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Determination of Optimum Hysteresis Bandwidth to Improve Electric Machines Operation

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Many techniques have been presented for optimizing energy consumption in drive systems to increase efficiency. This paper presents a new method to reduce energy consumption in motor and drive systems. We can achieve an optimal point in term of current THD and switching loss with appropriate determining hysteresis bandwidth. To date, no study has been done in this field. Proposed in this paper are: (i) a proper bandwidth, and (ii) a new index to determine the aforementioned objectives in order to derive an appropriate hysteresis bandwidth.
Rocznik
Strony
207--215
Opis fizyczny
Bibliogr. 21 poz., rys., tab., wykr.
Twórcy
  • Power Electronic and Drive Laboratory (PE&D) University of Birjand, Birjand, Iran
  • Power Electronic and Drive Laboratory (PE&D) University of Birjand, Birjand, Iran
  • Department of Electrical and Electronic Engineering Shiraz University of Technology, Shiraz, Iran
Bibliografia
  • [1] M. P. Kazmierkowski, L. G. Franquelo, J. Rodriguez, M. A. Perez, J. I. Leon, High-performance motor drives, IEEE Industrial Electronics Magazine.
  • [2] R. J. Kerkman, Twenty years of pwm ac drives: When secondary issues become primary concerns, in: Proc. IECON’96, Taipei, Taiwan, R.O.C., 1996, pp. lvii–lxiii.
  • [3] A. M. Trzynadlowski, N. Patriciu, F. Blaabjerg, J. K. Pedersen, A hybrid, current-source/voltage source power inverter circuit, IEEE Trans. Power Electron. 16 (6) (2001) 866–871.
  • [4] M. Imecs, A. M. Trzynadlowski, I. I. Incze, C. Szabo, Vector control schemes for tandem converter fed induction motor drives, IEEE Trans. Power Electronic 20 (2) (2005) 493–501.
  • [5] J. Rodriguez, J.-S. Lai, F. Z. Peng, Multilevel inverters: A survey of topologies, controls, and applications, IEEE Trans. On Industrials Electronics 49 (4).
  • [6] K. Gulez, A. A. Adam, H. Pastaci, Improving the performance of hysteresis direct torque control of ipmsm using active filter topology, Sadhana 32 (2006) 245–258.
  • [7] M. A. Shamsi-Nejad, S. Pierfederici, F. Meibody-Tabar, A new pwm regulator to minimize the inverter losses, in: IEEE Conference on Computer Applications and Industrial Electronics, Penang, Malaysia, 2011, pp. 82–86.
  • [8] K. Marouani, M. Khaldi, F. Khoucha, A. Kheloui, Switching losses and harmonic currents evaluation of pwm techniques forvsi-fed dual stator induction motor drive, in: IEEE Conference, 17th Mediterranean Conference on Control& Automation, Thessaloniki, Greece, 2009.
  • [9] N. R. S. Reddy, T. B. Reddy, J. Amarnath, D. S. Rayudu, Space vector based minimum switching loss pwm algorithms for vector controlled induction motor drives, in: IEEE Conference, India, 2010.
  • [10] L. M. Tolbert, F. Z. Peng, Multilevel converters for large electric drives, in: IEEE/APEC, Anaheim, CA, USA, 1998, pp. 530–536.
  • [11] B. L. Cortes, M. S. Horta, S. A. Claduio, G. V. M. Cardenas, Single-phase active power filter for reactive power and harmonic compensation, in: Power Electronics Congress, 1998. CIEP 98. VI IEEE International, 1998, pp. 184–187.
  • [12] K. Gulez, I. Aliskan, T. V. Mumcu, G. Cansever, Neural network based control of ac-ac converter for voltage sags, harmonics and emi reduction, Lecture Notes in Computer Science 4681 (2007) 534–544.
  • [13] Y. A. I. Aliskan, K. Gulez, Spoiler effects reduction with using active power filter on a direct torque controlled induction machine, Turk J Elec. Eng. & Comp Science 19 (5).
  • [14] M. P. Kazmierkowski, R. Krishnan, F. Blaabjerg, Control in power electronics: Selected Problems, Academic Press, 2002.
  • [15] O. S. Ebrahim, M. F. Salem, P. K. Jain, M. A. Badr, Application of linear quadratic regulator theory to the stator field-oriented control of induction motors, IET Electric Power Applications (2009) 637–646.
  • [16] M. R. Khalghani, M. A. Shamsi-Nejad, K. Beyki, An intelligent controller for optimal vector control of induction motor, in: Computer Applications and Industrial Electronics, Malaysia, Penang, 2011, pp. 78–81.
  • [17] M. H. Khooban, A. Alfi, D. Nazari Maryam Abadi, Control of a class of nonlinear uncertain chaotic systems via an optimal type-2 fuzzy pid controller, IET Science, Measurement and Technology 7 (2013) 50–58. doi:10.1049/iet-smt.2012.0092.
  • [18] M. H. Khooban, M. R. Soltanpour, D. Nazari, Z. Esfahani, Optimal intelligent control for hvac systems, Journal of Power Technologies 92 (3) (2012) 192–200.
  • [19] M. H. Khooban, M. R. Soltanpour, Swarm optimization tuned fuzzy sliding mode control design for a class of nonlinear systems in presence of uncertainties, Journal of Intelligent and Fuzzy Systems 24 (2) (2013) 383–394. doi:10.3233/IFS-2012-0569.
  • [20] M. H. Khooban, A. Alfi, D. Nazari Maryam Abadi, Teaching-learning-based optimal interval type-2 fuzzy pid controller design: A nonholonomic wheeled mobile robots, Robotica 31 (7) (2013) 1059–1071. doi:10.1017/S0263574713000283.
  • [21] M. R. Khalghani, M. A. Shamsi-Nejad, M. Farshad, M. H. Khooban, Modifying power quality indices of load by presenting an adaptive method based on hebb learning algorithm for controlling dvr, Automatika – Journal for Control, Measurement, Electronics, Computing and CommunicationsIN PRESS.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-4706e62f-29ac-4dd0-a3a1-eed2d6cb64aa
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