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首页> 外文期刊>European Physical Journal Plus >Temperature and porosity effects on wave propagation in nanobeams using bi-Helmholtz nonlocal strain-gradient elasticity
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Temperature and porosity effects on wave propagation in nanobeams using bi-Helmholtz nonlocal strain-gradient elasticity

机译:使用Bi-Helmholtz非局部应变弹性对纳米束中波传播的温度和孔隙效应

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摘要

In this paper, applying a general nonlocal strain-gradient elasticity model with two nonlocal and one strain-gradient parameters, wave dispersion behavior of thermally affected and elastically bonded nanobeams is investigated. The two nanobeams are considered to have material imperfections or porosities evenly dispersed across the thickness. Each nanobeam has uniform thickness and is modeled by refined shear deformation beam theory with sinusoidal transverse shear strains. The governing equations of the system are derived by Hamilton's rule and are analytically solved to obtain wave frequencies and the velocity of wave propagation. In the presented graphs, one can see that porosities, temperature, nonlocal, strain gradient and bonding springs have great influences on the wave characteristics of the system.
机译:本文采用具有两个非本体和一种应变梯度参数的一般非局部应变梯度弹性模型,研究了热影响和弹性键合纳米束的波分散行为。 两种纳米束被认为具有均匀分散在厚度上的材料缺陷或孔隙率。 每个纳米孔的厚度均匀,并通过具有正弦横向剪切菌株的精制剪切变形光束理论建模。 系统的控制方程由汉密尔顿的规则导出,并在分析解决以获得波浪频率和波传播的速度。 在所提出的图表中,可以看出,孔隙率,温度,非局部,应变梯度和粘合弹簧对系统的波特性产生很大影响。

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