On the Possible Impact of a Following-Swell on the Atmospheric Boundary Layer

被引:18
|
作者
Makin, V. K. [1 ]
机构
[1] Royal Netherlands Meteorol Inst, NL-3730 AE De Bilt, Netherlands
关键词
Atmospheric boundary layer; Low wind speeds; Swell; Wave boundary layer;
D O I
10.1007/s10546-008-9320-z
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
A simple model of the atmospheric boundary layer over the ocean where the swell impact on the atmosphere is explicitly accounted for is suggested. The model is based on Ekman's equations, where the stress in the wave boundary layer is split into two parts: the turbulent and wave-induced stress. The turbulent stress is parameterized traditionally via the eddy viscosity proportional to the generalized mixing length. The wave-induced stress directed upward (from swell to the atmosphere) is parameterized using the formalism of the wind-over-waves coupling theory. The model can be seen as an extension of the model by Kudryavtsev and Makin (J Phys Oceanogr 34:934-949, 2004) to the scale of the entire atmospheric boundary layer by including the Coriolis force into the momentum conservation equation and generalizing the definition of the mixing length. The regime of low winds for swell propagating along the wind direction is studied. It is shown that the impact of swell on the atmosphere is governed mainly by the swell parameter-the coupling parameter that is the product of the swell steepness and the growth rate coefficient. When the coupling parameter drops below - 1 the impact of swell becomes significant and affects the entire atmospheric boundary layer. The turbulent stress is enhanced near the surface as compared to the no-swell case, and becomes negative above the height of the inner region. The wind profile is characterized by a positive gradient near the surface and a negative gradient above the height of the inner region forming a characteristic bump at the height of the inner region. Results of the model agree at least qualitatively with observations performed in the atmosphere in presence of swell.
引用
收藏
页码:469 / 478
页数:10
相关论文
共 50 条
  • [21] Impact of middle atmospheric humidity on boundary layer turbulence and clouds
    Malap, Neelam
    Prabha, T. V.
    Karipot, A.
    JOURNAL OF ATMOSPHERIC AND SOLAR-TERRESTRIAL PHYSICS, 2021, 215
  • [22] The impact of the atmospheric boundary layer on mountain forced gravity waves
    Broad, AS
    10TH CONFERENCE ON MOUNTAIN METEOROLOGY, 2002, : 426 - 428
  • [23] Modelling the impact of Baltic Sea upwelling on the atmospheric boundary layer
    Sproson, David
    Sahlee, Erik
    TELLUS SERIES A-DYNAMIC METEOROLOGY AND OCEANOGRAPHY, 2014, 66
  • [25] Impact of atmospheric boundary layer inhomogeneity in CFD simulations of tall buildings
    Abu-Zidan, Yousef
    Mendis, Priyan
    Gunawardena, Tharaka
    HELIYON, 2020, 6 (07)
  • [26] The Impact of Upstream Flow on the Atmospheric Boundary Layer in a Valley on a Mountainous Island
    Adler, Bianca
    Kalthoff, Norbert
    BOUNDARY-LAYER METEOROLOGY, 2016, 158 (03) : 429 - 452
  • [27] The Impact of Upstream Flow on the Atmospheric Boundary Layer in a Valley on a Mountainous Island
    Bianca Adler
    Norbert Kalthoff
    Boundary-Layer Meteorology, 2016, 158 : 429 - 452
  • [28] Impact of Elevated Kelvin-Helmholtz Billows on the Atmospheric Boundary Layer
    Jiang, Qingfang
    JOURNAL OF THE ATMOSPHERIC SCIENCES, 2021, 78 (12) : 3983 - 3999
  • [29] Impact of soil water property parameterization on atmospheric boundary layer simulation
    Cuenca, RH
    Ek, M
    Mahrt, L
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1996, 101 (D3) : 7269 - 7277
  • [30] Impact of Surface Heterogeneity Induced Secondary Circulations on the Atmospheric Boundary Layer
    Paleri, Sreenath
    Wanner, Luise
    Suehring, Matthias
    Desai, Ankur R.
    Mauder, Matthias
    Metzger, Stefan
    BOUNDARY-LAYER METEOROLOGY, 2025, 191 (01)