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PMID: 40480167 Published · ppublish English Journal Article

Estimating the air quality standard exceedance areas and the spatial representativeness of urban air quality stations applying microscale modelling.

The Science of the total environment ·Vol. 988 ·2025-08-01 ·页码 179824

Martín F, Rodrigues V, Santiago JL, Sousa J, Stocker J, Janssen S, Jackson R, Russo F, Villani MG, Tinarelli G, Barbero D, José RS, Pérez-Camanyo JL, Sousa-Santos G, Tarrason L, Bartzis J, Sakellaris I, Horváth Z, Környei L, Jurado X, Reiminger N, Masey N, Hamilton S, Rivas E, Cuvelier C, Thunis P

Abstract

This study builds upon the findings of a FAIRMODE intercomparison exercise conducted in a district of Antwerp, Belgium, where a comprehensive dataset of air pollutant measurements (air quality stations and passive samplers) was available. Long-term average NO2 concentrations at very high spatial resolution were estimated by several dispersion modelling systems (Martín et al., 2024) to investigate the ability of these to capture the detailed spatial distribution of NO2 concentrations at the microscale in urban environments. In this follow-up research, we extend the analysis by evaluating the capability of these modelling systems to predict the NO2 annual limit value exceedance areas (LVEAs) and spatial representativeness areas (SRAs) for NO₂ at two reference air quality stations. The different modelling approaches used are based on CFD, Lagrangian, Gaussian, and AI-driven models. The different modelling approaches are generally good at predicting the LVEA and SRAs of urban air quality stations, although a small SRA (corresponding to low concentration tolerances or the traffic station) is more difficult to predict correctly. However, there are notable differences in performance among the modelling systems. Those based on CFD models seem to provide more consistent results predicting LVEAs and SRAs. Then, lower accuracy is obtained with AI-based systems, Lagrangian models, and Gaussian models with street canyon parameterizations. The Gaussian models with street-canyon parametrizations show significantly better results than models using simply a Gaussian dispersion parametrization. Furthermore, little differences are observed in most of the statistical indicators corresponding to the LVEA and SRA estimates obtained from the unsteady full month CFD simulations compared to those from the scenario-based CFD simulation methodologies, but there are some noticeable differences in the LVEA or SRA (traffic station, 10 % tolerance) sizes. The number of scenarios does not seem to be relevant to the results. Different bias correction methodologies are explored.

Keywords
Limit value exceedance area Microscale modelling intercomparison Spatial representativeness area Urban air pollution
作者与单位
共 26 位作者,点击展开单位 / ORCID
Martín F
CIEMAT, Research Center for Energy, Environment and Technology, Avenida Complutense 40, 28040 Madrid, Spain. Electronic address: [email protected].
Rodrigues V
CESAM & Department of Environment and Planning, University of Aveiro, 3810-193 Aveiro, Portugal.
Santiago J L
CIEMAT, Research Center for Energy, Environment and Technology, Avenida Complutense 40, 28040 Madrid, Spain.
Sousa J
VITO NV, Flemish Institute for Research and Technology, Boeretang 200, 2400 Mol, Belgium.
Stocker J
Cambridge Environmental Research Consultants (CERC), UK.
Janssen S
VITO NV, Flemish Institute for Research and Technology, Boeretang 200, 2400 Mol, Belgium.
Jackson R
Cambridge Environmental Research Consultants (CERC), UK.
Russo F
ENEA, Italian National Agency for New Technologies, Energy and Sustainable Economic Development, 40129 Bologna, Italy.
Villani M G
ENEA, Italian National Agency for New Technologies, Energy and Sustainable Economic Development, 40129 Bologna, Italy.
Tinarelli G
ARIANET S.r.l., via Crespi 57, 20159 Milano, Italy.
Barbero D
ARIANET S.r.l., via Crespi 57, 20159 Milano, Italy.
José R San
Computer Science School, Technical University of Madrid (UPM), Campus de Montegancedo, s/n, 28660 Madrid, Spain.
Pérez-Camanyo J L
Computer Science School, Technical University of Madrid (UPM), Campus de Montegancedo, s/n, 28660 Madrid, Spain.
Sousa-Santos G
NILU - The Climate and Environmental Research Institute, Norway.
Tarrason L
NILU - The Climate and Environmental Research Institute, Norway.
Bartzis J
University of Western Macedonia (UOWM), Dept. of Mechanical Engineering, Sialvera & Bakola Str., 50132 Kozani, Greece.
Sakellaris I
University of Western Macedonia (UOWM), Dept. of Mechanical Engineering, Sialvera & Bakola Str., 50132 Kozani, Greece.
Horváth Z
SZE, Széchenyi István University, Győr, Hungary.
Környei L
SZE, Széchenyi István University, Győr, Hungary.
Jurado X
AIR&D, Strasbourg, France.
Reiminger N
AIR&D, Strasbourg, France; ICUBE Laboratory, UMR 7357, CNRS/University of Strasbourg, F-67000 Strasbourg, France.
Masey N
Ricardo, UK.
Hamilton S
Ricardo, UK.
Rivas E
CIEMAT, Research Center for Energy, Environment and Technology, Avenida Complutense 40, 28040 Madrid, Spain.
Cuvelier C
European Commission, Joint Research Centre (JRC), Ispra, Italy.
Thunis P
European Commission, Joint Research Centre (JRC), Ispra, Italy.
Article Info
Journal
The Science of the total environment
Abbr.
Sci Total Environ
ISSN
1879-1026
Corresponding email
Published
2025-08-01
电子出版
2025-00-06
页码
179824
Language
English
Country/Region
Netherlands
NLM ID
0330500
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