A Smart Bidirectional Power Interface Between Smart Grid and Electric Vehicle

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Intelligent Paradigms for Smart Grid and Renewable Energy Systems

Part of the book series: Algorithms for Intelligent Systems ((AIS))

Abstract

The major advantage of the reduction in fossil fuel consumption and greenhouse gas emission making hybrid vehicles and electric vehicles more important and popular in the automotive industry and as well as to the end-user. In the past two decades, the advent growth of modern electric drives, battery technology and intelligent charging methodology, the overall performance of the electric vehicles improved. Many researchers have been conducted to improve efficiency and reliability. It increases the applications of electric vehicles. Apart from grid power, the use of renewable sources makes zero-emission rate and zero fuel cost. The use of artificial intelligence introduces a significant improvement in the efficiency, reliability and safety of electric vehicles. A good technology means not only in the technical aspect but also its economic. So it will reach an ordinary consumer also at an affordable price. It can be achieved by mass production by competitive manufacturers. The purpose of the chapter is to provide fundamental concepts and a good understanding of vehicle electrification from smart grid. In this chapter, the basics of electric vehicle reviewed. The main constituent elements of electric vehicles included. Electric drives, battery and renewable energy storage, optimization techniques, charging schemes, battery energy storage system and power management system discussed

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References

  1. Davies, R.A.: Wireless’ autos: a Russian dream. Maclean’s Mag. 58(13), 34 and 36 (1945)

    Google Scholar 

  2. EUROSAT.: Energystatistics—an overview. In: Eurostat Regional Yearbook, Edition (2018)

    Google Scholar 

  3. Boulanger, A.G., Chu, A.C., Maxx, S., Waltz, D.L.: Vehicle electrification: Status and issues. Proc. IEEE 99(6), 1116–1138 (2011)

    Article  Google Scholar 

  4. Bose, B.K.: Global warming—energy, environmental pollution, and the impact of power electronics. IEEE Ind. Electron. Mag. 4(1), 6–17 (2010)

    Google Scholar 

  5. Ribeiro, B., Brito, F.P., Martins, J.A.: Survey on electric/hybrid vehicles. In: Transmission and Driveline, SAE International (2010)

    Google Scholar 

  6. Wencong, S., Rahimi-Eichi, H., Zeng, W., Chow, M.-Y.: A survey on the electrification of transportation in a smart grid environment. IEEE Trans. Ind. Electron. 8(1), 1–10 (2012)

    Google Scholar 

  7. Oviedo, R.M., Fan, Z., Gormus, S., Kulkarni, P.: The reign of EVs? An economic analysis from consumer’s perspective. IEEE Electr. Mag. 2(2), 61–71 (2014)

    Article  Google Scholar 

  8. Babat, G.I.: Patent GB657035A. High frequency electric transport system with contactless transmission of energy, 657, 035 (1946)

    Google Scholar 

  9. Systems Control Technology Inc.: Roadway Powered Electric Vehicle Project Track Construction and Testing Program Phase 3D. PaloAlto, California (1994)

    Google Scholar 

  10. Lashkari, K., Shladover, S.E., Lechner, E.H.: Inductive power transfer to an electric vehicle. In: Proceedings of 8th International Electric Vehicle Symposium (1986)

    Google Scholar 

  11. Lechner, E.H., Shladover, S.E.: The roadway powered electric vehicle—an all-electric hybrid system. In: Proceedings of the 8th International Electric Vehicle Symposium (1986)

    Google Scholar 

  12. Boys, J.T., Covic, G.A.: The inductive power transfer story at the University of Auckland. IEEE Circ. Syst. Mag. 15, 6–27 (2015)

    Article  Google Scholar 

  13. Zhang, Z., Chau, K.T.: Homogeneous wireless power transfer for move-and- charge. IEEE Trans. Power Electron. 30(11), 6213–6220 (2015)

    Article  Google Scholar 

  14. Fujita, T., Yasuda, T., Akagi, H.: A dynamic wireless power transfer system applicable to a stationary system. IEEE Trans. Ind. Appl. 53(4), 3748–3757 (2017)

    Google Scholar 

  15. Monterio, V., Pinto, J.G., Exposto, B., Goncalves, H., Ferreira, J.C., Couto, C., et al.: Assessment of a battery charger for electric vehicles with reactive power control. In: Proceedings of the IEEE IECON2012: 38th Annual Conference on Industrial Electronics Society, 25–28 Oct 2012, pp. 5142–5147 (2012)

