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Numerical Simulation Of Fiber Interaction In Short-Fiber Injection-Molded Composite Using Different Cavity Geometries

机译:不同腔几何形状的短纤维注塑复合材料中纤维相互作用的数值模拟

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The theoretical fiber-interaction model for calculating the fiber orientation in the injection molded short fiber/thermoplastic composite parts was proposed. The proposed model included the fiber dynamics simulation in order to obtain an equation of the global interaction coefficient and accurate estimate of the fiber interacts at all orientation states. The steps to derive the equation for this coefficient in short fiber suspension as a function of the fiber aspect ratio, volume fraction and general shear rate are delineated. Simultaneously, the high-resolution 3D X-ray computed tomography system XVA-160α was used to observe fiber distribution of short-glass-fiber-reinforced polyamide specimens using different cavity geometries. The fiber orientation tensor components are then calculated. Experimental orientation measurements of short-glass-fiber-reinforced polyamide is used to check the ability of present theory for predicting orientation. The experiments and predictions show a quantitative agreement and confirm the basic understanding of fiber orientation in injection-molded composites.
机译:提出了用于计算注塑式短纤维/热塑性复合部件中纤维取向的理论纤维相互作用模型。所提出的模型包括光纤动力学模拟,以便获得全局交互系数的等式,并准确估计光纤在所有方向状态下相互作用。作为光纤纵横比,体积分数和一般剪切速率的函数,在短纤维悬浮液中导出该系数的方程的步骤描射。同时,高分辨率3D X射线计算机断层扫描系统XVA-160α用于观察使用不同腔几何形状的短玻璃纤维增​​强聚酰胺样品的纤维分布。然后计算纤维取向张量组分。短玻璃纤维增​​强聚酰胺的实验取向测量用于检查目前理论预测定位的能力。实验和预测显示了定量协议,并确认了注塑复合材料中对纤维取向的基本理解。

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