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States of maximum entropy production in a one-dimensional vertical model with convective adjustment Cover

States of maximum entropy production in a one-dimensional vertical model with convective adjustment

By:  and    
Open Access
|Jan 2002

Abstract

We investigate the hypothesis that the atmosphere is constrained to maximize its entropy production by using a one-dimensional (1-D) vertical model. We prescribe the lapse rate in the convective layer as that of the standard troposphere. The assumption that convection sustains a critical lapse rate was absent in previous studies, which focused on the vertical distribution of climatic variables, since such a convective adjustment reduces the degrees of freedom of the system and may prevent the application of the maximum entropy production (MEP) principle. This is not the case in the radiative–convective model (RCM) developed here, since we accept a discontinuity of temperatures at the surface similar to that adopted in many RCMs.

For current conditions, the MEP state gives a difference between the ground temperature and the air temperature at the surface ≈10 K. In comparison, conventional RCMs obtain a discontinuity ≈2 K only. However, the surface boundary layer velocity in the MEP state appears reasonable (≈3 m s-1). Moreover, although the convective flux at the surface in MEP states is almost uniform in optically thick atmospheres, it reaches a maximum value for anoptical thickness similar to current conditions. This additional result may support the maximum convection hypothesis suggested by Paltridge (1978).

Language: English
Page range: 363 - 369
Submitted on: Oct 1, 2001
Accepted on: Jan 20, 2002
Published on: Jan 1, 2002
Published by: Stockholm University Press
In partnership with: Paradigm Publishing Services

© 2002 Toni Pujol, Joaquim Fort, published by Stockholm University Press
This work is licensed under the Creative Commons Attribution 4.0 License.