WIRELESS ELECTRIC VEHICLE CHARGING STATION
Keywords:
wireless charging, wireless power transfer, dynamic chargingAbstract
This paper deals with the designing of a wireless inductive charging circuit to demonstrate a wireless charging station. The wireless charging technique offers advantages over plugged-in charging techniques such as overheating issues and bulky architecture. Wireless charging technique effectively avoids sparking during plugging/unplugging ensuring safety to the user as well as the car. It provides future scope for dynamic charging of cars - charging while driving which will remove the limitations of electric drive range and battery dependency will be reduced greatly. This technique has been prioritised and implemented in major countries like the UK and Germany. This paper presents our attempt towards building an inductive charging station. The key wireless charging techniques are summarised and compared, such as a Capacitive wireless charging system, Permanent magnetic gear wireless charging system, and Inductive wireless charging system. By introducing Wireless power Transfer (WPT) in Electric Vehicles, the obstacles of charging time, range, and cost can be easily mitigated.
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References
Total EV sales in India https://assets.ey.com/content/dam/ey-sites/ey-com/en_in/topics/automotive-and-transportation/2022/ey-electrifyi ng-indian-mobility-report.pdf
Limitations of Electric Vehicles http s://pd fs.s em antic school ar.org /59c4/9 d38b703 b0134 6865ad 3fd11dfc5d6b6936e.pdf
K. A. Kalwar, S. Mekhilef, M. Seyedmahmoudian, and B. Horan, ‘‘Coil design for high misalignment tolerant inductive power transfer system for EV charging,’’ Energies, vol. 9, no. 11, pp. 12–17, 2016
G. A. Covic and J. T. Boys, ‘‘Modern trends in inductive power transfer for transportation applications,’’ IEEE J. Emerg. Sel. Topics Power Electron., vol. 1, no. 1, pp. 28–41, Mar. 2013
S. Y. R. Hui, W. Zhong, and C. K. Lee, ‘‘A critical review of recent progress in mid-range wireless power transfer,’’ IEEE Trans. Power Electron., vol. 29, no. 9, pp. 4500–4511, Sep. 2014.
A. F. A. Aziz, M. F. Romlie, and Z. Baharudin, ‘‘Review of inductively coupled power transfer for electric vehicle charging,’’ IET Power Electron., vol. 12, no. 14, pp. 3611–3623, Nov. 2019
S. Li and C. C. Mi, ‘‘Wireless power transfer for electric vehicle applications,’’ IEEE J. Emerg. Sel. Topics Power Electron., vol. 3, no. 1, pp. 4–17, Mar. 2015
T. W. Ching and Y. S. Wong, ‘‘Review of wireless charging technologies for electric vehicles,’’ in Proc. 5th Int. Conf. Power Electron. Syst. Appl. (PESA), Dec. 2013, pp. 24–27
Y. Ota, H. Taniguchi, T. Nakajima, K. M. Liyanage, J. Baba, and A. Yokoyama, ‘‘Autonomous distributed V2G (vehicle-to-grid) satisfying scheduled charging,’’ IEEE Trans. Smart Grid, vol. 3, no. 1, pp. 559–564, Mar. 2012
Liu, C.; Hu, A.P.; Budhia, M. A generalised coupling model for Capacitive Power Transfer systems
A. P. Hu, C. Liu, and H. L. Li, ‘‘A novel contactless battery charging system for soccer playing robot,’’ in Proc. 15th Int. Conf. Mechatronics Mach. Vis. Pract., Dec. 2008
H. Jiang, J. Zhang, D. Lan, K. K. Chao, S. Liou, H. Shahnasser, R. Fechter, S. Hirose, M. Harrison, and S. Roy, ‘‘A low-frequency versatile wireless power transfer technology for biomedical implants"
Handbook for Electric Vehicle infrastructure in India https:/ /ww w.n iti. gov.in si tes/ default/files/2021-08/HandbookforEVChargingInfrastructureImplementation081221.pdf
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