Articles producció científicaEnginyeria Mecànica

Computational fluid dynamics challenge on indoor dispersion of pathogen-laden aerosols

  • Datos identificativos

    Identificador:  imarina:9448908
    Autores:  Pallares, Jordi; Fabregat, Alexandre; Lavrinenko, Akim; Marques, Nelson; Santos, Bruno; Mosca, Gabriele; Vega, Pedro Obando; Ravnik, Jure; Vovk, Nejc; Fraga, Bruno; Monka, Aleksandra; Martinez, Manuel; Mestre-Curto, Naomi; de Souza, Francisco Jose; Fontes, Douglas; Juengling, Natalie; Niessner, Jennifer; Castilla, Robert; Garcia-Vilchez, Merce; Fletcher, David F; Inthavong, Kiao; Hribersek, Matjaz; Steinmann, Paul; Wedel, Jana; Duchaine, Florent; Sankurantripati, Shriram; Amari, Leo; Janiga, Gabor; Marchioli, Cristian; Cito, Salvatore
    Resumen:
    This paper presents and discusses the results of the "2024 International Computational Fluid Dynamics Challenge on the long-range indoor dispersion of pathogen-laden aerosols" aimed at assessing the ability of different computational codes and turbulence models to reproduce the dispersion of particles produced by a turbulent natural convection flow enclosed in a room sized cubical cavity. A total of 12 research groups from ten different countries have conducted 15 simulations of the same flow configuration by solving the Reynolds averaged Navier-Stokes (RANS) equations, the unsteady Reynolds averaged Navier-Stokes (URANS) equations or using scale adaptive simulations (SAS), large-eddy simulations (LES), or hybrid (URANS-LES) techniques. Results for the velocity field and the particle dispersion provided by the different simulations are compared extensively, including the reference results provided by a direct numerical simulation (DNS). In general, LES and hybrid methods reproduce the time-averaged flow field correctly, the spatial distribution of the turbulence kinetic energy, and the particle dispersion. The performance of SAS is similar to that of LES and hybrid methods while the predictions of the RANS and URANS simulations exhibit larger deviations with respect to DNS. In general, the particle dispersion is better reproduced by simulations that capture correctly the spatial distribution of the turbulence kinetic energy.
  • Otros:

    Enlace a la fuente original: https://pubs.aip.org/aip/pof/article-abstract/37/2/025226/3337454/Computational-fluid-dynamics-challenge-on-indoor?redirectedFrom=fulltext
    Referencia de l'ítem segons les normes APA: Pallares, Jordi; Fabregat, Alexandre; Lavrinenko, Akim; Marques, Nelson; Santos, Bruno; Mosca, Gabriele; Vega, Pedro Obando; Ravnik, Jure; Vovk, Nejc; (2025). Computational fluid dynamics challenge on indoor dispersion of pathogen-laden aerosols. PHYSICS OF FLUIDS, 37(2), 025226-. DOI: 10.1063/5.0252665
    Referencia al articulo segun fuente origial: PHYSICS OF FLUIDS. 37 (2): 025226-
    DOI del artículo: 10.1063/5.0252665
    Año de publicación de la revista: 2025-02-01
    Entidad: Universitat Rovira i Virgili
    Versión del articulo depositado: info:eu-repo/semantics/acceptedVersion
    Fecha de alta del registro: 2026-05-09
    Autor/es de la URV: Cito, Salvatore / Fabregat Tomàs, Alexandre / Martínez del Álamo, Manuel / Pallarés Curto, Jorge María
    Departamento: Enginyeria Mecànica
    URL Documento de licencia: https://repositori.urv.cat/ca/proteccio-de-dades/
    Tipo de publicación: Journal Publications
    Autor según el artículo: Pallares, Jordi; Fabregat, Alexandre; Lavrinenko, Akim; Marques, Nelson; Santos, Bruno; Mosca, Gabriele; Vega, Pedro Obando; Ravnik, Jure; Vovk, Nejc; Fraga, Bruno; Monka, Aleksandra; Martinez, Manuel; Mestre-Curto, Naomi; de Souza, Francisco Jose; Fontes, Douglas; Juengling, Natalie; Niessner, Jennifer; Castilla, Robert; Garcia-Vilchez, Merce; Fletcher, David F; Inthavong, Kiao; Hribersek, Matjaz; Steinmann, Paul; Wedel, Jana; Duchaine, Florent; Sankurantripati, Shriram; Amari, Leo; Janiga, Gabor; Marchioli, Cristian; Cito, Salvatore
    Acceso a la licencia de uso: https://creativecommons.org/licenses/by/3.0/es/
    Áreas temáticas: Physics, fluids & plasmas, Mechanics of materials, Mechanics, Mechanical engineering, Fluid flow and transfer processes, Engineering (miscellaneous), Engenharias iii, Condensed matter physics, Computational mechanics, Astronomia / física
    Direcció de correo del autor: salvatore.cito@urv.cat, salvatore.cito@urv.cat, alexandre.fabregat@urv.cat, alexandre.fabregat@urv.cat, alexandre.fabregat@urv.cat, manuel.martinezd@urv.cat, manuel.martinezd@urv.cat, manuel.martinezd@urv.cat, jordi.pallares@urv.cat, jordi.pallares@urv.cat
  • Palabras clave:

    Simulation
    Ran
    Particulate matter
    Natural-convection
    Les
    Flow
    Cfd
    Cavity
    Air
    Computational Mechanics
    Condensed Matter Physics
    Engineering (Miscellaneous)
    Fluid Flow and Transfer Processes
    Mechanical Engineering
    Mechanics
    Mechanics of Materials
    Physics
    Fluids & Plasmas
    Engenharias iii
    Astronomia / física
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