CLC number: TM77
On-line Access: 2024-08-27
Received: 2023-10-17
Revision Accepted: 2024-05-08
Crosschecked: 2018-02-15
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Mahmoud Modaresi, Hamid Lesani. New method to determine optimum impedance of fault current limiters for symmetrical and/or asymmetrical faults in power systems[J]. Frontiers of Information Technology & Electronic Engineering, 2018, 19(2): 297-307.
@article{title="New method to determine optimum impedance of fault current limiters for symmetrical and/or asymmetrical faults in power systems",
author="Mahmoud Modaresi, Hamid Lesani",
journal="Frontiers of Information Technology & Electronic Engineering",
volume="19",
number="2",
pages="297-307",
year="2018",
publisher="Zhejiang University Press & Springer",
doi="10.1631/FITEE.1601689"
}
%0 Journal Article
%T New method to determine optimum impedance of fault current limiters for symmetrical and/or asymmetrical faults in power systems
%A Mahmoud Modaresi
%A Hamid Lesani
%J Frontiers of Information Technology & Electronic Engineering
%V 19
%N 2
%P 297-307
%@ 2095-9184
%D 2018
%I Zhejiang University Press & Springer
%DOI 10.1631/FITEE.1601689
TY - JOUR
T1 - New method to determine optimum impedance of fault current limiters for symmetrical and/or asymmetrical faults in power systems
A1 - Mahmoud Modaresi
A1 - Hamid Lesani
J0 - Frontiers of Information Technology & Electronic Engineering
VL - 19
IS - 2
SP - 297
EP - 307
%@ 2095-9184
Y1 - 2018
PB - Zhejiang University Press & Springer
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DOI - 10.1631/FITEE.1601689
Abstract: To select the type and value of the impedance of fault current limiters (FCLs) for power network designers, we introduce a new method to calculate the optimum value of FCL impedance depending on its position in the network. Due to the complexity of its impedance, the costs of both real and imaginary parts of FCL impedance are considered. The optimization of FCL impedance is based on a goal function that maximizes the reduction of the fault current while minimizing the costs. While the position of FCL in the network has an effect on the calculation of the optimum impedance value, the method for selecting FCL location is not the focus of this study. The proposed method for optimizing FCL impedance can be used for every network that has symmetrical and/or asymmetrical faults. We use a 14-bus IEEE network as an example to explain the process. The optimum FCL impedance used in this network is calculated by considering the vast range of costs for both real and imaginary parts of FCL impedance.
[1]Abramovitz A, Smedley KM, 2012. Survey of solid-state fault current limiters. IEEE Trans Power Electron, 27(6): 2770-2782.
[2]Alaraifi S, El Moursi MS, Zeineldin HH, 2013. Optimal allocation of HTS-FCL for power system security and stability enhancement. IEEE Trans Power Syst, 28(4): 4702-4711.
[3]Christie R, 2012. Power System Test Case Archive. https://www.ee.washington.edu/research/pstca/pf14/pg_tca14bus.htm
[4]Cvoric D, de Haan, SWH, Ferreira JA, et al., 2010. New three-phase inductive FCL with common core and trifilar windings. IEEE Trans Power Del, 25(4):2246-2254.
[5]Dam QB, Meliopoulos APS, 2006. Failure probability methodology for overdutied circuit breakers. 38th IEEE North American Power Symp, p.667-672.
[6]Dam QB, Meliopoulos APS, 2007. Reliability implications of increased fault currents and breaker failures. iREP Symp on Bulk Power System Dynamics and Control-VII. Revitalizing Operational Reliability, p.1-8.
[7]Dam QB, Meliopoulos APS, Cokkinides GJ, 2013. A breaker-oriented fault analysis methodology. Int Trans Electr Energy Syst, 23(7):1071-1082.
[8]Didier G, Lévêque J, 2014. Influence of fault type on the optimal location of superconducting fault current limiter in electrical power grid. Int J Electr Power Energy Syst, 56:279-285.
[9]Didier G, Bonnard CH, Lubin T, et al., 2015. Comparison between inductive and resistive sFCL in terms of current limitation and power system transient stability. Electr Power Syst Res, 125:150-158.
[10]El Moursi MS, Hegazy R, 2013. Novel technique for reducing the high fault currents and enhancing the security of ADWEA power system. IEEE Trans Power Syst, 28(1): 140-148.
