Keyword search (4,163 papers available)

"Air pollution" Keyword-tagged Publications:

Title Authors PubMed ID
1 Spatiotemporal Evolution and Anomaly Assessment of Wildfire-Induced Air Pollution Across Canada Using Satellite AOD Analysis Su Y; Wang Z; Fu H; Yang A; Chen X; An C; 41520990
ENCS
2 Spatio-temporal distribution of AOD and its response to regional energy consumption and air pollution factors in China Su Y; Chen X; Guo J; Yang A; 41308902
ENCS
3 Air monitoring of tire-derived chemicals in global megacities using passive samplers Johannessen C; Saini A; Zhang X; Harner T; 36152723
CHEMBIOCHEM
4 Impact from the evolution of private vehicle fleet composition on traffic related emissions in the small-medium automotive city Tian X; Huang G; Song Z; An C; Chen Z; 35709991
ENCS
5 Update on air pollution control strategies for coal-fired power plants Asif Z; Chen Z; Wang H; Zhu Y; 35572480
ENCS
6 PM2.5 and hospital admissions among Medicare enrollees with chronic debilitating brain disorders. Yitshak-Sade M, Nethery R, Schwartz JD, Mealli F, Dominici F, Di Q, Abu Awad Y, Ifergane G, Zanobetti A 33065503
PSYCHOLOGY
7 The dark cloud with a silver lining: Assessing the impact of the SARS COVID-19 pandemic on the global environment. Lal P, Kumar A, Kumar S, Kumari S, Saikia P, Dayanandan A, Adhikari D, Khan ML 32408041
BIOLOGY
8 Determining the Optimal Restricted Driving Zone Using Genetic Algorithm in a Smart City. Azami P, Jan T, Iranmanesh S, Ameri Sianaki O, Hajiebrahimi S 32316356
ENCS

 

Title:Spatiotemporal Evolution and Anomaly Assessment of Wildfire-Induced Air Pollution Across Canada Using Satellite AOD Analysis
Authors:Su YWang ZFu HYang AChen XAn C
Link:https://pubmed.ncbi.nlm.nih.gov/41520990/
DOI:10.1016/j.envpol.2026.127667
Publication:Environmental pollution (Barking, Essex : 1987)
Keywords:aerosol optical depthair pollutionmeteorological factorsspatiotemporal evolutionwildfires
PMID:41520990 Category: Date Added:2026-01-12
Dept Affiliation: ENCS
1 Department of Building, Civil and Environmental Engineering, Concordia University, Montreal, H3G 1M8, Canada.
2 College of Environmental Science and Engineering, Xiamen University of Technology, Xiamen, 361024, China.
3 Department of Civil Engineering, University of Texas at Arlington, Arlington, 76019, United States.
4 Department of Building, Civil and Environmental Engineering, Concordia University, Montreal, H3G 1M8, Canada. Electronic address: chunjiang.an@concordia.ca.

Description:

The 2023 wildfires caused serious riks to air quality and public health across various provinces in Canada, particularly during the period from May to June. This study aims to systematically evaluate the impact of the May-June wildfire events on air pollution in Canada using satellite Aerosol Optical Depth (AOD) data, along with the Hybrid Single-Particle Lagrangian Integrated Trajectory model and a Bayesian spatiotemporal dynamic model to investigate the distribution, transport pathways, and complex meteorological drivers. Results indicate that the AOD data in the Canadian region is in excellent agreement with the ground-based AOD observation (R > 0.90 at 12 of 14 sites). The highest aerosol concentrations were centered over western and central provinces during the wildfire season, with long-range eastward transport. Quebec (26%) and Alberta (25%) constituted over half of the national total for severe pollution events, while the Northwest Territories experienced the most prolonged exposure, with 45% of its remote communities severely affected. The temperature lag and wind speed are the dominant factors and exhibited highly dynamic roles during four main periods: wind speed's function shifted from a local dispersant (WS = -0.419) to a regional transporter (WS1 = 0.123, one-day lagged) depending on fire source configuration, while temperature's influence ranged from enhancing dispersion (T1 = -0.634, one-day lagged) to causing extreme pollutant trapping under heat dome conditions (T1 = 1.273).





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