    Google Scholar 

  16. Han, S., Han, S., Sezaki, K.: Development of an optimal vehicle-to-grid aggregator for frequency regulation. IEEE Trans. Smart Grid 1(1), 65–72 (2010)

    Article  Google Scholar 

  17. Mullan, J., Harries, D., Bräunl, T., Whitely, S.: The technical economic and commercial viability of the vehicle-to-grid concept. Energy Policy 48, 394–406 (2012)

    Article  Google Scholar 

  18. Sortomme, E., El-Sharkawi, M.A.: Optimal scheduling of vehicle-to-grid energy and ancillary services. IEEE Trans. Smart Grid. 3(1), 351–359 (2012)

    Article  Google Scholar 

  19. Ghanbarzadeh, T., Goleijani, S., Moghaddam, M.P.: Reliability constrained unit commitment with electric vehicle to grid using hybrid particle swarm optimization and ant colony optimization. In: Proceedings of the IEEE Power and Energy Society General Meeting, 24–29 July 2011, pp. 1–7 (2011)

    Google Scholar 

  20. Soares, J., Vale, Z., Canizes, B., Morais, H.: Multi-objective parallel particles warm optimization for day-ahead vehicle-to-grid scheduling. In: Proceedings of the IEEE CIASG 2013: Symposium on Computational Intelligence Applications in Smart Grid, 16–19 Apr 2013, pp. 138–145 (2013)

    Google Scholar 

  21. Díaz-González, F., Sumper, A., Gomis-Bellmunt, O., Villafáfila, R.: A review of energy storage technologies for windpower applications. Renew. Sustain. Energy Rev. 16(4), 2154–2171 (2012)

    Google Scholar 

  22. Yong, J.Y., Ramachandaramurthy, V.K., Tan, K.M., Mithulananthan, N.: Are view on the state-of-the-art technologies of the electrical vehicle, its impacts and prospects. Renew. Sustain. Energy Rev. 49, 365–385 (2015)

    Google Scholar 

  23. Leemput, N., Geth, F., Claessens, B., Van Roy, J., Ponnette, R., Driesen, J.: A case study of coordinated electric vehicle charging for peak shaving on a low voltage grid. IEEE Innovative Smart Grid Technologies (ISGT Europe) (2012)

    Google Scholar 

  24. Kesler, M., Kisacikoglu, M.C., Tolbert, L.M.: Vehicle-to-grid reactive power operation using plug-in electric vehicle bidirectional off-board charger. IEEE Trans. Industr. Electron. 61(12), 6778–6784 (2014)

    Article  Google Scholar 

  25. Yong, J.Y., Ramachandaramurthy, V.K., Tan, K.M., Mithulananthan, N.: Bi-directional electric vehicle fast charging station with novel reactive power compensation for voltage regulation. Int. J. Electr. Power Energy Syst. 64, 300–310 (2015)

    Article  Google Scholar 

  26. Mao, T., Zhang, X., Zhou, B.: Modeling and solving method for supporting ‘vehicle-to-anything’ ev charging mode. Appl. Sci. 8, 1048 (2018)

    Article  Google Scholar 

  27. Qu, Z., Song, J., Liu, Y., et al.: Optimization model of EV charging and discharging price considering vehicle owner response and power grid cost. J. Electr. Eng. Technol. 14, 2251–2261 (2019)

    Article  Google Scholar 

  28. Zhang, M., Chen, J.: The energy management and optimized operation of electric vehicles based on microgrid. IEEE Trans. Power Deliv. 29, 1427–1435 (2014)

    Google Scholar 

  29. Chen, C., Duan, S.: Optimal integration of plugin hybrid electric vehicles in microgrids. IEEE Trans. Industr. Inf. 10, 1917–1926 (2014)

    Google Scholar 

  30. Tan, Z., Yang, P., Nehorai, A.: An optimal and distributed demand response strategy with electric vehicles in the smartgrid. IEEE Trans. Smart Grid 5, 861–869 (2014)

    Google Scholar 

  31. Aunedi, M., Strbac, G.: Efficient system integration of wind generation through smart charging of electric vehicles. In: Proceedings of 8th International Conference and Exhibition on Ecological Vehicles and Renewable Energies (EVER), pp. 1–12 (2013)

