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The effect of the inclined lightning channel on electromagnetic fields and the induced voltages on overhead lines

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Abstract

In this study, the effect of lightning channel inclination on above-ground lightning electromagnetic (LEM) fields and their induced voltages on the overhead lines at different distances from stroke location (SL) in the presence of lossy soil ground is investigated. To this end, the finite element method is used to solve the full-wave Maxwell’s equations. The results show that channel inclinations affect LEM fields significantly at all distances from the SL. At an equal distance from SL, the observation point position relative to the lightning channel is important, and LEM fields of the points located on the horizontal axis of the lightning channel are affected more than other points. If the ground is more conductive, increasing channel inclination affects the radial component of the electric field at a close distance to the SL more; if the ground is more resistive, increasing channel inclination angle affects the radial component of the electric field at a far distance to SL more significantly. The vertical electric fields and azimuthal magnetic fields are slightly affected by ground conductivity but significantly affected by the position and channel inclination angle. Seven different states are considered for the channel position relative to the overhead line, and the lightning-induced voltage along the line is calculated at three points. The obtained results show that position and soil electrical parameters significantly affect the peak and wave shape of the induced voltage. If the lightning channel passes above the overhead line, the induced voltage peak will increase at points near the SL. If the horizontal axis of the lightning channel is parallel to the overhead line, the induced voltage peak will increase for the ground with lower conductivity by increasing the channel inclination angle. In this case, at distances farther from the SL, the effect of increasing the channel angle is negligible for high-conductivity grounds, but the induced voltage peak for less conductive grounds will increase. If the lightning channel's horizontal axis is perpendicular to the overhead line and the lightning channel does not pass above the overhead line, close to the SL, the induced voltage peak will decrease by increasing channel angle. At points far from the SL, increasing the channel angle in the low-conductivity ground will increase the voltage peak, and grounds with larger conductivity will decrease the voltage peak.

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References

  1. Wait JR (1953) Propagation of radio waves over a stratified ground. Geophysics 18(2):416–422

    Article  Google Scholar 

  2. Paknahad J, Sheshyekani K, Rachidi F, Paolone M (2014) Lightning electromagnetic fields and their induced currents on buried cables. Part II: the effect of a horizontally stratified ground. IEEE Trans Electromagn Compat 56(5):1146–1154

    Article  Google Scholar 

  3. Rizk MEM, Mahmood F, Lehtonen M, Badran EA, Abdel-Rahman MH (2016) Induced voltages on overhead line by return strokes to grounded wind tower considering horizontally stratified ground. IEEE Trans Electromagn Compat 58(6):1728–1738

    Article  Google Scholar 

  4. Cooray V, Cummins KL (2008) Propagation effects caused by stratified ground of electromagnetic fields of return strokes. In: 20th Int. Lightning Detection Conf. 2nd Int. Lightning Meteorology Conf., Tucson, AZ, USA

  5. Shoory A, Mimouni A, Rachidi F, Cooray V, Moini R, Sadeghi SH (2010) Validity of simplified approaches for the evaluation of lightning electromagnetic fields above a horizontally stratified ground. IEEE Trans Electromagn Compat 52(3):657–663

    Article  Google Scholar 

  6. Delfino F, Procopio R, Rossi M, Shoory A, Rachidi F (2011) Lightning electromagnetic radiation over a stratified conducting ground: formulation and numerical evaluation of the electromagnetic fields. J Geophys Res Atmos. https://doi.org/10.1029/2010JD015077

    Article  Google Scholar 

  7. Paknahad J, Sheshyekani K, Hamzeh M, Li D, Rachidi F (2015) The influence of the slope angle of the ocean–Land mixed propagation path on the lightning electromagnetic fields. IEEE Trans Electromagn Compat 57(5):1086–1095

    Article  Google Scholar 

  8. Sheshyekani K, Paknahad J (2015) The effect of an ocean-land mixed propagation path on the lightning electromagnetic fields and their induced voltages on overhead lines. IEEE Trans Power Deliv 30(1):229–236

    Article  Google Scholar 

  9. Akbari M, Sheshyekani K, Alemi MR (2013) The effect of frequency dependence of soil electrical parameters on the lightning performance of grounding systems. IEEE Trans Electromagn Compat 55(4):739–746

    Article  Google Scholar 

  10. Delfino F, Procopio R, Rossi M, Rachidi F (2009) Influence of frequency-dependent soil electrical parameters on the evaluation of lightning electromagnetic fields in air and underground. J Geophys Res Atmos. https://doi.org/10.1029/2008JD011127

