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Aerodynamic Parameters of a UK City Derived from Morphological Data

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Abstract

Detailed three-dimensional building data and a morphometric model are used to estimate the aerodynamic roughness length z 0 and displacement height d over a major UK city (Leeds). Firstly, using an adaptive grid, the city is divided into neighbourhood regions that are each of a relatively consistent geometry throughout. Secondly, for each neighbourhood, a number of geometric parameters are calculated. Finally, these are used as input into a morphometric model that considers the influence of height variability to predict aerodynamic roughness length and displacement height. Predictions are compared with estimations made using standard tables of aerodynamic parameters. The comparison suggests that the accuracy of plan-area-density based tables is likely to be limited, and that height-based tables of aerodynamic parameters may be more accurate for UK cities. The displacement heights in the standard tables are shown to be lower than the current predictions. The importance of geometric details in determining z 0 and d is then explored. Height variability is observed to greatly increase the predicted values. However, building footprint shape only has a significant influence upon the predictions when height variability is not considered. Finally, we develop simple relations to quantify the influence of height variation upon predicted z 0 and d via the standard deviation of building heights. The difference in these predictions compared to the more complex approach highlights the importance of considering the specific shape of the building-height distributions. Collectively, these results suggest that to accurately predict aerodynamic parameters of real urban areas, height variability must be considered in detail, but it may be acceptable to make simple assumptions about building layout and footprint shape.

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References

  • Bottema M (1996) Roughness parameters over regular rough surfaces: experimental requirements and model validation. J Wind Eng Ind Aerodyn 64: 249–265

    Article  Google Scholar 

  • Bottema M (1997) Urban roughness modelling in relation to pollutant dispersion. Atmos Environ 31: 3059–3075

    Article  Google Scholar 

  • Bottema M, Mestayer PG (1998) Urban roughness mapping—validation techniques and some first results. J Wind Eng Ind Aerodyn 76: 163–173

    Article  Google Scholar 

  • Bou-Zeid E, Parlange MB, Meneveau C (2007) On the parameterization of surface roughness at regional scales. J Atmos Sci 64: 216–227

    Article  Google Scholar 

  • Bou-Zeid E, Overney J, Rogers BD, Parlange MB (2009) The effects of building representation and clustering in large-eddy simulations of flows in urban canopies. Boundary-Layer Meteorol 132: 415–436

    Article  Google Scholar 

  • Cheng H, Castro IP (2002a) Near wall flow over urban-like roughness. Boundary-Layer Meteorol 104: 229–259

    Article  Google Scholar 

  • Cheng H, Castro IP (2002b) Near-wall flow development after a step change in surface roughness. Boundary-Layer Meteorol 105: 411–432

    Article  Google Scholar 

  • Counihan J (1971) Wind tunnel determination of the roughness length as a function of fetch and density of three-dimensional roughness elements. Atmos Environ 5: 637–642

    Article  Google Scholar 

  • Di Sabatino, Solazzo SE, Paradisi P, Britter RE (2008) A simple model for spatially-averaged wind profiles within and above an urban canopy. Boundary-Layer Meteorol 127: 131–151

    Article  Google Scholar 

  • Di Sabatino S, Leo LS, Cataldo R, Ratti C, Britter RE (2010) Construction of digital elevation models for a southern European city and a comparative morphological analysis with respect to northern European and North American cities. J Appl Meteorol 49: 1377–1396

    Article  Google Scholar 

  • Fackrell JE (1984) Parameters characterising dispersion in the near wake of buildings. J Wind Eng Ind Aerodyn 16: 97–118

    Article  Google Scholar 

  • Grimmond CSB, Oke TR (1999) Aerodynamic properties of urban areas derived, from analysis of surface form. J Appl Meteorol 38: 1262–1292

    Article  Google Scholar 

  • Grimmond CSB, King TS, Roth M, Oke TR (1998) Aerodynamic roughness of urban areas derived from wind observations. Boundary-Layer Meteorol 89: 1–24

    Article  Google Scholar 

  • Hagishima A, Tanimoto J, Nagayama K, Meno S (2009) Aerodynamic parameters of regular arrays of rectangular blocks with various geometries. Boundary-Layer Meteorol 132: 315–337

