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  1. 1
    Academic Journal

    المساهمون: The work was carried out within the framework of the State Assignment of the IGEM RAS and the State Assignment of the Institute of Geography RAS (№ 0148–2019–0005)., Работы выполнены в рамках государственного задания ИГЕМ РАН и государственного задания Института географии РАН (№ 0148–2019–0005).

    المصدر: Ice and Snow; Том 63, № 1 (2023); 85-92 ; Лёд и Снег; Том 63, № 1 (2023); 85-92 ; 2412-3765 ; 2076-6734

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    Relation: https://ice-snow.igras.ru/jour/article/view/1153/650; Badaluta C.A., Persoiu A., Ionita M., Piotrowska N. Stable isotopes in cave ice suggest summer temperatures in east-central Europe are linked to Atlantic Multidecadal Oscillation variability. Climate of the Past. 2020, 16: 2445–2458.; Baker J.L., Lachniet M.S., Chervyatsova O., Asmerom Y., Polyak V.J. Holocene warming in western continental Eurasia driven by glacial retreat and greenhouse forcing. Nature Geoscience. 2017, 10 (6): 430–435.; Clark I., Lauriol B. Aufeis of the Firth River Basin, Northern Yukon, Canada: Insights into Permafrost Hydrogeology and Karst. Arctic and Alpine Research. 1997, 29 (3): 240–252.; Clausen H., Varna K., Hansen S., Larsen L., Baker J., Sigaard-Andersen M.-L., Sjolte J., Landholm S. Continental ice body in Dobşina Ice Cave – results of chemical and isotopic study. Proc. of the 2nd Intern. Workshop on Ice Caves. Demanovska Dolina. 2006: 29–37.; Fórizs I., Kern Z., Szántó S., Nagy B., Palcsu L., Molnár M. Environmental isotope study on perennial ice in the Focul Viu Ice Cave, Bihor Mountains, Romania. Theoretical and Applied Karstology. 2004, 17: 61–69.; Kern Z., Bočić N., Horvatinčić N., Fórizs I., Nagy B., László P. Palaeoenvironmental records from ice caves of Velebit Mountains – Ledena Pit and Vukušić Ice Cave, Croatia. The Cryosphere Discussions. 2010, 4: 1561–1591.; Кадебская О.И. Минеральные и геохимические индикаторы природных процессов в подземных карстовых ландшафтах Урала. Дис. на соиск. уч. степ. д-ра геогр. наук. Пермь: Перм. гос. нац. исслед. ун-т, 2016. 295 с.; Kern Z., Fórizs I., Pavuza R., Molnár M., Nagy B. Isotope hydrological studies of the perennial ice deposits of Saarhalle, Mammuthöhle, Dachstein Mts, Austria. Journ. of Cryosphere. 2011, 5: 291–298.; Kern Z., Fórizs I., Perşoiu A., Nagy B. Stable isotope study of water sources and an ice core from Borţig Ice Cave (Románia). Data of glaciological studies. 2009, 107: 175–182.; Кудряшов И.К. Аскинская ледяная пещера // Путеводитель по Башкирии. Уфа: Башкнигоиздат, 1965. С. 425–430.; Lacelle D. On the delta O-18, delta D and D-excess Relations in Meteoric Precipitation and During Equilibrium Freezing: Theoretical Approach and Field Examples. Permafrost and Periglacial Processes. 