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A Multiscale Modelling Approach for Estimating the Effect of Defects in Unidirectional Carbon Fiber Reinforced Polymer Composites

机译:评估单向碳纤维增强聚合物复合材料中缺陷影响的多尺度建模方法

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摘要

A multiscale modelling approach was developed in order to estimate the effect of defects on the strength of unidirectional carbon fiber composites. The work encompasses a micromechanics approach, where the known reinforcement and matrix properties are experimentally verified and a 3D finite element model is meshed directly from micrographs. Boundary conditions for loading the micromechanical model are derived from macroscale finite element simulations of the component in question. Using a microscale model based on the actual microstructure, material parameters and load case allows realistic estimation of the effect of a defect. The modelling approach was tested with a unidirectional carbon fiber composite beam, from which the micromechanical model was created and experimentally validated. The effect of porosity was simulated using a resin-rich area in the microstructure and the results were compared to experimental work on samples containing pores.
机译:为了估计缺陷对单向碳纤维复合材料强度的影响,开发了一种多尺度建模方法。这项工作涵盖了一种微力学方法,该方法通过实验验证了已知的增强材料和基体属性,并直接从显微照片中划分出3D有限元模型。加载微机械模型的边界条件是从所讨论组件的宏观有限元模拟中得出的。使用基于实际微观结构,材料参数和载荷工况的微观模型,可以对缺陷的影响进行实际评估。使用单向碳纤维复合材料梁对建模方法进行了测试,从中创建了微机械模型并进行了实验验证。使用微结构中富含树脂的区域模拟了孔隙率的影响,并将结果与​​含孔样品的实验结果进行了比较。

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