Design and experimental characterization of a combined WPT-PLC system

被引:12
作者
Barmada S. [1 ]
Dionigi M. [2 ]
Mezzanotte P. [2 ]
Tucci M. [1 ]
机构
[1] DESTEC, University of Pisa, Largo Lazzarino 2, Pisa
[2] Department of Engineering, University of Perugia, via G. Duranti 93, Perugia
关键词
Applied electromagnetics; Power line communications; Transmission lines modeling; Wireless power transfer;
D O I
10.1017/wpt.2017.11
中图分类号
学科分类号
摘要
In this contribution, the authors perform the design and show the experimental results relative to a prototype of a combined wireless power transfer (WPT)-power line communications (PLC) system, in which the WPT channel is interfaced to a PLC environment to allow data transfer when the cabled connection is no longer available. The main rationale behind this idea stays in the fact that PLC communication is now a popular choice to enable communications, for instance, in smart grids and in home automation, while WPT devices start to be available in the market (i.e. for mobile phones) and soon they will be a reality also for higher power (i.e. vehicle battery charging). In particular, theoretical insights about the requirements of the system are given; a two coils system has been implemented and a measurement campaign, together with simulations, show that the system is of great potentiality and could be used in applications where both wireless power and data transfer are needed (such as vehicles battery charging), achieving maximum power transfer and good data rate in order to transmit high-speed signals. © 2017 Cambridge University Press.
引用
收藏
页码:160 / 170
页数:10
相关论文
共 31 条
[1]  
Kurs A., Karalis A., Moffatt R., Joannopoulos J., Fisher P., Soljacic M., Wireless power transfer via strongly coupled magnetic resonances., Science, 317, 5834, pp. 83-86, (2007)
[2]  
Huh C., Park C., Rim C.T., Lee S., Cho G.H., High performance inductive power transfer systemwith narrowrail width for on-line electric vehicles, Proc. IEEE ECCE, Atlanta, GA, USA, pp. 647-651, (2010)
[3]  
Imura T., Okabe H., Hori Y., Basic experimental study on helical antennas of wireless power transfer for electric vehicles by using magnetic resonant couplings, Proc. IEEE VPPC, Dearborn, MI, USA, pp. 936-940, (2009)
[4]  
Lee S.H., Lorenz R.D., Development and validation of model for 95%-efficiency 220-W wireless power transfer over a 30-cm air gap., IEEE Trans. Ind. Appl., 47, 6, pp. 2495-2504, (2011)
[5]  
Madawala U.K., Thrimawithana D.J., A bidirectional inductive power interface for electric vehicles in V2G systems., IEEE Trans. Ind. Electron., 56, 10, pp. 4789-4796, (2011)
[6]  
Huck T., Schirmer J., Hogenmuller T., Dostert K., Tutorial about the implementation of a vehicular high speed communication system, Proc. of IEEE Int. Symp. of Powerline Communications and Its Applications (ISPLC), Vancouver, Canada, pp. 162-166, (2005)
[7]  
Lienard M., Carrion M., Degardin V., Degauque P., Modeling and analysis of in-vehicle power line communication channels., IEEE Trans. Veh. Technol., 57, 2, pp. 670-679, (2008)
[8]  
Degardin V., Lineard M., Degauque P., Simon E., Laly P., Impulsive noise characterisation of in-vehicle power line., IEEE Trans. Electromagn. Compat., 50, 4, pp. 861-868, (2008)
[9]  
Beikirch H., Voss M., CAN-transceiver for field bus powerline communication, Proc of IEEE Int. Symp. of Powerline Communications and Its Applications (ISPLC), Limerick, Ireland, pp. 257-264, (2000)
[10]  
Electrical and Electronic Distribution Systems: Focus on Power Line Communication