Near-Surface Atmospheric Response to Meso- and Submesoscale Current and Thermal Feedbacks

被引:5
|
作者
Conejero, Carlos [1 ]
Renault, Lionel [1 ]
Desbiolles, Fabien [2 ,3 ]
McWilliams, J. C. [4 ]
Giordanie, Herve [5 ]
机构
[1] Univ Toulouse, LEGOS CNES CNRS IRD UT3, Toulouse, France
[2] Univ Milano Biocca, Dept Earth & Environm Sci, Milan, Italy
[3] CIMA Res Fdn, Savona, Italy
[4] Univ Calif Los Angeles, Dept Atmospher & Ocean Sci, Los Angeles, CA USA
[5] Meteo France, Toulouse, France
关键词
Mesoscale processes; Small-scale processes; Atmosphere-ocean interaction; Coupled models; OCEANIC CURRENT INTERACTION; CALIFORNIA CURRENT SYSTEM; HEAT-FLUX FEEDBACK; WIND STRESS; SATELLITE-OBSERVATIONS; MODELING SYSTEM; MESOSCALE; TEMPERATURE; DEPENDENCE; DYNAMICS;
D O I
10.1175/JPO-D-23-0211.1
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
Current feedback (CFB) and thermal feedback (TFB) have been shown to strongly influence both atmospheric and oceanic dynamics at the oceanic mesoscale (10-250 km). At smaller scales, oceanic submesoscale currents (SMCs; 0.1-10 km) have a major influence on the ocean's energy budget, variability, and ecosystems. However, submesoscale air-sea interactions are not well understood because of observational and modeling limitations related to their scales. Here, we use a realistic submesoscale-permitting coupled oceanic and atmospheric model to quantify the spatiotemporal variability of TFB and CFB coupling in the northwest tropical Atlantic Ocean. While CFB still acts as a submesoscale eddy killer by inducing an energy sink from the SMCs to the atmosphere, it appears to be more efficient at the submesoscale by approximately 30% than at the mesoscale. Submesoscale CFB affects the surface stress, however, the finite time scale of SMCs for adjusting the atmospheric boundary layer results in a diminished low-level wind response, weakening partial ocean reenergization by about 70%. Unlike at the mesoscale, submesoscale CFB induces stress/wind convergence/divergence, influencing the atmospheric boundary layer through vertical motions. The linear relationship between the surface stress derivative or wind derivative fields and sea surface temperature gradients, widespread at the mesoscale, decreases by approximately 35% +/- 7% or 77% +/- 10%, respectively, at the submesoscale. In addition, submesoscale TFB induces turbulent heat fluxes comparable to those at the mesoscale. Seasonal variability in meso- and submesoscale CFB and TFB coupling is mostly related to background wind speed. Also, disentangling submesoscale CFB and TFB is challenging because they can reinforce or counteract each other.
引用
收藏
页码:823 / 848
页数:26
相关论文
共 50 条
  • [31] The near-surface ice thermal structure of the Waldemarbreen, Svalbard
    Sobota, Ireneusz
    POLISH POLAR RESEARCH, 2009, 30 (04) : 317 - 338
  • [32] Thermal remote sensing of near-surface water vapor
    Czajkowski, KP
    Goward, SN
    Shirey, D
    Walz, A
    REMOTE SENSING OF ENVIRONMENT, 2002, 79 (2-3) : 253 - 265
  • [33] THERMAL NEAR-SURFACE EXPRESSION OF SHALLOW GEOLOGICAL FEATURES
    POLEY, JP
    VANSTEVE.J
    GEOPHYSICS, 1972, 37 (02) : 389 - &
  • [34] CONVECTION MODEL OF THERMAL FIELD IN THE NEAR-SURFACE LAYER
    MIASNIKOV, VP
    RAMAZANOV, MM
    DOKLADY AKADEMII NAUK SSSR, 1989, 309 (03): : 578 - 582
  • [35] NEAR-SURFACE THERMAL PROSPECTING - REVIEW OF PROCESSING AND INTERPRETATION
    KHESIN, BE
    EPPELBAUM, LV
    GEOPHYSICS, 1994, 59 (05) : 744 - 752
  • [36] Measurements near the Atmospheric Surface Flux Group tower at SHEBA: Near-surface conditions and surface energy budget
    Persson, POG
    Fairall, CW
    Andreas, EL
    Guest, PS
    Perovich, DK
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2002, 107 (C10)
  • [37] THERMAL CHARACTERIZATION OF NEAR-SURFACE OF OXIDES BY EMANATION THERMAL-ANALYSIS
    ISHII, T
    IZVESTIYA SIBIRSKOGO OTDELENIYA AKADEMII NAUK SSSR SERIYA KHIMICHESKIKH NAUK, 1987, (05): : 37 - 42
  • [38] Numerical Study on the Influence of Weir Construction on Near-Surface Atmospheric Conditions
    Kang, Misun
    Kim, Kyu Rang
    Belorid, Miloslav
    ATMOSPHERE, 2020, 11 (12)
  • [39] ELECTRON YIELD DETECTORS FOR NEAR-SURFACE EXAFS AT ATMOSPHERIC-PRESSURE
    PANDYA, KI
    YANG, K
    HOFFMAN, RW
    OGRADY, WE
    SAYERS, DE
    JOURNAL DE PHYSIQUE, 1986, 47 (C-8): : 159 - 162
  • [40] Scaling and Similarity of the Anisotropic Coherent Eddies in Near-Surface Atmospheric Turbulence
    Ghannam, Khaled
    Katul, Gabriel G.
    Bou-Zeid, Elie
    Gerken, Tobias
    Chamecki, Marcelo
    JOURNAL OF THE ATMOSPHERIC SCIENCES, 2018, 75 (03) : 943 - 964