Resource

The Importance of Splat Events to the Spatiotemporal Structure of Near‐Bed Fluid Velocity and Bed Load Motion Over Bed Forms: Laboratory Experiments Downstream of a Backward Facing Step

Resource Type
Industry Papers and Articles
Reference Title
The Importance of Splat Events to the Spatiotemporal Structure of Near‐Bed Fluid Velocity and Bed Load Motion Over Bed Forms: Laboratory Experiments Downstream of a Backward Facing Step
Author/Presenter
Leary, K.C.P.
Schmeeckle, M. W.
Organization/Agency
American Geophysical Union
Year
2017
Journal Title
JGR: Earth Surface
Journal Volume
122
Journal Issue
12
ISBN/ISSN
Online ISSN:2169-9011
Abstract/Additional Information

Flow separation/reattachment on the lee side of alluvial bed forms is known to produce a complex turbulence field, but the spatiotemporal details of the associated patterns of bed load sediment transported remain largely unknown. Here we report turbulence‐resolving, simultaneous measurements of bed load motion and near‐bed fluid velocity downstream of a backward facing step in a laboratory flume. Two synchronized high‐speed video cameras simultaneously observed bed load motion and the motion of neutrally buoyant particles in a laser light sheet 6 mm above the bed at 250 frames/s downstream of a 3.8 cm backward facing step. Particle Imaging Velocimetry (PIV) and Acoustic Doppler Velocimetry (ADV) were used to characterize fluid turbulent patterns, while manual particle tracking techniques were used to characterize bed load transport. Octant analysis, conducted using ADV data, coupled with Markovian sequence probability analysis highlights differences in the flow near reattachment versus farther downstream. Near reattachment, three distinct flow patterns are apparent. Farther downstream we see the development of a dominant flow sequence. Localized, intermittent, high‐magnitude transport events are more apparent near flow reattachment. These events are composed of streamwise and cross‐stream fluxes of comparable magnitudes. Transport pattern and fluid velocity data are consistent with the existence of permeable “splat events,” wherein a volume of fluid moves toward and impinges on the bed (sweep) causing a radial movement of fluid in all directions around the point of impingement (outward interaction). This is congruent with flow patterns, identified with octant analysis, proximal to flow reattachment.