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A Study on the ESS Integration Plan with Inner PCS of Wave-Offshore Hybrid Generation System for Maximizing Power Profile Stability

복합발전의 공급전력 안정성 극대화를 위한 파력발전 PCS의 BESS 연동방안 연구

  • 정승민 (고려대학교 전기공학과) ;
  • 김현욱 (고려대학교 대학원 전기전자전파공학과) ;
  • 유연태 (고려대학교 대학원 전기전자전파공학과) ;
  • 장길수 (고려대학교 전기공학과)
  • Received : 2014.03.05
  • Accepted : 2014.03.20
  • Published : 2014.05.31

Abstract

The combined generator system by integrating several renewable energy sources can share the electrical infrastructure and therefore have the advantage of constructing not only the transmission system but also the power conversion system. Among the various combined renewable system, the wind power and wave power has a high possibility of future growth due to the economic feasibility in offshore environment. This kind of large-scale combined systems might be follow the determination by the transmission system operator's directions and control the output profile by focusing at PCC. However, both renewable energies are depend on the unpredictable environmental variation; it is needed to do the compensation devices. In this paper, the ESS compensation plan is proposed to do output determination of the combined generator system by paying attention to active power of utility grid with the analysis of the controllable elements of the wind and wave power generator. The improvement of the new application technique of the combined system is confirmed through using the PSCAD/EMTDC. The entire simulation process was designed by adopting the active power control according to the reference signal of TSO.

Keywords

References

  1. G. Xydis, "On the exergetic capacity factor of a wind - solar power generation system," Journal of Cleaner Production, Vol. 47, pp. 437-445, 2013. https://doi.org/10.1016/j.jclepro.2012.07.014
  2. L. Ren, Y. Tang, J. Shi, J. Dou, S. Zhou, T. Jin "Techno-economic evaluation of hybrid energy storage technologies for a solar-wind generation system," Physica C: Superconductivity and its Applications, Vol. 484, pp. 272-275, 2013. https://doi.org/10.1016/j.physc.2012.02.048
  3. W. Li, G. Joos, J. Belanger "Real-Time Simulation of a Wind Turbine Generator Coupled With a Battery Supercapacitor Energy Storage System," IEEE Transactions on Industrial Electronics, Vol. 57, pp. 1137-1145, 2010.
  4. S. M. Muyeen, R. Takahashi, T. Murata, J. Tamura "Integration of an Energy Capacitor System with a Variable-Speed Wind Generator," IEEE Transactions on Energy Conversion, Vol. 24, pp. 740-749, 2009. https://doi.org/10.1109/TEC.2009.2025323
  5. QiYu Chen, Tim Littler, Haifeng Wang, "Tripping control for transient stability in coordinated hydro and wind generation," IET Renewable Power Generation Conference, pp. 1-4, 2013.
  6. M. Eriksson, R. Waters, O. Svensson, J. Isberg, M. Leijon, "Wave power absorption: Experiments in open sea and simulation," Journal of Applied Physics, Vol. 102, 2007.
  7. S. Jung, H. W. Kim, J. H. Lee, H. Lee, G. Jang, "Development of wind farm self-operation algorithm in micro power system by using surplus-power concept," ISGCE 2013, 2013.
  8. R. Mittal, K. S. Sandhu, D. K. Jain, "Battery energy storage system for variable speed driven PMSG for wind energy conversion system", PEDES 2010.
  9. J. pujante, etc, "Performance comparison of a 2MW DFIG wind turbine model under wind speed variation", EWEC 2009.