A nonlinear model for rotationally constrained convection with Ekman pumping
Keith Julien, Jonathan M. Aurnou, Michael A. Calkins, Edgar, Knobloch, Philippe Marti, Stephan Stellmach, Geoffrey M. Vasil

TL;DR
This paper develops a reduced nonlinear model for rapidly rotating convection with no-slip boundaries, highlighting how Ekman pumping significantly enhances heat transport through a thermal wind layer, contrasting linear theory predictions.
Contribution
It introduces a simplified model incorporating Ekman pumping effects in nonlinear rotating convection, emphasizing the role of thermal wind layers in heat transport enhancement.
Findings
Ekman pumping significantly increases heat transport.
Thermal wind layers prevent infinite heat transport.
Model aligns with experimental and simulation data.
Abstract
It is a well established result of linear theory that the influence of differing mechanical boundary conditions, i.e., stress-free or no-slip, on the primary instability in rotating convection becomes asymptotically small in the limit of rapid rotation. This is accounted for by the diminishing impact of the viscous stresses exerted within Ekman boundary layers and the associated vertical momentum transport by Ekman pumping. By contrast, in the nonlinear regime recent experiments and supporting simulations are now providing evidence that the efficiency of heat transport remains strongly influenced by Ekman pumping in the rapidly rotating limit. In this paper, a reduced model is developed for the case of low Rossby number convection in a plane layer geometry with no-slip upper and lower boundaries held at fixed temperatures. A complete description of the dynamics requires the existence of…
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