Identyfikatory
Warianty tytułu
Języki publikacji
Abstrakty
In recent years, renewable energy based power plants, especially wind and solar farms are increasingly installed and operated for electric power generation. Uncertainty nature associated to the generated power of these power plants, arisen from variability of wind speed or solar radiation, effects on different aspects of power system such as reliability, operation, dynamic and so on. Energy storages in connection with renewable power plants can reduce the variability and uncertainty nature of these renewable resources. In recent years the flow batteries such as vanadium redox (VR) with large capacities are developed and so in this paper effect of this largecapacity energy storages on the reliability performance of power system containing large-scale wind and photovoltaic (PV) farms are investigated. The renewable energy-based power plants and also energy storages are different from conventional units, so, for study of power system containing these resources new methods and techniques must be developed. To this end in this paper for reliability evaluation of renewable-energy based power system containing energy storage, an analytical approach is proposed. This approach can be employed both in planning and also operation studies of the power system when large scale wind and photovoltaic farms with energy storages exist. Data associated to wind speed of Manjil and solar radiation of Jask regions both in Iran are utilized for studying the reliability evaluation of RBTS and also IEEERTS in planning phase.
Wydawca
Rocznik
Tom
Strony
198--205
Opis fizyczny
Bibliogr. 27 poz., fig., tab.
Twórcy
autor
- Islamic Azad University of Dariun Branch, Dariun, Islamic Republic of Iran
autor
- Islamic Azad University of Dariun Branch, Dariun, Islamic Republic of Iran
Bibliografia
- 1. Liu X. and S. Islam. Reliability evaluation of a wind-diesel hybrid power system with battery bank using discrete wind speed frame analysis. IEEE International Conference on Probabilistic Methods Applied to Power Systems, 2006.
- 2. Liu Xu, et al. Reliability evaluation of a wind-diesel-battery hybrid power system. IEEE Technical Conference on Industrial and Commercial Power Systems, 2008.
- 3. Khadkikar V., Rajiv K. Varma and Ravi Seethapathy. Grid voltage regulation utilizing storage batteries in PV solar—Wind plant based distributed generation system. IEEE Electrical Power & Energy Conference, 2009.
- 4. Giraud F. and Zyiad M. Salameh. Steady-state performance of a grid-connected rooftop hybrid windphotovoltaic power system with battery storage. IEEE Transactions on Energy Conversion, 16(1), 2001, 1–7.
- 5. Lu, Ming-Shun, et al. Combining the wind power generation system with energy storage equipment. IEEE Industry Applications Society Annual Meeting, 2008.
- 6. Völler S., Al-Awaad A-R. and Verstege J.F. Wind farms with energy storages integrated at the control power market. CIGRE/IEEE PES Joint Symposium on Integration of Wide-Scale Renewable Resources Into the Power Delivery System, 2009.
- 7. Barote L., Georgescu M. and Marinescu C. Smart storage solution for wind systems. Power-Tech IEEE conference, Bucharest, 2009.
- 8. Hu P., Karki R. and Billinton R. Reliability evaluation of generating systems containing wind power and energy storage. IET Gener- Transm- Distrib, 3(8), 2009, 783–791.
- 9. Gao Feng, Arne Hallam and Chien-Ning Yu. Wind generation scheduling with pump storage unit by collocation method. IEEE Power and Energy Society General Meeting, 2009.
- 10. Zahedi A. Technical analysis of an electric power system consisting of solar PV energy, wind power, and hydrogen fuel cell. IEEE Power Engineering Conference, Australasian Universities, 2007.
- 11. Dehghan S., et al. Optimal sizing of a hydrogenbased wind/PV plant considering reliability indices. IEEE International Conference on Electric Power and Energy Conversion Systems, 2009.
- 12. He Aishan, Zhuoyong Yan and Weidong Gu. Research on non-grid-connected wind power systems used for hydrogen production from water-electrolytic. IEEE World Non-Grid-Connected Wind Power and Energy Conference, 2009.
- 13. Miller A.I. and Duffey R.B. Integrating large-scale cogeneration of hydrogen and electricity from wind and nuclear sources (NUWIND TM). Proceedings of the 2008 International Congress on Advances in Nuclear Power Plants, 2008.
- 14. Thakur T. et al. Optimization of imbalance cost for wind power marketability using hydrogen storage. Power System Technology and IEEE Power India Conference, POWERCON, 2008.
- 15. Wang C. and Hashem Nehrir M. Power management of a stand-alone wind/photovoltaic/fuel cell energy system. IEEE transactions on Energy conversion, 23(3), 2008, 957–967.
- 16. Chen S.X. and Gooi H.B. Capacitor planning of power systems with wind generators and PV arrays. TENCON IEEE Region 10 Conference, 2009.
- 17.Jung Hee-Yeol, et al. A study on the operating characteristics of SMES for the dispersed power generation system. IEEE Transactions on Applied Superconductivity, 19(3), 2009, 2028–2031.
- 18. Lerch E. Storage of fluctuating wind energy. IEEE European Conference on Power Electronics and Applications, 2007.
- 19. Mansour Mohamed, Mansouri M.N. and Mimouni M.F. Performance Evaluation of a Flywheel Energy-Storage System Associated to a VariableSpeed Wind Generator. Sustainability in Energy and Buildings, Springer Berlin Heidelberg, 2012, 201–211.
- 20. Miyake S. and Nobuyuki T. Vanadium redox-flow battery for a variety of applications. IEEE Power Engineering Society Summer Meeting, 1, 2001.
- 21. Shibata A. and Kanji S. Development of vanadium redox flow battery for electricity storage. Power Engineering Journal 13(3), 1999, 130–135.
- 22. Skyllas‐Kazacos M. et al. Recent advances with UNSW vanadium‐based redox flow batteries. International Journal of Energy Research, 34(2), 2010, 182–189.
- 23. Shibata A., Sato K. and Masato N. Development of vanadium redox flow battery for photovoltaic generation system. IEEE Photovoltaic Energy Conversion, 1994.
- 24. Billinton R. and Ronald N.A. Reliability Evaluation of Power Systems. 2nd Edition, Plenum Press, New York and London, 1994.
- 25. Ghaedi A. et al. Toward a comprehensive model of large-scale DFIG-based wind farms in adequacy assessment of power systems. IEEE Transactions on Sustainable Energy, 5(1), 2014, 55–63.
- 26. Billinton R., et al. A reliability test system for educational purposes-basic data. IEEE Transactions on Power Systems, 4(3), 1989, 1238–1244.
- 27. Subcommittee, Power Market. IEEE reliability test system. IEEE Transactions on Power Apparatus and Systems, 6, 1979, 2047–2054.
Uwagi
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-d514b6c7-0a74-4bce-b66b-babe1635ac4b