174
tion generator based wind turbine, (2007) International Review of Electrical Engineering
(IREE), 2 (2), pp. 250-259.
4. Manfred stieber, Wind Energy System for Electric Power Generation (Springer Verlag, Berlin
Heidelberg, 2008).
5. Grätzel, M. Photoelectrochemical cells. Nature, 414:338–344, 2001.
6. K. D. Kerrouche, A. Mezouar, L. Boumediene, K. Belgacem Modeling and Optimum Power
Control Based DFIG Wind Energy Conversion System, International Review of Electrical
Engineering (I.R.E.E.), 2014 Vol. 9, N. 1
7. T.K.A. Brekken, N. Mohan, Control of a doubly fed induction wind generator under unbalanced grid voltage conditions, IEEE Trans. On Energy Conversion, vol. 22 n. 1, Mar 2007,
pp. 129-135.
8. Wang, L, Truong, D.-N, Stability Enhancement of DFIG-Based Offshore Wind Farm Fed to
a Multi-Machine System Using a STATCOM, IEEE Trans. on Power Sys, vol. 28 n. 3, 2013,
pp. 2882 – 2889.
9. Mohammad Pichan, Hasan Rastegar, Mohammad Monfared, Two fuzzy-based direct power
control strategies for doubly-fed induction generators in wind energy conversion systems,
Energy, vol. 51, 2013, pp. 154–162.
10. Organisation for Economic Co-operation and Development. World energy outlook. Paris:
Organisation for Economic Co-operation and Development; 2010.
11. Gopal Sharma, K., Bhargava, A., Gajrani, K., Stability analysis of DFIG based wind turbines connected to electric grid, (2013) International Review on Modelling and Simulations
(IREMOS), 6 (3), pp. 879-887.
12. Gupta, N., Singh, S.P., Dubey, S.P., Palwalia, D.K., Fuzzy logic controlled three-phase threewired shunt active power filter for power quality improvement, (2011) International Review of
Electrical Engineering (IREE), 6 (3), pp. 1118-1129.
13. Heier, Wind energy conversion systems (John Wiley & Sons Inc., New York, 1998).
14. Dürr, M., Cruden, A., Gair, S., and McDonald, J. R., “Dynamic Model of a Lead Acid Battery
for Use in a Domestic Fuel Cell System,” Journal of Power Sources, Vol. 161, No. 2, pp. 14001411, 2006.
15. M. Boutotbat, L. Mokrani, M. Machmoum, Control of a wind energy conversion system
equipped by a DFIG for active power generation and power quality improvement, Renewable
Energy, vol. 50, 2013, pp. 378-386.
16. E. Kamal, M. Koutb, A. A. Sobaih, and B. Abozalam, An intelligent maximum power extraction algorithm for hybrid wind-diesel-storage system, Int. J. Electr. Power Energy Syst, vol. 32
n. 3, 2010, pp. 170–177.
17. Abdullah, M. A., Yatim, A. H. M., and Chee Wei, T., “A Study of Maximum Power Point
Tracking Algorithms for Wind Energy system,” Proc. of IEEE First Conference on Clean
Energy and Technology(CET), pp. 321-326, 2011.
18. G. Tsourakisa, B. M. Nomikosb, C.D. Vournasa. Effect of wind parks with doubly fed asynchronous generators on small-signal stability, Electric Power Systems Research, vol. 79, 2009,
pp. 190-200.
19. Faida, H., Saadi, J., Modelling, control strategy of DFIG in a wind energy system and feasibility study of a wind farm in Morocco, (2010) International Review on Modelling and
Simulations (IREMOS), 3 (6), pp. 1350-1362.
20. Tazil M, Kumar V, Bansal RC, Kong S, Dong ZY, Freitas W, et al, Three-phase Doubly Fed
Induction Generators; an overview. IET Journal on Electric Power Applications, vol. 4, 2010,
pp. 75-89.
21. T. Takagi and M. Sugeno, Fuzzy identification of systems and its applications to modelling and
control, IEEE Trans. Syst Man Cybern, vol. 15 n. 1, 1985, pp.116–132.
22. E. H. Mamdani and S. Assilina, An experiment in linguistic synthesises with a fuzzy logic
controller, International Journal of Man Machine Studies, n. 7, 1975, pp. 1-13.
23. A. Gaillard, P. Poure, S. Saadate, M. Machmoum. Variable Speed DFIG Wind Energy System
for Power Generation and Harmonic Current Mitigation, Renewable Energy, vol. 34, 2009,
pp. 1545-1553.
