DocumentCode :
162863
Title :
Power oscillation damping controller for the power system with high wind power penetration level
Author :
Arvani, Ata ; Rao, V. Srinivasa
Author_Institution :
Electr. & Comput. Eng. Dept., Texas Tech Univ., Lubbock, TX, USA
fYear :
2014
fDate :
7-9 Sept. 2014
Firstpage :
1
Lastpage :
6
Abstract :
This paper addresses the impact of high wind power penetration level on damping of the electromechanical modes of oscillation and design of a power oscillation damping (POD) controller for doubly fed induction generator (DFIG)-based wind farm. An auxiliary control loop has been added to rotor side converter (RSC) in the form of cascade control with outer active/reactive power control and inner rotor current control loops. It is shown that this residue-based POD controller significantly improves the inter-area oscillation damping. The validity and effectiveness of the proposed controller are demonstrated on four-machine two-area test system that combines conventional synchronous generators and wind farms using simulations. Numerical results including modal analysis and time domain simulation are presented to illustrate the capabilities and contributions of the proposed controller to network dynamic performance. The main contributions of this paper are (i) the determination of the dominant interarea oscillations of the power systems, (ii) design of reduced order controllers for power damping oscillations, and (iii) increased renewable energy penetration with enhanced stability.
Keywords :
asynchronous generators; cascade control; power convertors; power generation control; power system dynamic stability; rotors; synchronous generators; time-domain analysis; wind power plants; RSC cascade control; doubly fed induction generator; high wind power penetration level; innerrotor current auxiliary control loop; power system interarea oscillation electromechanical damping controller; renewable energy penetration; residue-based POD reduced order controller; rotor side converter reactive power control; stability enhancement; synchronous generator; time domain simulation; wind farm DFIG active power control; Damping; Mathematical model; Oscillators; Power system stability; Rotors; Wind farms; Wind turbines; doubly fed induction generator; power oscillation damping controller; small signal stability; wind power penetration;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
North American Power Symposium (NAPS), 2014
Conference_Location :
Pullman, WA
Type :
conf
DOI :
10.1109/NAPS.2014.6965400
Filename :
6965400
Link To Document :
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