The annual cycle of stratospheric water vapor in a general circulation model
- 20 April 1995
- journal article
- Published by American Geophysical Union (AGU) in Journal of Geophysical Research: Atmospheres
- Vol. 100 (D4) , 7363-7379
- https://doi.org/10.1029/94jd03301
Abstract
The application of general circulation models (GCMs) to stratospheric chemistry and transport both permits and requires a thorough investigation of stratospheric water vapor. The National Center for Atmospheric Research has redesigned its GCM, the Community Climate Model (CCM2), to enable studies of the chemistry and transport of tracers including water vapor; the importance of water vapor to the climate and chemistry of the stratosphere requires that it be better understood in the atmosphere and well represented in the model. In this study, methane is carried as a tracer and converted to water; this simple chemistry provides an adequate representation of the upper stratospheric water vapor source. The cold temperature bias in the winter polar stratosphere, which the CCM2 shares with other GCMs, produces excessive dehydration in the southern hemisphere, but this dry bias can be ameliorated by setting a minimum vapor pressure. The CCM2's water vapor distribution and seasonality compare favorably with observations in many respects, though seasonal variations including the upper stratospheric semiannual oscillation are generally too small. Southern polar dehydration affects midlatitude water vapor mixing ratios by a few tenths of a part per million, mostly after the demise of the vortex. The annual cycle of water vapor in the tropical and northern midlatitude lower stratosphere is dominated by drying at the tropical tropopause. Water vapor has a longer adjustment time than methane and had not reached equilibrium at the end of the 9 years simulated here.Keywords
This publication has 52 references indexed in Scilit:
- A three‐dimensional general circulation model with coupled chemistry for the middle atmosphereJournal of Geophysical Research: Atmospheres, 1995
- Quasi‐horizontal transport and mixing in the Antarctic stratosphereJournal of Geophysical Research: Atmospheres, 1994
- Characteristics of stratosphere‐troposphere exchange in a general circulation modelJournal of Geophysical Research: Atmospheres, 1994
- Parameterization of moist convection in the National Center for Atmospheric Research community climate model (CCM2)Journal of Geophysical Research: Atmospheres, 1994
- Springtime stratospheric water vapour in the southern hemisphere as measured by MLSGeophysical Research Letters, 1993
- Stratospheric dryness: Antiphased desiccation over Micronesia and AntarcticaGeophysical Research Letters, 1993
- On the Antarctic ozone holeJournal of Atmospheric and Terrestrial Physics, 1989
- Stratospheric Water Vapor Variability for Washington, DC/Boulder, CO: 1964–82Journal of the Atmospheric Sciences, 1983
- Transport of water through the tropical tropopauseGeophysical Research Letters, 1982
- A Stratospheric Fountain?Journal of the Atmospheric Sciences, 1981