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Vibration analysis of FG porous rectangular plates reinforced by graphene platelets

机译:石墨烯血小板增强FG多孔矩形板的振动分析

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摘要

The aim of this study is to investigate free vibration of functionally graded porous nanocomposite rectangular plates where the internal pores and graphene platelets (GPLs) are distributed in the matrix either uniformly or non-uniformly according to three different patterns. The elastic properties of the nanocomposite are obtained by employing Halpin-Tsai micromechanics model. The GPL-reinforced plate is modeled using a semi-analytic approach composed of generalized differential quadrature method (GDQM) and series solution adopted to solve the equations of motion. The proposed rectangular plates have two opposite edges simply supported, while all possible combinations of free, simply supported and clamped boundary conditions are applied to the other two edges. The 2-D differential quadrature method as an efficient and accurate numerical tool is used to discretize the governing equations and to implement the boundary conditions. The convergence of the method is demonstrated and to validate the results, comparisons are made between the present results and those reported by well-known references for special cases treated before, have confirmed accuracy and efficiency of the present approach. New results reveal the importance of porosity coefficient, porosity distribution, graphene platelets (GPLs) distribution, geometrical and boundary conditions on vibration behavior of porous nanocomposite plates. It is observed that the maximum vibration frequency obtained in the case of symmetric porosity and GPL distribution, while the minimum vibration frequency is obtained using uniform porosity distribution.
机译:本研究的目的是研究功能上渐变多孔纳米复合材料矩形板的自由振动,其中内部孔和石墨烯血小板(GPLS)根据三种不同的图案均匀地或非均匀地分布在基质中。纳米复合材料的弹性性能通过采用Halpin-Tsai微机械模型获得。使用由广义差分正交方法(GDQM)和采用的串联解决方案组成的半分析方法来建模GPL加强板。所提出的矩形板具有两个相对的边缘,仅支撑两个相对的边缘,而自由,简单地支撑和夹紧边界条件的所有可能组合施加到其他两个边缘。将2-D差分正交方法用作高效且准确的数字工具来分散控制方程并实现边界条件。证明该方法的收敛性并验证结果,在当前结果和通过以前治疗的特殊情况的公知参考报告的那些进行比较,已经确认了本方法的准确性和效率。新结果揭示了孔隙率系数,孔隙率分布,石墨烯血小板(GPLS)分布,几何和边界条件对多孔纳米复合材料板的振动行为的重要性。观察到在对称孔隙率和GPL分布的情况下获得的最大振动频率,而使用均匀的孔隙率分布获得最小振动频率。

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