Title :
Improved low-voltage-ride-through capability of fixedspeed wind turbines using decentralised control of STATCOM with energy storage system
Author :
Hossain, Md Jahangir ; Pota, Hemanshu R. ; Ramos, Rodrigo A.
Author_Institution :
Griffith Sch. of Eng., Griffith Univ., Gold Coast, QLD, Australia
fDate :
8/1/2012 12:00:00 AM
Abstract :
The design and implementation of a new control scheme for reactive power compensation, voltage regulation and transient stability enhancement for wind turbines equipped with fixed-speed induction generators (IGs) in large interconnected power systems is presented in this study. The low-voltage-ride-through (LVRT) capability is provided by extending the range of the operation of the controlled system to include typical post-fault conditions. A systematic procedure is proposed to design decentralised multi-variable controllers for large interconnected power systems using the linear quadratic (LQ) output-feedback control design method and the controller design procedure is formulated as an optimisation problem involving rank-constrained linear matrix inequality (LMI). In this study, it is shown that a static synchronous compensator (STATCOM) with energy storage system (ESS), controlled via robust control technique, is an effective device for improving the LVRT capability of fixed-speed wind turbines.
Keywords :
asynchronous generators; control system synthesis; energy storage; linear matrix inequalities; multivariable control systems; optimal control; optimisation; power generation faults; reactive power control; stability; static VAr compensators; supercapacitors; voltage control; wind power plants; wind turbines; STATCOM; decentralised control; decentralised multivariable controller; energy storage system; fixed speed induction generator; fixed speed wind turbines; large interconnected power systems; linear quadratic output feedback control design method; low voltage ride through capability; optimisation problem; post fault condition; rank constrained linear matrix inequality; reactive power compensation; static synchronous compensator; transient stability enhancement; voltage regulation;
Journal_Title :
Generation, Transmission & Distribution, IET
DOI :
10.1049/iet-gtd.2011.0537