Scaling turbulent dissipation in the thermocline
- 15 July 1989
- journal article
- Published by American Geophysical Union (AGU) in Journal of Geophysical Research: Oceans
- Vol. 94 (C7) , 9686-9698
- https://doi.org/10.1029/jc094ic07p09686
Abstract
By comparing observations from six diverse sites in the mid‐latitude thermocline, we find that, to within a factor of 2, , where 〈εIW〉 is the average dissipation rate attributable to internal waves; N0 = 0.0052 s−1 is a reference buoyancy frequency; S10 is the observed shear having vertical wavelengths greater than 10 m; and SGM is the corresponding shear in the Garrett and Munk spectrum of internal waves. The functional form agrees with estimates by McComas and Müller and by Henyey, Wright, and Flatté of the rate of energy transfer within the internal wave spectrum, provided the energy density of the internal waves is treated as a variable instead of one of the constant parameters. Following Garrett and Munk, we assume that , where EIW is the observed energy density and EGM is the energy density used by Garrett and Munk. The magnitude of εIW is twice that of Henyey et al. and one third that of McComas and Müller. Thus the observations agree with predictions sufficiently well to suggest that (1) a first‐order understanding of the link between internal waves and turbulence has been achieved, although Henyey et al. made some ad hoc assumptions and Garrett and Munk's model does not match important features in the internal wave spectrum reported by Pinkel, and (2) the simplest way to obtain average dissipation rates over large space and time scales is to measure . Even though the observations were taken at latitudes of 42°−11.5°, the variability in the Coriolis parameter ƒ was too limited for a conclusive test of the ƒ dependence also predicted for 〈εIW〉 by the wave‐wave interaction models. An exception to the scaling occurs east of Barbados in the thermohaline staircase that is apparently formed and maintained by salt fingers. Although ε in the staircase is very low compared with rates at mid‐latitude sites, it is 8 times larger than predicted for ε due only to internal waves.Keywords
This publication has 30 references indexed in Scilit:
- Sampling Turbulence in the Stratified Ocean: Statistical Consequences of Strong IntermittencyJournal of Physical Oceanography, 1987
- Preliminary results from the long-term upper-ocean study (LOTUS)Dynamics of Atmospheres and Oceans, 1984
- Local isotropy and the decay of turbulence in a stratified fluidJournal of Fluid Mechanics, 1984
- Vertical eddy diffusivity in the ocean interiorJournal of Marine Research, 1984
- Wind Forced Internal Waves in the North Pacific and Sargasso SeaJournal of Physical Oceanography, 1984
- Dissipation and diffusion by internal wave breakingJournal of Marine Research, 1984
- A Composite Spectrum of Vertical Shear in the Upper OceanJournal of Physical Oceanography, 1981
- Evidence for a continuous spectrum of equatorial waves in the Indian OceanJournal of Geophysical Research: Oceans, 1980
- Internal wave observations from a midwater float, 2Journal of Geophysical Research, 1976
- Space-Time scales of internal wavesGeophysical Fluid Dynamics, 1972