Hostname: page-component-8448b6f56d-t5pn6 Total loading time: 0 Render date: 2024-04-19T17:47:17.293Z Has data issue: false hasContentIssue false

Evolution of supercooling under coastal Antarctic sea ice during winter

Published online by Cambridge University Press:  27 April 2011

Gregory H. Leonard*
Affiliation:
Department of Physics, University of Otago, PO Box 56, Dunedin, New Zealand School of Surveying, University of Otago, PO Box 56, Dunedin, New Zealand
Patricia J. Langhorne
Affiliation:
Department of Physics, University of Otago, PO Box 56, Dunedin, New Zealand
Michael J.M. Williams
Affiliation:
National Institute of Water and Atmospheric Research, Private Bag 14901, Wellington, New Zealand
Ross Vennell
Affiliation:
Department of Marine Science, University of Otago, PO Box 56, Dunedin, New Zealand
Craig R. Purdie
Affiliation:
Department of Physics, University of Otago, PO Box 56, Dunedin, New Zealand
David E. Dempsey
Affiliation:
Department of Physics, University of Otago, PO Box 56, Dunedin, New Zealand Department of Engineering Science, University of Auckland, Private Bag 92019, Auckland, New Zealand
Timothy G. Haskell
Affiliation:
Industrial Research Limited, Gracefield Road, PO Box 31310, Lower Hutt, New Zealand
Russell D. Frew
Affiliation:
Department of Chemistry, University of Otago, PO Box 56, Dunedin, New Zealand

Abstract

Here we describe the evolution through winter of a layer of in situ supercooled water beneath the sea ice at a site close to the McMurdo Ice Shelf. From early winter (May), the temperature of the upper water column was below its surface freezing point, implying contact with an ice shelf at depth. By late winter the supercooled layer was c. 40 m deep with a maximum supercooling of c. 25 mK located 1–2 m below the sea ice-water interface. Transitory in situ supercooling events were also observed, one lasting c. 17 hours and reaching a depth of 70 m. In spite of these very low temperatures the isotopic composition of the water was relatively heavy, suggesting little glacial melt. Further, the water's temperature-salinity signature indicates contributions to water mass properties from High Salinity Shelf Water produced in areas of high sea ice production to the north of McMurdo Sound. Our measurements imply the existence of a heat sink beneath the supercooled layer that extracts heat from the ocean to thicken and cool this layer and contributes to the thickness of the sea ice cover. This sink is linked to the circulation pattern of the McMurdo Sound.

