TY - JOUR
T1 - Optimizing reactive melt infiltration using compound carbon sources for SiC matrix with low-residual silicon content
AU - Shang, Jianzhao
AU - Ma, Yawen
AU - Liu, Yongsheng
AU - Chen, Jian
AU - Cao, Yejie
AU - Pan, Yu
AU - Li, Jingxin
AU - Zhang, Yunhai
AU - Liu, Yansong
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2025/12
Y1 - 2025/12
N2 - Carbon fibers-reinforced silicon carbide matrix (Cf/SiC) composites are widely used in aerospace for their high strength, ablation resistance, and oxidation resistance; however, residual Si in the SiC matrix significantly affects their performance. This study explores reactive melt infiltration using compound carbon sources to improve carbon density in the green bodies, with the objective of optimizing the phase composition, microstructure, and properties of SiC matrix. Results demonstrate that increasing carbon density leads to significant reduction in residual Si content while improving density, mechanical strength, and thermal conductivity of the SiC matrix. At an optimal carbon density of 0.86 g·cm−3, the SiC matrix achieved a residual Si content of 13.3 vol%, bulk density of 3.05 g·cm−3, flexural strength of 348.0 MPa, hardness of 25.86 GPa, and room-temperature thermal conductivity of 101 W·(m·K)−1. This research presents a simple and cost-effective approach for producing high-performance Cf/SiC composites.
AB - Carbon fibers-reinforced silicon carbide matrix (Cf/SiC) composites are widely used in aerospace for their high strength, ablation resistance, and oxidation resistance; however, residual Si in the SiC matrix significantly affects their performance. This study explores reactive melt infiltration using compound carbon sources to improve carbon density in the green bodies, with the objective of optimizing the phase composition, microstructure, and properties of SiC matrix. Results demonstrate that increasing carbon density leads to significant reduction in residual Si content while improving density, mechanical strength, and thermal conductivity of the SiC matrix. At an optimal carbon density of 0.86 g·cm−3, the SiC matrix achieved a residual Si content of 13.3 vol%, bulk density of 3.05 g·cm−3, flexural strength of 348.0 MPa, hardness of 25.86 GPa, and room-temperature thermal conductivity of 101 W·(m·K)−1. This research presents a simple and cost-effective approach for producing high-performance Cf/SiC composites.
KW - Carbon density
KW - Microstructure
KW - Reactive melt infiltration
KW - Residual-silicon content
KW - SiC matrix
UR - https://www.scopus.com/pages/publications/105010013154
U2 - 10.1016/j.jeurceramsoc.2025.117648
DO - 10.1016/j.jeurceramsoc.2025.117648
M3 - 文章
AN - SCOPUS:105010013154
SN - 0955-2219
VL - 45
JO - Journal of the European Ceramic Society
JF - Journal of the European Ceramic Society
IS - 16
M1 - 117648
ER -