9 Invisible Roads and Transportation Engineering
tion generator based wind turbine, (2007) International Review of Electrical Engineering
(IREE), 2 (2), pp. 250-259.
4. Manfred stieber, Wind Energy System for Electric Power Generation (Springer Verlag, Berlin
Heidelberg, 2008).
5. Grätzel, M. Photoelectrochemical cells. Nature, 414:338–344, 2001.
6. K. D. Kerrouche, A. Mezouar, L. Boumediene, K. Belgacem Modeling and Optimum Power
Control Based DFIG Wind Energy Conversion System, International Review of Electrical
Engineering (I.R.E.E.), 2014 Vol. 9, N. 1
7. T.K.A. Brekken, N. Mohan, Control of a doubly fed induction wind generator under unbalanced grid voltage conditions, IEEE Trans. On Energy Conversion, vol. 22 n. 1, Mar 2007,
pp. 129-135.
8. Wang, L, Truong, D.-N, Stability Enhancement of DFIG-Based Offshore Wind Farm Fed to
a Multi-Machine System Using a STATCOM, IEEE Trans. on Power Sys, vol. 28 n. 3, 2013,
pp. 2882 – 2889.
9. Mohammad Pichan, Hasan Rastegar, Mohammad Monfared, Two fuzzy-based direct power
control strategies for doubly-fed induction generators in wind energy conversion systems,
Energy, vol. 51, 2013, pp. 154–162.
10. Organisation for Economic Co-operation and Development. World energy outlook. Paris:
Organisation for Economic Co-operation and Development; 2010.
11. Gopal Sharma, K., Bhargava, A., Gajrani, K., Stability analysis of DFIG based wind turbines connected to electric grid, (2013) International Review on Modelling and Simulations
(IREMOS), 6 (3), pp. 879-887.
12. Gupta, N., Singh, S.P., Dubey, S.P., Palwalia, D.K., Fuzzy logic controlled three-phase threewired shunt active power filter for power quality improvement, (2011) International Review of
Electrical Engineering (IREE), 6 (3), pp. 1118-1129.
13. Heier, Wind energy conversion systems (John Wiley & Sons Inc., New York, 1998).
14. Dürr, M., Cruden, A., Gair, S., and McDonald, J. R., “Dynamic Model of a Lead Acid Battery
for Use in a Domestic Fuel Cell System,” Journal of Power Sources, Vol. 161, No. 2, pp. 14001411, 2006.
15. M. Boutotbat, L. Mokrani, M. Machmoum, Control of a wind energy conversion system
equipped by a DFIG for active power generation and power quality improvement, Renewable
Energy, vol. 50, 2013, pp. 378-386.
16. E. Kamal, M. Koutb, A. A. Sobaih, and B. Abozalam, An intelligent maximum power extraction algorithm for hybrid wind-diesel-storage system, Int. J. Electr. Power Energy Syst, vol. 32
n. 3, 2010, pp. 170–177.
17. Abdullah, M. A., Yatim, A. H. M., and Chee Wei, T., “A Study of Maximum Power Point
Tracking Algorithms for Wind Energy system,” Proc. of IEEE First Conference on Clean
Energy and Technology(CET), pp. 321-326, 2011.
18. G. Tsourakisa, B. M. Nomikosb, C.D. Vournasa. Effect of wind parks with doubly fed asynchronous generators on small-signal stability, Electric Power Systems Research, vol. 79, 2009,
pp. 190-200.
19. Faida, H., Saadi, J., Modelling, control strategy of DFIG in a wind energy system and feasibility study of a wind farm in Morocco, (2010) International Review on Modelling and
Simulations (IREMOS), 3 (6), pp. 1350-1362.
20. Tazil M, Kumar V, Bansal RC, Kong S, Dong ZY, Freitas W, et al, Three-phase Doubly Fed
Induction Generators; an overview. IET Journal on Electric Power Applications, vol. 4, 2010,
pp. 75-89.
21. T. Takagi and M. Sugeno, Fuzzy identification of systems and its applications to modelling and
control, IEEE Trans. Syst Man Cybern, vol. 15 n. 1, 1985, pp.116–132.
22. E. H. Mamdani and S. Assilina, An experiment in linguistic synthesises with a fuzzy logic
controller, International Journal of Man Machine Studies, n. 7, 1975, pp. 1-13.
23. A. Gaillard, P. Poure, S. Saadate, M. Machmoum. Variable Speed DFIG Wind Energy System
for Power Generation and Harmonic Current Mitigation, Renewable Energy, vol. 34, 2009,
pp. 1545-1553.
9 Invisible Roads and Transportation Engineering
