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Resizing Approach to Increase the Viability of Recycled Fibre-Reinforced Composites

机译:调整提高再生纤维增强复合材料的活力的尺寸尺寸

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摘要

Most recycling methods remove the essential sizing from reinforcing fibres, and many studies indicate the importance of applying sizing on recycled fibres, a process we will denote here as resizing. Recycled fibres are not continuous, which dissociates their sizing and composite lay-up processes from virgin fibres. In this study, commercial polypropylene and polyurethane-based sizing formulations with an aminosilane coupling agent were used to resize recycled glass and carbon fibres. The impact of sizing concentration and batch process variables on the tensile properties of fibre-reinforced polypropylene and polyamide composites were investigated. Resized fibres were characterized with thermal analysis, infrared spectroscopy and electron microscopy, and the tensile properties of the composites were analysed to confirm the achievable level of performance. For glass fibres, an optimal mass fraction of sizing on the fibres was found, as an excess amount of film former has a plasticising effect. For recycled carbon fibres, the sizing had little effect on the mechanical properties but led to significant improvement of handling and post-processing properties. A comparison between experimental results and theoretical prediction using the Halpin-Tsai model showed up to 81% reinforcing efficiency for glass fibres and up to 74% for carbon fibres.
机译:大多数回收方法消除了来自增强纤维的必要尺寸,许多研究表明,在再生纤维上施加尺寸的重要性,这是我们将在此表示的过程调整大小。再循环纤维不连续,从原始纤维解离它们的尺寸和复合叠层过程。在该研究中,使用具有氨基硅烷偶联剂的商业聚丙烯和基于聚氨酯的施胶制剂来调节再循环玻璃和碳纤维。研究了施胶浓度和批量处理变量对纤维增强聚丙烯和聚酰胺复合材料的拉伸性能的影响。具有热分析,红外光谱和电子显微镜的调节纤维,分析复合材料的拉伸性能以确认可实现的性能水平。对于玻璃纤维,发现纤维上的尺寸的最佳质量分数,因为过量的薄膜前者具有增塑效果。对于再生的碳纤维,施胶对机械性能几乎没有影响,但导致了处理和后处理性能的显着改善。使用Halpin-Tsai模型的实验结果与理论预测的比较显示出玻璃纤维的增强效率高达81%,碳纤维高达74%。

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