环氧树脂
复合材料
材料科学
辐照
碳纤维复合材料
碳纤维
纤维
接口(物质)
复合数
润湿
物理
坐滴法
核物理学
作者
Shengkai Liu,Lianzhou Wang,Amna Siddique,Muhammad Umair,Chongyang Shi,Xiaoyuan Pei,Siqi Liu,Yue Yin,Haiting Shi,Zhiwei Xu
标识
DOI:10.1016/j.compositesb.2024.111575
摘要
The serious damage caused to 3D braided carbon fiber (CF)/epoxy (EP) composites in high-energy irradiation environments is a pressing research topic that has not yet been reported. This study analyzed the γ-irradiation multi-scale damage of the matrix, interfaces, and near-interface regions in 3D braided CF/EP composites with three different braiding angles (18°, 28°, 38°) at atomic, microscopic, and macroscopic scales. The molecular structure and atomic charge information alterations of epoxy matrix were characterized using soft X-ray absorption spectroscopy (sXAS). When the irradiation dose reached 1000KGy, the compressive strength of composites decreased by 20.88%, 18.07%, and 16.60%, respectively, with an increase in the braiding angle. Micro-CT observation, along with statistical computing, confirmed that irradiation causes interface damage and increases the defect volume of 3D braided composites. Nanoindentation was used to compare the modulus of carbon fiber, interface, near-interface regions and matrix in irradiated composites and the function of CF/resin interface as an irradiation defect capture site in the irradiation resistance of resin-matrix composites has been newly established. In addition, the mechanism behind the effect of braiding angle on macroscopic properties was also analyzed.
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