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A numerical method for magneto-hygro-thermal postbuckling analysis of defective quadrilateral graphene sheets using higher order nonlocal strain gradient theory with different movable boundary conditions

机译:四边形石墨烯薄板磁湿热后屈曲分析的数值方法,采用具有不同可动边界条件的高阶非局部应变梯度理论

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Many researchers work on the mechanical analysis of perfect graphene sheets while these structures have some defects actually. In this paper, postbuckling of the defective quadrilateral single layered graphene sheets (SLGS) is presented for the first time. Three types of defects including single vacancy (SV), double vacancy (DV) and Stone-Wales (SW) in conjunction with the influence of vacancy defect reconstruction are considered. Nonlocal higher order strain gradient theory with three parameters for size effects is used. The quadrilateral graphene sheet is subjected to temperature, moisture and inplane magnetic loads. The elastic foundation is modelled by Pasternak medium. The equations of motion are obtained imposing higher order shear deformation theory and Hamilton's principle. The transformed weighing (TW) and differential quadrature (DQ) method are applied for postbuckling load-deflection relation of the structure. Due to the hygrothermal load, different movable boundary conditions are used. The influences of various parameters such as defect types, defect degree, defect reconstruction, hygrothermal load, magnetic field, nonlocal parameters, 7 different quadrilateral SLGS, boundary conditions and elastic medium on the postbuckling behaviour of the quadrilateral graphene sheet are shown. The numerical results are validated with other published works in the literature. Results show that with increasing the defect degree, the buckling load decreases. (C) 2019 Elsevier Ltd. All rights reserved.
机译:许多研究人员致力于完美石墨烯片的力学分析,而这些结构实际上存在一些缺陷。在本文中,首次提出了有缺陷的四边形单层石墨烯片(SLGS)的后屈曲。考虑到空位缺陷重建的影响,考虑了三种类型的缺陷,包括单空位(SV),双空位(DV)和石威尔士(SW)。使用具有三个参数的非局部高阶应变梯度理论来获得尺寸效应。四边形石墨烯片承受温度,湿度和面内磁性负载。弹性基础由Pasternak介质建模。根据高阶剪切变形理论和汉密尔顿原理获得运动方程。将变形加权(TW)和微分求积(DQ)方法应用于结构的屈曲后载荷-挠度关系。由于湿热负荷,使用了不同的可移动边界条件。显示了各种参数(例如缺陷类型,缺陷程度,缺陷重建,湿热负荷,磁场,非局部参数,7种不同的四边形SLGS,边界条件和弹性介质)对四边形石墨烯片的后屈曲行为的影响。数值结果与文献中其他已发表的著作进行了验证。结果表明,随着缺陷程度的增加,屈曲载荷减小。 (C)2019 Elsevier Ltd.保留所有权利。

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