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Modeling the Stiffness of Coupled and Uncoupled Recycled Cotton Fibers Reinforced Polypropylene Composites

机译:耦合和非耦合再生棉纤维增强聚丙烯复合材料的刚度建模

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摘要

The stiffness of a composite material is mainly affected by the nature of its phases and its contents, the dispersion of the reinforcement, as well as the morphology and mean orientation of such reinforcement. In this paper, recovered dyed cotton fibers from textile industry were used as reinforcement for a polypropylene matrix. The specific dye seems to decrease the hydrophilicity of the fibers and to increase its chemical compatibility with the matrix. The results showed a linear evolution of the Young’s moduli of the composites against the reinforcement contents, although the slope of the regression line was found to be lower than that for other natural strand reinforced polypropylene composites. This was blamed on a growing difficulty to disperse the reinforcements when its content increased. The micromechanics analysis returned a value for the intrinsic Young’s modulus of the cotton fibers that doubled previously published values. The use of two different micromechanics models allowed evaluating the impact of the morphology of the fibers on the Young’s modulus of a composite.
机译:复合材料的刚度主要受其相的性质和其含量,增强材料的分散性以及这种增强材料的形态和平均取向的影响。在本文中,从纺织工业回收的染色棉纤维被用作聚丙烯基质的增强材料。特定的染料似乎会降低纤维的亲水性,并增加其与基质的化学相容性。结果表明,复合材料的杨氏模量相对于增强材料含量呈线性变化,尽管发现回归线的斜率低于其他天然绞合增强聚丙烯复合材料。这归因于当其含量增加时散布增强材料的难度越来越大。微观力学分析得出的棉纤维固有杨氏模量的值是先前公布值的两倍。使用两种不同的微力学模型可以评估纤维形态对复合材料的杨氏模量的影响。

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