Impact of Dominant Breaking Waves on Air-Sea Momentum Exchange and Boundary Layer Turbulence at High Winds

被引:8
|
作者
Suzuki, Nobuhiro [1 ]
Hara, Tetsu [1 ]
Sullivan, Peter P. [2 ]
机构
[1] Univ Rhode Isl, Grad Sch Oceanog, Narragansett, RI 02882 USA
[2] Natl Ctr Atmospher Res, Boulder, CO 80307 USA
基金
美国国家科学基金会;
关键词
Atmosphere-ocean interaction; Airflow; Boundary layer; Circulation/; Dynamics; Surface layer; Atm/Ocean Structure/ Phenomena; Shear structure/flows; Turbulence; LARGE-EDDY-SIMULATION; OCEAN SURFACE-WAVES; DRAG COEFFICIENT; COUPLED MODEL; FLOW; SPRAY; SPEEDS; FLUX;
D O I
10.1175/JPO-D-13-0146.1
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
Large-eddy simulation (LES) is used to investigate how dominant breaking waves in the ocean under hurricane-force winds affect the drag and near-surface airflow turbulence. The LES explicitly resolves the wake turbulence produced by dominant-scale breakers. Effects of unresolved roughness such as short breakers, nonbreaking waves, and sea foam are modeled as the subgrid-scale drag. Compared to the laboratory conditions previously studied using the same method, dominant-scale breakers in open-ocean conditions are less frequent, and the subgrid-scale drag is more significant. Nevertheless, dominant-scale breakers are more fully exposed to high winds and produce more intense wakes individually. As a result, they support a large portion of the total drag and significantly influence the turbulence for many ocean conditions that are likely to occur. The intense wake turbulence is characterized by flow separation, upward bursts of wind, and upward flux of the turbulent kinetic energy (TKE), all of which may influence sea spray dispersion. Similarly to the findings in the laboratory conditions, high production of wake turbulence shortcuts the inertial energy cascade, causes high TKE dissipation, and contributes to the reduction of the drag coefficient. The results also indicate that if the drag coefficient decreases with increasing wind at very high winds, as some recent observations suggest, then the unresolved roughness must also decrease.
引用
收藏
页码:1195 / 1212
页数:18
相关论文
共 50 条
  • [41] Oceanic fronts as a source high air-sea flux due to breaking of standing waves of intermediate scale
    Trizna, DB
    IGARSS 2000: IEEE 2000 INTERNATIONAL GEOSCIENCE AND REMOTE SENSING SYMPOSIUM, VOL I - VI, PROCEEDINGS, 2000, : 1283 - 1285
  • [42] Speciation of atmospheric mercury in the marine boundary layer and its influence on the air-sea exchange of mercury.
    Sheu, GR
    Mason, RP
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2001, 222 : U429 - U429
  • [43] Momentum Flux Budget across the Air-Sea Interface under Uniform and Tropical Cyclone Winds
    Fan, Yalin
    Ginis, Isaac
    Hara, Tetsu
    JOURNAL OF PHYSICAL OCEANOGRAPHY, 2010, 40 (10) : 2221 - 2242
  • [44] Impact of wind waves on the air-sea fluxes: A coupled model
    Kudryavtsev, V.
    Chapron, B.
    Makin, V.
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2014, 119 (02) : 1217 - 1236
  • [45] Boundary layers at a dynamic interface: Air-sea exchange of heat and mass
    Szeri, Andrew J.
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 2017, 122 (04) : 2781 - 2794
  • [47] Evaluation of the Impact of Air-Sea Exchange on Atmospheric Mercury Concentrations
    Bieser, Johannes
    Schrum, Corinna
    AIR POLLUTION MODELING AND ITS APPLICATION XXV, 2018, : 439 - 444
  • [48] Influence of the boundary layer height on the global air-sea surface fluxes
    Sahlee, Erik
    Smedman, Ann-Sofi
    Hogstrom, Ulf
    CLIMATE DYNAMICS, 2009, 33 (01) : 33 - 44
  • [49] EFFECTS OF AIR-SEA TEMPERATURE CONTRAST ON BOUNDARY-LAYER STRUCTURE
    PENNELL, WT
    LENSCHOW, DH
    LEMONE, MA
    BULLETIN OF THE AMERICAN METEOROLOGICAL SOCIETY, 1976, 57 (01) : 153 - 153
  • [50] Bidirectional air-sea exchange and accumulation of POPs (PAHs, PCBs, OCPs and PBDEs) in the nocturnal marine boundary layer
    Lammel, Gerhard
    Meixner, Franz X.
    Vrana, Branislav
    Efstathiou, Christos I.
    Kohoutek, Jiri
    Kukucka, Petr
    Mulder, Marie D.
    Pribylova, Petra
    Prokes, Roman
    Rusina, Tatsiana P.
    Song, Guo-Zheng
    Tsapakis, Manolis
    ATMOSPHERIC CHEMISTRY AND PHYSICS, 2016, 16 (10) : 6381 - 6393