The Impact of a Variable Mixing Efficiency on the Abyssal OverturningSource: Journal of Physical Oceanography:;2015:;Volume( 046 ):;issue: 002::page 663Author:de Lavergne, Casimir
,
Madec, Gurvan
,
Le Sommer, Julien
,
Nurser, A. J. George
,
Naveira Garabato, Alberto C.
DOI: 10.1175/JPO-D-14-0259.1Publisher: American Meteorological Society
Abstract: n studies of ocean mixing, it is generally assumed that small-scale turbulent overturns lose 15%?20% of their energy in eroding the background stratification. Accumulating evidence that this energy fraction, or mixing efficiency Rf, significantly varies depending on flow properties challenges this assumption, however. Here, the authors examine the implications of a varying mixing efficiency for ocean energetics and deep-water mass transformation. Combining current parameterizations of internal wave-driven mixing with a recent model expressing Rf as a function of a turbulence intensity parameter Reb = ε?/?N2, the ratio of dissipation ε? to stratification N2 and molecular viscosity ?, it is shown that accounting for reduced mixing efficiencies in regions of weak stratification or energetic turbulence (high Reb) strongly limits the ability of breaking internal waves to supply oceanic potential energy and drive abyssal upwelling. Moving from a fixed Rf = 1/6 to a variable efficiency Rf(Reb) causes Antarctic Bottom Water upwelling induced by locally dissipating internal tides and lee waves to fall from 9 to 4 Sverdrups (Sv; 1 Sv ≡ 106 m3 s?1) and the corresponding potential energy source to plunge from 97 to 44 GW. When adding the contribution of remotely dissipating internal tides under idealized distributions of energy dissipation, the total rate of Antarctic Bottom Water upwelling is reduced by about a factor of 2, reaching 5?15 Sv, compared to 10?33 Sv for a fixed efficiency. The results suggest that distributed mixing, overflow-related boundary processes, and geothermal heating are more effective in consuming abyssal waters than topographically enhanced mixing by breaking internal waves. These calculations also point to the importance of accurately constraining Rf(Reb) and including the effect in ocean models.
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| contributor author | de Lavergne, Casimir | |
| contributor author | Madec, Gurvan | |
| contributor author | Le Sommer, Julien | |
| contributor author | Nurser, A. J. George | |
| contributor author | Naveira Garabato, Alberto C. | |
| date accessioned | 2017-06-09T17:21:18Z | |
| date available | 2017-06-09T17:21:18Z | |
| date copyright | 2016/02/01 | |
| date issued | 2015 | |
| identifier issn | 0022-3670 | |
| identifier other | ams-83711.pdf | |
| identifier uri | http://onlinelibrary.yabesh.ir/handle/yetl/4226966 | |
| description abstract | n studies of ocean mixing, it is generally assumed that small-scale turbulent overturns lose 15%?20% of their energy in eroding the background stratification. Accumulating evidence that this energy fraction, or mixing efficiency Rf, significantly varies depending on flow properties challenges this assumption, however. Here, the authors examine the implications of a varying mixing efficiency for ocean energetics and deep-water mass transformation. Combining current parameterizations of internal wave-driven mixing with a recent model expressing Rf as a function of a turbulence intensity parameter Reb = ε?/?N2, the ratio of dissipation ε? to stratification N2 and molecular viscosity ?, it is shown that accounting for reduced mixing efficiencies in regions of weak stratification or energetic turbulence (high Reb) strongly limits the ability of breaking internal waves to supply oceanic potential energy and drive abyssal upwelling. Moving from a fixed Rf = 1/6 to a variable efficiency Rf(Reb) causes Antarctic Bottom Water upwelling induced by locally dissipating internal tides and lee waves to fall from 9 to 4 Sverdrups (Sv; 1 Sv ≡ 106 m3 s?1) and the corresponding potential energy source to plunge from 97 to 44 GW. When adding the contribution of remotely dissipating internal tides under idealized distributions of energy dissipation, the total rate of Antarctic Bottom Water upwelling is reduced by about a factor of 2, reaching 5?15 Sv, compared to 10?33 Sv for a fixed efficiency. The results suggest that distributed mixing, overflow-related boundary processes, and geothermal heating are more effective in consuming abyssal waters than topographically enhanced mixing by breaking internal waves. These calculations also point to the importance of accurately constraining Rf(Reb) and including the effect in ocean models. | |
| publisher | American Meteorological Society | |
| title | The Impact of a Variable Mixing Efficiency on the Abyssal Overturning | |
| type | Journal Paper | |
| journal volume | 46 | |
| journal issue | 2 | |
| journal title | Journal of Physical Oceanography | |
| identifier doi | 10.1175/JPO-D-14-0259.1 | |
| journal fristpage | 663 | |
| journal lastpage | 681 | |
| tree | Journal of Physical Oceanography:;2015:;Volume( 046 ):;issue: 002 | |
| contenttype | Fulltext |