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  5. Lithium-Ion Battery Thermal Runaway Suppression Using Water Spray Cooling

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Article
English
2025

Lithium-Ion Battery Thermal Runaway Suppression Using Water Spray Cooling

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0 Files

English
2025
Energies
Vol 18 (11)
DOI: 10.3390/en18112709

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Shenen Chen
Shenen Chen

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Eric Huhn
Nicole Braxtan
Shenen Chen
+5 more

Abstract

Despite the commercial success of lithium-ion batteries (LIBs), the risk of thermal runaway, which can lead to dangerous fires, has become more concerning as LIB usage increases. Research has focused on understanding the causes of thermal runaway and how to prevent or detect it. Additionally, novel thermal runaway-resistant materials are being researched, as are different methods of constructing LIBs that better isolate thermal runaway and prevent it from propagating. However, field firefighters are using hundreds of thousands of liters of water to control large runaway thermal emergencies, highlighting the need to merge research with practical observations. To study battery fire, this study utilized a temperature abuse method to increase LIB temperature and investigated whether thermal runaway can be suppressed by applying external cooling during heating. The batteries used were pouch-type ones and subjected to high states of charge (SOC), which primed the thermal runaway during battery temperature increase. A water spray method was then devised and tested to reduce battery temperature. Results showed that, without cooling, a thermal runaway fire occurred every time during the thermal abuse. However, external cooling successfully prevented thermal runaway. This observation shows that using water as a temperature reducer is more effective than using it as a fire suppressant, which can substantially improve battery performance and increase public safety.

How to cite this publication

Eric Huhn, Nicole Braxtan, Shenen Chen, Anthony Bombik, Tiefu Zhao, Lin Ma, John Sherman, Soroush Roghani (2025). Lithium-Ion Battery Thermal Runaway Suppression Using Water Spray Cooling. Energies, 18(11), pp. 2709-2709, DOI: 10.3390/en18112709.

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Publication Details

Type

Article

Year

2025

Authors

8

Datasets

0

Total Files

0

Language

English

Journal

Energies

DOI

10.3390/en18112709

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