Development of a Self-Coordinated Algorithm for Demand Side Management in the Case of Aggregated Electric Vehicle in a Grid Integrated System

  • Authors

    • Polly Thomas
    • Prabhakar karthikeyan S
    2018-10-02
    https://doi.org/10.14419/ijet.v7i4.10.20832
  • Electric Vehicle, Demand Side Management, Independent System Operator, Aggregator, Self Co-ordinated Algorithm
  • Electric Vehicles (EV) are now a days proposed to serve the electric power grid bi-directionally by means of consuming energy from grid and also by injecting back the captive energy within the EV battery upon grid requirements. Thus EV and its known variants like Battery Electric Vehicles (BEV) and Plug-in Hybrid-Electric Vehicle (PHEV) possess unique rewards compared to the conventional fossil fueled vehicle. The increasing number of EVs integration with electricity network could have a significant knock on the performance and planning of a power system especially in the demand side management. The recent studies made by the National laboratory of U S Department of Energy clearly mentions the risks involved in EV integration in terms of its peak demand profile and spinning reserve profile. The work in this paper investigates the behavior of different types of EVs & its impact on the load profile in a grid connected system in terms of EV capacity, EV charging levels and EV penetration time. The charging profile thus obtained for the above different cases clearly conveys very significant and relevant information regarding its influence on the peak time demand. The peak time period is extended to late hours respective of the different charging conditions which has a definite impact of DSM. Also, an intelligent algorithm is developed to take care of the Demand Side Management (DSM) issues. For the same, the algorithm inputs the grid as well as the vehicle parameters. The uniqueness of the proposed algorithm is in its ability to avoid the communication complexities with the Independent System Operator (ISO) & aggregator.  The work is done after studying relevant market models of EVs having different similar or different characteristics.

     


  • References

    1. [1] Kempton W, Tomić J. Vehicle-to-grid power fundamentals: Calculating capacity and net revenue. J Power Sources 2005;144:268–79.

      [2] G. Boulanger, A. C. Chu, S. Maxx, and D. L. Waltz, “Vehicle Electrification: Status and Issues,†IEEE Proc., vol. 99, no. 6, pp. 1116- 1138, June 2011.

      [3] “Electric Vehicle Charging Infrastructure Deployment Guidelines for the Oregon I-5 Metro Areas of Portland, Salem, Corvallis and Eugene,†ETEC, Tech. Rep., Vesion 3.1, April, 2010.

      [4] Chin Ho Tie et all. “The impact of Electric vehicle charging on a residential low voltage distribution network in malaysia†2014 IEEE ISGT Asia.

      [5] Frank Labert, Report of Secondary distribution impacts of residential electric vehicle charging by California energy commission, 2002 http://www.energy.ca.gov/reports/2002-01-11_600-00-039/600-00-039_NOAPPENDICES.PDF.

      [6] Tony Markel, Report on Electric Vehicle grid integration by National energy laboratory of the US department of Energy https://www.energy.gov/sites/prod/files/2015/07/f24/vss156_markel_2015_o.pdf

      [7] J. A. P. Lopes, F. J. Soares, P. M. Almeida, and M. M. da Silva, “Smart Charging Strategies for Electric Vehicles: Enhancing Grid Performance and Maximizing the Use of Variable Renewable Energy Resource,†in Proc. EVS24 International Battery, Hybrid and Fuel Cell Electric Vehicle Symposium, Stavanger, Norway, May 13-16, 2009.

      [8] A. Foley, B. Tyther, P Calnan, and B. O. Gallachoir, “Impacts of Electric Vehicle Charging under electricity market operations,†J. of Applied Energy, Elsevier, vol. 101, pp. 93-102, Jan. 2013.

      [9] National Household Travel Survey (NHTS), [Online]. Available: http://nhts.ornl.gov.

      [10] Trapti Jain, Prateek Jain, “Impacts of G2V and V2G on Electricity Demand Profile,†IEEE Proc., 978-1-4799-6075-0/14

      [11] Kalhammer FR, Kamath H, Duvall M, Alexander M, Jungers B. Plug-in hybrid electric vehicles: promise, issues and prospects. In Proc. EVS24 Int. battery, hybrid and fuel cell electric vehicle symp., Stavanger, Norway, 2009:1–11.

      [12] Duvall M, et al. Transportation electrification: A technology overview, Tech. Rep., CA: 2011.1021334, Electrical Power Research Institute, Palo Alto, CA 94304–1338, USA. 2011:3.1–3.2, 5.10.

      [13] “WP:1.3 Parameter Manual,†Grid for Vehicles (G4V), RWTH Achaen, December 2010. [Online]. Available: http://www.g4v.eu/downloads.html (Accessed: May 2014)

      [14] G. Pasaoglu, D. Fiorello, A. Martino, G. Scarcella, A. lemanno, A. Zubaryeva and C. Thiel, â€Driving and parking patterns of European car drivers-a mobility survey,†JRC Scientific and Policy Reports, European Commission, Petten, The Netherlands, Rep. EUR 25627EN,2012.[Online].Available:http://publications.jrc.ec.europa.eu/repository/handle/111111111/26994

      [15] M. Shahidehpour, H. Yamin, and Z. Li, “Example Systems Data,†in Market Operations in Electric Power Systems: Forecasting, Scheduling, and Risk Management,†New York, IEEE, John Wiley & Sons, 2002, app. D, sec. D.4, pp. 477.

