Abstract
This study fabricated (Ti0.2Zr0.2Hf0.2Nb0.2Ta0.2)B2-SiC multi-phase ceramics by tailoring the initial carbon content (5–20 wt%) to systematically elucidate the decisive influence of phase ratio on ultra-high-temperature ablation behavior. High-HEB systems (S1-S2), despite forming a (Zr,Hf)O2-A6B2O17 nano-twinned skeleton, exhibited aggravated porosity after 120 s due to an insufficient SiO2 glass phase. Excessive SiC (S4) degraded performance owing to an over-thick glass layer and t→m phase transformation cracks in (Zr,Hf)O2 induced by Ti depletion of (Zr,Hf)TiO4. In contrast, the optimized three-phase composition (S3, HEB:SiC:Si ≈ 4:5:1) constructed a triple-layer "skeleton–sealing–pinning" architecture, consisting of a surface (Zr,Hf)O2 layer for erosion resistance, a (Zr,Hf)TiO4 interlayer blocking oxygen ingress, and A6B2O17 nano-twins pinning the molten oxide, complemented by Ti-enriched films that retarded oxidation. This synergistic structure achieved the lowest ablation rates (1.26±0.21 mg·s⁻¹, 2.00±0.23 µm·s⁻¹). This work provides quantitative guidance for the composition–structure–performance design of high-entropy thermal protection materials.
| Original language | English |
|---|---|
| Article number | 118391 |
| Journal | Journal of the European Ceramic Society |
| Volume | 46 |
| Issue number | 12 |
| DOIs | |
| State | Published - Sep 2026 |
Keywords
- (TiZrHfNbTa)B-SiC composite ceramics
- Ablation mechanism
- Carbon content regulation Morphological evolution
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