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MODEL OF TECTONIC EARTHQUAKE PREPARATION AND OCCURRENCE AND ITS PRECURSORS IN CONDITIONS OF CRUSTAL STRETCHING

https://doi.org/10.5800/GT-2018-9-1-0343

Abstract

In connection with changes in the stress-strain state of the Earth's crust, various physical and mechanical processes, including destruction, take place in the rocks and are accompanied by tectonic earthquakes. Different models have been proposed to describe earthquake preparation and occurrence, depending on the mechanisms and the rates of geodynamic processes. One of the models considers crustal stretching that is characteristic of formation of rift structures. The model uses the data on rock samples that are stretched until destruction in a special laboratory installation. Based on the laboratory modeling, it is established that the samples are destroyed in stages that are interpreted as stages of preparation and occurrence of an earthquake source. The preparation stage of underground tremors is generally manifested by a variety of temporal (long-, medium- and short-term) precursors. The main shortcoming of micro-modeling is that, considering small sizes of the investigated samples, it is impossible to reveal a link between the plastic extension of rocks (taking place in the earthquake hypocenter) and the rock rupture. Plasticity is the ability of certain rocks to change shape and size irreversibly, while the rock continuity is maintained, in response to applied external forces. In order to take into account the effect of plastic deformation of rocks on earthquake preparation and occurrence, we propose not to refer to the diagrams showing stretching of the rock samples, but use a typical diagram of metal stretching, which can be obtained when testing a metal rod for breakage (Fig. 1). The diagram of metal stretching as a function of the relative elongation (to some degree of approximation and taking into account the coefficient of plasticity) can be considered as a model of preparation and occurrence of an earthquake source in case of rifting. The energy released in the period immediately preceding the earthquake contributes to the emergence of its precursors. This article discusses various earthquake precursors with reference to the energy model of tectonic earthquake preparation and occurrence in conditions of crustal stretching.

About the Authors

R. M. Semenov
Institute of the Earth’s Crust, Siberian Branch of RAS; Irkutsk State Transport University.
Russian Federation

Rudolf M. Semenov, Doctor of Geology and Mineralogy, Professor, Lead Researcher.

Irkutsk.


V. V. Kashkovsky
Irkutsk State Transport University.
Russian Federation

Victor V. Kashkovsky, Doctor of Technical Sciences, Professor, Senior Researcher.

Irkutsk.



M. N. Lopatin
Irkutsk State University.
Russian Federation

Maxim N. Lopatin, Lecturer Irkutsk State University.

Irkutsk.


References

1. Sykes L.K., Aggarwal Y.P., 1973. Earthquake prediction: a physical basis. Science 181 (4102), 803–810. https://doi.org/10.1126/science.181.4102.803.

2. Semenov R.M., 2010. Earthquake of 27 August 2008 in the Southern Baikal area and its precursors. Geodynamics & Tectonophysics 1 (4), 441–447 (in Russian) [Семенов Р.М. Землетрясение 27.08.2008 года на юге Байкала и его предвестники // Геодинамика и тектонофизика. 2010. Т. 1. № 4. С. 441–447]. https://doi.org/10.5800/GT-2010-1-4-0028.

3. Semenov R.M., Imaev V.S., Semenov A.R., Orgilyanov A.I., Smekalin O.P., Shirobokova N.P., 2014. The Method for Short-Term Forecasting of Earthquakes. Invention Patent RU 2 519 050 С2. Federal Service for Intellectual Property. Published on 10.06.2014. Bulletin No. 16 (in Russian) [Семенов Р.М., Имаев В.С., Семенов А.Р., Оргильянов А.И., Смекалин О.П., Широбокова Н.П. Способ краткосрочного прогноза землетрясений. Патент на изобретение RU 2 519 050 С2. Федеральная служба по интеллектуальной собственности. Опубликовано 10.06.2014. Бюл. № 16].

