System and integration of battery management system Using Electric vehicles

SEEE DIGIBOOK ON ENGINEERING & TECHNOLOGY, VOL. 01, MAY 2018 pp. (42-46)
Abstract– The fuzzy logic controller is a various important technique in battery management system. In battery management system discuss manage the overall performance of the system and protection of the lithium-ion batteries. The solution to this optimization problem provides the storage and discharge powers. Both unidirectional charging scenarios are considered for EVs. The proposed optimal controller maximizes economic benefits and ensures user-specified charge levels are formulating the problem as optimization such as battery management system significant improvement is shown in the system robustness, over the conventional controller. We further provide a SOC algorithm that is based on the battery management solution. We evaluate our algorithms empirically on which shows significant fuel savings. The proposed work focuses on the analysis of the battery management system is protect the overall system.

Index Terms – battery management system (BMS); fly back converter; bldc motor; lithium-ion batteries;

REFERENCE

[1]. Rao, G. Singhal, A. Kumar, and N. Navet, “Battery model for embedded systems,” in Proc. Int. Conf. VLSI Design, Jan. 2005, pp. 105–110
[2]. N. EI Agroudi and Y. Ismail, “New hybrid battery model that takes into account both electric circuit characteristics and non-linear battery properties,” in Proc. IEEE Int. Conf. Electron., Circuits Syst., 2013, pp. 289–292.
[3]. T. Kim and W. Qiao, “A hybrid battery model capable of capturing dynamic circuit characteristics and nonlinear capacity effects,” IEEE Trans. Energy Convers., vol. 26, no. 4, pp. 1172–1180, Dec. 2011.
[4]. L. Gao, S. Liu, and A. Dougal, “Dynamic lithium-ion battery model for system simulation,” IEEE Trans. Compon. Packag. Technol., vol. 25, no. 3, pp. 495–505, Sep. 2002.
[5].M. Chen and G. A. Rincon-Mora, “Accurate electrical battery model capable of predicting runtime and I-V performance,” IEEE Trans. Energy Convers., vol. 21, no. 2, pp. 504–511, Jun. 2006.
[6]. S. Buller, M. Thele, R. W. D. Doncker, and E. Karden, “Impedance based simulation models of supercapacitors and Li-ion batteries for power electronic applications,” in Proc. Conf. Rec. Ind. Appl. Conf., 2003, pp. 1596–1600.[7].D. Boroyevich, I. Cvetkovic, R. Burgos, and D. Dong, “Intergrid: A future electronic energy network?,” J. Emerging Sel. Topics Power Electron., vol. 1, no. 3, pp. 127–138, Sep. 2013.
[8]. R. H. Lasseter, “Microgrid: A conceptual solution,” in Proc. IEEE Power Electron. Spec. Conf., 2004, pp. 4285–4290.
[9]. K. Strunz, E. Abbasi, and D. N. Huu, “DC microgrid for wind and solar power integration, ”J. Emerging Sel. Topics Power Electron., vol. 2, no. 1, pp. 115–126, Mar. 2014.
[10].W. Zhang, D. Dong, I. Cvetkovic, F. C. Lee, and D. Boroyevich, “Lithium-based energy storage management for DC distributed renewable energy system,” in Proc. IEEE Energy Convers. Congr. Expo., 2011, pp. 3270–3277.
[11]. S. Ci, J. Zhang, H. Sharif, and M. Alahmad, “Dynamic reconfigurable multi-cell battery: A novel approach to improve battery performance,” in Proc. IEEE Appl. Power Electron. Conf. Expo., 2012, pp. 439–442.
[12]. D. W. Dennis, V. S. Battaglia, and A. Belanger, “Electrochemical modeling of lithium polymer batteries,” J. Power Sources, vol. 110, no. 2, pp. 310–320, Aug. 2002.
[13]. C. Kroeze and T. Krein, “Electrical battery model for use in dynamic electric vehicle simulations,” in Proc. IEEE Power Electron. Spec. Conf., 2008, pp. 1336–1342.
[14]. L. Song and J. W. Evans, “ Electrochemical-thermal model of lithium polymer batteries,” J. Electrochem. Soc., vol. 147, pp. 2086–2095, 2000.
[15]. J. Newman, K. E. Thomas, H. Hafezi, and D. R. Wheeler, “Modeling of lithium-ion batteries,” J. Power Sources, vol. 119–121, pp. 838–843, Jun. 2003.
[16].N. M. L. Tan, T. Abe, and H. Akagi, “Design and performance of a bidirectional isolated dc-dc converter for a battery energy storage system,” IEEE Trans. Power Electron., vol. 27, no. 3, pp. 1237–1248, Mar. 2012.
[17]. A. Aboushady, K. H. Ahmed, S. J. Finney, and B. W. Williams, “Linearized large signal modeling, analysis, and control design of phase-controlled series-parallel resonant converters using state feedback,” IEEE Trans. Power Electron., vol. 28, no. 8, pp. 3896–3911, Aug. 2013.


P Justin Raj 1, Dr S Padma 2
1 Jaikrishna Polytechnic College,
2 Sona College of Technology
Justinsmile11@gmail.com,
padmasaneev@gmail.com

Leave a Comment

Your email address will not be published. Required fields are marked *

Scroll to Top