Title :
Offset-Free Model Predictive Control for the Power Control of Three-Phase AC/DC Converters
Author :
Seok-Kyoon Kim ; Dae-Keun Choi ; Kyo-Beum Lee ; Young Il Lee
Author_Institution :
Living & Energy R&D Center, LG Electron., Seoul, South Korea
Abstract :
This paper describes an offset-free model predictive control (MPC) algorithm using a disturbance observer (DOB) to control the active/reactive powers of a three-phase AC/DC converter. The strategy of this paper is twofold. One is the use of DOB to remove the offset error, and the other is the proper choice of the weighting matrices of a cost index to provide fast error decay with small overshoot. The DOB is designed to estimate the unknown disturbances of the ac/dc converter following the standard Luenberger observer design procedure. The proposed MPC minimizes a one-step-ahead cost index penalizing the predicted tracking error by performing a simple membership test without any use of numerical methods. A systematic way for choosing the weights of the cost index, which guarantees the global stability of the closed-loop system, is proposed. Use of the DOB eliminates the offset tracking errors in the real implementation. Using a 25-kW ac/dc converter, it is experimentally shown that the proposed MPC enhances the power tracking performance while considerably reducing the mutual interference of the active/reactive powers as well as the output voltage.
Keywords :
AC-DC power convertors; closed loop systems; control system synthesis; cost reduction; matrix algebra; observers; power system stability; predictive control; reactive power control; DOB; MPC; active power control; closed loop system; cost index minimisation; disturbance observer; global stability; membership test; offset free model predictive control; power 25 kW; reactive power control; standard Luenberger observer design; three-phase AC-DC converter; tracking error prediction; weighting matrices; Indexes; Linear matrix inequalities; Optimization; Reactive power; Stability criteria; Steady-state; AC/DC converter; Input constraint; MPC; Power tracking control; input constraint; model predictive control (MPC); power tracking control;
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2015.2436353