Modeling of a 3-Phase Induction Generator Including Magnetic Cross Saturation Effect

Main Article Content

Mohd Sartaj, Mohd Rizwan Khan, Mohd Faisal Khan

Abstract







In current energy scenario the contribution of renewable energy is increasing at substantial rate to achieve pollution free energy generation on long term basis. To reach this goal various researches are going on all over the world in the field of solar, wind and other renewable method of power generation. With the advantages of robustness and self-excitation, squirrel cage type induction machines are used for wind energy conversion system (WECS) and for small hydro power plants as self-excited induction generator (SEIG). To harness renewable and clean energy from wind or small hydro plants, it is required to understand SEIG transient behaviour in better way for smooth control of output voltage and frequency. In this paper non-linear dynamic model of 3-phase induction generator is presented along with its no-load and on-load performance analysis.












 



Article Details

How to Cite
Mohd Sartaj, Mohd Rizwan Khan, Mohd Faisal Khan. (2020). Modeling of a 3-Phase Induction Generator Including Magnetic Cross Saturation Effect. Acta Energetica, (01), 51–56. Retrieved from https://www.actaenergetica.org/index.php/journal/article/view/87
Section
Articles

References

Khan M.F., Khan M.R., Voltage control of single-phase two winding self-excited induction generator for isolated loads, Int. Conf. Adv. Energy Convers. Technol., pp. 209–214, 2014.

Khan M.F., Khan M.R., Analysis of voltage build-up and speed disturbance ride through capability of a self-excited induction generator for renewable energy application, Int. J. Power Energy Convers., Vol. 7, No. 2, 2016, p. 157.

Bodson M., Kiselychnyk O., Analysis of triggered self-excitation in induction generators and experimental validation, IEEE Transactions on Energy Conversion, Vol. 27, No. 2, 2012, pp. 238–249.

Khan M.F., Khan M.R., Analysis of a six-phase self-excited induction generator supplying RL load with short shunt connection, IEEE Int. Conf. Power Electron. Drives Energy Syst. PEDES 2016, Vol. 2016-Janua, pp. 1–5, 2017.

Hallenius K.E., Vas P., Brown J.E., The analysis of a saturated self-excited asynchronous generator, IEEE Transactions on Energy Conversion, Vol. 6, No. 2, 1991, pp. 336–345.

Kiselychnyk O., Bodson M., Wang J., Comparison of Two Magnetic Saturation Models of Induction Machines and Experimental Validation, IEEE Transactions on Industrial Electronics, Vol. 64, No. 1, 2017, pp. 81–90.

Levi E., Impact of cross saturation on accuracy of saturated induction machine models, IEEE Power Engineering Review, Vol. 17, No. 2, 1997, p. 32.

Almarshoud A.F., Abdel-halim M.A., Alolah A.I., Including Effects Of Cross-Saturation And Leakage Path Saturation Together In The Generalized Model Of Three Phase Induction Machine, Can. Conf. Electr. Comput. Eng., pp. 195–200, 2001.

Wang L., Jatskevich J., Including magnetic saturation in voltage-behind-reactance induction machine model for EMTP-type solution, IEEE Transactions on Power Systems, Vol. 25, No. 2, 2010, pp. 975–987.

Graus J., Hahn I., A new method for the estimation of the influence of stator saturation on the differential inductances, Proceedings of the 2013 IEEE International Electric Machines and Drives Conference, IEMDC 2013, 2013, pp. 952–959.

Che H.S. et al., Experimental magnetizing inductance identification in five-phase induction machines, IECON Proceedings (Industrial Electronics Conference), 2013, pp. 5179–5184.

Khan M.F., Khan M.R., Iqbal A., Performance analysis of shunt, short shunt and long shunt self-excited induction generator: Analysis of shunt, short shunt and long shunt SEIG, PEDES 2012 – IEEE Int. Conf. Power Electron. Drives Energy Syst., 2012.

Krause P., Wasynczuk O., Sudhoff S., Analysis of Electric Machinery and Drive Systems. 2002.