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Continental Ice Sheets and the Planetary Radiation Budget

Published online by Cambridge University Press:  20 January 2017

J. Oerlemans*
Affiliation:
Royal Netherlands Meteorological Institute, De Bilt, The Netherlands

Abstract

The interaction between continential ice sheets and the planetary radiation budget is potentially important in climate-sensitivity studies. A simple ice-sheet model incorporated in an energybalance climate model provides a tool for studying this interaction in a quantitative way. Experiments in which the ice-sheet model is coupled step by step to the climate model show that ice sheets hardly affect the zonal mean radiation balance because the albedo feedback due to sea ice and snow cover is dominating. The model requires a 5% drop in the solar constant to create ice sheets of ice-age size.

If the feedback between surface elevation and ice-mass balance is included (in a very crude way), the ice-sheet size (L, measured southward from 70°N) becomes much more sensitive to in insolation. For a range of normalized solar constants, roughly from 0.98 to 1.02, two stable solutions exist: L ⋍ 0 and L ⋍ 2000 km. This result demonstrates that the response of ice sheets to insolation variations is far from linear. It also stresses the need for explicit modeling of the ice-mass balance of ice sheets, particularly its dependence on surface elevation.

Type
Articles
Copyright
University of Washington

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References

Berliand, T.G. Strokina, L.A. Cloud regime over the globe. Proceedings of GGO, Physical Climatology, No. 338, Leningrad 1975 Google Scholar
Birchfield, G.E. A study of the stability of a model continental ice sheet subject to periodic variations in heat input. Journal of Geophysical Research 82 1977 4909 4913 CrossRefGoogle Scholar
Budd, W.F. Radok, U. Glaciers and other large ice masses. Reports on Progress in Physics 34 1971 1 70 Google Scholar
Budyko, M.I. The effect of solar radiation variations on the climate of the earth. Tellus 21 1969 611 619 Google Scholar
CLIMAP The surface of the ice-age earth. Science 191 1976 1131 1137 Google Scholar
Ellis, J.S. VonderHaar, T.H. Zonal Average Earth Radiation Budget Measurements from Satellites for Climate Studies 1976 Colorado State University Atmos. Sci. Paper No. 240 Google Scholar
Gal-Chen, T. Schneider, S.H. Energy balance climate modelling: Comparison of radiative and dynamic feedback mechanisms. Tellus 28 1976 108 121 CrossRefGoogle Scholar
Hartmann, D.L. Short, D.A. On the role of zonal asymmetries in climate change. Journal of Atmospheric Science 36 1979 519 528 2.0.CO;2>CrossRefGoogle Scholar
Houghton, J.T. The Physics of Atmospheres 1977 Cambridge Univ. Press London/New York Google Scholar
Manabe, S. Hahn, D.G. Simulation of the tropical climate of an ice age. Journal of Geophysical Research 27 1977 3889 3911 Google Scholar
North, G.R. Theory of energy-balance climate models. Journal of the Atmospheric Sciences 32 1975 2033 2043 Google Scholar
Nye, J.F. The motion of ice sheets and glaciers. Journal of Glaciology 3 1959 493 507 Google Scholar
Oerlemans, J. Van den Dool, H.M. Energy balance climate models: Stability experiments with a refined albedo and updated coefficients for infrared emission. Journal of the Atmospheric Sciences 35 1978 371 381 2.0.CO;2>CrossRefGoogle Scholar
Oort, A.H. Rasmusson, E.M. Atmospheric circulation statistics. NOAA Professional Paper 5 1971 Google Scholar
Paterson, W.S.B. The Physics of Glaciers 1969 Pergamon New York Google Scholar
Pollard, D. An investigation of the astronomical theory of the ice ages using a simple climate—ice sheet model. Nature (London) 272 1978 233 235 Google Scholar
Riehl, H. Introduction to the Atmosphere 1965 McGraw-Hill New York Google Scholar
Sellers, W.D. A global climatic model based on the energy balance of the earth-atmosphere system. Journal of Applied Meteorology 8 1969 392 400 2.0.CO;2>CrossRefGoogle Scholar
Weertman, J. Stability of ice-age ice sheets. Journal of Geophysical Research 66 1961 3783 3792 Google Scholar
Weertman, J. Rate of growth or shrinkage of non-equilibrium ice sheets. Journal of Glaciology 6 1964 145 158 Google Scholar
Weertman, J. Milankovitch solar radiation variations and ice age ice sheet sizes. Nature (London) 261 1976 17 20 Google Scholar
Williams, J. Barry, R.G. Washington, W.M. Simulation of the atmospheric circulation using the NCAR global circulation model with ice age boundary conditions. Journal of Applied Meteorology 13 1974 305 317 Google Scholar