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Strength Reduction of Unidirectional Composites Using Micromechanical Damage Analysis of Scanned Microstructure

机译:使用扫描微观结构的微机械损伤分析的单向复合材料的强度减小

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The microstructure of composites has a direct effect on the macroscale mechanical properties, local-global responses, and damage evolution. Therefore, accurate depicting and modeling of the composite’s microstructure is of great importance. Micromechanical methods usually employ an idealized repeating unit cell (RUC) in order to capture the effective properties of the composite material. For a unidirectional composite, a square array or hexagonal array are typically used to represent the microstructure where the decision on which one to choose is guided by acquired images of the fiber assemblage.While the experimental results for the average stiffness and stress-strain response of composites can be predicted with high accuracy using these idealized RUCs, the strength-prediction of such composites is far a more challenging task. Towards this goal, this study presents an extensive inquiry of the microstructure of unidirectional composite that has been made using scanning-electron-microscopy (SEM) combined with optical methods for the IM7/977-3 carbon-epoxy material system. Crucial characteristic phenomena of the microstructure imperfections, such as out-of-plan waviness of the laminae, fiber distribution, and large inter-laminae/inter-laminar resin pockets, have been identified.In addition, modeling of the accurate microstructure taken out of SEM scan has been made using the parametric high-fidelity-generalized-method-of-cells (HFGMC) micromechanical model. Using the scanned microstructure of the composite enhanced stress concentration under transverse and shear loading, especially in the matrix region between two or more close fibers. These phenomena are shown to directly affect the damage evolution at the microscale as well as the strength of the entire composite.
机译:复合材料的微观结构对Macroscale机械性能,局部全局响应和损伤演化具有直接影响。因此,复合材料的微观结构的精确描绘和建模具有重要意义。微机械方法通常采用理想化的重复单元电池(RUC),以捕获复合材料的有效性质。对于单向复合材料,方形阵列或六边形阵列通常用于表示通过获取的光纤组件的图像被引导的微观结构。虽然可以使用这些理想化的RUC来预测复合材料的平均刚度和应力 - 应变响应的实验结果,但是使用这些理想化的RUC,这种复合材料的强度预测是更具挑战性的任务。对于这一目标,该研究提出了使用扫描 - 电子 - 显微镜(SEM)与IM7 / 977-3碳 - 环氧材料系统的光学方法结合的单向复合材料的微观结构的广泛查询。已经鉴定了已经鉴定了微观结构缺陷的关键特性现象,例如薄层,纤维分布和层间/层间树脂袋的平面波动。此外,已经使用参数高保真 - 广义 - 细胞(HFGMC)微机械模型进行了SEM扫描所取出的精确微结构的建模。在横向和剪切负载下使用复合增强应力浓度的扫描微观结构,特别是在两个或更多个闭合纤维之间的基质区域中。这些现象被证明可以直接影响微观尺度的损伤演变以及整个复合材料的强度。

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