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A comparison of the interfacial, thermal, and ablative properties between spun and filament yarn type carbon fabric/phenolic composites

机译:纺丝和长丝类型的碳纤维织物/酚醛复合材料的界面,热学和烧蚀性能的比较

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摘要

In the present paper, the interfacial, thermal, and ablative properties of phenolic composites reinforced with spun yarn type carbon fabrics (spun C/P composite) and filament yarn type carbon fabrics (filament C/P composite) heat-treated at 1100 deg C have been extensively compared. The interlaminar shear strength, crack growth rate, and fracture surface were studied to evaluate the interfacial characteristics of the composites using short-beam shear test, double cantilever beam test, and scanning electron microscopy, respectively. The thermal conductivity and the coefficient of thermal expansion were also measured in the longitudinal and transverse directions, respectively. To explore the ablative characteristics of the composites in terms of insulation index, erosion rate, and microscopic pattern of ablation, an arc plasma torch was used. The interfacial properties of the spun C/P composite are significantly greater than those of the filament C/P composite, with qualitative support of fracture surface observations. It has been investigated that the presence of protruded fibers in the phenolic matrix of the spun C/P composite may play an important role in enhancing the properties due to a fiber bridging effect. The longitudinal thermal conductivity of the spun C/P composite is about 7 percent lower than that of the filament C/P counterpart. It has been found from the ablation test using arc plasma torch flame that the erosion rate is 14 percent higher than that of the filament C/P counterpart. Consequently, all the experimental results suggest that use of spun yarn type carbon fabrics heat-treated at low carbonization temperature as reinforcement in a phenolic composite may significantly contribute to improving the interfacial, thermal, and ablative properties of C/P composites.
机译:在本文中,在1100℃热处理的短纤纱型碳纤维织物(纺丝C / P复合材料)和长纤纱型碳纤维织物(长丝C / P复合材料)增强的酚醛复合材料的界面,热和烧蚀性能已经进行了广泛的比较。分别通过短梁剪切试验,双悬臂梁试验和扫描电子显微镜研究了层间剪切强度,裂纹扩展速率和断裂表面,以评估复合材料的界面特性。还分别在纵向和横向上测量热导率和热膨胀系数。为了研究复合材料在绝缘指数,腐蚀速率和烧蚀微观模式方面的烧蚀特性,使用了电弧等离子炬。 C / P纺丝复合材料的界面特性明显大于C / P丝复合材料的界面特性,从质量上支持了断裂表面的观察。已经研究出,在纺丝的C / P复合材料的酚醛基体中存在突出的纤维可能由于纤维桥接效应而在增强性能方面起重要作用。纺制的C / P复合材料的纵向导热率比C / P细丝的纵向导热率低约7%。从使用电弧等离子体炬火焰的烧蚀测试中发现,腐蚀速率比灯丝C / P的腐蚀速率高14%。因此,所有实验结果表明,在低碳化温度下进行热处理的短纤纱型碳纤维织物作为酚醛复合材料的增强材料,可能会极大地改善C / P复合材料的界面,热和烧蚀性能。

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