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    المساهمون: The research was funded by the Russian Science Foundation grant 23-27-00130 (https://rscf.ru/project/23-27-00130Test/)., Исследование выполнено за счет гранта Российского научного фонда № 23-27-00130 (https://rscf.ru/project/23-27-00130Test/).

    المصدر: Geodynamics & Tectonophysics; Том 15, № 2 (2024); 0747 ; Геодинамика и тектонофизика; Том 15, № 2 (2024); 0747 ; 2078-502X

    وصف الملف: application/pdf

    العلاقة: https://www.gt-crust.ru/jour/article/view/1817/808Test; Afanasenkov A.P., 2019. Geology and Oil and Gas Prospects of the North of the Siberian Platform. PhD Thesis (Doctor of Geology and Mineralogy). Moscow, 375 p. (in Russian) [Афанасенков А.П. Геология и перспективы нефтегазоносности севера Сибирской платформы: Дис. … докт. геол.-мин. наук. М., 2019. 375 с].; Afanasenkov A.P., Lygin I.V., Obukhov A.N., Sokolova T.B., Kuznetsov K.M., 2017. Volumetric Reconstruction of the Yenisei-Khatanga Rift System’s Tectonic Elements by Integrated Geological-Geophysical Interpretation. Geophysics 2, 60–70 (in Russian) [Афанасенков А.П., Лыгин И.В., Обухов А.Н., Соколова Т.Б., Кузнецов К.М. Объемная реконструкция тектонических элементов Енисей-Хатангской рифтовой системы по результатам комплексной геолого-геофизической интерпретации // Геофизика. 2017. № 2. С. 60–70].; Afanasenkov A.P., Unger A.V., Lugovaya O.V., Chikishev A.A., Nikishin A.M., Bordunov S.I., Yakovishina E.V., 2016. The Tectonics and Stages of the Geological History of the Yenisei–Khatanga Basin and the Conjugate Taimyr Orogeny. Geotectonics 50, 161–178. https://doi.org/10.1134/S0016852116020023Test.; Al’mukhamedov A.I., Medvedev A.Y., Zolotukhin V.V., 2004. Chemical Evolution of the Permian-Triassic Basalts of the Siberian Platform in Space and Time. Petrology 12 (4), 297–311.; Augland L.E., Ryabov V.V., Vernikovsky V.A., Planke S., Polozov A.G., Callegaro S., Jerram D.A., Svensen H.H., 2019. The Main Pulse of the Siberian Traps Expanded in Size and Composition. Scientific Reports 9, 18723. https://doi.org/10.1038/s41598-019-54023-2Test.; Boynton W.V., 1984. Cosmochemistry of the Rare Earth Elements: Meteorite Studies. Rare Earth Element Geochemistry. Developments in Geochemistry 2, 63–114. https://doi.org/10.1016/B978-0-444-42148-7.50008-3Test.; Callegaro S., Svensen H.H., Neumann E.R., Polozov A.G., Jerram D.A., Deegan F.M., Planke S., Shiganova O.V., Ivanova N.A., Melnikov N.V., 2021. Geochemistry of Deep Tunguska Basin Sills, Siberian Traps: Correlations and Potential Implications for the End‑Permian Environmental Crisis. Contributions to Mineralogy and Petrology 176, 49. https://doi.org/10.1007/s00410-021-01807-3Test.; Coсhran J.R., 1983. Effect of Finite Rifting Times on the Development of Sedimentary Basins. Earth and Planetary Science Letters 66, 289–302. https://doi.org/10.1016/0012-821XTest(83)90142-5.; Database of State Geological Maps (GIS Atlas "Subsoil of Russia"). Information Resources of VSEGEI (in Russian) [База данных государственных геологических карт (ГИС-Атлас «Недра России»). Информационные