Title :
Experimental Design of a Nonlinear Control Technique for Three-Phase Shunt Active Power Filter
Author :
Rahmani, Salem ; Mendalek, Nassar ; Al-Haddad, Kamal
Author_Institution :
Ecole de Technol. Super., Univ. of Quebec, Montreal, QC, Canada
Abstract :
This paper presents a nonlinear control technique for a three-phase shunt active power filter (SAPF). The method provides compensation for reactive, unbalanced, and harmonic load current components. A proportional-integral (PI) control law is derived through linearization of the inherently nonlinear SAPF system model, so that the tasks of current control dynamics and dc capacitor voltage dynamics become decoupled. This decoupling allows us to control the SAPF output currents and the dc bus voltage independently of each other, thereby providing either one of these decoupled subsystems a dynamic response that significantly slower than that of the other. To overcome the drawbacks of the conventional method, a computational control delay compensation method, which delaylessly and accurately generates the SAPF reference currents, is proposed. The first step is to extract the SAPF reference currents from the sensed nonlinear load currents by applying the synchronous reference frame method, where a three-phase diode bridge rectifier with R-L load is taken as the nonlinear load, and then, the reference currents are modified, so that the delay will be compensated. The converter, which is controlled by the described control strategy, guarantees balanced overall supply currents, unity displacement power factor, and reduced harmonic load currents in the common coupling point. Various simulation and experimental results demonstrate the high performance of the nonlinear controller.
Keywords :
PI control; active filters; electric current control; nonlinear control systems; power factor; power filters; rectifiers; R-L load; common coupling point; computational control delay compensation method; current control dynamics; dc capacitor voltage dynamics; harmonic load current components; nonlinear control; nonlinear load currents; proportional-integral control law; synchronous reference frame method; three-phase diode bridge rectifier; three-phase shunt active power filter; unity displacement power factor; Active filters; Delay; Design for experiments; Displacement control; Nonlinear control systems; Nonlinear dynamical systems; Power harmonic filters; Power system modeling; Proportional control; Voltage control; Active power filter; control delay compensation; modeling; nonactive load current compensation; nonlinear control; power quality;
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2009.2038945