DocumentCode
52328
Title
Multi-Objective Model-Predictive Control for High-Power Converters
Author
Jiefeng Hu ; Jianguo Zhu ; Gang Lei ; Platt, Glenn ; Dorrell, David G.
Author_Institution
Fac. of Eng. & Inf. Technol., Univ. of Technol., Sydney, NSW, Australia
Volume
28
Issue
3
fYear
2013
fDate
Sept. 2013
Firstpage
652
Lastpage
663
Abstract
This paper presents a multi-objective model-predictive control (MOMPC) strategy for controlling converters in high-power applications. The controller uses the system model to predict the system behavior in each sampling interval for each voltage vector, and the most appropriate vector is then chosen according to an optimization criterion. By changing the cost function properly, multiobjectives can be achieved. To eliminate the influences of one step delay in digital implementation, a model-based prediction scheme is introduced. For high-power applications, the converter switching frequency is normally kept low in order to reduce the switching losses; this is done by adding a nonlinear constraint in the cost function. However, to avoid system stability deterioration caused by the low switching frequency, an N-step horizontal prediction is proposed. Finally, the control algorithm is simplified using a graphical algorithm to reduce the computational burden. The proposed MOMPC strategy was verified numerically by using MATLAB/Simulink, and validated experimentally using a laboratory ac/dc converter.
Keywords
AC-DC power convertors; optimisation; predictive control; sampling methods; switching convertors; MATLAB/Simulink; MOMPC strategy; N-step horizontal prediction; control algorithm; converter switching frequency; cost function; digital implementation; graphical algorithm; high-power applications; high-power converters; laboratory AC-DC converter; multiobjective model-predictive control; nonlinear constraint; optimization criterion; sampling interval; step delay influence elimination; switching loss reduction; system behavior prediction; system stability deterioration avoidance; voltage vector; Cost function; Delays; Predictive control; Reactive power; Switches; Switching frequency; Vectors; High-power applications; model-predictive control (MPC); multiobjectives; switching frequency reduction;
fLanguage
English
Journal_Title
Energy Conversion, IEEE Transactions on
Publisher
ieee
ISSN
0885-8969
Type
jour
DOI
10.1109/TEC.2013.2270557
Filename
6565396
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