Large-Eddy Simulation of Neutrally-Stratified Turbulent Flow Within and Above Plant Canopy Using the Central-Moments-Based Lattice Boltzmann Method

被引:0
作者
Tsutomu Watanabe
Kou Shimoyama
Masayuki Kawashima
Yasuko Mizoguchi
Atsushi Inagaki
机构
[1] Hokkaido University,Institute of Low Temperature Science
[2] Forestry and Forest Products Research Institute,Hokkaido Research Center
[3] Tokyo Institute of Technology,Department of Transdisciplinary Science and Engineering
来源
Boundary-Layer Meteorology | 2020年 / 176卷
关键词
Coherent structure; Large-eddy simulation; Lattice Boltzmann method; Plant canopy; Turbulence;
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中图分类号
学科分类号
摘要
A central-moments-based lattice Boltzmann model for large-eddy simulation of neutrally-stratified turbulent flows is described. Through comparative simulations of the airflow within and above a homogeneous plant canopy, the performance of the model is evaluated with respect to a conventional large-eddy-simulation model based on the incompressible Navier–Stokes equations. Simulated turbulence statistics, such as the mean velocity, velocity variances, velocity skewness, and power spectra, are shown to be almost identical between the two models. The spatial structure of coherent eddies and their maintenance processes are also confirmed to be properly represented by the lattice Boltzmann method through analysis of the turbulence kinetic energy budget and spatial two-point correlation functions. Using the simulated results, the energetics of the streamwise-elongated streaky structures commonly observed over vegetation and urban canopies are examined. While the short-wavelength components of the shear-generated streamwise kinetic energy are redirected rapidly by pressure to the lateral and vertical velocity components, long-wavelength energy tends to remain in the streamwise velocity component, which is dissipated in relatively slower processes. Consequently, the streaky structures persist in the streamwise velocity component.
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页码:35 / 60
页数:25
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共 185 条
[1]  
Ahmad NH(2017)Large-eddy simulation of the gust index in an urban area using the lattice Boltzmann method Boundary-Layer Meteorol 163 447-467
[2]  
Inagaki A(2010)Lattice-Boltzmann method for complex flows Annu Rev Fluid Mech 42 439-472
[3]  
Kanda M(1989)Turbulent exchange above a pine forest. II Organized structures Boundary-Layer Meteorol 49 231-263
[4]  
Onodera N(2009)Exploring the effects of microscale structural heterogeneity of forest canopies using large-eddy simulations Boundary-Layer Meteorol 132 351-382
[5]  
Aoki T(2008)Spectral short-circuiting and wake production within the canopy trunk space of an Alpine hardwood forest Boundary-Layer Meteorol 126 415-431
[6]  
Aidum CK(1998)Lattice Boltzmann method for fluid flows Annu Rev Fluid Mech 30 329-364
[7]  
Clausen JR(2006)Mean flow and turbulence statistics over groups of urban-like cubical obstacles Boundary-Layer Meteorol 121 491-519
[8]  
Bergstöm H(2014)Optimized implementation of the lattice Boltzmann method on a graphics processing unit towards real-time fluid simulation Comput Math Appl 67 462-475
[9]  
Högström U(2009)Coherent structures in canopy edge flow: a large-eddy simulation study J Fluid Mech 630 93-128
[10]  
Bohrer G(2012)Turbulent structures in a pine forest with a deep and sparse trunk space: stand and edge regions Boundary-Layer Meteorol 143 309-336