Nonlinear vibration analysis of an embedded branched nanofluid-conveying carbon nanotube: Influence of downstream angle, temperature change and two dimensional external magnetic field

In this study, non-linear thermal-mechanical stability and vibration analyses of different end-shaped single-walled carbon nanotube conveying viscous nano-magnetic fluid embedded in non-linear visco-elastic foundation under the influence of magnetic fields are presented. The development of the equat...

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Main Authors: A.A. Yinusa, M.G. Sobamowo, A.O. Adelaja
Format: Article
Language:English
Published: KeAi Communications Co., Ltd. 2020-12-01
Series:Nano Materials Science
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S258996511930090X
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spelling doaj-f5b905fc77074b51a68d2e577c3de5772020-12-13T04:19:43ZengKeAi Communications Co., Ltd.Nano Materials Science2589-96512020-12-0124323332Nonlinear vibration analysis of an embedded branched nanofluid-conveying carbon nanotube: Influence of downstream angle, temperature change and two dimensional external magnetic fieldA.A. Yinusa0M.G. Sobamowo1A.O. Adelaja2Corresponding author.; Mechanical Engineering Department, University of Lagos, NigeriaMechanical Engineering Department, University of Lagos, NigeriaMechanical Engineering Department, University of Lagos, NigeriaIn this study, non-linear thermal-mechanical stability and vibration analyses of different end-shaped single-walled carbon nanotube conveying viscous nano-magnetic fluid embedded in non-linear visco-elastic foundation under the influence of magnetic fields are presented. The development of the equation of motion was based on Euler-Bernoulli theory, Hamilton principle and nonlocal elasticity theory. The results of the analytical solutions using Galerkin decomposition differential transform method (GDDTM) were validated with existing experimental results. From the parametric studies, it was shown that decreasing the temperature difference as well as increasing the downstream angle decreased the system's stability for pre-bifurcation analysis but increased stability of the system for post bifurcation analysis. Also, the results obtained from the dynamic behaviour of the system indicated that the magnetic effect had an attenuating impact of about 45% on the system's response at any mode and for any boundary condition considered. It is hoped that this work will enhance the design and optimization of nano-devices with I, V, Y, L, K and T-shaped junctions under the influence of thermal-magneto-mechanical flow induced vibration.http://www.sciencedirect.com/science/article/pii/S258996511930090XThermal-mechanical vibrationBranched single walled carbon nanotubeMagnetic fieldGalerkin and differential transformation methodDynamic and stability analysis
collection DOAJ
language English
format Article
sources DOAJ
author A.A. Yinusa
M.G. Sobamowo
A.O. Adelaja
spellingShingle A.A. Yinusa
M.G. Sobamowo
A.O. Adelaja
Nonlinear vibration analysis of an embedded branched nanofluid-conveying carbon nanotube: Influence of downstream angle, temperature change and two dimensional external magnetic field
Nano Materials Science
Thermal-mechanical vibration
Branched single walled carbon nanotube
Magnetic field
Galerkin and differential transformation method
Dynamic and stability analysis
author_facet A.A. Yinusa
M.G. Sobamowo
A.O. Adelaja
author_sort A.A. Yinusa
title Nonlinear vibration analysis of an embedded branched nanofluid-conveying carbon nanotube: Influence of downstream angle, temperature change and two dimensional external magnetic field
title_short Nonlinear vibration analysis of an embedded branched nanofluid-conveying carbon nanotube: Influence of downstream angle, temperature change and two dimensional external magnetic field
title_full Nonlinear vibration analysis of an embedded branched nanofluid-conveying carbon nanotube: Influence of downstream angle, temperature change and two dimensional external magnetic field
title_fullStr Nonlinear vibration analysis of an embedded branched nanofluid-conveying carbon nanotube: Influence of downstream angle, temperature change and two dimensional external magnetic field
title_full_unstemmed Nonlinear vibration analysis of an embedded branched nanofluid-conveying carbon nanotube: Influence of downstream angle, temperature change and two dimensional external magnetic field
title_sort nonlinear vibration analysis of an embedded branched nanofluid-conveying carbon nanotube: influence of downstream angle, temperature change and two dimensional external magnetic field
publisher KeAi Communications Co., Ltd.
series Nano Materials Science
issn 2589-9651
publishDate 2020-12-01
description In this study, non-linear thermal-mechanical stability and vibration analyses of different end-shaped single-walled carbon nanotube conveying viscous nano-magnetic fluid embedded in non-linear visco-elastic foundation under the influence of magnetic fields are presented. The development of the equation of motion was based on Euler-Bernoulli theory, Hamilton principle and nonlocal elasticity theory. The results of the analytical solutions using Galerkin decomposition differential transform method (GDDTM) were validated with existing experimental results. From the parametric studies, it was shown that decreasing the temperature difference as well as increasing the downstream angle decreased the system's stability for pre-bifurcation analysis but increased stability of the system for post bifurcation analysis. Also, the results obtained from the dynamic behaviour of the system indicated that the magnetic effect had an attenuating impact of about 45% on the system's response at any mode and for any boundary condition considered. It is hoped that this work will enhance the design and optimization of nano-devices with I, V, Y, L, K and T-shaped junctions under the influence of thermal-magneto-mechanical flow induced vibration.
topic Thermal-mechanical vibration
Branched single walled carbon nanotube
Magnetic field
Galerkin and differential transformation method
Dynamic and stability analysis
url http://www.sciencedirect.com/science/article/pii/S258996511930090X
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