材料科学
复合材料
热扩散率
陶瓷基复合材料
微观结构
热解
复合数
陶瓷
热导率
热膨胀
最大相位
热稳定性
渗透(HVAC)
化学工程
化学气相渗透
量子力学
物理
工程类
作者
Niranjan Patra,Nasrin Al Nasiri,Daniel Doni Jayaseelan,William Lee
标识
DOI:10.1016/j.jeurceramsoc.2017.12.051
摘要
Abstract Ultra-high temperature ceramic infiltrated carbon-fibre composites were prepared by precursor infiltration and pyrolysis (PIP) using a laboratory synthesized precursor. Microstructures and thermal properties including thermal expansion, thermal diffusivity, specific heat capacity and oxidative stability are correlated. XRD reveals the presence of Cf-HfC and Cf-HfC-SiC phases without formation of oxides. The CTE observed at 1200 °C is slightly higher for Cf-HfC (3.36 × 10−6 K−1) compared to Cf-HfC-SiC (2.95 × 10−6 K−1) composites. Lower thermal diffusivity of the Cf-HfC-SiC compared to Cf-HfC composites is attributed to a thermal barrier effect and cracks in the composites which formed due to the CTE mismatch between carbon fibre and the matrix as well as CO generated during graphitization. The thermal conductivity of Cf-HfC (4.18 ± 0.14 Wm−1 K−1) is higher than that of Cf-HfC-SiC composite (3.33 ± 0.42 Wm−1 K−1). Composites microstructures were coarse with some protruding particles (5 μm) with a homogeneous dense (∼70%) matrix (HfC and HfC-SiC) for both composites.
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