The deep structure of the Olyutorskii earthquake rupture zone in the Koryak Upland: Geophysical evidence

This paper considers the data of magnetotelluric sounding (MTS) and gravity and magnetic surveys, as well as other geological information. We describe the methods that were used in making the observations and for interpretation of MTS data. We focus on incorporating the influence of the shift effect...

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Published inJournal of volcanology and seismology Vol. 9; no. 3; pp. 197 - 209
Main Authors Moroz, Yu. F., Moroz, T. A., Loginov, V. A.
Format Journal Article
LanguageEnglish
Published Moscow Pleiades Publishing 01.05.2015
Springer Nature B.V
Subjects
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ISSN0742-0463
1819-7108
DOI10.1134/S0742046315030033

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Abstract This paper considers the data of magnetotelluric sounding (MTS) and gravity and magnetic surveys, as well as other geological information. We describe the methods that were used in making the observations and for interpretation of MTS data. We focus on incorporating the influence of the shift effect and the coast effect. Generalized geoelectric sections are based on mean longitudinal curves, which are less subject to distortion. Transverse curves were used for fault identification. The geoelectric sections include a sedimentary-volcanogenic layer, a high ohmic crust, and a conductive lithosphere layer. They contain faults that were detected from the divergences between oriented MTS curves and other data. The deep-seated faults in the Vyvenka basin have surface expression in the form of seismotectonic discontinuities that extend for 80 and 140 km. It was found that the hypocenters of the Olyutorskii earthquake and its aftershocks were in the crustal layer above the conductive lithosphere layer. Most aftershock hypocenters are typically situated in the area of the deep fault. We discuss a possible origin of the conductive lithosphere layer and of deep faults.
AbstractList This paper considers the data of magnetotelluric sounding (MTS) and gravity and magnetic surveys, as well as other geological information. We describe the methods that were used in making the observations and for interpretation of MTS data. We focus on incorporating the influence of the shift effect and the coast effect. Generalized geoelectric sections are based on mean longitudinal curves, which are less subject to distortion. Transverse curves were used for fault identification. The geoelectric sections include a sedimentary-volcanogenic layer, a high ohmic crust, and a conductive lithosphere layer. They contain faults that were detected from the divergences between oriented MTS curves and other data. The deep-seated faults in the Vyvenka basin have surface expression in the form of seismotectonic discontinuities that extend for 80 and 140 km. It was found that the hypocenters of the Olyutorskii earthquake and its aftershocks were in the crustal layer above the conductive lithosphere layer. Most aftershock hypocenters are typically situated in the area of the deep fault. We discuss a possible origin of the conductive lithosphere layer and of deep faults.
Author Moroz, Yu. F.
Moroz, T. A.
Loginov, V. A.
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Issue 3
Keywords Geoelectric Section
Olyutorskii Earthquake
Deep Fault
Anomalous Magnetic Field
Coast Effect
Language English
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SubjectTerms Earth and Environmental Science
Earth Sciences
Earthquakes
Fault lines
Geochemistry
Geology
Geophysics
Geophysics/Geodesy
Lithosphere
Magnetic fields
Seismic activity
Volcanoes
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Title The deep structure of the Olyutorskii earthquake rupture zone in the Koryak Upland: Geophysical evidence
URI https://link.springer.com/article/10.1134/S0742046315030033
https://www.proquest.com/docview/1695968735
https://www.proquest.com/docview/1765968570
Volume 9
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