DocumentCode :
1127690
Title :
Extended Voltage Swell Ride-Through Capability for PWM Voltage-Source Rectifiers
Author :
Burgos, Rolando P. ; Wiechmann, Eduardo P.
Author_Institution :
Center for Power Electron. Syst., Virginia Polytech. Inst. & State Univ., Blacksburg, VA, USA
Volume :
52
Issue :
4
fYear :
2005
Firstpage :
1086
Lastpage :
1098
Abstract :
Voltage swells are one of the most harmful disturbances present in industrial power systems, being capable of severely damaging, breaking, or tripping converters. In the case of pulsewidth-modulation voltage-source rectifiers (PWM-VSRs), swells first saturate their control system and then force them into six-pulse operation if no precautions are taken. This paper presents an extended ride-through strategy enabling these converters to deal and cope with swells of up to 1.8 p.u. (IEEE Std. 1159 swell definition). The proposed strategy first fully exploits the dc-link voltage capacity by dynamically entering the overmodulation region, and secondly by drawing inductive current in case the former action does not suffice. Dynamic overmodulation makes possible the straight ride-through of 15% and 42% three-phase and single-phase swells, whereas the modulation index supervisor/control loop drawing inductive current enables the ride-through for greater magnitude disturbances, all the while avoiding saturation of the converter control system. This is realized using decision-making space vector modulation, and a control system built over a nonlinear control law directly obtained from the converter complex state variable model. In this way, linear and decoupled dq axes dynamics are attained, ensuring a constant dynamic response throughout the whole operating range. Finally, experimental results from a TMS320C32 digital-signal-processor-based 5-kVA laboratory prototype subjected to typical industry single- and three-phase swells ranging from 5% to 50% are presented. These confirm the predicted performance and feasibility of the proposed voltage swell ride-through strategy for PWM-VSRs.
Keywords :
PWM power convertors; decision making; digital signal processing chips; industrial power systems; linearisation techniques; nonlinear control systems; power supply quality; rectifying circuits; 5 kVA; PWM converters; TMS320C32; complex state variables; damaging; decision making; digital signal processor; extended voltage swell; feedback linearization; industrial power system; modulation index; nonlinear control system; overmodulation; space vector modulation; tripping converters; voltage-source rectifiers; Control systems; Industrial power systems; Nonlinear control systems; Nonlinear dynamical systems; Power system stability; Pulse power systems; Pulse width modulation; Rectifiers; Space vector pulse width modulation; Voltage; Complex state variables; feedback linearization; nonlinear control; overmodulation; pulsewidth-modulation voltage-source rectifier (PWM-VSR); space-vector modulation (SVM); voltage swell;
fLanguage :
English
Journal_Title :
Industrial Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0046
Type :
jour
DOI :
10.1109/TIE.2005.851643
Filename :
1490699
Link To Document :
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