IEEE Transactions on Industrial Electronics, 2011; 58:1081 - 1095.
[2] Hansen A D, Hansen LH. Wind turbine concept market penetration over ten years (1995
2004). Wind Energy, 2007;10: 81– 97.
Chinchilla M, Arnaltes S, Control of permanent-magnet generators applied to variable-speed
wind-energy systems connected to the grid.IEEE Transactions on Energy Conversion, 2006;
21:130 - 135.
Al-Toma A, Taylor G, Abbod M. Modelling and simulation of load connected fixed blade
wind turbine with permanent magnet synchronous generators. IEEE UPEC conference, 50'th
International Universities, 2015: 1– 6.
Altahir A.A.R. Semi - global output feedback nonlinear stabilisation of variable speed grid
connected direct drive wind turbine generator systems. International Journal of Dynamics and
Control, 2018; 6: 233 - 266.
Kara P, Geyer T. Direct model predictive control: A review of strategies that achieve long
prediction intervals for power electronics. IEEE Industrial Electronics,2014; 8:32- 43.
Ackermann T. Wind power in power systems. Royal Institute of Technology, Stockholm,
Sweden; John Wiley & Sons, Ltd, 2005.
Liserre M, Cardenas R., Molinas M. Overview of multi-MW wind turbines and wind parks.
IEEE Transactions on Industrial Electronics, 2011; 58:1081 - 1095.
Hansen A D, Hansen LH. Wind turbine concept market penetration over ten years (1995
2004). Wind Energy, 2007;10: 81– 97.
Chinchilla M, Arnaltes S, Control of permanent-magnet generators applied to variable-speed
wind-energy systems connected to the grid.IEEE Transactions on Energy Conversion, 2006;
21:130 - 135.
Al-Toma A, Taylor G, Abbod M. Modelling and simulation of load connected fixed blade
wind turbine with permanent magnet synchronous generators. IEEE UPEC conference, 50'th
International Universities, 2015: 1– 6.
Altahir A.A.R. Semi - global output feedback nonlinear stabilisation of variable speed grid
connected direct drive wind turbine generator systems. International Journal of Dynamics and
Control, 2018; 6: 233 - 266.
Kara P, Geyer T. Direct model predictive control: A review of strategies that achieve long
prediction intervals for power electronics. IEEE Industrial Electronics,2014; 8:32- 43.
Ackermann T. Wind power in power systems. Royal Institute of Technology, Stockholm,
Sweden; John Wiley & Sons, Ltd, 2005.
Liserre M, Cardenas R., Molinas M. Overview of multi-MW wind turbines and wind parks.
IEEE Transactions on Industrial Electronics, 2011; 58:1081 - 1095.
Hansen A D, Hansen LH. Wind turbine concept market penetration over ten years (1995
2004). Wind Energy, 2007;10: 81– 97.
Chinchilla M, Arnaltes S, Control of permanent-magnet generators applied to variable-speed
wind-energy systems connected to the grid.IEEE Transactions on Energy Conversion, 2006;
21:130 - 135.
Al-Toma A, Taylor G, Abbod M. Modelling and simulation of load connected fixed blade
wind turbine with permanent magnet synchronous generators. IEEE UPEC conference, 50'th
International Universities, 2015: 1– 6.
Altahir A.A.R. Semi - global output feedback nonlinear stabilisation of variable speed grid
connected direct drive wind turbine generator systems. International Journal of Dynamics and
Control, 2018; 6: 233 - 266.
Kara P, Geyer T. Direct model predictive control: A review of strategies that achieve long
prediction intervals for power electronics. IEEE Industrial Electronics,2014; 8:32- 43.
Ackermann T. Wind power in power systems. Royal Institute of Technology, Stockholm,
Sweden; John Wiley & Sons, Ltd, 2005.
[8]
Kumar K. Modeling of Wind Energy Conversion System (WECS) and Power Quality Analysis.
International Journal of IT, Engineering and Applied Sciences Research 2012; 1: 41– 48.
[9]
Narayana M, Putrus G. A, Jovanovic M, Leung P. S, McDonald S. Generic Maximum Power
Point Tracking Controller for Small Scale Wind Turbines. Renewable Energy. 2012; 44: 72
79.
[10] Acharya P. Small Scale Maximum Power Point Tracking Power Converter for Developing
Country Application. Master's thesis, University of Canterbury, 2013.
[11] Pe R, Morales-salda J. Modeling of a Wind Turbine with a Permanent Magnet Synchronous
Generator for Real-Time Simulations. IEEE International Autumn Meeting on Power,
Electronics, and Computing (ROPEC), 2015.
[12] Baktiono S, Science C. A Study of Field-Oriented Control of a Permanent Magnet
Synchronous Generator and Hysteresis Current Control for Wind Turbine Application.
Doctoral dissertation, The Ohio State University,2012.
[13] Janakiraman S, Shireen W. An optimal speed wind turbine test bench system for PMSG
machines with MPP control. IEEE Power Energy Society General Meeting, 2014.
[14] Ren Y, Li L, Brindley J, Jiang L. Control Engineering Practice Nonlinear PI control for a
variable pitch wind turbine. Control Eng. Pract. 2016; 50 - 94.
[15] Kumar A. A. Study of Wind Turbine Driven DFIG Using AC / DC / AC Converter. A
Doctoral dissertation, National Institute of Technology Rourkela, 2006.
[16] A. S. Al-Toma, G. A. Taylor, M. Abbod and I. Pisica, "A comparison of PI and fuzzy logic
control schemes for field-oriented permanent magnet synchronous generator wind turbines,"
2017 IEEE PES Innovative Smart Grid Technologies Conference Europe (ISGT-Europe),
Torino, 2017, pp. 1-6, doi: 10.1109/ISGTEurope.2017.8260331.
[17] Linder A. Model-Based Predictive Control of Electric Drives.New York,2007.
[18] Cortés P, Kazmierkowski M. Predictive control in power electronics and drives. IEEE
Transactions on Industrial Electronics, 2008; 55: 4312 - 4324.
[19] Bououden S, Filali S, Chadli M. Fuzzy Predictive Control of a Variable Speed Wind Turbine.
Energy Procedia, 2013; 42: 357–366.
[20] Bououden S, Chadli M, Filali S, El Hajjaji A. Fuzzy model-based multivariable predictive
control of a variable speed wind turbine: LMI approach. Renew. Energy, 2012. 37, no. 1, pp.
434–439, Jan. 2012.
[21] Kumar H, Gupta A, Pachauri R. K, Chauhan Y. K. PI / FL Based Blade Pitch Angle Control
for Wind Turbine Used in Wind Energy Conversion System. Recent Developments in Control,
Automation and Power Engineering (RDCAPE), International Conference on. IEEE, 2015; 1:
15 – 20.
[22] Rosyadi M, Muyeen S. M, Takahashi R, Tamura J. A design fuzzy logic controller for a
permanent magnet wind generator to enhance the dynamic stability of wind farms. Applied
Science, 2012; 2: 780 – 800.