TY - JOUR
T1 - Thermal-shock-induced failure in brazed joints between SiCf/SiC composites and GH536 superalloy
T2 - Phase transition and oxygen intrusion
AU - ZHAO, Shuai
AU - WANG, Peng
AU - NAI, Xin
AU - CHEN, Haiyan
AU - LIU, Yongsheng
AU - WANG, Pengcheng
AU - SONG, Xiaoguo
AU - LI, Wenya
N1 - Publisher Copyright:
© 2025 The Author(s)
PY - 2025/7
Y1 - 2025/7
N2 - The investigation evaluated the thermal shock resistance and failure mechanisms of three brazed joints when exposed to 780 °C. During exposure, oxidation of the SiCf/SiC composite leads to the formation of SiO2. Residual oxygen will penetrate the high-entropy alloy while retaining its Face-Centered Cubic (FCC) structure. Additionally, the FCC Cr23C6 phase adjacent to the composite reacted with SiC, producing hexagonal Cr2C, compromising the ability of joint to withstand plastic deformation. Moreover, the presence of Nb (s, s) and significant MoNiSi phases induced a gradual alteration in the Coefficient of Thermal Expansion (CTE), facilitating the initiation of shear fractures from the composites towards the central region of the seam, significantly affecting the overall structural integrity and failure behavior of the joint under thermal shock conditions. With an increase in the number of thermal shocks, the shear strength of joint gradually decreases, reaching a maximum of 22.36 MPa after 30 thermal shocks, surpassing that of some joints using glass fillers.
AB - The investigation evaluated the thermal shock resistance and failure mechanisms of three brazed joints when exposed to 780 °C. During exposure, oxidation of the SiCf/SiC composite leads to the formation of SiO2. Residual oxygen will penetrate the high-entropy alloy while retaining its Face-Centered Cubic (FCC) structure. Additionally, the FCC Cr23C6 phase adjacent to the composite reacted with SiC, producing hexagonal Cr2C, compromising the ability of joint to withstand plastic deformation. Moreover, the presence of Nb (s, s) and significant MoNiSi phases induced a gradual alteration in the Coefficient of Thermal Expansion (CTE), facilitating the initiation of shear fractures from the composites towards the central region of the seam, significantly affecting the overall structural integrity and failure behavior of the joint under thermal shock conditions. With an increase in the number of thermal shocks, the shear strength of joint gradually decreases, reaching a maximum of 22.36 MPa after 30 thermal shocks, surpassing that of some joints using glass fillers.
KW - Brazing
KW - Interfacial microstructure
KW - Oxidation
KW - SiC/SiC
KW - Thermal cycling
UR - http://www.scopus.com/inward/record.url?scp=105007730054&partnerID=8YFLogxK
U2 - 10.1016/j.cja.2025.103521
DO - 10.1016/j.cja.2025.103521
M3 - 文章
AN - SCOPUS:105007730054
SN - 1000-9361
VL - 38
JO - Chinese Journal of Aeronautics
JF - Chinese Journal of Aeronautics
IS - 7
M1 - 103521
ER -