Title :
A Novel Scheme Suitable for High-Voltage and Large-Capacity Photovoltaic Power Stations
Author :
Changzheng Zhang ; Shaowu Du ; Qiaofu Chen
Author_Institution :
Sch. of Electr. Eng. & Autom., Hefei Univ. of Technol., Hefei, China
Abstract :
The efficiency, power quality, and reliability of renewable energy power conversion systems are key factors for future industrial applications. This paper presents a novel scheme to improve the performances of high-voltage large-capacity photovoltaic (PV) power stations. The power conversion of the PV system is divided into two stages, i.e., dc/dc power conversion and dc/ac power conversion. In the dc/dc stage, many power units are connected in parallel, each one of which includes a PV array and a nonisolated dc/dc converter. The dc/ac power conversion is equivalent to a voltage source in series with a current source. Square wave converters, together with transformers, are employed for the voltage source, which is based on the multipulse technology of square wave superposition. Pulsewidth-modulated converters are employed for the current source. Simulated waveforms with a whole 10-MVA/10-kV PV system are shown, and experimental results with a 100-kVA/1-kV dc/ac prototype are displayed.
Keywords :
DC-AC power convertors; DC-DC power convertors; PWM power convertors; constant current sources; photovoltaic power systems; power generation reliability; power supply quality; power transformers; DC-AC power conversion; DC-DC power conversion; PV array; apparent power 10 MVA; apparent power 100 kVA; current source; high-voltage large-capacity photovoltaic power station; industrial application; multipulse technology; nonisolated DC-DC converter; power quality; pulsewidth-modulated converter; reliability; renewable energy power conversion system; square wave converter superposition; transformer; voltage 1 kV; voltage 10 kV; voltage source; Arrays; DC-DC power converters; Harmonic analysis; Photovoltaic systems; Pulse width modulation converters; Current source; photovoltaic (PV) power systems; square wave superposition; voltage source;
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2012.2208438