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Dynamic Characters Research of Air Arc at Low Current in Long Gap |
Yan Xianglian1, Chen Weijiang2, Wang Chengyu1 |
1. China Electric Power Research Institute Beijing 100192 China
2. State Grid Corporation Beijing 100031 China |
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Abstract The short-circuit arc in distribution network and secondary arc in transmission line caused by single-phase earthing fault burn in free air, so it is difficult to test and simulate the self-extinction behavior of air arc at low current in long gap for its serious non-linearity. The method is adopted to measure and analyze the physical characters of this arc by laboratory tests in the paper. The waveforms of voltage and current aere recorded in different circuits associated with arc at low current. And arcs’ developing films are taken by high-speed imaging system during arcing process. Based on test data, arcs’ physical characteristics are presented to obtain arc time-variable characters. The form mechanism and the transitional trace of arc waveforms such as voltage and current are discussed with arc theory and physics doctrine. Arc resistance and dynamic u-#em/em# curve are obtained to explore the dependency on arc parameters and their variable trend. Finally arc self-extinction criterion is proposed to compute arc durations under the different conditions, which are corresponded with test results. All the analysis has validated arc testing method and conclusions, providing the reference to investigating the self-extinction behavior and modeling for arc.
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Received: 28 August 2008
Published: 18 February 2014
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About author:: Yan Xianglian female, born in 1977, is currently a PhD candidate. Her major interests include over-voltage and insulation coordination of power system, simulation for air arc in long gap.Chen Weijiang male, born in 1958, doctoral supervisor, professor, majoring in electromagnetic transients in power system, over-voltage limitation, insulation coordination and UHV grid construction, et al. |
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[1] Chai Xuzheng, Liang Xidong, Zeng Rong, et al. Secondary arc parameters characteristics of long-distance series compensated transmission lines[J]. Automation of Electric Power Systems, 2007, 31(5): 7-12, 56.
[2] Yan Xianglian, Chen Weijiang, He Ziming, et al. Test study on arc self-extinction characteristics caused by single-phase earth fault in 10kV distribution network[J]. Power System Technology, 2008, 32(8): 25-28, 34.
[3] Zhang Guansheng. The foundation of equipment theory[M]. Beijing: China Machine Press, 1989.
[4] Darwish H A, Elkalashy N I. Universal arc representation using EMTP[J]. IEEE Trans. on Power Delivery, 2005, 20(2): 772-779.
[5] Dudurych I M, Gallagher T J, Rosolowski E. Arc effect on single-phase reclosing time of a UHV power transmission line[J]. IEEE Trans. on Power Delivery, 2004, 19(2): 854-860.
[6] Luxenburger R, Schegner P. Determination of secon- dary arc extinction time and characterization of fault conditions of single-phase autoreclosures[C]. 2005 International Conference on Future Power Systems, 2005: 1-5.
[7] Terzija V V, Koglin H J. On the modeling of long arc in still air and arc resistance calculation[J]. IEEE Trans. on Power Delivery, 2004, 19(3): 1012-1017.
[8] Goda Y, Iwata M, Ikeda K, et al. Arc voltage characteristics of high current fault arcs in long gaps[J]. IEEE Trans. on Power Delivery, 2000, 15(2): 791- 795.
[9] Nagy I Elkalashy, Matti Lehtonen. Modeling experimental verification of high impedance arcing fault in medium voltage networks[J]. IEEE Transactions on Dielectrics and Electrical Insulation, 2007, 14(2): 375-383.
[10] Cao Rongjiang, Gu Nihong, Sheng Yong, et al. Modeling research on self extinguishing characteristics of secondary arc in power system[J]. Proceedings of the CSEE, 1996, 16(2): 73-78.
[11] A study on self-extinguishing characteristics of arc caused by single-phase-earth fault in 10kV distribution networks[R]. China Electric Power Research Institute, 2007.
[12] Zhang Jin, Chen Degui, Fu Jun. Mathematical model of magnetic field driven arc in arc chamber of low voltage circuit breaker[J]. Proceedings of the CSEE, 1999, 19(10): 22-27.
[13] Gu Shanqiang, He Jinliang, Chen Weijiang, et al. Magnetic force computation for the electric arc of parallel gap lightning protection device on overhead transmission lines[J]. Proceedings of the CSEE, 2006, 26(7): 140-145.
[14] Wang Qiping. Theory of arc in equipments[M]. Beijing: China Machine Press, 1982.
[15] Johns A T, Aggarwal R K, Song Y H. Improved techniques for modeling fault arcs on faulted EHV transmission system[J]. IEE Proc. –Gener. Transm. Distrib., 1994, 141(2): 148-154. |
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