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Vibration of FG-GPLs eccentric annular plates embedded in piezoelectric layers using a transformed differential quadrature method

机译:使用变换差分正交方法对嵌入压电层中的FG-GPL偏心环形板进行振动

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In this paper, a transformed differential quadrature method (TDQM) for the free vibration analysis of functionally graded (FG) multilayer nanocomposite eccentric annular plates reinforced by graphene nanoplatelets (GPLs) and embedded in piezoelectric layers is developed. In this regards, a suitable conformal mapping is utilized to calculate the transformed weighting coefficients of the differential quadrature method (DQM) in physical domain which enables one to directly discretize the partial differential equations in the reference domain. The modified Halpin-Tsai model is employed to estimate the effective mechanical properties of the nanocomposites. The governing equations are derived based on the first-order shear deformation theory (FSDT) using Hamilton's principle and Maxwell's equation. The numerical results show that the TDQM has a very good convergence rate. Furthermore, the accuracy and reliability of the proposed method are verified by comparing the results with those obtained by simulating some problems via ABAQUS software and also, in the limit cases with those available in the literature. The effects of GPLs weight fractions, number of GPLs reinforced layers, distribution types of GPLs, different boundary conditions and various plate geometrical parameters such as the plate thickness, piezoelectric layers thickness, external electrical voltage and off-set parameter on the natural frequency parameters are investigated. (C) 2018 Elsevier B.Y. All rights reserved.
机译:本文开发了一种变换微分求积法(TDQM),用于对石墨烯纳米片(GPL)增强并嵌入压电层的功能梯度(FG)多层纳米复合偏心环形板的自由振动进行分析。在这方面,利用适当的保形映射来计算物理域中的差分正交方法(DQM)的变换后的加权系数,这使得人们可以直接离散参考域中的偏微分方程。修改后的Halpin-Tsai模型用于估算纳米复合材料的有效机械性能。使用汉密尔顿原理和麦克斯韦方程,基于一阶剪切变形理论(FSDT)推导控制方程。数值结果表明,TDQM具有很好的收敛速度。此外,通过将结果与通过ABAQUS软件模拟某些问题获得的结果进行比较,并在极限情况下与文献中提供的结果进行比较,可以验证所提出方法的准确性和可靠性。 GPL的重量分数,GPL增强层的数量,GPL的分布类型,不同的边界条件以及各种板几何参数(如板厚度,压电层厚度,外部电压和偏移参数)对固有频率参数的影响为:调查。 (C)2018年Elsevier B.Y.版权所有。

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