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Vibration analysis of multi-scale hybrid nanocomposite plates based on a Halpin-Tsai homogenization model

机译:基于Halpin-Tsai均质化模型的多尺度杂化纳米复合板振动分析

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摘要

An analytical answer to the natural vibration problem of a composite plate consisted of multi-scale hybrid nanocomposites, is presented here for the first time. In this paper, the constituent material of the structure is made of an epoxy matrix which is reinforced by both macro- and nano-size reinforcements, namely carbon fiber (CF) and carbon nanotube (CNT). The effective material properties like Young's modulus or density are derived utilizing a micromechanical scheme incorporated with the Halpin-Tsai model. To present a more realistic problem, the plate is placed on a two-parameter elastic substrate. Then, on the basis of an energy-based Hamiltonian approach, the equations of motion are derived using the classical theory of plates. Finally, the governing equations will be solved analytically to obtain the natural frequency of the system's oscillation. Afterward, the normalized form of the results will be presented to put emphasis on the impact of each parameter on the dimensionless frequency of nanocomposite plates. It is worth mentioning that the effects of various boundary conditions on the frequency of the plate are covered, too. To show the efficiency of presented modeling, the results of this article are compared to those of former attempts. Numerical results declare that plates fabricated from the hybrid nanocomposites can endure higher frequencies compared with those consisted of conventional composites.
机译:本文首次提出了由多尺度杂化纳米复合材料组成的复合板的自然振动问题的解析答案。在本文中,结构的构成材料由环氧基质制成,该环氧基质通过宏观和纳米尺寸的增强剂(即碳纤维(CF)和碳纳米管(CNT))进行增强。有效的材料特性(例如杨氏模量或密度)是通过与Halpin-Tsai模型结合的微机械方案得出的。为了提出更现实的问题,将板放置在两参数弹性基板上。然后,在基于能量的哈密顿方法的基础上,使用经典的板理论推导运动方程。最后,将对控制方程进行解析求解,以获得系统振荡的固有频率。之后,将给出结果的归一化形式,以强调每个参数对纳米复合板无量纲频率的影响。值得一提的是,还涵盖了各种边界条件对板频率的影响。为了显示所提出建模的效率,将本文的结果与以前的尝试进行了比较。数值结果表明,与传统复合材料相比,由杂化纳米复合材料制成的板可承受更高的频率。

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