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DC-DC boost-flyback converter functioning as input stage for one phase low power grid-connected inwerter

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The paper treats about main problems of one phase DC-AC microinverters that allow single solar cell to be joined with the grid. One of the issues is to achieve high voltage gain with high efficiency in DC circuit, which is necessary for proper operation of inverter. The operating principles, results of practical implementation and investigations on boost-flyback converter, which meets mentioned demands, are presented. (high step-up DC-DC boost-flyback converter for single phase grid microinverter).
Rocznik
Strony
393--407
Opis fizyczny
Bibliogr. 15 poz., rys.
Twórcy
autor
  • Department of Power Electronics and Energy Control Systems AGH University of Science and Technology
autor
  • Department of Power Electronics and Energy Control Systems AGH University of Science and Technology
autor
  • Department of Power Electronics and Energy Control Systems AGH University of Science and Technology
Bibliografia
  • [1] Meneses D., Blaabjerg F., GarcRa O., Jose A.C., Review and Comparison of Step-Up Transformerless Topologies for Photovoltaic AC-Module Application. IEEE Transactions on Power Electronics 28(6): 2649-2663 (2013).
  • [2] Li W., He X., Review of nonisolated high-step-up DC/DC converters in photovoltaic grid-connected applications. IEEE Trans. Ind. Electron. 58(4): 1239-1250 (2011).
  • [3] Tseng K.C., Liang T.J., Novel high-efficiency step-up converter. Proc. Inst. Elect. Eng. Elect. Power Appl. 151(2): 182-190 (2004).
  • [4] Liang T.J., Tseng K.C., Analysis of integrated boost-flyback step-up converter. Proc. Inst. Elect. Eng. Elect. Power Appl. 152(2): 217-225 (2005).
  • [5] Pirog S., Baszynski M., Czekonski J. et al., Multicell DC/DC Converter with DSP/CPLD Control. Practical Results. Power Electronics and Motion Control Conference, EPE-PEMC 2006, 12th International (2006).
  • [6] Stala R., Koska K., Stawiarski L., Realization of Modified Ripple-based Mppt in a Single-phase Single-stage Grid-connected Photovoltaic System. Industrial Electronics (ISIE), IEEE International Symposium (2011).
  • [7] Stala R., The Switch-Mode Flying-Capacitor DC–DC Converters With Improved Natural Balancing Industrial Electronics. IEEE Transactions on Industrial Electronics 57(4): 1369-1382.
  • [8] Rodriguez G., Andres L., Balda J.C., A Comparison of Isolated DC-DC Converters For Microinverter Applications. Power Electronics Conference and Exposition (APEC), 2013 Twenty-Eighth Annual IEEE (2013).
  • [9] Pirog, S., Baszynski M., Modelling a Single Phase Multicell DC/AC Inverter Using FPGA. Przegląd Elektrotechniczny 84(2): 84-87 (2008).
  • [10] Stawiarski L., Szarek M., Mondzik A., Penczek A., Single-phase Grid-connected Photovoltaic System With Variable Control Structure. Przegląd Elektrotechniczny 89(2a): 34-39 (2013).
  • [11] Stawiarski L., Szarek M., Mondzik A. et al., Single-phase Grid-connected Photovoltaic System. Przegląd Elektrotechniczny 88(2): 218-222 (2012).
  • [12] Janke W., Averaged Models of Pulse-modulated DC-DC Power Converters. Part I. Discussion of Standard Methods. AEE 61(4), (2012).
  • [13] Janke W., Averaged Models of Pulse-modulated DC-DC Power Converters. Part II. Discussion of Standard Methods. AEE 61(4), (2012).
  • [14] Halder T., Kalyani N., Comprehensive Power Loss Model of the Main Switch of the Flyback Converter. International Conference on Power, Energy and Control (ICPEC) (2013).
  • [15] Dawidziuk J., A Dual Inductor fed Boost Converter With an Auxiliary Transformer and Voltage Doubler. Bulletin of the Polish Academy of Sciences. Technical Sciences 61(4): 787-791 (2013).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-2be02337-82ed-45e2-95dd-a5d1a42d5cde
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