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A large eddy simulation on the effect of buildings on urban flows

  • Zhang, Ning (Department of Atmospheric Science, Nanjing University) ;
  • Jiang, Weimei (Department of Atmospheric Science, Nanjing University, Key Laboratory of Atmospheric Physics and Chemistry, Institue of Atmospheric Phyisics, Chinese Academy of Sciences) ;
  • Miao, Shiguang (Beijing Meteorology Bureau)
  • Received : 2005.01.12
  • Accepted : 2005.11.16
  • Published : 2006.02.25

Abstract

The effect of buildings on flow in urban canopy is one of the most important problems in local/micro-scale meteorology. A large eddy simulation model is used to simulate the flow structure in an urban neighborhood and the bulk effect of the buildings on surrounding flows is analyzed. The results demonstrate that: (a) The inflow conditions affect the detailed flow characteristics much in the building group, including: the distortion or disappearance of the wake vortexes, the change of funneling effect area and the change of location, size of the static-wind area. (b) The bulk effect of the buildings leads to a loss of wind speed in the low layer where height is less than four times of the average building height, and this loss effect changes little when the inflow direction changes. (c) In the bulk effect to environmental fields, the change of inflow direction affects the vertical distribution of turbulence greatly. The peak value of the turbulence energy appears at the height of the average building height. The attribution of fluctuations of different components to turbulence changes greatly at different height levels, in the low levels the horizontal speed fluctuation attribute mostly, while the vertical speed fluctuation does in high levels.

