Инд. авторы: Beisel S.A., Gusiakov V., Chubarov L.B., Shokin Yu.I.
Заглавие: Numerical simulation of the action of distant tsunamis on the Russian Far East coast
Библ. ссылка: Beisel S.A., Gusiakov V., Chubarov L.B., Shokin Yu.I. Numerical simulation of the action of distant tsunamis on the Russian Far East coast // Izvestiya. Atmospheric and Oceanic Physics. - 2014. - Vol.50. - Iss. 5. - P.508-519. - ISSN 0001-4338. - EISSN 1555-628X.
Внешние системы: DOI: 10.1134/S0001433814050028; РИНЦ: 24004695; SCOPUS: 2-s2.0-84910151086; WoS: 000343054700007;
Реферат: eng: Results of a numerical simulation of the action of distant tsunamis on the coast of the Russian Far East are presented. It is shown that waves generated by focuses of the strongest M9 earthquakes in the region of South Chilean coast, as well as in the region of Papua New Guinea and Solomon Islands, are most dangerous for this coast. Other tsunamigenic zones of the Pacific Ocean, by virtue of their geographical position, orientation of focuses, and absence of pronounced channels (submarine ridges) along paths of tsunami propagation are not dangerous for it even at a limit magnitude of submarine subduction earthquakes. The simulation results are compared with historical data about manifestations of distant tsunamis on the Russian Far East coast.
Ключевые слова: tsunami zoning; tsunami danger; Submarine earthquakes; numerical simulation; tsunami;
Издано: 2014
Физ. характеристика: с.508-519
Цитирование: 1. S. L. Solov’ev and M. D. Ferchev, “Summary data on tsunamis in the USSR,” Bull. Sov. Seismol. Akad. Nauk SSSR, No. 9, 23–55 (1961). 2. S. L. Solov’ev, “Basic data on tsunamis on the Far East coast of the USSR (1937–1976),” in Tsunami Research in the Open Ocean (Nauka, Moscow, 1978), pp. 61–136 [in Russian]. 3. Yu. A. Zayakin, Tsunamis on the Far East Coast of Russia (Kamshat, Petropavlovsk-Kamchatsky, 1996) [in Russian]. 4. CD-ROM Integrated Tsunami Database for the World Ocean (ITDB/WLD), 2000 BC to Present (Tsunami Laboratory, ICMMG SD RAS, Novosibirsk, 2014). http://tsun.sscc.ru/nh/tsunami.php. 5. NOAA/WDS Global Historical Tsunami Database (National Geophysical Data Center, Boulder, USA, 2014). http://www.ngdc.noaa.gov/hazard/tsu_db.shtml. 6. The Chilean Tsunami of May 24, 1960, as Observed along the Coast of Japan (December 1961), Committee for Field Investigation of the Chilean Tsunami of 1960. 7. B. P. Vazhenin, “Problems of tsunami research for the northern Sea of Okhotsk,” in Problems of Integrated Geophysical Monitoring of the Russian Far East. Proceedings of the Second Regional Scientific and Technical Conference (Petropavlovsk-Kamchatsky, 2010), pp. 312–317 [in Russian]. 8. E. A. Okal, C. E. Synolakis, G. J. Fryer, P. Heinrich, et al., “A field survey of the 1946 Aleutian tsunami in the far field,” Seismol. Res. Lett. 73, 490–503 (2002). 9. V. M. Kaistrenko, G. V. Shevchenko, and T. N. Ivel’skaya, “Manifestations of the March 11, 2011 Tokhoku tsunami on the Russian Far East coast,” Seism. Prib. 38(1), 41–64 (2011). 10. V. B. Tyurnin, Tsunamis in the northern part of the Sea of Okhotsk. http://www.meteo.magadan.ru/Meteo/tsunami.htm. 11. K. Iida, Catalog of Tsunamis in Japan and Neighboring Countries, Special Report (Aichi Institute of Technology, Yashigasa, 1984). 12. S. A. Fedotov, “On the seismic cycle, possibility of quantitative zoning, and long-term seismic forecast,” in Seismic Zoning of the SSSR (Nauka, Moscow, 1968), pp. 121–150 [in Russian]. 13. Y. Okada, “Surface deformation due to shear and tensile faults in the half-space,” Bull. Seismol. Soc. Am. 75, 1135–1154 (1985). 14. V. K. Gusiakov, “Residual displacements on the surface of an elastic half-space,” in Conditionally Well-Posed Problems of Mathematical Physics in the Interpretation of Geophysical Observations (VTs SO RAN, Novosibirsk, 1978), pp. 23–51 [in Russian]. 15. Yu. I. Shokin, V. V. Babailov, S. A. Beisel, L. B. Chubarov, S. V. Eletsky, Z. I. Fedotova, and V. K. Gusyakov, “Mathematical modeling in application to regional tsunami warning systems operations,” in Computational Science and High Performance Computing III, Notes on Numerical Fluid Mechanics and Multidisciplinary Design, Ed. by E. Krause, Yu. Shokin, M. Resch, and N. Shokina (Springer, Berlin-Heidelberg, 2008), pp. 52–68. 16. V. S. Kosykh, L. B. Chubarov, V. K. Gusiakov, D. A. Kamaev, V. M. Grigor’eva, and S. A. Beisel, “A technique for computing maximum heights of tsunami waves at protected Far Eastern coastal points of the Russian Federation,” in Results from Testing of New and Improved Technologies, Models, and Methods of Hydrometeorological Forecasts (IG-SOTsIN, Moscow-Obninsk, 2013), No. 40, pp. 115–134. 17. V. K. Gusiakov, “Strongest tsunamis in the World Ocean and the problem of marine coastal security,” Izv., Atmos. Ocean. Phys. 50(5), 435–444 (2014). 18. H. Kanamori, “The energy released in great earthquakes,” J. Geophys. Res. 82, 2981–2987 (1977). 19. GEBCO General Bathymetric Chart of the Oceans. http://www.gebco.net/data_and_products/gridded_bathymetry_data/. 20. S. Stein and E. A. Okal, “The size of the 2011 Tohoku earthquake needn’t have been a surprise,” Eos Trans. AGU 92, 227–228 (2011). 21. S. Stein, R. Geller, and M. Liu, “Why earthquake hazard maps often fail and what to do about it,” Tectonophysics 562–563, 1–25 (2012).