Abstract
To elucidate the respective roles of TaC and HfC constituents within Ta1-xHfxC solid solutions during ablation, C/C-TaC-SiC (CTS), C/C-HfC-SiC (CHS), and C/C-Ta1-xHfxC-SiC (CTHS) composites were fabricated via chemical liquid vapor deposition. After exposure to an oxyacetylene torch with a heat flux of 4.18 MW/m2 for 100 s, the phase composition, microstructure, and ablation behavior were analyzed. The results show that CTHS has the best ablation resistance, indicated by the lowest mass ablation rate (0.09 mg/s) and linear ablation rate (0.58 μm/s). During ablation, the solid skeleton composed of HfO2 and Hf6Ta2O17 effectively pins the highly mobile molten phase, suppressing its migration and loss. Simultaneously, the abundant molten phase formed by SiO2, Ta2O5, and partially molten Hf6Ta2O17 fills the pores and voids within the solid skeleton to enhance the oxide layer’s compactness. The combined mechanism provides enhanced protection for CTHS in the harsh oxyacetylene torch environment.
| Original language | English |
|---|---|
| Article number | 118577 |
| Journal | Journal of the European Ceramic Society |
| Volume | 46 |
| Issue number | 15 |
| DOIs | |
| State | Published - Dec 2026 |
Keywords
- Ablation behavior
- Carbon/carbon composites
- Chemical liquid vapor deposition
- TaHfC solid solution
- UHTCs
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