Title :
A Single-Stage Microinverter Without Using Eletrolytic Capacitors
Author :
Hu, Haibing ; Harb, Souhib ; Kutkut, Nasser H. ; Shen, Z. John ; Batarseh, Issa
Author_Institution :
Jiangsu Key Lab. of New Energy Generation & Power Conversion, Nanjing Univ. of Aeronaut. & Astronaut., Nanjing, China
Abstract :
This paper presents a new microinverter topology that is intended for single-phase grid-connected PV systems. The proposed microinverter topology is based on a flyback converter, where an extra switch is added to separate the decoupling capacitor from the PV Module, which allows for a high voltage and voltage ripples across its terminals. This results in reducing the power decoupling required capacitance. In this manner, long life-time low power density film capacitors can be used instead of life-time limited high power density electrolytic capacitors, resulting in remarkable increase of microinverter´s lifespan. The main advantages of the proposed topology are summarized as: 1) eliminating the double-frequency power ripple using a small film capacitor; 2) using long lifetime film capacitors, which will improve the reliability of the inverter; and 3) requiring no additional circuitry to manage the transformer leakage energy. A 100-W microinverter prototype was built to verify the proposed topology. Experimental results show that the proposed topology and its control scheme can realize the power decoupling, while maintaining very good conversion efficiency numbers.
Keywords :
electrolytic capacitors; invertors; photovoltaic power systems; power convertors; reliability; conversion efficiency; decoupling capacitor; double frequency power ripple; electrolytic capacitors; flyback converter; low power density film capacitors; microinverter topology; power 100 W; power decoupling; single phase grid connected photovoltaic systems; single stage microinverter; transformer leakage energy; voltage ripples; Capacitance; Capacitors; Inductance; Inverters; Stress; Switches; Topology; Flyback; microinverter; photovoltaic; power decoupling;
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2012.2224886