Numerical Study of Heat Transfer Enhancement of Turbulent Flow Using Twisted Tape Insert Fitted with Hemispherical Extruded Surface

Heat transfer enhancement of heat exchangers is an important matter of concern to achieve more effective thermal energy conversion systems. The use of modified twisted tape (TT) inserts as passive technique of heat transfer augmentation are effective way to improve heat transfer. In this study, a nu...

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Main Authors: Rubbi, F., Habib, K., Tusar, M., Das, L., Rahman, Md.T.
Format: Article
Published: International Information and Engineering Technology Association 2020
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85092940008&doi=10.18280%2fijht.380205&partnerID=40&md5=8eca7edc493ebbc93eb1bfc5a0a674a0
http://eprints.utp.edu.my/23201/
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spelling my.utp.eprints.232012021-08-19T06:09:32Z Numerical Study of Heat Transfer Enhancement of Turbulent Flow Using Twisted Tape Insert Fitted with Hemispherical Extruded Surface Rubbi, F. Habib, K. Tusar, M. Das, L. Rahman, Md.T. Heat transfer enhancement of heat exchangers is an important matter of concern to achieve more effective thermal energy conversion systems. The use of modified twisted tape (TT) inserts as passive technique of heat transfer augmentation are effective way to improve heat transfer. In this study, a numerical analysis is performed to investigate the heat transfer performance enhancement and flow behavior in a circular pipe using TT insert fitted with a hemispherical extruded surface (HES). The study is carried out for the turbulent flow regime (4000�Re�10000) at a twist ratio of 4.0 using ANSYS FLUENT. A flow domain is designed and mathematically modeled applying boundary conditions and using governing equations for turbulent model. The plain tube data is validated with established correlations. The achieved numerical results reveal that for TT fitted with HES leads to increment in heat transfer rate up to 69.4 compared to plain tube due to effective swirl flow and better mixing caused by the insert. Corresponding increase in friction factor is found relative to plain tube. The impact on the thermal performance factor has obtained a maximum of 1.24 at constant pumping power for Reynold number 4000. © 2020 International Information and Engineering Technology Association. All rights reserved. International Information and Engineering Technology Association 2020 Article NonPeerReviewed https://www.scopus.com/inward/record.uri?eid=2-s2.0-85092940008&doi=10.18280%2fijht.380205&partnerID=40&md5=8eca7edc493ebbc93eb1bfc5a0a674a0 Rubbi, F. and Habib, K. and Tusar, M. and Das, L. and Rahman, Md.T. (2020) Numerical Study of Heat Transfer Enhancement of Turbulent Flow Using Twisted Tape Insert Fitted with Hemispherical Extruded Surface. International Journal of Heat and Technology, 38 (2). pp. 314-320. http://eprints.utp.edu.my/23201/
institution Universiti Teknologi Petronas
building UTP Resource Centre
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Petronas
content_source UTP Institutional Repository
url_provider http://eprints.utp.edu.my/
description Heat transfer enhancement of heat exchangers is an important matter of concern to achieve more effective thermal energy conversion systems. The use of modified twisted tape (TT) inserts as passive technique of heat transfer augmentation are effective way to improve heat transfer. In this study, a numerical analysis is performed to investigate the heat transfer performance enhancement and flow behavior in a circular pipe using TT insert fitted with a hemispherical extruded surface (HES). The study is carried out for the turbulent flow regime (4000�Re�10000) at a twist ratio of 4.0 using ANSYS FLUENT. A flow domain is designed and mathematically modeled applying boundary conditions and using governing equations for turbulent model. The plain tube data is validated with established correlations. The achieved numerical results reveal that for TT fitted with HES leads to increment in heat transfer rate up to 69.4 compared to plain tube due to effective swirl flow and better mixing caused by the insert. Corresponding increase in friction factor is found relative to plain tube. The impact on the thermal performance factor has obtained a maximum of 1.24 at constant pumping power for Reynold number 4000. © 2020 International Information and Engineering Technology Association. All rights reserved.
format Article
author Rubbi, F.
Habib, K.
Tusar, M.
Das, L.
Rahman, Md.T.
spellingShingle Rubbi, F.
Habib, K.
Tusar, M.
Das, L.
Rahman, Md.T.
Numerical Study of Heat Transfer Enhancement of Turbulent Flow Using Twisted Tape Insert Fitted with Hemispherical Extruded Surface
author_facet Rubbi, F.
Habib, K.
Tusar, M.
Das, L.
Rahman, Md.T.
author_sort Rubbi, F.
title Numerical Study of Heat Transfer Enhancement of Turbulent Flow Using Twisted Tape Insert Fitted with Hemispherical Extruded Surface
title_short Numerical Study of Heat Transfer Enhancement of Turbulent Flow Using Twisted Tape Insert Fitted with Hemispherical Extruded Surface
title_full Numerical Study of Heat Transfer Enhancement of Turbulent Flow Using Twisted Tape Insert Fitted with Hemispherical Extruded Surface
title_fullStr Numerical Study of Heat Transfer Enhancement of Turbulent Flow Using Twisted Tape Insert Fitted with Hemispherical Extruded Surface
title_full_unstemmed Numerical Study of Heat Transfer Enhancement of Turbulent Flow Using Twisted Tape Insert Fitted with Hemispherical Extruded Surface
title_sort numerical study of heat transfer enhancement of turbulent flow using twisted tape insert fitted with hemispherical extruded surface
publisher International Information and Engineering Technology Association
publishDate 2020
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85092940008&doi=10.18280%2fijht.380205&partnerID=40&md5=8eca7edc493ebbc93eb1bfc5a0a674a0
http://eprints.utp.edu.my/23201/
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