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A theoretical investigation of bed-form shapes
Authors:Richard?Styles  author-information"  >  author-information__contact u-icon-before"  >  mailto:rstyles@geol.sc.edu"   title="  rstyles@geol.sc.edu"   itemprop="  email"   data-track="  click"   data-track-action="  Email author"   data-track-label="  "  >Email author,Scott M.?Glenn
Affiliation:(1) Marine Sciences Program, and Department of Geological Sciences, University of South Carolina, Columbia South Carolina, 29208, USA;(2) Institute of Marine and Coastal Sciences, Rutgers University, New Brunswick, New Jersey, 08901, USA
Abstract:The deformation of movable boundaries under the action of an applied turbulent shear stress is well known. The resulting bed forms often are highly organized and nearly two-dimensional, which makes them an intriguing focus of study considering that they are generated in both steady and oscillatory turbulent flows. Many past studies share a common approach in which an infinitesimal perturbation is prescribed and the resulting growth or decay patterns are examined. In this approach, the bed forms are usually sinusoidal and the perturbation analysis does not provide a theoretical prediction of equilibrium bed-form geometry. An alternative approach is suggested here in which the forcing terms (pressure and stress) are prescribed parametrically and the governing equations are solved for the flow velocity and the associated boundary deformation. Using a multilayered approach, in which the bottom boundary layer is divided into a discrete, yet, arbitrary number of finite layers, analytical solutions for the horizontal current and bed profile are derived. The derivations identify two nondimensional parameters, p0/u02 and Deltatau0/kh0u02, which modulate the amplitude of the velocity fluctuations and boundary deformation. For the case of combined pressure and stress divergence anomalies, the magnitude of the front face and lee slopes exhibit an asymmetry that is consistent with observed bed forms in steady two-dimensional flows.Responsible Editor: Jens Kappenberg
Keywords:Bed-forms  Boundary layers  Modeling
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