Large-Eddy Simulation of Reynolds Stress Budgets in and Above Forests in Neutral Atmospheric Boundary Layers

被引:0
|
作者
Hong-Bing Su
Kyaw Tha Paw U
机构
[1] East Carolina University,Department of Geography, Planning, and Environment
[2] University of California,Department of Land, Air and Water Resources
来源
Boundary-Layer Meteorology | 2023年 / 187卷
关键词
Forest; Large-eddy simulation; Pressure-gradient interaction; Reynolds stress budgets; Roughness sublayer;
D O I
暂无
中图分类号
学科分类号
摘要
Large-eddy simulations (LESs) of inversion-capped neutral atmospheric boundary layers (ABLs) are augmented to earlier small-domain LESs of a sparse forest and field observation to evaluate the budgets of all non-negligible resolved-scale Reynolds stress components. The focus is on the atmospheric surface layer comprised of the roughness sublayer (RSL) in and above horizontally homogeneous forests and the inertial sublayer (ISL) above the RSL over flat terrain. The greater LES domain and ABL depths result in greater depths of both the RSL and the ISL. A key result is that in the upper portions of the canopy and above, pressure redistribution is a major sink of normal stress in the horizontal direction with mean shear production as a major source, whereas in the horizontal direction absent of mean shear production and in the vertical direction, pressure redistributions are major sources of normal stresses. In the lower portions of the canopy where mean shear production and turbulent transport are much reduced, pressure redistributions are major sources of horizontal velocity variances but a major sink of vertical velocity variance. Pressure transport is a greater source of vertical velocity variance than turbulent transport from the ground level to just under the treetops where it transitions to a major sink up to about 1.5 times the canopy height. This greater significance of pressure transport over turbulent transport increases with increased vegetation area index (VAI). The impact of increased value of geostrophic wind speed is negligible compared to that of increased value of VAI on enhancing normalized budget terms in the vicinity of treetops.
引用
收藏
页码:457 / 500
页数:43
相关论文
共 50 条
  • [31] Large-eddy simulation of rough-wall turbulent boundary layers
    Lee, C
    AIAA JOURNAL, 2002, 40 (10) : 2127 - 2130
  • [32] A recycling method for the large-eddy simulation of plumes in the atmospheric boundary layer
    Georgios Matheou
    Kevin W. Bowman
    Environmental Fluid Mechanics, 2016, 16 : 69 - 85
  • [33] Implicit large-eddy simulation in meteorology: From boundary layers to climate
    Smolarkiewicz, Piotr K.
    Margolin, Len G.
    Wyszogrodzki, Andrzej A.
    JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 2007, 129 (12): : 1533 - 1539
  • [34] A recycling method for the large-eddy simulation of plumes in the atmospheric boundary layer
    Matheou, Georgios
    Bowman, Kevin W.
    ENVIRONMENTAL FLUID MECHANICS, 2016, 16 (01) : 69 - 85
  • [35] A large-eddy simulation (LES) model for wind-farm-induced atmospheric gravity wave effects inside conventionally neutral boundary layers
    Stipa, Sebastiano
    Khan, Mehtab Ahmed
    Allaerts, Dries
    Brinkerhoff, Joshua
    WIND ENERGY SCIENCE, 2024, 9 (08) : 1647 - 1668
  • [36] On the Convergence and Capability of the Large-Eddy Simulation of Concentration Fluctuations in Passive Plumes for a Neutral Boundary Layer at Infinite Reynolds Number
    Hamidreza Ardeshiri
    Massimo Cassiani
    Soon Young Park
    Andreas Stohl
    Ignacio Pisso
    Anna Solvejg Dinger
    Boundary-Layer Meteorology, 2020, 176 : 291 - 327
  • [37] Large-eddy simulation of supersonic flat-plate boundary layers using the monotonically integrated large-eddy simulation (MILES) technique
    Yan, H
    Knight, D
    Zheltovodov, AA
    JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME, 2002, 124 (04): : 868 - 875
  • [38] On the Convergence and Capability of the Large-Eddy Simulation of Concentration Fluctuations in Passive Plumes for a Neutral Boundary Layer at Infinite Reynolds Number
    Ardeshiri, Hamidreza
    Cassiani, Massimo
    Park, Soon Young
    Stohl, Andreas
    Pisso, Ignacio
    Dinger, Anna Solvejg
    BOUNDARY-LAYER METEOROLOGY, 2020, 176 (03) : 291 - 327
  • [39] Large-eddy simulation of the flow and acoustic fields of a Reynolds number 105 subsonic jet with tripped exit boundary layers
    Bogey, Christophe
    Marsden, Olivier
    Bailly, Christophe
    PHYSICS OF FLUIDS, 2011, 23 (03)
  • [40] Large-eddy simulation of the turbulent dispersion of a reactive plume from a point source into a neutral atmospheric boundary layer
    Meeder, JP
    Nieuwstadt, FTM
    ATMOSPHERIC ENVIRONMENT, 2000, 34 (21) : 3563 - 3573