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The Relationship between Surface Water Masses, Oceanographic Fronts and Paleoclimatic Proxies in Surface Sediments of the Greenland, Iceland, Norwegian Seas

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Carbon Cycling in the Glacial Ocean: Constraints on the Ocean’s Role in Global Change

Part of the book series: NATO ASI Series ((ASII,volume 17))

Abstract

A detailed study of paleoclimatic proxy data (stable isotopes, planktonic foraminiferal census data, carbonate content, and Ice Rafted Detritus (IRD)) in the surface sediments of the Greenland, Iceland and Norwegian Seas (GIN-seas) shows that different proxies are closely related to the surface water masses, to the position of oceanic fronts and to the sea ice extent. Both stable isotopes, foraminifers and sedimentological data differentiate between Polar water with extensive sea ice cover, Arctic water with only seasonal sea ice cover, and warm Atlantic water. The fronts that border these surface water masses are also well defined. Polar water is characterized by lower carbon and oxygen isotope values than Arctic water, and a slightly lower content of Neogloboquadrina pachyderma sinistral in the Polar Front region. Carbonate content is low and IRD input is high in Polar waters. Arctic water has highest carbon and oxygen isotope values, and is completely dominated by N. pachyderma sin. The Arctic Front is reflected by a clear isotopic gradient and by a strong switch from N. pachyderma sin. dominance to Globigerina quinqueloba dominance. Atlantic Water is defined by lower carbon and oxygen isotope values and by dominance of N. pachyderma dextral and increased amounts of Globigerina bulloides. The results have implications for paleoceanographic reconstructions of cold environments and point to the possibility of better defining sea ice margins and convective regions as well as frontal positions in past high latitude oceans. Applying these results to the Last Glacial Maximum and the Younger Dryas indicates more dynamic and less sea ice covered surface conditions in the GIN-seas than in earlier reconstructions.

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References

  • Aagaard K, Swift JH, Carmack EC (1985) Thermohaline Circulation in the Arctic Mediterranean Seas, Journal of Geophysical Research, 90, 4833–4846.

    Article  Google Scholar 

  • Alekseev AP, Istochin BV (1956) Chart and constant current in the Norwegian and Greenland Seas, Trans. Knipovich Polar Sci. Inst., 9, 62–68.

    Google Scholar 

  • Bard E, Arnold M, Duprat J, Moyes J, Duplessy, JC (1987) Reconstruction of the last deglaciation: Deconvolved records of δ18O profiles, micropaleontological variations and accelerator mass spectrometric 14C dating, Climate Dynamics, 1, 101–112.

    Article  Google Scholar 

  • Berger WH, Heath GR (1968) Vertical mixing in pelagic sediments, Journal of Marine Research, 2, 134–143.

    Google Scholar 

  • Boyle EA (1988) Vertical oceanic nutrient fractionation and glacial/interglacial CO2 cycles, Nature, 331, 55.56.

    Google Scholar 

  • Broecker WS, Denton, GH (1989) The role of ocean-atmosphere reorganizations in glacial cycles, Geochimica et Cosmochimica Acta, 53, 2465–2501.

    Article  Google Scholar 

  • Charles CD, Fairbanks, RG (1992) Evidence from Southern Ocean sediments for the effect of North Atlantic deep-water flux on climate, Nature, 355, 416–419.

    Article  Google Scholar 

  • CLIMAP Project Members (1976) The surface of the ice-age earth, Science 191, 1131–1144.

    Article  Google Scholar 

  • CLIMAP Project Members (1981) Seasonal reconstruction of the earth’s surface at the last glacial maximum, Geological Society of America Map and Chart Series, MC-36.

    Google Scholar 

  • Dietrich G (1969) Atlas of the hydrography of the North Atlantic Ocean. Based on the Polar survey of the International Geophysical Year, winter and summer 1958, ICES Outside Series.

    Google Scholar 

  • Flatøy A (1991) Rekonstruksjon av vannmasser, fronter og isforhold i GIN-havet. Unpubl. Masters Thesis, University of Bergen, 1991.

    Google Scholar 

  • Hansen B, Meincke, J (1979) Eddies and meanders in the Iceland-Færø area, Deep-Sea Research, 26, 1067–1082.

    Article  Google Scholar 

  • Heiland-Hansen B, Nansen F. (1909) The Norwegian Sea. Its physical oceanography based upon the Norwegian researches 1900–1904, Reports on Norwegian Fishery and Marine Investigations, 2, 1–359.

    Google Scholar 

  • Hopkins TS (1991) The GIN Sea — A synthesis of its physical oceanography and literature review 1972–1985, Earth-Science Reviews, 30, 175–318.

    Article  Google Scholar 

  • Imbrie J, Boyle EA, Clemens S, Duffy A, Howard WR, Kukla G, Kutzbach J, Martinson DG, Morley JJ, Peterson LC, Pisias NG, Prell WL, Raymo ME, Shackleton NJ, Toggweiler, RJ (1992) On the structure and origin of major glaciation cycles: 1. Linear responses to Milankovitch Forcing, Paleoceanography 7, 701–738

    Article  Google Scholar 

  • Jansen E, Sejrup HP, Fjæran T, Hald, M, Holtedahl H, Skarbø O (1983) Late Weichselian paleoceanography of the southeastern Norwegian Sea, Norsk Geologisk Tidsskrift, 2–3, 118–146.

    Google Scholar 

  • Jansen E, Bjørklund KR (1985), Surface water circulation in the Norwegian Sea 15 000 B. P. to present, Boreas 14, 243–257.

    Article  Google Scholar 

  • Jansen E, Veum T (1991) Evidence for two step deglaciation and its impact on North Atlantic deep-water circulation, Nature 343, 612–616.

