English

Mixing and entrainment are suppressed in inclined gravity currents

Fluid Dynamics 2019-07-10 v2

Abstract

We explore the dynamics of inclined temporal gravity currents using direct numerical simulation, and find that the current creates an environment in which the flux Richardson number RifRi_f, gradient Richardson number RigRi_g, and turbulent flux coefficient Γ\Gamma are constant across a large portion of the depth. Changing the slope angle α\alpha modifies these mixing parameters, and the flow approaches a maximum Richardson number Rimax0.15Ri_\textrm{max}\approx 0.15 as α0\alpha \rightarrow 0 at which the entrainment coefficient E0E \rightarrow 0. The turbulent Prandtl number remains O(1)O(1) for all slope angles, demonstrating that E0E\rightarrow 0 is not caused by a switch-off of the turbulent buoyancy flux as conjectured by Ellison (1957). Instead, E0E \rightarrow 0 occurs as the result of the turbulence intensity going to zero as α0\alpha\rightarrow 0, due to the flow requiring larger and larger shear to maintain the same level of turbulence. We develop an approximate model valid for small α\alpha which is able to predict accurately RifRi_f, RigRi_g and Γ\Gamma as a function of α\alpha and their maximum attainable values. The model predicts an entrainment law of the form E=0.31(RimaxRi)E=0.31(Ri_\textrm{max}-Ri), which is in good agreement with the simulation data. The simulations and model presented here contribute to a growing body of evidence that an approach to a marginally or critically stable, relatively weakly stratified equilibrium for stratified shear flows may well be a generic property of turbulent stratified flows.

Keywords

Cite

@article{arxiv.1808.08980,
  title  = {Mixing and entrainment are suppressed in inclined gravity currents},
  author = {Maarten van Reeuwijk and Markus Holzner and C. P. Caulfield},
  journal= {arXiv preprint arXiv:1808.08980},
  year   = {2019}
}