TY - JOUR
T1 - Temperature dependent fatigue damage evolution of SiCf/SiC composites captured using in-situ X-ray imaging and strain analysis
AU - Ma, Penghui
AU - Hu, Dianyin
AU - Liu, Xi
AU - Wang, Ying
AU - Pan, Jinchao
AU - Wang, Guican
AU - Deng, Jinquan
AU - Wang, Rongqiao
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2025/12
Y1 - 2025/12
N2 - Continuous SiCf/SiC composites are promising for high-temperature applications, but inherent structural defects compromise their mechanical performance under extreme conditions. This study investigates the fatigue damage mechanisms of SiCf/SiC composites at room temperature (RT) and 1200 °C using in-situ X-ray computed tomography (X-CT). A deep learning-based image enhancement and segmentation approach was employed to achieve fast and precise reconstruction of internal crack morphology. Additionally, the 3D deformation field under fatigue was monitored by digital volume correlation, revealing stress concentrations linked to crack propagation. Results show temperature-dependent fatigue and damage accumulation behaviour due to both initial defects and high-temperature induced compositional changes. At RT, damage occurs through multiple matrix cracking, bypassing bridging fibres and connecting with longitudinal cracks promoted by initial interfacial defects, leading to failure with a relatively flat fracture surface. At 1200 °C, fibre fractures tend to occur at early stages, and extensive fibre pull-out leads to a rough fracture surface. Notably, fibre–matrix debonding occurs along the PyC-SiCf interface at RT, while along the PyC-SiC coating interface at 1200 °C. Furthermore, decomposition of SiCxOy impurities at 1200 °C increases the crystallinity of β-SiC, which further enhances high-temperature properties of the matrix.
AB - Continuous SiCf/SiC composites are promising for high-temperature applications, but inherent structural defects compromise their mechanical performance under extreme conditions. This study investigates the fatigue damage mechanisms of SiCf/SiC composites at room temperature (RT) and 1200 °C using in-situ X-ray computed tomography (X-CT). A deep learning-based image enhancement and segmentation approach was employed to achieve fast and precise reconstruction of internal crack morphology. Additionally, the 3D deformation field under fatigue was monitored by digital volume correlation, revealing stress concentrations linked to crack propagation. Results show temperature-dependent fatigue and damage accumulation behaviour due to both initial defects and high-temperature induced compositional changes. At RT, damage occurs through multiple matrix cracking, bypassing bridging fibres and connecting with longitudinal cracks promoted by initial interfacial defects, leading to failure with a relatively flat fracture surface. At 1200 °C, fibre fractures tend to occur at early stages, and extensive fibre pull-out leads to a rough fracture surface. Notably, fibre–matrix debonding occurs along the PyC-SiCf interface at RT, while along the PyC-SiC coating interface at 1200 °C. Furthermore, decomposition of SiCxOy impurities at 1200 °C increases the crystallinity of β-SiC, which further enhances high-temperature properties of the matrix.
KW - Ceramic-matrix composites (CMCs)
KW - Damage evolution
KW - High-temperature properties
KW - X-CT analysis
UR - https://www.scopus.com/pages/publications/105011205028
U2 - 10.1016/j.compositesa.2025.109197
DO - 10.1016/j.compositesa.2025.109197
M3 - 文章
AN - SCOPUS:105011205028
SN - 1359-835X
VL - 199
JO - Composites Part A: Applied Science and Manufacturing
JF - Composites Part A: Applied Science and Manufacturing
M1 - 109197
ER -