Statistical Variability of Dispersion in the Convective Boundary Layer: Ensembles of Simulations and Observations

被引:23
|
作者
Weil, Jeffrey C. [1 ]
Sullivan, Peter P. [2 ]
Patton, Edward G. [2 ]
Moeng, Chin-Hoh [2 ]
机构
[1] Univ Colorado, Cooperat Inst Res Environm Sci, Boulder, CO 80309 USA
[2] Natl Ctr Atmospher Res, Boulder, CO 80307 USA
关键词
Concentration statistics; Convective boundary layer; Dispersion; Lagrangian particle model; Large-eddy simulation; Turbulence; LARGE-EDDY-SIMULATION; CONDORS FIELD EXPERIMENT; GROUND-LEVEL SOURCE; PLUME DISPERSION; CONCENTRATION FLUCTUATIONS; MIXED-LAYER; VERTICAL DIFFUSION; STOCHASTIC-MODELS; BUOYANCY-DRIVEN; SHEAR-DRIVEN;
D O I
10.1007/s10546-012-9704-y
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
A Lagrangian particle dispersion model (LPDM) driven by velocity fields from large-eddy simulations (LESs) is used to determine the mean and variability of plume dispersion in a highly convective planetary boundary layer (PBL). The total velocity of a "particle" is divided into resolved and unresolved or random (subfilter scale, SFS) velocities with the resolved component obtained from the LES and the SFS velocity from a Lagrangian stochastic model. This LPDM-LES model is used to obtain an ensemble of dispersion realizations for calculating the mean, root-mean-square (r.m.s.) deviation, and fluctuating fields of dispersion quantities. An ensemble of 30 realizations is generated for each of three source heights: surface, near-surface, and elevated. We compare the LPDM calculations with convection tank experiments and field observations to assess the realism of the results. The overall conclusion is that the LPDM-LES model produces a realistic range of dispersion realizations and statistical variability (i.e., r.m.s. deviations) that match observations in this highly convective PBL, while also matching the ensemble-mean properties. This is true for the plume height or trajectory, vertical dispersion, and the surface values of the crosswind-integrated concentration (CWIC), and their dependence on downstream distance. One exception is the crosswind dispersion for an elevated source, which is underestimated by the model. Other analyses that highlight important LPDM results include: (1) the plume meander and CWIC fluctuation intensity at the surface, (2) the applicability of a similarity theory for plume height from a surface source to only the very strong updraft plumes-not the mean height, and (3) the appropriate variation with distance of the mean surface CWIC and the lower bound of the CWIC realizations for a surface source.
引用
收藏
页码:185 / 210
页数:26
相关论文
共 50 条
  • [1] Statistical Variability of Dispersion in the Convective Boundary Layer: Ensembles of Simulations and Observations
    Jeffrey C. Weil
    Peter P. Sullivan
    Edward G. Patton
    Chin-Hoh Moeng
    Boundary-Layer Meteorology, 2012, 145 : 185 - 210
  • [2] Development of the convective boundary layer capping with a thick neutral layer in Badanjilin: Observations and simulations
    Han Bo
    LU Shihua
    Ao Yinhuan
    ADVANCES IN ATMOSPHERIC SCIENCES, 2012, 29 (01) : 177 - 192
  • [3] Development of the convective boundary layer capping with a thick neutral layer in Badanjilin: Observations and simulations
    Bo Han
    Shihua Lü
    Yinhuan Ao
    Advances in Atmospheric Sciences, 2012, 29 : 177 - 192
  • [4] Development of the Convective Boundary Layer Capping with a Thick Neutral Layer in Badanjilin:Observations and Simulations
    韩博
    吕世华
    奥银焕
    AdvancesinAtmosphericSciences, 2012, 29 (01) : 177 - 192
  • [5] LARGE-EDDY SIMULATION OF DISPERSION IN THE CONVECTIVE BOUNDARY-LAYER
    HENN, DS
    SYKES, RI
    ATMOSPHERIC ENVIRONMENT PART A-GENERAL TOPICS, 1992, 26 (17): : 3145 - 3159
  • [6] Grey zone simulations of the morning convective boundary layer development
    Efstathiou, G. A.
    Beare, R. J.
    Osborne, S.
    Lock, A. P.
    JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2016, 121 (09) : 4769 - 4782
  • [7] Large eddy simulations of the Martian convective boundary layer: Towards developing a new planetary boundary layer scheme
    Temel, Orkun
    Senel, Cem Berk
    Porchetta, Sara
    Munoz-Esparza, Domingo
    Mischna, Michael A.
    Van Hoolst, Tim
    van Beeck, Jeroen
    Karatekin, Ozgur
    ATMOSPHERIC RESEARCH, 2021, 250
  • [8] Statistical Variability of Dispersion at Local and Regional Scales: LPDM-LES Model Ensembles and Observations
    Weil, Jeffrey
    Sullivan, Peter
    Patton, Edward
    Moeng, Chin-Hoh
    AIR POLLUTION MODELING AND ITS APPLICATION XXII, 2014, : 643 - 646
  • [9] Pair and multi-particle dispersion in numerical simulations of convective boundary layer turbulence
    Mazzitelli, I. M.
    Fornarelli, F.
    Lanotte, A. S.
    Oresta, P.
    PHYSICS OF FLUIDS, 2014, 26 (05)
  • [10] Resolution Dependence of Turbulent Structures in Convective Boundary Layer Simulations
    Bopape, Mary-Jane M.
    Plant, Robert S.
    Coceal, Omduth
    ATMOSPHERE, 2020, 11 (09)