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Turbulent mixing in the upper ocean of the northwestern Weddell Sea, Antarctica 被引量:1

Turbulent mixing in the upper ocean of the northwestern Weddell Sea, Antarctica
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摘要 Turbulent mixing in the upper ocean(30-200 m) of the northwestern Weddell Sea is investigated based on profiles of temperature,salinity and microstructure data obtained during February 2014.Vertical thermohaline structures are distinct due to geographic features and sea ice distribution,resulting in that turbulent dissipation rates(ε) and turbulent diffusivity(K) are vertically and spatially non-uniform.On the shelf north of Antarctic Peninsula and Philip Ridge,with a relatively homogeneous vertical structure of temperature and salinity through the entire water column in the upper 200 m,both ε and K show significantly enhanced values in the order of O(10^(-7))-O(10^(-6)) W/kg and O(10^(-3))-O(10^(-2)) m^2/s respectively,about two or three orders of magnitude higher than those in the open ocean.Mixing intensities tend to be mild due to strong stratification in the Powell Basin and South Orkney Plateau,where s decreases with depth from O(10^(-8)) to O(10^(-9)) W/kg,while K changes vertically in an inverse direction relative to s from O(10^(-6)) to O(10^(-5)) m^2/s.In the marginal ice zone,K is vertically stable with the order of10^(-4) m^2/s although both intense dissipation and strong stratification occur at depth of 50-100 m below a cold freshened mixed layer.Though previous studies indentify wind work and tides as the primary energy sources for turbulent mixing in coastal regions,our results indicate weak relationship between K and wind stress or tidal kinetic energy.Instead,intensified mixing occurs with large bottom roughness,demonstrating that only when internal waves generated by wind and tide impinge on steep topography can the energy dissipate to support mixing.In addition,geostrophic current flowing out of the Weddell Sea through the gap west of Philip Passage is another energy source contributing to the local intense mixing. Turbulent mixing in the upper ocean(30-200 m) of the northwestern Weddell Sea is investigated based on profiles of temperature,salinity and microstructure data obtained during February 2014.Vertical thermohaline structures are distinct due to geographic features and sea ice distribution,resulting in that turbulent dissipation rates(ε) and turbulent diffusivity(K) are vertically and spatially non-uniform.On the shelf north of Antarctic Peninsula and Philip Ridge,with a relatively homogeneous vertical structure of temperature and salinity through the entire water column in the upper 200 m,both ε and K show significantly enhanced values in the order of O(10^(-7))-O(10^(-6)) W/kg and O(10^(-3))-O(10^(-2)) m^2/s respectively,about two or three orders of magnitude higher than those in the open ocean.Mixing intensities tend to be mild due to strong stratification in the Powell Basin and South Orkney Plateau,where s decreases with depth from O(10^(-8)) to O(10^(-9)) W/kg,while K changes vertically in an inverse direction relative to s from O(10^(-6)) to O(10^(-5)) m^2/s.In the marginal ice zone,K is vertically stable with the order of10^(-4) m^2/s although both intense dissipation and strong stratification occur at depth of 50-100 m below a cold freshened mixed layer.Though previous studies indentify wind work and tides as the primary energy sources for turbulent mixing in coastal regions,our results indicate weak relationship between K and wind stress or tidal kinetic energy.Instead,intensified mixing occurs with large bottom roughness,demonstrating that only when internal waves generated by wind and tide impinge on steep topography can the energy dissipate to support mixing.In addition,geostrophic current flowing out of the Weddell Sea through the gap west of Philip Passage is another energy source contributing to the local intense mixing.
出处 《Acta Oceanologica Sinica》 SCIE CAS CSCD 2016年第3期1-9,共9页 海洋学报(英文版)
基金 Chinese Polar Environment Comprehensive Investigation and Assessment Programs under contract Nos CHINARE-01-01and CHINARE-04-01
关键词 mixing dissipation rate turbulent diffusivity upper ocean Weddell Sea mixing dissipation rate turbulent diffusivity upper ocean Weddell Sea
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  • 1D'Asaro E A, Eriksen C C, Levine M D, et al. 1995. Upper-Ocean iner- tial currents forced by a strong storm. Part 1: data and compar-isons with linear theory. J Phys Oceanogr, 25(11): 2909-2936. 被引量:1
  • 2Fahrbach E, Rohardt G, Schr6der M, et al. 1994. Transport and struc- ture of the Weddell Gyre. Ann Geophys, 12(9): 840-855. 被引量:1
  • 3Gill A E. 1984. On the behavior of internal waves in the wakes of storms, l Phys Oceanogr, 14(7): 1129-1151. 被引量:1
  • 4Gordon A L, Huber B A, Hellmer H H, et al. 1993. Deep and bottom water of the Weddell Sea's western rim. Science, 262(5130): 95-97. 被引量:1
  • 5Gordon A L, Mensch M, Dong Zhaoqian, et al. 2000. Deep and bot- tom water of the Brans field Strait eastern and central Basins. 1 Geophys Res, 105(C5): 11337-11346. 被引量:1
  • 6Gordon A L, Visbeck M, Huber B. 2001. Export of WeddeU Sea deep and bottom water, l Geophy Res, 106(C5): 9005-9017. 被引量:1
  • 7Huang Ruixin. 1999. Mixing and energetics of the oceanic thermo- haline circulation, l Phys Oceanogr, 29(4): 727-746. 被引量:1
  • 8Iayne S R. 2009. The impact of abyssal mixing parameterizations in an Ocean general circulation model. I Phys Oceanogr, 39(7): 1756-1775. 被引量:1
  • 9Kitade Y, Shimada K, Tamura T, et al. 2014. Antarctic bottom water production from the Vincennes Bay Polynya, East Antarctica. Geophys Res Lett, 41(10): 3528-3534. 被引量:1
  • 10Kunze E, Firing E, Hummon l M, et al. 2006. Global abyssal mixing in- ferred from lowered ADCP shear and CTD strain profiles. J Phys Oceanogr, 36(8): 1553-1576. 被引量:1

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