Heat Transfer and Entropy Generation in Concentric/Eccentric Double-Pipe Helical Heat Exchangers

Double-pipe helical heat exchangers are integral to contemporary mechanical refrigeration equipment. Modification of flow geometry has been widely adopted to enhance heat transfer performance of a heat exchanger. The objective of this study is to numerically investigate heat transfer and entropy gen...

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Main Authors: Kurnia, J.C., Ghoreishi-Madiseh, S.A., Sasmito, A.P.
Format: Article
Published: Taylor and Francis Ltd. 2020
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85073814496&doi=10.1080%2f01457632.2019.1661666&partnerID=40&md5=2f353f1d0f0050829ecf260c5cc56871
http://eprints.utp.edu.my/23303/
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spelling my.utp.eprints.233032021-08-19T07:25:47Z Heat Transfer and Entropy Generation in Concentric/Eccentric Double-Pipe Helical Heat Exchangers Kurnia, J.C. Ghoreishi-Madiseh, S.A. Sasmito, A.P. Double-pipe helical heat exchangers are integral to contemporary mechanical refrigeration equipment. Modification of flow geometry has been widely adopted to enhance heat transfer performance of a heat exchanger. The objective of this study is to numerically investigate heat transfer and entropy generation in a double pipe helical heat exchanger with various cross-sections. A computational model for laminar convective heat transfer was developed and validated against the results from previously published literature. To capture entropy generation, the entropy balance equation for open system is adopted. Effect of inner pipe Dean number, inner pipe and annulus inlet mass flow rate ratio, eccentricity, and flow configuration (co-flow and counter-flow) were examined and discussed in light of computational results. To ensure fair comparison, the considered geometries have same inner pipe cross-section area, same annulus cross-section area, and same outer surface area of inner pipe. The results suggest that square cross-section offers best performance in term of heat transfer, pressure drop and entropy generation. In addition, concentric configuration is more appropriate for low flow rate application while eccentric outer configuration is more suitable for high flow rate application. © 2019, © 2019 Taylor & Francis Group, LLC. Taylor and Francis Ltd. 2020 Article NonPeerReviewed https://www.scopus.com/inward/record.uri?eid=2-s2.0-85073814496&doi=10.1080%2f01457632.2019.1661666&partnerID=40&md5=2f353f1d0f0050829ecf260c5cc56871 Kurnia, J.C. and Ghoreishi-Madiseh, S.A. and Sasmito, A.P. (2020) Heat Transfer and Entropy Generation in Concentric/Eccentric Double-Pipe Helical Heat Exchangers. Heat Transfer Engineering, 41 (18). pp. 1552-1575. http://eprints.utp.edu.my/23303/
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 Double-pipe helical heat exchangers are integral to contemporary mechanical refrigeration equipment. Modification of flow geometry has been widely adopted to enhance heat transfer performance of a heat exchanger. The objective of this study is to numerically investigate heat transfer and entropy generation in a double pipe helical heat exchanger with various cross-sections. A computational model for laminar convective heat transfer was developed and validated against the results from previously published literature. To capture entropy generation, the entropy balance equation for open system is adopted. Effect of inner pipe Dean number, inner pipe and annulus inlet mass flow rate ratio, eccentricity, and flow configuration (co-flow and counter-flow) were examined and discussed in light of computational results. To ensure fair comparison, the considered geometries have same inner pipe cross-section area, same annulus cross-section area, and same outer surface area of inner pipe. The results suggest that square cross-section offers best performance in term of heat transfer, pressure drop and entropy generation. In addition, concentric configuration is more appropriate for low flow rate application while eccentric outer configuration is more suitable for high flow rate application. © 2019, © 2019 Taylor & Francis Group, LLC.
format Article
author Kurnia, J.C.
Ghoreishi-Madiseh, S.A.
Sasmito, A.P.
spellingShingle Kurnia, J.C.
Ghoreishi-Madiseh, S.A.
Sasmito, A.P.
Heat Transfer and Entropy Generation in Concentric/Eccentric Double-Pipe Helical Heat Exchangers
author_facet Kurnia, J.C.
Ghoreishi-Madiseh, S.A.
Sasmito, A.P.
author_sort Kurnia, J.C.
title Heat Transfer and Entropy Generation in Concentric/Eccentric Double-Pipe Helical Heat Exchangers
title_short Heat Transfer and Entropy Generation in Concentric/Eccentric Double-Pipe Helical Heat Exchangers
title_full Heat Transfer and Entropy Generation in Concentric/Eccentric Double-Pipe Helical Heat Exchangers
title_fullStr Heat Transfer and Entropy Generation in Concentric/Eccentric Double-Pipe Helical Heat Exchangers
title_full_unstemmed Heat Transfer and Entropy Generation in Concentric/Eccentric Double-Pipe Helical Heat Exchangers
title_sort heat transfer and entropy generation in concentric/eccentric double-pipe helical heat exchangers
publisher Taylor and Francis Ltd.
publishDate 2020
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85073814496&doi=10.1080%2f01457632.2019.1661666&partnerID=40&md5=2f353f1d0f0050829ecf260c5cc56871
http://eprints.utp.edu.my/23303/
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