Title :
An Efficient Prony-Based Solution Procedure for Tracking of Power System Voltage Variations
Author :
Cheng-I Chen ; Chang, G.W.
Author_Institution :
Dept. of Electr. Eng., Nat. Central Univ., Taoyuan, Taiwan
fDate :
7/1/2013 12:00:00 AM
Abstract :
Magnitude and duration are important characteristics when performing tracking of voltage variations. Accurate characterization of voltage variations relies much on the precise identification of frequencies of the measured signals. Although the Prony´s method can provide high resolution for frequency estimation, the computational burden in the root-finding process is a crucial problem. A modified Prony-based solution procedure for voltage variation tracking is proposed in this paper. By providing a set of filters, the transfer polynomial with high estimation order in Prony´s model can be efficiently reduced. The performance of the proposed method is validated by testing the generated and actual measured voltage signals. Results are compared with those obtained by typical Prony´s method, namely, fast Fourier transform, adaptive linear neural network, and Kalman filtering. It shows that the proposed method is more accurate regardless of interferences of the power system frequency deviation, harmonics, and interharmonics, where both voltage variations and harmonics can be simultaneously detected.
Keywords :
Kalman filters; fast Fourier transforms; frequency estimation; neural nets; polynomials; power system harmonics; power system measurement; power system parameter estimation; Kalman filtering; adaptive linear neural network; efficient modified Prony-based solution procedure; fast Fourier transform; frequency estimation; frequency identification; power system frequency deviation interference; power system harmonics; power system voltage variation tracking; root-finding process; transfer polynomial; voltage signal measurement; Band pass filters; Estimation; Frequency estimation; Frequency synchronization; Polynomials; Power systems; Synchronization; Harmonics; Prony´s method; interharmonics; power system frequency deviation; voltage variations;
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2012.2196896