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Model Predictive Direct Power Control with Duty Cycle Control of PWM Rectifier

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Warianty tytułu
PL
Model Predictive Direct Power Control z kontrolą cyklu pracy prostownika PWM
Języki publikacji
EN
Abstrakty
EN
This work proposes a model predictive direct power control (MP-DPC) to achieve direct control of active power and reactive power in PWM rectifiers. High power ripples and variable switching frequency result from conventional DPC's use of a single voltage vector during a control period. To overcome these drawbacks, a duty cycle control is applied to the MP-DPC to increase performance in terms of reducing power ripple, and achieving dynamic response. Its principal feature is the use of several voltage vectors over the course of a control period. In fact, minimizing the active power ripple during a control period determines the duration of the selected vector. Simulation results using Matlab/Simlink software showed that MP-DPC provides an improvement in system performance and a certain robustness compared to conventional DPC.
PL
W pracy zaproponowano model predykcyjnej bezpośredniej regulacji mocy (MP-DPC) w celu uzyskania bezpośredniej regulacji mocy czynnej i mocy biernej w prostownikach PWM. Tętnienia dużej mocy i zmienna częstotliwość przełączania wynikają z używania przez konwencjonalne DPC pojedynczego wektora napięcia w okresie kontrolnym. Aby przezwyciężyć te wady, w MP-DPC zastosowano kontrolę cyklu pracy, aby zwiększyć wydajność pod względem zmniejszenia tętnień mocy i uzyskania dynamicznej odpowiedzi. Jego główną cechą jest wykorzystanie kilku wektorów napięcia w ciągu okresu kontrolnego. W rzeczywistości minimalizacja tętnień mocy czynnej w okresie regulacji określa czas trwania wybranego wektora. Wyniki symulacji z użyciem oprogramowania Matlab/Simlink wykazały, że MP-DPC zapewnia poprawę wydajności systemu i pewną solidność w porównaniu z konwencjonalnym DPC.
Rocznik
Strony
18--23
Opis fizyczny
Bibliogr. 28 poz., rys., tab.
Twórcy
  • Electrotechnical Engineering Laboratory, Dept. of Electrical Engineering, Univerity of Saida, Algeria
autor
  • Electrotechnical Engineering Laboratory, Dept. of Electrical Engineering, Univerity of Saida
  • Electrotechnical Engineering Laboratory, Dept. of Electrical Engineering, Univerity of Saida
Bibliografia
  • [1] T. Shimizu, Y. Jin, and G. J. I. T. o. I. A. Kimura, "DC ripple current reduction on a single-phase PWM voltage-source rectifier," vol. 36, no. 5, pp. 1419-1429, 2000.
  • [2] J. R. Rodríguez, J. W. Dixon, J. R. Espinoza, J. Pontt, and P. J. I. T. o. I. E. Lezana, "PWM regenerative rectifiers: State of the art," vol. 52, no. 1, pp. 5-22, 2005.
  • [3] T.-S. Lee and J.-H. J. I. T. o. P. E. Liu, "Modeling and control of a three-phase four-switch PWM voltage-source rectifier in dq synchronous frame," vol. 26, no. 9, pp. 2476-2489, 2011.
  • [4] P. Verdelho and V. Soares, "A unity power factor PWM voltage rectifier based on the instantaneous active and reactive current i/sub d/-i/sub q/method," in ISIE'97 Proceeding of the IEEE International Symposium on Industrial Electronics, 1997, vol. 2, pp. 411-416: IEEE.
  • [5] A. Bouafia, J.-P. Gaubert, and A. Chaoui, "Unity power factor operation of three-phase PWM rectifier based on direct power control," in EUROCON 2007-The International Conference on" Computer as a Tool", 2007, pp. 1518-1523: IEEE.
  • [6] K. Hartani and Y. Miloud, "Control strategy for three phase voltage source PWM rectifier based on the space vector modulation," Advances in Electrical and Computer Engineering, vol. 10, no. 3, pp. 61-65, 2010.
  • [7] J. Norniella et al., "Optimization of direct power control of three phase active rectifiers by using multiple switching tables," in International Conference of Renewable Energies and Power Quality (ICREPQ'10), 2010.
  • [8] O. Aissa, S. Moulahoum, N. Kabache, and H. Houassine, "Improved power quality PWM rectifier based on fuzzy logic direct power controller," in Harmonics and Quality of Power (ICHQP), 2014 IEEE 16th International Conference on, 2014, pp. 219-223: IEEE.
  • [9] A. Baktash, A. Vahedi, and M. Masoum, "Improved switching table for direct power control of three-phase PWM rectifier," in Power Engineering Conference, 2007. AUPEC 2007. Australasian Universities, 2007, pp. 1-5: IEEE.
  • [10] H. Chen, G. Xing, X. Zhou, M. Zhang, and Y. Qu, "Modified direct power control for PWM rectifier under unbalanced grid voltage conditions," in Control Conference (CCC), 2013 32nd Chinese, 2013, pp. 8874-8878: IEEE.
