DocumentCode :
107025
Title :
A Phase-Angle Estimation Method for Synchronization of Grid-Connected Power-Electronic Converters
Author :
Baradarani, Farzam ; Dadash Zadeh, Mohammad R. ; Zamani, M. Amin
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Western Ontario, London, ON, Canada
Volume :
30
Issue :
2
fYear :
2015
fDate :
Apr-15
Firstpage :
827
Lastpage :
835
Abstract :
This paper proposes a positive-sequence phase-angle estimation method based on discrete Fourier transform for the synchronization of three-phase power-electronic converters under distorted and variable-frequency conditions. The proposed method is designed based on a fixed sampling rate and, thus, it can simply be employed for control applications. First, analytical analysis is presented to determine the errors associated with the phasor estimation using standard discrete Fourier transform in a variable-frequency environment. Then, a robust phase-angle estimation technique is proposed, which is based on a combination of estimated positive and negative sequences, tracked frequency, and two proposed compensation coefficients. The proposed method has one cycle transient response and is immune to harmonics, noises, voltage imbalances, and grid frequency variations. An effective approximation technique is proposed to simplify the computation of the compensation coefficients. The effectiveness of the proposed method is verified through a comprehensive set of simulations in Matlab software. Simulation results show the robust and accurate performance of the proposed method in various abnormal operating conditions.
Keywords :
approximation theory; discrete Fourier transforms; power convertors; power electronics; power grids; synchronisation; Matlab software; approximation technique; compensation coefficients; control applications; discrete Fourier transform; grid frequency variations; grid-connected power-electronic converters; phase-angle estimation method; phasor estimation; positive-sequence phase-angle estimation method; robust phase-angle estimation technique; standard discrete Fourier transform; synchronization; three-phase power-electronic converters; variable-frequency conditions; variable-frequency environment; voltage imbalances; Discrete Fourier transforms; Equations; Estimation; Frequency estimation; Mathematical model; Noise; Synchronization; Digital synchronization of power-electronic converters; discrete Fourier transform (DFT); phase-angle estimation; phase-locked loop (PLL);
fLanguage :
English
Journal_Title :
Power Delivery, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8977
Type :
jour
DOI :
10.1109/TPWRD.2014.2362930
Filename :
6922571
Link To Document :
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