Hostname: page-component-586b7cd67f-gb8f7 Total loading time: 0 Render date: 2024-11-25T17:15:40.034Z Has data issue: false hasContentIssue false

Rapid Ice-Sheet Growth and Initiation of the Last Glaciation

Published online by Cambridge University Press:  20 January 2017

R.G. Johnson
Affiliation:
Corporate Technology Center, Honcywell, Inc., 10701 Lyndale Avenue South, Bloomington, Minnesota 55420 USA
J.T. Andrews
Affiliation:
University of Colorado, Institute of Arctic and Alpine Research, Boulder, Colorado 80302 USA Department of the Geological Sciences, Boulder, Colorado 80302 USA

Abstract

Calculations based on temperature-corrected oxygen-isotope ratios from deep-sea cores yield a glacioeustatic sea-level fall in excess of 50 m during the first 10,000 yr of the last glaciation, and generally support the local regression of about 70 m inferred from tectonically rising New Guinea beaches. We propose that this rapid glacial buildup depended on high-latitude cooling, and large increases of high-latitude regional winter precipitation in the Laurentide and the Fennoscandian-Barents Sea areas, and that these factors were caused by a critical alteration of North Atlantic Drift currents and their associated subpolar atmospheric circulation. In support of this, faunal data from northeast North Atlantic deep-sea cores show that the glacial buildup was accompanied by a sudden loss of most of the North Atlantic Drift from the Greenland-Norwegian Sea, a factor favoring reduced heat input into the higher latitudes. Subpolar mollusk and foraminifera fauna from elevated marine deposits on the Baffin Island coast, and northwest North Atlantic core data suggest a continuation or an associated restoration of subpolar water west of Greenland as far north as Baffin Bay, a factor favoring precipitation in the northeast Canadian region. Heat transport and atmospheric circulation considerations suggest that the loss of the northeast North Atlantic Drift was itself a major instrument of high-latitude climate change, and probably marked the initiation of major new ice-sheet growth.

