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Lillibridge III et al. 1990
Lillibridge III, J.L., Hitchcock, G., Rossby, T., Lessard, E., Mork, M. and Golmen, L. (1990). Entrainment and mixing of shelf/slope waters in the near-surface Gulf Stream. Journal of Geophysical Research 95: doi: 10.1029/90JC01107. issn: 0148-0227.

An interdisciplinary study of the entrainment of shelf and slope waters in the Gulf Stream front was undertaken in October 1985 northeast of Cape Hatteras. Fifteen hydrographic transects of the Gulf Stream front and of the shelf water intrusion known as Ford water were completed in 2 1/2 days with a towed undulating profiler, the SeaSoar, equipped with a conductivity-temperature-depth probe and a fluorometer. Upstream sections within 50 km of the shelf break show entrainment of surface and subsurface waters along the northern edge of the high-velocity Gulf Stream. The low-salinity core, first observed at 70 m, is subducted to >100 m. The subsurface Ford water is also at a maximum in chlorophyll, fluorescence, and dissolved oxygen and contains a distinct diatom assemblage of nearshore species. Productivity rates in the Ford water may be equivalent to those in slope waters. Expendable current profilers yield an estimated transport for subsurface shelf waters of 1 to 5¿105 m3 s-1 and indicate that vertical shear at the depth of maximum static stability is typically 2¿10-2 s-1. A bulk Richardson number is estimated over vertical scales of several meters by combining SeaSoar density profiles with velocity shear from concurrent expendable current profiler deployments. The minimum values are generally >1, and only infrequently are they at or below the 0.25 threshold for shear instability. The presence of double-diffusive processes around the low-salinity core of Ford water is indicated by elevated conductivity Cox numbers. The stability parameter ''Turner angle'' shows that low-salinity Ford water and its associated T-S property front are sites of double-diffusive mixing, given general agreement between the distributions of Turner angle and Cox number.

We conclude that double-diffusive processes are more important than shear flow instability in governing cross-isopycnal mixing. However, downstream transit times are so swift that no measurable change or decay occurs in the Ford water. This explains the occurrence of distinct shelf water phytoplankton species within the low-salinity waters downstream of Cape Hatteras. ¿ American Geophysical Union 1990

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Abstract

Keywords
Oceanography, Physical, Turbulence, diffusion, and mixing processes, Information Related to Geographic Region, Atlantic Ocean
Journal
Journal of Geophysical Research
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Publisher
American Geophysical Union
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