Song, J; Fan, S; Lin, W; Mottet, L; Woodward, H; Davies Wykes, M; Arcucci, R; Xiao, D; Debay, J E; ApSimon, H; Aristodemou, E; Birch, D; Carpentieri, M; Fang, F; Herzog, M; Hunt, G R; Jones, R L; Pain, C; Pavlidis, D; Robins, A G; Short, C A and Linden, P F (2018) Natural ventilation in cities: The implications of fluid mechanics. Building Research & Information, 46(8), pp. 809-828. ISSN 0961-3218
Abstract
Research under the Managing Air for Green Inner Cities (MAGIC) project uses measurements and modelling to investigate the connections between external and internal conditions: the impact of urban airflow on the natural ventilation of a building. The test site was chosen so that under different environmental conditions the levels of external pollutants entering the building, from either a polluted road or a relatively clean courtyard, would be significantly different. Measurements included temperature, relative humidity, local wind and solar radiation, together with levels of carbon monoxide (CO) and carbon dioxide (CO2) both inside and outside the building to assess the indoor–outdoor exchange flows. Building ventilation took place through windows on two sides, allowing for single-sided and crosswind-driven ventilation, and also stack-driven ventilation in low wind conditions. The external flow around the test site was modelled in an urban boundary layer in a wind tunnel. The wind tunnel results were incorporated in a large-eddy-simulation model, Fluidity, and the results compared with monitoring data taken both within the building and from the surrounding area. In particular, the effects of street layout and associated street canyons, of roof geometry and the wakes of nearby tall buildings were examined.
| Item Type: | Article |
|---|---|
| Uncontrolled Keywords: | air pollutants; air quality; buildings; dispersion; microclimates; modelling; natural ventilation; urban design |
| Index terms: | natural ventilation, window, relative humidity, environmental conditions, pollutant, tunnel, urban design, tall building, ventilation, inner city, carbon dioxide, monitoring, microclimate, air quality, roof, courtyard, modelling, geometry, street canyon, solar radiation |
| Subjects: | design practice, architectural elements, urban form and morphology, urban design, land use and regional development, infrastructure and transport systems, environmental health, environmental engineering, construction type, mathematical modelling, air quality, climate science, control systems, energy systems, environmental science, analytical methods |
| Topics: | Design Practice, Urban Studies, Site Management, Research Practice, Engineering Principles, Construction Technology, Sustainability |
| Descriptive scope: | 3 PCA |
N.B. Descriptive scope is a count of how many of the five facets of empirical research are indicated by the words used in title, abstract and keywords. It is not intended as a judgement on the research; merely a count of the kind of word we would expect to indicate Phenomenon, Concepts, Theoretical framing, Empirical techniques, Analytical techniques. If all five are present, then a code of “5 PCTEA” will indicate this. If you feel the coding for this record is questionable, we welcome discussion around the terms we matched or the way we categorized them. The facet you would expect may not be coded, or a facet may be coded inappropriately. This can also bear on a larger question, of which facets should be treated as defining in construction management research. Please get in touch, and we will look at it. More details here