2011, 22: 13–25.; Lacelle D., Lauriol B., Clark I.D. Formation of seasonal cave ice and associated cryogenic carbonates in Caverne de l’Ours, Quebec, Canada. Kinetic isotope effects and pseudo-biogenic crystal structures. Journ. of Cave and Karst Studies. 2009, 71 (1): 48–62.; Lehmann M., Siegenthaler U. Equilibrium oxygen and hydrogen isotope fractionation between ice and water. Journ. of Glaciology. 1991, 37 (125): 23–26.; Luetscher M., Bolius D., Schwikowski M., Schotterer U., Smart P. Comparison of techniques for dating of subsurface ice from Monlesi Ice Cave, Switzerland. Journ. of Glaciology. 2007, 53 (182): 374–384.; Luetscher M., Jeannin P.Y. A process-based classification of alpine ice caves. Theoretical and Applied kasrtology. 2004, 17: 5–10.; May B., Spotl C., Wagenbach D., Dublyansky Y., Liebl J. First investigations of an ice core from Eisriesenwelt cave (Austria). The Cryosphere. 2011, 5: 81–93.; Morard S., Bochud M., Delaloye R. Rapid changes of the ice mass configuration in the dynamic Diablotins ice cave – Fribourg Prealps, Switzerland. The Cryosphere Discussions. 2010, 4: 489–500.; Munroe J.S. First investigation of Perennial Ice in Winter Wonderful Cave, Uinta Mountains, Utah, USA. The Cryosphere. 2021, 15: 863–881.; Perşoiu A., Onac B.P., Wynn J.G., Bojar A.V., Holmgren K. Stable isotope behavior during cave ice formation by water freezing in Scărişoara Ice Cave, Romania. Journ. of Geophys. Research. 2011, 116: D02111.; Perşoiu A., Pazdur A. Ice genesis and its long-term dynamics in Scărişoara Ice Cave, Romania. Journ. of Geophys. Research. Atmos. 2011, 4: 1909–1929.; Souchez R., Jouzel J. On the isotopic composition in δD and δ18O of water and ice during freezing. Journ. of Glaciology. 1984, 30 (106): 369–372.; Соколов Ю.В. Лёд в пещерах Башкортостана // Биологическое разнообразие, спелеологические объекты и историко-культурное наследие охраняемых природных территорий Республики Башкортостан. Вып. 3. Уфа: Информреклама, 2008. С. 184–196.; Souchez R., Tison J.L., Jouzel J. Freezing rate determination by the isotopic composition of the ice. Geophys. Research Letter. 1987, 14: 599–602.; Souchez R., Jouzel J., Lorrain R., Sleewaegen S., Stiévenard M., Verbeke V. A kinetic isotope effect during ice formation by water freezing. Geophys. Research Letter. 2000, 27: 1923–1926.; Trofimova E.V. Ice caves of the Siberia: genesis and morphological features. Journ. of Environ. Earth Sci. 2019, 78 (3): 2134–2149; Vakhrushev G.V. Ice caves in carbonate rocks of Bashkiria. Caves. 1972: 12: 108–117.; https://ice-snow.igras.ru/jour/article/view/1153

