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Short-term earthquake prediction in Kamchatka using low-frequency magnetic fields

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Abstract

This paper is devoted to a method of short-term earthquake (EQ) prediction in Kamchatka, Russia. Properties of low-frequency magnetic fields are the basics of the method, and we used two seismo-electromagnetic phenomena in the EQ prediction: 1. seismo-ionospheric depression in the frequency range of 0.01–0.1 Hz (ULF depression), 2. seismo-atmospheric radiation in the frequency range of 1–30 Hz (ULF/ELF radiation). It is now generally accepted that gas eruption before an EQ causes these ULF/ELF phenomena. We propose a hypothesis that gas emanates from the area in the bottom of Kuril–Kamchatka or Aleutian trenches closest to the epicenter of a forthcoming EQ. The three parameters of an EQ are (i) when (time), (ii) where (position) a next EQ is coming with (iii) how big (magnitude) in the short-term EQ prediction. Position of the source of atmospheric radiation gives an estimate of the epicenter location. Then, we estimate the local magnitude in consequence of its statistical dependence on ULF depression and epicenter distance. Date of a coming EQ is determined by the statistical dependence of delays of EQs relative to the dates of their precursors. The result of application of this method to real magnetic field data is illustrated by official prediction processes during a period of March–May 2016. Limits and possible errors of the method as well as methods to enhance the reliability of the prediction are discussed.

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References

  • Fowler RA, Kotick BJ, Elliot RD (1967) Polarization analysis of natural and artificially induced geomagnetic micropulsations. J Geophys Res 72:2871–2875

    Article  Google Scholar 

  • Fraser-Smith AC, Bernardi A, McGill PR, Ladd ME, Helliwell RA, Villard OG (1990) Low-frequency magnetic field measurements near the epicenter of the Ms = 7.1 Loma Prieta earthquake. Geophys Res Lett 17:1465–1468

    Article  Google Scholar 

  • Geller RJ, Jackson DD, Kagan YY, Mulargia F (1997) Earthquakes cannot be predicted. Science 275(5306):1616. https://doi.org/10.1126/science.275.5306.1616

    Article  Google Scholar 

  • Gufeld IL, Matveeva MI, Novoselov ON (2011) Why we cannot predict strong earthquakes in the Earth’s crust. Geodyn Tectonophys 2(4):378–415. https://doi.org/10.5800/GT2011240051

    Article  Google Scholar 

  • Hattori K (2013) ULF geomagnetic changes associated with major earthquakes. In: Hayakawa M (ed) Earthquake prediction studies: seismo electromagnetics. TERRAPUB, Tokyo, pp 129–152

    Google Scholar 

  • Hayakawa M (2011) Probing the lower ionospheric perturbations associated with earthquakes by means of subionospheric VLF/LF propagation. Earthq Sci 24(6):609–637

    Article  Google Scholar 

  • Hayakawa M (2015) Earthquake prediction with radio techniques. Wiley, Singapore, p 294p

    Book  Google Scholar 

  • Hayakawa M, Kawate R, Molchanov OA, Yumoto K (1996) Results of ultra-low-frequency magnetic field measurements during the Guam earthquake of 8 August 1993. Geophys Res Lett 23:241–244

    Article  Google Scholar 

  • Hayakawa M, Kasahara Y, Nakamura T, Muto F, Horie T, Maekawa S, Hobara Y, Rozhnoi AA, Solovieva M, Molchanov OA (2010) A statistical study on the correlation between lower ionospheric perturbations as seen by subionospheric VLF/LF propagation and earthquakes. J Geophys Res 115:A09305. https://doi.org/10.1029/2009JA015143

    Article  Google Scholar 

  • Kopytenko YA, Matiashivily TG, Voronov PM, Kopytenko EA, Molchanov OA (1990) Discovery of ULF emission connected with the Spitak earthquake and its aftershock activity on data of geomagnetic pulsations observed at Dusheti and Vardiziya, IZMIRAN Preprint N3(888), p 27, Moscow (in Russian)

  • Kopytenko YA, Ismaguilov VS, Hattori K, Hayakawa M (2006) Determination of hearth position of a forthcoming strong EQ using gradients and phase velocities of ULF geomagnetic disturbances. Phys Chem Earth 31:292–298

    Article  Google Scholar 

  • Molchanov OA, Hayakawa M (2008) Seismo-electromagnetics and related phenomena. History and latest results. TERRAPUB, Tokyo

    Google Scholar 

  • Molchanov OA, Kopytenko YA, Kopytenko EA, Matiashivilli T, Fraser-Smith AC, Bernardi A (1992) Results of ULF magnetic field measurements near the epicenters of the Spitak (Ms = 6.9) and Loma Prieta (Ms = 7.1) earthquakes: comparative analysis. Geophys Res Lett 19:1495–1498

