Features of Seismological Observations in the Arctic Seas

Author:

Krylov Artem A.123,Novikov Mikhail A.1ORCID,Kovachev Sergey A.1,Roginskiy Konstantin A.1,Ilinsky Dmitry A.1,Ganzha Oleg Yu.1,Ivanov Vladimir N.1,Timashkevich Georgy K.1,Samylina Olga S.4ORCID,Lobkovsky Leopold I.123,Semiletov Igor P.23

Affiliation:

1. Shirshov Institute of Oceanology, Russian Academy of Sciences, Nakhimovskiy Prospekt 36, 117997 Moscow, Russia

2. V.I. Il’ichev Pacific Oceanological Institute, Far Eastern Branch of the Russian Academy of Sciences, Baltijskaya St. 43, 690041 Vladivostok, Russia

3. Tomsk State University, Lenina Prospekt 36, 634050 Tomsk, Russia

4. Winogradsky Institute of Microbiology, Research Center of Biotechnology, Russian Academy of Sciences, Prospect 60-Letiya Oktyabrya 7/2, 117312 Moscow, Russia

Abstract

This paper is devoted to the features of seismological observations in the Arctic seas, which are complicated by harsh climatic conditions, the presence of ice cover, stamukhi and icebergs, and limited navigation. Despite the high risk of losing expensive equipment, the deployment of local networks of bottom seismographs or stations installed on ice is still necessary for studying the seismotectonic characteristics and geodynamic processes of the region under consideration, the deep structure of the crust and upper mantle, seismic hazards, and other marine geohazards. Various types of seismic stations used for long-term and short-term deployments in the Russian sector of the Arctic Ocean, as well as various schemes and workflows for their deployment/recovery, are described. The characteristics of seafloor seismic noise and their features are also considered. The results of deployments demonstrate that the characteristics of the stations make it possible to reliably record earthquake signals and seismic noise. Based on the experience gained, it was concluded that the preferred schemes for deploying ocean-bottom seismographs are those in which their subsequent recovery does not depend on their power resources. Usually, such schemes allow for the possibility of dismantling stations via trawling and are suitable for the shelf depths of the sea. The advantages of such schemes include the possibility of installing additional hydrophysical and hydrobiological equipment. When using pop-up ocean-bottom seismographs, special attention should be paid to the careful planning of the recovery because its success depends on the possibility of a passage to the deployment site, which is not always possible due to changing meteorological and ice conditions. Seismic records obtained on the seafloor are characterized by a high noise level, especially during periods of time when there is no ice cover. Therefore, it is recommended to install bottom stations for periods of time when ice cover is present. The frequency range of the prevailing noise significantly overlaps with the frequency range of earthquake signals that must be taken into account when processing bottom seismic records.

Funder

Russian Science Foundation

Ministry of Science and High Education of the Russian Federation

Russian State Assignment

Publisher

MDPI AG

Subject

Ocean Engineering,Water Science and Technology,Civil and Structural Engineering

Reference53 articles.

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2. Aderhold, K., Woodward, R., and Frassetto, A. (2019). Ocean Bottom Seismograph Instrument Pool, National Science Foundation. Final Report.

3. SAGE (2023, October 01). Seismological Facility for the Advancement of Geoscience. Available online: http://ds.iris.edu/mda/_OBSIP/.

4. Water input into the Mariana subduction zone estimated from ocean-bottom seismic data;Cai;Nature,2018

5. Surface wave tomography for the Pacific Ocean incorporating seafloor seismic observations and plate thermal evolution;Isse;Earth Planet. Sci. Lett.,2019

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