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Torsional vibration of functionally graded carbon nanotube reinforced conical shells

机译:功能梯度碳纳米管增强锥壳的扭转振动

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The present study deals with the free torsional vibration of a composite conical shell made of a polymeric matrix reinforced with carbon nanotubes (CNTs). Distribution of CNTs across the thickness of the conical shell may be uniform or functionally graded. Five different cases of functionally graded reinforcements are considered. First-order shear deformable shell theory compatible with the Donnell kinematic assumptions is used to establish the motion equations of the shell. These equations are two coupled equations which should be treated as an eigenvalue problem. The generalized differential quadrature method is used to obtain a numerical solution for the torsional frequency parameters and the associated mode shapes of the shell. After validating the results of this study for the cases of isotropic homogeneous cone and annular plates, parametric studies are carried out to analyze the influences of geometrical characteristics of the shell, volume fraction of CNTs, and grading profile of the CNTs. It is shown that volume fraction of CNTs is an important factor with regard to torsional frequencies of the shell; however, grading profile does not change the torsional frequencies significantly.
机译:本研究涉及由碳纳米管(CNT)增强的聚合物基体制成的复合锥形壳的自由扭转振动。 CNT在圆锥形外壳的整个厚度上的分布可以是均匀的,也可以是功能渐变的。考虑了功能梯度增强的五种不同情况。与Donnell运动学假设兼容的一阶剪切可变形壳理论用于建立壳的运动方程。这些方程是两个耦合方程,应视为特征值问题。广义差分正交方法用于获得扭转频率参数和壳的相关模式形状的数值解。在验证了各向同性均质圆锥和环形板的情况下的研究结果之后,进行了参数研究,以分析壳的几何特征,CNT的体积分数以及CNT的分级轮廓的影响。结果表明,碳纳米管的体积分数是影响壳体扭转频率的重要因素。但是,坡度曲线不会显着改变扭转频率。

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