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Effects of process conditions on Young's modulus and strength of extrudate in short-fiber-reinforced polypropylene

机译:工艺条件对短纤维增强聚丙烯杨氏模量和挤出物强度的影响

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摘要

We examined the effects of process conditions on Young's modulus and tensile strength of extruded short-fiber reinforced thermoplastics. With increasing extrusion ratio and decreasing extrusion temperature, the fiber alignment increases, the mean fiber length decreases, and the mechanical properties of the matrix are improved. The orientation parameter, mean fiber length, Young's modulus, and tensile strength of the matrix are described as a function of extrusion ratio and extrusion temperature. The models proposed by Fukuda and Kawata, and Fukuda and Chou are applied to predict Young's modulus and tensile strength of the composites using orientation parameter. By comparing the predicted Young's modulus and tensile strength with experimental results, the validity of the models is examined. The prediction of Young's modulus agreed quit with the experimental results. The tensile strength of composite extruded below the melting point nearly matched that of the neat matrix. There is no the strengthening effect of the fiber since the angle between fracture surface and fiber direction is very small.
机译:我们研究了工艺条件对挤出短纤维增强热塑性塑料的杨氏模量和拉伸强度的影响。随着挤出比的增加和挤出温度的降低,纤维排列增加,平均纤维长度减少,并且基体的机械性能得到改善。基体的取向参数,平均纤维长度,杨氏模量和拉伸强度描述为挤出比和挤出温度的函数。将Fukuda和Kawata以及Fukuda和Chou提出的模型用于使用取向参数预测复合材料的杨氏模量和拉伸强度。通过将预测的杨氏模量和拉伸强度与实验结果进行比较,检验了模型的有效性。杨氏模量的预测与实验结果吻合。在熔点以下挤出的复合材料的拉伸强度几乎与纯基质的拉伸强度相匹配。由于断裂表面和纤维方向之间的角度很小,因此没有纤维的增强作用。

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