Traces of the marine Mjølnir impact event

Palaeogeography, Palaeoclimatology, Palaeoecology - Tập 241 - Trang 621-636 - 2006
Henning Dypvik1, Morten Smelror2, Pål T. Sandbakken3, O. Salvigsen1, E. Kalleson1,4
1Department of Geosciences, University of Oslo, P.O. Box 1047 Blindern, NO-0316 Oslo, Norway
2Geological Survey of Norway, NO-7491 Trondheim, Norway
3Statoil ASA, NO-4035 Stavanger, Norway
4Mineralogical Geological Museum, University of Oslo, P.O. Box 1172, NO-0318 Oslo, Norway

Tài liệu tham khảo

Adams, 1958, Th-to-U ratios as indicators of sedimentary process—an example of geochemical facies, American Association of Petroleum Geologists Bulletin, 42, 387 Bremer, 2004, Biotic responses to the Mjølnir meteorite impact, Barents Sea: evidence from a core drilled within the crater, 21 Dallmann, 1999, Upper Palaeozoic lithostratigraphy, 127 Dypvik, 1999, Geochemical signal of the Late Jurassic, marine Mjølnir impact, Meteoritics and Planetary Science, 34, 393, 10.1111/j.1945-5100.1999.tb01348.x Dypvik, 1998, Clay mineral alteration associated with a meteorite impact in the marine environment (Barents Sea), Clay Minerals, 33, 51, 10.1180/000985598545426 Dypvik, 2001, Geochemical facies analysis of fine-grained siliciclastics using Th/U, Zr/Rb and (Zr+Rb)/Sr ratios, Chemical Geology, 181, 131, 10.1016/S0009-2541(01)00278-9 Dypvik, 1991, Depositional conditions of the Bathonian to Hauterivian Janusfjellet Subgroup, Spitsbergen, Sedimentary Geology, 72, 55, 10.1016/0037-0738(91)90123-U Dypvik, 1991, The Janusfjellet Subgroup (Bathonian to Hauterivian) on central Spitsbergen; a revised lithostratigraphy, Polar Research, 9, 21, 10.1111/j.1751-8369.1991.tb00400.x Dypvik, 1996, The Mjølnir structure—an impact crater in the Barents Sea, Geology, 24, 779, 10.1130/0091-7613(1996)024<0779:MLSAIC>2.3.CO;2 Dypvik, 2003, The clay mineralogy of sediments related to the marine Mjølnir impact crater, Meteoritics and Planetary Sciences, 38, 1437, 10.1111/j.1945-5100.2003.tb00249.x Dypvik, 2004, Post-impact sedimentation in the Mjølnir Crater, Sedimentary Geology, 168, 227, 10.1016/j.sedgeo.2004.03.009 Dypvik, 2004, Impact breccia and ejecta from the Mjølnir Crater in the Barents Sea—the Ragnarok Formation and Sindre Bed, Norwegian Journal of Geology, 84, 143 Glimsdal, S., Pedersen, G.K., Langtangen, H.P., Shuvalov, V., Dypvik, H., in press. Tsunami generation and propagation from the Mjølnir asteroid impact. Meteoritics and Planetary Sciences. Gudlaugsson, 1993, Large impact crater in the Barents Sea, Geology, 21, 291, 10.1130/0091-7613(1993)021<0291:LICITB>2.3.CO;2 Guy-Ohlson, 1996, 7B-Prasinophycean algae, 181 Jones, 1994, Comparison of geochemical indices used for the interpretation of paleoredox conditions in ancient mudstones, Chemical Geology, 111, 111, 10.1016/0009-2541(94)90085-X Kalleson, E., 1998. En sedimentologisk og geokjemisk undersøkelse av jura-krittavsetninger på Svalbard (Janusfjellsubgruppen). Thesis in geology, University of Oslo. In Norwegian. 213 pp. Kyte, 1991, Noble metal abundances in an Early Archean impact deposit, Geochimica et Cosmochimica Acta, 56, 1365, 10.1016/0016-7037(92)90067-S Langenhorst, F., Dypvik, H., 1996. Microstructural characteristics of shocked quartz from ejecta of the submarine Mjolnir impact structure, Barents Sea. Abstracts of Papers, Lunar and Planet. Sci. Conf. 27, Part 2 1996, 727–728. Leith, 1993, Mesozoic hydrocarbon source-rocks of the Arctic region, vol. 2, 1 Melosh, 1989 Mørk, 1999, Mesozoic lithostratigraphy, 127 Robin, 2001, Discovery of nickel–iron oxide particles in the ejecta-bearing strata of the latest Jurassic Mjølnir meteorite impact (Barents Sea), vol. 1, 67 Salvigsen, O., 2004. The Mjølnir Impact and the Janusfjellet section. Thesis in geology, University of Oslo. In Norwegian. 150 pp.Salvigsen, O., 2004. The Mjølnir Impact and the Janusfjellet section Thesis in geology, University of Oslo. In Norwegian. 150 pp. Sandbakken, P.T., 2002. A geological investigation of the Mjølnir Crater core (7329/03-U-01), with emphasis on shock metemorphosed quartz. Thesis in geology. University of Oslo, 142 pp. Shuvalov, 2004, Ejecta formation and crater development of the Mjølnir impact, Meteoritics and Planetary Sciences, 29, 467, 10.1111/j.1945-5100.2004.tb00105.x Shuvalov, 2002, Numerical simulations of the Mjølnir marine impact crater, Journal of Geophysical Research, 107, 10.1029/2001JE001698 Smelror, 2005, Dinoflagellate cysts and prasinophyte biostratigraphy of the Volgian–Ryazanian boundary strata, western Barents Shelf, Norges Geologiske Undersøkelse, Bulletin, 443, 61 Smelror, 2006, The sweet aftermath: environmental changes and biotic restoration following the marine Mjølnir impact (Volgian–Ryazanian boundary, Barents Shelf), 143 Smelror, 2001, Mjølnir (Barents Sea) meteorite impact ejecta offers a Boreal Jurassic–Cretaceous boundary marker, Newsletters in Stratigraphy, 38, 129, 10.1127/nos/38/2001/129 Smelror, 2001, Middle Jurassic–Lower Cretaceous transgressive–regressive sequences and facies distribution off Troms, northern Norway, vol. 10, 211 Smelror, 2002, Phytoplankton blooms in the Jurassic–Cretaceous boundary beds of the Barents Sea possibly induced by the Mjølnir impact, vol. 1, 69 Taylor, 1965, The application of trace element data to problems in petrology, vol. 6, 135 Tsikalas, 2005, Mjølnir Crater as a result of oblique impact: asymmetry evidence constrains impact direction and angle, 285 Tsikalas, 1998, The anatomy of a buried complex impact structure: the Mjølnir structure, Barents Sea, Journal of Geophysical Research, 103, 30,469, 10.1029/97JB03389 Worsley, 1988, The Mesozoic and Cenozoic succession of Tromsøflaket, vol. 4, 42 Zakharov, 1993, Iridium anomaly at the Jurassic–Cretaceous boundary in northern Siberia, Russian Journal Geology and Geophysics, 34, 83