Fast method for calibrated self-discharge measurement of lithium-ion batteries including temperature effects and comparison to modelling

被引:8
|
作者
R-Smith, Nawfal Al-Zubaidi [1 ]
Moertelmaier, Manuel [1 ]
Gramse, Georg [1 ]
Kasper, Manuel [1 ]
Ragulskis, Mykolas [1 ]
Groebmeyer, Albert [2 ]
Jurjovec, Mark [3 ]
Brorein, Ed [3 ]
Zollo, Bob [3 ]
Kienberger, Ferry [1 ]
机构
[1] Keysight Technol Austria GmbH, Keysight Labs, A-4020 Linz, Austria
[2] Keysight Technol Deutschland GmbH, Automot Energy Solut, Boblingen, Germany
[3] Keysight Technol USA INC, Elect Ind Solut Grp, Mt Olive, NJ 07828 USA
关键词
Electronic measurements; Finite element model (FEM); Lithium-ion batteries; Potentiostat; Self-discharge; Solid electrolyte interphase (SEI); Temperature dependence; CAPACITY FADE; GRAPHITE; BEHAVIOR; MITIGATION; MECHANISM; CIRCUIT;
D O I
10.1016/j.egyr.2023.10.031
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
The self-discharge rate is an important parameter to assess the quality of lithium-ion batteries (LIBs). This paper presents an accurate, efficient, and comprehensive method for measuring and understanding the self-discharge behaviour of LiB cells, considering factors such as temperature and cell to cell variability, as well as underlying electrochemical mechanisms. A method for precise potentiostatic self-discharge measurement (SDM) is demonstrated that is validated by measuring 21 commercial cylindrical 4.7 Ah cells at a state of charge (SoC) of 30%. The self-discharge current ranges between 3 and 6 mu A at 23 degrees C, with an experimental noise level of 0.25 mu A. At higher temperatures of 40 degrees C the self-discharge current increases to 97 mu A. The temperature coefficient of voltage (TCV) is experimentally obtained by exposing the cells to a temperature profile with positive and negative step polarities and following the open circuit voltage (OCV) response. Observed TCVs range from +180 mu V/K at 40% SoC to -320 mu V/K at 0% SoC. For SDM temperature experiments, the cells were set to an SoC with a minimum TCV. From the SDM currents at different temperatures the Arrhenius kinetics and the electrochemical activation energy barrier is determined as 0.94 +/- 0.14 eV, indicating chemical side reactions as source of selfdischarge. For SDM modelling the electrochemical processes are coupled with a 3D temperature finite element model (FEM) and an electric circuit model resulting in a good overlap with the dynamics and timeconstants of the experimental self-discharge curves. The primary challenges addressed are accurately measuring microampere (mu A) discharge currents of high-quality cells, reducing measurement time, understanding the temperature dependence of self-discharge, determining activation energy, and demonstrating the applicability and generalization of SDM.
引用
收藏
页码:3394 / 3401
页数:17
相关论文
共 50 条
  • [1] Abnormal self-discharge in lithium-ion batteries
    Seong, Won Mo
    Park, Kyu-Young
    Lee, Myeong Hwan
    Moon, Sehwan
    Oh, Kyungbae
    Park, Hyeokjun
    Lee, Sechan
    Kang, Kisuk
    ENERGY & ENVIRONMENTAL SCIENCE, 2018, 11 (04) : 970 - 978
  • [2] Relaxation Effects in Self-Discharge Measurements of Lithium-Ion Batteries
    Roth, Thomas
    Streck, Luiza
    Graule, Andreas
    Niehoff, Philipp
    Jossen, Andreas
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2023, 170 (02)
  • [3] Self-discharge mechanism and measurement methods for lithium ion batteries
    Pei P.
    Chen J.
    Wu Z.
    Qinghua Daxue Xuebao/Journal of Tsinghua University, 2019, 59 (01): : 53 - 65
  • [4] Self-discharge behavior and its temperature dependence of carbon electrodes in lithium-ion batteries
    Utsunomiya, Takashi
    Hatozaki, Osamu
    Yoshimoto, Nobuko
    Egashira, Minato
    Morita, Masayuki
    JOURNAL OF POWER SOURCES, 2011, 196 (20) : 8598 - 8603
  • [5] Self-discharge of lithium-ion capacitors
    Babu, Binson
    Balducci, Andrea
    JOURNAL OF POWER SOURCES ADVANCES, 2020, 5
  • [6] Self-discharge prediction method for lithium-ion batteries based on improved support vector machine
    Liu, Zhengyu
    He, Huijuan
    Xie, Juan
    Wang, Keqing
    Huang, Wei
    JOURNAL OF ENERGY STORAGE, 2022, 55
  • [7] Self-discharge losses in lithium-ion cells
    Zimmerman, AH
    IEEE AEROSPACE AND ELECTRONIC SYSTEMS MAGAZINE, 2004, 19 (02) : 19 - 24
  • [8] A novel and fast method of characterizing the self-discharge behavior of lithium-ion cells using a pulse-measurement technique
    Schmidt, Jan Philipp
    Weber, Andre
    Ivers-Tiffee, Ellen
    JOURNAL OF POWER SOURCES, 2015, 274 : 1231 - 1238
  • [9] A Novel Measurement Method for the Self-Discharge of Lithium-Ion Cells Employing an Equivalent Resistance Model
    Xu, Bin
    Tu, Yan
    Li, Jinhua
    Zhang, Bo
    Zhang, Wei
    Liu, Kai
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2023, 170 (05)
  • [10] Leakage current and self-discharge in lithium-ion capacitor
    Sun, Xianzhong
    An, Yabin
    Geng, Linbin
    Zhang, Xiong
    Wang, Kai
    Yin, Jingyuan
    Huo, Qunhai
    Wei, Tongzhen
    Zhang, Xiaohu
    Ma, Yanwei
    JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2019, 850