Steady State Analysis of an Isolated Self-Excited Dual Three-Phase Induction Generator for Renewable Energy
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Author(s)
In this paper modelling and analysis in autonomous
mode of dual three-phase induction generator (DTPIG) with a new
algorithm have been done. We develop the steady state model of a dual
three-phase self-excited induction generator for stand-alone renewable
generation dispenses with the segregating real and imaginary components
of the complex impedance of the induction generator. The obtained
admittance yields the adequate magnetizing reactance and the frequency.
These two key parameters are then used to compute the self-excitation
process requirements in terms of the prime mover speed, the capacitance
and the load impedance on the one hand and to predict the generator
steady state performance parameters on the other. Steady state
performances and characteristics of different configurations are clearly
examined and compared. The analytical results are found to be in good
agreement with experimental results.
KEYWORDS
Cite this paper
Khlifi, M. and Alshammari, B. (2014) Steady State
Analysis of an Isolated Self-Excited Dual Three-Phase Induction
Generator for Renewable Energy. International Journal of Modern Nonlinear Theory and Application, 3, 191-198. doi: 10.4236/ijmnta.2014.35021.\
| [1] |
Singh, G.K. (2008) Modeling and
Experimental Analysis of a Self-Excited Six-Phase Induction Generator
for Stand-Alone Renewable Energy Generation. Renewable Energy, 33,
1605-1621. http://dx.doi.org/10.1016/j.renene.2007.08.007 |
| [2] | Marwa, B.S., Mohamed Arbi, K., Mouldi, B. and Habib, R. (2013) The Process of Self Excitation in Dual Three-Phase Induction Generator. International Review of Electrical Engineering, 8, 1738-1744. |
| [3] |
Singh, G.K., Senthil, K.A. and
Saini, R.P. (2011) Performance Analysis of a Simple Shunt and Series
Compensated Six-Phase Self-Excited Induction Generator for Stand-Alone
Renewable Energy Generation. Energy Conversion and Management, 52,
1688-1699. http://dx.doi.org/10.1016/j.enconman.2010.10.032 |
| [4] |
Kheldoun, A., Refou, L. and
Khodja, D.E. (2012) Analysis of the Self-Excited Induction Generator
Steady State Performance Using a New Efficient Algorithm. Electric Power
Systems Research, 86, 61-67. http://dx.doi.org/10.1016/j.epsr.2011.12.003 |
| [5] | Marwa, B.S., Mohamed Arbi, K., Mouldi, B. and Habib, R. (2014) Self Excitation in Dual Stator Winding Induction Generator for Renewable Energy Generation. The 5th International Renewable Energy Congress (IREC), Hammamet, 25-27 March 2014, 1024-1029. |
| [6] | Haque, M.H. (2009) A Novel Method of Evaluating Performance Characteristics of a Self-Excited Induction Generator. IEEE Trans. Energy Conversion, 24, 358-365. http://dx.doi.org/10.1109/TEC.2009.2016124 |
| [7] | Parsa, L. (2005) On Advantages of Multi-Phase Machines. Industrial Electronics Society, IECON, 31st Annual Conference of IEEE, 6-10 November 2005, 1067-1071. |
| [8] |
Amimeur, H., Aouzellag, D.,
Abdessemed, R. and Ghedamsi, K. (2012) Sliding mode Control of a
Dual-Stator Induction Generator for Wind Energy Conversion Systems.
Electrical Power and Energy Systems, 42, 60-70. http://dx.doi.org/10.1016/j.ijepes.2012.03.024 |
| [9] | Singh, G.K., Senthil Kumar, A. and Saini, R.P. (2009) Selection of Capacitor for the Self-Excited Six-Phase Induction Generator. The 3rd IEEE International Conference on Power Systems, Kharagpur, 27-29 December 2009, 154-160. |
| [10] |
Levy, D. (1986) Analysis of a
Double-Stator Induction Machine Used for
Avariable-Speed/Constant-Frequency Small-Scale Hydro/Wind Electric
Generator. Electric Power Systems Research, 11, 205-223. http://dx.doi.org/10.1016/0378-7796(86)90035-0 |
| [11] |
Hadiouche, D., Razik, H. and
Rezzoug, A. (2004) On the Modeling and Design of Dual-Stator Windings to
Minimize Circulating Harmonic Currents for VSI Fed AC Machine. IEEE
Transactions on Industry Applications, 40, 506-515. http://dx.doi.org/10.1109/TIA.2004.824511 |
| [12] | Yazdani, D., Khajehoddin, S.A., Bakhshai, A. and Joos, G. (2009) Full Utilization of the Inverter in Split-Phase Drives by Means of a Dual Three-Phase Space Vector Classification Algorithm. IEEE Transactions on Industry Electronics, 56, 120-129. http://dx.doi.org/10.1109/TIE.2008.927405 |
| [13] | Hallenius, K.-E., Vas, P. and Brown, J.E. (1991) The Analysis of a Saturated Self Excited Asynchronous Generator. IEEE Transactions on Energy Conversion, 6, 336-345. http://dx.doi.org/10.1109/60.79641 |
| [14] | Wang, L. and Su, J.Y. (1999) Dynamic Performances of an Isolated Self-Excited Induction Generator under Various Loading Conditions. IEEE Transactions on Energy Conversion, 14, 93-100. http://dx.doi.org/10.1109/60.749153 |
| [15] | Wang, L. and Lee, C.H. (2000) Long-Shunt and Short-Shunt Connections on Dynamic Performance of a SEIG Feeding an Induction Motor Load. IEEE Transactions on Energy Conversion, 15, 1-7. http://dx.doi.org/10.1109/60.849108 |
| [16] |
Basic, D., Zhu, J.G. and
Boardman, G. (2003) Transient Performance Study of a Brushless Doubly
Fed Twin Stator Induction Generator. IEEE Transactions on Energy
Conversion, 18, 400-408. http://dx.doi.org/10.1109/TEC.2003.815836 |
| [17] | Ojo, O. and Davidson, I.E. (2000) PWM-VSI Inverter-Assisted Stand-Alone Dual Stator Winding Induction Generator. IEEE Transactions on Energy Conversion, 36, 1604-1611. |
| [18] | Singh, G.K., Yadav, K.B. and Saini, R.P. (2005) Modeling and Analysis of Multi-Phase (Six-Phase) Self Excitation Induction Generator. Proceedings of the 8th International Conference on Electrical Machines and Systems, Nanjing, 29-29 September 2005, 1922-1927. |
| [19] | Selmi, M. and Rehaoulia, H. (2013) A Simple Method for the Steady State Performances of Self-Excited Induction Generators. Proceedings of IEEE International Conference on Electrical Engineering and Software Applications, Hammamet, 21-23 March 2013, 1-4. eww141110lx |
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