材料科学
复合材料
断裂韧性
化学气相渗透
韧性
陶瓷基复合材料
化学气相沉积
复合数
光电子学
作者
Niudong Han,Yadi Duan,Zhuhui Zhang,Yingxue Yang,Diantang Zhang
标识
DOI:10.1177/07316844231163911
摘要
This paper presents the effects of matrix and interface on the fracture toughness and progressive damage mechanisms of 2.5D woven SiC f /SiC composites. Third-generation SiC fibers were selected. 2.5D woven SiC f /SiC composites with four interfacial layers PyC, PyC/SiC, BN, BN/SiC and two matrix polycarbosilane (PCS) and liquid hyperbranched polycarbosilane with vinyl groups (VHPCS) were prepared by a combination of chemical vapour deposition (CVD), chemical vapor infiltration (CVI), and precursor infiltration pyrolysis (PIP) processes, respectively. Single edge notch bending (SENB) tests were carried out to investigate the fracture toughness. Moreover, acoustic emission (AE) and X-ray micro-computed tomography (Micro-CT) techniques were employed to analyze the progressive mechanical properties and failure mechanism. Results showed that the matrix and interface have significant effects on the fracture toughness. Moreover, 2.5D woven composites with PyC/SiC interfacial layers and VHPCS matrix have the highest fracture toughness (16.93 ± 1.20 Mpa • m 1/2 ). Furthermore, during progressive damage, the pores can influence the crack expansion path, and effectively regulate the stress concentration and increase the toughness of the composites.
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