Surface Effect on Vibration of Y-SWCNTs Embedded on Pasternak Foundation Conveying Viscose Fluid

Surface and small scale effects on free transverse vibration of a single-walled carbon nanotube (SWCNT) fitted with Y-junction at downstream end conveying viscose fluid is investigated in this article based on Euler-Bernoulli beam (EBB) model. Nonlocal elasticity theory is employed to consider small...

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Main Authors: A. Ghorbanpour-Arani, M. sh. Zarei
Format: Article
Language:English
Published: Nanoscience and Nanotechnology Research Center, University of Kashan 2015-01-01
Series:Journal of Nanostructures
Subjects:
Online Access:http://jns.kashanu.ac.ir/article_9378_8d7f3d37f56659e29abba4153635342c.pdf
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spelling doaj-02cf0f09b5964ba2a53656d9f7c4ae1d2020-11-24T20:53:51ZengNanoscience and Nanotechnology Research Center, University of KashanJournal of Nanostructures2251-78712251-788X2015-01-0151334010.7508/jns.2015.01.0059378Surface Effect on Vibration of Y-SWCNTs Embedded on Pasternak Foundation Conveying Viscose FluidA. Ghorbanpour-Arani0M. sh. Zarei1Faculty of Mechanical Engineering, and Institute of Nanoscience & Nanotechnology, University of Kashan, Kashan, I.R.Iran.Faculty of Mechanical EngineeringSurface and small scale effects on free transverse vibration of a single-walled carbon nanotube (SWCNT) fitted with Y-junction at downstream end conveying viscose fluid is investigated in this article based on Euler-Bernoulli beam (EBB) model. Nonlocal elasticity theory is employed to consider small scale effects due to its simplicity and efficiency. The energy method and Hamilton’s principle are used to establish the corresponding motion equation. To discretize and solve the governing equation of motion the Galerkin method is applied. Moreover, the small-size effect, angle of Y-junction, surface layer and Pasternak elastic foundation are studied in detail. Regarding fluid flow effects, it has been concluded that the fluid flow is an effective factor on increasing the instability of Y-SWCNT. Results show that increasing the angle of Y-junction enhances the flutter fluid velocity where the first and second modes are merged. This work could be used in medical application and design of nano-electromechanical devices such as measuring the density of blood flowing through such nanotubes.http://jns.kashanu.ac.ir/article_9378_8d7f3d37f56659e29abba4153635342c.pdfGalerkin methodNonlocal elasticitySurface effectVibrationVisco-Pasternak foundation
collection DOAJ
language English
format Article
sources DOAJ
author A. Ghorbanpour-Arani
M. sh. Zarei
spellingShingle A. Ghorbanpour-Arani
M. sh. Zarei
Surface Effect on Vibration of Y-SWCNTs Embedded on Pasternak Foundation Conveying Viscose Fluid
Journal of Nanostructures
Galerkin method
Nonlocal elasticity
Surface effect
Vibration
Visco-Pasternak foundation
author_facet A. Ghorbanpour-Arani
M. sh. Zarei
author_sort A. Ghorbanpour-Arani
title Surface Effect on Vibration of Y-SWCNTs Embedded on Pasternak Foundation Conveying Viscose Fluid
title_short Surface Effect on Vibration of Y-SWCNTs Embedded on Pasternak Foundation Conveying Viscose Fluid
title_full Surface Effect on Vibration of Y-SWCNTs Embedded on Pasternak Foundation Conveying Viscose Fluid
title_fullStr Surface Effect on Vibration of Y-SWCNTs Embedded on Pasternak Foundation Conveying Viscose Fluid
title_full_unstemmed Surface Effect on Vibration of Y-SWCNTs Embedded on Pasternak Foundation Conveying Viscose Fluid
title_sort surface effect on vibration of y-swcnts embedded on pasternak foundation conveying viscose fluid
publisher Nanoscience and Nanotechnology Research Center, University of Kashan
series Journal of Nanostructures
issn 2251-7871
2251-788X
publishDate 2015-01-01
description Surface and small scale effects on free transverse vibration of a single-walled carbon nanotube (SWCNT) fitted with Y-junction at downstream end conveying viscose fluid is investigated in this article based on Euler-Bernoulli beam (EBB) model. Nonlocal elasticity theory is employed to consider small scale effects due to its simplicity and efficiency. The energy method and Hamilton’s principle are used to establish the corresponding motion equation. To discretize and solve the governing equation of motion the Galerkin method is applied. Moreover, the small-size effect, angle of Y-junction, surface layer and Pasternak elastic foundation are studied in detail. Regarding fluid flow effects, it has been concluded that the fluid flow is an effective factor on increasing the instability of Y-SWCNT. Results show that increasing the angle of Y-junction enhances the flutter fluid velocity where the first and second modes are merged. This work could be used in medical application and design of nano-electromechanical devices such as measuring the density of blood flowing through such nanotubes.
topic Galerkin method
Nonlocal elasticity
Surface effect
Vibration
Visco-Pasternak foundation
url http://jns.kashanu.ac.ir/article_9378_8d7f3d37f56659e29abba4153635342c.pdf
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