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Two-dimensional mathematical framework for evaporation dynamics of respiratory droplets

In majority of pandemics in human history, respiratory bio-aerosol is the most common route of transmission of diseases. These tiny droplets ejected through mouth and nose from an infected person during exhalation process like coughing, sneezing, speaking, and breathing consist of pathogens and a co...

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Autores principales: Majee, Sreeparna, Saha, Abhishek, Chaudhuri, Swetaprovo, Chakravortty, Dipshikha, Basu, Saptarshi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AIP Publishing LLC 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8565799/
https://www.ncbi.nlm.nih.gov/pubmed/34744412
http://dx.doi.org/10.1063/5.0064635
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author Majee, Sreeparna
Saha, Abhishek
Chaudhuri, Swetaprovo
Chakravortty, Dipshikha
Basu, Saptarshi
author_facet Majee, Sreeparna
Saha, Abhishek
Chaudhuri, Swetaprovo
Chakravortty, Dipshikha
Basu, Saptarshi
author_sort Majee, Sreeparna
collection PubMed
description In majority of pandemics in human history, respiratory bio-aerosol is the most common route of transmission of diseases. These tiny droplets ejected through mouth and nose from an infected person during exhalation process like coughing, sneezing, speaking, and breathing consist of pathogens and a complex mixture of volatile and nonvolatile substances. A cloud of droplets ejected in such an event gets transmitted in the air, causing a series of coupled thermo-physical processes. Contemplating an individual airborne droplet in the cloud, boundary layers and wakes develop due to relative motion between the droplet and the ambient air. The complex phenomenon of the droplet's dynamics, such as shear-driven internal circulation of the liquid phase and Stefan flow due to vaporization or condensation, comes into effect. In this study, we present a mathematical description of the coupled subprocesses, including droplet aerodynamics, heat, and mass transfer, which were identified and subsequently solved. The presented two-dimensional model gives a complete analysis encompassing the gas phase coupled with the liquid phase responsible for the airborne droplet kinetics in the ambient environment. The transient inhomogeneity of temperature and concentration distribution in the liquid phase caused due to the convective and diffusive transports are captured in the 2D model. The evaporation time and distance traveled by droplets prior to nuclei or aerosol formation are computed for major geographical locations around the globe for nominal-windy conditions. The model presented can be used for determining the evaporation timescale of any viral or bacterial laden respiratory droplets across any geographical location.
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spelling pubmed-85657992021-11-04 Two-dimensional mathematical framework for evaporation dynamics of respiratory droplets Majee, Sreeparna Saha, Abhishek Chaudhuri, Swetaprovo Chakravortty, Dipshikha Basu, Saptarshi Phys Fluids (1994) ARTICLES In majority of pandemics in human history, respiratory bio-aerosol is the most common route of transmission of diseases. These tiny droplets ejected through mouth and nose from an infected person during exhalation process like coughing, sneezing, speaking, and breathing consist of pathogens and a complex mixture of volatile and nonvolatile substances. A cloud of droplets ejected in such an event gets transmitted in the air, causing a series of coupled thermo-physical processes. Contemplating an individual airborne droplet in the cloud, boundary layers and wakes develop due to relative motion between the droplet and the ambient air. The complex phenomenon of the droplet's dynamics, such as shear-driven internal circulation of the liquid phase and Stefan flow due to vaporization or condensation, comes into effect. In this study, we present a mathematical description of the coupled subprocesses, including droplet aerodynamics, heat, and mass transfer, which were identified and subsequently solved. The presented two-dimensional model gives a complete analysis encompassing the gas phase coupled with the liquid phase responsible for the airborne droplet kinetics in the ambient environment. The transient inhomogeneity of temperature and concentration distribution in the liquid phase caused due to the convective and diffusive transports are captured in the 2D model. The evaporation time and distance traveled by droplets prior to nuclei or aerosol formation are computed for major geographical locations around the globe for nominal-windy conditions. The model presented can be used for determining the evaporation timescale of any viral or bacterial laden respiratory droplets across any geographical location. AIP Publishing LLC 2021-10 2021-10-01 /pmc/articles/PMC8565799/ /pubmed/34744412 http://dx.doi.org/10.1063/5.0064635 Text en © 2021 Author(s). Published under an exclusive license by AIP Publishing. https://creativecommons.org/licenses/by/4.0/All article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) ).
spellingShingle ARTICLES
Majee, Sreeparna
Saha, Abhishek
Chaudhuri, Swetaprovo
Chakravortty, Dipshikha
Basu, Saptarshi
Two-dimensional mathematical framework for evaporation dynamics of respiratory droplets
title Two-dimensional mathematical framework for evaporation dynamics of respiratory droplets
title_full Two-dimensional mathematical framework for evaporation dynamics of respiratory droplets
title_fullStr Two-dimensional mathematical framework for evaporation dynamics of respiratory droplets
title_full_unstemmed Two-dimensional mathematical framework for evaporation dynamics of respiratory droplets
title_short Two-dimensional mathematical framework for evaporation dynamics of respiratory droplets
title_sort two-dimensional mathematical framework for evaporation dynamics of respiratory droplets
topic ARTICLES
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8565799/
https://www.ncbi.nlm.nih.gov/pubmed/34744412
http://dx.doi.org/10.1063/5.0064635
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