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Free vibration of functionally graded graphene platelet-reinforced porous beams with spinning movement via differential transformation method

机译:通过差分变换方法自由振动功能梯形石墨烯血小板血小板增强多孔梁,通过差分变换方法

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摘要

This work analyzes the free vibration of a spinning functionally graded graphene platelet-reinforced metal foam (FG-GPLRMF) beam. The differential transformation method is extended to analyze flap-wise bending vibration and chordwise bending vibration with Coriolis force effect for the first time. The beam is modeled using the Euler-Bernoulli beam theory. The Halpin-Tsai micromechanics model is utilized to predict effective material properties. Various types of graphene platelet (GPL) and porosity distributions are considered. The governing equations and corresponding boundary conditions of the FG-GPLRMF beam are obtained via Hamilton's principle. Results show that the vibration characteristics of the FG-GPLRMF beam are affected by the GPL geometry size, types of porosity, and GPL distributions. Among different types of porosity, the Porosity-A causes the highest fundamental natural frequency, while the Porosity-B corresponds to the lowest one of the spinning FG-GPLRMF beam in most cases. Moreover, the GPL pattern and porosity distribution have a coupled effect on the bending vibration of the spinning FG-GPLRMF beam.
机译:这项工作分析了纺丝功能梯形石墨烯血小板增强金属泡沫(FG-GPLRMF)梁的自由振动。延长差分变换方法,首次使用科里奥利力效果分析襟翼弯曲振动和曲线向弯曲振动。使用Euler-Bernoulli光束理论进行建模。 Halpin-Tsai微机械模型用于预测有效的材料特性。考虑各种类型的石墨烯血小板(GPL)和孔隙率分布。通过Hamilton的原理获得FG-GPLRMF光束的控制方程和相应的边界条件。结果表明,FG-GPLRMF光束的振动特性受GPL几何尺寸,孔隙类型和GPL分布的影响。在不同类型的孔隙率之间,孔隙率-A使得最高的基本固有频率,而孔隙率-B在大多数情况下对应于最低一个纺丝FG-GPLRMF光束。此外,GPL图案和孔隙率分布对纺丝FG-GPLRMF光束的弯曲振动具有耦合效应。

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