Title :
Digital Control of a Shunt Hybrid Power Filter Adopting a Nonlinear Control Approach
Author :
Hamadi, Alia ; Rahmani, Saeid ; Al-Haddad, Kamal
Author_Institution :
Dept. of Energy Conversion & Power Electron., Ecole de Technol. Super., Montréal, QC, Canada
Abstract :
This paper proposes a nonlinear derivative-less control approach for controlling a three-phase shunt hybrid power filter (SHPF). The dynamic model of the SHPF system is first elaborated in the stationary frame and then transformed into a “dq” reference frame. The control system is divided into two separate loops, namely the two current dynamics inner loop and the dc voltage dynamic outer loop. The exact feedback linearization technique is used to decouple the inner loop variables. Proportional-integral controllers are utilized to control the SHPF input currents and dc-bus voltage. The proposed nonlinear control is first simulated and then validated on a 2.5-kVA laboratory prototype supported by the DS 1104 digital real-time controller board of dSPACE. Satisfactory results, such as low-ac-current total harmonic distortion, fast step response, and high robustness under load variation, are obtained. Significantly high correlation between the experimental results and the theoretical model, implemented with SIMULINK/Matlab, is obtained.
Keywords :
PI control; digital control; electric current control; feedback; linearisation techniques; nonlinear control systems; power harmonic filters; voltage control; DS 1104 digital real-time controller board; SHPF input current control; SIMULINK-MATLAB; control system; current dynamic inner loop; current dynamics inner loop; dSPACE; dc voltage dynamic outer loop; dc-bus voltage control; dq reference frame; dynamic SHPF system model; exact feedback linearization technique; fast step response; inner loop variable decoupling; laboratory prototype; load variation; low-ac-current total harmonic distortion; nonlinear derivativeless control approach; proportional-integral controller; robustness; stationary frame; three-phase shunt hybrid power filter; Harmonic distortion; Modeling; Nonlinear control systems; Power filters; Power harmonic filters; Real-time systems; Hybrid power filter; harmonics compensation; modeling; nonlinear control; real-time control;
Journal_Title :
Industrial Informatics, IEEE Transactions on
DOI :
10.1109/TII.2013.2245139