Thermodynamic constraint on the depth of the global tropospheric circulation.

David W J Thompson, Sandrine Bony, Ying Li
Author Information
  1. David W J Thompson: Department of Atmospheric Science, Colorado State University, Fort Collins, CO 80523; davet@atmos.colostate.edu.
  2. Sandrine Bony: Sorbonne Université, LMD/IPSL, CNRS, Univ Paris 06, 75252 Paris, France.
  3. Ying Li: Department of Atmospheric Science, Colorado State University, Fort Collins, CO 80523.

Abstract

The troposphere is the region of the atmosphere characterized by low static stability, vigorous diabatic mixing, and widespread condensational heating in clouds. Previous research has argued that in the tropics, the upper bound on tropospheric mixing and clouds is constrained by the rapid decrease with height of the saturation water vapor pressure and hence radiative cooling by water vapor in clear-sky regions. Here the authors contend that the same basic physics play a key role in constraining the vertical structure of tropospheric mixing, tropopause temperature, and cloud-top temperature throughout the globe. It is argued that radiative cooling by water vapor plays an important role in governing the depth and amplitude of large-scale dynamics at extratropical latitudes.

Keywords

References

  1. Science. 2003 Jul 25;301(5632):479-83 [PMID: 12881562]
  2. Proc Natl Acad Sci U S A. 2016 Aug 9;113(32):8927-32 [PMID: 27412863]

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