Cr2AlC ceramic–modified carbon/quartz fiber composites with enhanced ablation resistance and thermal insulation

Author:

Zhang Hao12ORCID,Liu Guixiang3,Dai Bo3,Fu Shuai4,Wan Detian4,Bao Yiwang5ORCID,Chu Longsheng1,Feng Qingguo1ORCID,Hu Chunfeng1ORCID

Affiliation:

1. Key Laboratory of Advanced Technologies of Materials Ministry of Education School of Materials Science and Engineering Southwest Jiaotong University Chengdu China

2. Sichuan Technology & Business College Chengdu China

3. State Key Laboratory of Environment‐Friendly Energy Materials School of Materials Science and Engineering Southwest University of Science and Technology Mianyang China

4. State Key Laboratory of Green Building Materials China Building Materials Academy Beijing China

5. Henan Key Laboratory of High‐Performance Carbon Fiber Reinforced Composites Institute of Carbon Matrix Composites Henan Academy of Sciences Zhengzhou China

Abstract

AbstractCarbon‐bonded carbon fiber composites (CBCF) are renowned for their lightweight and thermal insulation properties. However, the brittleness and susceptibility to oxidation hinder the widespread application of CBCF. In this work, the carbon‐bonded carbon/quartz hybrid fiber composites (CBCQF) were prepared by pressure filtration and modified by Cr2AlC ceramics. The microstructure, mechanical properties, thermal insulation, and ablation behaviors were investigated. Cr2AlC ceramics notably enhanced the compressive strength of CBCQF in the XY direction and reduced the room‐temperature thermal conductivity in the Z direction. Most importantly, Cr2AlC ceramics significantly improved the ablation resistance of CBCQF. When 40% Cr2AlC ceramics were added, the linear and mass ablation rates of CBCQF were reduced by 38.0% and 93.2%, respectively, compared to the reference sample. Moreover, the study of ablation mechanisms revealed that the improvement in ablation resistance was primarily derived from the formation of the surface protective oxides as well as the reinforcement of oxidation resistance. Overall, this study presents a promising avenue for the application of Cr2AlC ceramics and the modification of fiber composites.

Publisher

Wiley

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