Numerical study on heat transfer of turbulent flow in a channel with composite arrangement obstacles

Forced convective heat transfer of turbulent flow in a two-dimensional channel mounted triangular and trapezoidal obstacles in upper wall and bottom wall arranged with periodic grooves is numerically studied. Continuity, momentum and energy equations are discretized with second order upwind method i...

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Main Authors: Parsazadeh, M., Fathinia, F., Heshmati, A., Wahid, M. A., Sies, M. M.
Format: Conference or Workshop Item
Published: 2013
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Online Access:http://eprints.utm.my/id/eprint/51209/
http://dx.doi.org/10.4028/www.scientific.net/AMM.388.161
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spelling my.utm.512092017-09-18T00:09:38Z http://eprints.utm.my/id/eprint/51209/ Numerical study on heat transfer of turbulent flow in a channel with composite arrangement obstacles Parsazadeh, M. Fathinia, F. Heshmati, A. Wahid, M. A. Sies, M. M. TJ Mechanical engineering and machinery Forced convective heat transfer of turbulent flow in a two-dimensional channel mounted triangular and trapezoidal obstacles in upper wall and bottom wall arranged with periodic grooves is numerically studied. Continuity, momentum and energy equations are discretized with second order upwind method is applied to solve the equations. (RNG) k-ε model is implemented to predict the thermo-hydraulic performance of the flow. A thick of 3mm made up by aluminum is implemented for channel walls that the bottom and upper walls are heated with a uniform heat flux. The thermo-hydraulic effects of shapes and positions of obstacles mounted on upper wall referred to the bottom ribbed and grooved wall of the channel as well as its thermal enhancement factorare tested in a Reynolds number range of 3000 to 5000 with engine oil as working fluid. The numerical results demonstrate that combination of trapezoidal obstacles arrays of the upper wall placed against of ribs array of the bottom wall reveals highest thermal enhancement factor due to trapezoidal obstacles with increasing height in flow direction not only lead the flow to the bottom grooved wall but also the flow osculate surface of the obstacle and restart the thermal boundary layer with lowest friction factor compared to other cases. 2013 Conference or Workshop Item PeerReviewed Parsazadeh, M. and Fathinia, F. and Heshmati, A. and Wahid, M. A. and Sies, M. M. (2013) Numerical study on heat transfer of turbulent flow in a channel with composite arrangement obstacles. In: Applied Mechanics And Materials. http://dx.doi.org/10.4028/www.scientific.net/AMM.388.161
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic TJ Mechanical engineering and machinery
spellingShingle TJ Mechanical engineering and machinery
Parsazadeh, M.
Fathinia, F.
Heshmati, A.
Wahid, M. A.
Sies, M. M.
Numerical study on heat transfer of turbulent flow in a channel with composite arrangement obstacles
description Forced convective heat transfer of turbulent flow in a two-dimensional channel mounted triangular and trapezoidal obstacles in upper wall and bottom wall arranged with periodic grooves is numerically studied. Continuity, momentum and energy equations are discretized with second order upwind method is applied to solve the equations. (RNG) k-ε model is implemented to predict the thermo-hydraulic performance of the flow. A thick of 3mm made up by aluminum is implemented for channel walls that the bottom and upper walls are heated with a uniform heat flux. The thermo-hydraulic effects of shapes and positions of obstacles mounted on upper wall referred to the bottom ribbed and grooved wall of the channel as well as its thermal enhancement factorare tested in a Reynolds number range of 3000 to 5000 with engine oil as working fluid. The numerical results demonstrate that combination of trapezoidal obstacles arrays of the upper wall placed against of ribs array of the bottom wall reveals highest thermal enhancement factor due to trapezoidal obstacles with increasing height in flow direction not only lead the flow to the bottom grooved wall but also the flow osculate surface of the obstacle and restart the thermal boundary layer with lowest friction factor compared to other cases.
format Conference or Workshop Item
author Parsazadeh, M.
Fathinia, F.
Heshmati, A.
Wahid, M. A.
Sies, M. M.
author_facet Parsazadeh, M.
Fathinia, F.
Heshmati, A.
Wahid, M. A.
Sies, M. M.
author_sort Parsazadeh, M.
title Numerical study on heat transfer of turbulent flow in a channel with composite arrangement obstacles
title_short Numerical study on heat transfer of turbulent flow in a channel with composite arrangement obstacles
title_full Numerical study on heat transfer of turbulent flow in a channel with composite arrangement obstacles
title_fullStr Numerical study on heat transfer of turbulent flow in a channel with composite arrangement obstacles
title_full_unstemmed Numerical study on heat transfer of turbulent flow in a channel with composite arrangement obstacles
title_sort numerical study on heat transfer of turbulent flow in a channel with composite arrangement obstacles
publishDate 2013
url http://eprints.utm.my/id/eprint/51209/
http://dx.doi.org/10.4028/www.scientific.net/AMM.388.161
_version_ 1643652972675072000
score 13.160551