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Computationally efficient beam elements for accurate stresses in sandwich laminates and laminated composites with delaminations

机译:计算有效的梁单元,可在夹层层压板和层状层压复合材料中准确施加应力

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摘要

Abstract Laminated composites are prone to delamination failure due to the lack of reinforcement through the thickness. Therefore, during the design process the initiation and propagation of delaminations should be accounted for as early as possible. This paper presents computationally efficient nine degree-of-freedom (dof) and eight-dof shear locking-free beam elements using the mixed form of the refined zigzag theory (RZT ( m ) ). The corresponding nine-dof and eight-dof elements use the anisoparametric and constrained anisoparametric interpolation schemes, respectively, to eliminate shear locking in slender beams. The advantage of the present element over previous RZT beam elements is that no post-processing is required to accurately model the transverse shear stress while maintaining the computational efficiency of a low-order beam element. Comparisons with high-fidelity finite element models and three-dimensional elasticity solutions show that the elements can robustly and accurately predict the displacement field, axial stress and transverse shear stress through the thickness of a sandwich beam or a composite laminate with an embedded delamination. In fact, the accuracy and computational efficiency of predicting stresses in laminates with embedded delaminations make the present elements attractive choices for RZT-based delamination initiation and propagation methodologies available in the literature.
机译:摘要层压复合材料由于缺乏贯穿厚度的增强而易于分层失败。因此,在设计过程中,应尽早考虑分层的引发和传播。本文使用改进的之字形理论(RZT(m))的混合形式,给出了计算效率高的九个自由度(dof)和八个dof无剪切锁定的梁单元。相应的9dof和8dof元素分别使用等参和约束等参插值方案,以消除细长梁中的剪切锁定。本单元相对于以前的RZT梁单元的优势在于,无需进行后处理即可准确地对横向剪应力进行建模,同时保持低阶梁单元的计算效率。与高保真有限元模型和三维弹性解的比较表明,这些单元可以通过夹层梁或具有嵌入式分层结构的复合层压板的厚度来稳健而准确地预测位移场,轴向应力和横向剪应力。实际上,预测具有嵌入式分层的层压板中的应力的准确性和计算效率使当前元素成为文献中基于RZT的分层引发和传播方法的有吸引力的选择。

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