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A multiscale progressive damage analysis for laminated composite structures using the parametric HFGMC micromechanics

机译:使用参数HFGMC微力学对叠层复合结构进行多尺度渐进式损伤分析

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A nonlinear multiscale damage analysis is proposed based on the parametric High Fidelity Generalized Method of Cells (HFGMC) micromodel. Two repeating unit-cells (RUCs), square and hexagonal, for the composite microstructure are discretized into subcells which represents the fiber and matrix phases. Average traction and displacement continuities, periodicity conditions, and volumetric equilibrium are applied. The proposed modeling approach is implemented as a user material subroutine within displacement-based layered-shell FE models, where each layer can be represented with at least one RUC. The RUC through-thickness stress and stiffness contributions are eliminated in case of a failure. Two failure criteria, in conjunction with compressive strength equation, are applied to determine RUC failure. In the first, the Tsai-Wu failure criterion is used at the RUC level. The second employs the strain invariant failure theory (SIFT) within each subcell, leading to its extinction. The in-situ properties and damage parameters of the RUC are determined by calibration using axial, transverse, and shear data of unnoteched laminates. The accuracy of the proposed framework is demonstrated by a comparison with experimental results of open-hole laminates.
机译:提出了一种基于参数高保真广义细胞通用模型的非线性多尺度损伤分析方法。用于复合微结构的两个重复的单元格(RUC)(正方形和六边形)离散为代表纤维和基质相的子单元。应用平均牵引力和位移连续性,周期性条件和体积平衡。所提出的建模方法被实现为基于位移的分层壳有限元模型中的用户材料子例程,其中每一层都可以用至少一个RUC表示。发生故障时,可消除RUC的整个厚度应力和刚度影响。结合抗压强度方程式,使用两个破坏准则来确定RUC破坏。首先,在RUC级别使用Tsai-Wu失败标准。第二种方法在每个子单元格中采用了应变不变失效理论(SIFT),导致其消失。 RUC的原位特性和损伤参数是通过使用未注明层压材料的轴向,横向和剪切数据进行校准来确定的。通过与裸眼层压板的实验结果进行比较,证明了所提出框架的准确性。

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