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Heating position effect on internal thermal runaway propagation in large-format lithium iron phosphate battery

Author

Listed:
  • Huang, Zonghou
  • Yu, Yin
  • Duan, Qiangling
  • Qin, Peng
  • Sun, Jinhua
  • Wang, Qingsong

Abstract

Thermal runaway (TR) issues of lithium iron phosphate batteries has become one of the key concerns in the field of new energy vehicles and energy storage. This work systematically investigates the TR propagation (TRP) mechanism inside the LFP battery and the influence of heating position on TR characteristics through experiments. Three different heating modes including heating large, bottom and side surface of the battery with the same heat flux density, are concerned herein. TR characteristic such as temperature, jet velocity, mass, and internal TRP mechanism have been studied. Results show that TR in all three heating modes exhibits jetting white smoke behavior, and TR under large surface heating owns the highest smoke volume, jet velocity and longest duration of jet. Compared with large surface heating, batteries under side and bottom heating exhibits higher overall temperature, peak temperature and temperature increment of large surface and less mass loss. The internal TRP velocity is comparable under side (2.035 ± 0.058 mm/s) and bottom heating (1.942 ± 0.217 mm/s), and the value is approximately 7 times greater than that under large surface heating (0.296 ± 0.007 mm/s). Besides, temperature field of the battery during being heated to TR is described analytically. The voltage drop under large surface heating occurs at the end of internal TRP stage, while voltage drops under side and bottom heating is observed at the initial stage of internal TRP. Finally, the internal TRP mechanism controlled by heat conduction are revealed, and a theoretical model qualitatively describing the TRP velocity within the battery is first proposed, revealing the dominant influencing mechanism of thermal conductivity.

Suggested Citation

  • Huang, Zonghou & Yu, Yin & Duan, Qiangling & Qin, Peng & Sun, Jinhua & Wang, Qingsong, 2022. "Heating position effect on internal thermal runaway propagation in large-format lithium iron phosphate battery," Applied Energy, Elsevier, vol. 325(C).
  • Handle: RePEc:eee:appene:v:325:y:2022:i:c:s0306261922010583
    DOI: 10.1016/j.apenergy.2022.119778
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    References listed on IDEAS

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    Cited by:

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    2. Liu, Yanhui & Zhang, Lei & Ding, Yifei & Huang, Xianjia & Huang, Xinyan, 2024. "Effect of thermal impact on the onset and propagation of thermal runaway over cylindrical Li-ion batteries," Renewable Energy, Elsevier, vol. 222(C).
    3. Zhou, Zhizuan & Li, Maoyu & Zhou, Xiaodong & Li, Lun & Ju, Xiaoyu & Yang, Lizhong, 2024. "Investigating thermal runaway triggering mechanism of the prismatic lithium iron phosphate battery under thermal abuse," Renewable Energy, Elsevier, vol. 220(C).
    4. Wang, Gongquan & Ping, Ping & Peng, Rongqi & Lv, Hongpeng & Zhao, Hengle & Gao, Wei & Kong, Depeng, 2023. "A semi reduced-order model for multi-scale simulation of fire propagation of lithium-ion batteries in energy storage system," Renewable and Sustainable Energy Reviews, Elsevier, vol. 186(C).
    5. Jia, Zhuangzhuang & Huang, Zonghou & Zhai, Hongju & Qin, Pen & Zhang, Yue & Li, Yawen & Wang, Qingsong, 2022. "Experimental investigation on thermal runaway propagation of 18,650 lithium-ion battery modules with two cathode materials at low pressure," Energy, Elsevier, vol. 251(C).
    6. Daniels, Rojo Kurian & Kumar, Vikas & Chouhan, Satyendra Singh & Prabhakar, Aneesh, 2024. "Thermal runaway fault prediction in air-cooled lithium-ion battery modules using machine learning through temperature sensors placement optimization," Applied Energy, Elsevier, vol. 355(C).
    7. Jia, Zhuangzhuang & Song, Laifeng & Mei, Wenxin & Yu, Yin & Meng, Xiangdong & Jin, Kaiqiang & Sun, Jinhua & Wang, Qingsong, 2022. "The preload force effect on the thermal runaway and venting behaviors of large-format prismatic LiFePO4 batteries," Applied Energy, Elsevier, vol. 327(C).

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