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Exact closed-form solution for non-local vibration and biaxial buckling of bonded multi-nanoplate system

机译:粘结多纳米板系统非局部振动和双轴屈曲的精确封闭形式解

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In recent years, nonlocal elasticity theory is widely used for the analytical and computational modeling of nanostructures. This theory, developed by Eringen, has shown to be practical for the vibration and buckling analysis of nanoscale structures and reliable for predesign procedures of nano-devices. This paper considers buckling and dynamic analysis of multi-nanoplate systems. This type of system can be relevant to composite structures embedded with graphene sheets. Exact solutions for the natural frequencies and buckling loads of multi-nanoplate systems have been proposed by considering that the multi-nanoplate system is embedded within an elastic medium. Nonlocal elasticity theory is utilized for the mathematical establishment of the system. The solutions of the homogenous system of differential equations are obtained using the Navier's method and trigonometric method. An asymptotic analysis is proposed to show the influence of increasing number of nanoplates in the system. Analytical expressions are validated with existing results in the literature for some special cases. Numerical results based on the analytical expressions is shown to quantify the effects of the change in nonlocal parameter, stiffness coefficients of the elastic mediums and the number of layers on the natural frequencies and buckling load.
机译:近年来,非局部弹性理论被广泛用于纳米结构的分析和计算建模。由Eringen开发的该理论已证明对于纳米级结构的振动和屈曲分析是实用的,对于纳米设备的预设计程序是可靠的。本文考虑了多纳米板系统的屈曲和动力分析。这种类型的系统可能与嵌入石墨烯片的复合结构有关。考虑到多纳米板系统嵌入弹性介质中,已经提出了多纳米板系统固有频率和屈曲载荷的精确解。非局部弹性理论用于系统的数学建立。使用Navier法和三角法获得了齐次微分方程组的解。提出了一种渐近分析,以显示系统中纳米板数量增加的影响。对于某些特殊情况,分析表达式已得到文献中已有结果的验证。结果表明,基于解析表达式的数值结果可以量化非局部参数变化,弹性介质的刚度系数以及层数对固有频率和屈曲载荷的影响。

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