State-of-the-art Charging Solutions for Electric Transportation and Autonomous E-mobility

Siddhartha A. Singh, Deepak Ronanki, A. V. J. S. Praneeth, Sheldon Williamson

Abstract


As we move towards electrification of transportation, there is a need is a need to replace gas stations with Electric Vehicle (EV) charging stations at equally convenient locations and look at various energy storage methods onboard an electric vehicle. There are various charging methods which have been discussed in literature. This paper discusses the common methods of charging and discusses the various technologies that will have tremendous impact in the future on energy storage technology on autonomous electric vehicle.


Keywords


electrification of transportation; Electric Vehicle; EV; Electric Vehicle charging stations; energy storage; autonomous electric vehicle

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References


J. Deng, S. Li, S. Hu, C. C. Mi and R. Ma. “Design methodology of LLC resonant converters for electric vehicle battery chargers,” IEEE Transactions on Vehicular Technology, vol. 63, no. 4, pp. 1581-1592, May. 2014.

D. S. Gautam, F. Musavi, W. Eberle and W. G. Dunford. “A zero-voltage switching full-bridge dc–dc converter with capacitive output filter for plug-in hybrid electric vehicle battery charging,” IEEE Transactions on Power Electronics, vol. 28, , no. 12, pp. 5728-5735, Dec. 2013.

D. S. Gautam, F. Musavi, M. Edington, W. Eberle and W. G. Dunford. “An automotive onboard 3.3- kw battery charger for PHEV application,” IEEE Transactions on Vehicular Technology, vol. 61, no. 8, pp. 3466-3474, Oct. 2012.

Y. Du, X. Zhou, S. Bai, S. Lukic and A. Huang. “Review of non-isolated bi-directional dc-dc converters for plugin hybrid electric vehicle charge station application at municipal parking decks,” Proc. Of Twenty-Fifth Annual IEEE Applied Power Electronics Conference and Exposition (APEC), 2010, pp.1145-1151.

Y. Du, S. Lukic, B. Jacobson and A. Huang. “Review of high power isolated bi-directional dc-dc converters for phev/ev dc charging infrastructure,” Proc. of IEEE Energy Conversion Congress and Exposition, 2011, pp. 553-560.

SAE Electric Vehicle and Plug in Hybrid Electric Vehicle Conductive Charge Coupler, SAE International Surface Vehicle Recommended Practice, J1772, Oct. 2012.

S. Li and C. C. Mi. “Wireless power transfer for electric vehicle applications,” IEEE Journal of Emerging and Selected Topics in Power Electronics, vol. 3, no. 1, pp. 4-17, March 2015.

G. A. Covic and J. T. Boys. “Inductive Power Transfer,” Proc. of the IEEE, vol. 101, no. 6, 2013, pp. 1276-1289.

D. Rozario, V. K. Pathipati, A. Ram, N. A. Azeez and S. S. Williamson. “Modified resonant converters for contactless capacitive power transfer systems used in EV charging applications,” Proc. of 42nd Annual Conference of the IEEE Industrial Electronics Society, Florence, 2016, pp. 4510-4517.

F. Z. Peng. “Z-source inverter,” IEEE Transactions on Industrial Electronics, vol. 39, no. 2, pp. 504-510, 2003.

G. Carli and S. S. Williamson. “Technical considerations on power conversion for electric and plug-in hybrid electric vehicle battery charging in photovoltaic installations,” IEEE Transactions on Power Electronics, vol. 28, no. 12, pp. 5784- 5792, 2013.

S. A. Singh, G. Carli, N. A. Azeez and S. S. Williamson. “A modified Z-source converter based single phase PV/grid inter-connected DC charging converter for future transportation electrification,” Proc. of IEEE Energy Conversion Congress and Exposition (ECCE), Milwaukee, WI, 2016, pp. 1-6.

