Numerical investigation of subcooled boiling heat transfer in helically-coiled tube

Subcooled boiling heat transfer in helically-coiled tubes offers better heat transfer performance than any other types of boiling processes due to its ability to capture high heat flux with a relatively low wall superheat. This study investigates turbulent subcooled forced convection boiling perform...

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Main Authors: Haryoko, L.A.F., Kurnia, J.C., Sasmito, A.P.
Format: Article
Published: Universiti Malaysia Pahang 2020
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85084254458&doi=10.15282%2fIJAME.17.1.2020.15.0570&partnerID=40&md5=acd0746a8b2d191ed1217b0618f99d49
http://eprints.utp.edu.my/23153/
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spelling my.utp.eprints.231532021-08-19T06:10:32Z Numerical investigation of subcooled boiling heat transfer in helically-coiled tube Haryoko, L.A.F. Kurnia, J.C. Sasmito, A.P. Subcooled boiling heat transfer in helically-coiled tubes offers better heat transfer performance than any other types of boiling processes due to its ability to capture high heat flux with a relatively low wall superheat. This study investigates turbulent subcooled forced convection boiling performances of water-vapour in a helically-coiled tube with various operating conditions i.e. operating pressure, heat, and mass flux. Developed CFD model is validated against previously published experimental results using the RPI model. The model is developed based on the Eulerian-Eulerian framework coupled with k-e RNG turbulence model and Standard Wall-Function. A good agreement is found between numerical prediction and experimental counterpart for the bulk fluid temperature and non-dimensional length. The result indicates that the subcooled boiling heat transfer in a helically-coiled tube tends to improve heat transfer coefficient and pressure drop in the domain. Subcooled boiling starts at the inner side of the helically-coiled tube (f=990°) due to the existence of secondary flow that comes from the coil curvature. Heat transfer coefficient and pressure drop increased with increasing heat flux and decreasing mass flux, and operating pressure. This is caused by the bubble movement and convective heat transfer phenomena in a helically-coiled tube. Finally, this study can provide a guideline for future research of the subcooled boiling in a helically-coiled tube. © The Authors 2020. Universiti Malaysia Pahang 2020 Article NonPeerReviewed https://www.scopus.com/inward/record.uri?eid=2-s2.0-85084254458&doi=10.15282%2fIJAME.17.1.2020.15.0570&partnerID=40&md5=acd0746a8b2d191ed1217b0618f99d49 Haryoko, L.A.F. and Kurnia, J.C. and Sasmito, A.P. (2020) Numerical investigation of subcooled boiling heat transfer in helically-coiled tube. International Journal of Automotive and Mechanical Engineering, 17 (1). pp. 7675-7686. http://eprints.utp.edu.my/23153/
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 Subcooled boiling heat transfer in helically-coiled tubes offers better heat transfer performance than any other types of boiling processes due to its ability to capture high heat flux with a relatively low wall superheat. This study investigates turbulent subcooled forced convection boiling performances of water-vapour in a helically-coiled tube with various operating conditions i.e. operating pressure, heat, and mass flux. Developed CFD model is validated against previously published experimental results using the RPI model. The model is developed based on the Eulerian-Eulerian framework coupled with k-e RNG turbulence model and Standard Wall-Function. A good agreement is found between numerical prediction and experimental counterpart for the bulk fluid temperature and non-dimensional length. The result indicates that the subcooled boiling heat transfer in a helically-coiled tube tends to improve heat transfer coefficient and pressure drop in the domain. Subcooled boiling starts at the inner side of the helically-coiled tube (f=990°) due to the existence of secondary flow that comes from the coil curvature. Heat transfer coefficient and pressure drop increased with increasing heat flux and decreasing mass flux, and operating pressure. This is caused by the bubble movement and convective heat transfer phenomena in a helically-coiled tube. Finally, this study can provide a guideline for future research of the subcooled boiling in a helically-coiled tube. © The Authors 2020.
format Article
author Haryoko, L.A.F.
Kurnia, J.C.
Sasmito, A.P.
spellingShingle Haryoko, L.A.F.
Kurnia, J.C.
Sasmito, A.P.
Numerical investigation of subcooled boiling heat transfer in helically-coiled tube
author_facet Haryoko, L.A.F.
Kurnia, J.C.
Sasmito, A.P.
author_sort Haryoko, L.A.F.
title Numerical investigation of subcooled boiling heat transfer in helically-coiled tube
title_short Numerical investigation of subcooled boiling heat transfer in helically-coiled tube
title_full Numerical investigation of subcooled boiling heat transfer in helically-coiled tube
title_fullStr Numerical investigation of subcooled boiling heat transfer in helically-coiled tube
title_full_unstemmed Numerical investigation of subcooled boiling heat transfer in helically-coiled tube
title_sort numerical investigation of subcooled boiling heat transfer in helically-coiled tube
publisher Universiti Malaysia Pahang
publishDate 2020
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85084254458&doi=10.15282%2fIJAME.17.1.2020.15.0570&partnerID=40&md5=acd0746a8b2d191ed1217b0618f99d49
http://eprints.utp.edu.my/23153/
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score 13.15806