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Development and Evaluation of a Convection Scheme for Use in Climate Models

Journal of the Atmospheric Sciences · 1999 · Vol. 56(11) · pp. 1766–1782
Kerry EmanuelMarina Živković-Rothman

Abstract

Cumulus convection is a key process in controlling the water vapor content of the atmosphere, which is in turn the largest feedback mechanism for climate change in global climate models. Yet scant attention has been paid to designing convective representations that attempt to handle water vapor with fidelity, and even less to evaluating their performance. Here the authors attempt to address this deficiency by designing a representation of cumulus convection with close attention paid to convective water fluxes and by subjecting the scheme to rigorous tests using sounding array data. The authors maintain that such tests, in which a single-column model is forced by large-scale processes measured by or inferred from the sounding data, must be carried out over a period at least as long as the radiative-subsidence timescale-about 30 days-governing the water vapor adjustment time. The authors also argue that the observed forcing must be preconditioned to guarantee integral enthalpy conservation, else errors in the single-column prediction may be falsely attributed to convective schemes.

Climate variability and modelsMeteorological Phenomena and SimulationsAtmospheric and Environmental Gas DynamicsDepth soundingWater vaporConvectionSubsidenceEnvironmental scienceForcing (mathematics)ClimatologyAtmosphere (unit)ResidualClimate model

Funding

  • U.S. Department of Energy
Citations
852
FWCI
10.92
field-weighted impact
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51
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