HR: 09:45h
AN: A31E-07 [Abstracts]
TI: A dynamic similarity model for the subgrid-scale mixing of reactants in LES of atmospheric turbulent
reacting flows
AU: * Vinuesa, J
EM: vinue001@umn.edu
AF: Saint Anthony Falls Laboratory, University of Minnesota, Mississippi river at 3rd avenue SE,
Minneapolis, MN 55414
United States
AU: Porte-Agel, F
EM: fporte@umn.edu
AF: Saint Anthony Falls Laboratory, University of Minnesota, Mississippi river at 3rd avenue SE,
Minneapolis, MN 55414
United States
AB:
The chemical lifetime of reactants in the atmosphere can vary within a wide range of time scales. Some highly reactive
compounds such as OH and HO2 radicals have typical time scales smaller than a second. For such species, chemistry can be so
active that the chemical compounds react in situ and are hardly transported by the flow. In large eddy simulations (LES) of
atmospheric reacting flows, homogeneous and instantaneous mixing of reactants within a grid-cell is normally assumed.
However, this assumption can result in large errors in the estimation of the reaction rates due to the fact that highly
reactive species can be segregated or pre-mixed at small scales. Since this process occurs at scales smaller than the grid
length (sub-grid process), it requires a subgrid parameterization.
In this paper, we propose a parameterization for the subgrid chemical transformations. Its formulation relies on the
description of the subgrid covariance, i.e. the quantity that accounts for the mixing within a grid-cell, by using similarity
arguments. The model is tested in large eddy simulations of a convective atmospheric boundary layer with reactive chemical
species at different resolutions. The new model is able to capture the expected changes of magnitude of the subgrid
covariance associated with changes in resolution. As a result, the simulations yield resolution-independent overall reaction
rates (resolved plus subgrid reaction rates) and concentrations of reactants.
DE: 3379 Turbulence
DE: 3307 Boundary layer processes
DE: 3314 Convective processes
DE: 0368 Troposphere--constituent transport and chemistry
SC: Atmospheric Sciences [A]
MN: 2004 AGU Fall Meeting