    Article  Google Scholar 

  11. Le Vine DM, Meneghini R (1978) Electromagnetic fields radiated from a lightning return stroke: application of an exact solution to Maxwell’s equations. J Geophys Res Ocean 83(C5):2377–2384

    Article  Google Scholar 

  12. Michishita K, Ishii M, Hongo Y (1996) Induced voltage on an overhead wire associated with inclined return-stroke channel-model experiment on finitely conductive ground. IEEE Trans Electromagn Compat 38(3):507–513

    Article  Google Scholar 

  13. LeVine DM, Meneghini R (1978) Simulation of radiation from lightning return strokes: the effects of tortuosity. Radio Sci 13(5):801–809

    Article  Google Scholar 

  14. Zhang J et al (2018) Evaluation of the lightning-induced voltages of multiconductor lines for striking cone-shaped mountain. IEEE Trans Electromagn Compat 61(5):1534–1542

    Article  Google Scholar 

  15. Kordi B, Moini R, Rachidi F (2001) Modeling an inclined lightning return stroke channel using the Antenna Theory model. In: 14th International Zurich Symposium on Electromagnetic Compatibility, no. CONF.

  16. Shostak V, Janischcwskyj W, Hussein AM, Rachidi F, Bermudez JL, Kordi B (2003) Electromagnetic field associated with lightning return strokes to a tall structure: influence of channel geometry. In: 2003 IEEE Bologna Power Tech Conference Proceedings, 3: 6

  17. Vechi G, Labate D, Canavero F (1995) A fractal model of the fine structure of lightning radiation. In: Proc. 1995 Lnt’l Aerospace and Ground Conference on Lightning and Static Electricity, pp. 161–1610.

  18. Sakakibara A (1989) Calculation of induced voltages on overhead lines caused by inclined lightning studies. IEEE Trans power Deliv 4(1):683–693

    Article  Google Scholar 

  19. Wu S-C, Hsiao W-T (1994) Characterization of induced voltages on overhead power lines caused by lightning strokes with arbitrary configurations. Proc IEEE Int Conf Syst Man Cybern 3:2706–2710

    Article  Google Scholar 

  20. Sekioka S, Nagai T, Sonoi Y, Matsubara I (1994) A computation method of voltages across insulator strings considering the effect of lightning strokes. IEEJ Trans Power Energy 114(4):373–380

    Article  Google Scholar 

  21. Agrawal AK, Price HJ, Gurbaxani SH (1980) Transient response of multiconductor transmission lines excited by a nonuniform electromagnetic field. IEEE Trans Electromagn Compat 2:119–129

    Article  Google Scholar 

  22. Moini R, Sadeghi SHH, Kordi B, Rachidi F (2006) An antenna-theory approach for modeling inclined lightning return stroke channels. Electr power Syst Res 76(11):945–952

    Article  Google Scholar 

  23. Matsubara I, Sekioka S (2009) Analytical formulas for induced surges on a long overhead line caused by lightning with an arbitrary channel inclination. IEEE Trans Electromagn Compat 51(3):733–740

    Article  Google Scholar 

  24. Akbari M et al (2013) Evaluation of lightning electromagnetic fields and their induced voltages on overhead lines considering the frequency dependence of soil electrical parameters. IEEE Trans Electromagn Compat 55(6):1210–1219

    Article  Google Scholar 

  25. Napolitano F, Borghetti A, Nucci CA, Rachidi F, Paolone M (2013) Use of the full-wave finite element method for the numerical electromagnetic analysis of LEMP and its coupling to overhead lines. Electr Power Syst Res 94:24–29

    Article  Google Scholar 

  26. COMSOL AB (2016) RF Modules user’s guide. COMSOL Multiphysics™ v. 5.2." COMSOL AB, Stockholm, Sweden. https://doc.comsol.com/5.6/docserver/#!/com.comsol.help.rf/html_RFModuleManual.html

  27. A Borghetti, F Napolitano, CA Nucci, M Paolone (2011) Calculation of lightning-induced voltages on an overhead line taking into account the presence of nearby buildings. In: Lightning (APL), 2011 7th Asia-Pacific International Conference on, pp. 833–839.

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Correspondence to Behrooz Vahidi.

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Nematollahi, A.F., Vahidi, B. The effect of the inclined lightning channel on electromagnetic fields and the induced voltages on overhead lines. Electr Eng 103, 3163–3176 (2021). https://doi.org/10.1007/s00202-021-01304-7

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