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Tailoring wind properties by various passive roughness elements in a bound- ary-layer wind tunnel

Tailoring wind properties by various passive roughness elements in a bound- ary-layer wind tunnel
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摘要 Bound-ary-layer wind tunnel provides a unique platform to reproduce urban, suburban and rural atmospheric boundary layer (ABL) by using roughness devices such as vortex generators, floor roughness, barrier walls, and slots in the extended test-section floor in the contraction cone. Each passive device impacts wind properties in a certain way. In this study, influence of various passive devices on wind properties has been investigated. Experiments using eighteen different configurations of the passive devices have been carried out to simulate urban, suburban, and rural climate conditions in a boundary-layer wind tunnel. The effect of each configuration on the wind characteristics is presented. It was found that higher barrier height and more number of roughness elements on the floor, generated higher turbulence and therefore higher model scale factors were obtained. However, increased slot width in the extended test-section floor in the contraction cone of the wind tunnel seemed to have a little effect on wind characteristics. Boundary-layer wind tunnel provides a unique platform to reproduce urban, suburban and rural atmospheric boundary layer (ABL) by using roughness devices such as vortex generators, floor roughness, barrier wails, and slots in the extended test-section floor in the contraction cone. Each passive device impacts wind properties in a certain way. In this study, influence of various passive devices on wind properties has been investigated. Experi- ments using eighteen different configurations of the passive devices have been carried out to simulate urban, sub-urban, and rural climate conditions in a boundary-layer wind tunnel. The effect of each configuration on the wind characteristics is presented. It was found that higher barrier height and more number of roughness elements on the floor, generated higher turbulence and therefore higher model scale factors were obtained. However, in- creased slot width in the extended test-section floor in the contraction cone of the wind tunnel seemed to have a little effect on wind characteristics.
出处 《Journal of Thermal Science》 SCIE EI CAS CSCD 2012年第4期336-341,共6页 热科学学报(英文版)
关键词 边界层风洞 地面粗糙度 属性 元素 裁缝 无源器件 大气边界层 涡流发生器 Atmospheric boundary layer, wind tunnel, wind properties, roughness elements, turbulence.
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参考文献21

  • 1N. J. Cook, "Determination of model-scale factor in wind tunnel simulations of the adiabatic boundary layer". Journal of Wind Engineering and Industrial Aerodynam- ics, 1978(2(4)), pp. 311-321.
  • 2N. J. Cook, "Wind-tunnel simulation of adiabatic atmos- pheric boundary layer by roughness, barrier and mixing device method". Journal of Wind Engineering and In- dustrial Aerodynamics, 1978(3), pp. 157-176.
  • 3J. Counihan, "An improved method of simulating an at- mospheric boundary layer in a wind tunnel". Atmos- pheric Environment, 1969(3), pp. 197-214.
  • 4J. Counihan, "Wind tunnel determination of the rough- ness length as a function of the fetch and the roughness density of three-dimensional roughness elements". At- mospheric Environment, 1971 (5), pp. 637-642.
  • 5J. Counihan, "Simulation of an adiabatic urban boundary layer in a wind tunnel". Atmospheric Environment, 1973(7), pp. 673-689.
  • 6J. Counihan, "Adiabatic atmospheric boundary layers: a review and analysis of data from the period 1880-1972". Atmospheric Environment, 1975(9), pp. 871-905.
  • 7K. Varshney, K. Poddar, "Experiments on integral length scale control in atmospheric boundary layer wind tunnel" Theoretical and Applied Climatology, 2011(106), pp. 127-137.
  • 8K. Varshney, K. Poddar, "Prediction of wind properties in urban environments using artificial neural network". Theoretical and Applied Climatology, 2011, DOI: 10.1007/s00704-011-0506-9.
  • 9C. Farell, A. K. S. Iyengar, "Experiments on the wind tunnel simulation of atmospheric boundary layers". Journal of Wind Engineering and Industrial Aerodynam- ics, 1999(79), pp. 11-35.
  • 10H. W. Tieleman, T. A. Reinhold, R. D. Marshall, "Wind tunnel simulation of atmospheric surface layer for the study of wind loads on low-rise buildings". Journal of Wind Engineering and Industrial Aerodynamics, 1978 (3(1)), pp. 21-38.

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