4. Semenov R.M., Kashkovsky V.V., Lopatin M.N., 2016. The Method for Hydrogeochemical Determination of Earthquake Occurrence Times in Southern Pribaikalie. Invention Patent RU No. 2 601 403 C2. Federal Service for Intellectual Property. Published on 10.11.2016. Bulletin No. 31 (in Russian) [Семенов Р.М., Кашковский В.В., Лопатин М.Н. Способ гидрогеохимического определения времени возникновения землетрясений в Южном Прибайкалье. Патент на изобретение RU № 2 601 403 C2. Федеральная служба по интеллектуальной собственности. Опубликовано 10.11.2016. Бюл. № 31].

5. Semenov R.M., Smekalin O.P., 2011. The large earthquake of 27 August 2008 in Lake Baikal and its precursors. Russian Geology and Geophysics 52 (4), 405–410. https://doi.org/10.1016/j.rgg.2011.03.003.

6. Shreiner L.A., Petrova O.P., Yakushev V.P., Portnova A.T., Sadilenko K.M., Klochko N.A., Pavlova N.N., Balandin P.S., Spivak A.I., 1958. Mechanical and Abrasive Properties of Rocks. Gostoptekhizdat, Moscow, 201 p. (in Russian) [Шрейнер Л.А., Петрова О.П., Якушев В.П., Портнова А.Т., Садиленко К.М., Клочко Н.А., Павлова Н.Н., Баландин П.С., Спивак А.И. Механические и абразивные свойства горных пород. М.: Гостоптехиздат, 1958. 201 с.].

7. Sobolev G.A., 1993. Fundamentals of Earthquake Prediction. Nauka, Moscow, 313 p. (in Russian) [Соболев Г.А. Основы прогноза землетрясений. М.: Наука, 1993. 313 с.].

8. Sobolev G.A., Kol’tsov A.V., 1988. Large-Scale Modeling of Earthquake Preparation and Precursors. Nauka, Moscow, 203 p. (in Russian) [Соболев Г.А., Кольцов А.В. Крупномасштабное моделирование подготовки и предвестников землетрясений. М.: Наука, 1988. 203 с.].

9. Ulomov V.I., Mavashev B.Z., 1967. About a precursor of a strong tectonic earthquake. Doklady AN SSSR 176 (2), 319–321 (in Russian) [Уломов В.И., Мавашев Б.З. О предвестнике сильного тектонического землетрясения // Доклады АН СССР. 1967. Т. 176. № 2. С. 319–321].

10. Vartanyan G.S., 2000. Fluids, Geodynamic Filtration, and Formation of Fracture Permeability in the Course of Sediment Subsidence. Geology, Exploration, and Appraisal of Fuel Deposits. Issue 6. Geoinformmark, Moscow, 33 p. (in Russian) [Вартанян Г.С. Флюидосфера, геодинамическая фильтрация и формирование трещинной проницаемости в ходе погружения осадочных толщ. Геология, методы поисков, разведки и оценки месторождений топливно-энергетического сырья. № 6. М.: Геоинформмарк, 2000. 33 с.].

11. Vinogradov S.D., 1989. Acoustic Method in Studies in Earthquake Physics. Nauka, Moscow, 177 p. (in Russian) [Виноградов С.Д. Акустический метод в исследованиях в физике землетрясений. М.: Наука, 1989. 177 с.].

12. Zaslavsky B.V., 1986. Short Course of Resistance of Materials. Mashinostroenie, Moscow, 328 p. (in Russian) [Заславский Б.В. Краткий курс сопротивления материалов. М.: Машиностроение, 1986. 328 с.].


Review

For citations:


Semenov R.M., Kashkovsky V.V., Lopatin M.N. MODEL OF TECTONIC EARTHQUAKE PREPARATION AND OCCURRENCE AND ITS PRECURSORS IN CONDITIONS OF CRUSTAL STRETCHING. Geodynamics & Tectonophysics. 2018;9(1):165-175. (In Russ.) https://doi.org/10.5800/GT-2018-9-1-0343

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