Articles producció científicaEnginyeria Mecànica

Numerical simulation of the particle wall mass transfer rates on rough surfaces confining turbulent natural convection flows

  • Dades identificatives

    Identificador:  imarina:9414293
    Autors:  Pallares, Jordi; Fabregat, Alexandre
    Resum:
    We performed numerical simulations of the particle mass transfer rates on the horizontal and vertical thermally active rough walls confining a turbulent natural convection flow. We considered the air flow conditions in a cubical cavity (L =1.22m, Ra=5.4 center dot 10(8), Pr=0.71) with two opposed pairs of consecutive walls at different temperatures, for which measurements of the particle deposition velocities are reported in the literature. The simulations were carried out by solving the momentum, thermal energy and particle mass transfer equations using a series of two-dimensional computational cell units to determine spatial evolution and development of the particle concentration boundary layer in the vicinity of hot and cold rough walls. Different flow conditions, wall orientations, sizes of roughness elements, particle diameters and temperature increments between the wall and the bulk fluid, typically found in indoor environments, have been considered and consequently, results can be used to estimate the particle deposition rates in real scenarios. At large mass transfer particle Peclet numbers, corresponding to spherical particles with diameters of 0.5-1 mu m, the wall mass transfer rates of particles on rough textures typically increase by a factor of about 3 in comparison with the deposition on smooth surfaces. The thermophoretic effect significantly decreases the particle deposition on hot surfaces and increases it on cold surfaces, especially at large particle Peclet numbers. The numerical predictions of the deposition velocities are in good agreement with the measurements reported in the literature for the same flow conditions considered.
  • Altres:

    Autor segons l'article: Pallares, Jordi; Fabregat, Alexandre
    Departament: Enginyeria Mecànica
    Autor/s de la URV: Fabregat Tomàs, Alexandre / Pallarés Curto, Jorge María
    Paraules clau: Turbulent natural convection; Thermophoresis; Textures; Smoot; Rough surfaces; Particle deposition; Model; Mass transfer; Fine; Cubical cavity; Cubical cavit; Air speed; Aerosol deposition; 1st-order chemical-reaction
    Resum: We performed numerical simulations of the particle mass transfer rates on the horizontal and vertical thermally active rough walls confining a turbulent natural convection flow. We considered the air flow conditions in a cubical cavity (L =1.22m, Ra=5.4 center dot 10(8), Pr=0.71) with two opposed pairs of consecutive walls at different temperatures, for which measurements of the particle deposition velocities are reported in the literature. The simulations were carried out by solving the momentum, thermal energy and particle mass transfer equations using a series of two-dimensional computational cell units to determine spatial evolution and development of the particle concentration boundary layer in the vicinity of hot and cold rough walls. Different flow conditions, wall orientations, sizes of roughness elements, particle diameters and temperature increments between the wall and the bulk fluid, typically found in indoor environments, have been considered and consequently, results can be used to estimate the particle deposition rates in real scenarios. At large mass transfer particle Peclet numbers, corresponding to spherical particles with diameters of 0.5-1 mu m, the wall mass transfer rates of particles on rough textures typically increase by a factor of about 3 in comparison with the deposition on smooth surfaces. The thermophoretic effect significantly decreases the particle deposition on hot surfaces and increases it on cold surfaces, especially at large particle Peclet numbers. The numerical predictions of the deposition velocities are in good agreement with the measurements reported in the literature for the same flow conditions considered.
    Àrees temàtiques: Thermodynamics; Matemática / probabilidade e estatística; Interdisciplinar; General engineering; Engineering, mechanical; Engineering (miscellaneous); Engineering (all); Engenharias iii; Engenharias ii; Engenharias i; Condensed matter physics; Ciências ambientais; Astronomia / física; Arquitetura e urbanismo
    Accès a la llicència d'ús: https://creativecommons.org/licenses/by/3.0/es/
    Adreça de correu electrònic de l'autor: alexandre.fabregat@urv.cat; jordi.pallares@urv.cat
    Data d'alta del registre: 2025-01-27
    Versió de l'article dipositat: info:eu-repo/semantics/acceptedVersion
    Enllaç font original: https://www.sciencedirect.com/science/article/abs/pii/S129007292300546X
    Referència a l'article segons font original: International Journal Of Thermal Sciences. 196 108685-
    Referència de l'ítem segons les normes APA: Pallares, Jordi; Fabregat, Alexandre (2024). Numerical simulation of the particle wall mass transfer rates on rough surfaces confining turbulent natural convection flows. International Journal Of Thermal Sciences, 196(), 108685-. DOI: 10.1016/j.ijthermalsci.2023.108685
    URL Document de llicència: https://repositori.urv.cat/ca/proteccio-de-dades/
    DOI de l'article: 10.1016/j.ijthermalsci.2023.108685
    Entitat: Universitat Rovira i Virgili
    Any de publicació de la revista: 2024
    Tipus de publicació: Journal Publications
  • Paraules clau:

    Condensed Matter Physics,Engineering (Miscellaneous),Engineering, Mechanical,Thermodynamics
    Turbulent natural convection
    Thermophoresis
    Textures
    Smoot
    Rough surfaces
    Particle deposition
    Model
    Mass transfer
    Fine
    Cubical cavity
    Cubical cavit
    Air speed
    Aerosol deposition
    1st-order chemical-reaction
    Thermodynamics
    Matemática / probabilidade e estatística
    Interdisciplinar
    General engineering
    Engineering, mechanical
    Engineering (miscellaneous)
    Engineering (all)
    Engenharias iii
    Engenharias ii
    Engenharias i
    Condensed matter physics
    Ciências ambientais
    Astronomia / física
    Arquitetura e urbanismo
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