W. E. Rippel and A. G. Cocconi. “Integrated motor drive and recharge system,” U.S. Patent 5099186, Mar. 1992.

G. Cocconi. “Combined motor drive and battery charger system,” U.S. Patent 5 341 075, Aug. 1994.

S. Haghbin, S. Lundmark, M. Alakula and O. Carlson. “Grid-connected integrated battery chargers in vehicle applications: Review and new solution,” IEEE Transactions on Industrial Electronics, vol. 60, no. 2, pp. 459-473, Feb. 2013.

M. Yilmaz and P. T. Krein. “Review of battery charger topologies, charging power levels, and infrastructure for plug-in electric and hybrid vehicles,” IEEE Transactions on Power Electronics., vol. 28, no. 5, pp. 2151-2169, May 2013.

AC Propulsion EV Drive System Specifications, 2008. AC Propulsion Inc. technical note; [Online]. Available http://www.acpropulsion.com.html.

S. Lacroix, E. Laboure and M. Hilairet. “An integrated fast battery charger for electric vehicle,” Proc. IEEE Vehicle Power and Propulsion Conference, Lille, France, 2010, pp. 1-6.

L. De-Sousa and B. Bouchez. “Combined electric device for powering and charging,” Int. Patent WO 2010/057892 A1, 2010.

G. Pellegrino, E. Armando and P.Guglielmi. “An integral battery charger with power factor correction for electric scooter,” IEEE Transactions on Power Electronics, vol. 25, no. 3, pp. 751-759, Mar. 2010.

F. Lacressonniere and B. Cassoret. “Converter used as a battery charger and a motor speed controller in an industrial truck,” Proc. European Power Electronic conference, 2005, pp. 1-7.

S. Haghbin, S. Lundmark, M. Alakula and O. Carlson. “An isolated high-power integrated charger in electrified vehicle applications,” IEEE Transactions on Vehicle. Technology, vol. 60, no. 9, pp. 4115–4126, Nov. 2011.

S. Haghbin, K. Khan, S. Zhao, M. Alakula, S. Lundmark and O. Carlson. “An integrated 20-kW motor drive and isolated battery charger for plug-in vehicles,” IEEE Transactions on Power Electronics, vol. 28, no. 8, pp. 4013-4029, Aug. 2013.

K. Khan, S. Haghbin, M. Leksell and O.Wallmark. “Design and performance analysis of a permanent-magnet assisted synchronous reluctance machine for an integrated charger application,” Proc. Int. Conf. Elect.Mach., 2010, pp. 1-6.

J. Liang, W. Li, Z. Song and Y. Shi. “An integrated battery charger base on split-winding switched reluctance motor drive,” Proc. IEEE Transportation Electrification Conference and Expo, Asia-Pacific (ITEC Asia-Pacific), Busan, 2016, pp. 106-111.

I. Subotic, N. Bodo and E. Levi, “Single-phase on-board integrated battery chargers for EVs based on multiphase machines,” IEEE Trans. Power Electron., vol. 31, no. 9, pp. 6511-6523, Sept. 2016.

M. S. Diab, A. A. Elserougi, A. S. Abdel-Khalik, A. M. Massoud and S. Ahmed. “A nine-switch-converter-based integrated motor drive and battery charger system for EVs using symmetrical six-phase machines,” IEEE Transactions on Industrial Electronics, vol. 63, no. 9, pp. 5326-5335, Sept. 2016.

I. Subotic, M. Jones and E. Levi. “A fast on-board integrated battery charger for four-motor EVs,” Proc. IEEE Conference on Electrical Machines (ICEM), Berlin, 2014, pp. 2066-2072.

H. C. Chang and C. M. Liaw. “Development of a compact switched-reluctance motor drive for EV propulsion With voltage-boosting and PFC charging capabilities,” IEEE Transactions on Vehicle Technology, vol. 58, no. 7, pp. 3198-3215, Sept. 2009.

C. Gan, J. Wu, Y. Hu, S. Yang, W. Caoand J. M. Guerrero. “New integrated multilevel converter for switched reluctance motor drives in plug-in hybrid electric vehicles with flexible energy conversion," IEEE Transactions on Power Electronics, vol. 32, no.99, pp.3754-3766.

