Estimation on the pulse power capability of high-power lithium-ion battery pack

被引:0
|
作者
School of Transportation Science and Engineering, Beihang University, Beijing 100191, China [1 ]
不详 [2 ]
不详 [3 ]
机构
来源
Qiche Gongcheng | 2013年 / 4卷 / 298-302期
关键词
D O I
暂无
中图分类号
学科分类号
摘要
To estimate the pulse power capability of high power lithium ion battery, an electrochemical model for lithium ion battery is developed firstly based on porous electrode and concentrated solution theory. With the model, the change in battery terminal voltage can be predicted according to the charge/discharge current and operation temperature of battery, and hence the maximum pulse discharge/charge power permitted by lithium ion battery pack at present state can be estimated. Then, for verifying the effectiveness of the model, the dynamic response process of terminal voltage in a 3.6V/8A·h lithium ion battery during 10s pulse charge/discharge with various current rates, and the acceptable 10s maximum pulse discharge/charge power of 144V/8A·h lithium ion battery pack under different SOCs and temperatures are measured on Arbin test bench. The results of tests show that when the pulse charge/discharge time exceeds 1s, the relative errors of the predicted terminal voltages are less than ±1% and the relative errors of the estimated maximum discharge/charge power of battery pack are less than ±3%. Finally, the effects of negative electrode porosity on the pulse power capability of battery pack are analyzed with the electrochemical model.
引用
收藏
相关论文
共 50 条
  • [21] Online SOC estimation of high-power lithium-ion batteries used on HEVs
    Dai, Haifeng
    Wei, Xuezhe
    Sun, Zechang
    PROCEEDINGS OF THE 2006 IEEE INTERNATIONAL CONFERENCE ON VEHICULAR ELECTRONICS AND SAFETY, 2006, : 342 - +
  • [22] SOC Model of High Power Lithium-ion Battery
    Hajia, N.
    Venkatesh, B.
    2015 IEEE ELECTRICAL POWER AND ENERGY CONFERENCE (EPEC), 2015, : 112 - 119
  • [23] Accelerated Test Methods for Life Estimation of High-Power Lithium-Ion Batteries
    Mita, Yuichi
    Seki, Shiro
    Terada, Nobuyuki
    Kihira, Nobuo
    Takei, Katsuhito
    Miyashiro, Hajime
    ELECTROCHEMISTRY, 2010, 78 (05) : 384 - 386
  • [24] Diagnosis of power fade mechanisms in high-power lithium-ion cells
    Abraham, DP
    Liu, J
    Chen, CH
    Hyung, YE
    Stoll, M
    Elsen, N
    MacLaren, S
    Twesten, R
    Haasch, R
    Sammann, E
    Petrov, I
    Amine, K
    Henriksen, G
    JOURNAL OF POWER SOURCES, 2003, 119 : 511 - 516
  • [25] Carboxylated polyimide separator with excellent lithium ion transport properties for a high-power density lithium-ion battery
    Lin, Chun-Er
    Zhang, Hong
    Song, You-Zhi
    Zhang, Yin
    Yuan, Jia-Jia
    Zhu, Bao-Ku
    JOURNAL OF MATERIALS CHEMISTRY A, 2018, 6 (03) : 991 - 998
  • [26] SOC estimation for Power Lithium-ion Battery Based on AUKF
    Hou, Enguang
    Qiao, Xin
    Liu, Guangmin
    PROCEEDINGS OF THE 2016 INTERNATIONAL CONFERENCE ON ARTIFICIAL INTELLIGENCE AND ENGINEERING APPLICATIONS, 2016, 63 : 14 - 18
  • [27] Research on the Performance Improvement Method for Lithium-Ion Battery in High-Power Application Scenarios
    Zhou, Pengfei
    Zhu, Liying
    Fu, Dawei
    Du, Jianguo
    Zhao, Xinze
    Sun, Bingxiang
    ENERGIES, 2024, 17 (07)
  • [28] Thermal Analysis of a High-Power Lithium-Ion Battery System with Indirect Air Cooling
    Teng, Ho
    SAE INTERNATIONAL JOURNAL OF ALTERNATIVE POWERTRAINS, 2012, 1 (01) : 79 - 88
  • [29] Abuse behavior of high-power, lithium-ion cells
    Spotnitz, R
    Franklin, J
    JOURNAL OF POWER SOURCES, 2003, 113 (01) : 81 - 100
  • [30] Performance of high-power lithium-ion cells under pulse discharge and charge conditions
    Abraham, D. P.
    Dees, D. W.
    Christophersen, J.
    Ho, C.
    Jansen, A. N.
    INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2010, 34 (02) : 190 - 203