4.7 Article

The turbulent/non-turbulent interface in an inclined dense gravity current

期刊

JOURNAL OF FLUID MECHANICS
卷 765, 期 -, 页码 -

出版社

CAMBRIDGE UNIV PRESS
DOI: 10.1017/jfm.2014.738

关键词

gravity currents; stratified flows; turbulent mixing

资金

  1. Swiss National Science Foundation (SNF) [200021/132567]
  2. Swiss National Science Foundation (SNF) [200021_132567] Funding Source: Swiss National Science Foundation (SNF)

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We present an experimental investigation of entrainment and the dynamics near the turbulent/non-turbulent interface in a dense gravity current. The main goal of the study is to investigate changes in the interfacial physics due to the presence of stratification and to examine their impact on the entrainment rate. To this end, three-dimensional data sets of the density and the velocity fields are obtained through a combined scanning particle tracking velocimetry/laser-induced fluorescence approach for two different stratification levels with inflow Richardson numbers of Ri(0) = 0.23 and Ri(0) = 0.46, respectively, at a Reynolds number around Re-0 = 3700. An analysis conditioned on the instantaneous position of the turbulent/non-turbulent interface as defined by a threshold on enstrophy reveals an interfacial region that is in many aspects independent of the initial level of stratification. This is reflected most prominently in matching peaks of the gradient Richardson number Ri(s) approximate to 0.1 located approximately 10 eta from the position of the interface inside the turbulent region, where eta = (nu(3)/epsilon)(1/4) is the Kolmogorov scale, and nu and epsilon denote the kinematic viscosity and the rate of turbulent dissipation, respectively. A possible explanation for this finding is offered in terms of a cyclic evolution in the interaction of stratification and shear involving the buildup of density and velocity gradients through inviscid amplification and their subsequent depletion through molecular effects and pressure. In accordance with the close agreement of the interfacial properties for the two cases, no significant differences were found for the local entrainment velocity, nu(n) (defined as the propagation velocity of an enstrophy isosurface relative to the fluid), at different initial stratification levels. Moreover, we find that the baroclinic torque does not contribute significantly to the local entrainment velocity. Comparing results for the surface area of the convoluted interface to estimates from fractal scaling theory, we identify differences in the interface geometry as the major factor in the reduction of the entrainment rate due to density stratification.

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