M. Quraan, T. Yeo and P. Tricoli. “Design and control of modular multilevel converters for battery electric vehicles,” IEEE Transactions on Power Electronics, vol. 31, no. 1, pp. 507-517, Jan. 2016.

F. Helling, J. Glück, A. Singer and T. Weyh. “Modular multilevel battery (M2B) for electric vehicles,” Proc. European Conference on Power Electronics and Applications (EPE'16 ECCE Europe), Karlsruhe, 2016, pp. 1-9.

N. Li, F. Gao, T. Yang, L. Zhang, Q. Zhang and G. Ding. “An integrated electric vehicle power conversion system using modular multilevel converter,’ Proc. IEEE Energy Conversion Congress and Exposition (ECCE), Montreal, QC, 2015, pp. 5044-5051.

M. Tsirinomeny and A. Rufer. “Configurable modular multilevel converter (CMMC) for flexible EV,” Proc. of European Conference on Power Electronics and Applications (EPE'15 ECCE-Europe), Geneva, 2015, pp. 1-10.

S. Rohner, S. Bernet, M. Hiller and R. Sommer. “Modulation, losses, and semiconductor requirements of modular multilevel converters,” IEEE Transactions on Industrial Electronics, vol. 57, no. 8, pp. 2633-2642, Aug. 2010.

S. Debnath, J. Qin, B. Bahrani, M. Saeedifard and P. Barbosa. “Operation, control, and applications of the modular multilevel converter: A review,” IEEE Transactions on Power Electronics, vol. 30, no. 1, pp. 37-53, Jan. 2015.

Morrow, D. Karner and J. Francfort. “Plug-in hybrid electric vehicle charging infrastructure review,” U.S. Dept. Energy—Vehicle Technologies Program, Washington, DC, INL-EXT-08-15058, 2008.

M. Yilmaz and P. T. Krein. “Review of battery charger topologies, charging power levels, and infrastructure for plug-in electric and hybrid vehicles,” IEEE Transactions on Power Electronics, vol. 28, no. 5, pp. 2151-2169, May 2013.

M. A. Fasugba and P. T. Krein, “Gaining vehicle-to-grid benefits with unidirectional electric and plug-in hybrid vehicle chargers,” Proc. IEEE Veh. Power and Propulsion Conf., Sep. 2011, pp. 1-6.

X. Zhou, S. Lukic, S. Bhattacharya and A. Huang. “Design and control of grid-connected converter in Bi-directional battery charger for plugin hybrid electric vehicle application,” Proc. IEEE Vehicle Power and Propulsion Conf., Sep. 2009, pp. 1716-1721.

Y. Lee, A. Khaligh and A. Emadi “Advanced integrated bi-directional AC/DC and DC/DC converter for plug-in hybrid electric vehicles,” IEEE Transactions on Vehicle Technology, vol. 58, no. 3, pp. 3970-3980, Oct. 2009.

K. Keun-Wan, K. Dong-Hee, W. Dong-Gyun and L. Byoung-Kuk. “Topology comparison for 6.6 kW On board charger: Performance, efficiency, and selection guideline,” Proc. IEEE VPPC, 2012, pp. 1520-1524.

B. Singh, B. N. Singh, A. Chandra, K. Al-Haddad, A. Pandey and D. P. Kothari. “A review of single-phase improved power quality AC–DC converters,” IEEE Transactions on Industrial Electronics, vol. 50, no. 5, pp. 962-981, Oct. 2003.

D. Xu, J. Zhang, W. Chen, J. Lin and F. C. Lee. “Evaluation of output filter capacitor current ripples in single phase PFC converters,” Proc. PCC, Osaka, Japan, 2002, vol. 3, pp. 1226-1231.

L. Petersen and M. Andersen. “Two-stage power factor corrected power supplies: The low component-stress approach,” Proc. IEEE APEC, vol. 2, 2002, pp. 1195-1201.

B. Lu, R. Brown and M. Soldano. “Bridgeless PFC implementation using one cycle control technique,” Proc. IEEE Appl. Power Electron. Conf. Expo., vol. 2, 2005, pp. 812-817.

