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The Atmospheric Boundary-Layer Structure Within A Cold Air Outbreak: Comparison Of In Situ, Lidar And Satellite Measurements With Three-Dimensional Simulations
Authors:Cyrille Flamant  Marc Georgelin  Laurent Menut  Jacques Pelon  Philippe Bougeault
Institution:(1) Service d'Aéronomie, Institut Pierre Simon Laplace, CNRS, Tour 15, Boîte 102, Université Pierre et Marie Curie, 4 Place Jussieu, 75252 Paris Cedex 05, France;(2) Laboratoire d'Aérologie, CNRS, Toulouse, France;(3) Laboratoire de Météorologie Dynamique, Institut Pierre Simon Laplace, CNRS, Palaiseau, France;(4) Service d'Aéronomie, Institut Pierre Simon Laplace, CNRS, Paris, France;(5) Centre National de Recherches Météorologiques, Météo-France, Toulouse, France
Abstract:A cold-air outbreak over the Mediterranean, associated with a Tramontane event, has been simulated with the atmospheric non-hydrostatic model Meso-NH using a horizontal resolution of 2 km. Results are compared with in situ aircraft, airborne lidar and satellite measurements. On average, the mean and turbulent parameters simulated in the surface layer and mixed layer compared well with in situ measurements. The model was able to reproduce accurately the Foehn effect in the wake of Cape Creus, as well as the occurence of rolls in the coastal region in connection with cloud streets observed with AVHRR. Over the sea, the threshold value of turbulent kinetic energy defining the height of the atmospheric boundary-layer top in the model (defined as 25% of the maximum turbulent kinetic energy in the profile) enables the simulated atmospheric boundary-layer height to match the one retrieved from lidar measurements. Nevertheless, the model did not handle very well the abrupt gradients of all meteorological parameters observed at the top of the atmospheric boundary-layer. Reasons for this are investigated.
Keywords:Airborne lidar  Boundary-layer structure  Cold-air outbreak  Mesoscale numerical modelling  Rolls  Satellite
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