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Preparation Thermal Analysis and Mechanical Properties of Basalt Fiber/Epoxy Composites

机译:玄武岩纤维/环氧复合材料的制备热分析和机械性能

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摘要

In this study, basalt fiber-reinforced polymer (BFRP) composites with epoxy matrix, 20 layers, and volume fraction of fibers = 53.66%, were prepared by a hand lay-up compression molding combined method. The fabric of the basalt fibers is in twill 2/2 weave. Through dynamic mechanical analysis (DMA), their viscoelastic behavior at elevated temperatures and in various frequencies was explored, whereas thermomechanical analysis (TMA) took part in terms of creep recovery and stress-relaxation tests. Moreover, the glass transition temperature ( ) of the BFRP composites was determined through the peak of the tanδ curves while the decomposition of the BFRP composites and basalt fibers, in air or nitrogen atmosphere, was explored through thermogravimetric analysis (TGA). The mechanical behavior of the BFRP composites was investigated by tensile and three-point bending experiments. The results showed that as the frequency is raised, the BFRP composites can achieve slightly higher while, under the same circumstances, the storage modulus curve obtains a less steep decrease in the middle transition region. Moreover, the hand lay-up compression molding hybrid technique can be characterized as efficient for the preparation of polymer matrix composites with a relatively high of over 50%. Remarkably, through the TGA experiments, the excellent thermal resistance of the basalt fibers, in the temperature range 30–900 °C, was revealed.
机译:在该研究中,通过手叠层压缩成型组合方法制备玄武岩纤维增强聚合物(BFRP)复合材料,20层和纤维体积分数= 53.66%。玄武岩纤维的织物在斜纹织物中。通过动态机械分析(DMA),探索了升高温度和各种频率的粘弹性行为,而热机械分析(TMA)参与了蠕变恢复和应力放松测试。此外,通过Tanδ曲线的峰值测定BFRP复合材料的玻璃化转变温度(),同时通过热重分析(TGA)探索了BFRP复合材料和玄武岩纤维的分解,在空气或氮气氛中。通过拉伸和三点弯曲实验研究了BFRP复合材料的力学行为。结果表明,随着频率升高,BFRP复合材料可以略高,而在同样的情况下,存储模量曲线在中间过渡区域中获得较小的陡峭减小。此外,手敷设压缩模塑杂化技术可以表征为高分子基质复合材料的效率,其具有相对较高的50%。显着地,通过TGA实验,揭示了30-900℃的温度范围内玄武岩纤维的优异热阻。

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