Numerical Study on Heat Transfer and Enhancement Mechanism in PCM-Filled Shell-and-Tube Heat Exchangers

A numerical model was established using the enthalpy-porosity approach to study the heat transfer characteristics of a shell-and-tube phase change heat exchanger filled with paraffin wax RT50. The influence of exchanger placement forms, tube diameters and fin structures on the phase change process o...

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Main Authors: Jiabin Fang, Tao Han, Yixin Bi, Haobing Yan, Jinjia Wei
Format: Article
Language:English
Published: Frontiers Media S.A. 2022-04-01
Series:Frontiers in Energy Research
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fenrg.2022.885564/full
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author Jiabin Fang
Tao Han
Yixin Bi
Haobing Yan
Jinjia Wei
author_facet Jiabin Fang
Tao Han
Yixin Bi
Haobing Yan
Jinjia Wei
author_sort Jiabin Fang
collection DOAJ
description A numerical model was established using the enthalpy-porosity approach to study the heat transfer characteristics of a shell-and-tube phase change heat exchanger filled with paraffin wax RT50. The influence of exchanger placement forms, tube diameters and fin structures on the phase change process of RT50 was analyzed. The results depicted that the vertical heat exchanger has a faster melting rate than the horizontal one as the tube diameter is large. However, the opposite results were obtained in case the tube diameter is small. For the horizontal exchanger, the heat conduction is dominant at the beginning and end of the melting process, while the natural convection plays a more important role at the intermediate stage of melting. Besides, the duration of the melting is mainly determined by the natural convection. In addition, adopting fins on the outer of the tube can significantly improve the heat transfer and therefore shorten the melting time. Compared with finless tube, the use of annular-fin tube can reduce the melting time by 31.6% mainly because of the intensifying of heat conduction, while the use of straight-fin tube can shorten the melting time by 42.1% attributed to the enhancement of both natural convection and heat conduction during the melting process.
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spelling doaj.art-962f935dfbaf4f478700ee1f78fa8ab32022-12-21T23:55:55ZengFrontiers Media S.A.Frontiers in Energy Research2296-598X2022-04-011010.3389/fenrg.2022.885564885564Numerical Study on Heat Transfer and Enhancement Mechanism in PCM-Filled Shell-and-Tube Heat ExchangersJiabin FangTao HanYixin BiHaobing YanJinjia WeiA numerical model was established using the enthalpy-porosity approach to study the heat transfer characteristics of a shell-and-tube phase change heat exchanger filled with paraffin wax RT50. The influence of exchanger placement forms, tube diameters and fin structures on the phase change process of RT50 was analyzed. The results depicted that the vertical heat exchanger has a faster melting rate than the horizontal one as the tube diameter is large. However, the opposite results were obtained in case the tube diameter is small. For the horizontal exchanger, the heat conduction is dominant at the beginning and end of the melting process, while the natural convection plays a more important role at the intermediate stage of melting. Besides, the duration of the melting is mainly determined by the natural convection. In addition, adopting fins on the outer of the tube can significantly improve the heat transfer and therefore shorten the melting time. Compared with finless tube, the use of annular-fin tube can reduce the melting time by 31.6% mainly because of the intensifying of heat conduction, while the use of straight-fin tube can shorten the melting time by 42.1% attributed to the enhancement of both natural convection and heat conduction during the melting process.https://www.frontiersin.org/articles/10.3389/fenrg.2022.885564/fullphase change materialmeltingfinsnatural convectionheat storage
spellingShingle Jiabin Fang
Tao Han
Yixin Bi
Haobing Yan
Jinjia Wei
Numerical Study on Heat Transfer and Enhancement Mechanism in PCM-Filled Shell-and-Tube Heat Exchangers
Frontiers in Energy Research
phase change material
melting
fins
natural convection
heat storage
title Numerical Study on Heat Transfer and Enhancement Mechanism in PCM-Filled Shell-and-Tube Heat Exchangers
title_full Numerical Study on Heat Transfer and Enhancement Mechanism in PCM-Filled Shell-and-Tube Heat Exchangers
title_fullStr Numerical Study on Heat Transfer and Enhancement Mechanism in PCM-Filled Shell-and-Tube Heat Exchangers
title_full_unstemmed Numerical Study on Heat Transfer and Enhancement Mechanism in PCM-Filled Shell-and-Tube Heat Exchangers
title_short Numerical Study on Heat Transfer and Enhancement Mechanism in PCM-Filled Shell-and-Tube Heat Exchangers
title_sort numerical study on heat transfer and enhancement mechanism in pcm filled shell and tube heat exchangers
topic phase change material
melting
fins
natural convection
heat storage
url https://www.frontiersin.org/articles/10.3389/fenrg.2022.885564/full
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AT yixinbi numericalstudyonheattransferandenhancementmechanisminpcmfilledshellandtubeheatexchangers
AT haobingyan numericalstudyonheattransferandenhancementmechanisminpcmfilledshellandtubeheatexchangers
AT jinjiawei numericalstudyonheattransferandenhancementmechanisminpcmfilledshellandtubeheatexchangers