4.7 Article

Development of SiC-ZrC-based ultra-high temperature ceramic coatings via composite method of polymer precursor pyrolysis plus gaseous reactive infiltration

期刊

SURFACE & COATINGS TECHNOLOGY
卷 431, 期 -, 页码 -

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.surfcoat.2021.127996

关键词

Polymer precursor pyrolysis; Gaseous reactive infiltration; SiC-ZrC-based coating; Ultra -high temperature ceramic; Carbon; carbon composite; Ablation

资金

  1. National Key R&D Program of China [2021YFA0715800]
  2. Science Center for Gas Turbine Project [P2021-A-IV-003-001]
  3. Innovation Talent Promotion Plan of Shaanxi Prov-ince for Science and Technology Innovation Team (China) [2020TD-003]
  4. National Natural Science Foundation of China [52061135102, 52125203]
  5. China Postdoctoral Science Foun-dation [2019M660265]

向作者/读者索取更多资源

SiC-ZrC-based composite coatings on carbon/carbon composites were prepared by pyrolysis of ZrC polymer precursor and gaseous reactive infiltration. The use of ZrSi2 for infiltration increased the UHTC content in the coatings and enhanced their ablation resistance.
SiC-ZrC-based composite coatings on carbon/carbon composites via ZrC polymer precursor pyrolysis (PPP) plus gaseous reactive infiltration (GRI) of Si or ZrSi2, separately denoted as GSIC and GZSIC, were comparatively studied to explore the feasibility and effectiveness of GRI of ZrSi2. This composite method by applying ZrSi2 or Si was proven to similarly produce dense coatings with enhanced coating/substrate interfacial bonding strength for the formed zig-zag transition layer. Furthermore, the GRI of ZrSi2 instead of Si further increased the UHTC (ZrC) content in the as-deposited coatings resulted from the reaction of infiltrated ZrSi2 and pre-introduced graphite, enhancing the ablation resistance of the coatings for carbon/carbon composites due to the formed stable Zr-rich Zr-Si-O multiphase oxide. The average mass and linear ablation rates were-0.12 mg/s and 1.56 mu m/s for GSIC and-0.3 mg/s and-0.53 mu m/s for GZSIC specimens, respectively. The average linear ablation rate of the GZSIC specimen was decreased by similar to 134% when compared to the GSIC specimen. These results further indicate that the PPP + GRI method with metal silicide MeSi2 (Me = Zr, Ti, Hf, Cr, etc.) will contribute to the optimal fabrication of dense composite coatings with controllable microstructure, adequate evenly-distributed ultra-high temperature ceramic (UHTC) phases, enhanced interfacial bonding strength and wide circumstance suitability for potential applications. The related work is ongoing in our laboratory.

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