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Common mode behavior in grid connected DC and AC decoupled PV Inverter topologies

Treść / Zawartość
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The transformer-less grid connected inverters are gaining more popularity due to their high efficiency, very low ground leakage current and economic feasibility especially in photovoltaic systems. The major issue which surfaces these systems is that of common mode leakage current which arises due to the absence of an electrical transformer connected between the inverter and the utility grid. Several topologies have evolved to reduce the impact of common mode leakage current and a majority of them have succeeded in eliminating the impacts and have well kept them within the limits of grid standards. This paper compares and analyses the impact of the common mode leakage current for four popular inverter configurations through simulation of the topologies such as H5, H6, HERIC and FBZVR inverters.
Rocznik
Strony
481--493
Opis fizyczny
Bibliogr. 13 poz., fig., tab., wz.
Twórcy
autor
  • Agni College of Technology, Thalambur Chennai, Tamil Nadu, India
autor
  • SSN College of Engineering, Kalavakkam Chennai, Tamil Nadu, India
Bibliografia
  • [1] Freddy T. K. S., Rahim N. A., Wooi-Ping Hew, Hang Seng Che, Comparison and Analysis of Single-Phase Transformerless Grid-Connected PV Inverters, in IEEE Transactions on Power Electronics 29(10): 5358-5369 (2014).
  • [2] Yang B., Li W., Gu Y., Cui W., He X., Improved Transformerless Inverter With Common-Mode Leakage Current Elimination for a Photovoltaic Grid-Connected Power System, in IEEE Transactions on Power Electronics 27(2): 752-762 (2012).
  • [3] Kerekes T., Teodorescu R., Liserre M., Klumpner C., Sumner M., Evaluation of three-phase transformerless photovoltaic inverter topologies, IEEE Transactions on Power Electronics 24(9): 2202-2211 (2009).
  • [4] Gonzalez R., Gubia E., Lopez J., Marroyo L., Transformerless single-phase multilevel photovoltaic inverter, IEEE Trans. Ind. Electron 55(7): 2694-2702 (2008).
  • [5] Kjaer S. B., Pedersen J. K., Blaabjerg F., A review of single-phase grid-connected inverters for photovoltaic modules, in IEEE Transactions on Industry Applications 41(5): 1292-1306 (2005).
  • [6] Asiminoaei L., Teodorescu R., Blaabjerg F., Borup U., A new method of on-line grid impedance estimation for PV inverter, in Proc. IEEE APEC ’04, 3: 1527-1533 (2004).
  • [7] Kerekes T., Teodorescu R., Rodriguez P., Vazquez G., Aldabas E., A New High-Efficiency Single-Phase Transformerless PV Inverter Topology, in IEEE Transactions on Industrial Electronics 58(1): 184-191 (2011).
  • [8] Zhang L., Sun K., Xing Y., Xing M., H6 Transformerless Full-Bridge PV Grid-Tied Inverters, in IEEE Transactions on Power Electronics 29(3): 1229-1238 (2014).
  • [9] Xiao H., Xie S., Chen Y., Huang R., An optimized transformerless photovoltaic grid-connected inverter, IEEE Trans. Ind. Electron. 58(5): 1887-1895 (2011).
  • [10] Patino D. G., Erira, E. G., Fuelagan, J. R., Rosero, E. D., Implementation a HERIC inverter prototype connected to the grid controlled by SOGI-FLL, in IEEE Workshop on Power Electronics and Power Quality Applications (PEPQA), pp. 1-6 (2015).
  • [11] Cha W. J., Kim K. T., Cho J. W., Lee S. H., Kwon B. H., Evaluation and analysis of transformerless photovoltaic inverter topology for efficiency improvement and reduction of leakage current, in IET Power Electronics 8(2): 255-267 (2015).
  • [12] Teoderescu R., Liserre M., Rodríguez P., Grid Converter for Photovoltaic and wind Power System, IEEE John Wiley & Sons, LTD (2011).
  • [13] Araujo S. V., Zacharias P., Mallwitz R., Highly Efficient Single-Phase Transformerless Inverters for Grid-Connected Photovoltaic Systems, in IEEE Transactions on Industrial Electronics 57(9): 3118-3128 (2010).
Uwagi
PL
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-493e4351-acbc-4f6f-9651-7ff510d2e990
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