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Combined strain-inertia gradient elasticity in free vibration shell analysis of single walled carbon nanotubes using shell theory

机译:壳理论在单壁碳纳米管自由振动壳分析中的组合应变惯性梯度弹性

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摘要

In this paper, a gradient elasticity shell formulation is presented for free vibration analysis of single-walled carbon nanotube placed on Winkler/Pasternak foundation. The proposed formulation is based on the combined strain-inertia gradient elasticity. The combined strain-inertia gradient elasticity provides an extension to the classical equations of elasticity with additional higher-order spatial derivatives of strains and two material length scale parameters related to the inertia and strain gradients, which enable formulation to investigate the size effect on the dynamic behavior of nanotubes. The effects of the length scale parameters, aspect ratio of single-walled carbon nanotube and foundation parameters on the fundamental frequencies for different values half-axial wave number and circumferential wave number are investigated. The natural frequencies obtained from the proposed shell formulation show the effects of size-dependent properties. It can be concluded that a continuum model enriched with higher-order inertia terms has been proposed as alternative to the continuum description obtained with classical elasticity theory.
机译:在本文中,提出了一种梯度弹性壳公式,用于放置在Winkler / Pasternak基础上的单壁碳纳米管的自由振动分析。所提出的公式基于组合的应变惯量梯度弹性。组合的惯性梯度弹性提供了经典的弹性方程式的扩展,具有附加的应变高阶空间导数和两个与惯性和应变梯度有关的材料长度尺度参数,从而使公式能够研究尺寸对动力学的影响纳米管的行为。研究了长度尺度参数,单壁碳纳米管的长径比和基础参数对不同值半轴波数和周波数的基频的影响。从提出的壳配方获得的固有频率显示出尺寸依赖性特性的影响。可以得出结论,已提出了一个富含高阶惯性项的连续模型,以替代通过经典弹性理论获得的连续描述。

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