Powering smart pipes with fluid flow: Effect of velocity profiles

The dynamics of elastic cantilevered smart pipes conveying fluid with non-uniform flow velocity profiles is presented for optimal power generation. The Navier-Stokes equations are used to model the incompressible flow in the circular smart pipe, and flow profile modification factors are formulated b...

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Main Authors: Lumentut, Mikail, Friswell, M.I.
Format: Journal Article
Published: 2022
Online Access:http://hdl.handle.net/20.500.11937/88201
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author Lumentut, Mikail
Friswell, M.I.
author_facet Lumentut, Mikail
Friswell, M.I.
author_sort Lumentut, Mikail
building Curtin Institutional Repository
collection Online Access
description The dynamics of elastic cantilevered smart pipes conveying fluid with non-uniform flow velocity profiles is presented for optimal power generation. The Navier-Stokes equations are used to model the incompressible flow in the circular smart pipe, and flow profile modification factors are formulated based on the Reynolds number and Darcy friction factor. The coupled constitutive dynamic equations, including the electrical circuit, are formulated for laminar and turbulent flows. Due to viscosity in a real fluid, non-uniform flow profiles induce dynamic stability and instability phenomena that affect the generated power. The system consists of an elastic pipe with segmented smart material located on the circumference and longitudinal regions, the circuit, and the electromechanical components. The modified coupled constitutive equations are solved using the weak form extended Ritz method. For faster convergence, this model is reduced from the exact solution of the pipe structure with proof mass offset. Initial validation with a uniform flow profile from previous work is conducted. With increasing flow velocity, the optimal power output and their frequency shifts are investigated both with and without the flow profile modification factors, to identify the level of instability. Further parametric studies with and without flow pulsation and base excitation are given.
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format Journal Article
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institution Curtin University Malaysia
institution_category Local University
last_indexed 2025-11-14T11:28:01Z
publishDate 2022
recordtype eprints
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spelling curtin-20.500.11937-882012023-11-01T04:07:37Z Powering smart pipes with fluid flow: Effect of velocity profiles Lumentut, Mikail Friswell, M.I. The dynamics of elastic cantilevered smart pipes conveying fluid with non-uniform flow velocity profiles is presented for optimal power generation. The Navier-Stokes equations are used to model the incompressible flow in the circular smart pipe, and flow profile modification factors are formulated based on the Reynolds number and Darcy friction factor. The coupled constitutive dynamic equations, including the electrical circuit, are formulated for laminar and turbulent flows. Due to viscosity in a real fluid, non-uniform flow profiles induce dynamic stability and instability phenomena that affect the generated power. The system consists of an elastic pipe with segmented smart material located on the circumference and longitudinal regions, the circuit, and the electromechanical components. The modified coupled constitutive equations are solved using the weak form extended Ritz method. For faster convergence, this model is reduced from the exact solution of the pipe structure with proof mass offset. Initial validation with a uniform flow profile from previous work is conducted. With increasing flow velocity, the optimal power output and their frequency shifts are investigated both with and without the flow profile modification factors, to identify the level of instability. Further parametric studies with and without flow pulsation and base excitation are given. 2022 Journal Article http://hdl.handle.net/20.500.11937/88201 10.1016/j.compstruc.2021.106680 http://creativecommons.org/licenses/by-nc-nd/4.0/ fulltext
spellingShingle Lumentut, Mikail
Friswell, M.I.
Powering smart pipes with fluid flow: Effect of velocity profiles
title Powering smart pipes with fluid flow: Effect of velocity profiles
title_full Powering smart pipes with fluid flow: Effect of velocity profiles
title_fullStr Powering smart pipes with fluid flow: Effect of velocity profiles
title_full_unstemmed Powering smart pipes with fluid flow: Effect of velocity profiles
title_short Powering smart pipes with fluid flow: Effect of velocity profiles
title_sort powering smart pipes with fluid flow: effect of velocity profiles
url http://hdl.handle.net/20.500.11937/88201