Wen Hairun, Zhang Wei, Deng Zongyi, Yang Xueyuan, Huang Wenchao
School of Materials Science and Engineering, Wuhan University of Technology, Wuhan 430070, China.
Hubei Longzhong Laboratory, Wuhan University of Technology Xiangyang Demonstration Zone, Xiangyang 441000, China.
Polymers (Basel). 2025 May 20;17(10):1412. doi: 10.3390/polym17101412.
Thermal protection materials with excellent performance are critical for hypersonic vehicles. Carbon fiber/phenolic resin composites (C/Ph) have been widely used as thermal protection materials due to their high specific strength and ease of processing. However, oxidative failure limits the extensive applications of C/Ph in harsh environments. In this paper, a novel hafnium carbide (HfC) and boron carbide (BC)-modified C/Ph was fabricated via an impregnating and compression molding route. The synergistic effect of HfC and BC on the thermal stability, flexural strength, microstructure, and phase evolution of the ceramizable composite was studied. The resulting ceramizable composites exhibited excellent resistance to oxidative corrosion and ablation behavior. The residual yield at 1400 °C and the flexural strength after heat treatment at 1600 °C for 20 min were 46% and 54.65 MPa, respectively, with an increase of 79.59% in flexural strength compared to that of the composites without ceramizable fillers. The linear ablation rate (LAR) and mass ablation rate (MAR) under a heat flux density of 4.2 MW/m for the 20 s were as low as -8.33 × 10 mm/s and 3.08 × 10 g/s. The ablation mechanism was further revealed. A dense B-C-N-O-Hf ceramic layer was constructed in situ as an efficient thermal protection barrier, significantly reducing the corrosion of the carbon fibers.
具有优异性能的热防护材料对高超音速飞行器至关重要。碳纤维/酚醛树脂复合材料(C/Ph)因其高比强度和易于加工而被广泛用作热防护材料。然而,氧化失效限制了C/Ph在恶劣环境中的广泛应用。本文通过浸渍和模压成型工艺制备了一种新型的碳化铪(HfC)和碳化硼(BC)改性的C/Ph。研究了HfC和BC对可陶瓷化复合材料的热稳定性、弯曲强度、微观结构和相演变的协同作用。所得的可陶瓷化复合材料表现出优异的抗氧化腐蚀和烧蚀行为。1400℃时的残余产率和1600℃热处理20分钟后的弯曲强度分别为46%和54.65MPa,与不含可陶瓷化填料的复合材料相比,弯曲强度提高了79.59%。在4.2MW/m的热流密度下20s的线性烧蚀率(LAR)和质量烧蚀率(MAR)分别低至-8.33×10mm/s和3.08×10g/s。进一步揭示了烧蚀机理。原位构建了致密的B-C-N-O-Hf陶瓷层作为有效的热防护屏障,显著减少了碳纤维的腐蚀。