Title :
Suppression of Low- and High-Frequency Instabilities and Grid-Induced Disturbances in Distributed Generation Inverters
Author :
Mohamed, Yasser Abdel-Rady I.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Alberta, Edmonton, AB, Canada
Abstract :
This paper presents a robust current control scheme for inductor-capacitor-inductor (LCL)-filtered distributed generation (DG) inverters featuring effective suppression of low- and high-frequency instabilities and grid-induced distortion and disturbances. The conceptual design of the proposed control scheme is to maximize the disturbance rejection performance against grid disturbances and parametric uncertainties, and minimize the coupling among active damping, disturbance rejection, and tracking controllers. First, a simple and robust active damping controller is realized by drooping the inverter control voltage with the capacitor current. Second, the augmented damped dynamics is used to design a robust controller, which is composed of a tracking controller, dynamic grid-disturbance rejection controller, and uncertainty rejection controller. The tracking controller is designed to yield deadbeat control performance to maximize the dynamic performance of the converter. The grid-disturbance rejection controller is designed to provide a base-line of grid-induced dynamics within the closed-loop system as an internal model; therefore, effective mitigation of grid-induced distortion can be achieved without a priori knowledge of the frequency modes to be eliminated. The uncertainty rejection controller is designed to reject voltage disturbances associated with parameter variation and imperfect compensation of the grid-disturbance-rejection controller. Theoretical analysis and comparative test results are presented to demonstrate the effectiveness of the proposed control scheme.
Keywords :
closed loop systems; control system synthesis; damping; distributed power generation; electric current control; invertors; power grids; robust control; LCL-flltered DG inverters; active damping; augmented damped dynamics; capacitor current; closed-loop system; deadbeat control performance; disturbance rejection performance; dynamic grid-disturbance rejection controller; frequency modes; grid-induced distortion; grid-induced distortion mitigation; grid-induced disturbances; high-frequency instability; inductor-capacitor-inductor-flltered distributed generation inverters; inverter control voltage; low-frequency instability; robust active damping controller; robust current control scheme; tracking controllers; uncertainty rejection controller; voltage disturbance rejection; Damping; Harmonic analysis; Inverters; Power harmonic filters; Robustness; Uncertainty; Voltage control; Distributed generation; LCL filter; deadbeat control; pulse width modulation inverters; robust control; stability;
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2011.2161489