    Article  Google Scholar 

  • Holland DE, Berglund JA, Spruce JP, McKellip RD (2008) Derivation of effective aerodynamic surface roughness in urban areas from airborne lidar terrain data. J Appl Meteorol 47: 2614–2626

    Article  Google Scholar 

  • Jiang DH, Jiang WM, Liu HN, Sun JN (2008) Systematic influence of different building spacing, height and layout on mean wind and turbulent characteristics within and over urban building arrays. Wind Struct 11: 275–289

    Google Scholar 

  • Kanda M (2006) Large-eddy simulations on the effects of surface geometry of building arrays on turbulent organized structures. Boundary-Layer Meteorol 118: 151–168

    Article  Google Scholar 

  • Kastner-Klein P, Rotach MW (2004) Mean flow and turbulence characteristics in an urban roughness sublayer. Boundary-Layer Meteorol 111: 55–84

    Article  Google Scholar 

  • Landmap: Spatial Discovery (Cities Revealed © The GeoInformation Group 2008) http://www.landmap.ac.uk/. Retrieved 2 Aug 2010

  • Lettau H (1969) Note on aerodynamic roughness parameter estimation on the basis of roughness element description. J Appl Meteorol 8: 828–832

    Article  Google Scholar 

  • MacDonald RW, Griffiths RF, Hall DJ (1998) An improved method for the estimation of surface roughness of obstacle arrays. Atmos Environ 32: 1857–1864

    Article  Google Scholar 

  • Millward-Hopkins J, Tomlin AS, Ma L, Ingham DB, Pourkashanian M (2011) Estimating aerodynamic parameters of urban-like surfaces with heterogeneous building heights. Boundary-Layer Meteorol 141: 443–465

    Article  Google Scholar 

  • Oke TR (1988) Street design and urban canopy layer climate. Energy Buildings 11: 103–113

    Article  Google Scholar 

  • Ratti C, Richens P (2004) Raster analysis of urban form. Environ Plan B 31: 297–309

    Article  Google Scholar 

  • Ratti C, Di Sabatino S, Britter RE, Brown M, Caton F, Burian S (2002) Analysis of 3-D urban databases with respect to pollution dispersion for a number of European and American cities. Water Soil Air Pollut Focus 2: 459–469

    Article  Google Scholar 

  • Ratti C, Di Sabatino S, Britter RE (2006) Urban texture analysis with image processing techniques: winds and dispersion. Theor Appl Climatol 84: 77–90

    Article  Google Scholar 

  • Raupach MR (1992) Drag and drag partition on rough surfaces. Boundary-Layer Meteorol 60: 375–395

    Article  Google Scholar 

  • Raupach MR (1994) Simplified expressions for vegetation roughness length and zero-plane displacement as functions of canopy height and area index. Boundary-Layer Meteorol 71: 211–216

    Article  Google Scholar 

  • Raupach MR (1995) Corrigenda. Boundary-Layer Meteorol 76: 303–304

    Article  Google Scholar 

  • Schmid HP (1994) Source areas for scalars and scalar fluxes. Boundary-Layer Meteorol 67: 293–318

    Article  Google Scholar 

  • Schmid HP, Oke TR (1990) A model to estimate the source area contributing to turbulent exchange in the surface-layer over patchy terrain. Q J R Meteorol Soc 116: 965–988

    Article  Google Scholar 

  • Xie Z, Coceal TO, Castro IP (2008) Large-eddy simulation of flows over random urban-like obstacles. Boundary-Layer Meteorol 129: 1–23

    Article  Google Scholar 

  • Zaki S, Hagishima A, Tanimoto J, Ikegaya N (2011) Aerodynamic parameters of urban building arrays with random geometries. Boundary-Layer Meteorol 138: 99–120

    Article  Google Scholar 

Download references

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Correspondence to A. S. Tomlin.

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Millward-Hopkins, J.T., Tomlin, A.S., Ma, L. et al. Aerodynamic Parameters of a UK City Derived from Morphological Data. Boundary-Layer Meteorol 146, 447–468 (2013). https://doi.org/10.1007/s10546-012-9761-2

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  • DOI: https://doi.org/10.1007/s10546-012-9761-2

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