Parameter extraction of the Cole-impedance model for in-situ monitoring of electrochemical sources

被引:0
|
作者
Simic, Mitar [1 ]
Jeoti, Varun [1 ]
Stojanovic, Goran M. [1 ]
机构
[1] Univ Novi Sad, Fac Tech Sci, Trg Dositeja Obradov 6, Novi Sad 21000, Serbia
关键词
Battery modeling; Cole-impedance model; Electrochemical impedance spectroscopy; Fractional order system; Lithium-ion; Parameter estimation; ION CELLS; BIOIMPEDANCE; SPECTROSCOPY; TEMPERATURE; RELAXATION;
D O I
10.1016/j.est.2023.109895
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
An important application of equivalent electrical circuit modeling is in Electrochemical Impedance Spectroscopy (EIS) analysis. Reliable and accurate parameter estimation of such circuits allows for identifying the source of impedance changes, which can be significant for condition monitoring of electrochemical sources in various industrial applications. The time delay between measurements and maintenance action can be reduced with in-situ parameter estimation, followed by decision-making. A method for estimating parameters of the Cole-impedance model is presented in this paper. The method can be used in modeling the impedance of batteries, fuel cells, and solar cells. Our method has been first validated using synthetic datasets, and by comparison with the relevant references. Relative errors in the case of noiseless synthetic data were lower than 0.1 %. Moreover, we processed the experimental impedance data of the lithium-ion battery at the four state of charge (SOC) levels (94.73 %, 89.47 %, 78.95 % and 68.42 %) and at three ambient temperatures (0 degrees C, 10 degrees C and 25 degrees C). Root Mean Square Errors in the case of real and imaginary part of battery impedance were lower than 1.5 omega and 0.75 omega, respectively. It was observed that impedance changes as a function of both temperature and SOC. Identifying different reasons for impedance changes can be of great importance in optimized battery storage or regular exploitation. Finally, the estimation method was deployed on a microcontroller with 8 kB of SRAM and a clock speed of 16 MHz, and the parameters were estimated in just 7.5 s.
引用
收藏
页数:13
相关论文
共 50 条
  • [41] In-situ electrochemical impedance analysis of a commercial SOFC stack fueled by real wood gas
    Torrigino, Federica
    Grimm, Fabian
    Karl, Juergen
    Herkendell, Katharina
    HELIYON, 2024, 10 (12)
  • [42] Study of the formation and evolution of solid electrolyte interface via in-situ electrochemical impedance spectroscopy
    Wang, Peng
    Yan, De
    Wang, Caiyun
    Ding, Hao
    Dong, Hong
    Wang, Jie
    Wu, Shumin
    Cui, Xiaoling
    Li, Chunlei
    Zhao, Dongni
    Li, Shiyou
    APPLIED SURFACE SCIENCE, 2022, 596
  • [43] IN-SITU DETERMINATION OF THE LOSS OF ADHESION OF BARRIER EPOXY COATINGS USING ELECTROCHEMICAL IMPEDANCE SPECTROSCOPY
    VANWESTING, EPM
    FERRARI, GM
    GEENEN, FM
    DEWIT, JHW
    PROGRESS IN ORGANIC COATINGS, 1993, 23 (01) : 89 - 103
  • [44] In-situ quantification of solid oxide fuel cell electrode microstructure by electrochemical impedance spectroscopy
    Zhang, Yanxiang
    Chen, Yu
    Chen, Fanglin
    JOURNAL OF POWER SOURCES, 2015, 277 : 277 - 285
  • [45] In-situ electrochemical impedance measurements of corroding stainless steel in high subcritical and supercritical water
    Macak, J.
    Novotny, R.
    Sajdl, P.
    Bystriansky, V.
    Tuma, L.
    Novak, M.
    CORROSION SCIENCE, 2019, 150 : 9 - 16
  • [46] Solid-liquid interface analysis with in-situ Rutherford backscattering and electrochemical impedance spectroscopy
    Bergmann, Ute
    Apelt, Sabine
    Khojasteh, Nasrin B.
    Heller, Rene
    SURFACE AND INTERFACE ANALYSIS, 2020, 52 (12) : 1111 - 1116
  • [47] Characterization of fouling and concentration polarization in ion exchange membrane by in-situ electrochemical impedance spectroscopy
    Zhang, Lingling
    Jia, Hui
    Wang, Jie
    Wen, Haitao
    Li, Juan
    JOURNAL OF MEMBRANE SCIENCE, 2020, 594
  • [48] Monitoring by electrochemical impedance spectroscopy of mortars subjected to ingress and extraction of chloride ions
    Melara, Everton K.
    Mendes, Adriane Z.
    Andreczevecz, Natalia C.
    Braganca, Mariana O. G. P.
    Carrera, Gilberto T.
    Medeiros-Junior, Ronaldo A.
    CONSTRUCTION AND BUILDING MATERIALS, 2020, 242 (242)
  • [49] In-situ monitoring of polyelectrolytes adsorption kinetics by electrochemical impedance spectroscopy: Application in fabricating nanofiltration membranes via layer-by-layer deposition
    Liang, Yuanzhe
    Gao, Fei
    Wang, Li
    Lin, Shihong
    JOURNAL OF MEMBRANE SCIENCE, 2021, 619
  • [50] Environmental Monitoring of Galway Bay: Fusing Data from Remote and In-Situ Sources
    O'Connor, Edel
    Hayes, Jer
    Smeaton, Alan F.
    O'Connor, Noel E.
    Diamond, Dermot
    REMOTE SENSING FOR ENVIRONMENTAL MONITORING, GIS APPLICATIONS, AND GEOLOGY IX, 2009, 7478