New Battery Model Integrating the Internal Resistance As a Function of Temperature

Authors

  • Zainab Asus School of Mechanical Engineering, Faculty of Engineering, Universiti Teknologi Malaysia, 81310 UTM Johor Bahru, Johor, Malaysia
  • Zul hilmi Che Daud School of Mechanical Engineering, Faculty of Engineering, Universiti Teknologi Malaysia, 81310 UTM Johor Bahru, Johor, Malaysia
  • Muhammad Hafiz Alwi School of Mechanical Engineering, Faculty of Engineering, Universiti Teknologi Malaysia, 81310 UTM Johor Bahru, Johor, Malaysia
  • Izhari Izmi Mazali School of Mechanical Engineering, Faculty of Engineering, Universiti Teknologi Malaysia, 81310 UTM Johor Bahru, Johor, Malaysia

Keywords:

Lithium-ion Battery, Battery Model, Effect of Temperature.

Abstract

A battery model is constructed to predict the behavior of a real battery under various operating conditions. This is done by considering the basic variable of the battery such as its operating temperature, discharging or charging current, battery cycle number and battery life time to simulate the output of the battery terminal. The main focus is to introduce the internal resistance as a function of temperature to the model. The simulation result is compared to the result from experimental, in term of the terminal voltage. The simulation result is then presented alongside the experimental result for manifesting that the model is effective and operational.

References

L. Guzzella and A. Sciarretta. Vehicle Propulsion systems (Introduction to Modelling and Optimization). Springer, New York, second edition edition, 2007.

S. Chacko and Y. M. Chung. Thermal modelling of li-ion polymer battery for electric vehicle drive cycles. Journal of Power Sources, 213:296–303, 2012.

M. Chen and G. A. R. Mora. Accurate electrical battery model capable of predicting runtime and I-V performance, IEEE Transactions on Energy Conversion, vol. 21, pp. 504-511, 2006.

O. Erdinc , B. Vural & M. Uzunoglu. A dynamic lithium-ion battery model considering the effects of temperature and capacity fading, IEEE Transactions on Components and Packaging Technologies: 384-386, 2009.

L. Gao, S. Liu and R. A. Dougal. Dynamic Lithium-Ion Battery Model for System Simulation, IEEE Transactions on Components and Packaging Technologies, vol. 25 , pp. 495-505, 2002.

Che Daud, Z. H., Chrenko, D., Dos Santos, F., Aglzim, E. -H., Keromnes, A., and Le Moyne, L. 3D electro-thermal modelling and experimental validation of lithium polymer-based batteries for automotive applications. Int. J. Energy Res., 40: 1144–1154. 2016.

D.Mori & K.Hirose. Recent challenges of hydrogen storage technologies for fuel cell vehicles. International Journal of Hydrogen Energy Vol 34, Issue 10, May 2009, Pages 4569-4574

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Published

2018-11-26

How to Cite

Asus, Z., Che Daud, Z. hilmi, Alwi, M. H., & Mazali, I. I. (2018). New Battery Model Integrating the Internal Resistance As a Function of Temperature. Journal of Transport System Engineering, 5(1). Retrieved from https://jtse.utm.my/index.php/jtse/article/view/92

Issue

Section

Transport System Engineering

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