Velocity perturbations and Reynolds stresses in Holmboe instabilities

Author:

Yang Adam J. K.1ORCID,Tedford E. W.1,Olsthoorn J.12ORCID,Lefauve A.3ORCID,Lawrence G. A.1ORCID

Affiliation:

1. Department of Civil Engineering, University of British Columbia, Vancouver, British Columbia V6T1Z4, Canada

2. Department of Civil Engineering, Queen’s University, Kingston, Ontario K7L 3N6, Canada

3. Department of Applied Mathematics and Theoretical Physics, University of Cambridge, Cambridge CB3 0WA, United Kingdom

Abstract

The velocity perturbations and Reynolds stresses associated with finite-amplitude Holmboe instabilities are investigated using linear stability analysis, numerical simulations, and laboratory experiments. The rightward and leftward propagating Holmboe instabilities are separated, allowing for a direct comparison of the perturbation fields between the numerical simulations and the linear stability analysis. The decomposition and superposition of the perturbation fields provide insights into the structure and origin of Reynolds stresses in Holmboe instabilities. Shear instabilities in stratified flows introduce a directional preference (anisotropy) in velocity perturbation fields, thereby generating Reynolds stresses. Here, we investigate this anisotropy by comparing pairs of horizontal and vertical velocity perturbations ([Formula: see text]), obtained from the simulations and the laboratory experiment, with predictions from linear stability analysis. For an individual Holmboe mode, both the simulations and linear theory yield elliptical ([Formula: see text])-pairs that are oriented toward the second and fourth quadrants ([Formula: see text]), corresponding to the tilted elliptical trajectories of particle movement. Combining the leftward and rightward Holmboe modes yields ([Formula: see text]) ellipses whose orientation and aspect ratio are phase-dependent. When averaged over a full cycle, the joint probability density functions of ([Formula: see text]) in the linear theory and single wavelength simulations exhibit “steering wheel” structures. This steering wheel is smeared out in multiple wavelength simulations and the laboratory experiment due to varying wavelengths, resulting in an elliptical cloud. All of the approaches adopted in the present study yield Reynolds stresses that are comparable to those reported in previous laboratory and field investigations.

Funder

Natural Sciences and Engineering Research Council of Canada

Publisher

AIP Publishing

Subject

Condensed Matter Physics,Fluid Flow and Transfer Processes,Mechanics of Materials,Computational Mechanics,Mechanical Engineering

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