    Article  Google Scholar 

  • Johannessen, G (1993) Paleoseanografiske tidsbilder fra GIN-havet de siste 15000 år, Unpubl. Masters Thesis, Univ. of Bergen.

    Google Scholar 

  • Johannessen, T (1987) Resente planktoniske foraminiferer fra the Norskehavet, Islanshavet og Nordatlanteren. Taksonomi, faunafordeling og stabil-isotopsammensetning, Unpubl. Masters Thesis, University of Bergen.

    Google Scholar 

  • Johannessen, T (1992) Stable isotopes as climatic indicators in ocean and lake sediments, Unpubl. Dr. scient, thesis, Univ. of BergenS.

    Google Scholar 

  • Johannessen T, Jansen E, Ravelo AC (subm.), Distribution of carbon isotopes in recent subpolar and polar planktonic foraminifera: Relationship to water masses, nutrients and circulation, Submitted to Paleoceanography 1993.

    Google Scholar 

  • Jones G, Ruddiman WR (1982) Assessing the global meltwater spike, Quaternary Research, 17, 148–172.

    Article  Google Scholar 

  • Karpuz NK (1993) Application of marine diatoms for paleoceanographic reconstructions of the Greenland, Iceland and Norwegian Seas through the last 14 ka. Dr. scient, thesis, Bergen Univ.

    Google Scholar 

  • Karpuz NK, Jansen E (1992) A high resolution diatom record of the last deglaciation from the SE Norwegian Sea: documentation of rapid climatic changes. Paleoceanography 7, 499–520.

    Article  Google Scholar 

  • Keigwin LD, Boyle EA (1989) Late Quaternary Paleochemistry of high-latitude surface waters, Palaeogeography, Palaeoclimatology, Palaeoecology, 73, 85–106.

    Article  Google Scholar 

  • Kellogg TB (1975) Late Quaternary climate changes in the Norwegian and Greenland Seas. In: Bowling, S.A. and G. Weller (eds.), Climate of the Arctic, Univ. of Alaska, 3–36.

    Google Scholar 

  • Kellogg T B, Duplessy JC, Shackleton NJ (1978) Planktonic foraminiferal and oxygen isotopic stratigraphy and paleoclimatology of Norwegian Sea deep-sea cores, Boreas, 7, 61–73.

    Article  Google Scholar 

  • Lamb WH (1977) Climate variations and Changes in the Wind and Ocean circulation: The little Ice Age in the Northeast Atlantic. Quarternary Research, 11, 1–20, 1977.

    Article  Google Scholar 

  • Loubere P (1981) Oceanographic parameters reflected in the seabed distribution of planktic foraminifera from the North Atlantic and Mediterranean sea, J. Foram. Res. 11, 137–158.

    Article  Google Scholar 

  • Lutze GF (1964) Zum Färben rezenter Foraminiferen, Meymiana, 14, 43–41.

    Google Scholar 

  • Peng TH, Broecker WS, Berger WH (1979) Rates of benthic mixing in deep-sea sediments as determined by radio-active tracers, Quaternary Research, 11, 141–149.

    Article  Google Scholar 

  • Ramm M (1989) Late Quaternary carbonate sedimentation and paleoceanography in the eastern Norwegian Sea, Boreas 18, 255–272.

    Article  Google Scholar 

  • Ravelo AC, Johannessen T, Jansen E (in prep.) The Modern Distribution of 13C of ∑CO2 of the Sea Water in the GIN-Seas, manuscript in. prep.

    Google Scholar 

  • Sarnthein ME, Jansen E, Arnold M, Duplessy JC, Erlenkeuser H, Flatøy A, Veum T, Vogelsang E, Weinelt MS (1992) δ18O time-slice reconstruction of meltwater anomalies at termination 1 in the north Atlantic between 50 and 80°N, The last deglaciation: absolute and radiocarbon chronologies, E. Bard and W. S. Broecker (eds.), NATO ASI Series, Vol. 12, Springer-Verlag Berlin Heidelberg.

    Google Scholar 

  • Shackleton NJ, Imbrie J, Hall MA (1983) Oxygen and carbon isotope record of The East Pacific core V19–30: Implications for the formation of deep water in the late Pleistocene North Atlantic, Earth Planetary Science Letter 65, 233–244.

    Article  Google Scholar 

  • Stefánsson U (1962) North Icelandic Waters, Rit Fiskideildar, 3, 269.

    Google Scholar 

  • Swift JH, Aagaard (1981) Seasonal transitions and water mass formation in the Iceland and Greenland seas, Deep-Sea Research, 28A, 1107–1129.

    Article  Google Scholar 

  • Veum T, Jansen E, Arnold M, Beyer I, Duplessy JC (1992) Water mass exchange in the North Atlantic and the Norwegian Sea during the past 28,000 years, Nature, 356, 783–785.

    Article  Google Scholar 

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© 1994 Springer-Verlag Berlin Heidelberg

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Johannessen, T., Jansen, E., Flatøy, A., Ravelo, A.C. (1994). The Relationship between Surface Water Masses, Oceanographic Fronts and Paleoclimatic Proxies in Surface Sediments of the Greenland, Iceland, Norwegian Seas. In: Zahn, R., Pedersen, T.F., Kaminski, M.A., Labeyrie, L. (eds) Carbon Cycling in the Glacial Ocean: Constraints on the Ocean’s Role in Global Change. NATO ASI Series, vol 17. Springer, Berlin, Heidelberg. https://doi.org/10.1007/978-3-642-78737-9_4

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  • DOI: https://doi.org/10.1007/978-3-642-78737-9_4

  • Publisher Name: Springer, Berlin, Heidelberg

  • Print ISBN: 978-3-642-78739-3

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