Ocean Circulation Kinetic Energy: Reservoirs, Sources, and Sinks

被引:695
|
作者
Ferrari, Raffaele [1 ]
Wunsch, Carl [1 ]
机构
[1] MIT, Dept Earth Atmospher & Planetary Sci, Cambridge, MA 02139 USA
基金
美国国家科学基金会; 美国国家航空航天局;
关键词
energy spectrum; geostrophic eddies; internal waves; turbulent cascade; INTERNAL WAVE-FIELD; GEOSTROPHIC TURBULENCE; INERTIAL OSCILLATIONS; MIXED-LAYER; GEOGRAPHICAL VARIABILITY; BAROCLINIC INSTABILITY; SATELLITE ALTIMETRY; BOTTOM TOPOGRAPHY; WIND-STRESS; DEEP-OCEAN;
D O I
10.1146/annurev.fluid.40.111406.102139
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
The ocean circulation is a cause and consequence of fluid scale interactions ranging from millimeters to more than 10,000 km. Although the wind field produces a large energy input to the ocean, all but approximately 10% appears to be dissipated within about 100 in of the sea surface, rendering observations of the energy divergence necessary to maintain the full water-column flow difficult. Attention thus shifts to the physically different kinetic energy (KE) reservoirs of the circulation and their maintenance, dissipation, and possible influence on the very small scales representing irreversible molecular mixing. Oceanic KE is dominated by the geostrophic eddy field, and depending on the vertical structure (barotropic versus low-mode baroclinic), direct and inverse energy cascades are possible. The pathways toward dissipation of the dominant geostrophic eddy KE depend crucially on the direction of the cascade but are difficult to quantify because of serious observational difficulties for wavelengths shorter than approximately 100-200 km. At high frequencies, KE is dominated by internal waves with near-inertial frequencies (frequencies near the local Coriolis parameter), whose shears appear to be a major source of wave breaking and mixing in the ocean interior.
引用
收藏
页码:253 / 282
页数:30
相关论文
共 50 条
  • [21] Sources and sinks
    Dufton, AF
    [J]. NATURE, 1921, 107 : 522 - 522
  • [22] How reservoirs alter drinking water quality: Organic matter sources, sinks, and transformations
    Kraus, T. E. C.
    Bergamaschi, B. A.
    Hernes, P. J.
    Doctor, D.
    Kendall, C.
    Downing, B. D.
    Losee, R. F.
    [J]. LAKE AND RESERVOIR MANAGEMENT, 2011, 27 (03) : 205 - 219
  • [23] Study on the Carbon and Nitrogen Isotope Characteristics and Sources and Their Influence on Carbon Sinks in Karst Reservoirs
    Zhou, Zhongfa
    Kong, Jie
    Zhang, Fuqiang
    Zou, Yan
    Xie, Jiangting
    Wen, Chaocheng
    [J]. LAND, 2023, 12 (02)
  • [24] SOURCES, SINKS AND PSEUDO-SINKS
    WATKINSON, AR
    SUTHERLAND, WJ
    [J]. JOURNAL OF ANIMAL ECOLOGY, 1995, 64 (01) : 126 - 130
  • [25] Sinks and sources of carbon dioxide in the Arctic Ocean: Results of direct instrumental measurements
    I. P. Semiletov
    I. I. Pipko
    [J]. Doklady Earth Sciences, 2007, 414 : 642 - 645
  • [26] Sources and Sinks of Isoprene in the Global Open Ocean: Simulated Patterns and Emissions to the Atmosphere
    Conte, Ludivine
    Szopa, Sophie
    Aumont, Olivier
    Gros, Valerie
    Bopp, Laurent
    [J]. JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2020, 125 (09)
  • [27] Sources and sinks of carbon monoxide in the mixed layer of the tropical South Pacific Ocean
    Johnson, JE
    Bates, TS
    [J]. GLOBAL BIOGEOCHEMICAL CYCLES, 1996, 10 (02) : 347 - 359
  • [28] Sources of Plutonium in the Pacific Ocean and Its Isotopic Ratio for Tracing of Ocean Circulation
    Wu, Junwen
    Chen, Jisheng
    Wang, Cui
    Wang, Liang
    [J]. ACS EARTH AND SPACE CHEMISTRY, 2022, 6 (08): : 1982 - 1996
  • [29] Sinks and sources of carbon dioxide in the Arctic Ocean: Results of direct instrumental measurements
    Semiletov, I. P.
    Pipko, I. I.
    [J]. DOKLADY EARTH SCIENCES, 2007, 414 (04) : 642 - 645
  • [30] Manganese Sources and Sinks in the Arctic Ocean with Reference to Periodic Enrichments in Basin Sediments
    Macdonald, Robie W.
    Gobeil, Charles
    [J]. AQUATIC GEOCHEMISTRY, 2012, 18 (06) : 565 - 591