Abstract
Ultra-high temperature ceramics-based composites exhibit immense promise for thermal protection systems; however, challenges of sintering difficulty, prolonged densification periods remain critical obstacles to their broader application. In this work, a (Hf1/2Zr1/3Ti1/6) C medium entropy ceramic (MEC) powder was grafted with active groups (-OH and -vinyl) through surface micro-oxidation and dechlorination reactions. Owing to VinMEC's high sintering activity and enhanced crosslinking of precursors, densification was accomplished in just two PIP cycles when this vinyl-grafted MEC (VinMEC) powder was doped in a vinyl-SiBCN precursor to prepare a C/SiBCN-VinMEC composite. Under the ablation of a 7 MW/m2 oxyacetylene flame, C/SiBCN-VinMEC exhibited a LAR of 1.99 μm/s. This exceptional anti-ablation performance is primarily attributed to the formation of high melting point (Hf, Zr, Ti) O2 oxide skeleton, along with high viscosity liquid phase of (Hf, Zr) TiO4. Furthermore, the C/SiBCN-VinMEC demonstrates remarkably low costs attributed to its short densification cycle (2 PIP cycles), mild processing conditions (pressureless, <1400 °C), and minimal raw material expenses (2D carbon fiber cloth and high precursor utilization). This rapid fabrication method offers a cost-effective and high-performance route for the production of ultra-high temperature thermal protection composites.
| Original language | English |
|---|---|
| Article number | 177858 |
| Journal | Chemical Engineering Journal |
| Volume | 541 |
| DOIs | |
| Publication status | Published - 1 Aug 2026 |
| Externally published | Yes |
Keywords
- Ablation behavior
- Ceramics matrix composites
- Medium-entropy ceramics
- Precursor infiltration pyrolysis
- Ultra-high temperature ceramics
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