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contributor authorJones, Daniel C.
contributor authorIto, Takamitsu
contributor authorBirner, Thomas
contributor authorKlocker, Andreas
contributor authorMunday, David
date accessioned2017-06-09T17:21:22Z
date available2017-06-09T17:21:22Z
date copyright2015/12/01
date issued2015
identifier issn0022-3670
identifier otherams-83731.pdf
identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4226988
description abstractn planetary scales, surface wind stress and differential buoyancy forcing act together to produce isopycnal surfaces that are relatively flat in the tropics/subtropics and steep near the poles, where they tend to outcrop. Tilted isopycnals in a rapidly rotating fluid are subject to baroclinic instability. The turbulent, mesoscale eddies generated by this instability have a tendency to homogenize potential vorticity (PV) along density surfaces. In the Southern Ocean (SO), the tilt of isopycnals is largely maintained by competition between the steepening effect of surface forcing and the flattening effect of turbulent, spatially inhomogeneous eddy fluxes of PV. Here quasigeostrophic theory is used to investigate the influence of a planetary?geometric constraint on the equilibrium slope of tilted density/buoyancy surfaces in the SO. If the meridional gradients of relative vorticity and PV are small relative to ?, then quasigeostrophic theory predicts ds/dz = ?/f0 = cot(?0)/a, or equivalently r ≡ |?zs/(?/f0)| = 1, where f is the Coriolis parameter, ? is the meridional gradient of f, s is the isopycnal slope, ?0 is a reference latitude, a is the planetary radius, and r is the depth-averaged criticality parameter. It is found that the strict r = 1 condition holds over specific averaging volumes in a large-scale climatology. A weaker r = O(1) condition for depth-averaged quantities is generally satisfied away from large bathymetric features. The r = O(1) constraint is employed to derive a depth scale to characterize large-scale interior stratification, and an idealized sector model is used to test the sensitivity of this relationship to surface wind forcing. Finally, the possible implications for eddy flux parameterization and for the sensitivity of SO circulation/stratification to changes in forcing are discussed.
publisherAmerican Meteorological Society
titlePlanetary–Geometric Constraints on Isopycnal Slope in the Southern Ocean
typeJournal Paper
journal volume45
journal issue12
journal titleJournal of Physical Oceanography
identifier doi10.1175/JPO-D-15-0034.1
journal fristpage2991
journal lastpage3004
treeJournal of Physical Oceanography:;2015:;Volume( 045 ):;issue: 012
contenttypeFulltext


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