Type
Research Article
Copyright
University of Washington

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

Andrews, J.T., (1974). Cainozoic glaciations and crustal movements of the Arctic. Ives, J.D., Barry, R.G., Arctic and Alpine Environments. Methuen, London, 277317.Google Scholar
Andrews, J.T., Mahaffy, M.A.W., (1976). Growth rate of the Laurentide Ice Sheet and sea level lowering (with emphasis on the 115,000 BP sea level low. Quaternary Research. 6, 167183.Google Scholar
Andrews, J.T., Miller, G.H., (1976). Quaternary glacial chronology of the eastern Canadian Arctic: A review and a contribution on amino acid dating of Quaternary molluscs from the Clyde cliffs. Mahanney, W.C., Quaternary Stratigraphy of North America. Dowden, Huchison, and Ross, Stroudsburg Pa, 132.Google Scholar
Andrews, J.T., Barry, R.G., Bradley, R.S., Miller, G.H., Williams, L.D., (1972). Past and present glaciological responses to climate in eastern Baffin Island. Quaternary Research. 2, 303314.CrossRefGoogle Scholar
Andrews, J.T., Feyling-Hanssen, R.W., Miller, G.H., Stuiver, M., Szabo, B.J., Schluchter, C., (1976). Alternative models of early and middle Wisconsin events, Broughton Island, Northwest Territory, Canada, toward a Quaternary chronology. Easterbrook, D.J., Sibrava, 238., Int. Geol. Correl. Program, 73 / 1 / 24, IUGS/UNESCO. Report No. 3. 2861 Washington/ Bellingham, Prague.Google Scholar
Andrews, J.T., Barry, R.G., (1978). Glacial inception and disintegration during the Last Glaciation. Annual Reviews of Earth and Planetary Science. 6, 205228.CrossRefGoogle Scholar
Baranowski, S., (1977). The subpolar glaciers of Spitsbergen seen against the climate of this region. Acta Universitatis Wratislaviensis Prace Geologiczno-Mineralogiczne. 410.Google Scholar
Barry, R.G., (1960). The application of synoptic studies in paleoclimatology: A case study for Labrador-Ungava. Geografiska Annaler. 42, 3644.Google Scholar
Barry, R.G., Andrews, J.T., Mahaffy, M.A., (1975). Continental ice sheets: Conditions for growth. Science. 190, 979981.Google Scholar
Berger, A.L., (1978). Long-term variations of caloric insolation resulting from the Earth's orbital elements. Quaternary Research. 9, 139167.CrossRefGoogle Scholar
Bjerknes, J., (1965). Atmosphere-ocean interaction during the “Little Ice Age” (seventeenth to nineteenth centuries A.D.). WMO TN No. 66: WMOIUGG symposium on Research and Development Aspects of Long-Range Forecasting in Boulder. Colorado, 1964 7788.Google Scholar
Bloom, A.L., Broecker, W.S., Chappell, J.M.A., Matthews, R.K., Mesolella, K.J., (1974). Quaternary sea level fluctuations on a tectonic coast: New 230Th/234U dates from the Huon Peninsula, New Guinea. Quaternary Research. 4, 185205.Google Scholar
Broecker, W.S., Li, Y.H., (1970). Interchanges of water between the major oceans. Journal of Geophysical Research. 75, 35453552.Google Scholar
Chappell, J.M.A., (1974). Geology of coral terraces, Huon Peninsula, New Guinea: A study of Quaternary tectonic movements and sea-level changes. Geological Society of America Bulletin. 85, 553570.Google Scholar
Chappell, J.M.A., Veeh, H.H., (1978). Late Quaternary tectonic movements and sea level changes at Timor and Atauro Island. Geological Society of America Bulletin. 89, 356368.2.0.CO;2>CrossRefGoogle Scholar
Clark, J.A., Lingle, C.S., (1977). Future sea level changes due to West Antarctic ice sheet fluctuations. Nature (London). 269, 206209.Google Scholar
Dansgaard, W., Tauber, H., (1969). Glacier oxygen-18 content and Pleistocene ocean temperatures. Science. 166, 499502.CrossRefGoogle ScholarPubMed
Dansgaard, W., Johnsen, S.J., Clausen, H.B., Langway, C.C., Turekian, K.K., (1971). Late Cenozoic Glacial Ages. Yale University Press, New Haven, 37.Google Scholar
England, J., Bradley, R.S., (1978). Past glacial activity in the Canadian High Arctic. Science. 200, 265270.CrossRefGoogle ScholarPubMed
Emiliani, C., (1955). Pleistocene temperatures. Journal of Geology. 63, 538578.Google Scholar
Emiliani, C., (1966). Paleotemperature analysis of Caribbean cores P6304-8 and P6304-9 and a generalized temperature curve for the past 425,000 years. Journal of Geology. 74, 109126.CrossRefGoogle Scholar
Emiliani, C., (1972). Quaternary paleotemperatures and the duration of the high temperature intervals. Science. 178, 398401.CrossRefGoogle ScholarPubMed
Fairbanks, R.G., Matthews, R.K., (1978). The marine oxygen isotope record in Pleistocene coral, Barbados, West Indies. Quaternary Research. 10, 181196.CrossRefGoogle Scholar
Farrell, W.E., Clark, J.A., (1976). On postglacial sea level. Geophysical Journal. 46, 647667.Google Scholar
Feyling-Hanssen, R.W., (1976a). A mid-Wisconsin interstadial on Broughton Island, Arctic Canada, and its foraminifera. Arctic and Alpine Research. 8, 161182.CrossRefGoogle Scholar
Feyling-Hanssen, R.W., (1976b) The Clyde Foreland Formation, a Micropaleontological Study of Quaternary Stratigraphy. Marine Sediments Special Publication, in press.Google Scholar
Feyling-Hanssen, R.W., (1976c). The stratigraphy of the Quaternary Clyde Foreland formation, Baffin Island, illustrated by the distribution of benthic foraminifera. Boreas. 5, 7794.Google Scholar
Flint, R.F., (1971) Glacial and Quaternary Geology. Wiley, New York. Google Scholar
Geitzenauer, K.R., Roche, M.B., McIntyre, A., (1976). Modern Pacific coccolith assemblages: Derivation and application to late Pleistocene paleotemperature analysis. Cline, R.R., Hays, J.D., Investigation of Late Quaternary Paleoceanography and Paleoclimatology. Geological Society of America Memoir. 145, 423449.Google Scholar
