Size-Dependent Higher Order Thermo-Mechanical Vibration Analysis of Two Directional Functionally Graded Material Nanobeam

M. Mahinzare, S. Amanpanah, M. Ghadiri
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Abstract

This paper represented a numerical technique for discovering the vibrational behavior of a two-directional FGM (2-FGM) nanobeam exposed to thermal load for the first time. Mechanical attributes of two-directional FGM (2-FGM) nanobeam are changed along the thickness and length directions of nanobeam. The nonlocal Eringen parameter is taken into the nonlocal elasticity theory (NET). Uniform temperature rise (UTR), linear temperature rise (LTR), non-linear temperature rise (NLTR) and sinusoidal temperature rise (STR) during the thickness and length directions of nanobeam is analyzed. Third-order shear deformation theory (TSDT) is used to derive the governing equations of motion and associated boundary conditions of the two-directional FGM (2-FGM) nanobeam via Hamilton’s principle. The differential quadrature method (DQM) is employed to achieve the natural frequency of two-directional FGM (2-FGM) nanobeam. A parametric study is led to assess the efficacy of coefficients of two-directional FGM (2-FGM), Nonlocal parameter, FG power index, temperature changes, thermal rises loading and temperature rises on the non-dimensional natural frequencies of two-directional FGM (2-FGM) nanobeam.
两方向功能梯度材料纳米梁尺寸相关高阶热机械振动分析
本文首次采用数值方法研究了双向FGM (2-FGM)纳米梁在热载荷下的振动特性。双向FGM (2-FGM)纳米梁的力学属性沿纳米梁的厚度和长度方向变化。将非局部Eringen参数引入非局部弹性理论(NET)。分析了纳米梁厚度和长度方向上的均匀温升(UTR)、线性温升(LTR)、非线性温升(NLTR)和正弦温升(STR)。利用三阶剪切变形理论(TSDT),通过Hamilton原理推导了双向FGM (2-FGM)纳米梁的运动控制方程和相关边界条件。采用微分正交法(DQM)计算了双向FGM纳米梁的固有频率。通过参数化研究,评估了双向FGM (2-FGM)纳米梁的系数、非局部参数、FG功率指数、温度变化、热升载荷和温升对双向FGM (2-FGM)纳米梁无量纲固有频率的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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