Abstract
Evolution of a large-scale river plume is studied numerically using the Massachusetts Institute of Technology general circulation model. The model parameters were set close to those observed in the area of the Columbia River mouth. The fine-resolution grid along with the non-hydrostatic dispersion included in the model allowed for the reproduction of detailed inner plume structure, as well as a system of internal waves radiated from the plume’s boundary. It was found that not only first-mode but also second- and third-mode internal waves are radiated from the plume at the latest stages of its relaxation when the velocity of the front propagation drops below an appropriate wave phase speed of internal baroclinic mode. The model output shows that the amplitude of these high-mode waves is of the same order as the leading first-mode waves, which in combination with the specific vertical structure (location of the maximum structure function beyond the pycnocline layer) creates favourable conditions for the generation of shear instabilities. High-resolution model output also reveals evidence of a fine internal structure of the plume characterized by the presence of secondary fronts inside the plume and secondary internal wave systems propagated radially from the lift-off area to the outer boundary. These structures intensify the mixing processes within the propagating plume with predominance of the entrainment mechanism developing on the lower boundary between the plume’s body and underlying waters. The scheme of horizontal circulation in the plume was reproduced by the methodology of Lagrange drifters released near the mouth at different depths.
This is a preview of subscription content, access via your institution.















References
Britter RE, Simpson JE (1978) Experiments on the dynamics of small gravity current heads. J Fluid Mech 88:223–240
Chao S-Y (1990) Tidal modulation by estuarine plumes. J Phys Oceanogr 20:1115–1123
Chant RJ, Wilkin J, Zhang W, Choi B-J, Hunter E, Castelao R, Glenn S, Jurisa J, Schoflield O, Houghton R, Kohunt J, Frazer TK, Moline MA (2008) Dispersal of the Hudson Rive plume in the New York Bight: synthesis of observational and numerical studies during LaTTE. Oceanography 21:148–161
Garvine RW (1984) Radial spreading of buoyant, surface plumes in coastal waters. J Geophys Res 89:1989–1996
Garvine RW (1987) Estuarine plumes and fronts in coastal waters: a layer model. J Phys Oceanogr 17:1877–1896
Garvine RW (1996) Buoyant discharge on the continental shelf: a frontal model. J Mar Res 54:1–33
Hickey BM, Kudela RM, Nash JD, Bruland KW, Peterson WT, McCready P, Lessard EJ, Jay DA, Banas NS, Dever EP, Kosro PM, Kilcher LK, Horner-Devine AR, Zaron ED, McCabe RM, Peterson JO, Orton PM, Pan J, Lohan MC (2010) River influence on shelf ecosystem: introduction and synthesis. J Geophys Res 115:C00B17. doi:10.1029/2009JC005452
Jay DA, Zaron ED, Pan J (2010) Analysis of internal solitary waves generated at the Columbia River plume front using SAR imagery. J Geophys Res 115:C00B15. doi:10.1029/2008JC004996
Kourafalou VH, Oey L, Wang J, Lee TN (1996a) The fate of river discharge on the continental shelf. Part I: modeling the river plume and inner shelf coastal current. J Geophys Res 101:3415–3434
Kourafalou VH, Lee TN, Oey L, Wang J (1996b) The fate of river discharge on the continental shelf. Part II: transport of coastal low-salinity waters under realistic wind and tidal forcing. J Geophys Res 101: 3435–3456
Liu Y, MacCready P, Hickey BM (2009) Columbia River plume patterns as revealed by a hindcast coastal ocean circulation model in summer 2004. Geophys Res Lett 36:L02601. doi:10.1029/2008GL036447
Luketina DA, Imberger J (1987) Characteristics of a surface buoyant jet. J Geophys Res 92:5435–5447
Marshall J, Adcroft A, Hill C, Perelman L, Heisey C (1997) A finite-volume incompressible Navier-Stokes model for studies of the ocean on parallel computers. J Geophys Res 102:5733–5752
McCabe RM, Hickey BM, McCready PM (2008) Observational estimates of entrainment and vertical salt flux in the interior of a spreading river plume. J Geophys Res 113:C08027. doi:10.1029/2007JC004361
McCabe RM, McCready PM, Hickey BM (2009) Ebb tide dynamics and spreading of a large river plume. J Phys Oceanogr 39:2839–2856
Nash JD, Moum JN (2005) River plumes as a source of large-amplitude internal waves in the coastal ocean. Nature 437:400–403
Pan J, Jay DA, Orton PM (2007) Analysis of internal solitary waves generated at the Columbia River plume front using SAR imagery. J Geophys Res 112:C07014. doi:10.1029/2006JC003688
Pan J, Jay DA (2009) Effect of ambient velocity shear on nonlinear internal waves associated mixing at the Columbia River plume front. J Geophys Res 114:C07014. doi:10.1029/2008JC004988
Pacanowski RC, Philander SGH (1981) Parametrisation of vertical mixing in numerical models of tropical oceans. J Phys Oceanogr 11:1443–1451
Scotti A, Mitran S (2008) An approximated method for the solution of elliptic problems in thin domains: application to nonlinear internal waves. Ocean Model 25:144–153
Simpson JH (1997) Physical processes in the ROFI regime. J Mar Syst 12:3–15
Souza AJ, Simpson JH (1997) Controls on stratification in the Rhine ROFI system. J Mar Syst 12:311–323
Stashchuk N, Vlasenko V (2009) Generation of internal waves by a supercritical stratified plume. J Geophys Res 114:C01004. doi:10.1029/2008JC004851
Vitousek S, Fringer OB (2011) Physical vs. numerical dispersion in nonhydrostatic ocean modelling. Ocean Model 40:72–86
Yankovsky AE, Chapman DC (1997) A simple theory for the fate of buoyant coastal discharges. J Phys Oceanogr 27:1386–1401
Zhang Y-L, Baptista AM (2008) A semi-implicit Eulerian-Lagrangian finite-element model for cross-scale ocean circulation with hybrid vertical coordinates. Ocean Model 21(3–4):71–96. doi:10.1016/j.ocemod.207.11.005
Zhang Y-L, Baptista AM, Myers EP (2004) A cross-scale model for 3D baroclinic circulation in estuary-plume-shelf systems. Part I: formulation and skill assessment. Cont Shelf Res 24(18):2187–2214
Acknowledgments
Thanks to Plymouth University’s Marine Institute which supported this work.
Author information
Authors and Affiliations
Corresponding author
Additional information
Responsible Editor: Pierre Garreau
This article is part of the Topical Collection on the 16th biennial workshop of the Joint Numerical Sea Modelling Group (JONSMOD) in Brest, France 21-23 May 2012
Rights and permissions
About this article
Cite this article
Vlasenko, V., Stashchuk, N. & McEwan, R. High-resolution modelling of a large-scale river plume. Ocean Dynamics 63, 1307–1320 (2013). https://doi.org/10.1007/s10236-013-0653-x
Received:
Accepted:
Published:
Issue Date:
DOI: https://doi.org/10.1007/s10236-013-0653-x
Keywords
- River plume
- Numerical model
- Internal waves