1 / 23

Tidal Circulation in a Sinuous Coastal Plain Estuary

Tidal Circulation in a Sinuous Coastal Plain Estuary. H. Seim, UNC-CH J. Blanton, S. Elston, SkIO. Tidal propagation – interaction with the shelf Residual circulation Overtides. M 2 Elevation without estuaries – tide experiences two-fold amplitude increase and notable phase change. NC.

makani
Download Presentation

Tidal Circulation in a Sinuous Coastal Plain Estuary

An Image/Link below is provided (as is) to download presentation Download Policy: Content on the Website is provided to you AS IS for your information and personal use and may not be sold / licensed / shared on other websites without getting consent from its author. Content is provided to you AS IS for your information and personal use only. Download presentation by click this link. While downloading, if for some reason you are not able to download a presentation, the publisher may have deleted the file from their server. During download, if you can't get a presentation, the file might be deleted by the publisher.

E N D

Presentation Transcript


  1. Tidal Circulation in a Sinuous Coastal Plain Estuary H. Seim, UNC-CH J. Blanton, S. Elston, SkIO Tidal propagation – interaction with the shelf Residual circulation Overtides

  2. M2 Elevation without estuaries – tide experiences two-fold amplitude increase and notable phase change NC SC GA FL • Finite Element • Nonlinear • 2D (ADCIRC) • Western North Atl. • Crossshelf Amplification • Equatorward phase propagation • Latest phase along GA/FL border • Shelf response sensitive m (B. Blanton)

  3. In the SAB large sections of the coastline are backed by extensive estuaries depth (m) (K. Smith, D. Lynch)

  4. M2 Solution Elevation Difference Amplitude Ratio Est sol’n Amp -------------------------- > 1 NoEst sol’n Amp Phase Diff (in red) Est Phase - NoEst Phase >0 (B. Blanton)

  5. Including estuaries increases dissipation >25%... Strange result – inclusion of highly dissipative estuaries leads to 10% increase in tidal range. Log10W/m2 Longitude Latitude (B. Blanton)

  6. Satilla River 1 m tide 2-4 m mean depth 50 m3/s avg riverflow 0.5-1 m/s tidal currents Pristine, typically 2 channel 5 km MHHW width, 1km MLW width

  7. Depth-scaling accounts for ~25% of variance – rest due to non-linearities?

  8. M2 phase – earlier in shallow channels, remarkable changes at triple junction

  9. M2+M4 fit reasonable on neap, arger residuals on spring tides

  10. Conclusions • Damping of propagation appears weak – need to do some simple modeling • Tidal residual flows strong, structure reminiscent of headland eddies • Sub-basin exhibits much different behavior • Overtide generation complex, varies spatially and with time.

More Related