Internal Waves and Mixing in the Marginal Ice Zone near the Yermak Plateau

被引:73
|
作者
Fer, Ilker [1 ,2 ]
Skogseth, Ragnheid [3 ]
Geyer, Florian [2 ,4 ]
机构
[1] Univ Bergen, Inst Geophys, N-5007 Bergen, Norway
[2] Bjerknes Ctr Climate Res, Bergen, Norway
[3] Univ Ctr Svalbard, Longyearbyen, Norway
[4] Nansen Environm & Remote Sensing Ctr, Bergen, Norway
关键词
WEST SPITSBERGEN CURRENT; SCALING TURBULENT DISSIPATION; VERTICAL DIFFUSION; FINE-STRUCTURE; FRAM STRAIT; NORTH; OCEAN; BREAKING; SHEAR; WATER;
D O I
10.1175/2010JPO4371.1
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
Observations were made of oceanic currents, hydrography, and microstructure in the southern Yermak Plateau in summer 2007. The location is in the marginal ice zone at the Arctic Front northwest of Svalbard, where the West Spitsbergen Current (WSC) carries the warm Atlantic Water into the Arctic Ocean. Time series of approximately 1-day duration from five stations (upper 520 m) and of an 8-day duration from a mooring are analyzed to describe the characteristics of internal waves and turbulent mixing. The spectral composition of the internal-wave field over the southern Yermak Plateau is 0.1-0.3 times the midlatitude levels and compares with the most energetic levels in the central Arctic. Dissipation rate and eddy diffusivity below the pycnocline increase from the noise level on the cold side of the front by one order of magnitude on the warm side, where 100-m-thick layers with average diffusivities of 5 x 10(-5) m(2) s(-1) lead to heat loss from the Atlantic Water of 2-4 W m(-2). Dissipation in the upper 150 m is well above the noise level at all stations, but strong stratification at the cold side of the front prohibits mixing across the pycnocline. Close to the shelf, at the core of the Svalbard branch of the WSC, diffusivity increases by another factor of 3-6. Here, near-bottom mixing removes 15 W m 22 of heat from the Atlantic layer. Internal-wave activity and mixing show variability related to topography and hydrography; thus, the path of the WSC will affect the cooling and freshening of the Atlantic inflow. When generalized to the Arctic Ocean, diapycnal mixing away from abyssal plains can be significant for the heat budget. Around the Yermak Plateau, it is of sufficient magnitude to influence heat anomaly pulses entering the Arctic Ocean; however, diapycnal mixing alone is unlikely to be significant for regional cooling of the WSC.
引用
下载
收藏
页码:1613 / 1630
页数:18
相关论文
共 50 条
  • [21] Observation of anomalous spectral downshifting of waves in the Okhotsk Sea Marginal Ice Zone
    Waseda, Takuji
    Alberello, Alberto
    Nose, Takehiko
    Toyota, Takenobu
    Kodaira, Tsubasa
    Fujiwara, Yasushi
    PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY A-MATHEMATICAL PHYSICAL AND ENGINEERING SCIENCES, 2022, 380 (2235):
  • [22] Dispersion Relations, Power Laws, and Energy Loss for Waves in the Marginal Ice Zone
    Meylan, M. H.
    Bennetts, L. G.
    Mosig, J. E. M.
    Rogers, W. E.
    Doble, M. J.
    Peter, M. A.
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2018, 123 (05) : 3322 - 3335
  • [23] HIGH-FREQUENCY INTERNAL WAVE OBSERVATIONS IN THE MARGINAL ICE-ZONE
    SANDVEN, S
    JOHANNESSEN, OM
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1987, 92 (C7): : 6911 - 6920
  • [24] OBSERVATIONS OF PERSISTENT MIXING AND NEAR-INERTIAL INTERNAL WAVES
    GREGG, MC
    DASARO, EA
    SHAY, TJ
    LARSON, N
    JOURNAL OF PHYSICAL OCEANOGRAPHY, 1986, 16 (05) : 856 - 885
  • [25] Three-dimensional imaging of waves and floes in the marginal ice zone during a cyclone
    Alberto Alberello
    Luke G. Bennetts
    Miguel Onorato
    Marcello Vichi
    Keith MacHutchon
    Clare Eayrs
    Butteur Ntamba Ntamba
    Alvise Benetazzo
    Filippo Bergamasco
    Filippo Nelli
    Rohinee Pattani
    Hans Clarke
    Ippolita Tersigni
    Alessandro Toffoli
    Nature Communications, 13
  • [26] Effect of ice pressure on marginal ice zone dynamics
    Flato, Gregory M., 1600, (27):
  • [27] Three-dimensional imaging of waves and floes in the marginal ice zone during a cyclone
    Alberello, Alberto
    Bennetts, Luke G.
    Onorato, Miguel
    Vichi, Marcello
    MacHutchon, Keith
    Eayrs, Clare
    Ntamba, Butteur Ntamba
    Benetazzo, Alvise
    Bergamasco, Filippo
    Nelli, Filippo
    Pattani, Rohinee
    Clarke, Hans
    Tersigni, Ippolita
    Toffoli, Alessandro
    NATURE COMMUNICATIONS, 2022, 13 (01)
  • [28] Observations of thermohaline sound-speed structure induced by internal waves and spice in the summer 2015 Canada Basin marginal ice zone
    DiMaggio, Dominic
    Colosi, John A.
    Joseph, John
    Pearson, Annalise
    Worcester, Peter F.
    Dzieciuch, Matthew A.
    ELEMENTA-SCIENCE OF THE ANTHROPOCENE, 2018, 6
  • [29] THE MARGINAL ICE-ZONE EXPERIMENT
    MUENCH, RD
    OCEANUS, 1983, 26 (02) : 55 - 60
  • [30] SEA ICE MELTING IN THE MARGINAL ICE-ZONE
    JOSBERGER, EG
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1983, 88 (NC5) : 2841 - 2844