Type
Physical Sciences
Copyright
Copyright © Antarctic Science Ltd 2011

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

Albrecht, N. 2005. Internal waves in McMurdo Sound. MSc thesis, University of Otago, 241 pp. [Unpublished.].Google Scholar
Albrecht, N., Vennell, R., Williams, M., Stevens, C., Langhorne, P., Leonard, G.Haskell, T. 2006. Observation of sub-inertial internal tides in McMurdo Sound, Antarctica. Geophysical Research Letters, 33, 10.1029/2006GL027377.Google Scholar
Ashton, G.D., ed. 1986. River and lake ice engineering. Littleton, CO: Water Resources Publications, 486 pp.Google Scholar
Assman, K., Hellmer, H.H.Beckmann, A. 2003. Seasonal variation in circulation and water mass distribution on the Ross Sea continental shelf. Antarctic Science, 15, 311.CrossRefGoogle Scholar
Barry, J.P. 1988. Hydrographic patterns in McMurdo Sound, Antarctica and their relationship to local benthic communities. Polar Biology, 8, 377391.CrossRefGoogle Scholar
Barry, J.P.Dayton, P.K. 1988. Current patterns in McMurdo Sound, Antarctica and their relationship to local biotic communities. Polar Biology, 8, 367376.Google Scholar
Brunt, K.M., Sergienko, O.MacAyeal, D.R. 2006. Observations of unusual fast-ice conditions in the southwest Ross Sea, Antarctica: preliminary analysis of iceberg and storminess effects. Annals of Glaciology, 44, 183187.Google Scholar
Comiso, J.C.Nishio, F. 2008. Trends in the sea ice cover using enhanced and compatible AMSR-E, SSM/I, and SMMR data. Journal of Geophysical Research, 113, C02S07.Google Scholar
Crocker, G.B.Wadhams, P. 1989. Modelling Antarctic fast-ice growth. Journal of Glaciology, 35, 38.Google Scholar
Daly, S. 1984. Frazil ice dynamics. Hanover, NH: USA Cold Regions Research and Engineering Laboratory, Monograph 84-1.Google Scholar
Davey, F.J. 2004. Ross Sea bathymetry, 1:2 000 000, version 1.0, Geophysical Map. New Zealand: Institute of Geological & Nuclear Sciences.Google Scholar
Deacon, G.E.R. 1975. The oceanographical observations of Scott's last expedition. Polar Record, 17, 391396.CrossRefGoogle Scholar
Dempsey, D.E., Langhorne, P.J., Robinson, N.J., Williams, M.J.M., Haskell, T.G.Frew, R.D. 2010. Observation and modeling of platelet ice fabric in McMurdo Sound, Antarctica. Journal of Geophysical Research, 115, 10.1029/2008JC005264.Google Scholar
Dinniman, M.S., Klinck, J.M.Smith, W.O. Jr 2007. Influence of sea ice cover and icebergs on circulation and water mass formation in a numerical circulation model of the Ross Sea, Antarctica. Journal of Geophysical Research, 112, 10.1029/2006JC004036.CrossRefGoogle Scholar
Foldvik, A.Kvinge, T. 1974. Conditional instability of seawater at freezing-point. Deep-Sea Research, 21, 169174.Google Scholar
Gilmour, A.E., Macdonald, W.J.P.van der Hoeven, F.G. 1960. Ocean currents in McMurdo Sound. Nature, 187, 867.Google Scholar
Gilmour, A.E., McDonald, W.J.P.van der Hoeven, F.G. 1962. Winter measurements of sea currents in McMurdo Sound. New Zealand Journal of Geology and Geophysics, 5, 778789.Google Scholar
Goring, D.G.Pyne, A. 2003. Observations of sea level variability in Ross Sea, Antarctica. New Zealand Journal of Marine and Freshwater Research, 37, 241249.Google Scholar
Gow, A.J., Ackley, S.F.Govoni, J.W. 1998. Physical and structural properties of land-fast sea ice in McMurdo Sound, Antarctica. Antarctic Research Series, 74, 355374.Google Scholar
Heath, R.A. 1971. Circulation and hydrology under the seasonal ice in McMurdo Sound, Antarctica. New Zealand Journal of Marine and Freshwater Research, 5, 497515.CrossRefGoogle Scholar
