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首页> 外文期刊>International Journal of Mechanical Sciences >Static and free vibration analysis of functionally graded conical shells reinforced by carbon nanotubes
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Static and free vibration analysis of functionally graded conical shells reinforced by carbon nanotubes

机译:碳纳米管加固功能分级锥形壳的静态和自由振动分析

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This study investigates the static and free vibration behavior of rotating functionally graded (FG) truncated conical shells reinforced by carbon nanotubes (CNTs) with a gradual distribution of the volume fraction through the thickness. CNTs are here selected as reinforcement, because of their noteworthy physical and chemical properties, together with their ability to enhance the mechanical properties of the whole composite structure. A two-parameter agglomeration model is considered to describe the micromechanics of such particles, which tend to agglomerate into spherical regions when scattered in a polymer matrix. From the macro-mechanical point of view, the conical structures are characterized by a gradual variation of their mechanical properties along the thickness direction, since different distributions are explored to describe the volume fraction of the reinforcing phase. The governing equations of motion for the rotating truncated composite conical shells are derived and solved numerically by means of the Generalized Differential Quadrature (GDQ) method combined with the third order shear deformation theory (TSDT) in small deformations. The GDQ approach has recently emerged as a very promising numerical tool to solve complex problems without passing through any variational formulation, but solving directly the equations of motion in a strong form. In this paper, a parametric study based on the GDQ is systematically performed to exploit the effect of some geometry parameters, i.e. the length, the radius, the thickness and the semi-vertex angle of the cone, as well as the different distribution of CNTs along the thickness, on the frequency at different circumferential wave numbers and rotating speeds. A convergence study of the numerical results is also made in terms of deflection and stress distributions of the structure, which proves the efficiency of the GDQ approach, also for coarse mesh discretizations in the meridional direction. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本研究研究了通过厚度逐渐分布的碳纳米管(CNT)加强的旋转功能梯度(FG)截短的锥形壳的静态和自由振动行为,其通过厚度逐渐分布。由于其值得注意的物理和化学性质,CNT在这里被选为加固,以及它们加强整个复合结构的机械性能的能力。考虑两参数附聚模型来描述这种颗粒的微观力学,这在散射在聚合物基质中时倾向于聚集成球形区域。从宏观的角度来看,锥形结构的特征在于沿着厚度方向逐渐变化,因为探索了不同的分布以描述增强阶段的体积分数。通过广义差分正交(GDQ)方法在小变形中与第三阶剪切变形理论(TSDT)结合的方式来源和解决旋转截头复合圆锥形壳体的控制方程。 GDQ方法最近被揭示为一个非常有前途的数值工具,以解决复杂问题而不通过任何变分制剂,但是以强形式直接求解运动方程。在本文中,系统地执行基于GDQ的参数研究以利用一些几何参数,即长度,半径,厚度和半顶角的效果,以及CNT的不同分布沿着厚度,在不同的圆周波数的频率上和旋转速度。还在结构的偏转和应力分布方面进行了数值结果的收敛研究,这证明了GDQ方法的效率,也用于在子午线方向上的粗网状离散化。 (c)2017 Elsevier Ltd.保留所有权利。

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