An efficient surface energy–mass balance model for snow and ice
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Published:2019-05-28
Issue:5
Volume:13
Page:1529-1546
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ISSN:1994-0424
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Container-title:The Cryosphere
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language:en
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Short-container-title:The Cryosphere
Author:
Born Andreas, Imhof Michael A.ORCID, Stocker Thomas F.
Abstract
Abstract. A comprehensive understanding of the state and dynamics of the land
cryosphere and associated sea level rise is not possible without taking into
consideration the intrinsic timescales of the continental ice sheets. At the
same time, the ice sheet mass balance is the result of seasonal variations in
the meteorological conditions. Simulations of the coupled climate–ice-sheet
system thus face the dilemma of skillfully resolving short-lived phenomena,
while also being computationally fast enough to run over tens of thousands of
years. As a possible solution, we present the BErgen Snow SImulator (BESSI), a surface energy and mass balance
model that achieves computational efficiency while simulating all surface and
internal fluxes of heat and mass explicitly, based on physical first
principles. In its current configuration it covers most land areas of the
Northern Hemisphere. Input data are daily values of surface air temperature,
total precipitation, and shortwave radiation. The model is calibrated using
present-day observations of Greenland firn temperature, cumulative Greenland
mass changes, and monthly snow extent over the entire domain. The results of
the calibrated simulations are then discussed. Finally, as a first
application of the model and to illustrate its numerical efficiency, we
present the results of a large ensemble of simulations to assess the model's
sensitivity to variations in temperature and precipitation.
Funder
Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung
Publisher
Copernicus GmbH
Subject
Earth-Surface Processes,Water Science and Technology
Reference56 articles.
1. Abe-Ouchi, A., Saito, F., Kawamura, K., Raymo, M. E., Okuno, J., Takahashi,
K., and Blatter, H.: Insolation-driven 100,000-year glacial cycles and
hysteresis of ice-sheet volume, Nature, 500, 190–193,
https://doi.org/10.1038/nature12374, 2013. a 2. Amante, C. and Eakins, B. W.: ETOPO1 1 Arc-Minute Global Relief Model:
Procedures, Data Sources and Analysis, Tech. rep., NOAA Technical
Memorandum NESDIS NGDC-24, https://doi.org/10.7289/V5C8276M, 2009. a, b 3. Barnola, J. M., Pimienta, P., Raznaud, D., and Korotkevich, Y. S.:
CO2 climate relationship as deduced from the Vostok ice core: a
reexamination based on new measurements and on a reevaluation of the air
dating, Tellus, 43, 83–90, https://doi.org/10.1034/j.1600-0889.1991.t01-1-00002.x,
1991. a 4. Bartelt, P. and Lehning, M.: A physical SNOWPACK model for the Swiss
avalanche warning Part I: numerical model, Cold Reg. Sci. Technol., 35,
123–145, 2002. a 5. Bonelli, S., Charbit, S., Kageyama, M., Woillez, M.-N., Ramstein, G., Dumas,
C., and Quiquet, A.: Investigating the evolution of major Northern Hemisphere
ice sheets during the last glacial-interglacial cycle, Clim. Past, 5,
329–345, https://doi.org/10.5194/cp-5-329-2009, 2009. a
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