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Large eddy simulation and study of the urban boundary layer

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Abstract

Based on a pseudo-spectral large eddy simulation (LES) model, an LES model with an anisotropy turbulent kinetic energy (TKE) closure model and an explicit multi-stage third-order Runge-Kutta scheme is established. The modeling and analysis show that the LES model can simulate the planetary boundary layer (PBL) with a uniform underlying surface under various stratifications very well. Then, similar to the description of a forest canopy, the drag term on momentum and the production term of TKE by subgrid city buildings are introduced into the LES equations to account for the area-averaged effect of the subgrid urban canopy elements and to simulate the meteorological fields of the urban boundary layer (UBL). Numerical experiments and comparison analysis show that: (1) the result from the LES of the UBL with a proposed formula for the drag coefficient is consistent and comparable with that from wind tunnel experiments and an urban subdomain scale model; (2) due to the effect of urban buildings, the wind velocity near the canopy is decreased, turbulence is intensified, TKE, variance, and momentum flux are increased, the momentum and heat flux at the top of the PBL are increased, and the development of the PBL is quickened; (3) the height of the roughness sublayer (RS) of the actual city buildings is the maximum building height (1.5–3 times the mean building height), and a constant flux layer (CFL) exists in the lower part of the UBL.

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References

  • Brown, M. J., 2000: Urban parameterizations for mesoscale meteorological models.Mesoscale Atmospheric Dispersion. Z. Boybeyi, Ed., Wessex Institute of Technology Press, Boston, 193–255.

    Google Scholar 

  • Brown, M. J., and M. Williams, 1998: An urban canopy parameterization for mesoscale meteorological models.AMS 2nd Urban Environment Symposium, Albuquerque, NM, 10A.1, 1–4.

  • Cai, X-M., 1999: Large-eddy simulation of the convective boundary layer over an idealized patchy urban surface.Quart. J. Roy. Meteor. Soc.,125, 1427–1444.

    Article  Google Scholar 

  • Deardorff, J. W., 1980: Stratocumulus-capped mixed layers derived from a three-dimensional model.Bound.-Layer Meteor.,18, 495–527.

    Article  Google Scholar 

  • Ge Xiaozhen, 1994:The Numerical Method in Atmospheric Sciences. Nanjing University Press, Nanjing, 472pp. (in Chinese)

    Google Scholar 

  • Kosovié, B., and J. A. Curry, 2000: A large eddy simulation study of a quasi-steady, stably stratified atmospheric boundary layer.J. Atmos. Sci.,57, 1052–1068.

    Article  Google Scholar 

  • Martilli, A., A. Clappier, and M. W. Rotach, 2002: An urban surface exchange parameterization for mesoscale models.Bound.-Layer Meteor.,104, 261–304.

    Article  Google Scholar 

  • Mason, P. J., and D. J. Thomson, 1992: Stochastic backscatter in large-eddy simulations of boundary layers.J. Fluid Mech.,242, 51–78.

    Article  Google Scholar 

  • Miao Shiguang, and Jiang Weimei, 2004: Large eddy simulation of turbulent flow in forest canopy and forest boundary layer.Chinese Journal of Geophysics. (in Chinese, in print)

  • Miao Shiguang, Jiang Weimei, Wang Xiaoyun, Zhang Ning, Ji Congping, and Li Ju, 2002: Numerical simulation of meteorology and pollutant diffusion in urban subdomain.Acta Scientiae Circumstantiae,22, 478–483. (in Chinese)

    Google Scholar 

  • Moeng, C-H., 1984: A large-eddy-simulation model for the study of planetary boundary-layer turbulence.J. Atmos. Sci.,41, 2052–2062.

    Article  Google Scholar 

  • Moeng, C-H., and P. P. Sullivan, 1994: A comparison of shear- and buoyancy-driven planetary boundary layer flows.J. Atmos. Sci.,51, 999–1022.

    Article  Google Scholar 

  • Nieuwstadt, F. T. M., 1984: The turbulent structure of the stable, nocturnal boundary layer.J. Atmos. Sci.,41, 2202–2216.

    Article  Google Scholar 

  • Ouyang Yan, Jiang Weimei, and Miao Shiguang, 2003: Experimental study in wind tunnel on field of air flows and pollutant dispersion in the urban subdomain.Journal of Nanjing University (Natural Sciences),39, 770–780. (in Chinese)

    Google Scholar 

  • Raupach, M. R., 1992: Drag and drag partition on rough surfaces.Bound.-Layer Meteor.,60, 375–395.

    Article  Google Scholar 

  • Rotach, M. W., 2001: Simulation of urban-scale dispersion using a Lagrangian stochastic dispersion model.Bound.-Layer Meteor.,99, 379–410.

    Article  Google Scholar 

  • Roth, M., 2000: Review of atmospheric turbulence over cities.Quart. J. Roy. Meteor. Soc.,126, 941–990.

    Article  Google Scholar 

  • Schmidt, H., and U. Schumann, 1989: Coherent structure of the convective boundary layer derived from large eddy simulation.J. Fluid Mech.,200, 511–562.

    Article  Google Scholar 

  • Sullivan, P. P., J. C. McWilliams, and C-H. Moeng, 1994: A subgrid-scale model for large eddy simulation of planetary boundary-layer flows.Bound.-Layer Meteor.,71, 247–276.

    Article  Google Scholar 

  • Wyngaard, J. C., 1984: Large-eddy simulation-Guidelines for its application to planetary boundary layer research. The U.S. Army Research Office, AD-A146 381, 69pp.

  • Zhang Hanxin, and Shen Mengyu, 2003:Computational Fluid Dynamics-The principle and Application of Difference Method. National Defence Industry Press, Beijing, 289pp.

    Google Scholar 

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Correspondence to Miao Shiguang.

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Miao, S., Jiang, W. Large eddy simulation and study of the urban boundary layer. Adv. Atmos. Sci. 21, 650–661 (2004). https://doi.org/10.1007/BF02915732

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  • DOI: https://doi.org/10.1007/BF02915732

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