On the viscoelastic dynamics of fluid-conveying microtubes

This paper is the first to analyse the coupled fluid-structure viscoelastic dynamical characteristics of a fluid-conveying viscoelastic microtube resting on a nonlinear elastic bed subject to large rotations. None of the axial and transverse motions/accelerations is neglected in the modelling and si...

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Published inInternational journal of engineering science Vol. 127; pp. 186 - 200
Main Authors Ghayesh, Mergen H., Farokhi, Hamed
Format Journal Article
LanguageEnglish
Published Oxford Elsevier Ltd 01.06.2018
Elsevier BV
Subjects
Online AccessGet full text
ISSN0020-7225
1879-2197
DOI10.1016/j.ijengsci.2018.02.010

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Abstract This paper is the first to analyse the coupled fluid-structure viscoelastic dynamical characteristics of a fluid-conveying viscoelastic microtube resting on a nonlinear elastic bed subject to large rotations. None of the axial and transverse motions/accelerations is neglected in the modelling and simulations. The dissipation is modelled using the Kelvin–Voigt scheme for the deviatoric segment of the symmetric couple stress tensor and the stress tensor. Based on the Euler–Bernoulli theory, in which the microtube cross-section remains perpendicular to the centreline, and the modified couple stress theory (MCST), the energies and the work of external load and damping are formulated. Through use of Hamilton's principle, the coupled transverse-longitudinal equations governing the motion of the fluid-conveying viscoelastic microtube are developed. A weighted-residual-based discretisation method is applied to the continuous vibration model and the resultant reduced model is simulated via a continuation technique. The coupled fluid-structure dynamical characteristics of the fluid-conveying viscoelastic microtube are analysed by constructing the frequency-amplitude diagrams. It is shown that slight changes in the flow speed significantly affects the resonant response and modal interactions.
AbstractList This paper is the first to analyse the coupled fluid-structure viscoelastic dynamical characteristics of a fluid-conveying viscoelastic microtube resting on a nonlinear elastic bed subject to large rotations. None of the axial and transverse motions/accelerations is neglected in the modelling and simulations. The dissipation is modelled using the Kelvin–Voigt scheme for the deviatoric segment of the symmetric couple stress tensor and the stress tensor. Based on the Euler–Bernoulli theory, in which the microtube cross-section remains perpendicular to the centreline, and the modified couple stress theory (MCST), the energies and the work of external load and damping are formulated. Through use of Hamilton's principle, the coupled transverse-longitudinal equations governing the motion of the fluid-conveying viscoelastic microtube are developed. A weighted-residual-based discretisation method is applied to the continuous vibration model and the resultant reduced model is simulated via a continuation technique. The coupled fluid-structure dynamical characteristics of the fluid-conveying viscoelastic microtube are analysed by constructing the frequency-amplitude diagrams. It is shown that slight changes in the flow speed significantly affects the resonant response and modal interactions.
Author Ghayesh, Mergen H.
Farokhi, Hamed
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Keywords Elastic bed
Viscoelastic microtube
Small size effect
Kelvin–Voigt
Fluid-conveying
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Snippet This paper is the first to analyse the coupled fluid-structure viscoelastic dynamical characteristics of a fluid-conveying viscoelastic microtube resting on a...
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SubjectTerms Ceramic microtubes
Computer simulation
Conveying
Elastic bed
Fluid dynamics
Fluid-conveying
Hamilton's principle
Kelvin–Voigt
Size
Small size effect
Stresses
Viscoelastic microtube
Viscoelasticity
Title On the viscoelastic dynamics of fluid-conveying microtubes
URI https://dx.doi.org/10.1016/j.ijengsci.2018.02.010
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