    Google Scholar 

  32. Derakhshandeh, S., Masoum, A.S., Deilami, S., Masoum, M.A., Hamedani, G.M.: Coordination of generation scheduling with PEVs charging in industrial microgrids. IEEE Trans. Power Syst. 28, 3451–3461 (2013)

    Article  Google Scholar 

  33. Saber, A.Y., Venayagamoorthy, G.K.: Resource scheduling under uncertainty in a smart grid with renewables and plugin vehicles. IEEE Syst. J. 6, 103–109 (2012)

    Google Scholar 

  34. Saber, A.Y., Venayagamoorthy, G.K.: Plugin vehicles and renewable energy sources for cost and emission reductions. IEEE Trans. Industr. Electron. 58, 1229–1238 (2011)

    Google Scholar 

  35. Khodayar, M.E., Wu, L., Shahidehpour, M.: Hourly coordination of electric vehicle operation and volatile wind power generation in SCUC. IEEE Trans. Smart Grid 3, 1271–1279 (2012)

    Google Scholar 

  36. Li, C.T., Ahn, C., Peng, H., Sun, J.: Synergistic control of plugin vehicle charging and wind power scheduling. IEEE Trans. Power Syst. 28, 1113–1121 (2013)

    Google Scholar 

  37. Vayá, M.G., Andersson, G.: Integrating renewable energy forecast uncertainty in smart charging approaches for plug-in electric vehicles. In: IEEE Grenoble PowerTech (POWERTECH), pp. 1–6 (2013)

    Google Scholar 

  38. Zhao, J., Wen, F., Dong, Z.Y., Xue, Y., Wong, K.P.: Optimal dispatch of electric vehicles and wind power using enhanced particle swarm optimization. IEEE Trans. Ind. Inf. 8, 889–899 (2012)

    Google Scholar 

  39. Li, C.T., Ahn, C., Peng, H., Sun, J.: Integration of plug-in electric vehicle charging and wind energy scheduling on electricity grid. In: IEEE Innovative Smart Grid Technologies (ISGT), pp. 1–7 (2011)

    Google Scholar 

  40. Zhou, L., Li, F., Gu, C., Hu, Z., Blond, S.: Cost/benefit assessment of a smart distribution system with intelligent electric vehicle charging. IEEE Trans. Smart Grid 5, 839–847 (2014)

    Google Scholar 

  41. Vasirani, M., Kota, R., Cavalcante, R.L., Ossowski, S., Jennings, N.R.: An agent-based approach to virtual powerplants of wind power generators and electric vehicles. IEEE Trans. Smart Grid 4, 1314–1322 (2013)

    Google Scholar 

  42. Goonewardena, M., Le, L.B.: Charging of electric vehicles utilizing random wind: a stochastic optimization approach. In: IEEE Globecom Workshops (GCWkshps), pp. 1520–1525 (2012)

    Google Scholar 

  43. Chen, S., Tong, L.: IEMS for large scale charging of electric vehicles: architecture and optimal online scheduling. In: Proceedings of IEEE 3rd International Conference on Smart Grid Communications (SmartGridComm), pp. 629–634 (2012)

    Google Scholar 

  44. Sortomme, E., El-Sharkawi, M.A.: Optimal charging strategies for unidirectional vehicle-to-grid. IEEE Trans. Smart Grid 2(1), 131–138 (2011)

    Google Scholar 

  45. Verzijlbergh, R.A., de Vries, L.J., Lukszo, Z.: Renewable energy sources and responsive demand. Do we need congestion management in the distribution grid? IEEE Trans. Power Syst. 29(5), 2119–2128 (2014)

    Google Scholar 

  46. **, C., Sheng, X., Ghosh, P.: Energy efficient algorithms for electric vehicle charging with intermittent renewable energy sources. In: IEEE Power and Energy Society General Meeting (PES), pp. 1–5 (2013)

    Google Scholar 

  47. Hu, W., Su, C., Chen, Z., Bak-Jensen, B.: Optimal operation of plug-in electric vehicles in power systems with high wind power penetrations. IEEE Trans. Sustain. Energy 4, 577–585 (2013)

    Google Scholar 

  48. Kristoffersen, T.K., Capion, K., Meibom, P.: Optimal charging of electric drive vehicles in a market environment. Appl. Energy 88, 1940–1948 (2011)

