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An extended layerwise spectral finite element framework for delamination growth simulation in laminated composite strips

机译:用于层压复合条带分层生长模拟的扩展层光谱有限元框架

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A computational framework is presented for the delamination propagation analysis in laminated composite strips that combines an extended high-order layerwise model anda spectral finite element with high-order spatial approximation in the plane of the structure. The extended layerwise laminate mechanics approximate the through-thickness fields using Hermite cubic splines, while the discontinuities in displacement induced by a delamination crack are treated as generalized damage degrees of freedom (DOFs). The layerwise mechanics are integrated into a novel spectral strip finite element, which involves integration points collocated with the nodes, thus providing accurate nodal predictions of the interlaminar stresses on the interface and ahead of the delamination crack tip. Strain energy release rate is predicted by adapting the VCCT method to rely exclusively on the damage DOFs. Finally, an iterative solution method is developed that takes advantage of the damaged DOFs to quickly predict the crack propagation without remeshing. The proposed numerical scheme is applied to mode I, II and mixed-mode delamination fracture problems and is validated vs. reference literature solutions, experimental results and standard 2D plane-strain FE models. The numerical results ultimately illustrate the capacity of the present method to provide accurate predictions with moderately coarse meshes and high computational speed.
机译:介绍层压复合条带中的分层传播分析的计算框架,其与结构平面中的高阶空间近似相结合了延长的高阶层模型和A光谱有限元。延伸的层压板机械机械近似使用Hermite立方样条的贯穿厚度场,而被分层裂缝引起的位移的不连续性被视为通常损伤自由度(DOF)。层状机械师被集成到新颖的光谱条有限元件中,该有限元件涉及与节点并置的集成点,从而提供对界面上的层间应力的准确节点预测,并在分层裂纹尖端之前。通过调整VCCT方法依赖于损伤DOF来预测应变能释放速率。最后,开发了一种迭代解决方法,其利用损坏的DOF来快速预测裂缝传播而不会倒闭。所提出的数值方案应用于模式I,II和混合模式分层骨折问题,并验证了参考文献解决方案,实验结果和标准2D平面 - 菌株Fe模型。数值结果最终示出了本方法以具有中等粗网格和高计算速度提供精确预测的方法的容量。

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