Title :
Vector-Controlled Voltage-Source-Converter-Based Transmission Under Grid Disturbances
Author :
Parkhideh, Babak ; Bhattacharya, Subhashish
Author_Institution :
Dept. of Electr. & Comput. Eng., North Carolina State Univ., Raleigh, NC, USA
Abstract :
Voltage-source converter (VSC)-based transmission systems have attractive potential features in terms of power flow control and stability of the network. Although relatively low switching frequency operation of high-power converters (9-15 times the line frequency) is desirable, it makes them sensitive to power network imbalances when they may be needed the most. This paper specifically proposes a control structure to improve the performance of high-power vector-controlled back-to-back VSC systems for conventional and emerging utility applications. The main improvement is to suppress the possible dc-link voltage fluctuations under power line faults and unbalanced conditions. The proposed controller structure is designed based on regulating the converter system´s states locally in dq synchronous reference frame without sequence components extraction or resonant notch compensator. RTDS results verify the validity of the proposed control architecture during normal and unbalanced power system conditions.
Keywords :
HVDC power convertors; HVDC power transmission; load flow control; power cables; power control; power grids; power system stability; power transmission faults; HVDC transmission system; VSC-based transmission systems; control structure; converter system state regulation; d-q synchronous reference frame; dc-link voltage fluctuations; grid disturbances; high-power converter; high-power vector-controlled back-to-back VSC systems; high-voltage direct current transmission system; network stability; power flow control; power line faults; power network imbalances; unbalanced power system conditions; vector-controlled voltage-source-converter-based transmission system; HVDC transmission; Harmonic analysis; Power conversion; Power system faults; Reactive power; Voltage control; High-voltage direct current (HVDC); Lyapunov methods; RTDS; power systems faults; pulsewidth modulation (PWM) voltage-source converter (VSC); recovery transformer; vector-controlled VSC; wind power;
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2012.2204071