Title :
Modified Dynamic Phasor Estimation Algorithm for the Transient Signals of Distributed Generators
Author :
Dong-Gyu Lee ; Sang-Hee Kang ; Soon-Ryul Nam
Author_Institution :
Power & Ind. Syst. R&D Center, Hyosung Corp., Anyang, South Korea
Abstract :
In this paper, a modified dynamic phasor estimation method for protection relays is proposed to calculate the dynamic phasor of a fundamental frequency component with time-variant amplitude. The fault current is assumed to be the combination of a decaying dc offset, a decaying fundamental frequency component and harmonics with constant amplitude. The exponential functions of the decaying dc offset and fundament frequency component are replaced by Taylor series. Then, the LS (Least Square) technique is used to estimate the magnitudes and the time constants of decaying components. The performance of the algorithm is evaluated by using computer-simulated signals based on simple equations and fault current signals collected from DFIG wind farm model in MATLAB Simulink. The test results indicate that the proposed algorithm can accurately estimate the decaying amplitude and the time constant of the fundamental frequency component.
Keywords :
asynchronous generators; distributed power generation; fault currents; least squares approximations; power system harmonics; relay protection; wind power plants; DFIG wind farm model; LS technique; Matlab Simulink; Taylor series; computer-simulated signals; decaying DC offset; decaying amplitude estimation; decaying fundamental frequency component; distributed generators; exponential functions; fault current; fault current signals; least square technique; magnitude estimation; modified dynamic phasor estimation algorithm; protection relays; time constant estimation; time-variant amplitude; transient signals; Discrete Fourier transforms; Fault currents; Frequency estimation; Generators; Heuristic algorithms; Mathematical model; Power system dynamics; Distributed generators; modified dynamic phasor; phasor estimation; time-variant fault current;
Journal_Title :
Smart Grid, IEEE Transactions on
DOI :
10.1109/TSG.2012.2233772