Diagnosis of boundary-layer circulations

Author:

Beare Robert J.1,Cullen Michael J. P.2

Affiliation:

1. Departments of Mathematics and Computer Science, CEMPS, University of Exeter, Harrison Building, North Park Road, Exeter EX4 4QF, UK

2. Met Office, FitzRoy Road, Exeter EX1 3PB, UK

Abstract

Diagnoses of circulations in the vertical plane provide valuable insights into aspects of the dynamics of the climate system. Dynamical theories based on geostrophic balance have proved useful in deriving diagnostic equations for these circulations. For example, semi-geostrophic theory gives rise to the Sawyer–Eliassen equation (SEE) that predicts, among other things, circulations around mid-latitude fronts. A limitation of the SEE is the absence of a realistic boundary layer. However, the coupling provided by the boundary layer between the atmosphere and the surface is fundamental to the climate system. Here, we use a theory based on Ekman momentum balance to derive an SEE that includes a boundary layer (SEEBL). We consider a case study of a baroclinic low-level jet. The SEEBL solution shows significant benefits over Ekman pumping, including accommodating a boundary-layer depth that varies in space and structure, which accounts for buoyancy and momentum advection. The diagnosed low-level jet is stronger than that determined by Ekman balance. This is due to the inclusion of momentum advection. Momentum advection provides an additional mechanism for enhancement of the low-level jet that is distinct from inertial oscillations.

Publisher

The Royal Society

Subject

General Physics and Astronomy,General Engineering,General Mathematics

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