  • [11] B. Gong, K. Wang, J. Zhang, J. You, Y. Luo, and Z. Wenyi, "Advanced switching table for direct power control of a three phase PWM rectifier," in Transportation Electrification Asia Pacific (ITEC Asia-Pacific), 2014 IEEE Conference and Expo, 2014, pp. 1-5: IEEE.
  • [12] J. Lamterkati, M. Khafallah, and L. Ouboubker, "A New DPC for Three-phase PWM rectifier with unity power factor operation," Int. J. of Advanced Research in Electrical, Electronics and Instrumentation Engineering, vol. 3, no. 4, 2014.
  • [13] O. Aissa, S. Moulahoum, N. Kabache, and H. Houassine, "Fuzzy logic based direct power control for PWM three-phase rectifier," in Control and Automation (MED), 2014 22nd Mediterranean Conference of, 2014, pp. 79-84: IEEE.
  • [14] T. M. Chikouche and K. Hartani, "DIRECT POWER CONTROL OF THREE-PHASE PWM RECTIFIER BASED ON NEW SWITCHING TABLE," Journal of Engineering Science and Technology, vol. 13, no. 6, pp. 1751-1763, 2018.
  • [15] T. M. Chikouche, K. Hartani, and M. Mankour, "Power Quality Improvement in Power System with DPC Controlled PWM Rectifier," in International Conference in Artificial Intelligence in Renewable Energetic Systems, 2018, pp. 446-456: Springer.
  • [16] H. Miranda, P. Cortés, J. I. Yuz, and J. J. I. T. o. I. E. Rodríguez, "Predictive torque control of induction machines based on state-space models," vol. 56, no. 6, pp. 1916-1924, 2009.
  • [17] S. A. Davari, D. A. Khaburi, and R. J. I. T. o. P. E. Kennel, "An improved FCS–MPC algorithm for an induction motor with an imposed optimized weighting factor," vol. 27, no. 3, pp. 1540- 1551, 2011.
  • [18] D. E. Quevedo, R. P. Aguilera, M. A. Perez, P. Cortes, and R. J. I. T. o. P. E. Lizana, "Model predictive control of an AFE rectifier with dynamic references," vol. 27, no. 7, pp. 3128- 3136, 2011.
  • [19] S. Kwak, U.-C. Moon, and J.-C. J. I. T. o. P. E. Park, "Predictive-control-based direct power control with an adaptive parameter identification technique for improved AFE performance," vol. 29, no. 11, pp. 6178-6187, 2014.
  • [20] M. P. Akter, S. Mekhilef, N. M. L. Tan, H. J. J. o. E. E. Akagi, and Technology, "Model predictive control of bidirectional AC DC converter for energy storage system," vol. 10, no. 1, pp. 165-175, 2015.
  • [21] A. Bouafia, J.-P. Gaubert, and F. Krim, "Predictive direct power control of three-phase pulsewidth modulation (PWM) rectifier using space-vector modulation (SVM)," IEEE Transactions on Power Electronics, vol. 25, no. 1, pp. 228-236, 2009.
  • [22] A. L. Eshkevari and M. Arasteh, "Model-predictive Direct Power Control of three-phase three-level NPC PWM rectifier," in 2017 8th Power Electronics, Drive Systems & Technologies Conference (PEDSTC), 2017, pp. 78-83: IEEE.
  • [23] D. E. Quevedo, R. P. Aguilera, and T. Geyer, "Predictive control in power electronics and drives: Basic concepts, theory, and methods," in Advanced and Intelligent Control in Power Electronics and Drives: Springer, 2014, pp. 181-226.
  • [24] Y. Zhang, Y. Peng, and H. J. I. T. o. P. E. Yang, "Performance improvement of two-vectors-based model predictive control of PWM rectifier," vol. 31, no. 8, pp. 6016-6030, 2015.
  • [25] S. Yan, J. Chen, T. Yang, and S. Hui, "Improving the performance of direct power control using duty cycle optimization," IEEE Transactions on Power Electronics, vol. 34, no. 9, pp. 9213-9223, 2018.
  • [26] T. M. Chikouche, K. Hartani, T. J. P. P. E. E. Terras, and C. Science, "Predictive-DPC Based on Duty Cycle Control of PWM Rectifier under Unbalanced Network," vol. 66, no. 2, pp. 139-147, 2022.
  • [27] T. M. Chikouche, K. Hartani, S. E. Nasri, and A. E. Ameur, "Improved Direct Power Control of PWM Rectifier under Unbalanced Network based on new Power Reactive Estimation," in 2021 12th International Symposium on Advanced Topics in Electrical Engineering (ATEE), 2021, pp. 1- 7: IEEE.
  • [28] K. Hadji, K. Hartani, T. M. Chikouche, and A. E. Ameur, "Predictive Direct Power Control of a Three-Phase Three-Level NPC PWM Rectifier based on Space Vector Modulation," in 2021 12th International Symposium on Advanced Topics in Electrical Engineering (ATEE), 2021, pp. 1-9: IEEE.
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-ac8f71ef-4028-42d5-b8f7-661f15c69d6b
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