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Preparation and tensile behavior of SiCf/SiC minicomposites with (PyC/SiC)n multilayered interphases |
YANG Ping1, ZHANG Ruiqian2, LI Yue1, CHEN Zhaoke1, HE Zhongbei2, LIU Guiliang2, FU Daogui2, SUN Wei1, WANG Yalei1, XIONG Xiang1 |
1. Key Laboratory of Lightweight, High Strength Structural Materials, Powder Metallurgy Research Institute, Central South University, Changsha 410083, China; 2. Reactor Fuel and Materials Laboratory, uclear Power Institute of China, Chengdu 610213, China |
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Abstract (PyC/SiC)4 or (PyC/SiC)8 multi-layer interphases were introduced into two types of SiC fiber bundles by CVI method and further densified with SiC to obtain SiCf/SiC minicomposites. The effects of fiber types and interface types on mechanical properties and fracture mechanism of SiCf/SiC minicomposites were studied. The results show that, the densified SiCf/SiC minicomposite is a whole. In the minicomposites, a clear interface layer with an uniform thickness can be observed between fiber and matrix. The maximum tensile strength of A/(PyC/SiC)4/SiC, B/(PyC/SiC)4/SiC and A/(PyC/SiC)8/SiC minicomposites are 466, 350 and 330 MPa respectively, with the ultimate tensile strain of 0.519%, 0.219% and 0.330%, respectively. In addition, the fracture morphologies of minicomposites and the length of pull-out fiber with different types of reinforced fiber and interface are quite different, indicated a different fracture mode. The A/(PyC/SiC)4/SiC fractures in Model Ⅱ, B/(PyC/SiC)4/SiC and A/(PyC/SiC)8/SiC fracture in ModelⅠ.
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Received: 14 March 2018
Published: 19 July 2019
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