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3C-SiC Nanowires In-Situ Modified Carbon/Carbon Composites and Their Effect on Mechanical and Thermal Properties

机译:3C-SiC纳米线原位改性碳/碳复合材料及其对机械和热性能的影响

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摘要

An in-situ, catalyst-free method for synthesizing 3C-SiC ceramic nanowires (SiCNWs) inside carbon⁻carbon (C/C) composites was successfully achieved. Obtained samples in different stages were characterized by X-ray diffraction (XRD), scanning electron microscopy (SEM), and Raman scattering spectroscopy. Results demonstrated that the combination of sol-gel impregnation and carbothermal reduction was an efficient method for in-situ SiCNW synthesis, inside C/C composites. Thermal properties and mechanical behaviors—including out-of-plane and in-plane compressive strengths, as well as interlaminar shear strength (ILLS) of SiCNW modified C/C composites—were investigated. By introducing SiCNWs, the initial oxidation temperature of C/C was increased remarkably. Meanwhile, out-of-plane and in-plane compressive strengths, as well as interlaminar shear strength (ILLS) of C/C composites were increased by 249.3%, 109.2%, and 190.0%, respectively. This significant improvement resulted from simultaneous reinforcement between the fiber/matrix (F/M) and matrix/matrix (M/M) interfaces, based on analysis of the fracture mechanism.
机译:成功地实现了用于在碳羰(C / C)复合材料中合成3C-SiC陶瓷纳米线(SiCNW)的原位,催化剂的方法。通过X射线衍射(XRD),扫描电子显微镜(SEM)和拉曼散射光谱表征不同阶段的样品。结果表明,溶胶 - 凝胶浸渍和碳热还原的组合是在C / C复合材料内原位SICNW合成的有效方法。研究了热性能和机械行为 - 包括外平面和面内抗压强度,以及SICNW改性的C / C复合材料的外部剪切强度(ILL)。通过引入SiCNW,显着增加C / C的初始氧化温度。同时,C / C复合材料的平面外和面内抗压强度以及C / C复合材料的层间剪切强度(IMIT)分别增加了249.3%,109.2%和190.0%。基于分析裂缝机制的分析,由于纤维/基质(F / M)和基质/基质(M / M)界面之间的同时增强产生了显着改善。

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