Heat transfer enhancement by sinusoidal-shaped disk rotating in a forced flow

The geometric characteristics of the heat transferring surface and the outer flow conditions have a significant impact on heat transfer augmentation. Both, the surface roughness and the pressure gradient attribute to an enhanced heat transfer. These two effects are utilized in this study to enhance...

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Main Authors: Mehmood Ahmer, Usman Muhammad, Weigand Bernhard
Format: Article
Language:English
Published: VINCA Institute of Nuclear Sciences 2021-01-01
Series:Thermal Science
Subjects:
Online Access:http://www.doiserbia.nb.rs/img/doi/0354-9836/2021/0354-98361900283M.pdf
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spelling doaj-42379c4031d14f5c8fa66829e8cc076a2021-02-05T08:41:54ZengVINCA Institute of Nuclear SciencesThermal Science0354-98362334-71632021-01-01251 Part A13314410.2298/TSCI181005283M0354-98361900283MHeat transfer enhancement by sinusoidal-shaped disk rotating in a forced flowMehmood Ahmer0Usman Muhammad1Weigand Bernhard2Department of Mathematics & Statistics, FBAS, International Islamic University, Islamabad, PakistanDepartment of Mathematics, University of Education, Vehari Campus, Vehari, PakistanInstitute of Aerospace Thermodynamics, University of Stuttgart, GermanyThe geometric characteristics of the heat transferring surface and the outer flow conditions have a significant impact on heat transfer augmentation. Both, the surface roughness and the pressure gradient attribute to an enhanced heat transfer. These two effects are utilized in this study to enhance the convective heat transfer rate in a non-similar boundary-layer flow induced by the rotation of a sinusoidal-shaped disk in an external forced flow. The heat transfer coefficient is calculated numerically for the laminar boundary-layer flow with the help of the Keller-box method. The numerical solution of the governing system of equations is first validated by previous published (theoretical and experimental) results for a wavy rotating disk in the absence of an external flow field and also for a flat disk rotating in a forced flow. It is observed that the effect of surface waviness along with a relative fluid motion on heat transfer rate, shear stresses, and shaft torque is quite pronounced. Specifically, enhancement of moment coefficient due to waviness of the disk leads to increase the power of a wavy disk pump in comparison to a smooth one. Furthermore, 119%, 174%, 86%, and 86% enhancement in the heat transfer rate, the radial shear stress, the tangential shear stress, and the moment coefficient, respectively, is observed for a rotating wavy disk subjected to a forced flow (at fixed a/ω = ∞ and a0/λ = 0.125) in comparison to a free rotating flat disk.http://www.doiserbia.nb.rs/img/doi/0354-9836/2021/0354-98361900283M.pdfsinusoidal rotating diskboundary-layer flowforced flowheat transfer enhancement
collection DOAJ
language English
format Article
sources DOAJ
author Mehmood Ahmer
Usman Muhammad
Weigand Bernhard
spellingShingle Mehmood Ahmer
Usman Muhammad
Weigand Bernhard
Heat transfer enhancement by sinusoidal-shaped disk rotating in a forced flow
Thermal Science
sinusoidal rotating disk
boundary-layer flow
forced flow
heat transfer enhancement
author_facet Mehmood Ahmer
Usman Muhammad
Weigand Bernhard
author_sort Mehmood Ahmer
title Heat transfer enhancement by sinusoidal-shaped disk rotating in a forced flow
title_short Heat transfer enhancement by sinusoidal-shaped disk rotating in a forced flow
title_full Heat transfer enhancement by sinusoidal-shaped disk rotating in a forced flow
title_fullStr Heat transfer enhancement by sinusoidal-shaped disk rotating in a forced flow
title_full_unstemmed Heat transfer enhancement by sinusoidal-shaped disk rotating in a forced flow
title_sort heat transfer enhancement by sinusoidal-shaped disk rotating in a forced flow
publisher VINCA Institute of Nuclear Sciences
series Thermal Science
issn 0354-9836
2334-7163
publishDate 2021-01-01
description The geometric characteristics of the heat transferring surface and the outer flow conditions have a significant impact on heat transfer augmentation. Both, the surface roughness and the pressure gradient attribute to an enhanced heat transfer. These two effects are utilized in this study to enhance the convective heat transfer rate in a non-similar boundary-layer flow induced by the rotation of a sinusoidal-shaped disk in an external forced flow. The heat transfer coefficient is calculated numerically for the laminar boundary-layer flow with the help of the Keller-box method. The numerical solution of the governing system of equations is first validated by previous published (theoretical and experimental) results for a wavy rotating disk in the absence of an external flow field and also for a flat disk rotating in a forced flow. It is observed that the effect of surface waviness along with a relative fluid motion on heat transfer rate, shear stresses, and shaft torque is quite pronounced. Specifically, enhancement of moment coefficient due to waviness of the disk leads to increase the power of a wavy disk pump in comparison to a smooth one. Furthermore, 119%, 174%, 86%, and 86% enhancement in the heat transfer rate, the radial shear stress, the tangential shear stress, and the moment coefficient, respectively, is observed for a rotating wavy disk subjected to a forced flow (at fixed a/ω = ∞ and a0/λ = 0.125) in comparison to a free rotating flat disk.
topic sinusoidal rotating disk
boundary-layer flow
forced flow
heat transfer enhancement
url http://www.doiserbia.nb.rs/img/doi/0354-9836/2021/0354-98361900283M.pdf
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AT usmanmuhammad heattransferenhancementbysinusoidalshapeddiskrotatinginaforcedflow
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