ресурсы ВСЕГЕИ]. Available from: https://karpinskyinstitute.ru/ru/info/webmapget/index.phpTest (Last Accessed September 19, 2023).; Dobretsov N.L., 1997. Permian-Triassic Magmatism and Sedimentation in Eurasia as a Result of a Superplume. Doklady of the Russian Academy of Sciences. Earth Science Sections 354 (4), 497–501.; Dobretsov N.L., Polyansky O.P., Reverdatto V.V., Babichev A.V., 2013. Dynamics of the Arctic and Adjacent Petroleum Basins: A Record of Plume and Rifting Activity. Russian Geology and Geophysics 54 (8), 888–902. https://doi.org/10.1016/j.rgg.2013.07.009Test.; Dobretsov N.L., Vernikovsky V.A., 2001. Mantle Plumes and Their Geologic Manifestations. International Geology Review 43 (9), 771–787. https://doi.org/10.1080/00206810109465047Test.; Einsele G., 2000. Chapter 8. Subsidence. In: Sedimentary Basins. Evolution, Facies, and Sediment Budget. Springer, Berlin, Heidelberg, p. 387–413. https://doi.org/10.1007/978-3-662-04029-4_8Test.; Elkins Tanton L.T., Hager B.H., 2000. Melt Intrusion as a Trigger for Lithospheric Foundering and the Eruption of the Siberian Flood Basalt. Geophysical Research Letters 27 (23), 3937–3940. https://doi.org/10.1029/2000GL011751Test.; Ernst R.E., 2014. Large Igneous Provinces. Cambridge University Press, London, 653 p. https://doi.org/10.1017/CBO9781139025300Test.; Fedorenko V.A., Lightfoot P.C., Naldrett A.J., Czamanske G.K., Hawkesworth C.J., Wooden J.L., Ebel D.S., 1996. Petrogenesis of the Floodbasalt Sequence at Noril’sk, North Central Siberia. International Geology Review 38 (2), 99–135. https://doi.org/10.1080/00206819709465327Test.; Gunduz M., Asan K., 2021. PetroGram: An Excel-Based Petrology Program for Modeling of Magmatic Processes. Geoscience Frontiers 12 (1), 81–92. https://doi.org/10.1016/j.gsf.2020.06.010Test.; Irvine T.N., Baragar W.R.A., 1971. A Guide to the Chemical Classification of the Common Volcanic Rocks. Canadian Journal of Earth Sciences 8 (5), 523–548. https://doi.org/10.1139/e71-055Test.; Ivanov A.V., 2015. Why Volatiles Are Required for Cratonic Flood Basalt Volcanism: Two Examples from the Siberian Craton. In: G.R. Foulger, M. Lustrino, S.D. King (Eds), The Interdisciplinary Earth: A Volume in Honor of D.L. Anderson. Geological Society of America Special Paper 514, 325–338. https://doi.org/10.1130/2015.2514Test(19).; Ivanov A.V., He H., Yan L., Ryabov V.V., Shevko A.Y., Palesskii S.V., Nikolaeva I.V., 2013. Siberian Traps Large Igneous Province: Evidence for Two Flood Basalt Pulses around Permo-Triassic Boundary and in the Middle Triassic, and Contemporaneous Granitic Magmatism. Earth-Science Reviews 122, 58–76. https://doi.org/10.1016/j.earscirev.2013.04.001Test.; Ivanov A.V., Mukasa S.B., Kamenetsky V.S., Ackerson M., Demonterova E.I., Pokrovsky B.G., Vladykin N.V., Kolesnichenko M.V., Litasov K.D., Zedgenizov D.A., 2018. Volatile Concentrations in Olivine-Hosted Melt Inclusions from Meimechite and Melanephelinite Lavas of the Siberian Traps Large Igneous Province: Evidence for Flux-Related High-Ti, High-Mg Magmatism. Chemical Geology 483, 442–462. https://doi.org/10.1016/j.chemgeo.2018.03.011Test.; Kamenetsky V.S., Chung S.