volume 20 pages 100328

Multidimensional fire propagation of lithium-ion phosphate batteries for energy storage

Qinzheng Wang 1, 2, 3
Huaibin Wang 2, 3
Chang Xu 3
Chengshan Xu 3
Chang-Yong Jin 3
Shilin Wang 2
Wang Shilin 2
Lejun Xu 2
Lizhong Xu 2
Jiting Ouyang 1
Jiting Ouyang 1
Xuning Feng 3
Publication typeJournal Article
Publication date2024-05-01
scimago Q1
wos Q1
SJR3.030
CiteScore23.4
Impact factor17.0
ISSN25901168
Electrical and Electronic Engineering
Energy Engineering and Power Technology
Automotive Engineering
Transportation
Abstract
In electrochemical energy storage stations, battery modules are stacked layer by layer on the racks. During the thermal runaway process of the battery, combustible mixture gases are vented. Once ignited by high-temperature surfaces or arcing, the resulting intense jet fire can cause the spread of both the same-layer and upper-layer battery modules. The direction of thermal runaway propagation of the battery involves both horizontal and vertical dimensions. Currently, there is a lack of quantitative research on the multidimensional fire propagation mechanism and heat flow patterns of the "thermal runaway-spontaneous heating-flaming" process in lithium-ion phosphate batteries. This paper conducts multidimensional fire propagation experiments on lithium-ion phosphate batteries in a realistic electrochemical energy storage station scenario. It investigates the propagation characteristics of lithium-ion phosphate batteries in both horizontal and vertical directions, the heat flow patterns during multidimensional propagation, and elucidates the influence mechanism of flame radiation heat transfer on thermal runaway propagation. Research indicates that when the heat transfer reaches 56.6 kJ, it triggers the fire propagation of cell. The heat required to trigger the fire propagation of a battery module is 35.99 kJ. In vertical fire propagation, the thermal runaway propagation time of the upper module is shorter (reduced from 122.3 s to 62.3 s), the temperature is higher (increased from 610.6 °C to 645 °C), the heat release is greater (increased from 205.69 kJ to 221.05 kJ), and the combustion is more intense. The research results of this paper can provide a theoretical basis and technical guidance for the fire safety design of energy storage stations.
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GOST |
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GOST Copy
Wang Q. et al. Multidimensional fire propagation of lithium-ion phosphate batteries for energy storage // eTransportation. 2024. Vol. 20. p. 100328.
GOST all authors (up to 50) Copy
Wang Q., Wang H., Xu C., Xu C., Jin C., Wang S., Shilin W., Xu L., Xu L., Ouyang J., Ouyang J., Feng X. Multidimensional fire propagation of lithium-ion phosphate batteries for energy storage // eTransportation. 2024. Vol. 20. p. 100328.
RIS |
Cite this
RIS Copy
TY - JOUR
DO - 10.1016/j.etran.2024.100328
UR - https://linkinghub.elsevier.com/retrieve/pii/S2590116824000183
TI - Multidimensional fire propagation of lithium-ion phosphate batteries for energy storage
T2 - eTransportation
AU - Wang, Qinzheng
AU - Wang, Huaibin
AU - Xu, Chang
AU - Xu, Chengshan
AU - Jin, Chang-Yong
AU - Wang, Shilin
AU - Shilin, Wang
AU - Xu, Lejun
AU - Xu, Lizhong
AU - Ouyang, Jiting
AU - Ouyang, Jiting
AU - Feng, Xuning
PY - 2024
DA - 2024/05/01
PB - Elsevier
SP - 100328
VL - 20
SN - 2590-1168
ER -
BibTex
Cite this
BibTex (up to 50 authors) Copy
@article{2024_Wang,
author = {Qinzheng Wang and Huaibin Wang and Chang Xu and Chengshan Xu and Chang-Yong Jin and Shilin Wang and Wang Shilin and Lejun Xu and Lizhong Xu and Jiting Ouyang and Jiting Ouyang and Xuning Feng},
title = {Multidimensional fire propagation of lithium-ion phosphate batteries for energy storage},
journal = {eTransportation},
year = {2024},
volume = {20},
publisher = {Elsevier},
month = {may},
url = {https://linkinghub.elsevier.com/retrieve/pii/S2590116824000183},
pages = {100328},
doi = {10.1016/j.etran.2024.100328}
}