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A study of a fair weather boundary layer in TOGA-COARE: Parameterization of surface fluxes in large scale and regional models for light wind conditions
Authors:S Mondon  JL Redelsperger
Abstract:The study focuses on a way to parameterize the effect of subgrid scale convective motions on surface fluxes in large scale and regional models for the case of light surface winds. As previously proposed, these subgrid effects are assumed to scale with the convection intensity through the relationship: 
$$\overline U ^2  = U_0^2  + (\beta w_* )^2$$
where 
$$\overline U$$
is the mean velocity of the wind, U0 the velocity of the mean wind, w* the free convection velocity, and beta an empirical coefficient to be determined. Both observations and numerical simulation are presently used to determine the free convection coefficient beta.Large eddy simulation of a fair weather convective boundary layer case observed during TOGA-COARE is performed. Comparisons between observations and the simulation of surface properties and vertical profiles in the planetary boundary layer are presented. The simulated vertical turbulent fluxes of heat, moisture and buoyancy range well within estimates from aircraft measurements.The most important result is that the lsquotruersquo free convection coefficient beta, directly estimated from simulation, leads to a value of 0.65, smaller than the ones estimated from temporal and spatial variances. Using observations and simulation, estimates of beta from temporal and spatial variances are obtained with similar values ap 0.8. From both theoretical derivations and numerical computations, it is shown that estimates of the lsquotruersquo beta from variances are possible but only after applying a correction factor equal to 0.8. If this correction is not used, beta is overestimated by about 25%. The time and space sampling problem is also addressed in using numerical simulations.
Keywords:Convective boundary layer  Numerical model  Parameterization  Surface fluxes  TOGA-COARE
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