-L., Kamenetsky M.B., Kuzmin D.V., 2012. Picrites from the Emeishan Large Igneous Province, SW China: a Compositional Continuum in Primitive Magmas and Their Respective Mantle Sources. Journal of Petrology 53 (10), 2095–2113. https://doi.org/10.1093/petrology/egs045Test.; Kazais V.I., Yagantsev E.M., 1971. The Method for Quantitative Interpretation of Gravitational and Magnetic Anomalies in the Yenisei-Khatanga Trough. Russian Geology and Geophysics 2, 25–30 (in Russian) [Казаис В.И., Яганцев Э.М. Методика количественной интерпретации гравитационных и магнитных аномалий в Енисей-Хатангском прогибе // Геология и геофизика. 1971. № 2. С. 25–30].; Kirdyashkin A.A., Dobretsov N.L., Kirdyashkin A.G., Gladkov I.N., Surkov N.V., 2005. Нydrodynamic Processes Associated with Plume Rise and Conditions for Eruption Conduit Formation. Russian Geology and Geophysics 46 (9), 891–907.; Kontorovich V.A., 2011. Tectonics and Oil and Gas Potential of the Western Part of the Yenisei-Khatanga Regional Trough. Russian Geology and Geophysics 52 (8), 804–824. https://doi.org/10.1016/j.rgg.2011.07.006Test.; Kontorovich V.A., Filippov Y.F., 2021. Formation Conditions and Geological Structure of the Yenisei-Khatanga Regional Trough. Russian Journal of Geophysical Technologies 4, 16–25 (in Russian) [Конторович В.А., Филиппов Ю.Ф. Условия формирования и геологическое строение Енисей-Хатангского регионального прогиба // Геофизические технологии. 2021. № 4. С. 16–25]. https://doi.org/10.18303/2619-1563-2021-4-16Test.; Kostyuchenko S.L., 2000. Structure of the Crust and Surface Mechanisms of Formation of Near-Arctic Continental Sedimentary Basins in Siberia. Regional Geology and Metallogeny 10, 125–135.; Krivolutskaya N.A., Roshchina I.A., Kononkova N.N., Svirskaya N.M., Romashova T.V., Kuzmin D.V., Gongalsky B.I., 2018. Stages of Trap Magmatism in the Norilsk Area: New Data on the Structure and Geochemistry of the Volcanic Rocks. Geochemistry International 56, 419–437. https://doi.org/10.1134/S0016702918050026Test.; Kurapov M., Ershova V., Khudoley A., Luchitskaya M., Stockli D., Makariev A., Makarieva E., Vishnevskaya I., 2021. Latest Permian – Triassic Magmatism of the Taimyr Peninsula: New Evidence for a Connection to the Siberian Traps Large Igneous Province. Geosphere 17 (6), 2062–2077. https://doi.org/10.1130/ges02421.1Test.; Kushnir D.G., 2016. Pre-Yenisei Area of Taimyr and Gydan Peninsulas – Deep Seated Geological Structure and Petroleum Potential Prospects. Petroleum Geology – Theoretical and Applied Studies 11 (1), 1–29 (in Russian) [Кушнир Д.Г. Глубинное геологическое строение и перспективы нефтегазоносности Приенисейской полосы Таймыра и Гыдана // Нефтегазовая геология. Теория и практика. 2016. Т. 11. № 1. С. 1–29]. https://doi.org/10.17353/2070-5379/6_2016Test.; Kushnir D.G., 2018. Geodynamics of the Taimyr Peninsula from Geophysical Data. Geodynamics & Tectonophysics 9 (1), 81–92 (in Russian) [Кушнир Д.Г. Геодинамика полуострова Таймыр по геофизическим данным // Геодинамика и тектонофизика. 