Abstract
Constructing a dense and continuous oxide scale to resist high-energy laser and high-velocity heat flow remains critical for future carbon-based materials in aerospace field. Herein, a multilayer glass-HfC/ZrC/HfC coating was developed using plasma spraying and hot dipping-painting hybrid method. The high-temperature oxygen blocking of (Hf, Zr)O2 solid solution, crack healing and micropore sealing of SiO2-based glass, jointly enhanced the ablation resistance of C/C composites under high-energy laser and high-velocity heat flow. Under high-energy laser ablation environment (39.8 MW/m2, 60 s), the self-derived Hf-Zr-Si-O oxide scale maintained dense and continuous structure, outperforming ZrC coating (6.8 μm/s) by about twice. Under high-velocity heat flow (7.26 MW/m2, > Mach 1), the Hf-Zr-Si-O oxide scale provided 1080 s protection with low mass and linear ablation variation rates of 0.19 mg/s and 0.16 ± 0.09 μm/s, attributed to improved ablation uniformity of the Hf-Zr-Si-O oxide scale and enhanced pore filling and sintering effects.
| Original language | English |
|---|---|
| Article number | 117604 |
| Journal | Journal of the European Ceramic Society |
| Volume | 45 |
| Issue number | 15 |
| DOIs | |
| State | Published - Dec 2025 |
Keywords
- Ablation
- C/C composites
- Glass-UHTC
- Hf-Zr-Si-O
- Multilayer design
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