Characterisation and simulation of the multiscaling properties of the energy-containing scales of horizontal surface-layer winds

被引:28
作者
Lauren, MK [1 ]
Menabde, M [1 ]
Seed, AW [1 ]
Austin, GL [1 ]
机构
[1] Univ Auckland, Dept Phys, Auckland, New Zealand
关键词
atmospheric surface layer; longitudinal velocity fluctuations; multifractals; spectra; statistical analysis; turbulence;
D O I
10.1023/A:1001749126625
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
The multiscaling statistics of atmospheric surface-layer winds at low wavenumbers above farmland and in the lee of a mountain range were examined using a hot-wire and lightweight cup anemometer. It was found that the horizontal velocity spectra could be broken into high and low-wavenumber regimes according to the parameters given by this analysis. The low-wavenumber end of the spectrum possessed a spectral slope parameter that varied between values of 0.8 and 1.35 at the farmland site during the period of the experiment, and the high-wavenumber end - corresponding to the inertial range - possessed a spectral slope slightly greater than -5/3. The larger values for this parameter for the low-wavenumber end appeared to coincide with unstable conditions. In the lee of the mountain range, the low-wavenumber spectral slope parameter was larger still, at 1.45. The low-wavenumber signals over farmland were much less intermittent than inertial-range signals, but in the lee of the mountain range the intermittency increased. From this analysis, it was shown that the statistical properties of the recorded wind signal could be reproduced using a bounded random multiplicative cascade. The model was successfully used to simulate the wind velocity field directly rather than simulating the energy dissipation field. Since the spectral slope parameter for low wavenumbers appeared to be a function of atmospheric stability, the method presented is a simple way of generating wind signals characteristic of a variety of atmospheric conditions.
引用
收藏
页码:21 / 46
页数:26
相关论文
共 53 条
[41]  
PRESS WH, 1992, NUMERICAL RECIPES C, P549
[42]  
RAUPACH MR, 1991, J FLUID MECH, V165, P163
[43]   Requirements for large-eddy simulation of surface wind gusts in a mountain valley [J].
Revell, MJ ;
Purnell, D ;
Lauren, MK .
BOUNDARY-LAYER METEOROLOGY, 1996, 80 (04) :333-353
[44]  
SAUCIER A, 1991, THESIS MCGILL U MONT
[45]   PHYSICAL MODELING AND ANALYSIS OF RAIN AND CLOUDS BY ANISOTROPIC SCALING MULTIPLICATIVE PROCESSES [J].
SCHERTZER, D ;
LOVEJOY, S .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1987, 92 (D8) :9693-9714
[46]   EMPIRICAL DETERMINATION OF UNIVERSAL MULTIFRACTAL EXPONENTS IN TURBULENT VELOCITY-FIELDS [J].
SCHMITT, F ;
LAVALLEE, D ;
SCHERTZER, D ;
LOVEJOY, S .
PHYSICAL REVIEW LETTERS, 1992, 68 (03) :305-308
[47]   The local effect of intermittency on the inertial subrange energy spectrum of the atmospheric surface layer [J].
Szilagyi, J ;
Katul, GG ;
Parlange, MB ;
Albertson, JD ;
Cahill, AT .
BOUNDARY-LAYER METEOROLOGY, 1996, 79 (1-2) :35-50
[48]   ON THE SPECTRUM OF ENERGY IN TURBULENT SHEAR FLOW [J].
TCHEN, CM .
JOURNAL OF RESEARCH OF THE NATIONAL BUREAU OF STANDARDS, 1953, 50 (01) :51-62
[49]  
Tennekes H., 2018, A first course in turbulence
[50]   EQUILIBRIUM LAYERS AND WALL TURBULENCE [J].
TOWNSEND, AA .
JOURNAL OF FLUID MECHANICS, 1961, 11 (01) :97-120