2018. Т. 9. № 1. С. 81–92]. https://doi.org/10.5800/GT-2018-9-1-0338Test.; Larichev A.I., Bostrikov O.I., Khabarov A.N., 2024 (in press). Conditions of Oil and Gas Formation, Formation and Destruction of Hc Accumulations and Forecast of Oil and Gas Bearing Capacity in Permian Sediments of the Eastern-Taimyr License Area (Anabar-Khatanga Area). Russian Geology and Geophysics. https://doi.org/10.15372/GiG2024101Test.; Latyshev A.V., Fetisova A.M., Veselovskiy R.V., 2020. Linking Siberian Traps Lip Emplacement and End-Permian Mass Extinction: Evidence from Magnetic Stratigraphy of the Maymecha-Kotuy Volcanic Section. Geosciences 10 (8), 295. https://doi.org/10.3390/geosciences10080295Test.; Le Bas M.J., Le Maitre R.W., Streckeisen A., Zanettin B., 1986. Chemical Classification of Volcanic Rocks Based on the Total Alkali-Silica Diagram. Journal of Petrology 27 (3), 745–750. https://doi.org/10.1093/petrology/27.3.745Test.; Lightfoot P.C., Hawkesworth C.J., Hergt J., Naldrett A.J., Gorbachev N.S., Fedorenko V.A., Doherty W., 1993. Remobilisation of the Continental Lithosphere by Mantle Plumes: Major-, Trace-Element and Sr-, Nd-, and Pb-Isotope Evidence from Picritic and Tholeiitic Lavas of the Noril’sk District, Siberian Trap, Russia. Contributions to Mineralogy and Petrology 114, 171–188. https://doi.org/10.1007/BF00307754Test.; McKenzie D., 1978. Some Remarks on the Development of Sedimentary Basins. Earth and Planetary Science Letters 40 (1), 25–32. https://doi.org/10.1016/0012-821XTest(78)90071-7.; Medvedev A.Y., Al’mukhamedov A.I., Kirda N.P., 2003. Geochemistry of Permo-Triassic Volcanic Rocks of West Siberia. Russian Geology and Geophysics 44 (1–2), 86–100.; Nikishin A.M., Sobornov K.O., Prokopyev A.V., Frolov S.V., 2010. Tectonic Evolution of the Siberian Platform during the Vendian and Phanerozoic. Moscow University Geology Bulletin 45, 1–16. https://doi.org/10.3103/S0145875210010011Test.; Pearce J.A., Norry M.J., 1979. Perogenetic Implications of Ti, Zn, Y and Nb Variations in Volcanic Rocks. Contributions to Mineralogy and Petrology 69, 33–47. https://doi.org/10.1007/BF00375192Test.; Priestley K., McKenzie D., 2013. The Relationship between Shear Wave Velocity, Temperature, Attenuation and Viscosity in the Shallow Part of the Mantle. Earth and Planetary Science Letters 381, 78–91. https://doi.org/10.1016/j.epsl.2013.08.022Test.; Reference Geological and Geophysical Profiles of Russia, 2013. Deep Seismic Sections along the DSS Profiles Performed from 1972 to 1995. Atlas. VSEGEI Publishing House, Saint Petersburg, 94 p. (in Russian) [Опорные геолого-геофизические профили России. Глубинные сейсмические разрезы по профилям ГСЗ, отработанным в период с 1972 по 1995 год: Атлас. СПб.: Изд-во ВСЕГЕИ, 2013. 94 с.]