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    KCI등재 SCIE SCOPUS

    Fundamental Frequency Estimation in Power Systems Using Complex Prony Analysis

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    https://www.riss.kr/link?id=A105873198

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    A new algorithm for estimating the fundamental frequency of power system signals is presented.
    The proposed algorithm consists of two stages: orthogonal decomposition and a complex Prony analysis. First, the input signal is decomposed into two orthogonal components using cosine and sine filters, and a variable window is adapted to enhance the performance of eliminating harmonics. Then a complex Prony analysis that is proposed in this paper is used to estimate the fundamental frequency by approximating the cosine-filtered and sine-filtered signals simultaneously. To evaluate the performance of the algorithm, amplitude modulation and harmonic tests were performed using simulated test signals. The performance of the algorithm was also assessed for dynamic conditions on a singlemachine power system. The Electromagnetic Transients Program was used to generate voltage signals for a load increase and single phase-to-ground faults. The performance evaluation showed that the proposed algorithm accurately estimated the fundamental frequency of power system signals in the presence of amplitude modulation and harmonics.
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    A new algorithm for estimating the fundamental frequency of power system signals is presented. The proposed algorithm consists of two stages: orthogonal decomposition and a complex Prony analysis. First, the input signal is decomposed into two orthogo...

    A new algorithm for estimating the fundamental frequency of power system signals is presented.
    The proposed algorithm consists of two stages: orthogonal decomposition and a complex Prony analysis. First, the input signal is decomposed into two orthogonal components using cosine and sine filters, and a variable window is adapted to enhance the performance of eliminating harmonics. Then a complex Prony analysis that is proposed in this paper is used to estimate the fundamental frequency by approximating the cosine-filtered and sine-filtered signals simultaneously. To evaluate the performance of the algorithm, amplitude modulation and harmonic tests were performed using simulated test signals. The performance of the algorithm was also assessed for dynamic conditions on a singlemachine power system. The Electromagnetic Transients Program was used to generate voltage signals for a load increase and single phase-to-ground faults. The performance evaluation showed that the proposed algorithm accurately estimated the fundamental frequency of power system signals in the presence of amplitude modulation and harmonics.

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    참고문헌 (Reference)

    1 V. V. Terzija, "Voltage phasor and local system frequency estimation using Newton-type algorithms" 9 (9): 1368-1374, 1994

    2 L. L. Lai, "Realtime frequency and harmonic evaluation using artificial neural networks" 14 (14): 52-59, 1999

    3 T. Lobos, "Real-time determination of power system frequency" 46 (46): 877-881, 1997

    4 R. Chudamani, "Real-Time Estimation of Power System Frequency Using Nonlinear Least Squares" 24 (24): 1021-1028, 2009

    5 V. Kaura, "Operation of a phase locked loop system under distorted utility conditions" 33 (33): 58-63, 1997

    6 M. M. Giray, "Off-nominal frequency measurement in electric power systems" 4 (4): 1573-1578, 1989

    7 M. M. Begovic, "Frequency tracking in power networks of harmonics" 151-157, 1992

    8 P. K. Dash, "Frequency estimation of distorted power system signals using extended complex Kalman filter" 14 (14): 761-766, 1999

    9 D. W. P. Thomas, "Evaluation of frequency tracking methods" 16 (16): 367-371, 2001

    10 H. Karimi, "Estimation of frequency and its rate of change for applications in power systems" 19 (19): 472-480, 2004

    1 V. V. Terzija, "Voltage phasor and local system frequency estimation using Newton-type algorithms" 9 (9): 1368-1374, 1994

    2 L. L. Lai, "Realtime frequency and harmonic evaluation using artificial neural networks" 14 (14): 52-59, 1999

    3 T. Lobos, "Real-time determination of power system frequency" 46 (46): 877-881, 1997

    4 R. Chudamani, "Real-Time Estimation of Power System Frequency Using Nonlinear Least Squares" 24 (24): 1021-1028, 2009

    5 V. Kaura, "Operation of a phase locked loop system under distorted utility conditions" 33 (33): 58-63, 1997

    6 M. M. Giray, "Off-nominal frequency measurement in electric power systems" 4 (4): 1573-1578, 1989

    7 M. M. Begovic, "Frequency tracking in power networks of harmonics" 151-157, 1992

    8 P. K. Dash, "Frequency estimation of distorted power system signals using extended complex Kalman filter" 14 (14): 761-766, 1999

    9 D. W. P. Thomas, "Evaluation of frequency tracking methods" 16 (16): 367-371, 2001

    10 H. Karimi, "Estimation of frequency and its rate of change for applications in power systems" 19 (19): 472-480, 2004

    11 P. K. Dash, "An adaptive neural network approach for the estimation of power system frequency" 41 (41): 203-210, 1997

    12 M.D.Kusljevic, "A simple recursive algorithm for frequency estimation" 53 (53): 335-340, 2004

    13 M.D.Kusljevic, "A simple recursive Algorithm for simultaneous magnitude and frequency estimation" 57 (57): 1207-1214, 2008

    14 J. Z. Yang, "A precise calculation of power system frequency" 16 (16): 361-366, 2001

    15 S.-K. Chung, "A phase tracking system for three phase utility interface inverters" 15 (15): 431-438, 2000

    16 A. Routray, "A novel Kalman filter for frequency estimation of distorted signals in power systems" 51 (51): 469-479, 2002

    17 P. J. Moore, "A new numeric technique for high-speed evaluation of power system frequency" 141 (141): 529-536, 1994

    18 A. G. Phadke, "A new measurement technique for tracking voltage phasors, local system frequency and rate of change of frequency" PAS-102 (PAS-102): 1025-1038, 1983

    19 D. Hart, "A new frequency tracking and phasor estimation algorithm for generator protection" 12 (12): 1064-1073, 1997

    20 M. S. Sachdev, "A least error squares technique for determining power system frequency" PAS-104 (PAS-104): 437-444, 1985

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    학술지 이력

    학술지 이력
    연월일 이력구분 이력상세 등재구분
    학술지등록 한글명 : Journal of Electrical Engineering & Technology(JEET)
    외국어명 : Journal of Electrical Engineering & Technology
    2023 평가 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
    2020-01-01 등재 등재학술지 유지 (해외등재 학술지 평가) KCI등재
    2011-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2009-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2006-01-01 등재 학술지 통합 (기타) KCI등재
    2006-01-01 등재 등재학술지 선정 (등재후보2차) KCI등재
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    학술지 인용정보

    학술지 인용정보
    기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
    2016 0.45 0.21 0.39
    KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
    0.37 0.34 0.372 0.04
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