Title :
A Proportional
Multiresonant Controller for Three-Phase Four-Wire High-Frequency Link Inverter
Author :
De, Dipankar ; Ramanarayanan, Venkataramanan
Author_Institution :
Dept. of Electr. Eng., Indian Inst. of Sci., Bangalore, India
fDate :
4/1/2010 12:00:00 AM
Abstract :
A new solution for unbalanced and nonlinear loads in terms of power circuit topology and controller structure is proposed in this paper. A three-phase four-wire high-frequency ac-link inverter is adopted to cater to such loads. Use of high-frequency transformer results in compact and light-weight systems. The fourth wire is taken out from the midpoint of the isolation transformer in order to avoid the necessity of an extra leg. This makes the converter suitable for unbalanced loads and eliminates the requirements of bulky capacitor in half-bridge inverter. The closed-loop control is carried out in stationary reference frame using proportional + multiresonant controller (three separate resonant controller for fundamental, fifth and seventh harmonic components). The limitations on improving steady-state response of harmonic resonance controllers is investigated and mitigated using a lead-lag compensator. The proposed voltage controller is used along with an inner current loop to ensure excellent performance of the power converter. Simulation studies and experimental results with 1 kVA prototype under nonlinear and unbalanced loading conditions validate the proposed scheme.
Keywords :
closed loop systems; compensation; invertors; power system harmonics; power transformers; voltage regulators; apparent power 1 kVA; bulky capacitor; closed-loop control; controller structure; half-bridge inverter; harmonic resonance controllers; high-frequency transformer; isolation transformer; lead-lag compensator; nonlinear loading conditions; power circuit topology; power converter; proportional + multiresonant controller; three-phase four-wire high-frequency AC-link inverter; unbalanced loading conditions; voltage controller; Digital controller; four-wire systems; high-frequency link; nonlinear loads; resonant controller;
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2009.2036012