Coherent Structures and the Dissimilarity of Turbulent Transport of Momentum and Scalars in the Unstable Atmospheric Surface Layer

被引:174
作者
Li, Dan [1 ]
Bou-Zeid, Elie [1 ]
机构
[1] Princeton Univ, Dept Civil & Environm Engn, Princeton, NJ 08544 USA
关键词
Coherent structures; Hairpin vortices; Quadrant analysis; Reynolds analogy; Thermal plumes; Transport efficiencies; PLANETARY BOUNDARY-LAYER; TEMPERATURE-HUMIDITY CORRELATION; HORIZONTAL ROLL VORTICES; LARGE-EDDY SIMULATIONS; WATER-VAPOR; SIMILARITY; HEAT; HETEROGENEITY; SUBLAYER; CANOPY;
D O I
10.1007/s10546-011-9613-5
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
Atmospheric stability effects on the dissimilarity between the turbulent transport of momentum and scalars (water vapour and temperature) are investigated in the neutral and unstable atmospheric surface layers over a lake and a vineyard. A decorrelation of the momentum and scalar fluxes is observed with increasing instability. Moreover, different measures of transport efficiency (correlation coefficients, efficiencies based on quadrant analysis and bulk transfer coefficients) indicate that, under close to neutral conditions, momentum and scalars are transported similarly whereas, as the instability of the atmosphere increases, scalars are transported increasingly more efficiently than momentum. This dissimilarity between the turbulent transport of momentum and scalars under unstable conditions concurs with, and is likely caused by, a change in the topology of turbulent coherent structures. Previous laboratory and field studies report that under neutral conditions hairpin vortices and hairpin packets are present and dominate the vertical fluxes, while under free-convection conditions thermal plumes are expected. Our results (cross-stream vorticity variation, quadrant analysis and time series analysis) are in very good agreement with this picture and confirm a change in the structure of the coherent turbulent motions under increasing instability, although the exact structure of these motions and how they are modified by stability requires further investigation based on three-dimensional flow data.
引用
收藏
页码:243 / 262
页数:20
相关论文
共 63 条
[31]  
Kays W.M., 2011, Convective heat and mass transfer
[32]   TURBULENT PRANDTL NUMBER - WHERE ARE WE [J].
KAYS, WM .
JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 1994, 116 (02) :284-295
[33]   Very large-scale motion in the outer layer [J].
Kim, KC ;
Adrian, RJ .
PHYSICS OF FLUIDS, 1999, 11 (02) :417-422
[34]   STRUCTURE OF TURBULENT BOUNDARY LAYERS [J].
KLINE, SJ ;
REYNOLDS, WC ;
SCHRAUB, FA ;
RUNSTADLER, PW .
JOURNAL OF FLUID MECHANICS, 1967, 30 :741-+
[35]   Micrometeorological fluxes under the influence of regional and local advection: a revisit [J].
Lee, XH ;
Yu, Q ;
Sun, XM ;
Liu, JD ;
Min, QW ;
Liu, YF ;
Zhang, XZ .
AGRICULTURAL AND FOREST METEOROLOGY, 2004, 122 (1-2) :111-124
[36]  
MAHRT L, 1991, J ATMOS SCI, V48, P472, DOI 10.1175/1520-0469(1991)048<0472:EAITSH>2.0.CO
[37]  
2
[38]  
MAHRT L, 1991, Q J ROY METEOR SOC, V117, P151, DOI 10.1002/qj.49711749708
[39]   Wall-bounded turbulent flows at high Reynolds numbers: Recent advances and key issues [J].
Marusic, I. ;
McKeon, B. J. ;
Monkewitz, P. A. ;
Nagib, H. M. ;
Smits, A. J. ;
Sreenivasan, K. R. .
PHYSICS OF FLUIDS, 2010, 22 (06) :1-24
[40]   Predictive Model for Wall-Bounded Turbulent Flow [J].
Marusic, I. ;
Mathis, R. ;
Hutchins, N. .
SCIENCE, 2010, 329 (5988) :193-196