Статья

Modeling evaporation of water droplets as applied to survival of airborne viruses

L. Dombrovsky, A. Fedorets, V. Levashov, A. Kryukov, E. Bormashenko, M. Nosonovsky,
2021

Many viruses, such as coronaviruses, tend to spread airborne inside water microdroplets. Evaporation of the microdroplets may result in a reduction of their contagiousness. However, the evaporation of small droplets is a complex process involving mass and heat transfer, diffusion, convection and solar radiation absorption. Virological studies indicate that airborne virus survival is very sensitive to air humidity and temperature. We employ a model of droplet evaporation with the account for the Knudsen layer. This model suggests that evaporation is sensitive to both temperature and the relative humidity (RH) of the ambient air. We also discuss various mechanisms such as the effect of solar irradiation, the dynamic relaxation of moving droplets in ambient air and the gravitational sedimentation of the droplets. the maximum estimate for the spectral radiative flux in the case of cloudless sky showed that the radiation contribution to evaporation of single water droplets is insignificant. We conclude that at small and even at moderately high levels of RH, microdroplets evaporate within dozens of seconds with the convective heat flux from the air being the dominant mechanism in every case. the numerical results obtained in the paper are in good qualitative agreement with both the published laboratory experiments and seasonal nature of many viral infections. Sophisticated experimental techniques may be needed for in situ observation of interaction of viruses with organic particles and living cells within microdroplets. the novel controlled droplet cluster technology is suggested as a promising candidate for such experimental methodology. © 2020 by the authors.

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Версии

  • 1. Version of Record от 2021-04-27

Метаданные

Об авторах
  • L. Dombrovsky
    Joint Institute for High Temperatures, 17A Krasnokazarmennaya St., Moscow, 111116, Russian Federation
  • A. Fedorets
    Institute of Environmental and Agricultural Biology (X-BIO), University of Tyumen, 6 Volodarskogo St., Tyumen, 625003, Russian Federation
  • V. Levashov
    Institute of Mechanics of Moscow State University, 1 Michurinskiy Prosp., Moscow, 119192, Russian Federation
  • A. Kryukov
    Moscow Power Engineering Institute, 14 Krasnokazarmennaya St., Moscow, 111250, Russian Federation
  • E. Bormashenko
    Department of Chemical Engineering, Engineering Sciences Faculty, Ariel University, Ariel, 407000, Israel
  • M. Nosonovsky
    Mechanical Engineering, University of Wisconsin-Milwaukee, 3200 North Cramer St., Milwaukee, WI 53211, United States
Название журнала
  • Atmosphere
Том
  • 11
Выпуск
  • 9
Страницы
  • -
Ключевые слова
  • Drop formation; Evaporation; Heat flux; Solar radiation; Viruses; Experimental methodology; Experimental techniques; Gravitational sedimentation; In-situ observations; Laboratory experiments; Mass and heat transfers; Radiation absorption; Radiation contribution; Heat convection; air temperature; atmospheric transport; droplet; evaporation; fluid mechanics; modeling; relative humidity; survival; virus; water; Coronavirus
Издатель
  • MDPI AG
Тип документа
  • journal article
Тип лицензии Creative Commons
  • CC
Правовой статус документа
  • Свободная лицензия
Источник
  • scopus