Title :
Cooperative control of VSC-HVDC connected offshore wind farm with Low-Voltage Ride-Through capability
Author :
Yan Liu ; Xiongfei Wang ; Zhe Chen
Author_Institution :
Dept. of Energy Technol., Aalborg Univ., Aalborg, Denmark
fDate :
Oct. 30 2012-Nov. 2 2012
Abstract :
The Low-Voltage Ride-Through (LVRT) has become an important grid requirement for offshore wind farms connecting with Voltage Source Converter based High Voltage Direct Current (VSC-HVDC) links. In this paper, a cooperative control strategy with LVRT ability is proposed for a VSC-HVDC connected variable speed Squirrel-Cage Induction Generator (SCIG) wind farm. The approach employs a DC-link voltage versus offshore AC-bus frequency droop control on the offshore converter of VSC-HVDC link. Thus, the back-to-back converters of SCIG wind turbines can adjust the generated active power based on the AC-bus frequency deviations, so that a fast power reduction on the wind farm side can be achieved. The EMTDC/PSCAD simulations are performed on a 300 MW offshore variable speed SCIG wind farm. Simulation results confirm the effectiveness of the proposed control method.
Keywords :
HVDC power transmission; asynchronous generators; frequency control; machine control; offshore installations; power convertors; power generation control; power grids; wind power plants; wind turbines; DC-link voltage; EMTDCIPSCAD simulations; LVRT ability; SCIG wind farm; SCIG wind turbines; VSC-HVDC connected offshore wind farm; back-to-back converters; cooperative control strategy; grid requirement; low-voltage ride-through capability; offshore AC-bus frequency droop control; power 300 MW; variable speed squirrel-cage induction generator wind farm; voltage source converter based high voltage direct current links; Indexes; PSCAD; Power system stability; Torque; Vectors; Voltage control; Low Voltage Ride Through; Offshore wind farm; VSC-HVDC;
Conference_Titel :
Power System Technology (POWERCON), 2012 IEEE International Conference on
Conference_Location :
Auckland
Print_ISBN :
978-1-4673-2868-5
DOI :
10.1109/PowerCon.2012.6401390