Simulink Implementation of Direct Torque Control Drive for Induction Machines

Article Preview

Abstract:

Direct Torque Control (DTC) has emerged over the last two decades as a suitable alternative to the well-known Field Oriented Control (FOC) or vector control technique for electric drives mainly due to its simple control scheme, low computational time and reduced parameter sensitivity. In this paper, speed control of an induction machine based on DTC strategy has been developed and a comprehensive study is presented. The performance of the control method has been demonstrated by simulations using the Matlab/Simulink software package. Several numerical simulations have been carried out in steady state and transient operations.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

89-96

Citation:

Online since:

October 2011

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2012 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] Vas P., Sensorless Vector and Direct Torque Control, Oxford University Press, New York, (1998).

Google Scholar

[2] Bose B. K., Modern Power Electronics and AC Drives, Prentice-Hall, NewJersey, USA, (2002).

Google Scholar

[3] Krause P. C., Wasynczuk O., Suhhoff S. D., Analysis of electric machinery and drive systems, IEEE press series on power systems, (2002).

Google Scholar

[4] Wade S., Dunnigan M.W. and Williams B.M., Modeling and simulation of induction machine vector control with rotor resistance identification, IEEE Transactions on Power Electronics, Vol. 12, No. 3 1997, 495-506.

DOI: 10.1109/63.575677

Google Scholar

[5] Casadei, D. Serra, G. Tani, A. and Zarri,L., Assessment of direct torque control for induction motor drives. Bulletin of the polish academy of sciences, technical science. Vol. 54, No. 3, 2006, 3-5.

Google Scholar

[6] Kaboli, S. Zolghadri, M.R. Haghbin, S. and Emadi, A., Torque Ripple Minimization in DTC of Induction Motor Based on Optimized Flux value Determination, Proc. 29th Conf. of IEEE Industrial Electronics Society IECON03, 2004, 431-435.

DOI: 10.1109/iecon.2003.1280019

Google Scholar

[7] L. Tang, L. Zhong, M. F. Rahman, Y. Hu, An Investigation of a modified Direct Torque Control Strategy for flux and torque ripple reduction for Induction Machine drive system with fixed switching frequency, 37th IAS Annual Meeting Ind. Appl. Conf. Rec., Vol. 1, 2002, 104-111.

DOI: 10.1109/ias.2002.1042656

Google Scholar

[8] N. R. N. Idris, A. H. M. Yatim, Reduced torque ripple and constant torque switching frequency strategy for Direct Torque Control of induction machine, 15th IEEE-Applied Power Electronics Conference and Exhibition 2000 (APEC 2000), Vol. 1, 2000, 154-161.

DOI: 10.1109/apec.2000.826099

Google Scholar

[9] I. Takahashi, T. Noguchi, A new quick-response and high efficiency control strategy of an induction motor, IEEE Trans. Ind. Appl., Vol. IA-22, No 5, 1986, 820-827.

DOI: 10.1109/tia.1986.4504799

Google Scholar

[10] El-Laban, O.S. Abdel Fattah, H.A. Emara, H. M. Sakr, A. F., Particle Swarm Optimized Direct Torque Control of Induction Motors. IEEE Transactions on Power Electronics, Vol. 1 2006, 0136-0140.

DOI: 10.1109/iecon.2006.347342

Google Scholar

[11] Boldea I. and Nasar S.A., Electric Drives, CRC Press, Florida, USA, (1998).

Google Scholar

[12] Leonhard W., Control of Electrical Drives, Springer-Verlag Heidelberg New York, (2001).

Google Scholar

[13] Takahashi, I. and Ohmori,Y., High performance direct torque control of an induction motor, IEEE Trans. Ind. Application., vol. 25, 1989, 257– 264.

DOI: 10.1109/28.25540

Google Scholar

[14] Ong C. M., Dynamic simulation of electric machinery, Prentice-Hall, New Jersey, USA, (1998).

Google Scholar

[15] Kang J-K., Chung D-W and Sul S.K., Direct torque control of induction machine with variable amplitude control of flux and torque hysteresis bands, International Conference on Electric Machines and Drives IEMD'99, 1999, 640-642.

DOI: 10.1109/iemdc.1999.769200

Google Scholar