Stably Stratified Atmospheric Boundary Layers

被引:364
作者
Mahrt, L. [1 ,2 ]
机构
[1] NorthWest Res Associates, Redmond, WA 98052 USA
[2] Oregon State Univ, Coll Earth Ocean & Atmosphere, Corvallis, OR 97331 USA
来源
ANNUAL REVIEW OF FLUID MECHANICS, VOL 46 | 2014年 / 46卷
基金
美国国家科学基金会;
关键词
stratified turbulence; nocturnal boundary layer; submeso motions; gravity waves; atmospheric turbulence; INTERNAL GRAVITY-WAVES; FLUX-GRADIENT RELATIONSHIPS; CRITICAL RICHARDSON-NUMBER; SMALL-SCALE TURBULENCE; INTERMITTENT TURBULENCE; SOLITARY WAVES; WIND-SPEED; MESOSCALE VARIABILITY; COHERENT STRUCTURES; VELOCITY-VARIANCE;
D O I
10.1146/annurev-fluid-010313-141354
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Atmospheric boundary layers with weak stratification are relatively well described by similarity theory and numerical models for stationary horizontally homogeneous conditions. With common strong stratification, similarity theory becomes unreliable. The turbulence structure and interactions with the mean flow and small-scale nonturbulent motions assume a variety of scenarios. The turbulence is intermittent and may no longer fully satisfy the usual conditions for the definition of turbulence. Nonturbulent motions include wave-like motions and solitary modes, two-dimensional vortical modes, microfronts, intermittent drainage flows, and a host of more complex structures. The main source of turbulence may not be at the surface, but rather may result from shear above the surface inversion. The turbulence is typically not in equilibrium with the nonturbulent motions, sometimes preventing the formation of an inertial subrange. New observational and analysis techniques are expected to advance our understanding of the very stable boundary layer.
引用
收藏
页码:23 / 45
页数:23
相关论文
共 155 条
[1]   RICHARDSON-NUMBER CRITERION FOR THE NONLINEAR STABILITY OF 3-DIMENSIONAL STRATIFIED FLOW [J].
ABARBANEL, HDI ;
HOLM, DD ;
MARSDEN, JE ;
RATIU, T .
PHYSICAL REVIEW LETTERS, 1984, 52 (26) :2352-2355
[2]   Measurement of Prandtl Number as a Function of Richardson Number Avoiding Self-Correlation [J].
Anderson, Philip S. .
BOUNDARY-LAYER METEOROLOGY, 2009, 131 (03) :345-362
[3]   Fine-scale structure observed in a stable atmospheric boundary layer by Sodar and kite-borne tethersonde [J].
Anderson, PS .
BOUNDARY-LAYER METEOROLOGY, 2003, 107 (02) :323-351
[4]   Low-level atmospheric jets and inversions over the western Weddell Sea [J].
Andreas, EL ;
Claffy, KJ ;
Makshtas, AP .
BOUNDARY-LAYER METEOROLOGY, 2000, 97 (03) :459-486
[5]   An analysis of sonic anemometer observations in low wind speed conditions [J].
Anfossi, D ;
Oettl, D ;
Degrazia, G ;
Goulart, A .
BOUNDARY-LAYER METEOROLOGY, 2005, 114 (01) :179-203
[6]  
Anquetin S, 1998, J APPL METEOROL, V37, P1547, DOI 10.1175/1520-0450(1998)037<1547:TFADOI>2.0.CO
[7]  
2
[8]   Horizontal and vertical CO2 advection in a sloping forest [J].
Aubinet, M ;
Heinesch, B ;
Yernaux, M .
BOUNDARY-LAYER METEOROLOGY, 2003, 108 (03) :397-417
[9]   Exploring self-correlation in flux-gradient relationships for stably stratified conditions [J].
Baas, P. ;
Steeneveld, G. J. ;
de Wiel, B. J. H. van ;
Holtslag, A. A. M. .
JOURNAL OF THE ATMOSPHERIC SCIENCES, 2006, 63 (11) :3045-3054
[10]   Momentum and energy transport by gravity waves in stochastically driven stratified flows. Part I: Radiation of gravity waves from a shear layer [J].
Bakas, Nikolaos A. ;
Ioannou, Petros J. .
JOURNAL OF THE ATMOSPHERIC SCIENCES, 2007, 64 (05) :1509-1529