Abstract
We took field observations on the shallow shoals of South San Francisco Bay to examine how sediment-induced stratification affects the mean flow and mixing of momentum and sediment throughout the water column. A Vectrino Profiler measured near-bed velocity and suspended sediment concentration profiles, which we used to calculate profiles of turbulent sediment and momentum fluxes. Additional turbulence statistics were calculated using data from acoustic Doppler velocimeters placed throughout the water column. Results showed that sediment-induced stratification, which was set up by strong near-bed wave shear, can reduce the frictional bottom drag felt by the mean flow. Measured turbulence statistics suggest that this drag reduction is caused by stratification suppressing near-bed turbulent fluxes and reducing turbulent kinetic energy dissipation. Turbulent sediment fluxes, however, were not shown to be limited by sediment-induced stratification. Finally, we compared our results to a common model parameterization which characterizes stratification through a stability parameter modification to the turbulent eddy viscosity and suggest a new nondimensional parameter that may be better suited to represent stratification when modeling oscillatory boundary layer flows.
DOI
10.1029/2019jc016022
Publication Date
2020-08-03
Publication Title
Journal of Geophysical Research: Oceans
Volume
125
Issue
8
ISSN
2169-9275
Embargo Period
2023-05-06
Organisational Unit
School of Biological and Marine Sciences
Recommended Citation
Egan, G., Manning, A., Chang, G., Fringer, O., & Monismith, S. (2020) 'Sediment‐Induced Stratification in an Estuarine Bottom Boundary Layer', Journal of Geophysical Research: Oceans, 125(8). Available at: https://doi.org/10.1029/2019jc016022