WSEAS Transactions on Power Systems


Print ISSN: 1790-5060
E-ISSN: 2224-350X

Volume 13, 2018

Notice: As of 2014 and for the forthcoming years, the publication frequency/periodicity of WSEAS Journals is adapted to the 'continuously updated' model. What this means is that instead of being separated into issues, new papers will be added on a continuous basis, allowing a more regular flow and shorter publication times. The papers will appear in reverse order, therefore the most recent one will be on top.



Impact of Wind Generators in Power System Stability

AUTHORS: F. R. Islam, A. Lallu, K. A. Mamun, K. Prakash, A. A. Rattan

Download as PDF

ABSTRACT: Wind electricity is one of the quickest developing renewable resources of power. This rapid development is expected considering the environmental factors, but in terms of power system stability, it comes with a number of concerns. Generators play a vital role on stability for a particular capacity and design of a network. This paper investigated the overall performance of 3 foremost types of wind turbines via small signal stability analysis on IEEE 9 bus system. Simulations have been done and established that the generators dynamic model have significant impact on power system stability at different capacity of the generators.

KEYWORDS: Wind Turbines, Signal Stability Analysis, Critical Parameter, Penetration Level, Grid Code, Eigenvalues

REFERENCES:

[1] Kundur, P., Paserba, J., Ajjarapu, V., Andersson, G., Bose, A., Canizares, C., ... & Van Cutsem, T. (2004). Definition and classification of power system stability IEEE/CIGRE joint task force on stability terms and definitions. IEEE transactions on Power Systems, 19(3), 1387-1401.

[2] Tsourakis, G., Nomikos, B. M., & Vournas, C. D. (2009). Contribution of doubly fed wind generators to oscillation damping. IEEE Transactions on energy conversion, 24(3), 783- 791.

[3] Jeevajothi, R. (2014). Impact Of Wind Turbine Generators On Power System Stability (Doctoral dissertation, Kalasalingam University).

[4] Sun, T., Chen, Z., & Blaabjerg, F. (2005). Flicker study on variable speed wind turbines with doubly fed induction generators. IEEE Transactions on Energy Conversion, 20(4), 896- 905.

[5] Mehta, B., Bhatt, P., & Pandya, V. (2014). Small signal stability analysis of power systems with DFIG based wind power penetration. International Journal of Electrical Power & Energy Systems, 58, 64-74.

[6] Vowles, D. J., Samarasinghe, C., Gibbard, M. J., & Ancell, G. (2008, July). Effect of wind generation on small-signal stability—A New Zealand example. In Power and Energy Society General Meeting-Conversion and Delivery of Electrical Energy in the 21st Century, 2008 IEEE (pp. 1-8). IEEE.

[7] Sorensen, P., Cutululis, N. A., ViguerasRodríguez, A., Jensen, L. E., Hjerrild, J., Donovan, M. H., & Madsen, H. (2007). Power fluctuations from large wind farms. IEEE Transactions on Power Systems, 22(3), 958- 965.

[8] Sun, Y., Wang, L., Li, G., & Lin, J. (2010, October). A review on analysis and control of WSEAS TRANSACTIONS on POWER SYSTEMS F. R. Islam, A. Lallu, K. A. Mamun, K. Prakash, A. A. Rattan E-ISSN: 2224-350X 245 Volume 13, 2018 small signal stability of power systems with large scale integration of wind power. In Power System Technology (POWERCON), 2010 International Conference on (pp. 1-6). IEEE.

[9] Weisser, D., & Garcia, R. S. (2005). Instantaneous wind energy penetration in isolated electricity grids: concepts and review. Renewable Energy, 30(8), 1299-1308.

[10] Slootweg, J. G., & Kling, W. L. (2003). The impact of large scale wind power generation on power system oscillations. Electric Power Systems Research, 67(1), 9-20.

[11] Mishra, Y. (2008). Advances in power system small signal stability analysis considering load modeling and emerging generation resource.

[12] Ekanayake, J. B., Holdsworth, L., Wu, X., & Jenkins, N. (2003). Dynamic modeling of doubly fed induction generator wind turbines. IEEE transactions on power systems, 18(2), 803-809.

