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Mechanical buckling analysis of functionally graded power-based and carbon nanotubes-reinforced composite plates and curved panels

机译:功能梯度的基于功率的碳纳米管增强复合板和弯曲板的机械屈曲分析

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摘要

The main aim of this paper is to investigate the mechanical buckling behavior of functionally graded materials and carbon nanotubes-reinforced composite plates and curved panels. The governing equations are established using a double directors finite element shell model which induces a high-order distribution of the displacement field and takes into account the effect of transverse shear deformations. The effective material properties of functionally graded materials are estimated using a power law distribution and those of nanocomposites by an extended rule of mixture with some efficiency parameters. Uniform and four profiles of carbon nanotubes are considered to describe the distribution of these reinforcements through the thickness of the nanocomposite shell structure. A comparison study of the present results with those available in the literature is carried out for the isotropic case in order to prove the validity as well as the accuracy of the present model. Then, the results are extended to functionally graded materials and nanocomposites. The results reveal that the critical buckling load of plates and curved panels can be significantly increased as a result of a functionally graded reinforcement. They also show that the mechanical buckling behavior of such structures is significantly influenced by the plate aspect ratio, the length-to-thickness ratio, radius-to-thickness ratio, boundary conditions, power law index as well as the carbon nanotubes profiles and their volume fractions.
机译:本文的主要目的是研究功能梯度材料以及碳纳米管增强的复合板和弯曲板的机械屈曲行为。控制方程是使用双导向有限元壳模型建立的,该模型会引起位移场的高阶分布,并考虑横向剪切变形的影响。功能梯度材料的有效材料性能是使用幂律分布估算的,而纳米复合材料则是通过具有一定效率参数的混合扩展规则来估算的。碳纳米管的均匀和四个轮廓被认为可以描述这些增强材料在纳米复合壳结构厚度上的分布。对于各向同性情况,将本结果与文献中的结果进行了比较研究,以证明本模型的有效性和准确性。然后,将结果扩展到功能梯度材料和纳米复合材料。结果表明,由于功能梯度增强,可以显着增加板和弯曲面板的临界屈曲载荷。他们还表明,这种结构的机械屈曲行为受板长宽比,长度/厚度比,半径/厚度比,边界条件,幂律指数以及碳纳米管轮廓及其影响显着。体积分数。

著录项

  • 来源
    《Composites 》 |2018年第10期| 165-183| 共19页
  • 作者

    Zghal S.; Frikha A.; Dammak F.;

  • 作者单位

    Univ Sfax, Natl Engn Sch Sfax, Engn Prod Mech & Mat Unit UGPM2, BP W3038, Sfax, Tunisia;

    Univ Sfax, Natl Engn Sch Sfax, Engn Prod Mech & Mat Unit UGPM2, BP W3038, Sfax, Tunisia;

    Univ Sfax, Natl Engn Sch Sfax, Engn Prod Mech & Mat Unit UGPM2, BP W3038, Sfax, Tunisia;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Mechanical buckling; FGM; FG-CNTRC; High-order; Double directors shell model;

    机译:机械屈曲;FGM;FG-CNTRC;高阶;双导向器壳模型;

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