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Wind-induced internal pressure response for structure with single windward opening and background leakage

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【Author】 Shi-ce YU1, Wen-juan LOU1, Bing-nan SUN1,2 (1College of Civil Engineering and Architecture, Zhejiang University, Hangzhou 310027, China) (2Department of Architecture Engineering, Ningbo College of Technology, Zhejiang University, Ningbo 315100, China)

【摘要】 Theoretical analysis and wind tunnel tests were carried out to study wind-induced internal pressure response for the structure with single windward opening and background leakage. Its governing differential equation was derived by the Bernoulli equation in an unsteady-isentropic form. Numerical examples were provided to study the additive damping caused by background leakage in laminar and turbulent flow, and the influence of background leakage on fluctuating internal pressure response was quantized. A series of models for low-rise building with various opening ratios and background leakage were designed and wind tunnel tests were conducted. It is shown that the fluctuating internal pressure reduces when the background leakage are considered and that the effect of background leakage can be predicted accurately by the governing differential equation deduced in this paper.

【Abstract】 Theoretical analysis and wind tunnel tests were carried out to study wind-induced internal pressure response for the structure with single windward opening and background leakage. Its governing differential equation was derived by the Bernoulli equation in an unsteady-isentropic form. Numerical examples were provided to study the additive damping caused by background leakage in laminar and turbulent flow, and the influence of background leakage on fluctuating internal pressure response was quantized. A series of models for low-rise building with various opening ratios and background leakage were designed and wind tunnel tests were conducted. It is shown that the fluctuating internal pressure reduces when the background leakage are considered and that the effect of background leakage can be predicted accurately by the governing differential equation deduced in this paper.

【基金】 Project (No. 50578144) supported by the National Natural ScienceFoundation of China
  • 【文献出处】 Journal of Zhejiang University(Science A:An International Applied Physics & Engineering Journal) ,浙江大学学报A(应用物理及工程版)(英文版) , 编辑部邮箱 ,2008年03期
  • 【分类号】TU312.1
  • 【被引频次】7
  • 【下载频次】24
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