首页> 外文期刊>Proceedings of the institution of mechanical engineers >Thermo-mechanical vibration, buckling, and bending of orthotropic graphene sheets based on nonlocal two-variable refined plate theory using finite difference method considering surface energy effects
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Thermo-mechanical vibration, buckling, and bending of orthotropic graphene sheets based on nonlocal two-variable refined plate theory using finite difference method considering surface energy effects

机译:基于非局部二变量精制板理论的正交各向异性石墨烯片的热机械振动,屈曲和弯曲,基于表面能效应的有限差分法

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摘要

In this article, the influence of temperature change on the vibration, buckling, and bending of orthotropic graphene sheets embedded in elastic media including surface energy and small-scale effects is investigated. To take into account the small-scale and surface energy effects, the nonlocal constitutive relations of Eringen and surface elasticity theory of Gurtin and Murdoch are used, respectively. Using Hamilton's principle, the governing equations for bulk and surface of orthotropic nanoplate are derived using two-variable refined plate theory. Finite difference method is used to solve governing equations. The obtained results are verified with Navier's method and validated results reported in the literature. The results demonstrated that for both isotropic and orthotropic material properties, by increasing the temperature changes, the degree of surface effects on the buckling and vibration of nanoplates could enhance at higher temperatures, while it would diminish at lower temperatures. In addition, the effects of surface and temperature changes on the buckling and vibration for isotropic material property are more noticeable than those of orthotropic. On the contrary, these results are totally reverse for bending problem.
机译:在本文中,研究了温度变化对嵌入弹性介质中的正交各向异性石墨烯片材的振动,屈曲和弯曲的影响,包括表面能和小尺度效应。考虑到小尺度和表面能的影响,分别使用了艾林根的非局部本构关系和古尔丁和默多克的表面弹性理论。利用汉密尔顿原理,利用二变量精制板理论推导了正交各向异性纳米板的体积和表面的控制方程。有限差分法用于求解控制方程。所获得的结果用Navier方法进行验证,并在文献中报告了经过验证的结果。结果表明,对于各向同性和各向同性的材料特性,通过增加温度变化,表面对纳米板屈曲和振动的影响程度可以在较高温度下增强,而在较低温度下会减小。此外,表面和温度变化对各向同性材料特性的屈曲和振动的影响比正交各向异性更明显。相反,对于弯曲问题,这些结果完全相反。

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