Ekman Friction and the Formation of Upper Tropospheric Zonal Flows

被引:2
|
作者
Kalashnik, M., V [1 ,2 ]
机构
[1] Russian Acad Sci, Obukhov Inst Atmospher Phys, Moscow 109017, Russia
[2] NPO Taifun, Obninsk 249038, Russia
基金
俄罗斯基础研究基金会; 俄罗斯科学基金会;
关键词
Ekman boundary layer; bottom friction; upper tropospheric jet flows; surface geostrophic model;
D O I
10.1134/S0001433820050059
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
The influence of the Ekman friction on the dynamics of zonal flows (ZFs) has been studied within the framework of a quasigeostrophic model of the atmosphere with two horizontal boundaries (the underlying surface and the tropopause). It is assumed that these flows have zero potential vorticity and are caused by specified buoyancy distributions at the boundaries. It is shown that, in the case of periodic distributions, the oppositely directed vertical velocity profile of ZFs transforms into a unidirectional profile with a maximum velocity at the upper boundary and zero velocity at the lower boundary. During this transformation, the velocity at the upper boundary increases; i.e., the upper tropospheric ZFs intensify due to the Ekman friction. A similar intensification occurs also in the case of initial distributions of buoyancy of the frontal type, which induce a system of two oppositely directed jet flows located in the upper and lower halves of the atmospheric layer. Due to the Ekman friction, the axial velocity of the lower flow drops to zero and the velocity of the upper flow, gradually covering the entire troposphere, doubles. The resulting flow is a jet pressed against the upper boundary, which may be considered a prototype of a western upper tropospheric jet flow. The important structural features of such a jet, which are established within the framework of a complete nongeostrophic model, are associated with horizontal jet asymmetry and the formation of fronts (discontinuity surfaces) adjacent to the upper boundary.
引用
收藏
页码:448 / 457
页数:10
相关论文
共 50 条
  • [31] Atmospheric Ekman Flows with Variable Eddy Viscosity
    A. Constantin
    R. S. Johnson
    Boundary-Layer Meteorology, 2019, 170 : 395 - 414
  • [32] GRAVOTURBULENT PLANETESIMAL FORMATION: THE POSITIVE EFFECT OF LONG-LIVED ZONAL FLOWS
    Dittrich, K.
    Klahr, H.
    Johansen, A.
    ASTROPHYSICAL JOURNAL, 2013, 763 (02):
  • [33] Nonlinear damping of zonal flows
    Koshkarov, O.
    Smolyakov, A. I.
    Mendonca, J. T.
    PLASMA PHYSICS REPORTS, 2016, 42 (08) : 769 - 772
  • [34] Changes in Equatorial Kelvin Wave Activity in the Upper Troposphere and Lower Stratosphere Associated with Interannual Variability of the Upper-Tropospheric Equatorial Zonal Wind
    Suzuki, Junko
    Nishi, Noriyuki
    Fujiwara, Masatomo
    Yoneyama, Kunio
    JOURNAL OF CLIMATE, 2025, 38 (03) : 749 - 759
  • [35] THE INFLUENCE OF EKMAN DISSIPATION ON THE DEVELOPMENT OF PERTURBATIONS IN A ZONAL SHEAR-FLOW
    CHURILOV, SM
    GEOPHYSICAL AND ASTROPHYSICAL FLUID DYNAMICS, 1989, 46 (03): : 177 - 190
  • [36] Nonlinear Ekman effects in rotating barotropic flows
    Sansón, LZ
    van Heijst, GJF
    JOURNAL OF FLUID MECHANICS, 2000, 412 : 75 - 91
  • [37] Constant Vorticity Ekman Flows in the β-Plane Approximation
    Wang, JinRong
    Feckan, Michal
    Guan, Yi
    JOURNAL OF MATHEMATICAL FLUID MECHANICS, 2021, 23 (03)
  • [38] Nonlinear damping of zonal flows
    O. Koshkarov
    A. I. Smolyakov
    J. T. Mendonca
    Plasma Physics Reports, 2016, 42 : 769 - 772
  • [39] Geometry effects on Zonal flows
    Mahajan, S
    Weiland, J
    THEORY OF FUSION PLASMAS, 2000, : 281 - 291
  • [40] Vortex dynamics and zonal flows
    Marcus, PS
    Kundu, T
    Lee, C
    PHYSICS OF PLASMAS, 2000, 7 (05) : 1630 - 1640