TY - JOUR
T1 - Design of a multilayer flame arrestor for lithium-ion batteries and investigation of the thermal-runaway flame suppression mechanism
AU - Wang, Yuhui
AU - Yu, Lin
AU - Zhang, Yue
AU - Li, Fangzhou
AU - Wu, Xingtong
AU - Wang, Qing
AU - Wang, Kuo
AU - Zhang, Jianqi
AU - Huang, Fenglei
AU - Qian, Xinming
N1 - Publisher Copyright:
© 2026 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/11/15
Y1 - 2026/11/15
N2 - With the rapid adoption of lithium-ion batteries (LIBs) in energy-storage and transportation systems, increasingly complex operating conditions heighten the fire and explosion hazards of thermal runaway (TR). To suppress its early flame spread and provide effective early rescue time, in this study, a multilayer perforated-plate flame arrester was designed. GC–MS was employed to analyze battery-generated gases and Fluent simulations of jet-flame velocity are used to determine arrestor parameters, and the structure is optimized via the throttling effect. Experimental verification is conducted thereafter. The results show that the gaseous products primarily consist of CO₂, CO, H₂, and C₂H₄, with total yields of 3.23 mol and 4.8 mol for cells at 75% and 100% state of charge (SOC), respectively. The simulated peak flame velocity of the ejected gases reaches 21.53 m/s. Considering manufacturing constraints and cost, a single-layer quenching plate with an aperture of 0.4 mm, a pitch of 0.3 mm, and a thickness of 0.8 mm was selected, giving a maximum quenching velocity of 4.86 m/s for one layer. Based on the throttling effect, a multilayer quenching-plate structure was designed; simulations indicate that three layers reduce the flame velocity to 4.53 m/s, while six layers reduce it further to 3.57 m/s. Experimental results confirm that the flame arrestor effectively suppresses both flames and sparks. Under the front-facing configuration, 75% SOC and 100% SOC conditions require five and seven layers, respectively; under the side-facing configuration, only three layers are required, and spark emission decreases with increasing numbers of quenching layers.
AB - With the rapid adoption of lithium-ion batteries (LIBs) in energy-storage and transportation systems, increasingly complex operating conditions heighten the fire and explosion hazards of thermal runaway (TR). To suppress its early flame spread and provide effective early rescue time, in this study, a multilayer perforated-plate flame arrester was designed. GC–MS was employed to analyze battery-generated gases and Fluent simulations of jet-flame velocity are used to determine arrestor parameters, and the structure is optimized via the throttling effect. Experimental verification is conducted thereafter. The results show that the gaseous products primarily consist of CO₂, CO, H₂, and C₂H₄, with total yields of 3.23 mol and 4.8 mol for cells at 75% and 100% state of charge (SOC), respectively. The simulated peak flame velocity of the ejected gases reaches 21.53 m/s. Considering manufacturing constraints and cost, a single-layer quenching plate with an aperture of 0.4 mm, a pitch of 0.3 mm, and a thickness of 0.8 mm was selected, giving a maximum quenching velocity of 4.86 m/s for one layer. Based on the throttling effect, a multilayer quenching-plate structure was designed; simulations indicate that three layers reduce the flame velocity to 4.53 m/s, while six layers reduce it further to 3.57 m/s. Experimental results confirm that the flame arrestor effectively suppresses both flames and sparks. Under the front-facing configuration, 75% SOC and 100% SOC conditions require five and seven layers, respectively; under the side-facing configuration, only three layers are required, and spark emission decreases with increasing numbers of quenching layers.
KW - Flame arrester
KW - Lithium-ion battery
KW - Multilayer structure
KW - Spark suppression
KW - Thermal runaway
KW - Throttling effect
UR - https://www.scopus.com/pages/publications/105045263107
U2 - 10.1016/j.est.2026.123766
DO - 10.1016/j.est.2026.123766
M3 - Article
AN - SCOPUS:105045263107
SN - 2352-152X
VL - 178
JO - Journal of Energy Storage
JF - Journal of Energy Storage
M1 - 123766
ER -