.
AB - The influence of primary crystal orientation on deformation and microcrack nucleation behavior around dense film cooling holes (FCHs) in Ni-based single crystal thin-walled plate are investigated based on in situ tensile tests, multi-level characterization and crystal plastic finite element method (CPFEM). Difference of mechanical behavior, slip deformation and crack formation pattern between two special crystal orientations are revealed. Results show that the [111] oriented specimens have a less deformation and simpler fracture path than the [011] oriented specimens, but their yield strength is higher. The different of slip systems activation between two crystal orientations is implemented by CPFEM. Combined the atomic force microscope (AFM) characterization, the slip bands intensity along the [011] and [111] crystal orientation is quantified. The crack initiation threshold stress of the [111] orientation is higher than that of [011] orientation. Microcracks start to form along the slip bands at the position around the FCH where the cumulative shear plastic strain was greatest. The predicted slip bands and crack nucleation obtained from CPFEM simulations show good agreement with experimental observations. The dislocation structure at crack tip plastic zone of two orientation is revealed. The [011] orientation demonstrates a more homogeneous dislocation shearing of the γ/γ' phase compared to the [111] orientation, indicating a more uniform plasticity and crack resistance.
KW - Crack nucleation behavior
KW - Film cooling holes
KW - In-situ tension
KW - Ni-based single crystal
KW - Primary crystal orientation
UR - https://www.scopus.com/pages/publications/105037070687
U2 - 10.1016/j.matchar.2026.116437
DO - 10.1016/j.matchar.2026.116437
M3 - 文章
AN - SCOPUS:105037070687
SN - 1044-5803
VL - 236
JO - Materials Characterization
JF - Materials Characterization
M1 - 116437
ER -