Effect of SiC Content on the Ablation and Oxidation Behavior of ZrB2-Based Ultra High Temperature Ceramic Composites

Влияние содержания SiC на абляцию и окисление композитов на основе ZrB2 для сверхвысоких температур
Xinghong Zhang, Ping Hu, Kaixuan Gui, Shun Dong, Yang Yang
2013-04-29

SiC content (10%, 15%, 30%)ZrB2-based ultra high temperature ceramicsablation and oxidation behaviorhigh frequency plasma wind tunnel testingsurface temperature-dependent oxide evolution
The ablation and oxidation of ZrB2-based ultra high temperature ceramic (UHTC) composites containing 10%, 15% and 30% v/v SiC were tested under different heat fluxes in a high frequency plasma wind tunnel. Performance was significantly affected by the surface temperature, which was strongly dependent on the composition. Composites containing 10% SiC showed the highest surface temperature (>2300 °C) and underwent a marked degradation under both conditions. In contrast, composites with 30% SiC exhibited the lowest surface temperature (<2000 °C) and demonstrated excellent ablation resistance. The surface temperature of UHTCs in aerothermal testing was closely associated with the dynamic evolution of the surface and bulk oxide properties, especially for the change in chemical composition on the exposed surface, which was strongly dependent on the material composition and testing parameters (i.e., heat flux, enthalpy, pressure and test time), and in turn affected its oxidation performance.
1
Ablation and oxidation performance correlate with dynamic evolution of surface and bulk oxide properties, especially changes in surface chemical composition.
2
Composites with 10% SiC reached the highest surface temperatures (>2300 °C) and showed marked degradation under both tested conditions.
3
Composites with 30% SiC had the lowest surface temperatures (<2000 °C) and exhibited excellent ablation resistance.
4
Surface temperature during ablation/oxidation testing is strongly dependent on SiC content in ZrB2-based UHTC composites.
5
Testing parameters (heat flux, enthalpy, pressure, test time) interact with material composition to determine surface temperature and oxidation behavior.

ZrB2-based ultra high temperature ceramic (UHTC) composites with varying SiC content (10%, 15%, 30% v/v)

Effect of SiC content on ablation and oxidation behavior, including surface temperature evolution, surface and bulk oxide composition changes, and resultant ablation resistance under different aerothermal (plasma wind tunnel) heat-flux conditions

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2013-04-29
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Xinghong Zhang
Ping Hu
Kaixuan Gui
Shun Dong
Yang Yang
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