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Mechanical Properties and Microstructural Characteristics of Carbon Fiber Reinforced Silicon Carbide Matrix Composites by Chemical Vapor Infiltration

机译:化学气相渗透法制备碳纤维增强碳化硅基复合材料的力学性能和微观结构特征

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摘要

Three dimensional carbon/silicon carbide composites were prepared by chemical vapor infiltration, and the microstructure and the mechanical properties were investigated. For the composites (C/SiC) with no pyrolytic carbon interfacial layer, the mechanical properties (flexural strength, flexural elastic modules, shear strength, and fracture toughness) increase with the density of the composites. High density (p=2.1 g.cm-3) C/SiC composites exhibit high fracture toughness ( 16.5 MPa.m~1/2 ) but brittle fracture behavior because of strong bonding between fiber/matrix. Low density composites show non-catastrophic failure mode with long bundle pull-out. The composites (C/PyC/SiC) with pyrolytic carbon interfacial layer exhibit good mechanical properties and a typical failure behavior. Microstructural observations reveal that the tortuosity and bottleneck effect of the pores are two key issues which hinder the densification of composites. .
机译:通过化学气相渗透法制备了三维碳/碳化硅复合材料,研究了其微观结构和力学性能。对于不具有热解碳界面层的复合材料(C / SiC),其机械性能(抗弯强度,挠曲弹性模量,剪切强度和断裂韧性)随复合材料的密度而增加。高密度(p = 2.1 g.cm-3)C / SiC复合材料具有较高的断裂韧性(16.5 MPa.m〜1/2),但由于纤维/基体之间的牢固结合而具有脆性断裂行为。低密度复合材料表现出非灾难性的破坏模式,并具有长的拉出束。具有热解碳界面层的复合材料(C / PyC / SiC)具有良好的机械性能和典型的失效行为。微观结构观察表明,孔的曲折和瓶颈效应是阻碍复合材料致密化的两个关键问题。 。

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