DocumentCode :
729803
Title :
Photovoltaic power control based on differential flatness approach of multiphase interleaved boost converter for grid connected applications
Author :
Mungporn, P. ; Sikkabut, S. ; Yodwong, B. ; Ekkaravarodome, C. ; Toraninpanich, S. ; Nahid-Mobarakeh, B. ; Pierfederici, S. ; Davat, B. ; Thounthong, P.
Author_Institution :
Renewable Energy Res. Centre, King Mongkut´s Univ. of Technol. North Bangkok, Bangkok, Thailand
fYear :
2015
fDate :
16-18 June 2015
Firstpage :
574
Lastpage :
579
Abstract :
A proposed parallel power converter with interleaving algorithm is chosen to boost a low dc voltage of photovoltaic (PV) to a dc bus utility level and then follows by inverter. Converters are controlled by interleaved switching signals, which have the same switching frequency and the same phase shift. By virtue of paralleling the converters, the input current can be shared among the cells or phases, so that high reliability and efficiency in power electronic systems can be obtained. In this paper, a nonlinear-control algorithm based on the flatness property of the system is proposed. Flatness provides a convenient framework for meeting a number of performance specifications on the power converter. To validate the proposed method, a prototype PV power converter (1.2-kW two-phase boost converters in parallel) is realized in the laboratory. The proposed control law based on the flatness property is implemented by digital estimation in a dSPACE 1104 controller card. Experimental results in the laboratory corroborate the excellent control scheme.
Keywords :
control engineering computing; digital signal processing chips; nonlinear control systems; photovoltaic power systems; power control; power convertors; power engineering computing; power generation control; power grids; dSPACE 1104 controller card; dc bus utility level; differential flatness approach; digital estimation; grid connected applications; interleaved switching signals; interleaving algorithm; multiphase interleaved boost converter; nonlinear-control algorithm; parallel power converter; phase shift; photovoltaic power control; power electronic systems; prototype PV power converter; switching frequency; two-phase boost converters; Inductors; Mathematical model; Maximum power point trackers; Power control; Switches; Voltage control; Flatness control; grid connection; nonlinear system; photovoltaic;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Clean Electrical Power (ICCEP), 2015 International Conference on
Conference_Location :
Taormina
Type :
conf
DOI :
10.1109/ICCEP.2015.7177549
Filename :
7177549
Link To Document :
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