. Available from: https://karpinskyinstitute.ru/ru/info/seismicTest/ (Last Accessed September 19, 2023).; Reichow M.K., Saunders A.D., Scott R.A., Millar I.L., Barford D., Pringle M.S., Rogers N.W., Hammond S., 2016. Petrogenesis and Timing of Mafic Magmatism, South Taimyr, Arctic Siberia: A Northerly Continuation of the Siberian Traps? Lithos 248–251, 382–401. https://doi.org/10.1016/j.lithos.2016.01.018Test.; Reichow M.K., Saunders A.D., White R.V., Al’mukhamedov A.I., Medvedev A.I., 2005. Geochemistry and Petrogenesis of Basalts from the West Siberian Basin: An Extension of the Permo–Triassic Siberian Traps, Russia. Lithos 79 (3–4), 425–452. https://doi.org/10.1016/j.lithos.2004.09.011Test.; Smirnov Ya.B. (Ed.), 1980. The Heat Flow Map of the USSR and Adjacent Areas. Scale 1:10000000. Main Department of Geodesy and Cartography, Moscow, 1 sheet (in Russian) [Карта теплового потока территории CCCP и сопредельных районов. Масштаб 1:10000000 / Ред. Я.Б. Смирнов. М.: ГУГК, 1980. 1 л.].; Sobolev A.V., Krivolutskaya N.A., Kuzmin D.V., 2009. Petrology of the Parental Melts and Mantle Sources of Siberian Trap Magmatism. Petrology 17, 253–286. https://doi.org/10.1134/S0869591109030047Test.; Sobolev S.V., Sobolev A.V., Kuzmin D.V., Krivolutskaya N.A., Petrunin A.G., Arndt N.T., Radko V.A., Vasiliev Y.R., 2011. Linking Mantle Plumes, Large Igneous Provinces and Environmental Catastrophes. Nature 477, 312–316. https://doi.org/10.1038/nature10385Test.; Staroseltsev V.S., 2008. Actual Problems of Tectonics of Oil and Gas Promising Regions. Nauka, Novosibirsk, 212 p. (in Russian) [Старосельцев В.С. Актуальные проблемы тектоники нефтегазоперспективных регионов. Новосибирск: Наука, 2008. 212 с.].; Sun S.-S., McDonough W.F., 1989. Chemical and Isotopic Systematics of Oceanic Basalts: Implications for Mantle Composition and Processes. Geological Society of London Special Publications 42 (1), 313–345. https://doi.org/10.1144/GSL.SP.1989.042.01.19Test.; Surkov V.S., Smirnov L.V., Zhero O.G., 1987. Early Mesozoic Rifting and Its Influence on the Lithosphere Structure of the West Siberian Plate. Russian Geology and Geophysics 9, 3–11 (in Russian) [Сурков B.C., Смирнов Л.В., Жеро О.Г. Раннемезозойский рифтогенез и его влияние на структуру литосферы Западно-Сибирской плиты // Геология и геофизика. 1987. № 9. С. 3–11].; Vernikovsky V.A., Polyansky O.P., Babichev A.B., Vernikovskaya A.E., Proskurnin V.F., Matushkin N.Yu., 2022. Tectonothermal Model for the Late Paleozoic Syncollisional Formation Stage of the Kara Orogen (Northern Taimyr, Central Arctic). Russian Geology and Geophysics 63 (4), 368–382. https://doi.org/10.2113/RGG20214426Test.; Vernikovsky V., Shemin G., Deev E., Metelkin D., Matushkin N., Pervukhina N., 2018. Geodynamics and Oil and Gas Potential of the Yenisei-Khatanga Basin (Polar Siberia). Minerals 8 (11), 510. https://doi.org/10.3390/min8110510Test.; Votyakov S.L., Kiseleva D.V., Shagalov E.S., Cherednichenko N.V., Deryugina L.K., Denisov S.A., Chempalov A.P., Uzkikh S.E., Orekhov A.A., 2006. Multi-Element Analysis of Geological Samples by Inductively Coupled Plasma Mass Spectrometry on ELAN 9000. In: Yearbook 2005. IGG UB RAS, Ekaterinburg, p. 425–430 (in Russian) [Вотяков С.Л., Киселева Д.В., Шагалов Е.С., Чередниченко Н.В., Дерюгина Л.К., Денисов С.А., Чемпалов А.П., Узких С.Э., Орехов А.