TY - JOUR
T1 - Enhanced hydrothermal corrosion resistance in SiC/SiC joints with CaO-modified Y-Al-Si-O interlayer under PWR condition
AU - Yang, Shaobo
AU - Liu, Xian
AU - Liang, Chenxi
AU - Li, Jiali
AU - Ma, Yujie
AU - Kou, Sijie
AU - Deng, Juanli
AU - Chen, Bo
AU - Fan, Shangwu
N1 - Publisher Copyright:
© 2025 The American Ceramic Society.
PY - 2025/12
Y1 - 2025/12
N2 - The study investigated the hydrothermal corrosion behavior of Y2O3-Al2O3-SiO2 (YAS) and CaO-Y2O3-Al2O3-SiO2 (CYAS) glass interlayers in SiC/SiC composite joints under simulated pressurized water reactor (PWR) conditions and evaluated their effects on mechanical performance. The corrosion rate of the YAS joint was ∼2.7 mg/(cm2·day), primarily due to the rapid dissolution of SiO2, which triggered pitting corrosion and void formation. While the Y2Si2O7 exhibited good stability, degradation of the glass network caused the hydrolysis of Al species, forming stable AlO(OH) corrosion products. These processes severely damaged the structural integrity, reducing shear strength to ∼6 ± 2 MPa after 15 days, making it unsuitable for application. In contrast, the CYAS joint showed superior corrosion resistance, with a corrosion rate of ∼0.16 mg/(cm2·day), only 2.2% of the YAS joint. The CYAS joint maintained structural integrity and interface bonding. During corrosion, Y2Si2O7 crystals formed, while a layer of corrosion intermediates covered and eventually transformed into AlO(OH) particles. After 25 days, shear strength remained at 26 ± 2 MPa, still satisfying service requirements. The hydrothermal corrosion mechanism of YAS-based glasses basically involved the breakdown of the glass network and formation of stable products, including Y2Si2O7 and AlO(OH).
AB - The study investigated the hydrothermal corrosion behavior of Y2O3-Al2O3-SiO2 (YAS) and CaO-Y2O3-Al2O3-SiO2 (CYAS) glass interlayers in SiC/SiC composite joints under simulated pressurized water reactor (PWR) conditions and evaluated their effects on mechanical performance. The corrosion rate of the YAS joint was ∼2.7 mg/(cm2·day), primarily due to the rapid dissolution of SiO2, which triggered pitting corrosion and void formation. While the Y2Si2O7 exhibited good stability, degradation of the glass network caused the hydrolysis of Al species, forming stable AlO(OH) corrosion products. These processes severely damaged the structural integrity, reducing shear strength to ∼6 ± 2 MPa after 15 days, making it unsuitable for application. In contrast, the CYAS joint showed superior corrosion resistance, with a corrosion rate of ∼0.16 mg/(cm2·day), only 2.2% of the YAS joint. The CYAS joint maintained structural integrity and interface bonding. During corrosion, Y2Si2O7 crystals formed, while a layer of corrosion intermediates covered and eventually transformed into AlO(OH) particles. After 25 days, shear strength remained at 26 ± 2 MPa, still satisfying service requirements. The hydrothermal corrosion mechanism of YAS-based glasses basically involved the breakdown of the glass network and formation of stable products, including Y2Si2O7 and AlO(OH).
KW - SiC/SiC joining
KW - YO-AlO-SiO glass ceramic
KW - hydrothermal corrosion
KW - microstructure
KW - shear strength
UR - https://www.scopus.com/pages/publications/105012243947
U2 - 10.1111/jace.70119
DO - 10.1111/jace.70119
M3 - 文章
AN - SCOPUS:105012243947
SN - 0002-7820
VL - 108
JO - Journal of the American Ceramic Society
JF - Journal of the American Ceramic Society
IS - 12
M1 - e70119
ER -