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Size-dependent free flexural vibrational behavior of functionally graded nanobeams using semi-analytical differential transform method

机译:使用半解析微分变换方法的功能梯度纳米束的尺寸依赖性自由挠曲振动行为

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In this paper nonlocal Euler Bernoulli beam theory is employed for vibration analysis of functionally graded (FG) size-dependent nanobeams by using Navier-based analytical method and a semi analytical differential transform method. Two kinds of mathematical models, namely, power law and Mod-Tanaka models are considered. The nonlocal Eringen theory takes into account the effect of small size, which enables the present model to become effective in the analysis and design of nanosensors and nanoactuators. Governing equations are derived through Hamilton's principle and they are solved applying semi analytical differential transform method (DTM). It is demonstrated that the DTM has high precision and computational efficiency in the vibration analysis of FG nanobeams. The good agreement between the results of this article and those available in literature validated the presented approach. The detailed mathematical derivations are presented and numerical investigations are performed while the emphasis is placed on investigating the effect of the several parameters such as small scale effects, different material compositions, mode number and thickness ratio on the normalized natural frequencies of the FG nanobeams in detail. It is explicitly shown that the vibration of a FG nanobeams is significantly influenced by these effects. Numerical results are presented to serve as benchmarks for future analyses of FG nanobeams. (C) 2015 Elsevier Ltd. All rights reserved.
机译:本文采用基于Navier的分析方法和半解析微分变换方法,将非局域Euler Bernoulli梁理论用于功能梯度(FG)尺寸相关的纳米束的振动分析。考虑了两种数学模型,即幂律模型和Mod-Tanaka模型。非局部Eringen理论考虑了小尺寸的影响,这使当前模型在纳米传感器和纳米执行器的分析和设计中变得有效。控制方程是根据汉密尔顿原理导出的,并使用半解析微分变换法(DTM)进行求解。结果表明,DTM在FG纳米束的振动分析中具有很高的精度和计算效率。本文的结果与文献中的结果之间的良好一致性验证了所提出的方法。提出了详细的数学推导并进行了数值研究,同时重点在于详细研究了几个参数的影响,例如小尺度效应,不同的材料成分,模数和厚度比对FG纳米束的归一化固有频率的详细影响。明确表明,FG纳米束的振动受到这些影响的显着影响。结果表明,数值结果可作为未来FG纳米束分析的基准。 (C)2015 Elsevier Ltd.保留所有权利。

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