A Homogeneous Langevin Equation Model, Part ii: Simulation of Dispersion in the Convective Boundary Layer

被引:0
|
作者
John S. Nasstrom
Donald L. Ermak
机构
[1] University of California,Lawrence Livermore National Laboratory
来源
Boundary-Layer Meteorology | 1999年 / 92卷
关键词
Lagrangian stochastic dispersion model; Convective boundary layer; Langevin equation; Reflection boundary conditions;
D O I
暂无
中图分类号
学科分类号
摘要
We present a Lagrangian stochastic model of vertical dispersion in the convective boundary layer (CBL). This model is based on a generalized Langevin equation that uses the simplifying assumption that the skewed vertical velocity probability distribution is spatially homogeneous. This approach has been shown to account for two key properties of CBL turbulence associated with large-scale coherent turbulent structures: skewed vertical velocity distributions and long velocity correlation time. A 'linear-skewed' form of the generalized Langevin equation is used, which has a linear (in velocity) deterministic acceleration and a skewed random acceleration. 'Reflection' boundary conditions for selecting a new velocity for a particle that encounters a boundary were investigated, including alternatives to the standard assumption that the magnitudes of the particle incident and reflected velocities are positively correlated. Model simulations were tested using cases for which exact, analytic statistical properties of particle velocity and position are known, i.e., well-mixed spatial and velocity distributions. Simulations of laboratory experiments of CBL dispersion show that (1) the homogeneous linear-skewed Langevin equation model (as well as an alternative 'nonlinear-Gaussian' Langevin equation model) can simulate the important aspects of dispersion in the CBL, and (2) a negatively-correlated-speed reflection boundary condition simulates the observed dispersion of material near the surface in the CBL significantly better than alternative reflection boundary conditions. The homogeneous linear-skewed Langevin equation model has the advantage that it is computationally more efficient than the homogeneous nonlinear-Gaussian Langevin equation model, and considerably more efficient than inhomogeneous Langevin equation models.
引用
收藏
页码:371 / 405
页数:34
相关论文
共 50 条
  • [41] Response of Convective Boundary Layer and Shallow Cumulus to Soil Moisture Heterogeneity: A Large-Eddy Simulation Study
    Han, Cunbo
    Brdar, Slavko
    Kollet, Stefan
    JOURNAL OF ADVANCES IN MODELING EARTH SYSTEMS, 2019, 11 (12) : 4305 - 4322
  • [42] Large-Eddy Simulations of Reactive Pollutant Dispersion in the Convective Boundary Layer over Flat and Urban-Like Surfaces
    Beom-Soon Han
    Jong-Jin Baik
    Seung-Bu Park
    Kyung-Hwan Kwak
    Boundary-Layer Meteorology, 2019, 172 : 271 - 289
  • [43] Large-Eddy Simulations of Reactive Pollutant Dispersion in the Convective Boundary Layer over Flat and Urban-Like Surfaces
    Han, Beom-Soon
    Baik, Jong-Jin
    Park, Seung-Bu
    Kwak, Kyung-Hwan
    BOUNDARY-LAYER METEOROLOGY, 2019, 172 (02) : 271 - 289
  • [44] A MODEL FOR CONVECTIVE UPDRAFT VELOCITY IN THE ATMOSPHERIC BOUNDARY LAYER BASED ON ANALYTICAL RESULTS AND SAILPLANE FLIGHTS DATA
    Vraciu, Cristian V.
    ROMANIAN REPORTS IN PHYSICS, 2021, 73 (01)
  • [45] Evaluation of energy balance closure adjustment and imbalance prediction methods in the convective boundary layer-A large eddy simulation study
    Zhou, Yanzhao
    Suehring, Matthias
    Li, Xin
    AGRICULTURAL AND FOREST METEOROLOGY, 2023, 333
  • [46] The Impacts of Wind Shear on Spatial Variation of the Meteorological Element Field in the Atmospheric Convective Boundary Layer Based on Large Eddy Simulation
    Zhang, Hailiang
    Yin, Jinfang
    He, Qing
    Wang, Minzhong
    ATMOSPHERE, 2022, 13 (10)
  • [47] Negative water vapour skewness and dry tongues in the convective boundary layer: observations and large-eddy simulation budget analysis
    F. Couvreux
    F. Guichard
    V. Masson
    J.-L. Redelsperger
    Boundary-Layer Meteorology, 2007, 123 : 269 - 294
  • [48] Negative water vapour skewness and dry tongues in the convective boundary layer: observations and large-eddy simulation budget analysis
    Couvreux, F.
    Guichard, F.
    Masson, V.
    Redelsperger, J.-L.
    BOUNDARY-LAYER METEOROLOGY, 2007, 123 (02) : 269 - 294
  • [49] The Effect of Aerosol Radiative Heating on Turbulence Statistics and Spectra in the Atmospheric Convective Boundary Layer: A Large-Eddy Simulation Study
    Liu, Cheng
    Huang, Jianping
    Fedorovich, Evgeni
    Hu, Xiao-Ming
    Wang, Yongwei
    Lee, Xuhui
    ATMOSPHERE, 2018, 9 (09)
  • [50] Application of Dynamic Subgrid-scale Models for Large-eddy Simulation of the Daytime Convective Boundary Layer over Heterogeneous Surfaces
    Hsin-Yuan Huang
    Bjorn Stevens
    Steven A. Margulis
    Boundary-Layer Meteorology, 2008, 126 : 327 - 348