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Variability of flax fibre morphology and mechanical properties in injection moulded short straw flax fibre-reinforced PP composites

机译:注塑短秸秆亚麻纤维增强PP复合材料中亚麻纤维形态和力学性能的变化

摘要

The influence of compounding and injection moulding on the initial variability and morphology of short straw flax fibres is determined and the mechanical properties for the injection moulded fibre reinforced composites are measured. It is found that the composition of the straw flax, flax fibre bundles and woody parts, together with the cutting process strongly affects the initial fibre morphology and its variability. In the initial fibres, small particles as well as long fibres with large width were found. A filter was used to reject the fibres with an aspect ratio below 15 before calculating statistics because these fibres have a negligible contribution to the composite reinforcement. After processing, the initial fibre length and width decrease strongly (−38% to −66% for length and −22% to −72% for width). Also, the variability is affected resulting in a standard deviation shifted towards lower fibre lengths and widths (−55% for length and −71% for width). The improvement of mechanical properties of the flax compound compared to the pure matrix material for the injection-moulded samples is found to be similar to the results for compounds with further processed flax fibres such as scutched and hackled fibres. An increase of tensile strength by 20% was found, for stiffness the increase is in the order of 50–70%. This indicates that despite the very large variability of the initial straw flax fibres and the strong changes of the variability in each processing step, a compound is obtained with improved mechanical properties.
机译:确定了复合和注塑成型对短草亚麻纤维的初始变异性和形态的影响,并测量了注塑成型的纤维增强复合材料的机械性能。发现稻草亚麻,亚麻纤维束和木质部分的组成以及切割过程会强烈影响初始纤维形态及其变异性。在初始纤维中,发现了小颗粒以及大宽度的长纤维。在计算统计数据之前,使用过滤器排除长宽比低于15的纤维,因为这些纤维对复合材料增强材料的贡献可忽略不计。加工后,初始纤维的长度和宽度急剧下降(长度为-38%至-66%,宽度为-22%至-72%)。同样,可变性也会受到影响,导致标准偏差向较低的纤维长度和宽度偏移(长度为-55%,宽度为-71%)。与用于注射模制样品的纯基质材料相比,亚麻化合物的机械性能的改善与具有进一步加工的亚麻纤维(例如,手抓的和弓形的纤维)的化合物的结果相似。发现抗张强度提高了20%,而刚度则提高了50-70%。这表明尽管初始稻草亚麻纤维的变化很大,并且在每个加工步骤中变化很大,但仍获得了具有改善的机械性能的化合物。

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