Heath, R.A. 1977. Circulation across the ice shelf edge in McMurdo Sound, Antarctica. In Dunbar, M.J.,ed. Polar oceans. Calgary: Arctic Institute of North America, 129139.Google Scholar
Hellmer, H.H. 2004. Impact of Antarctic ice shelf basal melting on sea ice and deep ocean properties. Geophysical Research Letters, 31, 10.1029/2004GL019506.Google Scholar
Hunt, B.M., Hoefling, K.Cheng, C.H.C. 2003. Annual warming episodes in seawater temperatures in McMurdo Sound in relationship to endogenous ice in notothnioid fish. Antarctic Science, 15, 333338.Google Scholar
Jacobs, S.S., Fairbanks, R.G.Horibe, Y. 1985. Origin and evolution of water masses near the Antarctic continental margin: evidence from H218O/H216O ratios in sea water. Antarctic Research Series, 43, 5985.Google Scholar
Jacobs, S.S., Huppert, H.E., Holdsworth, G.Drewry, D.J. 1981. Thermohaline steps induced by melting of the Erebus Glacier Tongue. Journal of Geophysical Research, 86, 65476555.Google Scholar
Jeffries, M.O., Weeks, W.F., Shaw, R.Morris, K. 1993. Structural characteristics of congelation and platelet ice and their role in the development of Antarctic land-fast sea ice. Journal of Glaciology, 39, 223238.Google Scholar
Jeffries, M.O., Schwartz, K., Morris, K., Veazey, A.D., Krouse, H.R.Gushing, S. 1995. Evidence for platelet ice accretion in Arctic sea ice development. Journal of Geophysical Research, 100, 10 90510 914.Google Scholar
Leonard, G.H., Purdie, C.R., Langhorne, P.J., Haskell, T.G., Williams, M.J.M.Frew, R.D. 2006. Observations of platelet ice growth and oceanographic conditions during the winter of 2003 in McMurdo Sound, Antarctica. Journal of Geophysical Research, 111, 10.1029/2005JC002952.Google Scholar
Lewis, E.L.Lake, R.A. 1971. Sea ice and supercooled water. Journal of Geophysical Research, 76, 58365841.Google Scholar
Lewis, E.L.Perkin, R.G. 1983. Supercooling and energy exchange near the Arctic Ocean surface. Journal of Geophysical Research, 88, 76817685.Google Scholar
Lewis, E.L.Perkin, R.G. 1985. The winter oceanography of McMurdo Sound, Antarctica. Antarctic Research Series, 43, 145165.Google Scholar
Lewis, E.L.Perkin, R.G. 1986. Ice pumps and their rates. Journal of Geophysical Research, 91, 17561762.CrossRefGoogle Scholar
Littlepage, J.L. 1965. Oceanographic investigations in McMurdo Sound, Antarctica. Antarctic Research Series, 5, 137.Google Scholar
Loose, B., Schlosser, P., Smethie, W.M.Jacobs, S. 2009. An optimized estimate of glacial melt from the Ross Ice Shelf using noble gases, stable isotopes, and CFC transient tracers. Journal of Geophysical Research, 114, 10.1029/2008JC005048.Google Scholar
MacAyeal, D.R. 1985a. Evolution of tidally triggered meltwater plumes below ice shelves. Antarctic Research Series, 43, 133143.CrossRefGoogle Scholar
MacAyeal, D.R. 1985b. Tidal rectification below the Ross Ice Shelf, Antarctica. Antarctic Research Series, 43, 109132.CrossRefGoogle Scholar
Martin, S. 1981. Frazil ice in rivers and oceans. Annual Review of Fluid Mechanics, 13, 379397.CrossRefGoogle Scholar
McPhee, M.G., Morison, J.H.Nilsen, F. 2008. Revisiting heat and salt exchange at the ice-ocean interface: ocean flux and modeling considerations. Journal of Geophysical Research, 113, 10.1029/2007JC004383.Google Scholar
McRae, I.R. 1984. A summary of glaciological measurements made between 1960 and 1984 on the McMurdo Ice Shelf, Antarctica. University of Auckland: Department of Theoretical and Applied Mechanics, School of Engineering, Report 360.Google Scholar
Mitchell, W.M.Bye, J.A.T. 1985. Observations in the boundary layer under the sea ice in McMurdo Sound. Antarctic Research Series, 43, 167176.Google Scholar
