Title :
Stability Analysis of a Wave-Energy Conversion System Containing a Grid-Connected Induction Generator Driven by a Wells Turbine
Author :
Wang, Li ; Chen, Zan-Jia
Author_Institution :
Dept. of Electr. Eng., Nat. Cheng Kung Univ., Tainan, Taiwan
fDate :
6/1/2010 12:00:00 AM
Abstract :
This paper presents the dynamic-stability analyzed results of both dynamic simulations and steady-state performance of a wave-energy power generation system containing a grid-connected induction generator (IG) driven by a Wells turbine. The stator windings of the IG are connected directly to a power grid through a step-up transformer and a transmission line. A d-q axis equivalent-circuit model is employed to establish the IG, the transmission line, and the grid to derive the complete dynamic equations of the studied system under three-phase balanced loading conditions. A frequency-domain approach based on eigenvalue analysis and a time-domain scheme based on nonlinear-model simulations are both carried out to systematically determine the dynamic stability of the studied system under various operating conditions. It can be concluded from the simulation results that the studied wave-energy power generation system subject to different disturbance conditions can maintain stable operation.
Keywords :
asynchronous generators; power system stability; stators; turbines; wave power generation; Wells turbine; d-q axis equivalent-circuit model; dynamic equations; dynamic stability; eigenvalue analysis; frequency domain approach; grid connected induction generator; power grid; stability analysis; stator windings; steady-state performance; step-up transformer; three phase balanced loading conditions; time-domain scheme; transmission line; wave energy conversion system; wave energy power generation system; Dynamic stability; Wells turbine; eigenvalue; induction generator; nonlinear-model simulations; wave-energy power generation system;
Journal_Title :
Energy Conversion, IEEE Transactions on
DOI :
10.1109/TEC.2009.2036837