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Multiscale modeling of embedded graphene sheets based on the higher-order Cauchy-Born rule: Nonlinear static analysis

机译:基于高阶Cauchy-Born规则的嵌入式石墨烯片多尺度建模:非线性静态分析

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The nonlinear flexural response of single-layer graphene sheets (SLGSs) resting on elastic matrix is studied using an atomistic-based second gradient continuum model. The higher-order Cauchy-Born rule is used to link the interatomic potential to the strain energy induced in the continuum without any parameter fitting. The graphene is modeled by a hyperelastic membrane whose elastic potential energy is exclusively written in terms of the interatomic potential. This results in a constitutive model independent of any additional phenomenological input and thickness. Moreover, through this linkage, both the material and geometrical nonlinearities are exactly reflected in the constitutive model. To solve the continuum boundary value problem, the differential quadrature (DQ) approach is employed in the context of a variational formulation, and the discretized weak form of the equilibrium equation is obtained. The static response of SLGSs under a uniformly distributed load is evaluated. It is found that the present multiscale model can reproduce the results of other coupled atomistic-continuum and full atomistic approaches with a small number of discrete points. Also, the effect of the second-order deformation gradient is found to be significant on the bending deflection of SLGS specifically on the one with high flexural stiffness. (C) 2016 Elsevier Ltd. All rights reserved.
机译:使用基于原子的第二梯度连续体模型研究了基于弹性矩阵的单层石墨烯片(SLGS)的非线性挠曲响应。高阶Cauchy-Born规则用于将原子间电势与连续体中感应的应变能联系起来,而无需任何参数拟合。石墨烯由超弹性膜建模,该膜的弹性势能仅根据原子间势来表示。这导致本构模型独立于任何其他现象学输入和厚度。此外,通过这种联系,材料和几何非线性都准确地反映在本构模型中。为了解决连续边值问题,在变分公式的背景下采用了微分求积法,得到了均衡方程的离散弱形式。评估了SLGS在均匀分布载荷下的静态响应。发现本发明的多尺度模型可以再现具有少量离散点的其他耦合原子连续体和全原子方法的结果。同样,发现二阶变形梯度对SLGS的弯曲挠度有显着影响,特别是对于高抗弯刚度的弯曲挠度。 (C)2016 Elsevier Ltd.保留所有权利。

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