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Predicting the effects of environmental parameters on the spatio-temporal distribution of the droplets carrying coronavirus in public transport – A machine learning approach
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Metadata
Document Title
Predicting the effects of environmental parameters on the spatio-temporal distribution of the droplets carrying coronavirus in public transport - A machine learning approach
Author
Mesgarpour M, Abad JMN, Alizadeh R, Wongwises S, Doranehgard MH, Jowkar S, Karimi N
Name from Authors Collection
Affiliations
King Mongkuts University of Technology Thonburi; Islamic Azad University; Islamic Azad University; National Science & Technology Development Agency - Thailand; University of Alberta; Sharif University of Technology; University of London; Queen Mary University London; University of Glasgow
Type
Article
Source Title
CHEMICAL ENGINEERING JOURNAL
Year
2022
Volume
430
Open Access
Green Published, Green Submitted, hybrid, Green Accepted
Publisher
ELSEVIER SCIENCE SA
DOI
10.1016/j.cej.2021.132761
Format
Abstract
Human-generated droplets constitute the main route for the transmission of coronavirus. However, the details of such transmission in enclosed environments are yet to be understood. This is because geometrical and environmental parameters can immensely complicate the problem and turn the conventional analyses inefficient. As a remedy, this work develops a predictive tool based on computational fluid dynamics and machine learning to examine the distribution of sneezing droplets in realistic configurations. The time-dependent effects of environmental parameters, including temperature, humidity and ventilation rate, upon the droplets with diameters between 1 and 250 mu m are investigated inside a bus. It is shown that humidity can profoundly affect the droplets distribution, such that 10% increase in relative humidity results in 30% increase in the droplets density at the farthest point from a sneezing passenger. Further, ventilation process is found to feature dual effects on the droplets distribution. Simple increases in the ventilation rate may accelerate the droplets transmission. However, carefully tailored injection of fresh air enhances deposition of droplets on the surfaces and thus reduces their concentration in the bus. Finally, the analysis identifies an optimal range of temperature, humidity and ventilation rate to maintain human comfort while minimising the transmission of droplets.
Keyword
Computational Fluid Dynamics | COVID-19 | Droplet Suspension | Droplets distribution | machine learning | Prediction Models
Publication Source
WOS