Fuzzy logic controller-based power control of DFIG based on wind energy systems
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J.M. Adànez, B.M. Al-Hadithi, A. Jiménez, ”Wind turbine multivariable
optimal control based on incremental state model,”Asian J control 20,1-
(2018).
N.T. Anh Tuyet, S.Y. Chou, ”Maintenance strategy selection for
improving cost-effectiveness of offshore wind systems,”Energy Convers.
Manag 157, 86-95 (2018).
Chhipa, A.A.; Kumar, V.; Vyas, S.; Joshi, R.R. MPPT Optimisation
Techniques and Power Electronics for Renewable Energy Systems: Wind
and Solar Energy Systems. Int. J. Swarm Intell. 2021, 1, 1. [CrossRef]
M. A. Akbari, J. Aghaei, and M. Barani, “Convex probabilistic allocation
of wind generation in smart distribution networks,” IET. Renew. Power.
Gener, vol. 11(9), pp. 1211–8, 2017.
N JargalsaikhanH Masrur A Iqbal S. Rangarajan S ByambaaT Senjyu, ”
A control algorithm to increase the efficient operation of wind energy
conversion systems under extreme wind conditions ” J. Int. Energy
Reports. (8), 11429-11439 (2022).
V. Kumar, A.S. Pandey, S.K. Sinha, ”Grid integration and power quality
issues of winnd and solar energy system,” a review.In: International
Confernece on Emerging Trends in Electrical, Electronics ans Sustainable
Energy systems (ICETEESES-16), IEEE? 11-12 March 2016 (2016)
Rajendran, M.; Kumar, L.A. Modeling and Simulation of a Dfig-Based
Wind Energy System. In Lecture Notes in Electrical Engineering;
Springer: Singapore, 2020; Volume 687, pp. 31–49.
S. H. Lee, Y. J. Joo, J. Back, and J. H. Seo, “Sliding mode controller for
torque and pitch control of wind power system based on PMSG,” In:
International Conference on Control, Automation and Systems, ICCAS,
pp. 1079–1084, 2010.
A. Z. Mohamed, M. N. Eskander, and F. A. Ghali, “Fuzzy logic control
based maximum power tracking of a wind energy system,” Renew.
Energy, vol. 23, pp. 235–245, 2001.
Sohoni, V., Gupta, S., & Nema, R. K. (2016). A Critical Review on Wind
Turbine Power Curve Modelling Techniques and Their Applications in
Wind Based Energy Systems. Journal Of Energy, 2016, 1-18.
https://doi.org/10.1155/2016/8519785
Kassem, A. M., Hasaneen, K. M., & Yousef, A. H. (2013). Dynamic
modeling and robust power control of DFIG driven by wind turbine at
infinite grid. International Journal Of Electrical Power & Energy
Systems, 44(1), 375-382. https://doi.org/10.1016/j.ijepes.2011.06.038
Mousavi, Y., Bevan, G., Küçükdemiral, ?. B., & Fekih, A. (2022). Sliding
mode control of wind energy conversion systems : Trends and
applications. Renewable & Sustainable Energy Reviews, 167, 112734.
https://doi.org/10.1016/j.rser.2022.112734
Yang, B., Yu, T., Shu, H., Dong, J., & Jiang, L. (2018). Robust slidingmode control of wind energy conversion systems for optimal power
extraction via nonlinear perturbation observers. Applied Energy, 210,
-723. https://doi.org/10.1016/j.apenergy.2017.08.027
Y. Daili, J. P. Gaubert, L. Rahmani, A. Harrag, “Quantitativ feedback
theory design of robust MPPT controller for small wind energy
conversion systems: Design, analysis, and experimental study,”
Sustainable Energy Technologies and Assessments, vol. 35, pp 308-320,
October 2019.
Islam, H., Mekhilef, S., Shah, N. M., Soon, T. K., Seyedmahmousian, M.,
Horan, B., & Stojcevski, A. (2018). Performance Evaluation of Maximum
Power Point Tracking Approaches and Photovoltaic Systems. Energies,
(2), 365. https://doi.org/10.3390/en11020365
X. Pinghua, S. Dan, “Backstepping-based DPC strategy of a wind turbine driven DFIG under normal and harmonic grid voltage,” IEEE Trans. on
P. Electron., 31(6), pp. 4216–25, 2016
Houck, D. (2021). Review of wake management techniques for wind
turbines. Wind Energy, 25(2), 195-220. https://doi.org/10.1002/we.2668
DOI (PDF): https://doi.org/10.20508/ijsmartgrid.v8i1.334.g346
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