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Recent Advances in Electrical & Electronic Engineering

Editor-in-Chief

ISSN (Print): 2352-0965
ISSN (Online): 2352-0973

Research Article

Study of Multi-factor Coordinated Frequency Control Strategy by DFIG Wind Turbine

Author(s): Wang Yin-Sha, Li Wen-Yi* and Li Zhi-Wen

Volume 12, Issue 1, 2019

Page: [86 - 93] Pages: 8

DOI: 10.2174/1570179415666180709123152

open access plus

Abstract

Background: With the large-scale Doubly Fed Induction Generator (DFIG) wind turbine integrated into the power system, the DFIG inertia response of the wind turbine should be provided. Also, the frequency response should be similar to the conventional generation technologies. This paper investigated the influence of frequency response term and wind speed conditions on system frequency control.

Methods: The specific operating conditions of four control strategies, including inertia control, droop control, over speed control and pitch angle control were researched in this paper. Multi-factor coordinated frequency control strategy of DFIG wind turbine was established based on the above researches. The strategy was composed of wind speed ranging from low to high.

Results: According to the simulation results, the DFIG wind turbine, which was based on multifactor coordinated frequency control strategy, could respond to the system’s frequency change of power grid, effectively.

Conclusion: It helps system frequency return to stable states better and faster than DFIG wind turbine and also could reduce the fluctuation of system frequency.

Keywords: DFIG wind turbine, inertial control, droop control, over speed control, pitch angle control, coordinated frequency control strategy.

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[1]
"L.-R. C.-Chien, W.-T. Lin andY.-C. Yin, “Enhancing frequency response control by DFIGs in the high wind penetrated power systems”, IEEE Transact. Power Syst., Vol. 26, pp. 710-718, 2011",
[2]
" Wang and S. Gu, “A review of inertia and frequency control technologies for variable speed wind turbines”, In: 25th Chinese Control and Decision Conference (CCDC), Guiyang, China, 2013, pp. 2527-2533",
[3]
H. Li, and Y. Wang, "Control of DFIG-based wind farms for power network frequency support", International Conference on Power System Technology (POWERCON), 2010pp. 1-5 Hangzhou, China
[4]
T. Rubing, Y. Yupeng, L. Zhiwu, and M. Xiaodong, "Research on primary frequency control for power system with participation of wind turbines", Heilongjiang Electric Power, vol. 37, pp. 42-53, 2015.
[5]
A. Teninge, C. Jecu, D. Roye, S. Bacha, J. Duval, and R. Belhomme, "Contribution to frequency control through wind turbine inertial energy storage", IET Renew. Power Gener., vol. 3, pp. 358-370, 2009.
[6]
A. Žertek, G. Verbič, and M. Pantoš, "Participation of DFIG wind turbines in frequency control ancillary service by optimized rotational kinetic energy", 7th International Conference on the European Energy Market, 2010pp. 1-6 Madrid, Spain
[7]
P. Moutis, E. Loukarakis, and S. Papathanasiou, "Primary load-frequency control from pitch-controlled wind turbines", IEEE Bucharest Power Tech Conference, 2009pp. 1-7 Bucharest, Romania
[8]
T. Xisheng, and M. Fufeng, "Survey on Frequency Control of Wind Power", Zhongguo Dianji Gongcheng Xuebao, vol. 34, pp. 4304-4314, 2014.
[9]
I.D. Margaris, and S.A. Papathanassiou, "Frequency control in autonomous power systems with high wind power penetration", IEEE Transact. Sustain. Energ., vol. 3, pp. 189-199, 2012.
[10]
J. Lee, G. Jang, and E. Muljadi, "Stable Short-term frequency support using adaptive gains for a DFIG-based wind power plant", IEEE Trans. Energ. Convers., vol. 31, pp. 1068-1079, 2016.
[11]
M. Hawng, E. Muljadi, and G. Jang, "Disturbance-adaptive short-term frequency support of a DFIG associated with the variable gain based on the ROCOF and rotor speed", IEEE Trans. Power Syst., vol. 32, pp. 1873-1881, 2017.
[12]
Z-S. Zhang, Y-Z. Sun, J. Lin, and G-J. Li, "Coordinated frequency regulation by doubly fed induction generator-based wind power plants", IET Renew. Power Gener., vol. 6, pp. 38-47, 2012.
[13]
Z. Zhaosui, and S. Yuanzhang, "Frequency regulation by doubly fed induction generator wind turbines based on coordinated over speed control and pitch control", Dianli Xitong Zidonghua, vol. 35, pp. 20-25, 2011.
[14]
D. H-He and Z. Y.-Chi, "The research on virtual inertia control applied to doubly fed induction generator", J. Elec. Power, vol. 31, pp. 273-278, 2016.
[15]
L. Binbin, Y. Jianwei, L. Kai, and H. Zhengyou, "Improved frequency control strategy for DFIG based wind turbines based on rotor kinetic energy control", Dianli Xitong Zidonghua, vol. 40, pp. 16-21, 2016.
[18]
L. Shichun, and D. Changhong, "An inertial control method of doubly fed induction generators suitable for power grid with high wind power penetration", Dianli Xitong Zidonghua, vol. 40, pp. 33-38, 2016.
[17]
L. Wu, and D. Infield, "Power system frequency management challenges a new approach to assessing the potential of wind capacity to aid system frequency stability", IET Renew. Power Gener., vol. 8, pp. 733-739, 2014.
[18]
P. Wenxia, Q. Rui, and W. Fei, "A variable drop control strategy for doubly-fed induction generators", Autom. Elect. Power Syst, vol. 39, pp. 126-131, 2015.
[19]
H.T. Ma, and B.H. Chowdhury, "Working towards frequency regulation with wind plants: combined control Approaches", IET Renew. Power Gener., vol. 4, pp. 308-316, 2010.
[20]
A. Zertek, G. Verbic, and M. Pantos, "Participation of DFIG wind turbines in frequency control ancillary service by optimized rotational kinetic energy", 7th International Conference on the European Energy Market, 2010pp. 1-6 Madrid, Spain
[21]
M. Mokadem, V. Courtecuisse, and C. Saudemont, "Fuzzy logic supervisor-based primary frequency control experiments of a variable-speed wind generator", IEEE Trans. Power Syst., vol. 24, pp. 407-417, 2009.
[22]
M. Kayikçi, and J.V. Milanovic, "Dynamic contribution of DFIG-based wind plants to system frequency disturbances", IEEE Trans. Power Syst., vol. 24, pp. 859-867, 2009.
[23]
Z. Fang, and B. Hai, East China Electric Power, vol. 39, pp. 1036-1040, 2011.

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