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PMID: 32208270 Published · ppublish English Journal Article

Wind-driven pumping flow ventilation of highrise buildings: Effects of upstream building arrangements and opening area ratios.

The Science of the total environment ·Vol. 722 ·2020-06-20 ·页码 137924

Zhong HY, Jing Y, Sun Y, Kikumoto H, Zhao FY, Li Y

Abstract

Periodic vortex shedding around a building could play an important role in wind-driven single-sided ventilation especially when two free openings are mounted on the leeward wall, in which case "pumping" flow dominates the natural ventilation. In this paper, we investigated the characteristics of vortex shedding and "pumping" flow affected by the arrangements of upstream buildings and opening area ratio of ports on the downstream target building. Computational fluid dynamics (CFD) simulations have been used to predict the instantaneous and mean flow fields. Numerical results indicate that the strength of "pumping" flow could be intensively weakened by two upstream buildings. Vortex shedding from the inner shear layers dominates the vortex shedding from the target building and constrains that from both upstream buildings except at W/B = 0.5, in which case the gap flow is weak and the St is close to that of a single building. The increase of upstream building length leads to decrease of the vortex shedding frequency at the wake of all buildings and ventilation rate of the downstream building. An increase of opening area ratio on the rear wall of the downstream building will raise the Strouhal number but have no positive correlation with ventilation rate. "Pumping" flow oscillating frequency does not have clear correlation with the ventilation rate. Our study on the wake vortex shedding flow across building clusters could benefit the future green design of urban buildings.

Keywords
Free-port openings Numerical simulation Upstream buildings Wind-driven ventilation “Pumping” flow
作者与单位
共 6 位作者,点击展开单位 / ORCID
Zhong Huai-Yu
Key Laboratory of Hydraulic Machinery Transients, Wuhan University, Ministry of Education, Wuhan, Hubei Province, China; School of Power and Mechanical Engineering, Wuhan University, Wuhan, Hubei Province, China; Institute of Industrial Science, The University of Tokyo, 4-6-1 Komaba, Meguro-ku, Tokyo 153-8505, Japan.
Jing Yi
Key Laboratory of Hydraulic Machinery Transients, Wuhan University, Ministry of Education, Wuhan, Hubei Province, China; School of Power and Mechanical Engineering, Wuhan University, Wuhan, Hubei Province, China.
Sun Yang
Department of Mechanical Engineering, Wanjiang University of Technology, Maanshan, Anhui Province, China.
Kikumoto Hideki
Institute of Industrial Science, The University of Tokyo, 4-6-1 Komaba, Meguro-ku, Tokyo 153-8505, Japan.
Zhao Fu-Yun
Key Laboratory of Hydraulic Machinery Transients, Wuhan University, Ministry of Education, Wuhan, Hubei Province, China; School of Power and Mechanical Engineering, Wuhan University, Wuhan, Hubei Province, China. Electronic address: [email protected].
Li Yuguo
Department of Mechanical Engineering, University of Hong Kong, Pokfulam Road, Hong Kong, China.
Article Info
Journal
The Science of the total environment
Abbr.
Sci Total Environ
ISSN
1879-1026
Corresponding email
Published
2020-06-20
电子出版
2020-00-13
页码
137924
Language
English
Country/Region
Netherlands
NLM ID
0330500
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