Ultra-fast Lithium cell charging architecture for Mission Critical Applications

Authors

  • Arif Sari European University of Lefke
  • Behnam Rahnama Department of Computer Engineering, Okan University, Istanbul, Turkey
  • Ersin Caglar Department of Computer Engineering, European University of Lefk

DOI:

https://doi.org/10.14738/tmlai.25.430

Keywords:

Lithium Cell, Fast Charging, PWM Charge Pump, Mission Critical Application,

Abstract

This research presents design and implementation of the ultra-fast parallel lithium charging architecture with an embedded algorithm using an active PWM charge pump supported by a hybrid control mechanism consisting of Temperature, humidity and current sensors. The new architecture guaranties the ultra-fast parallel charging cycles of lithium cells without lifespan reduction due to possible overheat side effects in mission critical applications.

Author Biography

Arif Sari, European University of Lefke

Department of Management Information Systems, School of Applied Sciences, European University of Lefke

References

S. Lee, Y. Cho, HK. Song, KT. Lee, J. Cho (2012). Angewandte Chemie, “Carbon-Coated Single-Crystal LiMn2O4 Nanoparticle Clusters as Cathode Material for High-Energy and High-Power Lithium-Ion Batteries”, Vol. 124, Issue 35, pp. 8878-8882, DOI: 10.1002/ange.201203581.

N. Li, Z. Chen, W. Ren, F. Li, H.-M. Cheng (2012). Proceedings of the National Academy of Sciences, “Flexible Graphene-based lithium ion batteries with ultrafast charge and discharge rates”, Vol. 109, Issue 43, 17360.

HW. Lu, W. Zeng, YS. Li, ZW. Fu (2007). Journal of Power Sources, “Fabrication and Electrochemical properties of three-dimensional net architectures of anatase TiO2 and spinel Li4Ti5O12 nanofibers”, Vol. 164, Issue 2, pp. 874-879,

DOI: 10.1016/j.jpowsour.2006.11.009

Z. Liang, HL. Pan, YS. Hu, L. Hong, C. Li-Quan (2012). China Physics B. “Spinel lithium titanate (Li4Ti5O12) as a novel anode material for room-temperature sodium-ion battery”, Vol. 12, No. 2, p. 028201-4. DOI: 10.1088/1674-1056/21/2/028201.

L. Hu, H. Wu, F. La Manita, Y. Yang, Y. Cui, (2010). American Chemical Society Nano. “Thin, Flexible Secondary Li-ion Paper Batteries”, Vol 26, No.4, p.5843-8, DOI: 10.1021/nn1018158.

HK. Liu, GX. Wang, Z. Guo, J. Wang, K. Konstantiov (2006). Journal of Nanoscience and Nanotechnology, “Nanomaterials for lithium-ion rechargeable batteries”, Vol 6, No.1, pp. 1-15.

F. Cheng, J. Liang, Z. Tao, J. Chen (2011). Advanced Materials, “Functional Materials for rechargeable batteries”, Vol 23., No.15, p.1695-715, DOI: 10.1002/adma.201003587

Downloads

Published

2014-11-03

How to Cite

Sari, A., Rahnama, B., & Caglar, E. (2014). Ultra-fast Lithium cell charging architecture for Mission Critical Applications. Transactions on Engineering and Computing Sciences, 2(5), 10–16. https://doi.org/10.14738/tmlai.25.430