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Dynamic modeling of porous heterogeneous micro/nanobeams

机译:多孔异质微/纳米束动态建模

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摘要

In the present paper, the thermo-mechanical vibration characteristics of a functionally graded (FG) porous microbeam subjected to various types of thermal loadings are investigated based on modified couple stress theory and exact position of neutral axis. The FG micro/nanobeam is modeled via a refined hyperbolic beam theory in which the shear deformation effect is verified without the shear correction factor. A modified power-law distribution which contains porosity volume fraction is used to describe the graded material properties of the FG micro/nanobeam. The temperature field has uniform, linear and nonlinear distributions across the thickness. The governing equations and the related boundary conditions are derived by Hamilton's principle and they are solved applying an analytical solution which satisfies various boundary conditions. A comparison study is performed to verify the present formulation with the known data in the literature and a good agreement is observed. The parametric study covered in this paper includes several parameters, such as thermal loadings, porosity volume fraction, power-law exponents, slenderness ratio, scale parameter and various boundary conditions on natural frequencies of porous FG micro/nanobeams in detail.
机译:在本文中,基于修改的耦合应力理论和中性轴的精确位置,研究了经过各种类型的热载体的功能梯度(FG)多孔微观的热机械振动特性。 FG微/纳米通过精细的双曲光束理论建模,其中验证了剪切变形效果而没有剪切校正因子。含有孔隙体积分数的改性功率法分布用于描述FG Micro / NaNObeam的渐变材料特性。温度场横跨厚度具有均匀,线性和非线性分布。管理方程和相关边界条件是由Hamilton原理得出的,并且它们被解决应用满足各种边界条件的分析解决方案。进行比较研究以验证与文献中的已知数据的现有制剂,并观察到良好的协议。本文涵盖的参数研究包括几个参数,例如热载体,孔隙度体积分数,幂律指数,细节对多孔FG微/纳米射流的自然频率的各种边界条件。

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