Mechanism of interface changes of Al2O3-Yb2Si2O7/SiC coating for C/C composite under water-oxygen environment at 1500 °C

Xiaohong Shi, Yongxiang Sun, Jiaming Jiang, Xutong Ti, Wei Li, Fan Jiao, Hejun Li

Research output: Contribution to journalArticlepeer-review

Abstract

To solve the corrosion issues of C/C composites in water vapor and oxygen environment at ultra-high temperatures, Al2O3-Yb2Si2O7/SiC coating (AYSC) was developed using a combination of the supersonic atmospheric plasma spraying and pack cementation methods. The pinning structure at the interfaces provides strong adhesion between SiC inner coating and Al2O3-Yb2Si2O7 (AY) outer coating, as well as between the coating and C/C composite substrate. After the corrosion assessment in a 90 % H2O-10 % O2 environment at 1500 °C, Al2O3-Yb2Si2O7/SiC coating demonstrated effective protection for the C/C composite for 120 h with a weight increase of 0.68 %. The formation of the new phase, Yb3Al5O12, under water-oxygen condition was the key to the excellent anti-corrosion performance. A thermal growth oxide (TGO) layer, composed of SiO2, formed at the interface between Al2O3-Yb2Si2O7 coating and SiC coating, with its thickness increasing over time due to prolonged corrosion exposure. The accumulation of thermal stress, arising from the differing thermal expansion coefficients of the TGO and the coating, could ultimately lead to coating cracking, thereby diminishing the protective capability of the Al2O3-Yb2Si2O7/SiC coating.

Original languageEnglish
Article number102221
JournalComposites Communications
Volume53
DOIs
StatePublished - Jan 2025

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