According to the urban spatial structure and the similarity of the porous media
a two-dimensional model for the turbulent flow and heat transfer in a city was derived from the porous media theory. The urban porous media model was verified by comparing the numerical results with the volume-averaged results of the micro-scale CFD model. Moreover
the urban porous media model was applied to examine the effects of building density on the spatial UHI of the urban area and the leeward rural area. The results show that an increase in ground porosity by 0.1 leads to an increase in UHI intensity by 0.36 K and the UHI intensity decreases rapidly as the airflow enters the leeward rural area. The UHI intensity decreases linearly as the height increases and the UHI almost vanishes as the height reaches five times the height of the urban canopy.
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ZHAO Fuyun, TANG Guangfa, LIU Di, et al. Numerical simulation of wind environment in an urban residential quarter [J].Hv Ac, 2005,35(1):120-125.
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Study of the Mechanism of Electrostatic Accumulation and Current Density Distribution Characteristics During Liquid Hydrogen Pipeline Transportation
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Experimental Study on Flow and Heat Transfer Characteristics in Triply Periodic Minimal Surface Channels
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