      [16] Trapti Jain, Prateek Jain, “Development of V2G and G2V Power Profiles and Their Implications on Grid Unhder varying Equillibrium of Aggregated Electric Vehiclesâ€, Int. J. Emerg. Electr. Power Syst. 2016

      [17] Trapti Jain, Prateek Jain, “Impact of G2V & V2G Power on Electricity Demand Profileâ€, IEEE proceedings 978-1-4799-6075-0/14

      [18] Z. Darabi and M. Ferdowsi, “Aggregated Impact of Plug-in Hybrid Electric Vehicles on Electricity Demand Profile,†IEEE Trans. On Sustainable Energy, vol. 2, no. 4, pp. 501-508, Oct. 2011.

      [19] “WP:1.3 Parameter Manual,†Grid for Vehicles (G4V), RWTH Achaen, December 2010. [Online]. Available: http://www.g4v.eu/downloads.html (Accessed: May 2014)

      [20] “Determining the estimated charge time of vehicle†[online] https://www.clippercreek.com/wp-content/uploads/2017/07/SMUD_Charge-Times-Chart-20170706_FINAL-LOW-RES

      [21] ] Dong Dong et-al, “Modes of operation and System level control of Single phase bidirectional PWM converter for Microgrid systemâ€, IEEE Transactions on smart grid, vol 3, no 1,march 2012.

      [22] Dhakad, Ravindra & Kumar, Ravi & Jain, Trapti. (2014). Impact of Electric Vehicles on Energy Trading in an Electricity Market. International Journal of Engineering Research and Applications ISSN: 2248-9622

      [23] M. Von Hoffen, "Towards an Information System for Evidence-Based Analysis of Charging Behavior, Charging Demand, and Battery Degradation of Electric Vehicles," 2016 IEEE 18th Conference on Business Informatics (CBI), Paris, 2016, pp. 182-190.

      [24] Z. Liu, Q. Wu, S. Huang, L. Wang, M. Shahidehpour and Y. Xue, "Optimal Day-ahead Charging Scheduling of Electric Vehicles through an Aggregative Game Model," in IEEE Transactions on Smart Grid, vol. PP, no. 99, pp.1-1. 2016 doi: 10.1109/TSG.2017.2682340

      [25] M. R. Sarker, H. Pandžić, K. Sun and M. A. Ortega-Vazquez, "Optimal operation of aggregated electric vehicle charging stations coupled with energy storage," in IET Generation, Transmission & Distribution, vol. 12, no. 5, pp. 1127-1136, 3 13 2018.

      [26] HyungBin Moon, Stephen Youngjun Park, Changhyun Jeong, Jongsu Lee, Forecasting electricity demand of electric vehicles by analyzing consumers’ charging patterns, Transportation Research Part D: Transport and Environment, Volume 62, 2018, Pages 64-79, ISSN 1361-9209, https://doi.org/10.1016/j.trd.2018.02.009.

      [27] Hemakumar Reddy Galiveeti, Arup Kumar Goswami, Nalin B. Dev Choudhury, Impact of plug-in electric vehicles and distributed generation on reliability of distribution systems, Engineering Science and Technology, an International Journal, Volume 21, Issue 1, 2018, Pages 50-59, ISSN 2215-0986, https://doi.org/10.1016/j.jestch.2018.01.005.

      [28] GEORGE FERNANDEZ, S. et al. Essential Need for Electric Vehicles and Infrastructure Advancement: Challenges in India. Indian Journal of Science and Technology, [S.l.], sep. 2016. ISSN 0974 -5645. Available at: <http://www.indjst.org/index.php/indjst/article/view/101843>. Date accessed: 23 Mar. 2018. doi:10.17485/ijst/2016/v9i35/101843.

      [29] J. Mendoza-Baeza, B. R. Cerda, R. F. López and M. F. Caicedo, "Impact of electric vehicle charging in power distribution networks using a transport model approach," 2015 CHILEAN Conference on Electrical, Electronics Engineering, Information and Communication Technologies (CHILECON), Santiago, 2015, pp. 517-522.

      [30] P. Pavani, B. Bak-Jensen and J. R. Pillai, "Impact of demand side management in active distribution networks," 2017 IEEE Power & Energy Society General Meeting, Chicago, IL, 2017, pp. 1-5. doi: 10.1109/PESGM.2017.8274224

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    Thomas, P., & karthikeyan S, P. (2018). Development of a Self-Coordinated Algorithm for Demand Side Management in the Case of Aggregated Electric Vehicle in a Grid Integrated System. International Journal of Engineering & Technology, 7(4.10), 182-189. https://doi.org/10.14419/ijet.v7i4.10.20832