Abstract
AbstractHills and mountain fields have a high proportion in coastal areas around the world. Especially in China, lots of low-rise buildings are in complex mountain terrain. Compared with the flat topography under typhoons, due to the change caused by complex topography, the damage ratio of low-rise buildings is much larger. This paper investigates the wind pressure distribution in three different configurations of typical mountain terrain on low-rise buildings in coastal areas by wind tunnel tests. At the same time, the results are compared with the wind pressure distribution of low-rise buildings without surrounding structures. The variation of the average pressure coefficient and shape coefficient with the change of hillside height under a wind attack angle of 0° and the trends of average wind pressure coefficients of a low-rise building under wind attack angles of 0° – 90° are studied. The results show that the distribution of pressure in low buildings is significantly affected by the height of the mountain. When the hillside height is half of the scale physical model, the influence coefficient from the mountain to each surface of the whole building is within 50%. When the hillside height is four times that of the model, the influence factor from the mountain to each surface of the whole building is obvious and is most significantly influenced by the leeward roof. The mean design criteria of the low-rise building, such as windward midline, leeward roof, and windward roof in these three typical mountain terrains, should be designed for their higher absolute value of the average pressure coefficient. The mean pressure coefficient under different wind angles and mountain environments has a significant relationship. The most unfavorable wind angle of wind load calculations should be considered when designing low-rise buildings.
Funder
Science Research Project of Hebei Education Department
National Natural Science Foundation of China
Publisher
Springer Science and Business Media LLC
Reference13 articles.
1. John AD, Gairola A, Mukherjee M (2009) Interference effect of boundary wall on wind loads. Paper presented at the 11th American conference on wind engineering, San Juan, 13-18 June 2009
2. Lien FS, Yee E, Cheng Y (2004) Simulation of mean flow and turbulence over a 2D building array using high-resolution CFD and a distributed drag force approach. J Wind Eng Ind Aerod 92(2):117–158
3. Zhang A, Gao C, Zhang L (2005) Numerical simulation of the wind field around different building arrangements. J Wind Eng Ind Aerod 93(12):891–904
4. Holmes JD (1994) Wind pressures on tropical housing. J Wind Eng Ind Aerod 53(1–2):105–123
5. Pindado S, Meseguer J, Franchini S (2011) Influence of an upstream building on the wind-induced mean suction on the flat roof of a low-rise building. J Wind Eng Ind Aerod 99(8):889–893