Articles producció científicaEnginyeria Mecànica

Direct numerical simulation of turbulent dispersion of evaporative aerosol clouds produced by an intense expiratory event

  • Dades identificatives

    Identificador:  imarina:9177957
    Autors:  Fabregat, Alexandre; Gisbert, Ferran; Vernet, Anton; Ferre, Josep Anton; Mittal, Ketan; Dutta, Som; Pallares, Jordi
    Resum:
    Airborne particles are a major route for transmission of COVID-19 and many other infectious diseases. When a person talks, sings, coughs, or sneezes, nasal and throat secretions are spewed into the air. After a short initial fragmentation stage, the expelled material is mostly composed of spherical particles of different sizes. While the dynamics of the largest droplets are dominated by gravitational effects, the smaller aerosol particles, mostly transported by means of hydrodynamic drag, form clouds that can remain afloat for long times. In subsaturated air environments, the dependence of pathogen-laden particle dispersion on their size is complicated due to evaporation of the aqueous fraction. Particle dynamics can significantly change when ambient conditions favor rapid evaporation rates that result in a transition from buoyancy-to-drag dominated dispersion regimes. To investigate the effect of particle size and evaporation on pathogen-laden cloud evolution, a direct numerical simulation of a mild cough was coupled with an evaporative Lagrangian particle advection model. The results suggest that while the dispersion of cough particles in the tails of the size distribution are unlikely to be disrupted by evaporative effects, preferential aerosol diameters (30-40 μm) may exhibit significant increases in the residence time and horizontal range under typical ambient conditions. Using estimations of the viral concentration in the spewed fluid and the number of ejected particles in a typical respiratory event, we obtained a map of viral load per volume of air at the end of the cough and the number of virus copies per inhalation in the emitter vicinity.
  • Altres:

    Enllaç font original: https://aip.scitation.org/doi/10.1063/5.0045416
    Referència de l'ítem segons les normes APA: Fabregat, Alexandre; Gisbert, Ferran; Vernet, Anton; Ferre, Josep Anton; Mittal, Ketan; Dutta, Som; Pallares, Jordi (2021). Direct numerical simulation of turbulent dispersion of evaporative aerosol clouds produced by an intense expiratory event. Physics Of Fluids, 33(3), 033329-1-033329-13. DOI: 10.1063/5.0045416
    Referència a l'article segons font original: Physics Of Fluids. 33 (3): 033329-1-033329-13
    DOI de l'article: 10.1063/5.0045416
    Any de publicació de la revista: 2021
    Entitat: Universitat Rovira i Virgili
    Versió de l'article dipositat: info:eu-repo/semantics/publishedVersion
    Data d'alta del registre: 2025-01-27
    Autor/s de la URV: Fabregat Tomàs, Alexandre / Ferré Vidal, Josep Anton / Pallarés Curto, Jorge María / Vernet Peña, Antonio
    Departament: Enginyeria Mecànica
    URL Document de llicència: https://repositori.urv.cat/ca/proteccio-de-dades/
    Tipus de publicació: Journal Publications
    ISSN: 1070-6631
    Autor segons l'article: Fabregat, Alexandre; Gisbert, Ferran; Vernet, Anton; Ferre, Josep Anton; Mittal, Ketan; Dutta, Som; Pallares, Jordi
    Accès a la llicència d'ús: https://creativecommons.org/licenses/by/3.0/es/
    e-ISSN: 1089-7666
    Àrees temàtiques: Química, Physics, fluids & plasmas, Mechanics of materials, Mechanics, Mechanical engineering, Materiais, Matemática / probabilidade e estatística, Interdisciplinar, Geociências, Fluid flow and transfer processes, Engineering (miscellaneous), Engenharias iv, Engenharias iii, Engenharias ii, Engenharias i, Condensed matter physics, Computational mechanics, Ciências biológicas i, Ciência da computação, Astronomia / física
    Adreça de correu electrònic de l'autor: alexandre.fabregat@urv.cat, anton.vernet@urv.cat, josep.a.ferre@urv.cat, jordi.pallares@urv.cat
  • Paraules clau:

    Life below water
    Computational Mechanics
    Condensed Matter Physics
    Engineering (Miscellaneous)
    Fluid Flow and Transfer Processes
    Mechanical Engineering
    Mechanics
    Mechanics of Materials
    Physics
    Fluids & Plasmas
    Química
    Materiais
    Matemática / probabilidade e estatística
    Interdisciplinar
    Geociências
    Engenharias iv
    Engenharias iii
    Engenharias ii
    Engenharias i
    Ciências biológicas i
    Ciência da computação
    Astronomia / física
  • Documents:

  • Cerca a google

    Search to google scholar