А. Мультиэлементный анализ геологических образцов методом масс-спектрометрии с индуктивно связанной плазмой на ELAN 9000 // Ежегодник-2005. Екатеринбург: ИГГ УрО РАН, 2006. C. 425–430].; Winchester J.A., Floyd P.A., 1977. Geochemical Discrimination of Different Magma Series and Their Differentiation Products Using Immobile Elements. Chemical Geology 20, 325–343. https://doi.org/10.1016/0009-2541Test(77)90057-2.; Wooden J.L., Czamanske G.K., Fedorenko V.A., Arndt N.T., Chauvel C., Bouse R.M., King B.W., Knight R.J., Siems D.F., 1993. Isotopic and Trace-Element Constrains on Mantle and Crustal Contributions to Siberian Continental Flood Basalts, Noril’sk Area, Siberia. Geochimica et Cosmochimica Acta 57 (5), 3677–3704. https://doi.org/10.1016/0016-7037Test(93)90149-Q.; Xiao L., Xu Y.G., Mei H.J., Zheng Y.F., He B., Pirajno F., 2004. Distinct Mantle Sources of Low-Ti and High-Ti Basalts from the Western Emeishan Large Igneous Province, SW China: Implications for Plume-Lithosphere Interaction. Earth and Planetary Science Letters 228 (3–4), 525–546. https://doi.org/10.1016/j.epsl.2004.10.002Test.; Zolotukhin V.V., Vasiliev Yu.R., Dyuzhikov O.A., 1989. Trap Diversity and Initial Magmas (on the Example of the Siberian Platform). Nauka, Novosibirsk, 248 p. (in Russian) [Золотухин В.В., Васильев Ю.Р., Дюжиков О.А. Многообразие траппов и исходные магмы (на примере Сибирской платформы). Новосибирск: Наука, 1989. 248 с.].; https://www.gt-crust.ru/jour/article/view/1817Test

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    المساهمون: GéoHydrosystèmes COntinentaux (GéHCO EA6293), Université de Tours (UT), Risques, Ecosystèmes, Vulnérabilité, Environnement, Résilience (RECOVER), Aix Marseille Université (AMU)-Institut National de Recherche pour l’Agriculture, l’Alimentation et l’Environnement (INRAE), Environnement Méditerranéen et Modélisation des Agro-Hydrosystèmes (EMMAH), Avignon Université (AU)-Institut National de Recherche pour l’Agriculture, l’Alimentation et l’Environnement (INRAE), INRAE (Paris Scientifique Département Aqua), Region Centre-Val de Loire (contribution of Academic Initiative Project RHEFLEXES/201900134935), Direction Générale de la Prévention des Risques (DGPR)

    المصدر: ISSN: 2073-4441 ; Water ; https://hal.inrae.fr/hal-04293233Test ; Water, 2023, 15 (21), pp.3747. ⟨10.3390/w15213747⟩.

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    المساهمون: GéoHydrosystèmes COntinentaux (GéHCO EA6293), Université de Tours (UT), Risques, Ecosystèmes, Vulnérabilité, Environnement, Résilience (RECOVER), Aix Marseille Université (AMU)-Institut National de Recherche pour l’Agriculture, l’Alimentation et l’Environnement (INRAE), Environnement Méditerranéen et Modélisation des Agro-Hydrosystèmes (EMMAH), Avignon Université (AU)-Institut National de Recherche pour l’Agriculture, l’Alimentation et l’Environnement (INRAE), INRAE (Paris Scientifique Département Aqua), Region Centre-Val de Loire (contribution of Academic Initiative Project RHEFLEXES/201900134935), Direction Générale de la Prévention des Risques (DGPR)

    المصدر: ISSN: 2073-4441 ; Water ; https://hal.inrae.fr/hal-04293233Test ; Water, 2023, 15 (21), pp.3747. ⟨10.3390/w15213747⟩.