  2. 2
    Academic Journal

    المساهمون: The work was carried out within the framework of the State Assignment of the IGEM RAS and the State Assignment of the Institute of Geography RAS (№ 0148–2019–0005)., Работы выполнены в рамках государственного задания ИГЕМ РАН и государственного задания Института географии РАН (№ 0148–2019–0005).

    المصدر: Ice and Snow; Том 63, № 1 (2023); 85-92 ; Лёд и Снег; Том 63, № 1 (2023); 85-92 ; 2412-3765 ; 2076-6734

  3. 3
    Academic Journal

    المصدر: Ice and Snow; Том 53, № 3 (2013); 89-98 ; Лёд и Снег; Том 53, № 3 (2013); 89-98 ; 2412-3765 ; 2076-6734 ; 10.15356/2076-6734-2013-3

    Relation: Vasil’chuk Yu.K., Kotlyakov V.M. Osnoby izotopnoy geokriologii i glyatsiologii. Foundations of geocryology and glaciology. Moscow State University. 2003: 616 p. [In Russian].; Voitkovsky K.F. Osnovy glyatsiologii. Foundations of glaciology. Moscow: Nauka, 1999: 255 p. [In Russian].; Gavrilova M.K. Sovremennyi klimat i vechnaya merzlota na kontinentakh. Present-day climate and permafrost on continents. Novosibirsk: Nauka, 1981: 112 p. [In Russian].; Gavrilova M.K. Klimaty kholodnykh regionov Zemli. Climates of cold regions of the Earth. Yakutsk: Siberian Branch of RAS, 2003: 206 p. [In Russian].; Derevyagin A.Yu., Chizhov A.B., Brezgunov A.S., Hubberten G.-V., Zigert K. Isotopic composition of massif vedge ice at Sabler cape (Taimyr Lake). Kriosfera Zemli. Earth Cryosphere. 1999, 3 (3): 41–49. [In Russian].; Ivanov M.S. Kriogennoe stroenie chetvertichnylh otlozheniy Leno-Aldanckoy vpadiny. Cryogenic structure of quaternary deposits in Lena-Aldan hollow. Novosibirsk: Nauka, 1984: 126 p. [In Russian].; Katasonov E.M. Permafrost-facies analysis of Pleistocene deposits and paleogeography of Central Yakutia. Paleogeografiya i periglyatsialnye yavleniya pleistitsena. Paleogeography and periglacial phenomena of Pleistocene. Moscow: Nauka, 1975: 16–22. [In Russian].; Kotlyakov V.M., Gordienko F.G. Izotopnaya i geokhimicheskaya glyatsiologiya. Isotope and geochemical glaciology. Leningrad: Hydrometeoizdat, 1982: 288 p. [In Russian].; Soloviev P.A. Kriolitozona severnoy chaste Leno-Amginskogo mezhdurechiya. Cryolithozone of the northern part of Lena-Amga interfluve. Moscow – Leningrad: Russian Academy of Sciences, 1959: 144 p. [In Russian].; Spektor V.B., Spektor V.V. On the origin of high Lena-Amga periglacial plain. Kriosfera Zemli. Earth Cryosphere. 2002, 6 (4): 3–12. [In Russian].; Spektor V.B., Spektor V.V., Bakulina N.T. Buried snow patches on the Lena-Amga plain. Kriosfera Zemli. Earth Cryosphere. 2011,15 (4): 18–24. [In Russian].; Stroenie i absolyutnaya geokhronologiya alasnykh otlozheniy Tsentralnoy Yakutii. Structure and absolute geochronology of alas deposits in Central Yakutia. Novosibirsk: Nauka, 1979: 96 p. [In Russian].; Ferronsky V.I., Polyakov V.A. Izotopiya gidrosfery Zemli. Isotope of the Earth hydrosphere. Moscow: Nauchnyi mir. Scientific World, 2009: 632 p. [In Russian].; Craig H. Isotopic variations in meteoric waters. Science. 1961,133: 1702–1703.; Dansgaard W. Sable isotopes in precipitation. Tellus. 1964, 19: 435–463.; Friedman I., Benson C., Gleason J. Isotopic changes during snow metamorphism. Stable isotope geochemistry: A tribute to Samuel Epstein. The Geochem. Soc. Spec. Publ. 1991, 3: 211–221.; Moser H., Stichler W. Snow pack and glacier studies. Guidebook on nuclear Techniques in Hydrology. Technical Reports Series. № 91. Vienna: International Atomic Energy Agency, 1983: 47–63.; Sommerfeld R.A., Judy C., Friedman I. Isotopic changes during formation of depth hoar in experimental snowpacks. Stable isotope geochemistry: A tribute to Samuel Epstein. The Geochem. Soc. Spec. Publ. 1991, 3: 205–209.; Ekaykin A., Lipenkov V. Formation of the ice core isotopic composition. Physics of Ice Core Records II. Sapporo: Hokkaido University, 2009: 299–314.; um0. Spektor V.B., Spektor V.V., Bakulina N.T. New Data on the Ice Complex of the Lena-Amga Rivers Plain (Central Yakutia). Ninth International Conference on Permafrost. University of Alaska Fairbanks. June 29–July 3, 2008: 1681–1684.; https://ice-snow.igras.ru/jour/article/view/121