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Tytuł artykułu

A multi-function grid-connected PV system based on fuzzy logic controller for power quality improvement

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
PL
Wielofunkcyjny podłaczony do sieci system fotowoltaiczny z wykorzystniem logiki rozmytej do sterowania jakościa energii
Języki publikacji
EN
Abstrakty
EN
This paper presents a multi-function grid-connected photovoltaic (PV) system based on shunt active power filter (APF). The proposed system is used to inject PV power into the utility grid to solve the power quality issues such as harmonic currents and poor power factor. The SRF theory is applied for reference currents extracting, while fuzzy logic controller is proposed for controlling the dc capacitor voltage and the harmonic currents. The P&O MPPT is used to extract the maximum PV power from the photovoltaic generator (PVG), hence increasing the system efficiency.
PL
W artykule zaprezentowano podłączony do sieci system fotowoltaiczny bazujący na bocznikowym filtrze aktywnym. System umożliwia poprawę parametrów jakości energii w sieci. System logiki rozmytej jest użyty do sterowania napięciem DC.
Rocznik
Strony
118--122
Opis fizyczny
Bibliogr. 19 poz., rys., tab.
Twórcy
autor
  • Electromechanical Engineering Laboratory, Badji Mokhtar University, BP 12, 23000, Annaba, Algeria
autor
  • Electromechanical Engineering Laboratory, Badji Mokhtar University,BP 12, 23000, Annaba, Algeria
Bibliografia
  • [1] Hassan AM, Abou-Ghazala A, Megahed A. Mitigation of Steel Making Plants’ Electrical Power Quality Problems Using SVC– A Case Study. Przegląd Elektrotechniczny, 92 (2016), nr 7, 121-128
  • [2] Łatka M, Piechota T. Electric power quality assessment based on thermographic measurements. Przegląd Elektrotechniczny, 92 (2016), nr 2, 140- 143.
  • [3] Akagi H. Modern active filters and traditional passive filters. Bulletin of the Polish Academy of sciences, Technical sciences. 54 (2006), No 3, 255-269.
  • [4] Mahela OP, Shaik AG. Topological aspects of power quality improvement techniques: A comprehensive overview. Renewable and Sustainable Energy Reviews. 58 (2016), No 18, 1129-1142.
  • [5] Pashajavid E, Bina MT. Zero-sequence component and Harmonic Compensation in Four-wire Systems under Non-ideal Waveforms, Przegląd Elektrotechniczny, 85 (2009),nr 10, 58-64.
  • [6] Saad S, Zellouma L. Fuzzy logic controller for three-level shunt active filter compensating harmonics and reactive power. Electric Power Systems Research, (79) 2009, 1337-1341.
  • [7] Semmah A, Massoum A, Hamdaoui H, Wira P. Comparative Study of PI and Fuzzy DC Voltage Control for a DPC-PWM Rectifier. Przegląd Elektrotechniczny, 87 (2011), 355-359.
  • [8] Younis MA, Khatib T, Najeeb M, Ariffin AM. An improved maximum power point tracking controller for PV systems using artificial neural network, Przegląd Elektrotechniczny. 88 (2012), nr 3b,116-121.
  • [9] Esram T, Chapman PL. Comparison of photovoltaic array maximum power point tracking techniques. IEEE Transactions on Energy Conversion EC, 22 (2007), No 2, 439-449.
  • [10] Bendib B, Belmili H, Krim F. A survey of the most used MPPT methods: Conventional and advanced algorithms applied for photovoltaic systems. Renewable and Sustainable Energy Reviews, 45 (2015), 637-648.
  • [11] Boumaaraf H, Talha A, Bouhali O. A three-phase NPC gridconnected inverter for photovoltaic applications using neural network MPPT. Renewable and Sustainable Energy Reviews. 49 (2015), 1171-1179.
  • [12] Bouzelata Y, Kurt E, Altın N, Chenni R. Design and simulation of a solar supplied multifunctional active power filter and a comparative study on the current-detection algorithms. Renewable and Sustainable Energy Reviews,43 (2015), 1114-1126.
  • [13] Reisi AR, Moradi MH, Jamasb S. Classification and comparison of maximum power point tracking techniques for photovoltaic system: a review. Renewable and Sustainable Energy Reviews, 19 (2013), 433-43.
  • [14] Ishaque K, Salam Z, Lauss G. The performance of perturb and observe and incremental conductance maximum power point tracking method under dynamic weather conditions. Applied Energy, 119 (2014), 228-236.
  • [15] Kesler M, Ozdemir E. Synchronous-reference-frame-based control method for UPQC under unbalanced and distorted load conditions. IEEE Transactions on Industrial Electronics, 58 (2011), 3967-3975.
  • [16] Benhabib M, Saadate S. New control approach for four-wire active power filter based on the use of synchronous reference frame. Electric Power Systems Research, 73 (2005), 353-362.
  • [17] Mahela OP, Shaik AG. Power quality improvement in distribution network using DSTATCOM with battery energy storage system. International Journal of Electrical Power & Energy Systems, 83 (2016), 229-240.
  • [18] Sundaram E, Venugopal M. On design and implementation of three phase three level shunt active power filter for harmonic reduction using synchronous reference frame theory. International Journal of Electrical Power & Energy Systems, 81 (2016), 40-47.
  • [19] Belaidi R, Haddouche A, Guendouz H. Fuzzy logic controller based three-phase shunt active power filter for compensating harmonics and reactive power under unbalanced mains voltages. Energy Procedia, 70 (2012), 560-70.
Uwagi
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę (zadania 2017).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-e0e8023e-737e-4ab6-a92d-ea290819a58f
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