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Resonance analysis of composite curved microbeams reinforced with graphene nanoplatelets

机译:用石墨烯纳米薄层加固复合弯曲微观辐射的共振分析

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摘要

In this paper, the forced resonance vibration analysis of curved micro-size beams made of graphene nanoplatelets (GNPs) reinforced polymer composites is presented. The approximating of the effective material properties is on the basis of Halpin-Tsai model and a modified rule of mixture. The Timoshenko beam theory is applied to describe the displacement field for the microbeam. To incorporate small-size effects, the modified strain gradient theory, possessing three independent length scale coefficients, is employed. Hamilton principle is applied to formulate the size-dependent governing motion equations, which then is solved by Navier solution method. Ultimately, the influences of length scale coefficients, opening angle, weight fraction and the total number of layers in GNPs on composite curved microbeams corresponding to different GNPs distribution are discussed in detail through parametric studies. It is shown that, the resonance position is significantly affected by changing these parameters.
机译:本文介绍了由石墨烯纳米片(GNPS)增强聚合物复合材料制成的弯曲微尺寸梁的强制共振振动分析。有效材料特性的近似是基于Halpin-Tsai模型和改性混合物规则。 Timoshenko光束理论应用于描述微沟的位移场。为了纳入小尺寸的效果,采用改进的应变梯度理论,具有三个独立的长度系数系数。汉密尔顿原理应用于制定依赖于依赖的控制运动方程,然后通过Navier解决方案方法解决。最终,通过参数研究详细讨论了对应于不同GNP分布的复合弯曲的微沟中长度系数,打开角度,重量分数,单层的影响。结果表明,通过改变这些参数来显着影响谐振位置。

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