TY - JOUR
T1 - Gradient transition and solution strengthening mechanisms in SiCf/SiC composites joints brazed with medium-entropy alloy filler
AU - Zhang, Yu
AU - Guo, Wei
AU - Dong, Jiapeng
AU - Mei, Han
AU - Shao, Tianwei
AU - Xu, Datao
AU - Zhu, Ying
AU - Zhang, Hongqiang
N1 - Publisher Copyright:
© 2026 Elsevier Inc.
PY - 2026/4
Y1 - 2026/4
N2 - A Ti-Ni-Nb-Zr medium-entropy alloy filler was developed to achieve a uniform microstructure and effective stress transition in the SiCf/SiC composites brazed joints. Composition gradients of Ti, Nb, and Ni across the asymmetric interface promoted the formation of a thermal-expansion transition structure, while the solid-solution strengthening contribution of Zr was clarified. A multiscale architecture integrating solution strengthening and stress transition was constructed, enabling synergistic enhancement through thermal-expansion mismatch mitigation and grain-scale stress accommodation. The gradient transition mechanism at the SiCf/SiC composites asymmetric interface was elucidated by correlating NbC nucleation-growth-induced stress concentration, high-entropy solid solution effect in Ti-Ni-Nb-Zr, and the crystallographic matching between TiSi₂ and γ-(Ni, Cr, Fe) phases. Benefiting from the coupled strengthening mechanisms, the joint strength increased by nearly 300%, with fracture initiating in the interfacial reaction zone and exhibiting a cross-regional mixed mode. This work provides new mechanistic insight into interfacial design for carbon-based ceramic composites and establishes a scientific basis for the high-temperature brazing of advanced ceramic-metal systems.
AB - A Ti-Ni-Nb-Zr medium-entropy alloy filler was developed to achieve a uniform microstructure and effective stress transition in the SiCf/SiC composites brazed joints. Composition gradients of Ti, Nb, and Ni across the asymmetric interface promoted the formation of a thermal-expansion transition structure, while the solid-solution strengthening contribution of Zr was clarified. A multiscale architecture integrating solution strengthening and stress transition was constructed, enabling synergistic enhancement through thermal-expansion mismatch mitigation and grain-scale stress accommodation. The gradient transition mechanism at the SiCf/SiC composites asymmetric interface was elucidated by correlating NbC nucleation-growth-induced stress concentration, high-entropy solid solution effect in Ti-Ni-Nb-Zr, and the crystallographic matching between TiSi₂ and γ-(Ni, Cr, Fe) phases. Benefiting from the coupled strengthening mechanisms, the joint strength increased by nearly 300%, with fracture initiating in the interfacial reaction zone and exhibiting a cross-regional mixed mode. This work provides new mechanistic insight into interfacial design for carbon-based ceramic composites and establishes a scientific basis for the high-temperature brazing of advanced ceramic-metal systems.
KW - Asymmetrical interface
KW - Brazing
KW - Medium-entropy filler
KW - Microstructure
KW - SiC/SiC composites
UR - https://www.scopus.com/pages/publications/105030118440
U2 - 10.1016/j.matchar.2026.116161
DO - 10.1016/j.matchar.2026.116161
M3 - 文章
AN - SCOPUS:105030118440
SN - 1044-5803
VL - 234
JO - Materials Characterization
JF - Materials Characterization
M1 - 116161
ER -