Title :
A DSP-based implementation of a nonlinear model reference adaptive control for a three-phase three-level NPC boost rectifier prototype
Author :
Yacoubi, Loubna ; Al-Haddad, Kamal ; Dessaint, Louis-A ; Fnaiech, Farhat
Author_Institution :
Ecole de Technologie Superieure Dept. de Genie Electrique, Univ. du Quebec, Montreal, Que., Canada
Abstract :
In this paper, the design and the implementation of a model reference adaptive control (MRAC) applied to a three-phase three-level neutral-point-clamped (NPC) boost rectifier are presented. This control strategy is developed with a view to regulate dc output and neutral point voltages and to reduce the influence of parameter variations while maintaining unity power factor. A nonlinear multiple-input multiple-output (MIMO) state space model of the rectifier is then developed in dq0 reference frame. The proposed controller is based on the use of a feedback linearization technique followed by a robust MRAC scheme allowing the design of a suitable controller applied to the plant. The control law is designed in Simulink/Matlab and applied to the converter via a 1920-Hz pulse width modulator both executed in real time using the DS1104 DSP of dSPACE. A 1.25 kW laboratory prototype is developed for validation. The experimental results are given for different operating conditions: nominal power operation, balanced and unbalanced dc load steps, boost inductor variation, and reactive power control. The proposed control law performs perfectly in a wide operation range giving low output voltage ripple, low line-current THD, a small overshoot and a fast settling time under system parameters variation.
Keywords :
PWM power convertors; digital signal processing chips; feedback; harmonic distortion; inductors; linearisation techniques; mathematics computing; model reference adaptive control systems; power engineering computing; reactive power control; rectifying circuits; robust control; state-space methods; voltage control; 1.25 kW; 1920 Hz; DS1104 DSP; Simulink-Matlab; boost inductor; control law; converter; dSPACE; digital signal processing; feedback linearization technique; low line-current THD; model reference adaptive control; multiple-input multiple-output; neutral-point-clamped boost rectifier; overshoot; pulse width modulator; reactive power control; robust MRAC scheme; settling time; state space model; total harmonic distortion; unity power factor; voltage regulation; voltage ripple; Adaptive control; Linear feedback control systems; MIMO; Mathematical model; Prototypes; Pulse width modulation converters; Reactive power; Rectifiers; State-space methods; Voltage control; Model reference adaptive control (MRAC); multiple-input multiple-output (MIMO); neutral-point-clamped (NPC);
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2005.854034