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access icon openaccess Primary frequency regulation supported by battery storage systems in power system dominated by renewable energy sources

In recent years, the transition process towards clean energy has caused many challenges to power systems, especially in the field of operation and power system control. Conventional generators, which have been providing ancillary services to maintain stability and reliability to the system, are being replaced by intermittent renewable generators. Therefore, maintaining system quality and stability in terms of power system frequency control is one of the major challenges that require new resources and system integration. Battery energy storage systems (BESSs), as fast-acting energy storage systems, with the capability to act as a controllable source and sink of electricity are one of the prominent solutions for system services. This study investigates the primary frequency control provision from BESSs to the renewable energy sources dominated power system. The simulation results for various cases have shown that integration of BESSs has significantly improved power system frequency stability.

References

    1. 1)
      • 7. Wandelt, F., Gamrad, D., Deis, W., et al: ‘Comparison of flywheels and batteries in combination with industrial plants for the provision of primary control reserve’. IEEE PowerTech, Eindhoven, 2015, pp. 16.
    2. 2)
      • 3. Danish Energy Agency: ‘Energy in Denmark – a green transition’. 2016. Available at https://www.comillas.edu/images/catedraBP/Foro_2016/Larsen_Energy%20in%20Denmark_a%20green%20transition-Energistyrelsen%202016.pdf, accessed 01 October 2017.
    3. 3)
      • 6. Schlegel, S., Schwerdfeger, R., Westermann, D.: ‘Involvement of flexible loads in transmission system operation’. Third IEEE PES Innovative Smart Grid Technologies Europe (ISGT Europe), Berlin, Germany, 2012, pp. 15.
    4. 4)
      • 15. Ulbig, A., Borsche, T.S., Andersson, G.: ‘Impact of low rotational inertia on power system stability and operation’. IFAC World Congress 2014, Cape Town, South Africa, 2014.
    5. 5)
      • 2. Energinet.dk: ‘New record-breaking year for Danish wind power’. 2016 January. Available at https://en.energinet.dk/About-our-news/News/2017/04/25/New-record-breaking-year-for-Danish-wind-power, accessed 15 September 2017.
    6. 6)
      • 16. Kundur, P.: ‘Power systems stability and control’ (McGraw-Hill, New York, NY, USA, 1994).
    7. 7)
      • 1. Danish Energy Agency: ‘The Danish energy model’. 2016, Available at https://ens.dk/sites/ens.dk/files/contents/material/file/the_danish_energy_model.pdf, accessed 6 October 2017.
    8. 8)
      • 17. Pilai, J., Bak-Jensen, B.: ‘Integration of vehicle-to-grid in the western Danish power system’, IEEE Trans. Sustain. Energy, 2011, 2, (1), pp. 1219.
    9. 9)
      • 5. Aho, J., Buckspan, A., Laks, J., et al: ‘A tutorial of wind turbine control for supporting grid frequency through active power control’. American Control Conf. (ACC), Montreal, Canada, 2012, pp. 31203131.
    10. 10)
      • 9. Li, X., Huang, Y., Huang, J., et al: ‘Modeling and control strategy of battery energy storage system for primary frequency regulation’. Int. Conf. on Power System Technology, Chengdu, China, 2014.
    11. 11)
      • 13. Das, K., Altin, M., Hansen, A.D., et al: ‘Primary reserve studies for high wind power penetrated systems’. IEEE PowerTech, Eindhoven, Netherlands, 2015, pp. 16.
    12. 12)
      • 14. Knap, V., Chaudhary, S.K., Stroe, D.-I., et al: ‘Sizing of an energy storage system for grid inertial response and primary frequency reserve’, IEEE Trans. Power Syst., 2016, 31, (5), pp. 34473456.
    13. 13)
      • 4. EURELECTRIC: ‘Ancillary services’. 2003. Available at http://www.eurelectric.org/Download/Download.aspx?DocumentFileID=25426, accessed 6 October 2017.
    14. 14)
      • 8. Oudalov, A., Chartouni, D., Ohler, C.: ‘Optimizing a battery energy storage system for primary frequency control’, IEEE Trans. Power Syst., 2007, 22, (3), pp. 12591266.
    15. 15)
      • 18. Oya, M., Takaba, K., Lin, L., et al: ‘Accurate SoC estimation of lithium-ion batteries based on parameter-dependent state-space model’. 2015 15th Int. Symp. on Communications and Information Technologies (ISCIT), IEEE Conf. Publications, Nara, Japan, 2105, pp. 3740.
    16. 16)
      • 19. Saadat, H.: ‘Power system analysis’ (PSA publishing, Atlanta, GA, USA, 2014, 3rd edn.).
    17. 17)
      • 10. ENTSO-E: ‘Frequency stability evaluation – criteria for the synchronous zone – requirements’. March 2016. Available at https://www.entsoe.eu/Documents/SOC%20documents/RGCE_SPD_frequency_stability_criteri, accessed 6. 10. 2017.
    18. 18)
      • 12. Das, K., Litong-Palima, M., Maule, P., et al: ‘Adequacy of operating reserves for power systems in future European wind power scenarios’. IEEE Power & Energy Society General Meeting, Denver, CO, USA, 2015, pp. 15.
    19. 19)
      • 11. Energinet.dk: ‘Ancillary services to be delivered in Denmark’. September 2017. Available at https://en.energinet.dk/Electricity/Rules-and-Regulations, accessed 6. 10. 2017.
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