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conference paper

Interaction between grounding systems and nearby lightning for the calculation of overvoltages in overhead distribution lines

Napolitano, F.
•
Paolone, M.  
•
Borghetti, A.
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2011
2011 IEEE PES Trondheim PowerTech: The Power of Technology for a Sustainable Society, POWERTECH 2011

The aim of the paper is to analyze overvoltages in overhead distribution lines induced by nearby lightning return stroke currents taking into account also the conductive coupling between the lightning current injected into the soil and the line's grounding system. Experimental results obtained in 2003 at the International Center for Lightning Research and Testing (ICLRT) in Florida have shown that significant currents were coupled with an overhead experimental line through its grounding system by nearby rocket-triggered lightning. The paper first proposes a conductive coupling model between the lightning current injected into the soil and the nearby line grounding system, then presents the incorporation of such a model into the LIOV-EMTP computer code. The paper finally presents an experimental validation of the proposed models by making reference to results obtained during the above-mentioned triggered-lightning campaign. © 2011 IEEE.

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Type
conference paper
DOI
10.1109/PTC.2011.6019438
Scopus ID

2-s2.0-80053381766

Author(s)
Napolitano, F.
•
Paolone, M.  
•
Borghetti, A.
•
Nucci, C. A.
•
Rachidi, F.
•
Rakov, V. A.
•
Schoene, J.
•
Uman, M. A.
Date Issued

2011

Published in
2011 IEEE PES Trondheim PowerTech: The Power of Technology for a Sustainable Society, POWERTECH 2011
Series title/Series vol.

2011 IEEE PES Trondheim PowerTech: The Power of Technology for a Sustainable Society, POWERTECH 2011

Subjects

grounding systems

•

lightning induced overvoltages

•

lightning protection

•

overhead distribution lines

•

Computer codes

•

Conductive coupling

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Experimental validations

•

Florida

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International center for lightning research and testing

•

Lightning currents

•

Lightning return-stroke current

•

Over-voltages

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Overhead distribution line

•

Geologic models

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Surge protection

•

Sustainable development

•

Electric grounding

Note

Department of Electrical Engineering, University of Bologna, Bologna, Italy Swiss Federal Institute of Technology of Lausanne, Switzerland University of Florida, Gainesville, FL, United States EnerNex Corporation, Knoxville, TN 37922, United States

Conference code: 86744

Export Date: 25 April 2012

Source: Scopus

Art. No.: 6019438

doi: 10.1109/PTC.2011.6019438

Language of Original Document: English

Correspondence Address: Napolitano, F.; Department of Electrical Engineering, University of Bologna, Bologna, Italy; email: fabio.napolitano2@unibo.it

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Part I: Common Topics, , Joint Cigré-Cired WG C4.4.02, Cigré technical brochure, Nr. 287, February; Agrawal, A.K., Price, H.J., Gurbaxani, S.H., Transient response of a multiconductor transmission line excited by a nonuniform electromagnetic field (1980) IEEE Trans. on EMC, 22 (2), pp. 119-129. , May; Yokoyama, S., Yamamoto, K., Kinoshita, H., Analogue simulation of lightning induced voltages and its application for analysis of overhead-ground-wire effects (1985) IEE Proceedings C: Generation Transmission and Distribution, 132 (4), pp. 208-216; Yokoyama, S., DISTRIBUTION SURGE ARRESTER BEHAVIOR DUE TO LIGHTNING INDUCED VOLTAGES (1986) IEEE Transactions on Power Delivery, PWRD-1 (1), pp. 171-178; Short, T.A., Ammon, R.H., Monitoring results of the effectiveness of surge arrester spacings on distribution line protection (1999) IEEE Trans. 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(ICLP), Rhodes, Greece, 2000, pp. 54-59; Borghetti, A., Gutierrez, J.A., Nucci, C.A., Paolone, M., Petrache, E., Rachidi, F., Lightning-induced voltages on complex distribution systems: Models, advanced software tools and experimental validation (2004) Journal of Electrostatics, 60 (2-4), pp. 163-174. , Elsevier; Napolitano, F., Borghetti, A., Nucci, C.A., Paolone, M., Rachidi, F., Mahseredjian, J., An Advanced Interface between the LIOV Code and the EMTP-RV Proc. 29 th Int. Conf. on Lightning Protection, Uppsala, Sweden, June 23-26, 2008; Shoory, A., Rachidi, F., Rubinstein, M., Thottappillil, R., On the Measurement and Calculation of Horizontal Electric Fields from Lightning (2011) IEEE Trans. EMC, , in press; Tagg, G.F., (1964) Earth Resistances, , GeorgeNewns, London; Sunde, E.D., (1968) Earth Conduction Effects in Transmission Systems, , New York, Dover Publications Inc; Rudenberg, R., (1968) Electrical Shock Waves in Power System, , Cambridge, MA: Harvard University Press; Bourg, S., Sacepe, B., Debu, T., Deep earth electrodes in highly resistive ground: Frequency behavior IEEE Int. Symp. Electromagnetic Compatibility, 1995, pp. 584-589; Grcev, L., Popov, M., On high-frequency circuit equivalents of a vertical ground rod (2005) IEEE Transactions on Power Delivery, 20 (2 II), pp. 1598-1603. , DOI 10.1109/TPWRD.2004.838460; Mata, C., (2003) Interaction of Lightning with Power Distribution Lines, , (Ph.D. Thesis), University of Florida, Gainesville, FL, USA; Nucci, C.A., Rachidi, F., Ianoz, M., Mazzetti, C., Lightning-induced voltages on overhead lines (1993) IEEE Trans. on EMC, 35 (1), pp. 75-86. , Feb; Rachidi, F., Nucci, C.A., Ianoz, M., Mazzetti, C., Influence of a lossy ground on lightning-induced voltages on overhead lines (1996) IEEE Transactions on Electromagnetic Compatibility, 38 (3), pp. 250-264. , PII S0018937596062953; Mahseredjian, J., Lefebvre, S., Do, X.-D., A new method for timedomain modelling of nonlinear circuits in large linear networks Proc. of the 11 th Power Systems Computation Conference (PSCC), Avignon, France, Aug. 1993; Mahseredjian, J., Dennetière, S., Dubé, L., Khodabakhchian, B., Gérin-Lajoie, L., On a new approach for the simulation of transients in power systems (2007) Electric Power Systems Research, 77 (11), pp. 1514-1520. , Sept; Mahseredjian, J., Simulation des Transitoires Électromagnétiques Dans Les Réseaux Électriques, , Édition 'Les Techniques de l'Ingénieur', Dossier n° D4130, Réseaux électriques et applications; Paolone, M., Rachidi, F., Borghetti, A., Nucci, C.A., Rubinstein, M., Rakov, V.A., Uman, M.A., Lightning electromagnetic field coupling to overhead lines: Theory, numerical simulations, and experimental validation (2009) IEEE Trans. EMC, 51 (3), pp. 532-547. , Aug; Paolone, M., Petrache, E., Rachidi, F., Nucci, C.A., Rakov, V., Uman, M., Jordan, D., Schoene, J., Lightning- Induced Disturbances in Buried Cables Part II: Experiment and Model Validation (2005) IEEE Tr. on EMC, 47 (3), pp. 509-520. , Aug; Heidler, F., Analytische blitzstromfunktion zur LEMP-berechnung Proc. 18 th Int. Conf. on Lightning Protection, Munich (ICLP), Germany, Sep. 1985, pp. 63-66

Sponsors: IEEE; IEEE Power and Energy Society (PES)

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May 1, 2012
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