Enhancing Latent Heat Energy Storage With Heat Pipe-Metal Foam: An Experimental Investigation of the Partial Filling Strategy

Melting and solidification of a phase change material (PCM) is investigated experimentally by applying a partial filling strategy to the hybrid enhancement of heat pipe-metal foam (HP-MF) in a vertical cylinder. HP-MF enhancement can improve the heat transfer capacity of the PCM system as it combine...

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Published in:ENERGY STORAGE
Main Authors: Varthani, A. Jaisatia; Shasthri, S.; Baljit, S.; Kausalyah, V.
Format: Article
Language:English
Published: WILEY 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001327432100001
author Varthani
A. Jaisatia; Shasthri
S.; Baljit
S.; Kausalyah, V.
spellingShingle Varthani
A. Jaisatia; Shasthri
S.; Baljit
S.; Kausalyah, V.
Enhancing Latent Heat Energy Storage With Heat Pipe-Metal Foam: An Experimental Investigation of the Partial Filling Strategy
Energy & Fuels
author_facet Varthani
A. Jaisatia; Shasthri
S.; Baljit
S.; Kausalyah, V.
author_sort Varthani
spelling Varthani, A. Jaisatia; Shasthri, S.; Baljit, S.; Kausalyah, V.
Enhancing Latent Heat Energy Storage With Heat Pipe-Metal Foam: An Experimental Investigation of the Partial Filling Strategy
ENERGY STORAGE
English
Article
Melting and solidification of a phase change material (PCM) is investigated experimentally by applying a partial filling strategy to the hybrid enhancement of heat pipe-metal foam (HP-MF) in a vertical cylinder. HP-MF enhancement can improve the heat transfer capacity of the PCM system as it combines HP's efficient heat transfer capacity with MF's highly effective thermal conductivity capability. The experimental results demonstrate that the partial filling strategy in the melting and solidification of HP-MF PCM can be optimized for effective MF utilization in the HP-MF PCM system. A filling ratio of 83% of MF in HP-MF PCM shows almost identical total melting and solidification along with a temperature distribution to that of an HP-MF PCM (95% porosity, 20 pore density [PPI]). It is plausible to conclude that the removal of 33% or less mass had no significant effect on the overall melting process of HP-MF PCM. It should be noted that the HP-MF PCM system's HP heat transfer efficiency significantly decreased during the melting process when the MF filling ratio was 37.5% and 12.5%.
WILEY

2578-4862
2024
6
7
10.1002/est2.70052
Energy & Fuels
hybrid
WOS:001327432100001
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001327432100001
title Enhancing Latent Heat Energy Storage With Heat Pipe-Metal Foam: An Experimental Investigation of the Partial Filling Strategy
title_short Enhancing Latent Heat Energy Storage With Heat Pipe-Metal Foam: An Experimental Investigation of the Partial Filling Strategy
title_full Enhancing Latent Heat Energy Storage With Heat Pipe-Metal Foam: An Experimental Investigation of the Partial Filling Strategy
title_fullStr Enhancing Latent Heat Energy Storage With Heat Pipe-Metal Foam: An Experimental Investigation of the Partial Filling Strategy
title_full_unstemmed Enhancing Latent Heat Energy Storage With Heat Pipe-Metal Foam: An Experimental Investigation of the Partial Filling Strategy
title_sort Enhancing Latent Heat Energy Storage With Heat Pipe-Metal Foam: An Experimental Investigation of the Partial Filling Strategy
container_title ENERGY STORAGE
language English
format Article
description Melting and solidification of a phase change material (PCM) is investigated experimentally by applying a partial filling strategy to the hybrid enhancement of heat pipe-metal foam (HP-MF) in a vertical cylinder. HP-MF enhancement can improve the heat transfer capacity of the PCM system as it combines HP's efficient heat transfer capacity with MF's highly effective thermal conductivity capability. The experimental results demonstrate that the partial filling strategy in the melting and solidification of HP-MF PCM can be optimized for effective MF utilization in the HP-MF PCM system. A filling ratio of 83% of MF in HP-MF PCM shows almost identical total melting and solidification along with a temperature distribution to that of an HP-MF PCM (95% porosity, 20 pore density [PPI]). It is plausible to conclude that the removal of 33% or less mass had no significant effect on the overall melting process of HP-MF PCM. It should be noted that the HP-MF PCM system's HP heat transfer efficiency significantly decreased during the melting process when the MF filling ratio was 37.5% and 12.5%.
publisher WILEY
issn
2578-4862
publishDate 2024
container_volume 6
container_issue 7
doi_str_mv 10.1002/est2.70052
topic Energy & Fuels
topic_facet Energy & Fuels
accesstype hybrid
id WOS:001327432100001
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001327432100001
record_format wos
collection Web of Science (WoS)
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