Title :
Interconnection of Direct-Drive Wind Turbines Using a Series-Connected DC Grid
Author :
Veilleux, Etienne ; Lehn, Peter
Author_Institution :
Dept. of Electr. & Comput. Eng., McGill Univ., Montreal, QC, Canada
Abstract :
This paper presents a “distributed high-voltage dc (HVDC) converter” for offshore wind farms. The proposed converter topology allows series interconnection of wind turbines with the need of neither ac transformer nor offshore platform at the sending end. Each wind turbine is equipped with a 5-MW permanent-magnet synchronous generator and an ac-dc-dc converter. The converter topology is a diode rectifier (ac-dc) cascaded with a single-switch step-down converter (dc-dc). The dc-dc stage allows the current to flow at all times in the dc link while simultaneously regulating generator torque. The inverter station, located onshore, is a thyristor-based converter that performs dc link current regulation. It also regulates the HVDC link voltage through supervisory inverter controls. A complete wind farm is simulated using the PSCAD/EMTDC software package. The 150-MW wind farm is modelled using six units of 25 MW with a rated dc link voltage of 125 kV at 1.2 kA. The simulation demonstrates the stable operation of the proposed configuration where each turbine is able to independently perform peak power tracking.
Keywords :
HVDC power transmission; power system CAD; wind power plants; wind turbines; HVDC link voltage; PSCAD/EMTDC software package; converter topology; direct-drive wind turbines; distributed high-voltage dc converter; interconnection; offshore wind farms; peak power tracking; power 150 MW; power 25 MW; series-connected DC grid; supervisory inverter controls; Generators; HVDC transmission; Inverters; Topology; Torque; Wind farms; Wind turbines; DC grid; high-voltage dc (HVDC) power transmission; offshore wind farms; wind energy;
Journal_Title :
Sustainable Energy, IEEE Transactions on
DOI :
10.1109/TSTE.2013.2276616