Abstract
This study investigates the ablation behavior of Y2O3-modified (Hf0.2Ta0.2Zr0.2Ti0.2Nb0.2)C high-entropy ceramics (HECs) under oxyacetylene flame at temperatures above 2100 °C. The Y2O3 content is systematically varied (5–20 vol%), and it is found that the optimal 15 vol% Y2O3 content facilitates the in-situ formation of a dense gradient oxide layer. This layer integrates refractory (Nb, Ta)2O5 and (Hf, Zr, Me)Ox skeletons with a Y-rich molten matrix, effectively suppressing oxygen penetration and reducing the volatilization of low-melting-point oxides. The sample exhibits superior ablation resistance, with linear and mass ablation rates of −12.8 ± 0.7 × 10−3 mm/s and 2.5 ± 0.2 × 10−3 g/s, respectively, outperforming unmodified HECs and other Y2O3-modified ceramics. Thermodynamic simulations reveal that Y2O3 stabilizes the oxide layer through the formation of Y-containing compounds, achieving a good balance between liquid-phase filling and refractory skeleton integrity. These findings will advance the design of rare-earth-modified HECs for ultrahigh-temperature thermal protection systems in aerospace applications.
| Original language | English |
|---|---|
| Article number | 117723 |
| Journal | Journal of the European Ceramic Society |
| Volume | 45 |
| Issue number | 16 |
| DOIs | |
| Publication status | Published - Dec 2025 |
| Externally published | Yes |
Keywords
- Ablation mechanism
- High-entropy carbide ceramics
- Oxidation behavior
- Oxyacetylene ablation
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