Thermal Management Optimization in Lithium-Ion Battery Packs for Electric Vehicles

Authors

  • Ahmad Firdaus Airlangga University (UNAIR)
  • Kurniawan Saputra Airlangga University (UNAIR)
  • Vina Puspita Airlangga University (UNAIR)

DOI:

https://doi.org/10.61132/ijmicse.v1i1.69

Keywords:

Lithium-Ion Battery, Electric Vehicle, Thermal Management Optimization

Abstract

In recent years, electric vehicles (EVs) have experienced rapid growth, with increasing demand for more efficient and safer battery technologies. Lithium-ion (Li-ion) batteries have become the primary choice due to their high energy density and long cycle life. However, one major challenge faced is effective thermal management. Poorly managed temperatures can lead to battery performance degradation, shorten battery life, and even pose a fire risk (Wang et al., 2020). Therefore, this study focuses on optimizing the thermal management system for Li-ion battery packs using phase change materials (PCMs) and advanced heat exchangers.

References

Barré, A., Deguilhem, B., Grolleau, S., Gérard, M., Suard, F., & Riu, D. (2013). "A Review on Lithium-Ion Battery Aging Mechanisms and Estimations for Automotive Applications". Journal of Power Sources, 241, 680-689.

Chen, Z., Wang, S., & He, Y. (2019). "Study of Liquid Cooling Systems on the Performance of Electric Vehicle Lithium-Ion Battery Packs". Journal of Energy Storage, 21, 626-634.

Fang, X., & Lee, D. (2020). "Design and Thermal Analysis of a Battery Pack Cooling System for Electric Vehicles". International Journal of Thermal Sciences, 147, 106130.

Feng, X., He, X., & Ouyang, M. (2018). "Thermal Runaway Mechanisms of Lithium-Ion Batteries for Electric Vehicles: A Review". Energy Storage Materials, 10, 246-267.

Forgez, C., Vinh Do, D., Friedrich, G., Morcrette, M., Delacourt, C. (2010). "Thermal Modeling of a Cylindrical LiFePO4/Graphite Lithium-Ion Battery". Journal of Power Sources, 195(9), 2961-2968.

Kim, G. H., Pesaran, A., & Spotnitz, R. (2007). "A Three-Dimensional Thermal Abuse Model for Lithium-Ion Cells". Journal of Power Sources, 170(2), 476-489.

Leng, F., Tan, C. M., & Pecht, M. (2015). "Effect of Temperature on the Aging Rate of Li-Ion Battery Operating above Room Temperature". Scientific Reports, 5, 12967.

Lin, D., Liu, Y., & Cui, Y. (2017). "Reviving Lithium Metal Anodes for Next-Generation High-Energy Batteries". Nature Nanotechnology, 12(3), 194-206.

Liu, W., Xu, Y., & Li, B. (2016). "Experimental Investigation on the Heat Dissipation of Lithium-Ion Batteries by Using Liquid Cooling Method". Journal of Energy Storage, 5, 56-62.

Park, H., & Jaura, A. (2015). "Dynamic Thermal Management for Lithium-Ion Battery Systems Using Phase-Change Materials". Applied Thermal Engineering, 75, 1050-1059.

Patnaik, S., Kar, S., & Bysakh, S. (2021). "Heat Generation and Management in Lithium-Ion Batteries for Electric Vehicles: A Review". Materials Today: Proceedings, 47, 5783-5787.

Pesaran, A. (2012). "Battery Thermal Management in Electric and Hybrid Vehicles". Journal of Power Sources, 110(2), 377-382.

Yang, X., & Wang, C. (2018). "A Review on Thermal Management Strategies of Lithium-Ion Batteries for Electric Vehicles". Journal of Power Sources, 403, 18-29.

Zhang, Y., Zou, J., & Wei, H. (2019). "Optimization of PCM-Based Battery Thermal Management System in Electric Vehicles". Applied Thermal Engineering, 154, 564-573.

Zhao, R., Liu, J., & Gu , J. (2015). "The Effects of Ambient Temperatures on the Dynamic Performance of Lithium-Ion Batteries in Electric Vehicles". Energy Conversion and Management, 105, 1095-1101.

Downloads

Published

2024-03-30

How to Cite

Ahmad Firdaus, Kurniawan Saputra, & Vina Puspita. (2024). Thermal Management Optimization in Lithium-Ion Battery Packs for Electric Vehicles. International Journal of Mechanical, Industrial and Control Systems Engineering, 1(1), 15–19. https://doi.org/10.61132/ijmicse.v1i1.69