    Google Scholar 

  49. Shaaban, M.F., El-Saadany, E.: Accommodating high penetrations of PEV sand renewable DG considering uncertainties in distribution systems. IEEE Trans. Power Syst. 29, 259–270 (2014)

    Google Scholar 

  50. Gunter, S.J., Afridi, K.K., Perreault, D.J.: Optimal design of grid connected PEV charging systems with integrated distributed resources. IEEE Trans. Smart Grid, 4, 956–967 (2013)

    Google Scholar 

  51. Ghofrani, M., Arabali, A., Etezadi-Amoli, M.: Electric drive vehicle to grid synergies with large scale wind resources. In: IEEE Power and Energy Society General Meeting, pp. 1–6 (2012)

    Google Scholar 

  52. Ghofrani, M., Arabali, A., Etezadi-Amoli, M., Fadali, M.S.: Smart scheduling and cost-benefit analysis of grid-enabled electric vehicles for wind power integration. IEEE Trans. Smart Grid 5(5), 2306–2313 (2014)

    Article  Google Scholar 

  53. Ghofrani, M., Arabali, A., Ghayekhloo, M.: Optimal charging/discharging of grid-enabled electric vehicles for predictability enhancement of PV generation. Electr. Power Syst. Res. 117, 134–142 (2014)

    Google Scholar 

  54. Schuller, A., Hoeffer, J.: Assessing the impact of EV mobility patterns on renewable energy oriented charging strategies. Energy Procedia 46, 32–39 (2014)

    Article  Google Scholar 

  55. Gottwalt, S., Schuller, A., Flath, C., Schmeck, H., Weinhardt, C.: Assessing load flexibility in smart grids: electric vehicles for renewable energy integration. In: IEEE Powerand Energy Society General Meeting (PES), pp. 1–5 (2013)

    Google Scholar 

  56. Strnad, I., Skrlec, D., Tomisa, T.: A model for the efficient use of electricity produced from renewable energy sources for electric vehicle charging. In: Proceedings of 2013 4th International Youth Conference on Energy (IYCE), pp. 1–8 (2013)

    Google Scholar 

  57. Zhu, L., Yu, F.R., Ning, B., Tang, T.: Optimal charging control for electric vehicles in smart microgrids with renewable energy sources. In: Proceedings of IEEE 75th Conference on Vehicular Technology Conference (VTC Spring), pp. 1–5 (2012)

    Google Scholar 

  58. Mets, K., De Turck, F., Develder, C.: Distributed smart charging of electric vehicles for balancingwindenergy. In: Proceedings of IEEE 3rd International Conference on Smart Grid Communications (SmartGridComm), pp. 133–138 (2012)

    Google Scholar 

  59. Pantoš, M.: Stochastic optimal charging of electric-drive vehicles with renewable energy. Energy 36, 6567–6576 (2011)

    Google Scholar 

  60. Tushar, M.H.K., Assi, C., Maier, M., Uddin, M.F.: Smart microgrids: Optimal joint scheduling for electric vehicles and home appliances. IEEE Trans. Smart Grid 5, 239–250 (2014)

    Google Scholar 

  61. Fazelpour, F., Vafaeipour, M., Rahbari, O., Rosen, M.A.: Intelligent optimization to integrate a plug-in hybrid electric vehicle smart parking lot with renewable energy resources and enhance grid characteristics. Energy Conv. Manag. 77, 250–261 (2014)

    Google Scholar 

  62. Battistelli, C., Baringo, L., Conejo, A.: Optimal energy management of small electric energy systems including V2G facilities and renewable energy sources. Electr. Power Syst. Res. 92, 50–59 (2012)

    Google Scholar 

  63. Patil, R., Kelly, J.C., Filipi, Z., Fathy, H.: A framework for the integrated optimization of charging and power management in plug-in hybrid electric vehicles. In: Proceedings of 2012 American Control Conference (ACC), pp. 1327–1334 (2012)

    Google Scholar 

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Correspondence to M. Nandhini Gayathri .

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Gayathri, M.N. (2021). A Smart Bidirectional Power Interface Between Smart Grid and Electric Vehicle. In: Vinoth Kumar, B., Sivakumar, P., Rajan Singaravel, M., Vijayakumar, K. (eds) Intelligent Paradigms for Smart Grid and Renewable Energy Systems. Algorithms for Intelligent Systems. Springer, Singapore. https://doi.org/10.1007/978-981-15-9968-2_5

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