Neal, V.T., Crew, H.Broome, R. 1976. Oceanographic measurements under winter ice in McMurdo Sound. Antarctic Journal of the United States, 11(4), 235239.Google Scholar
Nicholls, K.W., Makinson, K.Robinson, A.V. 1991. Ocean circulation beneath the Ronne Ice Shelf. Nature, 354, 221223.Google Scholar
Omstedt, A. 1985. On supercooling and ice formation in turbulent seawater. Journal of Glaciology, 31, 263271.Google Scholar
Petrelli, P., Bindoff, N.L.Bergamasco, A. 2008. The sea ice dynamics of Terra Nova Bay and Ross Ice Shelf polynyas during a spring and winter simulation. Journal of Geophysical Research, 113, 10.1029/2006JC004048.Google Scholar
Purdie, C.R., Langhorne, P.J., Leonard, G.H.Haskell, T.G. 2006. Growth of first-year landfast Antarctic sea ice determined from winter temperature measurements. Annals of Glaciology, 44, 170176.Google Scholar
Remy, J.P., Becquevort, S., Haskell, T.G.Tison, J.L. 2008. Impact of the B-15 iceberg “stranding event” on the physical and biological properties of sea ice in McMurdo Sound, Ross Sea, Antarctica. Antarctic Science, 20, 593604.Google Scholar
Robin, G. de Q. 1979. Formation, flow, and disintegration of ice shelves. Journal of Glaciology, 24, 259271.Google Scholar
Robinson, N.J., Williams, M.J.M., Barrett, P.J.Pyne, A.R. 2010. Observations of flow and ice-ocean interaction beneath the McMurdo Ice Shelf, Antarctica. Journal of Geophysical Research, 115, 10.1029/2008JC005255.Google Scholar
SCAR 1993. Antarctic Digital Database on CD-ROM. Cambridge, UK: Scott Polar Research Institute.Google Scholar
Skogseth, R., Nilsen, F.Smedsrud, L. 2009. Supercooled water in an Arctic polynya: observations and modelling. Journal of Glaciology, 55, 4352.Google Scholar
Smith, I.J. 2001. Platelet ice in McMurdo Sound, Antarctica. PhD thesis, University of Otago, 224 pp. [Unpublished.].Google Scholar
Smith, I.J., Langhorne, P.J., Trodahl, H.G., Haskell, T.G.Cole, D.M. 1999. Platelet ice - the McMurdo Sound debate. In Shen, H.T.,ed. Ice in surface waters: Proceedings of the 14th International Symposium on Ice, Potsdam, NY, USA. Rotterdam: Balkema, 829834.Google Scholar
Smith, I.J., Langhorne, P., Haskell, T., Trodahl, H., Frew, R.Vennell, M. 2001. Platelet ice and the land-fast sea ice of McMurdo Sound, Antarctica. Annals of Glaciology, 33, 2127.Google Scholar
Steele, M., Mellor, G.L.McPhee, M.G. 1989. Role of the molecular sublayer in the melting or freezing of sea ice. Journal of Physical Oceanography, 19, 139147.Google Scholar
Stevens, C.L., Robinson, N.J., Williams, M.J.M.Haskell, T.G. 2009. Observations of turbulence beneath sea ice in southern McMurdo Sound, Antarctica. Ocean Science, 5, 435445.Google Scholar
Stevens, C.L., Stewart, C.L., Robinson, N.J., Williams, M.J.M.Haskell, T.G. 2010. Flow and mixing around a glacier tongue. Ocean Science Discussions, 7, 14391467.Google Scholar
Tison, J.L., Khazendar, A.Roulin, E. 2001. A two-phase approach to the simulation of the combined isotope/salinity signal of marine ice. Journal of Geophysical Research, 106, 31 38731 401.Google Scholar
Tressler, W.L.Ommundsen, A.M. 1962. Seasonal oceanographic studies in McMurdo Sound, Antarctica. Washington DC: United States Navy Hydrographic Office, Technical Report 125.Google Scholar
UNESCO 1978. Freezing point temperature of seawater: Eighth Report of the Joint Panel on Oceanographic Tables and Standards. Woods Hole, MA: United Nations Educational, Scientific and Cultural Organization, Technical Papers in Marine Science 28.Google Scholar
Untersteiner, N.Sommerfeld, R. 1964. Supercooled water and bottom topography of floating ice. Journal of Geophysical Research, 69, 10571962.Google Scholar