
CLC number: TM77
On-line Access: 2024-08-27
Received: 2023-10-17
Revision Accepted: 2024-05-08
Crosschecked: 2018-02-15
Cited: 0
Clicked: 8139
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,in press.https://doi.org/10.1631/FITEE.1601689 @article{title="New method to determine optimum impedance of fault current limiters for symmetrical and/or asymmetrical faults in power systems", %0 Journal Article TY - JOUR
电力系统中对称和/或不对称故障的限流器阻抗优化新方法关键词组: Darkslateblue:Affiliate; Royal Blue:Author; Turquoise:Article
Reference[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. ![]() Journal of Zhejiang University-SCIENCE, 38 Zheda Road, Hangzhou
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