Indirect air-sea interactions simulated with a coupled turbulence-resolving model

被引:11
|
作者
Esau, Igor [1 ]
机构
[1] Bjerknes Ctr Climate Res, Nansen Environm & Remote Sensing Ctr, N-5006 Bergen, Norway
基金
欧洲研究理事会;
关键词
Planetary boundary layer; Large-eddy simulations; Air-sea interaction; LARGE-EDDY SIMULATION; CONVECTIVE BOUNDARY-LAYER; SURFACE-TEMPERATURE; MIXED-LAYER; FLUX PATTERNS; HEAT-FLUX; OCEAN; INTERFACE; SKEWNESS; ALGORITHMS;
D O I
10.1007/s10236-014-0712-y
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
A turbulence-resolving parallelized atmospheric large-eddy simulation model (PALM) has been applied to study turbulent interactions between the humid atmospheric boundary layer (ABL) and the salt water oceanic mixed layer (OML). The most energetic three-dimensional turbulent eddies in the ABL-OML system (convective cells) were explicitly resolved in these simulations. This study considers a case of shear-free convection in the coupled ABL-OML system. The ABL-OML coupling scheme used the turbulent fluxes at the bottom of the ABL as upper boundary conditions for the OML and the sea surface temperature at the top of the OML as lower boundary conditions for the ABL. The analysis of the numerical experiment confirms that the ABL-OML interactions involve both the traditional direct coupling mechanism and much less studied indirect coupling mechanism (Garrett Dyn Atmos Ocean 23:19-34, 1996). The direct coupling refers to a common flux-gradient representation of the air-sea exchange, which is controlled by the temperature difference across the air-water interface. The indirect coupling refers to thermal instability of the Rayleigh-Benard convection, which is controlled by the temperature difference across the entire mixed layer through formation of the large convective eddies or cells. The indirect coupling mechanism in these simulations explained up to 45 % of the ABL-OML co-variability on the turbulent scales. Despite relatively small amplitude of the sea surface temperature fluctuations, persistence of the OML cells organizes the ABL convective cells. Water downdrafts in the OML cells tend to be collocated with air updrafts in the ABL cells. The study concludes that the convective structures in the ABL and the OML are co-organized. The OML convection controls the air-sea turbulent exchange in the quasi-equilibrium convective ABL-OML system.
引用
收藏
页码:689 / 705
页数:17
相关论文
共 50 条
  • [41] Air-sea interactions during rapid intensification of typhoon Fengshen (2008)
    Wang, Xidong
    Wang, Xin
    Chu, Peter C.
    DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 2018, 140 : 63 - 77
  • [42] Air-sea interactions during the passage of a winter storm over the Gulf Stream: A three-dimensional coupled atmosphere-ocean model study
    Li, YP
    Xue, HJ
    Bane, JM
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2002, 107 (C11)
  • [43] Intraseasonal variability in the far-east pacific: investigation of the role of air-sea coupling in a regional coupled model
    Small, R. Justin
    Xie, Shang-Ping
    Maloney, Eric D.
    de Szoeke, Simon P.
    Miyama, Toru
    CLIMATE DYNAMICS, 2011, 36 (5-6) : 867 - 890
  • [44] Diversity of moderate El Nino events evolution: role of air-sea interactions in the eastern tropical Pacific
    Dewitte, Boris
    Takahashi, Ken
    CLIMATE DYNAMICS, 2019, 52 (12) : 7455 - 7476
  • [45] Local Air-Sea Interactions at Ocean Mesoscale and Submesoscale in a Western Boundary Current
    Strobach, Ehud
    Klein, Patrice
    Molod, Andrea
    Fahad, Abdullah A.
    Trayanov, Atanas
    Menemenlis, Dimitris
    Torres, Hector
    GEOPHYSICAL RESEARCH LETTERS, 2022, 49 (07)
  • [46] Impacts of tidal mixing on diurnal and intraseasonal air-sea interactions in the Maritime Continent
    Steffen, John
    Seo, Hyodae
    Clayson, Carol Anne
    Pei, Suyang
    Shinoda, Toshiaki
    DEEP-SEA RESEARCH PART II-TOPICAL STUDIES IN OCEANOGRAPHY, 2023, 212
  • [47] Air-sea interactions in the Adriatic basin: simulations of Bora and Sirocco wind events
    Ferrarese, S.
    Cassardo, C.
    Elmi, A.
    Genovese, R.
    Longhetto, A.
    Manfrin, M.
    Richiardone, R.
    GEOFIZIKA, 2009, 26 (02) : 157 - 170
  • [48] Air-sea interactions on Titan: Lake evaporation, atmospheric circulation, and cloud formation
    Rafkin, Scot C. R.
    Soto, Alejandro
    ICARUS, 2020, 351
  • [49] Air-sea interactions and Bay of Bengal basin wide variability with respect to long tracked cyclone 'Viyaru'
    Podapati, Gopi Krishna
    Tadivalasa, Pushpalatha
    Pentakota, Sreenivas
    Ramu, Dandi A.
    V. Gade, Sagar
    JOURNAL OF ATMOSPHERIC AND SOLAR-TERRESTRIAL PHYSICS, 2024, 265
  • [50] Forcing of oceanic heat anomalies by air-sea interactions in the Nordic Seas area
    Schlichtholz, P.
    Houssais, M. -N.
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2011, 116