Keywords

References

  1. Ashie, Y., Ca, W.T. and Asaeda, T. (1990), 'Building canopy model for the analysis of urban climate', J. Wind Eng. Aerodyn., 81, 237-248
  2. Baik, J.J. and Kim, J.J. (1999), 'A numerical study of flow and pollutant dispersion characteristics in urban street canyons', J. Applied Meteorology, 38, 1576-1589 https://doi.org/10.1175/1520-0450(1999)038<1576:ANSOFA>2.0.CO;2
  3. Baskaran, A. and Kashef, A. (1996) 'Investigation of air flow around buildings using computational fluid dynamics techniques', Eng. Struct., 18(11), 1-38 https://doi.org/10.1016/0141-0296(95)00099-X
  4. Deardorff, J.W. (1980), 'Stratocumulus-capped mixed layers derived from a three-dimensional model', Boundary Layer Meteorology, 18, 495-527 https://doi.org/10.1007/BF00119502
  5. Gutman, D.P., Torrance, K.E. (1975), 'Response of the urban boundary layer to heat island addition and surface roughness', Boundary Layer Meteorology, 9, 217-233 https://doi.org/10.1007/BF00215641
  6. He, J. and Song, C.C. (1997), 'A numerical study of wind flow around the TTU building and the roof corner vortex', J. Wind Eng. Ind Aerodyn., 67-68, 547-558
  7. Hunter, L,J., Johnson, G.T. and Watson, I.D. (1992), 'An investigation of three dimensional characteristics of`flow regimes within the urban canyon', Atmospheric Environment, 20, 425-432
  8. Jiang, W. and Miao, S., et al. (2003), 'Comparision and analysis of pollution of a city sug-domain scale model with wind tunnel experiment', Acta Scientiae Circumstantiae, 23, 652-656
  9. Jiang, W. and Miao, S. (2004), 'Study on large eddy simulation and atmospheric boundary layer', Progress in Natural Sci., 14, 11-19
  10. Kim, J.J. and Baik, J.J. (1999), 'A numerical study of thermal effects on flow and pollutant dispersion in urban street canyons', J. Applied Meteorology, 38, 1249-1261 https://doi.org/10.1175/1520-0450(1999)038<1249:ANSOTE>2.0.CO;2
  11. Kim, J.J. and Baik, J.J. (2004), 'A numerical study of the effects of ambient wind direction on flow and dispersion in urban stree canyons using the RNG $\kappa -epsilon$ turbulence model', Atmospheric Environment, 38(18), 3039-3048 https://doi.org/10.1016/j.atmosenv.2004.02.047
  12. Launder, B.E. and Spalding, D.B. (1974), 'The numerical computation of turbulent flows', Computer Methods in Applied Mech. Eng., 3, 269-289 https://doi.org/10.1016/0045-7825(74)90029-2
  13. Miao, S. and Jiang, W. (2004), 'Large eddy simulation and study of the urban boundary layer', Adv. Atmospheric Sci., 21, 650-661 https://doi.org/10.1007/BF02915732
  14. Murakami, S., and Mochida, A. (1987), '3-D numerical simulation of air flow around a cubic model by means of the$\kappa-\varepsilon$ model', J. Wind Eng. Ind Aerodyn., 25, 291-305 https://doi.org/10.1016/0167-6105(87)90023-7
  15. Murakami, S., and Mochida, A. (1988), '3-D numerical simulation of air flow around a cubic model by means of large eddy simulation', J. Wind Eng. Ind. Aerodyn., 31, 283-303 https://doi.org/10.1016/0167-6105(88)90009-8
  16. Murakami, S. (1990), 'Examing the $\kappa-\varepsilon$ model by means of a wind tunnel test and large eddy simulation of the turbulence structure around a cube', J. Wind Eng Ind. Aerodyn., 35, 87-100 https://doi.org/10.1016/0167-6105(90)90211-T
  17. Myrup, L.O. (1969), 'A numerical model of the urban heat island', J. Applied Meteorology, 8, 908-918 https://doi.org/10.1175/1520-0450(1969)008<0908:ANMOTU>2.0.CO;2
  18. Paterson, D.A. and Apelt, C.J. (1986), 'Computation of wind flows over three dimensional buildings', J. Wind Eng. Ind. Aerodyn., 24, 192-213
  19. Paterson, D.A. and Apelt, C.J. (1989), 'Simulation of wind flows over three dimensional buildings', Buildings Environment, 24, 39-50 https://doi.org/10.1016/0360-1323(89)90015-2
  20. Paterson, D.A. and Apelt, C.J. (1990), 'Simulation of flow past a cube in a turbulent boundary layer', J. Wind Eng. Ind. Aerocdyn., 35, 149-176 https://doi.org/10.1016/0167-6105(90)90214-W
  21. Shah, K.B. and Ferziger, J.H. (1997), 'A fluid mechanicians view of wind engineering: Large eddy simulation of flow past a cubic obstacle', J. Wind Eng Ind. Aerodyn., 67-68, 211-224
  22. Sini, J.F. Anquetin, S. and Mestayer, P.G. (1996), 'Pollutant dispersion and thermal effects in urban street canyons', Atmospheric Environment, 30, 2659-2677 https://doi.org/10.1016/1352-2310(95)00321-5
  23. Sorbjan, Z. and Uliasz, M. (1982), 'Some numerical urban boundary layer studies', Boundary Layer Meterology, 22, 481-502 https://doi.org/10.1007/BF00124707
  24. Summers, D.M., Hanson, T. and Wilson, C.B. (1986), 'Validation of a computer simulation of wind flow over a building model', J. Building Environment, 21, 97-111 https://doi.org/10.1016/0360-1323(86)90016-8
  25. Tutar, M. and Oguz, G. (2002), 'Large eddy simulation of wind flow around parallel buildings with varying configuration', Fluid Dyn. Res., 31, 289-315 https://doi.org/10.1016/S0169-5983(02)00127-2
  26. Tutar, M. and Oguz, G. (2004), 'Computational modeling of wind flow around a group of buildings', Int. J. Comp. Fluid Dyn., 18(8), 651-670 https://doi.org/10.1080/10618560412331291160
  27. Uno, I., Ueda, H. and Wakamatsu, S. (1989), 'Numerical modeling of the nocturnal urban boundary layer', Boundary, Layer Meteorology, 49, 77-98 https://doi.org/10.1007/BF00116406
  28. Vukovich, F.M., et al. (1976), 'A theoretical study of the St. Louis heat island: the wind and temperature distribution', J. Applied Meteorology, 15, 417-440 https://doi.org/10.1175/1520-0450(1976)015<0417:ATSOTS>2.0.CO;2
  29. Vukovich, F.M., et al. (1978), 'A theoretical study of the St. Louis heat island: some parameter variation', J. Applied Meteorology, 17, 1585-1594 https://doi.org/10.1175/1520-0450(1978)017<1585:ATSOTS>2.0.CO;2
  30. Vukovich, F.M. et al. (1979), 'Observations and simulations of the diurnal variation of the urban heat island circulation and associated variations of ozone distribution: A case study', J. Applied Meteorology, 18, 836-854 https://doi.org/10.1175/1520-0450(1979)018<0836:OASOTD>2.0.CO;2
  31. Yu, T.W. and Wagner, N.K. (1975), 'Numerical study of the nocturnal urban boundary layer', Boundary, Layer Meteorology, 9, 143-162 https://doi.org/10.1007/BF00215637
  32. Zhang, N., Jiang, W. and Hu, F. (2004), 'Numerical method study of how buildings affect the flow characteristics of an urban canopy', Wind and Strztct.. An Int. J., 7(3), 159-172 https://doi.org/10.12989/was.2004.7.3.159
  33. Zhang, N. (2004), 'A eddy simulation on the effect of buildings on urban micro scale meteorological environment', Ph.D. Dissertation of Nanjing University China
  34. Zhang, N. and Jiang, W. (2005), 'A large eddy simulation on the effect of building on atmospheric pollutant dispersion', Chinese Atmosphere Science (Submitted)

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