Doubly Fed Induction Generator Based Wind Energy Conversion System: A Review
Abstract
Doubly-Fed Induction Generator (DFIG) based wind turbine has gained attention in present day wind power industry due to its performance. D F I G uses the concept of variable speed, variable pitch and torque to control the variation of wind speed relative to the output. In wind energy conversion system, the stator terminal is connected to the grid while the rotor is connected via a bidirectional converter in which DFIG is employed. Â However, DFIGs are highly subjected to some system disturbances like grid voltage dip and swell. This call for an efficient control operation of DFIG- based WECS to ensure an improved performance under dynamic conditions. The Direct Torque Control (DTC) otherwise known as scalar control technique is a technique best use in DFIG for wind energy extraction due to its better dynamic response, reduce use of machine parameters and its simplicity in implementation. From the work presented, conclusions will be made on the best configuration for WEC system and the control suitable for suppressing torque and regulating flux riffle.
Full Text:
PDFReferences
Abubakar A. S. (2016). Development of a Model Predictive Control Scheme for Doubly Fed Induction Generator for a grid-connected Wind Turbine System. Phd Seminar. Department of Electrical Engineering. Ahmadu Bello University, Zaria. Unpublished.
Alex K. Katherine D. Kathy A, (2015). Introduction to DFIG for Wind Power Application. Department of Earth, Atmospheric and Planetary Science (EAPS) MIT, 259-278.
Alhazmi, (2015). Modelling of Doubly-Fed Induction Generator using MATLAB/SIMULINK. Master’s thesis, California state university Los Angeles.
Bayat M. M and Torun Y. (2017). Modelling and Linearization of DFIG Based Wind Turbine. European Scientific Journal July 2017 /SPECIAL/ edition ISSN: 1857 – 7881 (Print) e - ISSN 1857- 7431.
Beainy, Maatouk, Moubayed and Kaddah, (2016). Comparison of Different Types of Generator for Wind Energy Conversion System Topologies. 2016 3rd International Conference on Renewable Energies for Developing Countries (REDEC) 978-1-5090-1864-2/16
Fletcher J and Yang J. (2010). Introduction to Doubly-Fed Induction Generator for Wind Power Applications. University of Strathclyde, Glasgow United Kingdom
Hlaing S. (2014). Basic Concepts of Doubly Fed Induction Generator Driven by Wind Energy Conversion System. International Journal of Scientific Engineering and Technology Research Vol.03, Issue.15-2014, Pg:3242-3246
Lab-Volt, (2011). Principles of Doubly-Fed Induction Generators (DFIG). Canada
Krim, Abbes, Krim and Mimouni, (2017). Classical vector, first-order sliding mode and high-order sliding-mode control for a grid connected variable speed wind energy conversion system: A comparative study. Wind Engineering 1–22: DOI: 10.1177/0309524X17723202.
Jibril, Y., Olarinoye, G. A., Abubakar, A. S., Abdulwahab, I., & Ajayi, O. (2019). Control Methods Used In Wind Energy Conversion System: A Review. ATBU Journal of Science, Technology and Education, 7(2), 53-59.
Liao K, He Z, Xu Y, Cheng G, Dong Z.Y, Wong K.P, (2017). Sliding Mode Based Damping Control of DFIG for Interarea Power Oscillations. IEEE Transactions on Sustainable Energy, Vol. 8, No. 1, 2017 258-267. DOI 10.1109/TSTE.2016.2597306
Liu, Han and Wang, (2017). Second-order sliding mode control for power optimisation of DFIG-based variable speed wind turbine. IET Renew. Power Gener., 2017, Vol. 11 Iss. 2, pp. 408-418 doi: 10.1049/iet-rpg.2015.0403
Meng, Yang and Sun, (2016). Guaranteed Performance Control of DFIG Variable-Speed Wind Turbines IEEE transactions on control systems technology. 1-9: DOI: 10.1109/TCST.2016.2524531
Nazari and Heydari. (2012). Direct Power Control Topologies for DFIG-Based Wind Plants. International Journal of Computer and Electrical Engineering, Vol. 4, No. 4, August 2012
Ngamroo, (2017). Review of DFIG Wind Turbine Impact on Power System Dynamic Performances. IEEJ TRANSACTIONS. 1-11: DOI:10.1002/tee.22379
Patnaik, Dash and Mahapatra, (2015). Adaptive terminal sliding mode power control of DFIG based wind energy conversion system for stability enhancement. Int. Trans. Electr. Energ. Syst. 2016; 26:750–782. DOI: 10.1002/etep.2105
Petersson, (2005). Analysis, Modelling and Control of Doubly-Fed Induction Generator for Wind Turbine. PhD thesis, Chalmers University of Technology Sweden.
Rashmi, Ramanujan and Purushotham, (2015). Permanent Magnet Synchronous Generator Configuration in Wind Turbines Technological status review, survey and market trends. International Journal of Scientific & Engineering Research, Volume 6, Issue 2, February-2015.
Si and Liu. (2015). Model predictive control for DFIG-based wind power generation under unbalanced network conditions. Paper presented at the Control Conference (CCC), 2015 34th Chinese.
Song, Li and Jia. (2018). A Novel Direct Torque Control Method Based on Asymmetric Boundary Layer Sliding Mode Control for PMSM. Energies 2018, 11, 657; doi:10.3390/en11030657
Sun, Han and Zhang, (2018). Maximum Wind Power Tracking of Doubly Fed Wind Turbine System Based on Adaptive Gain Second-Order Sliding Mode. Journal of Control Science and Engineering Volume 2018, Article ID 5342971, 11 pages doi.org/10.1155/2018/5342971.
Trivedi, Jadeja and Bhatt. (2015). A Review on Direct Power Control for Applications to Grid Connected PWM Converters. Engineering, Technology & Applied Science Research Vol. 5, No. 4, 2015, 841-849
Refbacks
- There are currently no refbacks.