Development of an Improved Turbulence Closure Model for the Atmospheric Boundary Layer

被引:778
|
作者
Nakanishi, Mikio [1 ]
Niino, Hiroshi [2 ]
机构
[1] Natl Def Acad, Dept Earth & Ocean Sci, Yokosuka, Kanagawa 2398686, Japan
[2] Univ Tokyo, Ocean Res Inst, Tokyo 164, Japan
关键词
LARGE-EDDY SIMULATION; YAMADA LEVEL-3 MODEL; RADIATION FOG; ENERGY-MODEL; SCALE MODEL; PBL MODEL; FLOWS; PREDICTION; CONDENSATION; 3RD-ORDER;
D O I
10.2151/jmsj.87.895
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
An improved Mellor-Yamada (MY) turbulence closure model (MYNN model: Mellor-Yamada-Nakanishi-Niino model) that we have developed is summarized and its performance is demonstrated against a large-eddy simulation (LES) of a convective boundary layer. Unlike the original MY model, the MYNN model considers effects of buoyancy oil pressure covariances and effects of stability oil the turbulent length scale, with model constants determined from a LES database. One-dimensional simulations of Day 33 of the Wangara field experiment, which was conducted in a flat area Of Southeastern Australia in 1967, are made by the MY and MYNN models and the results are compared with horizontal-average statistics obtained from a three-dimensional LES. The MYNN model improves several weak points of the MY model such as all insufficient growth of the convective boundary layer, and underestimates of the turbulent kinetic energy and the turbulent length scale; it reproduces fairly well the results of the LES including the vertical distributions of the mean and turbulent quantities. The improved performance of the MYNN model relies mainly on the new formulation Of the turbulent length scale that realistically increases with decreasing stability, and partly oil the parameterization of the pressure covariances and the expression for stability functions for third-order turbulent fluxes.
引用
收藏
页码:895 / 912
页数:18
相关论文
共 50 条
  • [21] A Model for Turbulence Spectra in the Equilibrium Range of the Stable Atmospheric Boundary Layer
    Cheng, Yu
    Li, Qi
    Argentini, Stefania
    Sayde, Chadi
    Gentine, Pierre
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2020, 125 (05)
  • [22] Active control of turbulence for an atmospheric boundary layer model in a wind tunnel
    Nishi, A
    Kikugawa, H
    Matsuda, Y
    Tashiro, D
    JOURNAL OF WIND ENGINEERING AND INDUSTRIAL AERODYNAMICS, 1999, 83 : 409 - 419
  • [23] Active control of turbulence for an atmospheric boundary layer model in a wind tunnel
    Nishi, A.
    Kikugawa, H.
    Matsuda, Y.
    Tashiro, D.
    Journal of Wind Engineering and Industrial Aerodynamics, 1999, 83 (1-4): : 409 - 419
  • [24] Turbulence Model of Atmospheric Boundary Layer in General Curvilinear Coordinate System
    Mirkov, Nikola
    Stevanovic, Zana
    Stevanovic, Zarko
    FME TRANSACTIONS, 2008, 36 (04): : 151 - 156
  • [25] Combined closure single-column atmospheric boundary layer model
    Bordas, Arpad
    Weidinger, Tamas
    IDOJARAS, 2015, 119 (03): : 379 - 398
  • [26] An improved k-ω turbulence model for the simulations of the wind turbine wakes in a neutral atmospheric boundary layer flow
    Bouras, Ioannis
    Ma, Lin
    Ingham, Derek
    Pourkashanian, Mohamed
    JOURNAL OF WIND ENGINEERING AND INDUSTRIAL AERODYNAMICS, 2018, 179 : 358 - 368
  • [28] Modeling optical turbulence in the atmospheric boundary layer
    Tofsted, David H.
    O'Brien, Sean G.
    TARGETS AND BACKGROUNDS XII: CHARACTERIZATION AND REPRESENTATION, 2006, 6239
  • [29] Experimental investigation of atmospheric boundary layer turbulence
    Druilhet, A
    Durand, P
    ATMOSPHERIC RESEARCH, 1997, 43 (04) : 345 - 388
  • [30] Aeroelectric structures and turbulence in the atmospheric boundary layer
    Anisimov, S. V.
    Mareev, E. A.
    Shikhova, N. M.
    Shatalina, M. V.
    Galichenko, S. V.
    Zilitinkevich, S. S.
    NONLINEAR PROCESSES IN GEOPHYSICS, 2013, 20 (05) : 819 - 824