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首页> 外文期刊>Structural Engineering and Mechanics >Nonlinear static and vibration analysis of Euler-Bernoulli composite beam model reinforced by FG-SWCNT with initial geometrical imperfection using FEM
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Nonlinear static and vibration analysis of Euler-Bernoulli composite beam model reinforced by FG-SWCNT with initial geometrical imperfection using FEM

机译:初始几何缺陷的FG-SWCNT增强的Euler-Bernoulli复合梁模型的非线性静振动分析

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摘要

In this paper, the nonlinear static and free vibration analysis of Euler-Bernoulli composite beam model reinforced by functionally graded single-walled carbon nanotubes (FG-SWCNTs) with initial geometrical imperfection under uniformly distributed load using finite element method (FEM) is investigated. The governing equations of equilibrium are derived by the Hamilton's principle and von Karman type nonlinear strain-displacement relationships are employed. Also the influences of various loadings, amplitude of the waviness, UD, USFG, and SFG distributions of carbon nanotube (CNT) and different boundary conditions on the dimensionless transverse displacements and nonlinear frequency ratio are presented. It is seen that with increasing load, the displacement of USFG beam under force loads is more than for the other states. Moreover it can be seen that the nonlinear to linear natural frequency ratio decreases with increasing aspect ratio (h/L) for UD, USFG and SFG beam. Also, it is shown that at the specified value of (h/L), the natural frequency ratio increases with the increasing the values amplitude of waviness while the dimensionless nonlinear to linear maximum deflection decreases. Moreover, with considering the amplitude of waviness, the stiffness of Euler-Bernoulli beam model reinforced by FG-CNT increases. It is concluded that the R parameter increases with increasing of volume fraction while the rate of this parameter decreases. Thus one can be obtained the optimum value of FG-CNT volume fraction to prevent from resonance phenomenon.
机译:本文研究了均匀分布载荷下具有初始几何缺陷的功能梯度单壁碳纳米管(FG-SWCNTs)增强的Euler-Bernoulli复合梁模型的非线性静,自由振动的有限元方法(FEM)。平衡的控制方程是根据汉密尔顿原理导出的,并采用了von Karman型非线性应变-位移关系。还提出了碳纳米管(CNT)的各种载荷,波幅,UD,USFG和SFG分布的振幅以及不同的边界条件对无因次横向位移和非线性频率比的影响。可以看出,随着载荷的增加,USFG梁在力载荷下的位移大于其他状态。此外,可以看出,对于UD,USFG和SFG光束,非线性与线性固有频率之比随着纵横比(h / L)的增加而减小。此外,还表明,在指定的(h / L)值下,固有频率比会随着波纹度值的增加而增加,而无量纲的非线性到线性最大挠度会减小。此外,考虑到波幅,FG-CNT增强的欧拉-伯努利梁模型的刚度增加。可以得出结论,R参数随体积分数的增加而增加,而R参数随其体积分数的减小而减小。因此,可以获得防止共振现象的FG-CNT体积分数的最佳值。

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