Advanced Battery Technologies ResearchAdvancements in Battery MaterialsAdvanced Battery Materials and Technologies

Yan Tang, Qitong Ke, Yue-ling Ding, Jiaping Zhao, Jun-Cheng Jiang, A. Huang

2026.2.16COMBUSTION SCIENCE AND TECHNOLOGY

DOI: 10.1080/00102202.2026.2630388

Abstract

This study introduces a nitrogen-based ultrafine water mist (UWM) method aimed at mitigating thermal runaway in lithium-ion batteries (LIB) during constrained combustion scenarios. Controlled experiments were performed utilizing 18,650-type LIB within an explosion-proof chamber to examine the synergistic effects of nitrogen flow velocity (2–4 m s−1) and mist flow rate (7–33.5 mL min−1). The findings indicate that the nitrogen-assisted UWM system significantly diminished both peak temperature and flame intensity in comparison to traditional fine water mist. The optimal suppression performance was achieved at a flow rate of 7 mL min−1 with nitrogen at 2 m s−1 and 12.5 mL min−1 with nitrogen at 4 m s−1, yielding gas-to-water ratios of roughly 0.9 and 1.0 L mL−1, respectively. The synergistic mechanism arises from convective heat removal by nitrogen and latent heat absorption by ultrafine droplets, hence improving heat transfer and suppressing gas-phase combustion in enclosed environments. These findings offer quantitative direction for the design of sophisticated fire suppression and temperature management systems in energy storage and transportation applications utilizing LIB.

Citation format

TANG, Yan, et al. Synergistic suppression of lithium-ion battery thermal runaway by nitrogen-driven ultrafine water mist in confined combustion environments. COMBUSTION SCIENCE AND TECHNOLOGY, 2026: 1–19.