Title :
Control and performance of a self-commutated GTO converter operating in parallel with line-commutated thyristor converters
Author :
Tamai, Shinzo ; Murakami, Shotaro ; Uchida, Ryohei ; Akagi, Hirofumi
Author_Institution :
Power Electron. Dept., Mitsubishi Electr. Corp., Hyogo, Japan
Abstract :
Recently, static var generators (SVGs) or static synchronous compensators based on self-commutated converters have been put into practical use for the purpose of compensation for reactive power, power swings damping, and/or voltage control in power systems. The SVGs have also been applied to reduce voltage fluctuations appearing at high-speed train substations. When parallel resonance occurs between passive filters installed at a point of common coupling (PCC) and the power-system impedance existing upstream of the PCC, voltage/current harmonics are significantly amplified in the power system. This paper describes the control and performance for a self-commutated gate-turn-off (GTO) converter operating in parallel with conventional line-commutated thyristor converters. This hybrid power conversion system rated at more than dozens of MVA has an inductive load at the dc side. A bank of passive filters is connected not only for harmonic compensation of the line-commutated converters, but also as a constant leading reactive-power source. The GTO converter can control either leading or lagging reactive power so as to achieve unity power factor operation. In addition, it has the capability of damping out parallel resonance between the passive filters and the power-system impedance. This paper confirms the viability and effectiveness of the hybrid system by means of theory and computer simulation.
Keywords :
commutation; electric current control; reactive power control; static VAr compensators; thyristor convertors; voltage control; computer simulation; current controllability; hybrid power conversion system; inductive load; line-commutated converters; line-commutated thyristor converter; parallel operation; parallel resonance; reactive power compensation; self-commutated GTO converter; static synchronous compensator; static var generator; voltage control; voltage-current harmonics; Damping; Hybrid power systems; Impedance; Passive filters; Power harmonic filters; Power system harmonics; Reactive power; Reactive power control; Resonance; Thyristors;
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2003.822086