Implications of lithium-ion cell temperature estimation methods for intelligent battery management and fast charging systems

Authors

  • Ahmed Abd El Baset Energy and Renewable Energy Department, Faculty of Engineering, Egyptian Chinese University, 14 Abou Ghazalh, Mansheya El-Tahrir,Ain Shams, Cairo, Egypt https://orcid.org/0000-0001-9912-828X
  • Abd El Halim Energy and Renewable Energy Department, Faculty of Engineering, Egyptian Chinese University, 14 Abou Ghazalh, Mansheya El-Tahrir,Ain Shams, Cairo, Egypt
  • Ehab Hassan Eid Bayoumi Department of Mechanical Engineering, Faculty of Engineering, The British University in Egypt, El Sherouk City, Cairo, Egypt
  • Walid El-Khattam Department of Electric Power and Machines, Faculty of Engineering, Ain Shams University, Cairo, Egypt
  • Amr Mohamed Ibrahim Department of Electric Power and Machines, Faculty of Engineering, Ain Shams University, Cairo, Egypt

DOI:

https://doi.org/10.24425/bpasts.2024.149171

Abstract

This article examines in depth the most recent thermal testing techniques for lithium-ion batteries (LIBs). Temperature estimation circuits can be divided into six divisions based on modeling and calculation methods, including electrochemical computational modeling, equivalent electric circuit modeling (EECM), machine learning (ML), digital analysis, direct impedance measurement and magnetic nanoparticles as a base. Complexity, accuracy and computational cost-based EECM circuits are feasible. The accuracy, usability and adaptability of diagrams produced using ML have the potential to be very high. However, none of them can anticipate the low-cost integrated BMS in real time due to their high computational costs. An appropriate solution might be a hybrid strategy that combines EECM and ML.

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Published

2024-04-30

How to Cite

El Baset , Ahmed Abd, et al. “Implications of Lithium-Ion Cell Temperature Estimation Methods for Intelligent Battery Management and Fast Charging Systems”. Bulletin of the Polish Academy of Sciences Technical Sciences, vol. 72, no. 3, Apr. 2024, p. e149171, doi:10.24425/bpasts.2024.149171.

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