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contributor authorvan Hooijdonk, Ivo G. S.
contributor authorClercx, Herman J. H.
contributor authorAnsorge, Cedrick
contributor authorMoene, Arnold F.
contributor authorvan de Wiel, Bas J. H.
date accessioned2019-09-19T10:07:45Z
date available2019-09-19T10:07:45Z
date copyright6/28/2018 12:00:00 AM
date issued2018
identifier otherjas-d-17-0335.1.pdf
identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4261854
description abstractAbstractWe perform direct numerical simulation of the Couette flow as a model for the stable boundary layer. The flow evolution is investigated for combinations of the (bulk) Reynolds number and the imposed surface buoyancy flux. First, we establish what the similarities and differences are between applying a fixed buoyancy difference (Dirichlet) and a fixed buoyancy flux (Neumann) as boundary conditions. Moreover, two distinct parameters were recently proposed for the turbulent-to-laminar transition: the Reynolds number based on the Obukhov length and the ?shear capacity,? a velocity-scale ratio based on the buoyancy flux maximum. We study how these parameters relate to each other and to the atmospheric boundary layer. The results show that in a weakly stratified equilibrium state, the flow statistics are virtually the same between the different types of boundary conditions. However, at stronger stratification and, more generally, in nonequilibrium conditions, the flow statistics do depend on the type of boundary condition imposed. In the case of Neumann boundary conditions, a clear sensitivity to the initial stratification strength is observed because of the existence of multiple equilibriums, while for Dirichlet boundary conditions, only one statistically steady turbulent equilibrium exists for a particular set of boundary conditions. As in previous studies, we find that when the imposed surface flux is larger than the maximum buoyancy flux, no turbulent steady state occurs. Analytical investigation and simulation data indicate that this maximum buoyancy flux converges for increasing Reynolds numbers, which suggests a possible extrapolation to the atmospheric case.
publisherAmerican Meteorological Society
titleParameters for the Collapse of Turbulence in the Stratified Plane Couette Flow
typeJournal Paper
journal volume75
journal issue9
journal titleJournal of the Atmospheric Sciences
identifier doi10.1175/JAS-D-17-0335.1
journal fristpage3211
journal lastpage3231
treeJournal of the Atmospheric Sciences:;2018:;volume 075:;issue 009
contenttypeFulltext


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