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A mortise–tenon joint inspired interface structure design for synergistically enhancing the mechanical properties and thermal shock resistance of Cf/(HfNbTaTiZr)C–SiC composites

  • Tianzhan Shen
  • , Cuiyan Li
  • , Haibo Ouyang
  • , Mengyao He
  • , Sirui Wu
  • , Leer Bao
  • , Qiaoqiao Wang
  • , Yulei Zhang
  • , Jian Wei
  • Shaanxi University of Science and Technology
  • Xi'an University of Architecture and Technology

Research output: Contribution to journalArticlepeer-review

2 Scopus citations

Abstract

Carbon fiber-reinforced high-entropy carbide ceramics (Cf/HECs) are considered promising candidates for ultrahightemperature structural applications. The fiber–matrix interface plays a crucial role in determining the overall performance of these materials. This study proposes a novel interface design strategy inspired by the traditional Chinese mortise–tenon joint. In this design, microscale carbon spheres are deposited on the surface of carbon fibers to function as the “tenon”, while the matrix serves as the corresponding “mortise”. Furthermore, a TiC interfacial layer is introduced to improve the interfacial bonding through atomic diffusion. Owing to this distinctive interface structure, the resulting Cf/(TiZrHfNbTa)C–SiC composite exhibits excellent mechanical properties, with a flexural strength of 1053.33 MPa and a fracture toughness of 9.77 MPa·m1/2. Additionally, the composite demonstrates remarkable thermal shock resistance, with a critical thermal shock temperature difference (ΔTc) of 802 °C. It also displays superior ablation resistance, characterized by a linear ablation rate of 3.27 μm·s−1 and a mass ablation rate of 0.05 mg·s−1.

Original languageEnglish
Article number9221227
JournalJournal of Advanced Ceramics
Volume15
Issue number2
DOIs
StatePublished - Feb 2026

Keywords

  • carbon fiber
  • high-entropy carbide
  • interface design
  • mechanical properties
  • mortise–tenon joint

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