材料科学
化学气相渗透
复合材料
微观结构
抗弯强度
极限抗拉强度
热解炭
碳化硅
多孔性
陶瓷
抗压强度
相(物质)
热解
工程类
有机化学
化学
废物管理
作者
Zhiyong Ye,Yalei Wang,Qingbo Wen,Yufeng Liu,Congcong Liu,Xiang Xiong
摘要
Abstract Twill multidirectional carbon‐fiber‐reinforced carbon and silicon carbide composites (i.e., C/C–SiC) were prepared via chemical vapor infiltration combined with reactive melt infiltration process. The effect of heat treatment (HT) on the microstructure and mechanical properties of C/C–SiC composites obtained by C/C preforms with different densities was thoroughly investigated. The results show that as the bulk density of C/C preforms increases, the thickness of the pyrolytic carbon (PyC) layer increases and open pore size distribution narrows, making the bulk density and residual silicon content of C/C–SiC composites decrease. Moreover, the flexural strength and tensile strength of the C/C–SiC composites were improved, which can be attributed to the increased thickness of the PyC layer. The compressive strength reduces due to the decrease of the ceramic phase content. HT improves the graphitization degree of PyC, which reduces the silicon–carbon reaction rate and thereby the content of the SiC phase. HT induces microcracks and porosity but not obviously affects the mechanical properties of C/C–SiC composites. However, the negative impact of HT can be compensated by the increased density of the C/C preforms.
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