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Tytuł artykułu

Output Characteristics and MPPT Research for PV Array dunder Partially Shaded Conditions

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Warianty tytułu
PL
System śledzenia mocy MPPT dla układów fotowoltaicznych w warunkach częściowego zacienienia
Języki publikacji
EN
Abstrakty
EN
MPPT(maximum power point tracking) has been one of the hot issues in PV power system all the time. At present, most of MPPT methods are very efficient only under uniform irradiance. However, the output power-voltage curve presents multi-peak characteristics under PSCs (partially shaded conditions), which is one challenge of the MPPT technology. In this paper, the segment characteristics of PV array, which is made by PV modules in series-parallel (SP) connection, was analyzed in details under PSCs. And then a GMPPT (global maximum power point tracking) algorithm was proposed based on the segment model. The MPPT controller using this algorithm can rapidly locate the segment where the GMPP(Global Maximum Power Point) is in and then converges the working point to GMPP using an improved InC (Incremental Conductance) method. A Matlab/SIMULINK model verifies that the proposed algorithm is efficient under both uniform irradiance and PSCs.
PL
System śledzenia warunków maksymalnej mocy MPPT jest powszechnie stosowany w systemach fotowoltaicznych. Systemy te w większości działają w warunkach jednorodnego nasłonecznienia. W artykule zaproponowano system śledzenia mocy w warunkach częściowego nasłonecznienia.
Rocznik
Strony
279--283
Opis fizyczny
Bibliogr. 20 poz., rys., wykr.
Twórcy
autor
  • Shanghai Jiao Tong University
autor
  • Shanghai Jiao Tong University
autor
  • Shanghai Jiao Tong University
autor
  • Shanghai Jiao Tong University
autor
  • Shanghai Jiao Tong University
Bibliografia
  • [1] Hiren Patel and Vivek Agarwal. MATLAB-Based modeling to study the effects of partial shading on PV array characteristics. IEEE Transactions on Energy Conversion, 23(2008), No.1, 302-310.
  • [2] R. Ramaprabha and B.L. Mathur. Characteristics of solar PV array under partial shaded conditions. TENCON 2008-2008 IEEE Region 10 Conference, 2008, 1-5.
  • [3] Toshihiko Noguchi, Shigenori Togashi, and Ryo Nakamoto. Shortcurrent pulse-based maximum-power-point-tracking method for multiple photovoltaic and converter module system. IEEE Trans. on Industrial Electronics, 49(2002), No.1, 217-223.
  • [4] Kobayashi, K., Matsuo, H., and Sekine, Y. An excellent operating point tracker of the solar-cell power supply system. IEEE Trans. on Industrial Electronics, 53(2006), No.2, 495-499.
  • [5] Domenico Casadei, Gabriele Grandi, Claudio Rossi. Single-phase single-stage photovoltaic generation system based on a ripple correlation control maximum power point tracking. IEEE Transactions on Energy Conversion, 21(2006), No.2, 562-568.
  • [6] N.Femia, D.Granozio, et al. Predictive & adaptive MPPT perturb and observe method. IEEE Transactions on Aerospace and Electronic Systems, 43(2007), No.3, 934-950.
  • [7] Hohm, D. P., and Ropp, M. E. Comparative study of maximum power point tracking algorithms. Progress in Photovoltaics: Research and Applications, 11(2003), No.1, 47-62.
  • [8] Veerachary, M. Power tracking for nonlinear PV sources with coupled inductor SEPIC converter. IEEE Transactions on Aerospace and Electronic Systems, 41(2005), No.3, 1019-1029.
  • [9] Shmilovitz, D. On the control of photovoltaic maximum power point tracker via output parameters. IEE Proceedings–Electric Power Applications, 152(2005), No.2, 239-248.
  • [10] Kazmi Syed Muhammad Raza, Hiroki Goto, et al. An improved and very efficient MPPT controller for PV systems subjected to rapidly varying atmospheric conditions and partial shading. Power Engineering Conf. Australasian University, 2009, 1-6.
  • [11] K.Kobayashi, I. Takano, and Y.Sawada, A study of two stage maximum power point tracking control of a photovoltaic system under partially shaded insolation conditions. Solar Energy Materials & Solar Cells. 90(2006), 2975-2988.
  • [12] Young-Hyok Ji, Doo-Yong Jun, et al. A real maximum power point tracking method for mismatching compensation in PV array under partially shaded conditions. IEEE Transactions on Power Electronics, 26(2011), No.4, 1001-1009.
  • [13] Peng Lei, Yaoyu Li and John E. Seem. Sequential ESC-Based global MPPT control for photovoltaic array with variable shading. IEEE Trans. on Sustainable Energy, 2(2011), No.3, 348-358.
  • [14] Lijun Gao, Rogar A Dougal, et al. Paralled-Connected solar PV system to address partial and rapidly fluctuating shadow conditions. IEEE Transactions on Industrial Electronics, 56(2009), No.5, 1548- 1556.
  • [15] Weidong Xiao, Nathan Ozog, and William G. Dunford. Topology study of photovoltaic interface for maximum power point tracking. IEEE Transactions on Industrial Electronics, 54(2007), No.3, 1696- 1704.
  • [16] Roger Gules, Juliano De Pellegrin Pacheco, et al. A maximum power point tracking system with parallel connection for PV standalone applications. IEEE Transactions on Industrial Electronics, 55(2008), No.7, 2674-2683.
  • [17] Nicola Femia, Gianpaolo Lisi, et al. Distributed maximum power point tracking of photovoltaic arrays: novel approach and system analysis. IEEE Transactions on Industrial Electronics, 55(2008), No.7, 2610-2621
  • [18] Hua-Liang Tsai, Ci-Siang Tu, Yi-Jie Su. Development of generalized model using MATLAB/SIMULINK. World Congress on Engineering and Computer Science. HONG KONG, INT ASSOC ENGINEERS-IAENG, 2008, 846-851.
  • [19] G. Petrone, G. Spagnuolo, M. Vitelli. Analytical model of mismatched photovoltaic fields by means of Lambert W-function. Solar Energy Materials & Solar Cells. 91(2007), 1652-1657.
  • [20] Dezso Sera, Tamas Kerekes, et al. Improved MPPT algorithms for rapidly changing environmental conditions. Power Electronics and Motion Control Conference, 2006. EPE –PEMC, 2006 12th International, 2006, 1614-1619.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-477b54d4-514f-4d8e-9e46-4f18e03ef376
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