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◆ Journal of Advanced Ceramics2025-11-28· Materials science

An aluminum surface modification strategy for enhancing CMAS corrosion resistance of environmental barrier coatings

Lin Dong, Chen-Ze Bai, Meijun Liu, Guan‐Jun Yang, Wen-Jing Wang, Xiaofeng Zhang, Ke-Song Zhou

原始摘要(英文原文)· Original abstract
As the inlet temperature of engines increases, injected sand, volcanic ash, and dust melt to form calcium-magnesium-aluminosilicate (CMAS) glass, which subsequently adheres to the surface of ytterbium monosilicate (YbMS, Yb2SiO5) environmental barrier coatings (EBCs), posing a serious degradation threat. In this study, a novel aluminum surface modification strategy was proposed to prevent direct interaction between the coatings and CMAS, thereby enhancing the corrosion resistance. The modification confers a dual-protection mechanism: firstly, it seals exposed interconnections deposited by air plasma spraying and facilitates the in-situ formation of a dense, continuous ytterbium aluminum garnet (Yb3Al5O12, YbAG) layer, serving as the primary, non-reactive physical barrier against CMAS infiltration; secondly, it inhibits silica consumption by YbMS while releasing silica into the melt. This process increases melt viscosity, fundamentally suppressing CMAS penetration. The combined effect of these mechanisms extends coatings life by at least 10 times. Although unmodified YbMS exhibits inferior CMAS resistance compared to previous ytterbium disilicate (YbDS, Yb2Si2O7) coating, aluminum-modified YbMS demonstrates significantly enhanced resistance than modified YbDS. This performance reversal is attributed to the unique microstructure of YbMS, which favors the formation of a higher-quality, more protective YbAG layer, thereby fundamentally altering the CMAS interaction mechanism.
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