Thermal performance evaluation of latent heat storage systems with plate fin-metal foam hybrid structure

The thermal performance of phase change materials (PCM) embedded with fins and metal foam is investigated. Plate fins are attached to the enclosure, and metal foam is embedded between adjacent fins to enhance heat transfer. To predict the melting behavior, a numerical model is established based on t...

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Main Authors: Chen Ding, Liang Wang, Zhiling Niu
Format: Article
Language:English
Published: Elsevier 2021-10-01
Series:Case Studies in Thermal Engineering
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2214157X2100472X
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spelling doaj-99f09225354e46798918c8fb9a2b27762021-09-03T04:45:35ZengElsevierCase Studies in Thermal Engineering2214-157X2021-10-0127101309Thermal performance evaluation of latent heat storage systems with plate fin-metal foam hybrid structureChen Ding0Liang Wang1Zhiling Niu2Corresponding author.; China Academy of Launch Vehicle Technology, Beijing, 100076, ChinaChina Academy of Launch Vehicle Technology, Beijing, 100076, ChinaChina Academy of Launch Vehicle Technology, Beijing, 100076, ChinaThe thermal performance of phase change materials (PCM) embedded with fins and metal foam is investigated. Plate fins are attached to the enclosure, and metal foam is embedded between adjacent fins to enhance heat transfer. To predict the melting behavior, a numerical model is established based on the enthalpy-porosity method, considering natural convection, flow resistance induced by metal foam, and non-equilibrium heat transfer. Nine cases considering various geometric parameters, heat transfer enhancement designs, and heated wall temperature are studied. Furthermore, a dimensionless theoretical model is derived to conclude the effect of combined parameters. It shows that the melting time reduces by 24.8 % as the fin height decreases from 80 mm to 50 mm, and the melting time becomes shorter with the decrease of fin thickness. However, the heat flux gets higher for higher fin height and thinner fin thickness. Moreover, the melting rate and heat flux become higher for higher fin volume fraction, lower metal foam porosity, and higher heated wall temperature. Furthermore, the theoretical model reveals that as Stefan number, fin efficiency, and the ratio of thermal diffusivity to the squared fin height become larger, the melting rate becomes higher.http://www.sciencedirect.com/science/article/pii/S2214157X2100472XPhase change materialsLatent heat storageFin-metal foam structureThermal performance
collection DOAJ
language English
format Article
sources DOAJ
author Chen Ding
Liang Wang
Zhiling Niu
spellingShingle Chen Ding
Liang Wang
Zhiling Niu
Thermal performance evaluation of latent heat storage systems with plate fin-metal foam hybrid structure
Case Studies in Thermal Engineering
Phase change materials
Latent heat storage
Fin-metal foam structure
Thermal performance
author_facet Chen Ding
Liang Wang
Zhiling Niu
author_sort Chen Ding
title Thermal performance evaluation of latent heat storage systems with plate fin-metal foam hybrid structure
title_short Thermal performance evaluation of latent heat storage systems with plate fin-metal foam hybrid structure
title_full Thermal performance evaluation of latent heat storage systems with plate fin-metal foam hybrid structure
title_fullStr Thermal performance evaluation of latent heat storage systems with plate fin-metal foam hybrid structure
title_full_unstemmed Thermal performance evaluation of latent heat storage systems with plate fin-metal foam hybrid structure
title_sort thermal performance evaluation of latent heat storage systems with plate fin-metal foam hybrid structure
publisher Elsevier
series Case Studies in Thermal Engineering
issn 2214-157X
publishDate 2021-10-01
description The thermal performance of phase change materials (PCM) embedded with fins and metal foam is investigated. Plate fins are attached to the enclosure, and metal foam is embedded between adjacent fins to enhance heat transfer. To predict the melting behavior, a numerical model is established based on the enthalpy-porosity method, considering natural convection, flow resistance induced by metal foam, and non-equilibrium heat transfer. Nine cases considering various geometric parameters, heat transfer enhancement designs, and heated wall temperature are studied. Furthermore, a dimensionless theoretical model is derived to conclude the effect of combined parameters. It shows that the melting time reduces by 24.8 % as the fin height decreases from 80 mm to 50 mm, and the melting time becomes shorter with the decrease of fin thickness. However, the heat flux gets higher for higher fin height and thinner fin thickness. Moreover, the melting rate and heat flux become higher for higher fin volume fraction, lower metal foam porosity, and higher heated wall temperature. Furthermore, the theoretical model reveals that as Stefan number, fin efficiency, and the ratio of thermal diffusivity to the squared fin height become larger, the melting rate becomes higher.
topic Phase change materials
Latent heat storage
Fin-metal foam structure
Thermal performance
url http://www.sciencedirect.com/science/article/pii/S2214157X2100472X
work_keys_str_mv AT chending thermalperformanceevaluationoflatentheatstoragesystemswithplatefinmetalfoamhybridstructure
AT liangwang thermalperformanceevaluationoflatentheatstoragesystemswithplatefinmetalfoamhybridstructure
AT zhilingniu thermalperformanceevaluationoflatentheatstoragesystemswithplatefinmetalfoamhybridstructure
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