Imbrie, J., (1972). Correlation of the climatic record of the Camp Century ice core (Greenland) with foraminiferal paleotemperature curves from North Atlantic ddp sea cores. Geological Society of America Abstracts with Programs. 4, 7 550.Google Scholar
Ives, J.D., (1957). Glaciation of the Torngat Mountains, northern Labrador. Arctic. 10, 6786.Google Scholar
Johnsen, S.J., Dansgaard, W., Clausen, H.G., Langway, C.C., (1972). Oxygen isotope profiles through the Antarctic and Greenland ice sheets. Nature (London). 235, 429434.Google Scholar
Johnson, R.G., McClure, B.T., (1976). A model for Northern Hemisphere continental ice sheet variation. Quaternary Research. 6, 325353.CrossRefGoogle Scholar
Kellog, T.B., (1976). Late Quaternary climate changes: Evidence from deep-sea cores of Norwegian and Greenland Seas. Cline, R.M., Hays, J.D., Investigation of Late Quaternary Paleoceanography and Paleoclimatology. Geological Society of America Memoir. 145, 77109.Google Scholar
Klein, W.H., (1957) Principal Tracks and Mean Frequencies of Cyclones and Anticyclones in the Northern Hemisphere. Weather Bureau, U.S. Department of Commerce, Washington, D.C, Research Paper No. 40.Google Scholar
Kukla, G.J., Koci, A., (1972). End of the last interglacial in the loess record. Quaternary Research. 2, 374383.Google Scholar
Kvasov, D.D., Blazhchishin, A.I., (1978). The key to sources of Pliocene and Pleistocene glaciation is at the bottom of the Barents Sea. Nature (London). 273, 138140.CrossRefGoogle Scholar
Lamb, H.H., (1972) Climate: Present, Past and Future. Methuen, London, Vol. 1: Fundamentals and Climate Now.Google Scholar
Lamb, H.H., Woodroffe, A., (1970). Atmospheric circulation during the last ice age. Quaternary Research. 1, 2958.Google Scholar
Lubinsky, I., (1972). The Marine Bivalve Molluscs of the Canadian Arctic. Ph D. Thesis. McGill University, Montreal. Google Scholar
McIntyre, A., Ruddiman, W.F., (1972). Northeast Atlantic post-Eemian paleoceanography: A predictive analog of the future. Quaternary Research. 2, 350354.CrossRefGoogle Scholar
McIntyre, A., Kipp, N.G., , A.W.H., Crowley, T., Kellog, T., Gardner, J.239., (1976). Glacial North Atlantic 18,000 years ago: A CLIMAP reconstruction. Cline, R.M., Hays, J.D., Investigation of Late Quaternary Paleooceanography and Paleoclimatology. Geological Society of America Memoir. 145, 4376.Google Scholar
Mesolella, K.J., Mathews, R.K., Broecker, W.S., Thurber, D.L., (1969). The astronomical theory of climatic change: Barbados data. Journal of Geology. 77, 250274.CrossRefGoogle Scholar
Miller, G.H., Andrews, J.T., Short, S.K., (1977). The last interglacial-glacial cycle, Clyde foreland, Baffin Island, N.W.T.: Stratigraphy, biostratigraphy, and chronology. Canadian Journal of Earth Sciences. 14, 28422857.Google Scholar
Paterson, W.S.B., Koerner, R.M., Fisher, D., Johnsen, S.J., Clausen, H.G., Dansgaard, W., Bucher, P., Oeschger, H., (1977). An oxygen-isotope climatic record from the Devon Island ice cap, arctic Canada. Nature (London). 266, 508511.CrossRefGoogle Scholar
Prell, W.L., Gardner, J.240., , A.W.H., Hays, J.D., (1976). Equatorial Atlantic and Caribbean foraminiferal assemblages, temperatures, and circulation: Interglacial and glacial comparisons. Cline, R.M., Hays, J.D., Investigation of Late Quaternary Paleoceanography and Paleoclimatology. Geological Society of America Memoir. 145, 247266.CrossRefGoogle Scholar
Ruddiman, W.F., (1977). Late Quaternary deposition of ice-rafted sand in the subpolar North Atlantic. Geological Society of America Bulletin. 88, 18131827.Google Scholar
Ruddiman, W.F., Glover, L.K., (1972). Vertical mixing of ice-rafted volcanic ash in North Atlantic sediments. Geological Society of America Bulletin. 83, 28172836.Google Scholar
Salvigsen, O., (1977). Radiocarbon datings and the extension of the Weischelian ice-sheet in Svalbard. Norsk Polarinstitutt Arbok. 1976 209224.Google Scholar
Sancetta, C., Imbrie, J., Kipp, N.G., (1973). Climatic record of the past 130,000 years in the North Atlantic deep-sea core V23–82: Correlation with the terrestrial record. Quaternary Research. 3, 110116.Google Scholar
Shackleton, J.J., Opdyke, N.D., (1973). Oxygen isotope and paleomagnetic stratigraphy of equatorial Pacific core V28–238: Oxygen isotope temperatures and ice volumes on a 105 and 106 year scale. Quaternary Research. 3, 3955.Google Scholar
Shackleton, N.J., (1977). The oxygen isotope stratigraphic record of the Late Pleistocene. Philosophical Transactions of the Royal Society, London. B280, 169182.Google Scholar
Sparks, B.W., West, R.G., (1959). The paleoecology of the interglacial deposits at Histon Road, Cambridge. Eiszeitalter und Gegenwart. 10, 123143.Google Scholar
Streeter, S.S., Shackleton, N.J., (1979). Paleocirculation of the deep North Atlantic: A 150,000 year record of benthic foraminifera and 18O. Science. 203, 168170.CrossRefGoogle Scholar
Streeter, S.S., (1977). Deep circulation of the Atlantic Ocean over the last 150,000 years—two contrasting modalities. Geological Society of America Abstracts with Programs. 9, 1192.Google Scholar
Stuiver , M., ((1977)). Personal communication to J. T. Andrews.Google Scholar
Terasmae, J., Webber, P.J., Andrews, J.T., (1966). A study of late-Quaternary plant-bearing beds in north-central Baffin Island, Canada. Arctic. 19, 296318.CrossRefGoogle Scholar
Webber , P. J., ((1976)). Personal communication to J. T. Andrews.Google Scholar
Wijmstra, T.A., (1969). Palynology of the first 30 metres of a 120 m deep section in Northern Greece. Acta Botanica Neederland. 18, 4 511527.Google Scholar
Zagwijn, W.H., (1961). Vegetation, climate and radiocarbon dating in the late Pleistocene of the netherlands. Part I: Eemian and early Weichselian. Mededlingen Geol. Stichting Haarlem N. Seerie. 14, 1545.Google Scholar