STUDY OF THE EQUATORIAL ATLANTIC OCEAN MIXING LAYER USING A ONE-DIMENSIONAL TURBULENCE MODEL

被引:1
|
作者
Skielka, Udo Tersiano [1 ]
Soares, Jacyra [1 ]
de Oliveira, Amauri Pereira [1 ]
机构
[1] Univ Sao Paulo, Inst Astron Geofis & Ciencias Atmosfer, Dept Ciencias Atmosfer, BR-05508900 Sao Paulo, Brazil
关键词
Oceanic turbulence; General Ocean Turbulence Model; Equatorial Atlantic Ocean; Turbulent kinetic energy; SEA-SURFACE TEMPERATURE; ANNUAL CYCLE; HEAT-FLUX;
D O I
10.1590/S1679-87592010000700008
中图分类号
Q17 [水生生物学];
学科分类号
071004 ;
摘要
The General Ocean Turbulence Model (GOTM) is applied to the diagnostic turbulence field of the mixing layer (ML) over the equatorial region of the Atlantic Ocean. Two situations were investigated: rainy and dry seasons, defined, respectively, by the presence of the intertropical convergence zone and by its northward displacement. Simulations were carried out using data from a PIRATA buoy located on the equator at 23 degrees W to compute surface turbulent fluxes and from the NASA/GEWEX Surface Radiation Budget Project to close the surface radiation balance. A data assimilation scheme was used as a surrogate for the physical effects not present in the one-dimensional model. In the rainy season, results show that the ML is shallower due to the weaker surface stress and stronger stable stratification; the maximum ML depth reached during this season is around 15 m, with an averaged diurnal variation of 7 m depth. In the dry season, the stronger surface stress and the enhanced surface heat balance components enable higher mechanical production of turbulent kinetic energy and, at night, the buoyancy acts also enhancing turbulence in the first meters of depth, characterizing a deeper ML, reaching around 60 m and presenting an average diurnal variation of 30 m.
引用
收藏
页码:57 / 69
页数:13
相关论文
共 50 条
  • [1] ONE-DIMENSIONAL ASYMPTOTIC MODEL OF OCEAN ACTIVE LAYER
    KOSNYREV, VK
    KUFTARKOV, YM
    FELZENBAUM, AI
    DOKLADY AKADEMII NAUK SSSR, 1976, 228 (01): : 70 - 72
  • [2] One-dimensional modelling of upper ocean mixing by turbulence due to wave orbital motion
    Ghantous, M.
    Babanin, A. V.
    NONLINEAR PROCESSES IN GEOPHYSICS, 2014, 21 (01) : 325 - 338
  • [3] Particle dispersion in homogeneous turbulence using the one-dimensional turbulence model
    Sun, Guangyuan
    Lignell, David O.
    Hewson, John C.
    Gin, Craig R.
    PHYSICS OF FLUIDS, 2014, 26 (10)
  • [4] Modeling heat transfer from a vertical isothermal plate using one-dimensional turbulence stochastic mixing model of turbulence
    Shihn, Harmanjeet
    DesJardin, Paul E.
    Proceedings of the ASME Heat Transfer Division 2005, Vol 2, 2005, 376-2 : 703 - 711
  • [5] Surface gravity wave effects on the upper ocean boundary layer: Modification of a one-dimensional vertical mixing model
    Paskyabi, Mostafa Bakhoday
    Fer, Ilker
    Jenkins, Alastair D.
    CONTINENTAL SHELF RESEARCH, 2012, 38 : 63 - 78
  • [6] Conservative compressible one-dimensional turbulence method and its application in supersonic scalar mixing layer
    Chen C.
    Liang J.
    Guan Q.
    Gao T.
    Hangkong Xuebao/Acta Aeronautica et Astronautica Sinica, 2021, 42
  • [7] ONE-DIMENSIONAL MODEL STUDY OF STRATOSPHERIC AEROSOL LAYER
    TURCO, RP
    TOON, OB
    WHITTEN, RC
    TRANSACTIONS-AMERICAN GEOPHYSICAL UNION, 1977, 58 (08): : 690 - 690
  • [8] One-dimensional mixing layer model for a shear Hele-Shaw flow
    Kovtunenko, P. V.
    ALL-RUSSIAN CONFERENCE ON NONLINEAR WAVES: THEORY AND NEW APPLICATIONS (WAVE16), 2016, 722
  • [9] Simulation of a Stably Stratified Atmospheric Boundary Layer Using One-Dimensional Turbulence
    Alan R. Kerstein
    Scott Wunsch
    Boundary-Layer Meteorology, 2008, 128 : 313 - 313
  • [10] Simulation of a stably stratified atmospheric boundary layer using one-dimensional turbulence
    Kerstein, Alan R.
    Wunsch, Scott
    BOUNDARY-LAYER METEOROLOGY, 2006, 118 (02) : 325 - 356