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Cover image for Atmospheric boundary layers : nature, theory, and application to environmental modelling and security
Title:
Atmospheric boundary layers : nature, theory, and application to environmental modelling and security
Publication Information:
New York, NY : Springer Science+Business Media, 2007
Physical Description:
241 p. : ill. (some col.) ; 24 cm.
ISBN:
9780387743189
General Note:
"Papers from the NATO Advanced Research Workshop Atmospheric Boundary Layers: Modelling and Applications to Environmental Security, held in Dubrovnik, Croatia, 18-22 April, 2006"--P. 1.

"Previously published in journal Boundary-Layer Meteorology, Volume 125, no. 2."

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30000010177593 QC880.4.B65 N37 2007 Open Access Book Proceedings, Conference, Workshop etc.
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Summary

Summary

Most of practically-used turbulence closure models are based on the concept of downgra- ent transport. Accordingly the models express turbulent uxes of momentum and scalars as products of the mean gradient of the transported property and the corresponding turbulent transport coef cient (eddy viscosity, K , heat conductivity, K , or diffusivity, K ). Fol- M H D lowing Kolmogorov (1941), turbulent transport coef cients are taken to be proportional to the turbulent velocity scale, u , and length scale, l : T T K ? K ? K ? u l . (1) M H D T T 2 Usually u is identi ed with the turbulent kinetic energy (TKE) per unit mass, E ,and K T is calculated from the TKE budget equation using the Kolmogorov closure for the TKE dissipation rate: ? ? E /t , (2) K K T where t ? l /u is the turbulent dissipation time scale. This approach is justi ed when it T T T is applied to neutral stability ows, where l can be taken to be proportional to the distance T from the nearest wall. However, this method encounters dif culties in strati ed ows (both stable and uns- ble). The turbulent Prandtl number Pr = K /K exhibits essential dependence on the T M H strati cation and cannot be considered as constant.


Table of Contents

A. Baklanov and B. GrisogonoG.D. DjolovS.S. Zilitinkevich and T. Elperin and N. Kleeorin and I. RogachevskiiS.S. Zilitinkevich and I.N. EsauI.N. Esau and O. ByrkjedalA.P. Weigel and F.K. Chow and M.W. RotachL. MahrtA. Ebel and M. Memmesheimer and H.J. JakobsA.G.O. Goulart and G.A. Degrazia and O.C. Acevedo and D. AnfossiV.N. Kudryavtsev and V.K. MakinP.A. Taylor and P.-Y. Li and D.V. Michelangeli and J. Pathak and W. WengA.A. Grachev and E.L. Andreas and C.W. Fairall and P.S. Guest and P.O.G. PerssonL. Jarvi and A.-J. Punkka and D.M. Schultz and T. Petaja and H. Hohti and J. Rinne and T. Pohja and M. Kulmala and P. Hari and T. VesalaA.A.M. Holtslag and G.J. Steeneveld and B.J.H. van de WielI. Kavcic and B. GrisogonoM. Burlando and E. Georgieva and C.F. Ratto
Editorial
Atmospheric boundary layers: nature, theory and applications to environmental modelling and securityp. 1
Original Papers
Some modern features of boundary-layer meteorology: a birthday tribute for Sergej Zilitinkevichp. 5
Energy- and flux-budget (EFB) turbulence closure model for stably stratified flows. Part I: steady-state, homogeneous regimesp. 11
Similarity theory and calculation of turbulent fluxes at the surface for the stably stratified atmospheric boundary layerp. 37
Application of a large-eddy simulation database to optimisation of first-order closures for neutral and stably stratified boundary layersp. 51
The effect of mountainous topography on moisture exchange between the "surface" and the free atmospherep. 71
The influence of nonstationarity on the turbulent flux-gradient relationship for stable stratificationp. 89
Chemical perturbations in the planetary boundary layer and their relevance for chemistry transport modellingp. 109
Theoretical considerations of meandering winds in simplified conditionsp. 123
Aerodynamic roughness of the sea surface at high windsp. 133
Modelling dust distributions in the atmospheric boundary layer on Marsp. 149
On the turbulent Prandtl number in the stable atmospheric boundary layerp. 173
Micrometeorological observations of a microburst in southern Finlandp. 187
Role of land-surface temperature feedback on model performance for the stable boundary layerp. 205
Katabatic flow with Coriolis effect and gradually varying eddy diffusivityp. 221
Parameterisation of the planetary boundary layer for diagnostic wind modelsp. 233
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