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The albedo of temperate and boreal forest and the Northern Hemisphere climate: a sensitivity experiment using the LMD GCM

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Abstract

A deforestation experiment is performed using the Laboratoire de Meteorologie Dynamique Atmospheric General Circulation Model (LMD GCM) to determine the climatic role of the largest vegetation formation in the Northern Hemisphere, localized mostly north of latitude 45°N, which is called the temperate and boreal forest. For this purpose, an iterative albedo scheme based on vegetation type, snow age, snowfall rate and area of snow cover, is developed for snow-covered surfaces. The results show a cooling of Northern Hemisphere soil and an increase in the snow cover when the forest is removed, as found by previous similar experiments.

In our study this cooling is related to different causes, depending on the season. It is linked to modifications in the soil radiative properties, like surface albedo, due to the disappearance of forest, and consequently, to a greater exposure of the snow-covered soil underneath. It is also related to alterations in the hydrological cycle, observed mainly in summer and autumn at middle latitudes. The model shows a strong sensitivity to the coupled surface albedo — soil temperature — fractional snow cover response in the spring. A later and longer snowmelt season is also detected.

This study adds to our understanding of climatic variation on longer time scales, since it is widely accepted that the formation and disappearance of different vegetation formations is closely related to climatic evolution patterns, in particular on the time scale of the glacial oscillations.

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References

  • Berger A (1992) Le climat de la terre. Un passe pour quel avenir? (ed) De Boeck Universite, pp 68–69, 81, 114–115

  • Bonan GB, Pollard D, Thompson SL (1992) Effects of boreal forest vegetation on global climate. Nature 359:716–718

    Article  Google Scholar 

  • Bonneau M, Bessemoulin P, Buffet M (1987) La nouvelle maladie des forets: description sommaire et causes possibles. La Météorologie 16:35–43

    Google Scholar 

  • Cess RD, Potter GL, Zhang MH, Blanchet J-P, Chalita S, Colman R, Dazlich DA, Del Genio AD, Dymnikov V, Galin V, Jerrett D, Keup E, Lacis AA, Le Trent H, Liang X-Z, Mahfouf J-F, McAvaney BJ, Meleshko VP, Mitchell JFB, Morcrette J-J, Norris PM, Randall DA, Rikus L, Roeckner E, Royer J-F, Schlese U, Sheinin DA, Slingo JM, Sokolov AP, Taylor KE, Washington WM, Wetherald RT, Yagai I (1991) Interpretation of snow-climate feedback as produced by 17 general circulation models. Science 253:888–892

    Google Scholar 

  • Chalita S (1992) Sensibilité du modèle de circulation atmosphérique du LMD a l'albédo de surfaces enneigées: Résultats préliminaires de rétroactions lieés a la couverture neigeuse. Thèse de Doctorat de l'Université PARIS VI

  • Chalita S, Le Treut H (1994) Validation of LMD AGCM results of seasonal snow cover over Northern Hemisphere continents from NOAA satellite data. (in preparation)

  • Dickinson RE, Henderson-Sellers A, Kennedy PJ, Wilson MF (1986) Biosphere-Atmosphere Transfer Scheme (BATS) for the NCAR Community Climate Model. NCAR Tech. TN-275 + STR R, Boulder, Colorado

  • Dorman JL, Sellers PJ (1989) A global climatology of albedo, roughness length and stomatal resistance for atmospheric general circulation models as represented by the Simple Biosphere Model SiB. J Appl Met 28:833–855

    Google Scholar 

  • Ducoudré NI, Laval K, Perrier A (1993) SECHIBA, a new set of parameterizations of the hydrologic exchanges at the land-atmosphere interface within the LMD Atmospheric General Circulation Model. J Climate 6:248–273

    Google Scholar 

  • Fouquart Y, Bonnel B (1980) Computations of solar heating of the earth's atmosphere: a new parametrisation. Beitr Phys Atmos 53:35–62

    Google Scholar 

  • Harvey LDD (1988) On the role of high latitude ice, snow, and vegetation feedbacks in the climatic response to external forcing changes. Climatic Change 13:191–224

