Infrastructure Cost Issues Related to Inductively Coupled Power Transfer for Electric Vehicles

The electrification of vehicles has been accelerated over the last few years due to tighter emission regulations, volatile fuel prices, and progress in standardization as well as improvement of battery technologies. Key hurdles of electric vehicles (EV) to gain a larger share in the automotive market are the cost of the energy storage system (ESS) and the density of the EV charging infrastructure. The achievable range of an EV or full electric driving of a plugin hybrid electric vehicle (PHEV) is limited by its battery capacity. The time to recharge the battery is related to the power level of charging as well as allowable charging parameters to protect the battery life. In order to overcome the constraints of limited range of EVs (all electric driving) as well as the cost of ESS, inductively coupled power transfer (ICPT) is an interesting technology path to be considered, in particular if applied as opportunity (stop-and-go) or in-motion charging (also called dynamic wireless charging or move and charge). In-motion wireless charging could lead to significant reductions of the vehicle-related cost of electrification but this comes with the price of an infrastructure that needs to be built and maintained. In order to design the ICPT infrastructure and calculate the cost of construction and operation, certain assumptions have to be made with respect to the vehicle specifications, the specification of the charging system itself and the cost of integration into the existing road infrastructure. The objective of this paper is to provide a thorough analysis of the cost associated with the implementation of a dynamic ICPT infrastructure to support the operation of electrified vehicles and to present transportation agencies a business model that can provide a starting point for the development of a new EV infrastructure.

[1]  James P Borgstede Strategies for the future. , 2006, Journal of the American College of Radiology : JACR.

[2]  Takehiro Imura,et al.  Basic experimental study on helical antennas of wireless power transfer for Electric Vehicles by using magnetic resonant couplings , 2009, 2009 IEEE Vehicle Power and Propulsion Conference.

[3]  A. Aubry EV Charging Stations , 2012 .

[4]  J. Taiber,et al.  A Literature Review in Dynamic Wireless Power Transfer for Electric Vehicles: Technology and Infrastructure Integration Challenges , 2014 .

[5]  Dong-Ho Cho,et al.  Design and Implementation of Shaped Magnetic-Resonance-Based Wireless Power Transfer System for Roadway-Powered Moving Electric Vehicles , 2014, IEEE Transactions on Industrial Electronics.

[6]  Srdjan M. Lukic,et al.  Use of inductive power transfer for electric vehicles , 2010, IEEE PES General Meeting.

[7]  Roy Billinton,et al.  A minimum cost assessment method for composite generation and transmission system expansion planning , 1993 .

[8]  Mashrur Chowdhury,et al.  Fundamentals of Intelligent Transportation Systems Planning , 2003 .

[9]  M. Soljačić,et al.  Efficient wireless non-radiative mid-range energy transfer , 2006, physics/0611063.

[10]  Cozen O'Connor SHORTENING THE PATH TO ENERGY INDEPENDENCE: A POLICY AGENDA TO COMMERCIALIZE BATTERY-ELECTRIC VEHICLES , 2008 .

[11]  Joachim Taiber,et al.  Inductive Power Transfer System Integration for Battery-Electric Vehicles , 2011 .

[12]  Ching Chuen Chan,et al.  An overview of power electronics in electric vehicles , 1997, IEEE Trans. Ind. Electron..

[13]  Grant A. Covic,et al.  The design of a contact-less energy transfer system for a people mover system , 2000, PowerCon 2000. 2000 International Conference on Power System Technology. Proceedings (Cat. No.00EX409).

[14]  Robert C. DeVault “Just-in-Time” Battery Charge Depletion Control for PHEVs and E-REVs for Maximum Battery Life , 2009 .

[15]  Ivan Damnjanovic,et al.  Framework for Studying Emerging Policy Issues Associated with PHEVs in Managing Coupled Power and Transportation Systems , 2010, 2010 IEEE Green Technologies Conference.

[16]  Seungyoung Ahn,et al.  Charging up the road , 2013, IEEE Spectrum.

[17]  James Witty,et al.  Oregon’s Mileage Fee Concept and Road User Fee Pilot Program , 2006 .