Experimental Analysis of a Novel Cooling Material for Large Format Automotive Lithium-Ion Cells
Cooling the surface of large format batteries with solid conductive plates, or fins, has an inherent advantage of reducing the number of liquid seals relative to some mini-channel cold plate designs, as liquid is not passed through the numerous individual plates directly. This may reduce the overall...
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doaj-adf2534f528c412eaa6d1c1b08dd86e22020-11-25T00:35:05ZengMDPI AGEnergies1996-10732019-04-01127125110.3390/en12071251en12071251Experimental Analysis of a Novel Cooling Material for Large Format Automotive Lithium-Ion CellsDaniel Worwood0James Marco1Quirin Kellner2Elham Hosseinzadeh3Ryan McGlen4David Mullen5Kevin Lynn6David Greenwood7WMG, University of Warwick, Coventry CV4 7AL, UKWMG, University of Warwick, Coventry CV4 7AL, UKWMG, University of Warwick, Coventry CV4 7AL, UKWMG, University of Warwick, Coventry CV4 7AL, UKAAVID Thermacore Europe, Ashington NE63, UKAAVID Thermacore Europe, Ashington NE63, UKAAVID Thermacore Europe, Ashington NE63, UKWMG, University of Warwick, Coventry CV4 7AL, UKCooling the surface of large format batteries with solid conductive plates, or fins, has an inherent advantage of reducing the number of liquid seals relative to some mini-channel cold plate designs, as liquid is not passed through the numerous individual plates directly. This may reduce the overall pack leakage risk which is of utmost importance due to safety concerns associated with the possibility of a cell short circuit and thermal runaway event. However, fin cooling comes at a cost of an increased thermal resistance which can lead to higher cell temperatures and a poorer temperature uniformity under aggressive heat generation conditions. In this paper, a novel graphite-based fin material with an in-plane thermal conductivity 5 times greater than aluminium with the same weight is presented for advanced battery cooling. The thermal performance of the fin is benchmarked against conventional copper and aluminium fins in an experimental programme cycling real 53 Ah pouch cells. The results from the extensive experimental testing indicate that the new fin can reduce both the peak measured temperature and surface temperature gradient by up to 8 °C and 5 °C respectively, when compared to aluminium fins under an aggressive electric vehicle duty-cycle.https://www.mdpi.com/1996-1073/12/7/1251lithium-ionpouch-cellbattery thermal managementgraphitefin cooling |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Daniel Worwood James Marco Quirin Kellner Elham Hosseinzadeh Ryan McGlen David Mullen Kevin Lynn David Greenwood |
spellingShingle |
Daniel Worwood James Marco Quirin Kellner Elham Hosseinzadeh Ryan McGlen David Mullen Kevin Lynn David Greenwood Experimental Analysis of a Novel Cooling Material for Large Format Automotive Lithium-Ion Cells Energies lithium-ion pouch-cell battery thermal management graphite fin cooling |
author_facet |
Daniel Worwood James Marco Quirin Kellner Elham Hosseinzadeh Ryan McGlen David Mullen Kevin Lynn David Greenwood |
author_sort |
Daniel Worwood |
title |
Experimental Analysis of a Novel Cooling Material for Large Format Automotive Lithium-Ion Cells |
title_short |
Experimental Analysis of a Novel Cooling Material for Large Format Automotive Lithium-Ion Cells |
title_full |
Experimental Analysis of a Novel Cooling Material for Large Format Automotive Lithium-Ion Cells |
title_fullStr |
Experimental Analysis of a Novel Cooling Material for Large Format Automotive Lithium-Ion Cells |
title_full_unstemmed |
Experimental Analysis of a Novel Cooling Material for Large Format Automotive Lithium-Ion Cells |
title_sort |
experimental analysis of a novel cooling material for large format automotive lithium-ion cells |
publisher |
MDPI AG |
series |
Energies |
issn |
1996-1073 |
publishDate |
2019-04-01 |
description |
Cooling the surface of large format batteries with solid conductive plates, or fins, has an inherent advantage of reducing the number of liquid seals relative to some mini-channel cold plate designs, as liquid is not passed through the numerous individual plates directly. This may reduce the overall pack leakage risk which is of utmost importance due to safety concerns associated with the possibility of a cell short circuit and thermal runaway event. However, fin cooling comes at a cost of an increased thermal resistance which can lead to higher cell temperatures and a poorer temperature uniformity under aggressive heat generation conditions. In this paper, a novel graphite-based fin material with an in-plane thermal conductivity 5 times greater than aluminium with the same weight is presented for advanced battery cooling. The thermal performance of the fin is benchmarked against conventional copper and aluminium fins in an experimental programme cycling real 53 Ah pouch cells. The results from the extensive experimental testing indicate that the new fin can reduce both the peak measured temperature and surface temperature gradient by up to 8 °C and 5 °C respectively, when compared to aluminium fins under an aggressive electric vehicle duty-cycle. |
topic |
lithium-ion pouch-cell battery thermal management graphite fin cooling |
url |
https://www.mdpi.com/1996-1073/12/7/1251 |
work_keys_str_mv |
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