Title :
Rotor-side PI controller design of DFIG wind turbines based on direct power flow modeling
Author :
Bourdoulis, Michael K. ; Alexandridis, Antonio T.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Patras, Rion, Greece
Abstract :
In this paper, an appropriate nonlinear modeling approach of a DFIG wind system is introduced that permits the design of suitable PI controllers for direct regulation of the active and reactive power produced. Using this model and adopting grid voltage reference frame orientation, it is immediately shown that the stator power components, namely the reactive and active power, can be controlled separately through the d- and q-axis rotor voltage inputs, respectively. This provides the possibility to design simple PI controllers for each voltage input, thus overcoming the conventional cascaded controller designs used so far. Therefore, the proposed methodology does not require either current inner-loops or estimation of any flux components. Furthermore, the proposed modeling and control scheme provides a closed-loop system in a form suitable for applying advanced, Lyapunov-based, stability analysis methods. As shown in the paper, by using these methods, stability and convergence to the equilibrium can be guaranteed. Eventually, to verify the analysis and evaluate the performance of the closed-loop DFIG wind system, extensive simulations under wind speed changes and reactive power reference variations are conducted.
Keywords :
Lyapunov methods; PI control; asynchronous generators; cascade control; closed loop systems; control system synthesis; load flow control; machine control; nonlinear control systems; power generation control; power grids; power system stability; reactive power control; rotors; wind power plants; wind turbines; DFIG wind turbine; Lyapunov-based method; active power control; cascaded controller design; closed loop system; convergence; direct active power regulation; direct power flow modeling; direct reactive power regulation; flux component estimation; grid voltage reference frame orientation; nonlinear modeling approach; reactive power control; reactive power reference variation; rotor side PI controller design; stability analysis method; stator power component; Reactive power; Rotors; Stability analysis; Stator windings; Voltage control; Wind turbines; DFIG; Direct power control; Nonlinear control; PI controller; Stability analysis; Wind power generation;
Conference_Titel :
Renewable Energy Research and Applications (ICRERA), 2013 International Conference on
Conference_Location :
Madrid
DOI :
10.1109/ICRERA.2013.6749743