Title :
A Multifunction Control Strategy for the Stable Operation of DG Units in Smart Grids
Author :
Pouresmaeil, Edris ; Mehrasa, Majid ; Catalao, Joao P. S.
Author_Institution :
Centre for Smart Energy Solutions, Univ. of Southern Denmark, Odense, Denmark
Abstract :
This paper describes the development of a multifunction control strategy for the stable operation of distributed generation (DG) units during the integration with the power grid. The proposed control model is based on direct Lyapunov control (DLC) theory and provides a stable region for the proper operation of DG units during the integration with the power grid. The compensation of instantaneous variations in the reference current components in ac-side and dc-voltage variations in the dc-side of the interfacing system are adequately considered in this control plan, which is the main contribution and novelty of this paper in comparison with previous control strategies. Utilization of the DLC technique in DG technology can confirm the continuous injection of maximum active power in fundamental frequency from the DG source to the power grid, compensating all the reactive power and harmonic current components of grid-connected loads through the integration of DG link into the grid. Application of this concept in smart grids system can guarantee to reduce the stress on the utility grid during the peak of energy demand. Simulation and experimental test results are presented to demonstrate the proficiency and performance of the proposed DLC technique in DG technology.
Keywords :
Lyapunov methods; distributed power generation; power distribution control; power generation control; power system harmonics; reactive power; smart power grids; DG source; DLC; ac-side variations; continuous injection; dc-side system; dc-voltage variations; direct Lyapunov control; distributed generation unit stable operation; energy demand; grid connected loads; harmonic current components; maximum active power; multifunction control; reactive power components; reference current components; smart grids; Equations; Load modeling; Mathematical model; Power grids; Reactive power; Steady-state; Switches; Direct Lyapunov control (DLC); distributed generation (DG); power management; smart grids;
Journal_Title :
Smart Grid, IEEE Transactions on
DOI :
10.1109/TSG.2014.2371991