Title :
Current Control for an Indirect Matrix Converter With Filter Resonance Mitigation
Author :
Rivera, Marco ; Rodriguez, Jose ; Wu, Bin ; Espinoza, José R. ; Rojas, Christian A.
Author_Institution :
Dept. of Electron. Eng., Univ. Tec. Federico Santa Maria, Valparaiso, Chile
Abstract :
A predictive control scheme for the indirect matrix converter including a method to mitigate the resonance effect of the input filter is presented. A discrete-time model of the converter, the input filter, and the load is used to predict the behavior of the instantaneous input reactive power and the output currents for each valid switching state. The control scheme selects the state that minimizes the value of a cost function in order to generate input currents with unity power factor and output currents with a low error with respect to a reference. The active damping method is based on a virtual harmonic resistor which damps the filter resonance. This paper shows experimental results to demonstrate that the proposed control method can generate good tracking of the output-current references, achieve unity input displacement power factor, and reduce the input-current distortion caused by the input filter resonance.
Keywords :
discrete time systems; electric current control; harmonic distortion; matrix convertors; predictive control; active damping method; current control; discrete-time model; filter resonance mitigation; indirect matrix converter; input filter; input-current distortion; instantaneous input reactive power; predictive control scheme; resonance effect; unity input displacement power factor; unity power factor; valid switching state; virtual harmonic; Cost function; Current control; Damping; Harmonic analysis; Matrix converters; Reactive power; Switches; AC/AC power conversion; current control; digital control; harmonic distortion; matrix converter; predictive control;
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2011.2165311