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[1] G. H. Chen, J. L. Li, X. Chen, X. L. Kang and C. L. Yuan, “Sintering temperature dependence of varistor properties and impedance spectroscopy behavior in ZnO based varistor ceramics”, J. Mater. Sci. Mater. Electron., 26, 2389-2396 (2015).10.1007/s10854-015-2696-xSearch in Google Scholar

[2] C. A. Christodoulou, M. V. Avgerinos, L. Ekonomou, I. F. Gonos and I. A. Stathopulos, “Measurement of the resistive leakage current in surge arresters under artificial rain test and impulse voltage subjection”, IET Sci. Meas. Technol., 3, 256-262 (2009).10.1049/iet-smt:20080123Search in Google Scholar

[3] C. Zhang, D. Zhou, W. Lu and Y. Hu, “Microstructure and properties of low-voltage ZnO varistor ceramics”, J. Mater. Sci. Mater. Electron., 12, 357-360 (2001).Search in Google Scholar

[4] IEC 61643-331, Components for low-voltage surge protective devices - Part 331: Specification for metal oxide varistors (MOV), 1st edn.(IEC, Geneva, 2003), pp.17-25.Search in Google Scholar

[5] G. M. Wang, S. J. Kim, S. J. Park, G. S. Kil and H. K. Ji, “Optimal design of a follow current disconnector for DC arresters in traction vehicles”, Trans. Electr. Electron. Mater., 17, 289-292 (2016).10.4313/TEEM.2016.17.5.289Search in Google Scholar

[6] R. B. Standler, Protection of electronic circuits from overvoltages, 1st end. (John Wiley & Sons, New York, 1989), pp.133-145.Search in Google Scholar

[7] E Limited HEMP Filter Maintenance and Monitoring, https://www.mpe.co.uk, Accessed 4 December 2012.Search in Google Scholar

[8] J. Lundquist, L. Stenstrom, A. Schei and B. Hansen, “New method for measurement of the resistive leakage currents of metal-oxide surge arresters in service”, IEEE Trans. Power Del., 5, 1811-1822, (1990).10.1109/61.103677Search in Google Scholar

[9] A. Haddad, J. Fuentes-Rosado, D. M. German and R. T. Waters, “Characterisation of ZnO surge arrester elements with direct and power frequency voltage”, IEE Proc. A. Phys. Sci. Meas. Instrum. Manage. Educ., 137, 269-279 (1990).10.1049/ip-a-2.1990.0043Search in Google Scholar

[10] B. H. Lee and S. M. Kang, “A new on line leakage current monitoring system of Zno surge arresters”, Mater. Sci. Eng., B.119, 13-18 (2005).10.1016/j.mseb.2004.12.053Search in Google Scholar

[11] S. Shirakawa, F. Endo, H. Kitajima, S. Kobayashi, K. Kurita, K. Goto and M. Sakai, “Maintenance of surge arrester by a portable arrester leakage current detector”, IEEE Trans. Power Del., 3, 998-1003 (1998).10.1109/61.193879Search in Google Scholar

[12] P. Papliñski and J. Wañkowicz, “Application of leakage current parameter for technical diagnosis of surge arresters”, IEEE Trans. Dielect. Electr. Insul., 23, 3458-3465 (2016).10.1109/TDEI.2016.005873Search in Google Scholar

[13] M. Khodsuz and M. Mirzaie, “Harmonics ratios of resistive leakage current as metal oxide surge arresters diagnostic tools”, Meas., 70, 148-155 (2015).10.1016/j.measurement.2015.03.048Search in Google Scholar

[14] Z. Abdul-Malek, Novizon and Aulia, “A new method to extract the resistive component of the metal oxide surge arrester leakage current”, IEEE International Conference on Power and Energy, 399-402 (2008).10.1109/PECON.2008.4762507Search in Google Scholar

[15] L. T. Coffeen and J. E. McBride, “High voltage ac resistive current measurements using a computer based digital watts technique”, IEEE Trans. Power Del., 6, 550-556 (1991).10.1109/61.131111Search in Google Scholar

[16] C. Heinrich and V. Hinrichsen, “Diagnostics and monitoring of metal-oxide surge arresters in high-voltage networks-comparison of existing and newly developed procedures”, IEEE Trans. Power Del., 16, 138-143 (2001).10.1109/61.905619Search in Google Scholar

[17] K. L. Wong, “Electromagnetic emission based monitoring technique for polymer ZnO surge arresters”, IEEE Trans. Dielect. Electr. Insul., 13, 181-190 (2006).10.1109/TDEI.2006.1593416Search in Google Scholar

[18] IEC 60099-4 and Surge arresters - Part 4:, “M”, al-oxide surge arresters without gaps for a.c. systems, 3rd edn.(IEC, Geneva, 2014), pp.29-55.Search in Google Scholar

eISSN:
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6 volte all'anno
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Engineering, Introductions and Overviews, other