THE OCEANIC TIDES IN THE SOUTH-ATLANTIC OCEAN

被引:0
|
作者
GENCO, ML
LYARD, F
LEPROVOST, C
机构
关键词
D O I
10.1007/s005850050111
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The finite element ocean tide model of Le Provost and Vincent (1986) has been applied to the simulation of the M2 and K1 components over the South Atlantic Ocean. The discretisation of the domain, of the order of 200 km over the deep ocean, is refined down to 15 km along the coasts, such refinement enables wave propagation and damping over the continental shelves to be correctly solved. The marine boundary conditions, from Dakar to Natal, through the Drake passage and from South Africa to Antarctica, are deduced from in situ data and from Schwiderski's solution and then optimised following a procedure previously developed by the authors. The solutions presented are in very good agreement with in situ data: the root mean square deviations from a standard subset of 13 pelagic stations are 1.4 cm for M2 and 0.45 cm for K1, which is significantly better overall than solutions published to date in the literature. Zooms of the M2 solution are presented for the Falkland Archipelago, the Weddell Sea and the Patagonian Shelf. The first zoom allows detailing of the tidal structure around the Falklands and its interpretation in terms of a stationary trapped Kelvin wave system. The second zoom, over the Weddell Sea, reveals for the first time what must be the tidal signal under the permanent ice shelf and gives a solution over that sea which is generally in agreement with observations. The third zoom is over the complex Patagonian Shelf. This zoom illustrates the ability of the model to simulate the tides, even over this area, with a surprising level of realism, following purely hydrodynamic modelling procedures, within a global ocean tide model. Maps of maximum associated tidal currents are also given, as a first illustration of a by-product of these simulations.
引用
收藏
页码:868 / 886
页数:19
相关论文
共 50 条
  • [1] The Larvaceans of the South-Atlantic Ocean
    Goetsch, W.
    [J]. PETERMANNS GEOGRAPHISCHE MITTEILUNGEN, 1941, 87 (02) : 78 - 78
  • [2] ON THE SUBTROPICAL CONVERGENCE IN THE SOUTH-ATLANTIC OCEAN
    LUTJEHARMS, JRE
    VALENTINE, HR
    VANBALLEGOOYEN, RC
    [J]. SOUTH AFRICAN JOURNAL OF SCIENCE, 1993, 89 (11-12) : 552 - 552
  • [3] AN AGULHAS RING IN THE SOUTH-ATLANTIC OCEAN
    DUNCOMBE RAE, CM
    SHANNON, LV
    SHILLINGTON, FA
    [J]. SOUTH AFRICAN JOURNAL OF SCIENCE, 1989, 85 (11) : 747 - 748
  • [4] RIDGE JUMPS AND PROPAGATIONS IN THE SOUTH-ATLANTIC OCEAN
    BROZENA, JM
    WHITE, RS
    [J]. NATURE, 1990, 348 (6297) : 149 - 152
  • [5] DEEP CIRCULATION IN THE EASTERN SOUTH-ATLANTIC OCEAN
    WARREN, BA
    SPEER, KG
    [J]. DEEP-SEA RESEARCH PART A-OCEANOGRAPHIC RESEARCH PAPERS, 1991, 38 : S281 - S322
  • [6] GEOLOGY AND PETROLOGY OF BOUVETOYA, SOUTH-ATLANTIC OCEAN
    IMSLAND, P
    LARSEN, JG
    PRESTVIK, T
    SIGMOND, EM
    [J]. LITHOS, 1977, 10 (03) : 214 - 234
  • [7] SOLAR-RADIATION IN SOUTH-ATLANTIC OCEAN
    FRANCESCHINI, GA
    [J]. ANTARCTIC JOURNAL OF THE UNITED STATES, 1977, 12 (1-2): : 29 - 32
  • [8] SOUTH-ATLANTIC CIRCULATION IN A WORLD OCEAN MODEL
    ENGLAND, MH
    GARCON, VC
    [J]. ANNALES GEOPHYSICAE-ATMOSPHERES HYDROSPHERES AND SPACE SCIENCES, 1994, 12 (09): : 812 - 825
  • [9] PELAGIC COMMUNITIES OF SEABIRDS IN THE SOUTH-ATLANTIC OCEAN
    VEIT, RR
    [J]. IBIS, 1995, 137 (01) : 1 - 10
  • [10] CONTINENTAL DRIFT AND GEOLOGY OF SOUTH-ATLANTIC OCEAN
    REINHARD, M
    [J]. TRANSACTIONS-AMERICAN GEOPHYSICAL UNION, 1972, 53 (02): : 171 - &