C. Petrea and M. Lucanu. “Bridgeless power factor correction converter working at high load variations,” in Proc. ISSCS, vol. 2, 2007,pp. 1-4.

M. Kwon and S. Choi. “An electrolytic capacitorless bidirectional EV charger for V2G and V2H applications,” in IEEE Transactions on Power Electronics, vol. 32, no. 9, pp. 6792-6799, Sept. 2017.

T. Nussbaumer, M. Baumann and J. W. Kolar. “Comparative evaluation of modulation methods of a three-phase buck + boost PWM rectifier. Part II: Experimental verification,” Power Electronics, IET, vol. 1, no. 2, pp. 268-274, Jun. 2008.

T. Nussbaumer and J. W. Kolar. “Comparison of 3-phase wide output voltage range PWM rectifiers,” IEEE Transactions on Industrial Electronics, vol. 54, no. 6, pp. 3422-3425, Dec. 2007.

M. Pahlevaninezhad, P. Das, J. Drobnik, P. K. Jain and A. Bakhshai. “A ZVS interleaved boost AC/DC converter used in plug-in electric vehicles, ” IEEE Transactions on Power Electronics, vol. 27, no. 8, pp. 3513-3529,Aug. 2012.

A. Khaligh and S. Dusmez. “Comprehensive topological analysis of conductive and inductive charging solutions for plug-in electric vehicles,” IEEE Transactions on Vehicle Technology, vol. 61, no. 8, pp. 3475-3489, Oct. 2012.

F. Musavi, M. Craciun, D. S. Gautam,W. Eberle andW. G. Dunford. “An LLC resonant DC-DC converter for wide output voltage range battery charging applications,” IEEE Transactions on Power Electronics, vol. 28, no. 12, pp. 5437-5445, Dec. 2013.

F. Musavi, M. Craciun, M. Edington, W. Eberle and W. G. Dunford. “Practical design considerations for a LLC multi-resonant DC-DC converter in battery charging applications,” Proc. 27th Annual IEEE APEC Expo., 2012, pp. 2596-2602.

IEEE Recommended Practices and Requirements for Harmonic Control in Electrical Power Systems, IEEE Std. 519-1992, 1992.

Compliance Testing to the IEC 1000-3-2 (EN 61000-3-2) and IEC 1000- 3-3 (EN 61000-3-3) Standards, Agilent Technology.

T. S. Key and J.-S. Lai. “IEEE and international harmonic standards impact on power electronic equipment design,” in Proc. IECON, vol. 2, 1997,pp. 430-436.

Fairchild document Design Consideration for Battery Charger Using Green Mode Fairchild Power Switch. (2007) [Online]. Available: www.fairchildsemi.com.

C. H. Lin, C. Y. Hsieh and K. H. Chen. “A Li-ion battery charger with smooth control circuit and built-in resistance compensator for achieving stable and fast charging,” IEEE Transactions on Circuits Systems I, Reg. Papers, vol. 57, no. 2, pp. 506-517, Feb. 2010.

S.- H. Yang, J. Liu, Y. H. Wu, D. S. Wang and C. C. Wang. “A high voltage battery charger with smooth charge mode transition in BCD process,” Proc. IEEE Int. Symp. Circuits Syst., May 2011, pp. 813-816.

M. Yilmaz and P. T. Krein. “Review of battery charger topologies, charging power levels, and infrastructure for plug-in electric and hybrid vehicles,” IEEE Trans. Power Electron., vol. 28, no. 5, pp. 2151-2169, May 2013.

D. H. Kim, M. J. Kim and B. K. Lee, “An integrated battery charger with high power density and efficiency for electric vehicles,” IEEE Transactions on Power Electronics, vol. 32, no. 6, pp. 4553-4565, June 2017.

R. Hou and A. Emadi. “A primary full-integrated active filter auxiliary power module in electrified vehicles with single-phase onboard chargers,” IEEE Transactions on Power Electronics, vol. 32, no. 11, pp. 8393-8405, Nov. 2017.




DOI: http://dx.doi.org/10.21622/resd.2018.04.1.002

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Renewable Energy and Sustainable Development

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