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首页> 外文期刊>Composites Science and Technology >Comparison of the mechanical and physical properties of a carbon fibre epoxy composite manufactured by resin transfer moulding using conventional and microwave heating
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Comparison of the mechanical and physical properties of a carbon fibre epoxy composite manufactured by resin transfer moulding using conventional and microwave heating

机译:使用常规加热和微波加热通过树脂传递模塑制造的碳纤维环氧复合材料的机械和物理性能的比较

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摘要

Microwave processing holds great potential for improving current composite manufacturing techniques, substantially reducing cure cycle times, energy requirements and operational costs. In this paper, microwave heating was incorporated into the resin transfer moulding technique. Through the use of microwave heating, a 50% cure cycle time reduction was achieved. The mechanical and physical properties of the produced carbon fibre/epoxy composites were compared to those manufactured by conventional resin transfer moulding. Mechanical testing showed similar values of flexural moduli and flexural strength for the two types of composites after normalisation of the corresponding data to a common fibre volume fraction. A 9% increase of the interlaminar shear strength (ILSS) was observed for the microwave cured composites. This enhancement in ILSS is attributed to a lowering of resin viscosity in the initial stage of the curing process, which was also confirmed via scanning electron microscopy by means of improved fibre wetting and less fibre pull-out. Furthermore, both types of composites yielded minimal void content ( < 2%). Dynamic mechanical thermal analysis revealed comparable glass transition temperatures for composites produced by both methods. A 15 ℃ shift in the position of the P-transition peak was observed between thermally and microwave cured composites, suggesting an alteration in the cross-linking path followed.
机译:微波处理在改进当前的复合材料制造技术,显着减少固化周期时间,能源需求和运营成本方面具有巨大潜力。在本文中,微波加热被纳入树脂传递模塑技术中。通过使用微波加热,固化周期缩短了50%。将所生产的碳纤维/环氧树脂复合材料的机械和物理性能与通过常规树脂传递模塑制造的那些进行了比较。机械测试显示,在将相应数据归一化为共同的纤维体积分数后,两种复合材料的弯曲模量和弯曲强度值相似。微波固化的复合材料的层间剪切强度(ILSS)提高了9%。 ILSS的这种提高归因于固化过程初期树脂粘度的降低,这也通过扫描电子显微镜通过改善纤维润湿性和减少纤维拉出而得到证实。此外,两种类型的复合材料均产生最小的空隙率(<2%)。动态机械热分析表明,两种方法生产的复合材料的玻璃化转变温度相当。在热固化和微波固化的复合材料之间观察到P跃迁峰的位置发生了15℃的变化,表明随后的交联路径发生了变化。

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