DocumentCode
558859
Title
Application of instantaneous frequency estimation of sweep signal for localizing faults in a power cable
Author
Lee, Chun Ku ; Kwak, Ki Seok ; Yoon, Tae Sung ; Park, Jin Bae
Author_Institution
Dept. of Electr. & Electron. Eng., Yonsei Univ., Seoul, South Korea
fYear
2011
fDate
26-29 Oct. 2011
Firstpage
1915
Lastpage
1918
Abstract
In this paper, we introduce a reflectometry which is used as localizing faults in an underground power cable. To increase the resolution and SNR, time-frequency domain reflectometry (TFDR) adopts the Gaussian enveloped linear chirp signal and Wigner-Ville distribution (WVD) based time-frequency cross-correlation (TFCC) method. However, the nonlinearity of WVD and the computational burden of 2D cross-correlation hinder the TFDR from being a field testing implementation. In order to reduce the nonlinearity and computational burden, we derive the second order time-varying AR model of Gaussian enveloped linear chirp signal and estimate the instantaneous frequency (IF) by using the weighted robust least squares (WRLS) estimator. Based on the estimated IF, the fault distance can be calculated. Computer simulations are conducted to verify the proposed method. The simulation result shows that the proposed method reduces the computational burden of time-frequency cross-correlation and the nonlinearity of WVD.
Keywords
Gaussian processes; fault diagnosis; frequency estimation; least squares approximations; power cables; reflectometry; underground cables; Gaussian enveloped linear chirp signal; SNR; TFCC method; WRLS estimator; WVD nonlinearity; Wigner-Ville distribution; fault distance; fault localization; instantaneous frequency estimation; second order time-varying AR model; sweep signal; time-frequency cross-correlation; time-frequency domain reflectometry; underground power cable; weighted robust least squares; Chirp; Estimation; Mathematical model; Noise; Power cables; Time frequency analysis; Uncertainty; Gaussian enveloped chirp signal; Reflectometry; cable fault; instantaneous frequency; time-varying AR model; weighted robust least squares;
fLanguage
English
Publisher
ieee
Conference_Titel
Control, Automation and Systems (ICCAS), 2011 11th International Conference on
Conference_Location
Gyeonggi-do
ISSN
2093-7121
Print_ISBN
978-1-4577-0835-0
Type
conf
Filename
6106194
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