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Fracture Toughness of Discontinuous Long Glass Fiber Reinforced Polypropylene:An Approach Based on a Numerical Prediction of Fiber Orientation in Injection Molding

机译:间断长玻璃纤维增​​强聚丙烯的断裂韧性:一种基于纤维取向数值预测的注塑成型方法

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The fracture toughness of discontinuous long glass fiber reinforced injection-molded polypropylene has been characterized by using the microstructural efficiency concept in combination with a numerical prediction of the fiber orientation during injection molding.The latter was performed by using the SIGMASOFT commercial software.In a three-dimensional numerical scheme,input data such as fiber volume fractions,shear viscosity and mean fiber aspect ratio have been used in order to perform the mold filling analysis.The resulted local fiber orientation parameters for injection molded square plates of long glass fiber reinforced polypropylene allowed to calculate the local fracture toughness with microstructural efficiency concept.The latter were compared with the experimental toughness values obtained by the use of compact tension test specimens.The good correlation between the calculated fracture toughness data and the measured ones shows that a fiber orientation prediction by the SIGMASOFT finite element computer code can be used in combination with the microstructural efficiency concept for the determination of local fracture toughness values in injection molded long glass fiber reinforced thermoplastics.The combined approach opens good opportunities for optimization of a thermoplastic workpiece in its design with respect to local fracture resistance.This will enable the material performance levels to be significantly extended,with consequent increases in engineering applicability.
机译:通过使用微观结构效率概念,结合注塑过程中纤维取向的数值预测,表征了不连续的长玻璃纤维增​​强聚丙烯的断裂韧性,后者是使用SIGMASOFT商业软件进行的。维数值方案,使用了诸如纤维体积分数,剪切粘度和平均纤维长径比之类的输入数据来进行模具填充分析。所得到的长玻璃纤维增​​强聚丙烯注射成型方板的局部纤维取向参数允许用微观结构效率概念计算局部断裂韧度,将其与使用紧凑拉伸试样获得的实验韧度值进行比较,计算的断裂韧度数据与实测断裂强度数据之间的良好相关性表明,通过SIGMASO FT有限元计算机代码可与微结构效率概念结合使用,以确定注射成型的长玻璃纤维增​​强热塑性塑料中的局部断裂韧性值,这种结合的方法为优化热塑性塑料工件的设计提供了良好的机会局部抗断裂性。这将使材料的性能水平得到显着扩展,从而提高工程适用性。

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