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Eigenvalue buckling of functionally graded cylindrical shells reinforced with graphene platelets (GPL)

机译:用石墨烯薄片(GPL)增强的功能梯度圆柱壳的特征值屈曲

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This paper investigates the eigenvalue buckling of functionally graded graphene platelets (GPLs) reinforced cylindrical shells consisting of multiple layers through finite element method (FEM). The mechanical properties of the composites, including Young’s modulus, mass density and Poisson’s ratio, are determined by modified Halpin-Tsai model and rule of mixture. Parametric study is conducted to investigate the effects of the weight fraction, geometry and distribution of GPLs, number of layers, shell dimensions and existence of cutout on the buckling. The results show that apart from concentration the GPL distribution in polymer matrix significantly influences the buckling behaviors of the cylindrical structures. Larger sized GPLs with fewer graphene layers have better reinforcing effects than their counterparts with smaller surface area and more graphene layers. The distribution of stresses along the thickness of the shells suggests the increase of the number of layers significantly decreases the stress gradient between two neighboring layers, which is beneficial to reduce the risk of delamination. Moreover, the effects of cutout imperfection on the buckling behaviors of the cylindrical shells are comprehensively investigated.
机译:本文通过有限元方法(FEM)研究了功能梯度石墨烯薄片(GPLs)增强的多层圆柱壳的特征值屈曲。复合材料的机械性能(包括杨氏模量,质量密度和泊松比)由改进的Halpin-Tsai模型和混合规则确定。进行参数研究以研究重量分数,GPL的几何形状和分布,层数,壳体尺寸以及切口对屈曲的影响。结果表明,除浓度外,聚合物基质中的GPL分布还显着影响圆柱结构的屈曲行为。具有较少石墨烯层的较大尺寸GPL与具有较小表面积和较多石墨烯层的同类产品相比,具有更好的增强效果。应力沿着壳体厚度的分布表明,层数的增加显着降低了两个相邻层之间的应力梯度,这有利于降低分层的风险。此外,全面研究了切口缺陷对圆柱壳屈曲行为的影响。

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