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首页> 外文期刊>Composite Structures >A size-dependent quasi-3D isogeometric model for functionally graded graphene platelet-reinforced composite microplates based on the modified couple stress theory
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A size-dependent quasi-3D isogeometric model for functionally graded graphene platelet-reinforced composite microplates based on the modified couple stress theory

机译:基于改进偶应力理论的功能梯度石墨烯片增强复合微板尺寸相关的准3D等几何模型

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The paper presents a size-dependent model based on the NURBS basis functions integrated with quasi three-dimensional (quasi-3D) shear deformation theory and the modified couple stress theory (MCST) for free vibration and buckling analyses of multilayer functionally graded graphene platelet-reinforced composite (FG GPLRC) microplates. The quasi-3D shear deformation theory, which only includes four unknown variables, considers the bending, shear deformations and thickness stretching effect. To consider length scale effect, a material length scale parameter (MLSP) is added into the classical continuum theory. A rule of mixture is used to compute the effective density mass and Poisson's ratio, while the Young's modulus is determined according to the Halpin-Tsai model. The uniform and functionally graded distributions of graphene platelets (GPLs) are considered. The discretize governing equations are obtained by applying the principle of virtual work. Numerical validations are performed to evaluate effects of geometrical parameters, boundary conditions, material length scale parameter and weight fraction on natural frequencies and buckling load of the microplates. As shown in numerical results, it can be concluded that a rise of natural frequency and buckling load of multilayer FG GPLRC microplates is observed by using the MCST. Besides, the classical quasi-3D model is recovered when MLSP equals to zero.
机译:本文提出了一种基于尺寸的模型,该模型基于NURBS基函数并结合准三维(quasi-3D)剪切变形理论和改进的耦合应力理论(MCST),用于多层功能梯度石墨烯薄片的自由振动和屈曲分析。增强复合材料(FG GPLRC)微孔板。准3D剪切变形理论只包含四个未知变量,它考虑了弯曲,剪切变​​形和厚度拉伸效应。为了考虑长度尺度效应,将材料长度尺度参数(MLSP)添加到经典连续论中。使用混合规则来计算有效密度质量和泊松比,而杨氏模量是根据Halpin-Tsai模型确定的。考虑了石墨烯血小板(GPL)的均匀分布和功能梯度分布。离散控制方程是通过应用虚拟功原理获得的。进行数值验证以评估几何参数,边界条件,材料长度比例参数和重量分数对微板的固有频率和屈曲载荷的影响。如数值结果所示,可以得出结论,使用MCST可以观察到多层FG GPLRC微板的固有频率和屈曲载荷的增加。此外,当MLSP等于零时,恢复经典的准3D模型。

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