6533b823fe1ef96bd127f6ad
RESEARCH PRODUCT
Simulations of convectively-driven density currents in the Atlas region using a regional model: Impacts on dust emission and sensitivity to horizontal resolution and convection schemes
H. HuebenerUlrich CubaschIna TegenBernd HeinoldF. ReinfriedPeter KnippertzKerstin SchepanskiKerstin SchepanskiO. Hellmuthsubject
ConvectionAtmospheric Science010504 meteorology & atmospheric sciencesMeteorologySoil ScienceAquatic Science010502 geochemistry & geophysicsOceanographyAtmospheric sciences01 natural sciencesGeochemistry and PetrologyEarth and Planetary Sciences (miscellaneous)Physics::Atmospheric and Oceanic Physics0105 earth and related environmental sciencesEarth-Surface ProcessesWater Science and TechnologyEcologyAtlas (topology)PaleontologyForestryGeophysicsMountain chain13. Climate actionSpace and Planetary ScienceOutflowRegional modelCurrent densityParametrizationGeologyEvaporative coolerdescription
[1] During the SAMUM field campaign in southern Morocco in May and June 2006 density currents generated by evaporative cooling after convective precipitation were frequently observed at the Sahara side of the Atlas Mountain chain. The associated strong surface cold-air outflow during such events has been observed to lead to dust mobilization in the foothills. Here a regional model system is used to simulate a density current case on 3 June 2006 and the subsequent dust emission. The model studies are performed with different parameterization schemes for convection, and with different horizontal model grid resolutions to examine to which extent the model system can be used for reproducing dust emissions in this region. The effect of increasing the horizontal model grid resolution from 14 km to 2.8 km on the strength on the density currents and thus on dust emission is smaller than the differences due to different convection parameterization schemes in this case study. While the results in reproducing the observed density current at the Atlas Mountain varied with different convection parameterizations, the most realistic representation of the density current is obtained at 2.8 km grid resolution at which no parameterization of deep convection is needed.
year | journal | country | edition | language |
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2009-04-30 |