DocumentCode :
86932
Title :
Model Predictive Decoupled Active and Reactive Power Control for High-Power Grid-Connected Four-Level Diode-Clamped Inverters
Author :
Yaramasu, Venkata ; Bin Wu
Author_Institution :
Dept. of Electr. & Comput. Eng., Ryerson Univ., Toronto, ON, Canada
Volume :
61
Issue :
7
fYear :
2014
fDate :
Jul-14
Firstpage :
3407
Lastpage :
3416
Abstract :
In this paper, a model predictive scheme is proposed to control the grid-connected high-power four-level diode-clamped inverter. To predict the future behavior of active and reactive grid power values and dc link capacitor voltages, a discrete-time model of the inverter is developed in synchronous reference frame. The controller uses all the possible switching states of the inverter for the prediction and evaluates them using a cost function. The switching state, which minimizes the cost function, is then chosen and applied at the next sampling interval. The switching frequency minimization is also achieved by including an extra constraint in the cost function. A simplified extrapolation method with reduced computational burden is proposed to safeguard the semiconductor devices during the dynamic changes in reference power values. The performance of the proposed method is investigated with the perturbations in the grid filter and dc link parameters. The feasibility of the proposed method is verified through simulation and experimental results, showing good dynamic and steady-state performance.
Keywords :
extrapolation; invertors; perturbation techniques; power generation control; power grids; predictive control; reactive power control; wind power plants; active grid power values; cost function; dc link capacitor voltages; dc link parameters; discrete-time model; dynamic performance; extrapolation method; grid filter; high-power grid-connected four-level diode-clamped inverters; model predictive decoupled active power control; model predictive decoupled reactive power control; perturbations; reactive grid power values; reference power values; semiconductor devices; steady-state performance; switching frequency minimization; switching states; synchronous reference frame; wind energy capacity; Capacitors; Extrapolation; Inverters; Reactive power; Switches; Voltage control; Wind turbines; DC–AC power conversion; model predictive control (MPC); multilevel converters; power control; wind energy;
fLanguage :
English
Journal_Title :
Industrial Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0046
Type :
jour
DOI :
10.1109/TIE.2013.2278959
Filename :
6582535
Link To Document :
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