TY - JOUR
T1 - Interfacial mechanics and polarization behavior of structural-functional-integrated SiCf/Si3N4 composites in different fiber preform
AU - Liang, Jie
AU - Cao, Yuchen
AU - Ye, Fang
AU - Gao, Xiangyun
AU - Bi, Yichun
AU - Huang, Bo
AU - Zhang, Yi
AU - Fan, Xiaomeng
AU - Song, Qiang
N1 - Publisher Copyright:
© 2025
PY - 2026/2/10
Y1 - 2026/2/10
N2 - SiCf/Si3N4 composites are thermal structural materials for structural-functional-integrated requirements. In order to fully utilize the advantages of continuous SiC fibers as semiconductors in the regulation of dielectric properties, the whole weaving technology based on the mesoscopic scale of the fiber preform structure was proposed. In this work, three SiCf/Si3N4 composites were prepared by the CVI process using two-dimensional half (2.5D), three-dimensional four-direction (3D4X), or three-dimensional five-direction (3D5X) braided structures as preforms. First, the tensile strength of the composites was tested. By comparing with the theoretical value, it was found that there were large deviations in the three composites, which originated in the thermal mismatch between SiC fiber and Si3N4 matrix. By analyzing the microstructure, pore distribution, and interfacial shear strength of the three SiCf/Si3N4 composites, the interphase zone of 3D4X composites is more effectively protected compared to 2.5D and 3D5X composites after the CVI Si3N4 process. Surprisingly, the disruption of the interphase to form the SiCf/Si3N4 hetero-interface gives 2.5D and 3D5X composites a boosted interfacial polarization, and thus dielectric loss capability and high-temperature insensitivity of electromagnetic wave (EMW) absorption. The results of the high-temperature absorption tests showed that 3D5X composites achieve good absorbing properties in a wide temperature range of 25–900 °C.
AB - SiCf/Si3N4 composites are thermal structural materials for structural-functional-integrated requirements. In order to fully utilize the advantages of continuous SiC fibers as semiconductors in the regulation of dielectric properties, the whole weaving technology based on the mesoscopic scale of the fiber preform structure was proposed. In this work, three SiCf/Si3N4 composites were prepared by the CVI process using two-dimensional half (2.5D), three-dimensional four-direction (3D4X), or three-dimensional five-direction (3D5X) braided structures as preforms. First, the tensile strength of the composites was tested. By comparing with the theoretical value, it was found that there were large deviations in the three composites, which originated in the thermal mismatch between SiC fiber and Si3N4 matrix. By analyzing the microstructure, pore distribution, and interfacial shear strength of the three SiCf/Si3N4 composites, the interphase zone of 3D4X composites is more effectively protected compared to 2.5D and 3D5X composites after the CVI Si3N4 process. Surprisingly, the disruption of the interphase to form the SiCf/Si3N4 hetero-interface gives 2.5D and 3D5X composites a boosted interfacial polarization, and thus dielectric loss capability and high-temperature insensitivity of electromagnetic wave (EMW) absorption. The results of the high-temperature absorption tests showed that 3D5X composites achieve good absorbing properties in a wide temperature range of 25–900 °C.
KW - Electromagnetic wave absorption
KW - Fiber preform
KW - Interfacial polarization
KW - Interphase
KW - SiC/SiN composites
UR - http://www.scopus.com/inward/record.url?scp=105008221858&partnerID=8YFLogxK
U2 - 10.1016/j.jmst.2025.04.046
DO - 10.1016/j.jmst.2025.04.046
M3 - 文章
AN - SCOPUS:105008221858
SN - 1005-0302
VL - 244
SP - 231
EP - 245
JO - Journal of Materials Science and Technology
JF - Journal of Materials Science and Technology
ER -