Vibration and large deformation simulation analysis of graphene membrane for nanomechanical applications

Ping Li, Rahman Hebibul, Libo Zhao, Zhikang Li, Yulong Zhao, Zhuangde Jiang
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引用次数: 1

Abstract

This paper reports an efficient and accurate simulation method for vibrations and deformations of single- and multi-layer graphene membranes. In this method, a graphene membrane is modelled by a 2-D plate element whose thickness is changeable in COMSOL Multiphysics. The graphene is regarded as a linear isotropic elastic material, and the load-deformation behaviour is approximated as a doubly clamped bridge model or a clamped circular membrane. By comparing the simulation results using 2-D plate and another SHELL element with the experiment data respectively, we find that the average errors of 1st-order frequency using 2-D plate and SHELL element for the same membrane are 4% and 43%. Therefore, the simulation method using 2-D plate element is precise and efficient for the nanomechanical analysis of graphene sheets. With the proposed simulation method, the vibrations and nonlinear deformations of the circular and square graphene membranes are analyzed with different dimensions and thicknesses. These simulation results can be the guideline for the nanomechanical device design.
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石墨烯薄膜在纳米机械应用中的振动和大变形模拟分析
本文报道了一种高效、准确的单层和多层石墨烯膜振动和变形模拟方法。该方法采用COMSOL Multiphysics中厚度可变化的二维板单元对石墨烯薄膜进行建模。石墨烯被认为是一种线性各向同性弹性材料,其载荷变形行为近似为双夹紧桥模型或夹紧圆膜。通过将二维平板和另一种壳体单元的模拟结果与实验数据进行比较,发现对同一膜,二维平板和壳体单元的一阶频率平均误差分别为4%和43%。因此,基于二维板元的模拟方法对石墨烯薄膜的纳米力学分析是精确、高效的。利用所提出的仿真方法,分析了不同尺寸和厚度的圆形和方形石墨烯膜的振动和非线性变形。这些仿真结果可以为纳米机械器件的设计提供指导。
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