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Improved STATCOM efficiency using a hybrid technique based on sliding mode control and proportional integral control

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Warianty tytułu
PL
Poprawa skuteczności STATCOM przez zastosowanie algorytmu hybrydowego będącego kombinacją na sterowania ślizgowego i regulatora PI
Języki publikacji
EN
Abstrakty
EN
Static compensators of reactive power (STATCOMs) are among the most efficient devices for improving the network power quality. The efficiency of such devices is largely determined by the used automatic control technique. In this work, we propose an advanced hybrid algorithm based on Sliding Mode Control (SMC) combined with classical proportional-Integral (PI) technique. To show the efficiency of the proposed method, a comparison with the traditional PI control is performed. The comparison focused mainly on dynamic performance and grid harmonic pollution.
PL
Jakość działania kompensatora mocy biernej STATCOM zależy od właściwości układu automatycznego sterowania. W pracy zaprezentowano hybrydowy algorytm bazujący na sterowaniu ślizgowym współpracujący z klasycznym sterownikiem PI.
Rocznik
Strony
156--162
Opis fizyczny
Bibliogr. 22 poz., rys., tab.
Twórcy
  • University of Oum El Bouaghi, Algeria, Science and Applied Sciences Faculty, 04000 Oum El Bouaghi, Algeria
Bibliografia
  • [1] Wo B., Lang Y., Zargari N., Kouro S., Power conversion and control of wind energy system, John Wiley and sons Publication, IEEE Press, July 2011.
  • [2] Tremblay E., Atayde S., Chandra A., Comparative Study of Control Strategies for the Doubly Fed Induction Generator in Wind Energy Conversion Systems: A DSP-Based Implementation Approach, IEEE Trans. on Sust. Energy, Vol. 2 (2011), No. 3.
  • [3] Moghbel M., Masoum M.A.S., Optimal Sizing, Siting and Operation of Custom Power Devices With STATCOM and APLC Functions for Real-Time Reactive Power and Network Voltage Quality Control of Smart Grid, IEEE Trans. Smart Grid, 9 (2018), No. 6.
  • [4] Moghe R., Divan D., Turning Distribution Feeders Into STATCOMs, IEEE Trans, Ind, Appl., 53 (2017), No. 2.
  • [5] Zhang Y., Wu X. J., High Order Voltage and Current Harmonic Mitigation Using the Modular Multilevel Converter STATCOM, IEEE Trans, Ind, Electr, 5 (2017), No. 19.
  • [6] Padiyar K., FACTS controllers in power transmission and distribution, New Age International, 2007.
  • [7] Feola L., Langella R., Papic I., Testa A., Selective Interharmonic Compensation to Improve Statcom Performance for Light Flicker Mitigation, IEEE Trans On Power Delivery, vol. 33, No. 5, OCTOBER 2018.
  • [8] Sen K.K., Sen M.L., Introduction to FACTS controllers: theory, modeling, and applications, John Wiley & Sons, 54 (2009).
  • [9] Xu, L., Han Y., Passivity-based Controller Design and Stable Control Region Analysis of the Cascaded DSTATCOM, Przeglad Elektrotechniczy, 88 (2012), nr 3b, 140-148.
  • [10] FALEHI A.D., Mitigation of Power System Oscillations Using STATCOM-Based PDD Damping controller, Przeglad Elektrotechniczy, 88 (2012), nr 12a, 275-279.
  • [11] Hingorani N.G., Gyugyi L., Comparative Analysis of 6, 12 and 48 Pulse T-STATCOM, IEEE 7th PIICON Nov. 2016.
  • [12] Mosaad M.I., Model reference adaptive control of STATCOM for grid integration of wind energy systems, IET Electr, Power Appl., Vol. 12 (2018), Iss. 5, pp. 605-613
  • [13] Abad G., Lopez J., Rodriguez M.A., Marroyo L., Lwanski G., Doubly fed induction machine modelling and control for wind energy generation, IEEE press., John Wiley, 2011.
  • [14] Yao X., Fangxing L., Adaptive PI Control of STATCOM for Voltage Regulation, IEEE Trans. P. Delivery., Vol. 29 (2014), No. 3.
  • [15] Routray S.K., Nayak N., Rout P.K., A Robust Fuzzy Sliding Mode Control Design for Current Source Inverter based STATCOM Application, Procedia Technology 4 (2012 ), pp. 342 – 349.
  • [16] Ajami A., Taheri N., A Hybrid Fuzzy/LQR Based Oscillation Damping Controller Using 3-level STATCOM, Int. J. Comp. and Elect. Eng., vol. 3 (2011), no. 2, pp.184-189.
  • [17] Yunhao H., Yuanyun S., Han Z.,Yang M., Sliding mode reactive power control of isolated wind-disel hybrid power system based on STATCOM, 37th Chinese Control Conference Jul. 2018, Wuhan, China.
  • [18] Ziaeinejad S., Mehrizi-Sani A., Design Tradeoffs in Selection of the DC-Side Voltage for a D-STATCOM, IEEE Trans on Power Delivery, Vol. 33 (2018), No. 6.
  • [19] Hamoud F., Doumbia M.L., Cheriti A., Hybrid PI-Sliding mode control of a voltage source converter based STATCOM, 16th International PEMC 2014, Sept. 2014 Antalya, Turkey.
  • [20] Touil S. A., Boudjerda N., Boubakir A., El Khamlichi D. K., A sliding mode control and artificial neural network based MPPT for a direct grid-connected photovoltaic source, Asian Journal of Control, vol. 21 (2019), special issue, pp. 1–14.
  • [21] Ruiz-Zea C.A., Jimenez-Rodriguez E., Canedo-Castaneda, J.M., Loukianov A.G., Sanchez-Torres J.D., Second Order Sliding Mode Control of a STATCOM with Saturated Inputs, 15th International Conference on Electrical Engineering, Computing Science and Automatic Control (CCE), Mexico City, Mexico. Sept., 2018.
  • [22] Boubakir A., Boudjema F., Boubakir C., Labiod S., A Fuzzy Sliding Mode Controller Using Nonlinear Sliding Surface Applied to the Coupled Tanks System, International Journal of Fuzzy Systems, Vol. 10 (2008), No. 2.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2020).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-e46f2c0a-fe7e-407d-821f-a01d80836fda
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