3D visualization and quantitative characterizations of damage evolution in C/SiC composites: Synchrotron X-ray CT and in-situ loading at 800°C

材料科学 极限抗拉强度 复合材料 表征(材料科学) 微观结构 灾难性故障 同步加速器 断裂(地质) 同步辐射 体积分数 动载荷 碳化硅 结构材料 损伤容限 X射线显微断层摄影术 高能材料 压力(语言学) 拉伸试验 蠕动 损伤力学 断裂力学 惰性 可视化 断层摄影术 断口学 耐久性 碳化物 延展性(地球科学)
作者
Long Wang,Chuantao Hou,Daxu Zhang,Ruisi Xing,Fang Ren,Junbai Song,Weiyu Guo,Yueping Zhang,Chao Chen
出处
期刊:Journal of Composite Materials [SAGE Publishing]
被引量:2
标识
DOI:10.1177/00219983251388194
摘要

Continuous carbon fiber-reinforced silicon carbide (C/SiC) composites are critical structural materials in advanced aerospace and energy fields, where they are subjected to extreme thermo-mechanical loads above 800°C. The complex internal damage evolution in the bulk of C/SiC composites determines their structural integrity and service life. However, traditional ex-situ characterization methods fail to capture the dynamic 3D evolution of internal damage under such extreme conditions. In this study, an integrated experimental protocol combining in-situ synchrotron radiation X-ray computed tomography (SR-CT) with high-temperature tensile loading was developed to investigate the damage evolution in C/SiC composites. Two types of dog-bone specimens were designed: one with arc-shaped notches to localize damage and another with a central hole to simulate engineering riveted connections. In-situ tensile tests were conducted at 800°C in an inert nitrogen atmosphere using a dedicated testing system, and SR-CT scans were performed at different loading steps to visualize and quantify internal microstructures and damage evolution. Damage characterization reveals that damage initiates at high stress levels (>85% of fracture strength) in both specimens, with limited propagation before catastrophic failure and the volume fraction of damage during loading is significantly lower than that of initial cracks. This study validates the effectiveness of in-situ SR-CT for 3D visualization and quantitative analysis of damage evolution in C/SiC composites under high-temperature tensile loading, providing insights into their damage mechanisms under extreme thermo-mechanical conditions and supporting optimization of material design and performance.
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