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Exact solutions for the macro-, meso- and micro-scale analysis of composite laminates and sandwich structures

机译:复合层压板和三明治结构的宏观,中间和微观分析的精确解决方案

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The present work proposes a closed-form solution based on refined beam theories for the static analysis of fiber-reinforced composite and sandwich beams under simply supported boundary conditions. The higher-order beam models are developed by employing Carrera Unified Formulation, which uses Lagrange-polynomials expansions to approximate the kinematic field over the cross section. The proposed methodology allows to carry out analysis of composite structure analysis through a single formulation in global-local sense, i.e. homogenized laminates at a global scale and fiber-matrix constituents at a local scale, leading to component-wise analysis. Therefore, three-dimensional stress/displacement fields at different scales can be successfully detected by increasing the order of Lagrange polynomials opportunely. The governing equations are derived in a strong-form and solved in a Navier-type sense. Three benchmark numerical assessments are carried out on a single-layer transversely isotropic beam, a cross-ply laminate [ 0 ° / 90 ° / 0 ° ] beam and a sandwich beam. The results show that accurate displacement and stress values can be obtained in different parts of the structure with lower computational cost in comparison with traditional, enhanced as well as three-dimensional finite element methods. Besides, this study may serve as benchmarks for future assessments in this field.
机译:本工作提出了一种基于精制光束理论的封闭式解决方案,用于在简单地支持的边界条件下的纤维增强复合材料和夹层梁的静态分析。高阶波束模型是通过采用卡拉统一配方开发的,该配方使用拉格朗日多项式扩张来近似于横截面上的运动场。所提出的方法允许通过全球局部易感中的单一制剂进行复合结构分析的分析,即全球规模和纤维 - 基质成分以局部规模均质化层压物,导致组分显着分析。因此,可以通过机会增加拉格朗日多项式的顺序来成功检测不同尺度的三维应力/位移场。控制方程以强大的形式推导,并以Navier型意义解决。三个基准数值评估在单层横向各向同性光束上进行,交叉层层压梁和夹层光束。结果表明,与传统,增强的以及三维有限元方法相比,在结构的不同部位中可以在结构的不同部分中获得精确的位移和应力值。此外,该研究可以作为该领域未来评估的基准。

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