Preview

ENERGETIKA. Proceedings of CIS higher education institutions and power engineering associations

Advanced search

On Accessible Capacity of Parallel Assembly of Lithium-Ion Batteries

https://doi.org/10.21122/1029-7448-2026-69-2-110-125

Abstract

A rechargeable battery (RB) is a parallel-sequential assembly of cells, the actual capacity and changes of which are specific and determined by the nominal parameters of the cell, the structure of the assembly and the algorithms of the control system (BMS). The article considers the problem of determining the statistical patterns of the actual capacity and its dynamics during cycling for a battery module of the LiFePO4 chemical system with a 16s structure and a parallel pair of such modules. The operation of the corresponding RBs is modeled depending on the initial load variation of the component cells, the balancing characteristics of the latter and other parameters. The effect of disrupting the balancing of sequential assembly cells at a low voltage threshold for the start of balancing has been discovered, and its nature has been explained. Statistical mode- ling of the charging and discharging cycles of battery modules connected in parallel has been carried out. The values of the imbalance of charging and discharging currents of parallel modules and the dispersion of this imbalance are found. Thus, for the considered cell types, there are areas of charge degree (SOC) values in which the charging and discharging currents are compared regardless of the initial imbalance of the cells in the modules. The general trends of reaching the maximum accessible capacity of such systems at different values of the initial cell imbalance are shown. The work is methodical in its nature, and it demonstrates the influence of the statistical variation of cell parameters on the operational parameters of batteries, primarily the accessible operating capacity and the values of the charging and discharging currents of parallel modules. The quantitative results can be used to better understand the processes of balancing and operation of cells in series-parallel assemblies, to optimize BMS operation, and to predict the accessible capacity of lithium-ion cell assemblies.

About the Authors

K. V. Dobrego
"Belinvesttorg" LLC 1AK GROUP Holding
Belarus

Minsk



I. S. Drutko
Belarusian National Technical University
Belarus

Address for correspondence:
Drutko Ivan S.
Belаrusian National Technical University
9, B. Khmelnitskogo str.,
220013, Minsk, Republic of Belarus 
Tel.: +375 17 331-30-58
dsmsm@bntu.by



А. S. Kalednik
Belarusian National Technical University
Belarus

Minsk



References

1. Lemeshevsky V. M. (2025) Development of the Battery Industry and Strategic Positioning of the 1AK-Group Holding. Mechanics of Machines, Mechanisms and Materials, (3), 92–96 (in Russian). https://doi.org/10.46864/1995-0470-2025-3-72-92-96

2. Dobrego K. V., Koznacheev I. A., Charvinski V. L. (2024) Мodelling of Passive Coupling of Battery Units of Hybrid Energy Storage System. Energetika. Izvestiya Vysshikh Uchebnykh Zavedenii i Energeticheskikh Ob’edinenii SNG = Energetika. Proceedings of CIS Higher Education Institutions and Power Engineering Associations, 67 (3), 209–227 (in Russian). https://doi.org/10.21122/1029-7448-2024-67-3-209-227

3. Doyle M., Newman J. (1995) The use of Mathematical Modeling in the Design of Lithium / Polymer Battery Systems. Electrochimica Acta, 40 (13–14), 2191–2196. https://doi.org/10.1016/0013-4686(95)00162-8

4. Dobrego K. V., Bladyko V. V. (2021) Modeling of Batteries and their Assemblies Taking into Account the Degradation of Parameters. Energetika. Izvestiya Vysshikh Ucheb- nykh Zavedenii i Energeticheskikh Ob’edinenii SNG = Energetika. Proceedings of CIS Higher Education Institutions and Power Engineering Associations, 64 (1), 27–39 (in Russian). https://doi.org/10.21122/1029-7448-2021-64-1-27-39

5. Berrueta A., Urtasun A., Ursúa A., Sanchis P. (2018) A Comprehensive Model for Lithium-Ion Batteries: From the Physical Principles to an Electrical Model. Energy, 144, 286–300. https://doi.org/10.1016/j.energy.2017.11.154

6. Fan G., Li X., Canova M. (2018) A Reduced-Order Electrochemical Model of Li-Ion Batteries for Control and Estimation Applications. IEEE Transactions on Vehicular Technology, 67 (1), 76–91. https://doi.org/10.1109/tvt.2017.2738780

7. Campagna N., Castiglia V., Miceli R., Mastromauro R. A., Spataro C., Trapanese M., Viola F. (2020) Battery Models for Battery Powered Applications: A Comparative Study. Energies, 13 (16), 4085. https://doi.org/10.3390/en13164085

8. Bindner H., Cronin T., Lundsager P., Manwell J. F., Abdulwahid U., Baring-Gould I. (2005) Lifetime Modelling of Lead acid Batteries. Technical Report RISO-R-1515(EN). Denmark. Available at: https://www.osti.gov/etdeweb/servlets/purl/20607163

9. Wang F., Tang Sh., Han X., Lu L., Yu Ch., Zhao Ch., Gao Y., Zhu G., Zhuang K., Ouyang M. (2023) A Voltage Reconstruction Model for Lithium-ion Batteries Considering the Polarization Process. Journal of Power Sources, 588, 233744. https://doi.org/10.1016/j.jpowsour.2023.233744

10. Dobrego K. V., Lemeshevski V. M., Chervinski V. L., Kalednik A. S. (2025) Evaluation of the Working Capacity of Lithium-Ion Battery Assemblies by the Monte Carlo Method. Modern Electrochemical Technologies and Equipment-025: Proceedings of the International Scientific Conference, May 19–23, 2025. Minsk, BSTU, 61–64 (in Russian).

11. Shepherd C. M. (1965) Design of Primary and Secondary Cells: II. An Equation Describing Battery Discharge. Journal of the Electrochemical Society, 112 (7), 657–664. https://doi.org/10.1149/1.2423659

12. Roscher M. A., Sauer D. U. (2011) Dynamic Electric Behavior and Open-Circuit-Volta- ge Modeling of LiFePO4-Based Lithium Ion Secondary Batteries. Journal of Power Sources, 196 (1), 331–336. https://doi.org/10.1016/j.jpowsour.2010.06.098

13. EVE Power Co., Ltd. Product Specification LF105. Available at: https://batteryfinds.com/wp-content/uploads/2023/09/EVE-LF105-105Ah-3.2V-LiFePO4-Prismatic-Battery-Cell-SpecificationDatasheet.pdf (accessed 20 February 2025).


Review

For citations:


Dobrego K.V., Drutko I.S., Kalednik А.S. On Accessible Capacity of Parallel Assembly of Lithium-Ion Batteries. ENERGETIKA. Proceedings of CIS higher education institutions and power engineering associations. 2026;69(2):110-125. (In Russ.) https://doi.org/10.21122/1029-7448-2026-69-2-110-125

Views: 307

JATS XML


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 1029-7448 (Print)
ISSN 2414-0341 (Online)