Study on Thermal Runaway Propagation Characteristics and Cooling Inhibition Mechanism of Lithium-Ion Batteries

被引:0
|
作者
Zheng, Yi [1 ,2 ]
Chen, Shuo [3 ]
Peng, Shengtao [4 ]
Feng, Xi [4 ]
Wang, Chun [1 ,2 ]
Zhang, Guangwen [1 ,2 ]
Zhao, Xiangdi [1 ,2 ]
机构
[1] State Key Lab Chem Safety, Qingdao 266071, Peoples R China
[2] SINOPEC Res Inst Safety Engn Co Ltd, Qingdao 266071, Peoples R China
[3] SINOPEC Hlth, Safety & Environm Protect Management Dept, Beijing 100728, Peoples R China
[4] Sinpoec Mkt Anhui Co, Hefei 230000, Peoples R China
关键词
Lithium-ion battery; Thermal runaway; Refrigerant; Emergency thermal delay; Safety; SUPPRESSION; BEHAVIOR; MODEL;
D O I
10.1007/s10694-025-01723-z
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
New energy vehicles have been recognized and promoted worldwide, but the safety hazards caused by thermal runaway and misfire of power lithium-ion batteries are still major challenges. This paper presents a three-dimensional thermal runaway simulation model that accounts for inter-cell coupling, chemical reactions, and heat transfer within a battery pack. The model investigates the propagation of thermal runaway, the heat diffusion process, and the suppression mechanisms under varying SOC conditions. By examining the refrigerant role in mitigating thermal runaway, it identifies the critical conditions necessary for effective thermal suppression of batteries using liquid CO2 and R410A as refrigerant at the early stage of thermal runaway. The results firstly show that the critical temperature rise for NCM and LFP batteries was observed within the ranges of 80-90 K and 105-120 K, respectively. Additionally, the critical propagation times were found to be in the ranges of 95-120 s and approximately 3000 s. The study also finds that the refrigerant can effectively lower the temperature of the power battery pack, thereby delaying the propagation of thermal runaway and enhancing safety. The critical times for NCM and LFP batteries are 75 and 150 s, respectively, while the essential flow rates required for effective suppression of thermal runaway are 0.080 kg/s for NCM and 0.038 kg/s for LFP. Notably, the thermal runaway of NCM batteries can be significantly mitigated with an application of refrigerant lasting 200 s; conversely, the critical emergency time for LFP battery thermal runaway is reduced to 150 s. Thus, the corresponding emergency critical times for NCM and LFP batteries are established as 75 and 150 s, respectively. It offers data support for the safe operation and emergency backup of large battery systems.
引用
收藏
页数:21
相关论文
共 50 条
  • [21] Understanding Thermal Runaway Phenomena in Overcharged Lithium-Ion Batteries
    Lee, Minseo
    You, Ji-sun
    Kang, Kyeong-sin
    Lee, Jaesung
    Bong, Sungyool
    JOURNAL OF THE KOREAN ELECTROCHEMICAL SOCIETY, 2024, 27 (02): : 55 - 72
  • [22] Investigating the thermal runaway mechanisms of lithium-ion batteries based on thermal analysis database
    Feng, Xuning
    Zheng, Siqi
    Ren, Dongsheng
    He, Xiangming
    Wang, Li
    Cui, Hao
    Liu, Xiang
    Jin, Changyong
    Zhang, Fangshu
    Xu, Chengshan
    Hsu, Hungjen
    Gao, Shang
    Chen, Tianyu
    Li, Yalun
    Wang, Tianze
    Wang, Hao
    Li, Maogang
    Ouyang, Minggao
    APPLIED ENERGY, 2019, 246 : 53 - 64
  • [23] Investigating the Thermal Runaway Behavior and Early Warning Characteristics of Lithium-Ion Batteries by Simulation
    Wang, Xiaoyong
    Mi, Yuanze
    Zhao, Zihao
    Cai, Jiawen
    Yang, Donghui
    Tu, Fangfang
    Jiang, Yuanyang
    Xiang, Jiayuan
    Mi, Shengrun
    Wang, Ruobin
    JOURNAL OF ELECTRONIC MATERIALS, 2024, 53 (12) : 7367 - 7379
  • [24] Review of polymers in the prevention of thermal runaway in lithium-ion batteries
    Allen, Jonathan
    ENERGY REPORTS, 2020, 6 : 217 - 224
  • [25] Influence of temperature dependent short-term storage on thermal runaway characteristics in lithium-ion batteries
    Wang, Zhi
    Zhao, Qingjie
    Sun, Feng
    Yin, Bo
    An, Weiguang
    Shi, Bobo
    RENEWABLE ENERGY, 2024, 232
  • [26] Synergistic inhibition of thermal runaway propagation of lithium-ion batteries by porous materials and water mist
    Zhu, Yu
    Zhou, Yuxin
    Gao, Haipeng
    Wang, Zhirong
    Bai, Wei
    Ouyang, Dongxu
    Wang, Junling
    JOURNAL OF CLEANER PRODUCTION, 2023, 406
  • [27] Causes and mechanism of thermal runaway in lithium-ion batteries, contradictions in the generally accepted mechanism
    Galushkin, Nikolay E.
    Yazvinskaya, Nataliya N.
    Galushkin, Dmitriy N.
    JOURNAL OF ENERGY STORAGE, 2024, 86
  • [28] Study on the Suppression Effect of Cryogenic Cooling on Thermal Runaway of Ternary Lithium-Ion Batteries
    Zhang, Guowei
    Li, Zheng
    Wang, Hongyu
    Yuan, Diping
    FIRE-SWITZERLAND, 2022, 5 (06):
  • [29] Numerical analysis of thermal runaway process of lithium-ion batteries considering combustion
    Kim, Ryang Hoon
    Lee, Do Hyun
    Kim, Young Kyo
    Chu, Chan Ho
    Lee, Yong Gyun
    Kim, Dong Kyu
    JOURNAL OF ENERGY STORAGE, 2024, 78
  • [30] Mechanism of Thermal Runaway in Lithium-Ion Cells
    Galushkin, N. E.
    Yazvinskaya, N. N.
    Galushkin, D. N.
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2018, 165 (07) : A1303 - A1308