Literature DB >> 30759622

Numerical evaluations of urban design technique to reduce vehicular personal intake fraction in deep street canyons.

Keer Zhang1, Guanwen Chen1, Xuemei Wang2, Shanhe Liu1, Cheuk Ming Mak3, Yifan Fan4, Jian Hang5.   

Abstract

High-rise deep street canyons usually experience poor ventilation and large vehicular pollutant exposure to residents in near-road buildings. Investigations are still required to clarify the flow and dispersion mechanisms in deep street canyons and explore techniques to reduce such large pollutant exposure. By conducting computational fluid dynamics (CFD) simulations validated by wind tunnel data and scale-model outdoor field measurements, we investigate the integrated impacts of aspect ratios, first-floor and second-floor elevated building designs, viaduct settings, height variations and wind catchers on the flow, personal intake fraction (P_IF) of CO (carbon dioxide) and its spatial mean value 〈P_IF〉 in two-dimensional (2D) street canyons. Results show that cases with H/W = 5 experience two counter-rotating vortices, much poorer ventilation and 1-2 orders larger 〈P_IF〉 (43.6-120.8 ppm) than H/W = 1 and 3 (3.8-4.3 and 5.6-5.8 ppm). Moreover, in cases with H/W = 5 the height variation results in three vertically-aligned vortices and much weaker wind, subsequently produces greater 〈P_IF〉 (1402-2047 ppm). To reduce 〈P_IF〉 with H/W = 5, various urban designs are evaluated. The first-floor elevated building design creates more effective ventilation pathways than the second-floor elevated type does and reduces 〈P_IF〉 at H/W = 5 by five orders (1402 to ~0.01 ppm) or two orders (43.6 to ~0.1 ppm) in cases with or without the height variation. However, such reductions at H/W = 1 and 3 are only 76.8%-81.4% and 22.4%-36.2% respectively. Wind catchers destroy the multi-vortex flow pattern as H/W = 5, produce a contra-clockwise main vortex and reduce 〈P_IF〉 by 1-2 orders for cases with or without the height variation.
Copyright © 2018 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Building height variation; Elevated building design; High-rise deep street canyon; Personal intake fraction (P_IF); Viaduct setting; Wind catcher

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Substances:

Year:  2018        PMID: 30759622     DOI: 10.1016/j.scitotenv.2018.10.333

Source DB:  PubMed          Journal:  Sci Total Environ        ISSN: 0048-9697            Impact factor:   7.963


  6 in total

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2.  Effects of void deck on the airflow and pollutant dispersion in 3D street canyons.

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Review 4.  Influencing Factors on Airflow and Pollutant Dispersion around Buildings under the Combined Effect of Wind and Buoyancy-A Review.

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5.  Assessing 3-D Spatial Extent of Near-Road Air Pollution around a Signalized Intersection Using Drone Monitoring and WRF-CFD Modeling.

Authors:  Seung-Hyeop Lee; Kyung-Hwan Kwak
Journal:  Int J Environ Res Public Health       Date:  2020-09-22       Impact factor: 3.390

6.  Numerical Investigations of Urban Pollutant Dispersion and Building Intake Fraction with Various 3D Building Configurations and Tree Plantings.

Authors:  Qingman Li; Jie Liang; Qun Wang; Yuntong Chen; Hongyu Yang; Hong Ling; Zhiwen Luo; Jian Hang
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  6 in total

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