[11]Fotuhi-Firuzabad M, Aminifar F, Rahmati I, 2012. Reliability study of HV substations equipped with the fault current limiter. IEEE Trans Power Del, 27(2):610-617.
[12]Guo Y, Yokomizu Y, Matsumura T, 2001. Design guidelines of a flux-lock superconducting fault current limiter with AC magnetic field coil for a 6.6-kV distribution system. Electr Eng Jpn, 135(4):17-25.
[13]Haghifam MR, Ghaderi A, Abapour M, 2009. Enhancement circuit breaker reliability by using fault current limiter. IEEE Power & Energy Society General Meeting, p.1-5.
[14]Hongesombut K, Mitani Y, Tsuji K, 2003. Optimal location assignment and design of superconducting fault current limiters applied to loop power systems. IEEE Trans Appl Supercond, 13(2):1828-1831.
[15]Hossen Heidary A, Radmanesh H, Fathi SH, et al., 2015. Series transformer based diode-bridge-type solid state fault current limiter. Front Inform Technol Electron Eng, 16(9):769-784.
[16]Javadi H, 2011. Fault current limiter using a series impedance combined with bus sectionalizing circuit breaker. Int J Electr Power Energy Syst, 33(3):731-736.
[17]Kim SY, Bae IS, Kim JO, 2010. An optimal location for superconducting fault current limiter considering distribution reliability. IEEE Power and Energy Society General Meeting, p.1-5.
[18]Kim SY, Kim WW, Kim JO, 2011. Evaluation of distribution reliability with superconducting fault current limiter. 10th IEEE Int Conf on Environment and Electrical Engineering, p.1-5.
[19]Kim SY, Kim WW, Kim JO, 2012. Determining the location of superconducting fault current limiter considering distribution reliability. IET Gener Transm Distr, 6(3): 240-246.
[20]Kovalsky L, Yuan X, Tekletsadik K, et al., 2005. Applications of superconducting fault current limiters in electric power transmission systems. IEEE Trans Appl Supercond, 15(2): 2130-2133.
[21]Matsumura T, Shimizu H, Yokomizu Y, 2001. Design guideline of flux-lock type HTS fault current limiter for power system application. IEEE Trans Appl Supercond, 11(1):1956-1959.
[22]Mukhopadhyay SC, Iwahara M, Yamada S, et al., 1998. Investigation of the performances of a permanent magnet biased fault current limiting reactor with a steel core. IEEE Trans Magn, 34(4):2150-2152.
[23]Naderi SB, Jafari M, Tarafdar Hagh M, 2013. Parallel-resonance-type fault current limiter. IEEE Trans Ind Electron, 60(7):2538-2546.
[24]Nagata M, Tanaka K, Taniguchi H, 2001. FCL location selection in large scale power system. IEEE Trans Appl Supercond, 11(1):2489-2494.
[25]Saadat H, 1999. Power System Analysis. WCB/McGraw-Hill.
[26]Seo HC, Kim CH, Rhee SB, et al., 2010. Superconducting fault current limiter application for reduction of the trans-former inrush current: a decision scheme of the optimal insertion resistance. IEEE Trans Appl Supercond, 20(4): 2255-2264.
[27]Shahriari SAA, Varjani AY, Haghifam MR, 2012. Cost reduction of distribution network protection in presence of distributed generation using optimized fault current limiter allocation. Int J Electr Power Energy Syst, 43(1): 1453-1459.
[28]Stemmle M, Neumann C, Merschel F, et al., 2007. Analysis of unsymmetrical faults in high voltage power systems with superconducting fault current limiters. IEEE Trans Appl Supercond, 17(2):2347-2350.
[29]Teng JH, Lu CN, 2010. Optimum fault current limiter placement with search space reduction technique. IET Gener Transm Distr, 4(4):485-494.
[30]Yamaguchi H, Kataoka T, 2007. Current limiting characteristics of transformer type superconducting fault current limiter with shunt impedance. IEEE Trans Appl Supercond, 17(2):1919-1922.
[31]Yousefi H, Aminifar F, Mirzaie M, 2016. Reliability assessment of HV substations equipped with fault current limiter considering changes of failure rate of components. IET Gener Transm Distr, 10(7):1504-1509.
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