Title :
Design of High-Performance Stand-Alone and Grid-Connected Inverter for Distributed Generation Applications
Author :
Wai, Rong-Jong ; Lin, Chih-Ying ; Huang, Yu-Chih ; Chang, Yung-Ruei
Author_Institution :
Dept. of Electr. Eng., Yuan Ze Univ., Chungli, Taiwan
fDate :
4/1/2013 12:00:00 AM
Abstract :
In this study, a high-performance inverter, including the functions of stand-alone and grid-connected power supplies, is developed so that distributed generation units can operate individually or in a microgrid mode. In the stand-alone power-supply mode, the output ac voltage can supply to ac loads. In the grid-connected power-supply mode, the goal of power management can be achieved by controlling the amplitude and direction of the output current in the inverter. An adaptive total sliding-mode control (ATSMC) scheme is designed for the proposed high-performance inverter with a full-bridge framework. As a result, the proposed high-performance inverter with the ATSMC scheme has the output voltage with a low total harmonic distortion in the stand-alone power-supply mode and the output current with a high power factor in the grid-connected power-supply mode to provide an ac output with high-performance power quality. The effectiveness of the proposed high-performance inverter with the ATSMC is verified by experimental results of a 5-kW prototype, and the merit of the proposed ATSMC scheme is indicated in comparison with conventional proportional-integral and proportional-resonant control strategies.
Keywords :
PI control; adaptive control; distributed power generation; invertors; power grids; variable structure systems; ATSMC scheme; adaptive total sliding-mode control; distributed generation applications; distributed generation units; full-bridge framework; grid-connected inverter; grid-connected power supplies; grid-connected power-supply mode; high-performance inverter; high-performance power quality; high-performance stand-alone design; microgrid mode; output ac voltage; proportional-integral control; proportional-resonant control strategies; stand-alone power-supply mode; total harmonic distortion; Inverters; Phase locked loops; Power supplies; Pulse width modulation; Sliding mode control; Uncertainty; Voltage control; Adaptive control; distributed generation (DG); grid connection; inverter; stand-alone power supply; total sliding-mode control (TSMC);
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2012.2216232