Thermo-mechanical vibration analysis of functionally graded micro/nanoscale beams with porosities based on modified couple stress theory

IF 1.9 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Advances in Materials Research-An International Journal Pub Date : 2017-09-01 DOI:10.12989/AMR.2017.6.3.279
F. Ebrahimi, F. Mahmoodi, M. Barati
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引用次数: 9

Abstract

Thermo-mechanical vibration characteristics of in homogeneousporous functionally graded (FG) micro/nanobeam subjected to various types of thermal loadings are investigated in the present paper based on modified couple stress theory with consideration of the exact position of neutral axis. The FG micro/nanobeam is modeled via a refined hyperbolic beam theory in which shear deformation effect is verified needless of shear correction factor. A modified power-law distribution which contains porosity volume fraction is used to describe the graded material properties of FG micro/nanobeam. Temperature field has uniform, linear and nonlinear distributions across the thickness. The governing equations and the related boundary conditions are derived by Extended 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.
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基于修正耦合应力理论的含孔隙率功能梯度微/纳米梁的热机械振动分析
基于修正的耦合应力理论,考虑中性轴的精确位置,研究了在不同类型热载荷作用下,均匀悬浮功能梯度(FG)微/纳米梁的热机械振动特性。通过改进的双曲梁理论对FG微/纳米梁进行了建模,其中不需要剪切校正因子就可以验证剪切变形效应。采用包含孔隙率体积分数的修正幂律分布来描述FG微/纳米束的梯度材料特性。温度场在厚度上具有均匀、线性和非线性分布。利用扩展的Hamilton原理导出了控制方程和相关的边界条件,并应用满足各种边界条件的解析解求解。进行了一项比较研究,以验证本配方与文献中的已知数据,并观察到良好的一致性。本文的参数研究包括热载荷、孔隙率体积分数、幂律指数、长细比、尺度参数和多孔FG微/纳米梁固有频率的各种边界条件等参数。
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来源期刊
Advances in Materials Research-An International Journal
Advances in Materials Research-An International Journal MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
3.50
自引率
27.30%
发文量
0
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