Articles | Volume 12, issue 16
https://doi.org/10.5194/acp-12-7727-2012
https://doi.org/10.5194/acp-12-7727-2012
Research article
 | 
28 Aug 2012
Research article |  | 28 Aug 2012

Hydration or dehydration: competing effects of upper tropospheric cloud radiation on the TTL water vapor

L. Wu, H. Su, J. H. Jiang, and W. G. Read

Related subject area

Subject: Clouds and Precipitation | Research Activity: Atmospheric Modelling and Data Analysis | Altitude Range: Troposphere | Science Focus: Physics (physical properties and processes)
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Cited articles

Brewer, A. W.: Evidence for a world circulation provided by the measurements of helium and water vapour distribution in the stratosphere, Q. J. R. Meteorol. Soc., 75, 351–363, 1949.
Chen, S.-H. and Sun, W.-Y.: A one-dimensional time dependent cloud model, J. Meteor. Soc. Jpn., 80, 99–118, 2002.
Chou M.-D. and Suarez, M. J.: An efficient thermal infrared radiation parameterization for use in general circulation models, NASA Tech. Memo. 104606, 3, 85 pp., 1994.
Corti, T., Luo, B. P., de Reus, M., Brunner, D., Cairo, F., Mahoney, M. J., Martucci, G., Matthey, R., Mitev, V., dos Santos, F. H., Schiller, C., Shur, G., Sitnikov, N. M., Spelten, N., Vössing, H. J., Borrmann, S., and Peter, T: Unprecedented evidence for deep convection hydrating the tropical stratosphere, Geophys. Res. Lett., 35, L10810, https://doi.org/10.1029/2008GL033641, 2008.
Corti, T., Luo, B. P., Peter, T., Vömel, H., and Fu, Q.: Mean radiative energy balance and vertical mass fluxes in the equatorial upper troposphere and lower stratosphere, Geophys. Res. Lett., 32, L06802, https://doi.org/10.1029/2004GL021889, 2005.
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