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Postbuckling analysis of smart FG-CNTRC annular sector plates with surface-bonded piezoelectric layers using generalized differential quadrature method

机译:应用广义差分正交方法对具有表面键合压电层的智能FG-CNTRC环形扇形板的后屈曲分析

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The purpose of the present study is to introduce the application of carbon nanotubes (CNTs) and piezoelectric layers in suppressing the postbuckling deflection of functionally graded carbon nanotube reinforced composite (FG-CNTRC) annular sector plates. To achieve this objective, a structural model is developed based on the first-order shear deformation theory (FSDT) along with the von Karman geometrical nonlinearity. The distribution of electric potential across the thickness of piezoelectric layers is modeled by a combination of linear and sinusoidal functions and the closed circuit electrical boundary condition is taken into account for the top and bottom surfaces of the piezoelectric layers. Generalized differential quadrature method (GDQM) is implemented to discretize the nonlinear stability equations, boundary conditions and Maxwell equation. The nonlinear system of equations is solved via a direct iterative method. A detailed parametric study is conducted to explore effects of geometrical parameters, boundary conditions, piezoelectric materials, thickness of the piezoelectric layers, external electric voltage, CNT distribution, and volume fraction on the postbuckling responses of FG-CNTRC annular sector plates with surfacebonded piezoelectric layers. Results indicate that both volume fraction and distribution of CNTs play a key role in enhancing the postbuckling strength of CNTRC annular sector plates. It is found that the type of piezoelectric materials, thickness of piezoelectric layers and the external electric voltage have a significant effect on suppressing the postbuckling deflection of FG-CNTRC annular sector plates. It is also found that the distribution of CNTs plays a pivotal role in changing buckling mode shapes of CNTRC annular sector plates. Besides, the proposed solution procedure has shown clear advantages over existing methods and demonstrated itself as a general, stable and accurate numerical method in solving strongly coupled nonlinear partial differential equations. (C) 2017 Elsevier B.V. All rights reserved.
机译:本研究的目的是介绍碳纳米管(CNTs)和压电层在抑制功能梯度碳纳米管增强复合材料(FG-CNTRC)环形扇形板的后屈曲挠度中的应用。为了实现此目标,基于一阶剪切变形理论(FSDT)以及von Karman几何非线性,开发了结构模型。通过线性函数和正弦函数的组合来模拟整个压电层厚度上的电位分布,并针对压电层的顶面和底面考虑闭路电边界条件。为了简化非线性稳定方程,边界条件和麦克斯韦方程,采用了广义微分正交方法(GDQM)。非线性方程组通过直接迭代法求解。进行了详细的参数研究,以探讨几何参数,边界条件,压电材料,压电层的厚度,外部电压,CNT分布和体积分数对具有表面键合压电层的FG-CNTRC环形扇形板的后屈曲响应的影响。结果表明,CNT的体积分数和分布在增强CNTRC环形扇形板的后屈曲强度中都起着关键作用。发现压电材料的类型,压电层的厚度和外部电压对抑制FG-CNTRC环形扇形板的后屈曲挠度具有显著作用。还发现,CNT的分布在改变CNTRC环形扇形板的屈曲模式形状方面起着关键作用。此外,所提出的求解过程已显示出优于现有方法的明显优势,并且证明了其本身是解决强耦合非线性偏微分方程的一种通用,稳定和准确的数值方法。 (C)2017 Elsevier B.V.保留所有权利。

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