TY - JOUR
T1 - Thermal Protection Behavior of Coated C/C-SiC-TiC Composites Under Simulated Dynamic Combustion Environment at 1700°C
AU - Huang, Shiwei
AU - Li, Hejun
AU - Guo, Lingxiang
AU - Ou, Hongkang
AU - Zhang, Shuo
AU - Wu, Keke
AU - Zhang, Yuyu
AU - Zhang, Xuemeng
AU - Fan, Kaifei
AU - Huang, Qizhong
AU - Hu, Dou
AU - Xu, Yang
AU - Sun, Jia
N1 - Publisher Copyright:
© 2026 The American Ceramic Society.
PY - 2026/2
Y1 - 2026/2
N2 - With increasing propulsion ratios in next-generation aeroengines, surface temperatures of turbine blade leading edge have reached 1700°C even after active cooling, making long-term thermal protection systems a critical bottleneck for aeroengine advancements. The carbon/carbon (C/C) composites with excellent high-temperature performance present more promising development prospects. However, their viability for aeroengine application lacks experimental verification. In this work, the SiC/TiC ceramic derived from a single-source precursor was incorporated into C/C composites via precursor infiltration and pyrolysis. A (Zr-Ti)C-SiC-Si/SiC-Si double-layered coating was subsequently prepared on the C/C-SiC-TiC composites through slurry dipping-carbonization and gaseous silicon infiltration. Oxidative ablation behavior of co-prepared sample was evaluated under a 1700°C oxyacetylene flame for 2400 s, revealing a superior long-term ablation resistant property with the lowest linear ablation rate of 0.763 µm/s. A (Zr, Ti)O2 oxide skeleton and SiO2 healing phase made a joint contribution as an effective oxygen and thermal barrier during initial ablation. Prolonged ablation time led to SiO2 depletion and (Zr, Ti)O2 skeleton erosion by oxyacetylene flame, causing coating failure, whereafter the modified substrate provided the effective protection. Thus, dense ZrTiO4 phase, TiO2, and SiO2 healing phase were formed, which can seal the porous surface of the oxide layer, further enhancing ablation resistance. This work affirms that synergistic matrix and coating modification is an effective strategy to significantly improve the long-term ablation resistance of C/C composites in simulated dynamic aeroengine environment.
AB - With increasing propulsion ratios in next-generation aeroengines, surface temperatures of turbine blade leading edge have reached 1700°C even after active cooling, making long-term thermal protection systems a critical bottleneck for aeroengine advancements. The carbon/carbon (C/C) composites with excellent high-temperature performance present more promising development prospects. However, their viability for aeroengine application lacks experimental verification. In this work, the SiC/TiC ceramic derived from a single-source precursor was incorporated into C/C composites via precursor infiltration and pyrolysis. A (Zr-Ti)C-SiC-Si/SiC-Si double-layered coating was subsequently prepared on the C/C-SiC-TiC composites through slurry dipping-carbonization and gaseous silicon infiltration. Oxidative ablation behavior of co-prepared sample was evaluated under a 1700°C oxyacetylene flame for 2400 s, revealing a superior long-term ablation resistant property with the lowest linear ablation rate of 0.763 µm/s. A (Zr, Ti)O2 oxide skeleton and SiO2 healing phase made a joint contribution as an effective oxygen and thermal barrier during initial ablation. Prolonged ablation time led to SiO2 depletion and (Zr, Ti)O2 skeleton erosion by oxyacetylene flame, causing coating failure, whereafter the modified substrate provided the effective protection. Thus, dense ZrTiO4 phase, TiO2, and SiO2 healing phase were formed, which can seal the porous surface of the oxide layer, further enhancing ablation resistance. This work affirms that synergistic matrix and coating modification is an effective strategy to significantly improve the long-term ablation resistance of C/C composites in simulated dynamic aeroengine environment.
KW - C/C composites
KW - ablation resistance
KW - ceramic coating
KW - polymer-derived ceramic
KW - precursor infiltration pyrolysis
UR - https://www.scopus.com/pages/publications/105028954102
U2 - 10.1111/jace.70536
DO - 10.1111/jace.70536
M3 - 文章
AN - SCOPUS:105028954102
SN - 0002-7820
VL - 109
JO - Journal of the American Ceramic Society
JF - Journal of the American Ceramic Society
IS - 2
M1 - e70536
ER -