    Google Scholar 

  • Hecht AD (1985) Paleoclimate Analysis and Modeling. (ed) J Wiley

  • Houghton JT, Jenkins GJ, Ephraums JJ (1990) Climate Change. The IPCC Scientific Assessment, Cambridge University Press, Cambridge

    Google Scholar 

  • Larson JC, Barkstrom BR (1977) Effects of realistic angular reflection laws for the earth's surface upon calculations of the earth-atmosphere albedo. In: Proceedings of the ‘Symposium on radiation in the atmosphere’, Science Press, pp 451–453

  • Li ZX, Le Trent H (1992) Cloud-radiation feedbacks in a general circulation model and this dependence on clouds modelling assumptions. Clim Dyn 7:133–139

    Google Scholar 

  • Manabe S, Wetherald RT (1985) CO2 and Hydrology. Adv Geophys 28A:131–157

    Google Scholar 

  • Manabe S, Wetherald RT (1986) Reduction in summer soil wetness induced by an increase in atmosphere carbon dioxide. Science 232:626–628

    Google Scholar 

  • Martin P (1993) Vegetation responses and feedbacks to climate: a review of models and processes. Clim Dyn 8:201–210

    Google Scholar 

  • Matthews E (1985) Atlas of archived vegetation, land-use and seasonal albedo data sets. NASA Technical Memorandum 86199

  • Mintz Y (1984) The sensitivity of numerically simulated climates to land-surface boundary conditions. In: Houghton (ed) The Global Climate, Cambridge University Press, pp 79–105

  • Mitchell JFB (1987) Simulation of climate change due to increased atmospheric carbon dioxide. Meteorol Mag 116:361–376

    Google Scholar 

  • Morcrette JJ (1991) Radiation and cloud radiative properties in the European Centre for Medium Range Weather Forecasts forecasting system. J Geophys Res 96:9121–9132

    Google Scholar 

  • Nesme-Ribes E, Ferreira EN, Sadourny R, Le Treut H, Li ZX (1993) Solar dynamics and its impact on solar irradiance and the terrestrial climate. J Geophys Res 98:923–935

    Google Scholar 

  • Otterman J, Chou M-D, Arking A (1984) Effects of nontropical forest cover on climate. J Appl Meteorol 23:762–767

    Google Scholar 

  • Rind D (1988) The doubled CO2 climate and the sensitivity of the modeled hydrological cycle. J Geophys Res 93:5385–5412

    Google Scholar 

  • Rind D, Peteet D, Kukla G (1989) Can Milankovitch orbital variations initiate the growth of ice sheets in a general circulation model? J Geophys Res 94:851–871

    Google Scholar 

  • Robinson DA, Kukla G (1984) Albedo of a dissipating snow cover. J Appl Meteorol 23:1626–1634

    Google Scholar 

  • Sadourny R, Laval K (1984) January and July performance of the LMD General Circulation Model. In: New Perspectives in Climate Modelling, AL Berger and C Nicolis (eds) Elsevier, Amsterdam, pp 173–197

    Google Scholar 

  • Sellers PJ, Mintz Y, Sud YC, Dalcher A (1986) A simple Biosphere Model (SiB) for use within general circulation models. J Atmos Sci 43:505–531

    Google Scholar 

  • Serafini YV (1990) The time scale of land surface hydrology in response to initial soil moisture anomalies: a case study. Tellus 42A:390–400

    Google Scholar 

  • Thomas G, Rowntree PR (1992) The boreal forests and climate. Quart J R Meteorol Soc 118:469–497

    Google Scholar 

  • Wiesnet DR, Ropelewski CF, Kukla GJ, Robinson DA (1987) A discussion of the accuracy of NOAA satellite-derived global seasonal snow cover measurements. In: BE Goodison, RG Barry and J Dozier (eds) Large-Scale Effects of Seasonal Snow Cover, IAHS Publ 166, IAHS Press, Wallingford, UK, pp 291–304

    Google Scholar 

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Chalita, S., Le Treut, H. The albedo of temperate and boreal forest and the Northern Hemisphere climate: a sensitivity experiment using the LMD GCM. Climate Dynamics 10, 231–240 (1994). https://doi.org/10.1007/BF00208990

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  • DOI: https://doi.org/10.1007/BF00208990

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