Have a personal or library account? Click to login
Simulation of electrical system protection against the effects of a magnetic storm  Cover

Simulation of electrical system protection against the effects of a magnetic storm

By: Milan Stork and  Daniel Mayer  
Open Access
|Aug 2023

References

  1. R. R. Benestand, Solar activity and Earths climate, Berlin, Springer-Verlag,2003.
  2. E. Priest, Solar magnetohydrodynamics, Dordecht, D. Reidel Publia Co., 1984.
  3. E. N. Parker, Cosmical magnetic fields, Oxford, Clarendon Press, 1979.
  4. D. Mayer, “Contribution to investigation of influence of geomagnetic storms on electrification system”, Acta Technica, vol. 58, no. pp. 351-365, 2013.
  5. D. Mayer, M. Stork, “Indicator of the influence of a geomagnetic storm on the transmission system”, Journal of El. Eng., vol. 74, 2023, No. 1, pp. 32–39, 2023.
  6. G. A. Glatzmaier and P. H. Roberts, “An anelastic evolutionary geodynamo simulation driven by compositional and thermal convection”, Physica D, 97, pp. 81-94, 1996.
  7. G. A. Glatzmaier and P. H. Roberts, “Rotation and magnetism of Earth’s inner core”, Science, 274, pp. 1887-1891, 1996.
  8. U. R. Christensen, “Geodynamo models: Tools for understanding properties of Earth’s magnetic field”, Elsevier, Physics of the Earth and Planetary Interiors 187, pp.157–169, 2011.
  9. R. Price, “Geomagnetically induced currents effects on transformers”, IEEE Transactions on Power Delivery, vol. 17, no. 4, pp. 1002-1008, October 2003.
  10. M. Stork, Mayer D.: Direct currents in power transformers. Journal of El. Eng., Vol. 17, No. 1, pp. 68-72, 2019.
  11. D. Mayer, “Protection of power transformers against the effect of magnetic storms”, Journal of El. Eng., vol. 72, no. 4, pp. 249-255, 2021.
  12. L. J. Lanzerotti, “Space weather effects on technologies”, Song P. et al (eds.): Space Wheater, American Geophysical Union, Geophys, Monograph. 125, pp. 11-25, 2001.
  13. K. Zheng, et al., “Effects on system characteristics on geomagnetically induced currents”, IEEE Trans. Power Delivery, 29 (2), pp.890-898, 2014.
  14. D. Boteler, “Methodology for simulation of geomagnetically induced currents in power systems”, J. Space Weather Clim. 4, A21, 2014.
  15. R. Pirjola, “Practical model applicable to investigating the coast effect on the geoelectric field in connection with studies of geomagnetically induced currents”, Adv. Appl. Phys., 1, pp. 9-28, 2013.
  16. “GIC module to analyze geomagnetic disturbances on the grid”, [online] https://assets.new.siemens.com/siemens/assets/api/uuid:86db972f70ef70b87fc5b96ffab1b31c04175b31/psse-gic-module-flyer.pdf.
  17. A. Pulkkinen et al. “Geomagnetically induced currents: Science, engineering, and applications readiness”, Space Weather, 15, pp. 828–856, 2017. doi:10.1002/2016SW001501.
  18. M. Svanda, D. Mourenas, K. Zertova, T. Vybostokova, “Immediate and delayed responses of power lines and transformers in the Czech electric power grid to geomagnetic storms”, Journal of Space Weather and Space Climate 10, 26, 2020.
DOI: https://doi.org/10.2478/jee-2023-0039 | Journal eISSN: 1339-309X | Journal ISSN: 1335-3632
Language: English
Page range: 321 - 327
Submitted on: Jul 3, 2023
|
Published on: Aug 29, 2023
In partnership with: Paradigm Publishing Services
Publication frequency: 6 issues per year

© 2023 Milan Stork, Daniel Mayer, published by Slovak University of Technology in Bratislava
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.