Effects of cycling on lithium-ion battery hysteresis and overvoltage

被引:0
|
作者
V. J. Ovejas
A. Cuadras
机构
[1] Universitat Politècnica de Catalunya - BarcelonaTech,Grup de Processat d’Energia i Circuits Integrats (EPIC), Departament d’Enginyeria Electronica, Escola d’Enginyeria de Barcelona Est (EEBE)
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Currently, lithium-ion batteries are widely used as energy storage systems for mobile applications. However, a better understanding of their nature is still required to improve battery management systems (BMS). Overvoltages and open-circuit voltage (OCV) hysteresis provide valuable information regarding battery performance, but estimations of these parameters are generally inaccurate, leading to errors in BMS. Studies on hysteresis are commonly avoided because the hysteresis depends on the state of charge and degradation level and requires time-consuming measurements. We have investigated hysteresis and overvoltages in Li(NiMnCo)O2/graphite and LiFePO4/graphite commercial cells. Here we report a direct relationship between an increase in OCV hysteresis and an increase in charge overvoltage when the cells are degraded by cycling. We find that the hysteresis is related to diffusion and increases with the formation of pure phases, being primarily related to the graphite electrode. These findings indicate that the graphite electrode is a determining factor for cell efficiency.
引用
收藏
相关论文
共 50 条
  • [21] Modeling of Lithium-ion Battery Charging and Discharging Using the Preisach Hysteresis Model
    Eichler, Jakub
    Novak, Miroslav
    2019 19TH INTERNATIONAL CONFERENCE ON ELECTRICAL DRIVES & POWER ELECTRONICS (EDPE), 2019, : 221 - 224
  • [22] Is it worthwhile to recover lithium-ion battery electrolyte during lithium-ion battery recycling?
    Vanderburgt, Stephen
    Santos, Rafael M.
    Chiang, Yi Wai
    RESOURCES CONSERVATION AND RECYCLING, 2023, 189
  • [23] Radiation effects on the electrode and electrolyte of a lithium-ion battery
    Tan, Chuting
    Lyons, Daniel J.
    Pan, Ke
    Leung, Kwan Yee
    Chuirazzi, William C.
    Canova, Marcello
    Co, Anne C.
    Cao, Lei R.
    JOURNAL OF POWER SOURCES, 2016, 318 : 242 - 250
  • [24] Bayesian learning for rapid prediction of lithium-ion battery-cycling protocols
    Jiang, Benben
    Gent, William E.
    Mohr, Fabian
    Das, Supratim
    Berliner, Marc D.
    Forsuelo, Michael
    Zhao, Hongbo
    Attia, Peter M.
    Grover, Aditya
    Herring, Patrick K.
    Bazant, Martin Z.
    Harris, Stephen J.
    Ermon, Stefano
    Chueh, William C.
    Braatz, Richard D.
    JOULE, 2021, 5 (12) : 3187 - 3203
  • [25] Lithium-ion battery: a review
    Bidwe M.M.
    Kulkarni S.G.
    International Journal of Vehicle Information and Communication Systems, 2024, 9 (02) : 135 - 163
  • [26] Lithium-Ion Battery Systems
    Horiba, Tatsuo
    PROCEEDINGS OF THE IEEE, 2014, 102 (06) : 939 - 950
  • [27] Lithium-Ion Battery Safety
    Doan, Daniel R.
    IEEE INDUSTRY APPLICATIONS MAGAZINE, 2019, 25 (01) : 11 - 11
  • [28] The Birth of the Lithium-Ion Battery
    Yoshino, Akira
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2012, 51 (24) : 5798 - 5800
  • [29] Cycling of a Lithium-Ion Battery with a Silicon Anode Drives Large Mechanical Actuation
    Lang, Jialiang
    Ding, Bin
    Zhu, Ting
    Su, Hanxiao
    Luo, Hao
    Qi, Longhao
    Liu, Kai
    Wang, Ke
    Hussain, Naveed
    Zhao, Chunsong
    Li, Xiaoyan
    Gao, Huajian
    Wu, Hui
    ADVANCED MATERIALS, 2016, 28 (46) : 10236 - 10243
  • [30] Unraveling the effect of succinonitrile additive on cycling performance in cylindrical lithium-ion battery
    Lee, Kyeongsu
    Jung, Hyunok
    Chung, Jeehyung
    Kim, Kyoung Soo
    Song, Joohan
    Park, Junghwan
    ELECTROCHIMICA ACTA, 2018, 281 : 274 - 281