    Article  Google Scholar 

  • Pulinets SA, Ouzounov DP, Karelin AV, Davidenko DV (2015) Physical bases of the generation of shorttTerm earthquake precursors: a complex model of ionization-induced geophysical processes in the lithosphere–atmosphere–ionosphere–magnetosphere system. Geomagn Aeron 55(4):540–558. https://doi.org/10.1134/S0016793215040131

    Article  Google Scholar 

  • Pulinets S, Ouzounov D, Davydenko D, Petrukhin A (2016) Multiparameter monitoring of short-term earthquake precursors and its physical basis. In: Implementation in the Kamchatka region. E3S Web of Conferences 11, 00019. https://doi.org/10.1051/e3sconf/20161100019

  • Rozhnoi A, Solovieva M, Hayakawa M (2013) VLF/LF signals method for searching of electromagnetic earthquake precursors. In: Hayakawa M (ed) Earthquake prediction studies: seismo electromagnetics. TERRAPUB, Tokyo, pp 31–48

    Google Scholar 

  • Saltykov VA, Kugaenko YA, Sinitsyn VI et al (2008) Precursors of large Kamchatka earthquakes based on monitoring of seismic noise. J Volcanol Seismol 2:94. https://doi.org/10.1134/S0742046308020036

    Article  Google Scholar 

  • Schekotov A, Hayakawa M (2017) ULF/ELF electromagnetic phenomena for short-term earthquake prediction. LAP LAMBERT Academic Publishing, p 102, ISBN 978-3-330-06286-3

  • Schekotov A, Molchanov O et al (2006) Seismo-ionospheric depression of the ULF geomagnetic fluctuations at Kamchatka and Japan. Phys Chem Earth 31:313–318

    Article  Google Scholar 

  • Schekotov AY, Molchanov OA, Hayakawa M et al (2007) ULF/ELF magnetic field variations from atmosphere induced by seismicity. Radio Sci 42:RS6S90. https://doi.org/10.1029/2005rs003441

    Article  Google Scholar 

  • Schekotov AY, Molchanov OA, Hayakawa M et al (2008) About possibility to locate an EQ epicenter using parameters of ELF/ULF preseismic emission. Nat Hazards Earth Syst Sci 8:1237–1242

    Article  Google Scholar 

  • Schekotov A, Fedorov E, Molchanov O, Hayakawa M (2013) Low frequency electromagnetic precursors as a prospect for earthquake prediction. In: Hayakawa M (ed) Earthquake prediction studies: seismo-electromagnetics. TERRAPUB, Tokyo, pp 81–99

    Google Scholar 

  • Uyeda S et al (2002) Japanese–Russian complex geophysical observatory in Kamchatka region for monitoring of phenomena connected with seismic activity. In: Hayakawa M, Molchanov O (eds) Seismo-electromagnetics (Lithosphere–Atmosphere–Ionosphere coupling). TERRUPUB, Tokyo, pp 433–443

    Google Scholar 

  • Varotsos P, Alexopoulos K (1984) Physical properties of the variations of the electric field of the earth preceding earthquakes, I. Tectonophysics 110(1–2):73–98

    Article  Google Scholar 

  • Varotsos P, Lazaridou M (1991) Latest aspects of earthquake prediction in Greece based on seismic electric signals, I. Tectonophysics 188:321–347

    Article  Google Scholar 

  • Varotsos P, Alexopoulos K, Nomicos K, Lazaridou M (1986) Earthquake prediction and electric signals. Nature 322:120

    Article  Google Scholar 

  • Varotsos P, Alexopoulos P, Lazaridou M, Nagao M (1993) Earthquake predictions issued in Greece by seismic electric signals since February 6. 1990. Tectonophysics 224:269–288

    Article  Google Scholar 

  • Varotsos PV, Sarlis NV, Skordas ES (2003) Electric fields that “arrive” before the time-derivative of the magnetic field prior to major earthquakes. Phys Rev Lett 91:148501

    Article  Google Scholar 

Download references

Acknowledgements

We thank the whole staff of the Institute of Geophysical Survey RAS in Petropavlovsk-Kamchatsky for providing the data of magnetic fields and data of seismicity.

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Correspondence to A. Schekotov.

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Schekotov, A., Chebrov, D., Hayakawa, M. et al. Short-term earthquake prediction in Kamchatka using low-frequency magnetic fields. Nat Hazards 100, 735–755 (2020). https://doi.org/10.1007/s11069-019-03839-2

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