Title :
Ripple-Port Module-Integrated Inverter for Grid-Connected PV Applications
Author :
Harb, Souhib ; Mirjafari, Mehran ; Balog, Robert S.
Author_Institution :
Dept. of Electr. & Comput. Eng., Texas A&M Univ., College Station, TX, USA
Abstract :
The single-phase inverter has inherent double-frequency power ripple, which if not internally mitigated, appears at the input port and deteriorates the maximum power point tracker performance. Conventional dc link inverter topologies filter this significant double-frequency ripple by means of the bus capacitance, usually in the form of electrolytic capacitors, which have well known lifetime challenges. This paper presents a double-frequency ripple cancellation concept and experimental proof of concept. The proposed module-integrated inverter is based on the commonly used two-stage inverter. However, a third port is added for ripple cancellation purposes. Hence, a very small capacitance is needed, and, as a result, a high-reliability film capacitor can be used instead of the bulky low-reliability electrolytic ones.
Keywords :
electrolytic capacitors; invertors; photovoltaic power systems; power grids; bulky low-reliability electrolytic capacitor; bus capacitance; dc link inverter topologies; double-frequency power ripple; double-frequency ripple cancellation concept; electrolytic capacitors; grid-connected PV applications; high-reliability film capacitor; maximum power point tracker performance; ripple cancellation purposes; ripple-port module-integrated inverter; single-phase inverter; two-stage inverter; Capacitance; Capacitors; Films; Inductors; Inverters; Reliability; Topology; Double-frequency ripple; MIL-HDBK-217; grid-connected inverter; microinverter; photovoltaic; power decoupling; reliability; single-phase inverter;
Journal_Title :
Industry Applications, IEEE Transactions on
DOI :
10.1109/TIA.2013.2263783