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Local Anisotropy and Elastic Properties in a Short Glass Fibre Reinforced Polymer Composite

机译:短玻璃纤维增​​强聚合物复合材料的局部各向异性和弹性

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摘要

In short glass fibre reinforced polymers parts obtained by injection moulding, processing conditions produce complex orientation patterns that influence the mechanical properties of the component. In this work, the problem of whether a morphological description can be predictive of the elastic behaviour of these materials is addressed, with particular reference to the shell and core zones identified in a PA6-GF 30 sample. Morphological parameters considered include fibre volume fraction, Mean Intercept Length (MIL) fabric tensor eigenvalues and principal directions. Apparent elastic moduli values in different sites within the sample were computed by simulations using a numerical model based on the Cell Method. Both morphological and numerical methods were able to capture the principal directions of anisotropy and the differences between shell and core and among the volumes of interest within each region. Even if the fabric tensor, normalised, eigenvalues did not show a significant correlation to the apparent elastic moduli, approximately 92% of stiffness components variance could be accounted for by changes in MIL eigenvalues once normalised values were used for elastic moduli as well.
机译:在通过注射成型获得的短玻璃纤维增​​强聚合物零件中,加工条件会产生复杂的取向图案,从而影响组件的机械性能。在这项工作中,解决了形态描述是否可以预测这些材料的弹性行为的问题,特别是参考了PA6-GF 30样品中确定的壳和芯区域。考虑的形态学参数包括纤维体积分数,平均截距长度(MIL)织物张量特征值和主要方向。使用基于Cell方法的数值模型,通过模拟来计算样品中不同部位的表观弹性模量值。形态学和数值方法都能够捕获各向异性的主要方向以及壳与核之间以及每个区域内感兴趣体积之间的差异。即使织物张量标准化后的特征值与表观弹性模量没有显示出显着相关性,一旦标准化值也用于弹性模量,MIL特征值的变化也可以解释大约92%的刚度分量方差。

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