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Multi-scale characterization and modelling of the transverse compression response of unidirectional carbon fiber reinforced epoxy

机译:单向碳纤维增强环氧树脂的横向压缩响应的多尺度表征与建模

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Thick unidirectional fiber reinforced RTM6 epoxy resin specimens were processed by resin transfer molding and tested in transverse compression. Homogenized response from micromechanical analyses on representative volume elements, using a constitutive model for the matrix identified and validated on bulk RTM6 specimens, were assessed towards the experimental results. Large discrepancies were observed in terms of failure initiation and non-linearity in the stress-strain response. Regarding the interfaces, the use of frictional cohesive elements greatly enhanced the damage tolerance of the RVEs to interface damage. Regarding the matrix behavior, in situ tests on UD specimens and microscale digital image correlation highlighted significant gaps between the numerical and experimental strain fields. Excessive strain localization in the simulations is believed to be the main reason for these differences. This study raises fundamental questions on the degree of confidence that can be granted to constitutive models validated at the macroscale to predict strain field at the microscale.
机译:厚的单向纤维增强RTM6环氧树脂样品通过树脂传递模塑加工并在横向压缩下进行测试。通过对大体积RTM6标本进行识别和验证的矩阵的本构模型,对代表体积元素的微机械分析进行了均质化响应,以评估实验结果。在失效起始和应力-应变响应的非线性方面观察到很大的差异。关于界面,摩擦内聚元件的使用极大地提高了RVE对界面损伤的损伤耐受性。关于基体的行为,对UD样品的原位测试和微尺度数字图像的相关性突出了数值应变场和实验应变场之间的巨大差距。在模拟中过度的应变局部化被认为是造成这些差异的主要原因。这项研究提出了关于可以赋予宏观尺度上验证的本构模型以预测微观尺度应变场的置信度的基本问题。

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