Stratification on the Skagit Bay Tidal Flats

Abstract

Estuarine density stratification may be controlled primarily by cross-shore processes (analogous to longitudinal control in narrow estuaries), or by both cross- and alongshore processes (typical of coastal plumes). Here field observations and numerical modeling are used to investigate stratification on the lowsloped, periodically inundated Skagit Bay tidal flats. Advection of stratification by the depth-averaged velocity, straining of the horizontal density gradient by velocity shear, and turbulent mixing are shown to be the dominant processes. On the south-central flats (near the south fork river mouth) velocities are roughly rectilinear, and the largest terms are in the major velocity direction (roughly cross-shore). However, on the north flats (near the north fork river mouth), velocity ellipses are nearly circular owing to strong alongshore tidal flows and alongshore stratification processes are important. Stratification was largest in areas where velocities and density gradients were aligned. The maximum stratification occurred during the prolonged high water of nearly diurnal tides when advection and straining with relatively weak flows increased stratification with little mixing. Simulations suggest that the dominance of straining (increasing stratification) or mixing (decreasing stratification) on ebb tides depends on the instantaneous Simpson number being above or below unity.

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Document Details

Document Type
Technical Report
Publication Date
Sep 01, 2012
Accession Number
ADA565875

Entities

People

  • Vera L. Pavel

Organizations

  • Massachusetts Institute of Technology

Tags

Communities of Interest

  • Energy and Power Technologies
  • Materials and Manufacturing Processes

DTIC Thesaurus Topics

  • Barometric Pressure
  • Boundary Layer
  • Buoyancy
  • Continental Shelves
  • Engineering
  • Fish
  • Geography
  • Grids
  • Habitats
  • Layers
  • Measurement
  • Mechanical Engineering
  • Physical Oceanography
  • Pressure Gradients
  • Three Dimensional
  • Turbulent Mixing
  • Two Dimensional

Fields of Study

  • Environmental science
  • Geology

Readers

  • Coastal Oceanography
  • Coastal and Marine Engineering/Sediment Transport/Hydraulic Engineering