Title :
A Novel Fault-Tolerant DFIG-Based Wind Energy Conversion System for Seamless Operation During Grid Faults
Author :
Kanjiya, Parag ; Ambati, Bharath Babu ; Khadkikar, Vinod
Author_Institution :
Inst. Center for Energy, Masdar Inst. of Sci. & Technol., Abu Dhabi, United Arab Emirates
Abstract :
A novel fault-tolerant configuration of doubly fed induction generator (DFIG) for wind energy conversion systems (WECSs) is proposed in this paper for the seamless operation during all kinds of grid faults. The proposed configuration is developed by replacing the traditional six-switch grid-side converter (GSC) of DFIG with a nine-switch converter. With the additional three switches, the nine-switch converter can provide six independent output terminals. One set of three output terminals are connected to the grid through interfacing inductors to realize normal GSC operation while, the other set of three output terminals are connected to neutral side of the stator windings to provide fault ride-through (FRT) capability to the DFIG. An appropriate control algorithm is developed for the proposed configuration that: 1) achieves seamless fault ride-through during any kind of grid faults and 2) strictly satisfies new grid codes requirements. The effectiveness of the proposed configuration in riding through different kind of faults is evaluated through detailed simulation studies on a 1.5-MW WECS.
Keywords :
asynchronous generators; direct energy conversion; fault currents; fault tolerant control; power convertors; power grids; power system reliability; stators; wind power; FRT; GSC; WECS; doubly fed induction generator; fault ride-through; fault-tolerant DFIG; fault-tolerant configuration; grid codes requirements; grid faults; grid-side converter; nine-switch converter; power 1.5 MW; stator windings; wind energy conversion system; Circuit faults; Fault tolerance; Reactive power; Rotors; Stator windings; Voltage control; Doubly fed induction generator (DFIG); grid faults; neutral side converter; seamless fault ride-through (seamless FRT); unbalance; wind turbine (WT);
Journal_Title :
Power Systems, IEEE Transactions on
DOI :
10.1109/TPWRS.2013.2290047