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A refined isogeometric plate analysis of porous metal foam microplates using modified strain gradient theory

机译:基于改进应变梯度理论的多孔金属泡沫微孔板的精细等几何板分析

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In this paper, we study the free vibration and buckling analyses of the porous metal foam microplates based on the isogeometric approach. Three types of porosity distribution along the plate thickness including uniform, symmetric and asymmetric are used to describe the material properties of the microplate. The modified strain gradient theory (MSGT) with three length scale parameters is incorporated into the refined higher-order shear deformation plate theory (RPT) to investigate small-scale effect on free vibration and buckling behaviors of the plate at micro level. The RPT has only four unknown variables to save computational costs. The explicit governing equations of the microplates are derived by using Hamilton's principle and then solved by isogeometric analysis (IGA), which is suitable for a numerical implementation of the size-dependent model within required third-order derivatives in the weak form. The influences of length scale parameters, porosity distributions, porous coefficient and geometric parameters on the natural frequencies and critical buckling loads of the microplates are discussed. Small scale effects and porous coefficient lead to an increase and a decrease in the stiffness of the microplate, respectively.
机译:本文基于等几何方法研究了多孔金属泡沫微孔板的自由振动和屈曲分析.沿板厚的孔隙率分布类型包括均匀、对称和不对称三种类型来描述微孔板的材料特性。将具有3个长度尺度参数的修正应变梯度理论(MSGT)纳入精细化高阶剪切变形板理论(RPT),在微观水平上研究了小尺度对板自由振动和屈曲行为的影响。RPT 只有四个未知变量来节省计算成本。利用Hamilton原理推导了微孔板的显式控制方程,然后通过等几何分析(IGA)求解,适用于在所需的弱形式三阶导数内对尺寸相关模型进行数值实现。讨论了长度尺度参数、孔隙度分布、孔隙系数和几何参数对微孔板固有频率和临界屈曲载荷的影响。小尺度效应和多孔系数分别导致微孔板刚度的增加和减少。

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