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October 20, 1980Journal of Geophysical Research Atmospheres1,077 citations

Sensitivity of a global climate model to an increase of CO2concentration in the atmosphere

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SMSyukuro ManabeRSRonald J. Stouffer

Key Points

  • To assess the climatic response and sensitivity of a global coupled atmosphere-land-ocean model to a quadrupling of atmospheric carbon dioxide concentration.
  • Coupled an atmospheric general circulation model with a continental heat and water balance model and a mixed-layer ocean model with realistic geography.
  • Prescribed seasonal insolation variations and latitude-height fixed cloud distributions for radiative transfer computations.
  • Evaluated climatic effects by comparing statistical equilibrium states between normal and fourfold atmospheric CO2 concentrations.
  • Warming showed marked seasonal and latitudinal variation, with Arctic winter warming substantially exceeding summer warming due to decreased sea ice thickness and extent.
  • Antarctic warming was weaker than high-latitude Northern Hemisphere warming due to the absence of an albedo feedback mechanism.
  • Enhanced tropical moisture uptake intensified poleward moisture transport, increasing high-latitude precipitation and runoff while accelerating snowmelt timing.

Abstract

This study investigates the response of a global model of the climate to the quadrupling of the CO 2 concentration in the atmosphere. The model consists of (1) a general circulation model of the atmosphere, (2) a heat and water balance model of the continents, and (3) a simple mixed layer model of the oceans. It has a global computational domain and realistic geography. For the computation of radiative transfer, the seasonal variation of insolation is imposed at the top of the model atmosphere, and the fixed distribution of cloud cover is prescribed as a function of latitude and of height. It is found that with some exceptions, the model succeeds in reproducing the large‐scale characteristics of seasonal and geographical variation of the observed atmospheric temperature. The climatic effect of a CO 2 increase is determined by comparing statistical equilibrium states of the model atmosphere with a normal concentration and with a 4 times the normal concentration of CO 2 in the air. It is found that the warming of the model atmosphere resulting from the CO 2 increase has significant seasonal and latitudinal variation. Because of the absence of an albedo feedback mechanism, the warming over the Antarctic continent is somewhat less than the warming in high latitudes of the northern hemisphere. Over the Arctic Ocean and its surroundings, the warming is much larger in winter than summer, thereby reducing the amplitude of seasonal temperature variation. It is concluded that this seasonal asymmetry in the warming results from the reduction in the coverage and thickness of the sea ice. The warming of the model atmosphere results in an enrichment of the moisture content in the air and an increase in the poleward moisture transport. The additional moisture is picked up from the tropical ocean and is brought to high latitudes where both precipitation and runoff increase throughout the year. Further, the time of rapid snowmelt and maximum runoff becomes earlier.

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Cite This Study

Manabe et al. (1980) studied this question.

synapsesocial.com/papers/69de9685499d77a496b0be52https://doi.org/10.1029/jc085ic10p05529
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