Accesso libero

Universal Speed and Flux Estimator for Induction Motor

INFORMAZIONI SU QUESTO ARTICOLO

Cita

Alonge, F., Cangemi, T., D’Ippolito, F., Fagiolini, A. and Sferlazza, A. (2015). Convergence Analysis of Extended Kalman Filter for Sensorless Control of Induction Motor. IEEE Transactions on Industrial Electronics, 62(4), pp. 2341-2352.10.1109/TIE.2014.2355133Search in Google Scholar

Auger, F., Hilairet, M., Guerrero, J. M., Monmasson, E., Orlowska-Kowalska, T. and Katsura, S. (2013). Industrial Applications of the Kalman Filter: A Review. IEEE Transactions on Industrial Electronics, 60(12), pp. 5458-5471.10.1109/TIE.2012.2236994Search in Google Scholar

Barut, M. (2010). Bi-input-extended Kalman Filter- Based Estimation Technique for Speed-Sensorless Control of Induction Motors. Energy Conversion and Management, 51(10), pp. 2032-2040.10.1016/j.enconman.2010.02.037Search in Google Scholar

Barut, M., Bogosyan, S. and Gokasan, M. (2008). Experimental Evaluation of Braided EKF for Sensorless Control of Induction Motors. IEEE Transactions on Industrial Electronics, 55(2), pp. 620-632.10.1109/TIE.2007.911956Search in Google Scholar

Barut, M., Demir, R. and Inan, R. (2012). Real-Time Implementation of Bi Input-Extended Kalman Filter- Based Estimator for Speed-Sensorless Control of Induction Motors. IEEE Transactions on Industrial Electronics, 59(2), pp. 4197-4206.10.1109/TIE.2011.2178209Search in Google Scholar

Dybkowski, M. (2013). Estimation of Speed in a Vector Controlled Induction Motor Drive - Selected Problems. Prace Naukowe Instytutu Maszyn, Napędów i Pomiarów Elektrycznych Politechniki Wrocławskiej nr 67. seria Monografie nr 20. Wrocław (in Polish).Search in Google Scholar

Dybkowski, M. and Orlowska-Kowalska, T. (2010). Speed sensorless induction motor drive with magnetizing reactance estimation. In: 2010 14th International Power Electronics and Motion Control Conference (EPE/PEMC), Ohrid, Macedonia, on CD, 2010.10.1109/EPEPEMC.2010.5606803Search in Google Scholar

Dybkowski, M. and Orlowska-Kowalska, T. (2012). Performance of the speed sensorless induction motor drive for traction application with MRAS type speed and flux estimator, In: 2012 13th International Conference on Optimization of Electrical and Electronic Equipment (OPTIM). Brasov, Romania: IEEE, pp. 477-481.10.1109/OPTIM.2012.6231871Search in Google Scholar

Dybkowski, M., Klimkowski, K. and Orlowska-Kowalska, T. (2014). Speed sensor fault tolerant direct torque control of induction motor drive. In: 2014 16th International Power Electronics and Motion Control Conference and Exposition (PEMC). Warna, Bulgaria: IEEE, 2014, pp. 679-684.10.1109/EPEPEMC.2014.6980574Search in Google Scholar

Holtz, J. (2006). Sensorless Control of Induction Machines-With or Without Signal Injection? IEEE Transactions on Industrial Electronics, 53(1), pp. 7-30.10.1109/TIE.2005.862324Search in Google Scholar

Isermann, R. (2006). Fault Diagnosis Systems. An Introduction from Fault Detection to Fault Tolerance. New York: Springer.10.1007/3-540-30368-5Search in Google Scholar

Kubota, H., Matsuse, K. and Nakano, T. (1984). New control method of inverter - fed induction motor drive by using state observer with rotor resistance identification. In: IEEE/IAS Annual Meeting, Conference Record, pp. 601-606.Search in Google Scholar

Levi, E., Sokola, M. and Vukosavic, S. N. (2000). A Method for Magnetizing Curve Identification in Rotor Flux Oriented Induction Machines. IEEE Transactions on Energy Conversion, 15(2), pp. 157-162.10.1109/60.866993Search in Google Scholar

Orlowska-Kowalska, T. (2003). Sensorless Induction Motor Drives. Wroclaw, Poland: Wroclaw University of Technology Press.Search in Google Scholar

Orlowska-Kowalska, T. and Dybkowski, M. (2010). Stator-Current-Based MRAS Estimator for A Wide Range Speed-Sensorless Induction-Motor Drive. IEEE Transactions on Industrial Electronics, 57(4), pp. 1296-1308.10.1109/TIE.2009.2031134Search in Google Scholar

Orlowska-Kowalska, T., Tarchala, G. and Dybkowski, M. (2014). Sliding-Mode Direct Torque Control and Sliding-Mode Observer with A Magnetizing Reactance Estimator for the Field-Weakening of the Induction Motor Drive. Mathematics and Computers in Simulation, 98, pp. 31-45.10.1016/j.matcom.2013.05.012Search in Google Scholar

Proca, A. B. and Keyhani, A. (2002). Identification of Variable Frequency Induction Motor Models from Operating Data. IEEE Transactions on Energy Conversion, 17(1), pp. 24-31.10.1109/60.986433Search in Google Scholar

Rasmusen, H., Kundsten, M. and Tonnes, M. (1999). Parameter Estimation of Inverter and Motor Model at Standstill Using Measured Current Only. IEEE Transactions on Industrial Electronics, 46(1), pp. 139-149.Search in Google Scholar

Schauder, C. (1992). Adaptive Speed Identification for Vector Control of Induction Motors without Rotational Transducers. IEEE Transactions on Industry Applications, IA-28(5), pp. 1054-1060.10.1109/28.158829Search in Google Scholar

Smith, A. N., Gadoue, S. M. and Finch, J. W. (2016). Improved Rotor Flux Estimation at Low Speeds for Torque MRAS-Based Sensorless Induction Motor Drives. IEEE Transactions on Energy Conversion, 31(1), pp. 270-282.10.1109/TEC.2015.2480961Search in Google Scholar

Tarchała, G., Dybkowski, M. and Orłowska-Kowalska, T. (2011). Analysis of the chosen speed and flux estimators for sensorless induction motor drive. In: Industrial Electronics (ISIE). 2011 IEEE International Symposium on, CD, Gdańsk.10.1109/ISIE.2011.5984213Search in Google Scholar

Vasić, V., Vukosavic, N. and Levi, E. (2003). A Stator Resistance Estimation Scheme for Speed Sensorless Rotor Flux Oriented Induction Motor Drives. IEEE Transactions on Energy Conversion, 18(4), pp. 476-483.10.1109/TEC.2003.816595Search in Google Scholar

Zorgani, Y. A., Koubaa, Y. and Boussak, M. (2010). Simultaneous Estimation of Speed and Rotor Resistance in Sensorless ISFOC Induction Motor Drive Based on MRAS Scheme. Roma: ICEM.Search in Google Scholar

eISSN:
2543-4292
ISSN:
2451-0262
Lingua:
Inglese
Frequenza di pubblicazione:
Volume Open
Argomenti della rivista:
Computer Sciences, Artificial Intelligence, Engineering, Electrical Engineering, Electronics