Кирюхин А.В., Бергаль-Кувикас О.В., Лемзиков М.В., Журавлёв Н.Б. Магматическая система Ключевского вулкана по сейсмическим данным и их геомеханической интерпретации // Записки горного института. 2023. № 263. С. 698-714.
Королев С.П., Сорокин А.А., Гирина О.А. Применение видеокамер для мониторинга активности вулканов // Информационные технологии и высокопроизводительные вычисления: материалы VII Международной науч.- практ. конф., Хабаровск, 11-13 сентября 2023 г. Хабаровск: ХФИЦ ДВО РАН. 2023. С. 107-111.
Annotation
Based on computer vision and machine learning methods, algorithms have been developed to classify images from fixed video cameras, as well as detect signs of volcanic activity in them. The results of testing the developed algorithms are presented using the example of observation data on the Klyuchevskoy and Sheveluch volcanoes. It is shown that the proposed solutions can be used for operational and retrospective monitoring of volcanic activity.
Ладыгин В.М., Гирина О.А., Фролова Ю.В. Петрофизические и прочностные свойства экструзивных пород вулкана Безымянный, Камчатка // Вулканология и сейсмология. 2023. № 3. С. 3-20. https://doi.org/10.31857/S0203030623700177
Annotation
This is the first petrophysical study of extrusive rocks (dacites to andesites) discharged by Bezymianny Volcano. We provide a comparative description of properties for extrusive rocks in accordance with identified age groups. We show the dynamics in the variation of extrusive rock properties in relation to their ages, with the result that the older a rock the higher are its density, strength, and elastic parameters. Rocks petrophysical features are compared between extrusive domes and lava flows. We argue for petrophysical properties to be applicable for deriving more accurate results for the genesis of rocks having similar petrophysical properties, in particular, rocks of extrusive and effusive origin.
Марченков В.В., Гирина О.А., Лупян Е.А., Уваров И.А. Система совместного анализа временных рядов наблюдений вулканической активности по данным низкоорбитальных и геостационарных спутников // Материалы 21-й Международной конференции «Современные проблемы дистанционного зондирования Земли из космоса. М.: ИКИ РАН. 2023. № XXI.B.486. https://doi.org/10.21046/21DZZconf-2023a
Мелекесцев И.В. Гигантские марсианские вулкано-тектонические мегаморфоструктуры центрального типа и их вероятные земные минианалоги // Вулканология и сейсмология. 2023. № 1. С. 70-84. https://doi.org/10.31857/S0203030622700067
Annotation
We show that the terrestrial land and seafloor contain no volcano-tectonic mega landforms expressed in relief that could be similar in size to those identified on Mars, and could have analogous structure and origin to the giant landforms whose volumes of constituent rocks are (1-2.4) x 106 km3 (Alba Patera, Olympus Mons, Arsia Mons, Ascraeus Mons, Pavonis Mons, and Elysium Mons). No fragments or traces of similar features have ever been unambiguously identified and described in geological rock sequences, not only in Mesozoic and Cenozoic rock sequences, but also in those dating back to Paleozoic time. The same applies to the older epochs on Earth. Now the topographic constituent components of Martian mega landforms have the appearance of very magnified copies of well-known and repeatedly described terrestrial volcanic edifices, viz., dominantly shield-like and lava volcanoes, lava domes, as well as calderas of various types. However, the edifices of the above types of volcanoes are not identical with their Martian counterparts as to morphology, being shorter in height and having steeper slopes. The calderas are smaller by factors of multiple times. The Martian volcanic landforms are much older. There is a unique edifice, namely, Olympus Mons, a mega land-form that stands in a large glacier sheet and for whose origin glacial processes are also responsible. It is classified as belonging to the type of giant tuyas. Its mini analogues are glacial subaerial tuyas of different ages and parameters that have been subjected to glaciation in volcanic areas on Earth.
Мельников Д.В., Калачева Е.Г. Динамика вод кратерного озера вулкана Малый Семячик за период 1999-2021 гг. по данным дистанционного зондирования // Вулканизм и связанные с ним процессы. Материалы XXVI ежегодной научной конференции, посвящённой Дню вулканолога, 30-31 марта 2023 г., Петропавловск-Камчатский. Петропавловск-Камчатский: ИВиС ДВО РАН. 2023. С. 58-61.
Annotation
На основе данных дистанционного зондирования за период с 1999 по 2021 гг. определены этапы изменения активности кратерного озера вулкана Малый Семячик. Показано, что изменение цветовой палитры поверхности озера является следствием изменения химического состава воды.
Хубуная С.А., Хубуная В.С., Максимов А.П. О смешении высокоглиноземистых и магнезиальных магм на вулкане Ключевской (Камчатка) // Вулканология и сейсмология. 2023. Т. 17. № 1. С. 21-31. https://doi.org/10.31857/S020303062270002X
Bergal-Kuvikas Olga, Bindeman Ilya, Chugaev Andrey, Larionova Yulia, Perepelov Alexander, Khubaeva Olga Pleistocene-Holocene Monogenetic Volcanism at the Malko-Petropavlovsk Zone of Transverse Dislocations on Kamchatka: Geochemical Features and Genesis // Pure and Applied Geophysics. 2022. https://doi.org/10.1007/s00024-022-02956-7
Girina O.A., Malkovsky S.I., Sorokin A.A., Loupian E.A., Korolev S.P. Numerical Modeling of the Ash Cloud Movement from the Catastrophic Eruption of the Sheveluch Volcano in November 1964 // Remote Sensing. 2022. Вып. 14. № 3449. https://doi.org/10.3390/rs14143449
Annotation
This paper reconstructs, for the first time, the motion dynamics of an eruptive cloud formed during the catastrophic eruption of the Sheveluch volcano in November 1964 (Volcanic Explosivity Index 4+). This became possible due to the public availability of atmospheric reanalysis data from the ERA-40 archive of the European Center for Medium-Range Weather Forecasts (ECMWF) and the development of numerical modeling of volcanic ash cloud propagation. The simulation of the eruptive cloud motion process, which was carried out using the FALL3D and PUFF models, made it possible to clarify the sequence of events of this eruption (destruction of extrusive domes in the crater and the formation of an eruptive column and pyroclastic flows), which lasted only 1 h 12 min. During the eruption, the ash cloud consisted of two parts: the main eruptive cloud that rose up to 15,000 m above sea level (a.s.l.), and the co-ignimbrite cloud that formed above the moving pyroclastic flows. The ashfall in Ust-Kamchatsk (Kamchatka) first occurred out of the eruptive cloud moving at a higher speed, then out of the co-ignimbrite cloud. In Nikolskoye (Bering Island, Commander Islands), ash fell only out of the co-ignimbrite cloud. Under the turbulent diffusion, the forefront of the main eruptive cloud rose slowly in the atmosphere and reached 16,500 m a.s.l. by 04:07 UTC on November 12. Three days after the eruption began, the eruptive cloud stretched for 3000 km over the territories of the countries of Russia, Canada, the USA, Mexico, and over both the Bering Sea and the Pacific Ocean. It is assumed that the well-known long-term decrease in the solar radiation intensity in the northern latitudes from 1963–1966, which was established according to the world remote sensing data, was associated with the spread of aerosol clouds formed not only by the Agung volcano, but those formed during the 1964 Sheveluch volcano catastrophic eruption