期刊
MOLECULES
卷 26, 期 8, 页码 -出版社
MDPI
DOI: 10.3390/molecules26082388
关键词
PDC coatings; oxidation; synthetic air; water vapor
资金
- Deutscher Akademischer Austauschdienst (DAAD) grant scheme
- project Centre for Functional and Surface Functionalized Glass (CEGLASS) [313011R453]
- European Regional Development Fund
- [APVV 0014-15]
This study focuses on the oxidation behavior of ferritic stainless-steel grade AISI 441 and polymer-derived ceramic (PDC) protective coatings, showing that steel coated with specific coatings exhibits good oxidation resistance at high temperatures and in atmospheres containing water vapor, with strong adhesion properties.
This work is aimed at the development and investigation of the oxidation behavior of ferritic stainless-steel grade AISI 441 and polymer-derived ceramic (PDC) protective coatings. Double-layer coatings of a PDC bond coat below a PDC top coat with glass and ceramic passive fillers' oxidative resistance were studied at temperatures up to 1000 degrees C in a flow-through atmosphere of synthetic air and in air saturated with water vapor. Investigation of the oxide products formed at the surface of the samples in synthetic air and water vapor atmospheres, at different temperatures (900, 950, 1000 degrees C) and exposure times (24, 96 h) was carried out on both uncoated steel and steel coated with selected coatings by scanning electron microscopy (SEM) and X-Ray diffraction (XRD). The Fe, Cr2O3, TiO2, and spinel (Mn,Cr)(3)O-4 phases were identified by XRD on oxidized steel substrates in both atmospheres. In the cases of the coated samples, m- ZrO2, c- ZrO2, YAG, and crystalline phases (Ba(AlSiO4)(2)-hexacelsian, celsian) were identified. Scratch tests performed on both coating compositions revealed strong adhesion after pyrolysis as well as after oxidation tests in both atmospheres. After testing in the water vapor atmosphere, Cr ions diffused through the bond coat, but no delamination of the coatings was observed.
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