[13] Ibrahim, H., Ghandour, M., Dimitrova, M., Ilinca, A., &Perron, J. (2011). Integration of wind energy into electricity systems: technical challenges and actual solutions. Energy Procedia, 6, 815-824.

[14] Hagstrøm, E., Norheim, I., & Uhlen, K. (2005). Large‐scale wind power integration in Norway and impact on damping in the Nordic grid. Wind Energy, 8(3), 375-384.

[15] Morshed, M. J., &Fekih, A. (2017). A new fault ride-through control for DFIG-based wind energy systems. Electric Power Systems Research, 146, 258-269.

[16] Tsourakis, G., Nomikos, B. M., & Vournas, C. D. (2009). Effect of wind parks with doubly fed asynchronous generators on small-signal stability. Electric Power Systems Research, 79(1), 190-200.

[17] Zheng, C., &Kezunovic, M. (2012). Impact of wind generation uncertainty on power system small disturbance voltage stability: A PCMbased approach. Electric Power Systems Research, 84(1), 10-19.

[18] Islam, F. R., & Pota, H. R. (2013). V2G technology to design a smart active filter for solar power system. International Journal of Power Electronics and Drive Systems, 3(1), 17.

[19] Islam, F. R., & Pota, H. R. (2011, November). V2G technology to improve wind power quality and stability. In Australian Control Conference (AUCC), 2011 (pp. 452-457). IEEE.

[20] Chen, Z. (2005). Issues of connecting wind farms into power systems. In Transmission and Distribution Conference and Exhibition: Asia and Pacific, 2005 IEEE/PES (pp. 1-6). IEEE.

[21] González-Longatt, F. M. (2007, October). Impact of distributed generation over power losses on distribution system. In 9th International Conference on Electrical Power Quality and Utilization.

[22] Sourkounis, C., & Tourou, P. (2013, June). Grid code requirements for wind power integration in europe. In Conference Papers in Science (Vol. 2013). Hindawi Publishing Corporation.

[23] Enslin, J. (2009). Grid impacts and solutions of renewables at high penetration levels. Quanta Technology.

[24] Herbert, G. J., Iniyan, S., Sreevalsan, E., & Rajapandian, S. (2007). A review of wind energy technologies. Renewable and sustainable energy Reviews, 11(6), 1117-1145.

[25] López, Y. U., & Domínguez, J. A. (2015). Small Signal Stability Analysis of Wind Turbines.

[26] Wilch, M., Pappala, V. S., Singh, S. N., & Erlich, I. (2007, July). Reactive power generation by DFIG based wind farms with AC grid connection. In Power Tech, 2007 IEEE Lausanne (pp. 626-632). IEEE.

[27] Nouby, M., Mathivanan, D., & Srinivasan, K. (2009). A combined approach of complex eigenvalue analysis and design of experiments (DOE) to study disc brake squeal. International Journal of Engineering, Science and Technology, 1(1), 254-271.

[28] Ruhle, O. (2006). Eigenvalue Analysis – All Information on Power System Oscillation. Behavior Rapidly Analyzed (1st ed.). Siemens PTI.

[29] Milano, F. (2010). Power system modelling and scripting. Springer Science & Business Media.

[30] Lee, D. J., & Wang, L. (2008). Small-signal stability analysis of an autonomous hybrid renewable energy power generation/energy storage system part I: Time-domain simulations. IEEE Transactions on Energy Conversion, 23(1), 311-320.

[31] Kong, S. Y., Bansal, R. C., & Dong, Z. Y. (2012). Comparative small-signal stability analyses of PMSG-, DFIG-and SCIG-based wind farms. International Journal of Ambient Energy, 33(2), 87-97.

[32] He, P., Wen, F., Ledwich, G., & Xue, Y. (2013). Small signal stability analysis of power systems with high penetration of wind power. Journal of Modern Power Systems and Clean Energy, 1(3), 241-248.

WSEAS Transactions on Power Systems, ISSN / E-ISSN: 1790-5060 / 2224-350X, Volume 13, 2018, Art. #24, pp. 235-248


Copyright © 2018 Author(s) retain the copyright of this article. This article is published under the terms of the Creative Commons Attribution License 4.0

Bulletin Board

Currently:

The editorial board is accepting papers.


WSEAS Main Site