Temporal Evolution of Vehicle Exhaust Plumes in a Congested Street Canyon Environment

Author:

Chu Meng-Yuan1,Brimblecombe Peter2ORCID,Wei Peng3,Liu Chun-Ho4,Ning Zhi1ORCID

Affiliation:

1. Division of Environment and Sustainability, The Hong Kong University of Science and Technology, Hong Kong SAR, China

2. Department of Marine Environment and Engineering, National Sun Yat-Sen University, Kaohsiung 804201, Taiwan

3. School of Geography and Environment, Shandong Normal University, Jinan 250358, China

4. Department of Mechanical Engineering, The University of Hong Kong, Hong Kong SAR, China

Abstract

Air pollutants from traffic make an important contribution to human exposure, with pedestrians likely to experience rapid fluctuation and high concentrations on the pavements of busy streets. This monitoring campaign was on Hennessy Road in Hong Kong, a densely populated city with deep canyons, crowded footpaths and low wind speeds. Kerbside NOx concentrations were measured using electrochemical sensors with baseline correction and subsequently deconvoluted to determine concentrations at 1-s resolution to study the dispersion of exhaust gases within the first few metres of their on-road source. The pulses of NOx from passing vehicles were treated as segments of a Gaussian plume originating at the tailpipe. The concentration profiles in segments were fit to a simple analytical equation assuming a continuous line source with R2 > 0.92. Least squares fitting parameters could be attributed to vehicle speed and source strength, dispersion, and sensor position. The width of the plume was proportional to the inverse of vehicle speed. The source strength of NOx from passing vehicles could be interpreted in terms of individual emissions, with a median value of approximately 0.18 g/s, but this was sensitive to vehicle speed and exhaust pipe position. The current study improves understanding of rapid changes in pollutant concentration in the kerbside environment and suggests opportunities to establish the contribution from traffic flow to pedestrian exposure in a dynamic heavily occupied urban microenvironment.

Funder

European Union (EU)—Hong Kong Research and Innovation Cooperation

Environment and Conservation Fund

Collaborative Research Fund

Publisher

MDPI AG

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