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March 30, 2026Corrosion Communications2 citationsOpen Access

One-step gaseous silicon infiltration fabrication of matrix-coating integrated C/C-SiC-Si composites against oxidation at 1300–1700°C

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HSHuilun ShiNorthwestern Polytechnical UniversityBLBing LiuNorthwestern Polytechnical UniversityJSJingbo ShaNorthwestern Polytechnical University

Key Points

  • The aim is to improve oxidation resistance of C/C composites for high-temperature applications up to 1700 °C.
  • Developed a one-step gaseous silicon infiltration (GSI) process.
  • Modified matrix and coated surface to enhance protection.
  • Conducted oxidation testing to assess performance.
  • The composite exhibited a service life of over 502 h at 1300 °C and 1500 °C, and 149 h at 1700 °C.
  • Retained more than 54% of original flexural strength after oxidation testing.
  • Inherited a continuous anti-oxidation network that enhanced bonding strength by 31%.

Abstract

To overcome the limitations of carbon/carbon (C/C) composites in long-term applications across a wide temperature range (1300–1700 °C), an integrated oxidation protection strategy has been developed through a one-step gaseous silicon infiltration (GSI) process, incorporating matrix modification and surface coating. This process leverages the high permeability of gaseous Si to simultaneously densify the porous matrix and in situ grow a SiC-Si protection system. The resulting C/C-SiC-Si composite demonstrates a service life exceeding 502 h at 1300and 1500 °C, and 149 h at 1700 °C. Crucially, after oxidation testing, the material retains a complete load-bearing structure and maintains over 54% of its original flexural strength (196 MPa). The superior performance is attributed to the continuous anti-oxidation network. This creates a mechanically interlocked interface between the coating and substrate, increasing the bonding strength by 31%, and establishes a continuous thermal expansion coefficient gradient that effectively mitigates thermal mismatch.

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Cite This Study

Shi et al. (2026) studied this question.

synapsesocial.com/papers/69ca12d4883daed6ee095170https://doi.org/10.1016/j.corcom.2026.03.018
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