Pair and multi-particle dispersion in numerical simulations of convective boundary layer turbulence (Articolo in rivista)

Type
Label
  • Pair and multi-particle dispersion in numerical simulations of convective boundary layer turbulence (Articolo in rivista) (literal)
Anno
  • 2014-01-01T00:00:00+01:00 (literal)
Http://www.cnr.it/ontology/cnr/pubblicazioni.owl#doi
  • 10.1063/1.4878318 (literal)
Alternative label
  • Mazzitelli I.M.; Fornarelli F.; Lanotte A.S.; Oresta P. (2014)
    Pair and multi-particle dispersion in numerical simulations of convective boundary layer turbulence
    in Physics of fluids (Woodbury N.Y., Online)
    (literal)
Http://www.cnr.it/ontology/cnr/pubblicazioni.owl#autori
  • Mazzitelli I.M.; Fornarelli F.; Lanotte A.S.; Oresta P. (literal)
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  • http://www.scopus.com/inward/record.url?eid=2-s2.0-84905241050&partnerID=q2rCbXpz (literal)
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  • 26 (literal)
Rivista
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  • 5 (literal)
Note
  • Scopu (literal)
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  • Department of Engineering for Innovation, University of Salento and INFN Sez. Lecce, 73100 Lecce, Italy; CNR-ISAC and INFN, Sez. Lecce, 73100 Lecce, Italy; Department of Mathematics, Mechanics and Management, Polytechnic of Bari, 70126 Bari, Italy (literal)
Titolo
  • Pair and multi-particle dispersion in numerical simulations of convective boundary layer turbulence (literal)
Abstract
  • Tracer dispersion within a highly convective planetary boundary layer is studied by means of a large-eddy simulation (LES) model for the continuous phases describing the temperature and velocity fields, and with the Lagrangian tracking of particle trajectories. Particle velocities are decomposed into their resolved and unresolved (or sub-grid) components. The former are evaluated by interpolation from the LES velocity field, the latter are given by a Lagrangian kinematic model that correctly describes the turbulent dispersion of clouds of particles. It is shown that, thanks to the Lagrangian sub-grid model, a clear inertial range is detectable in the time domain. In this range, particle separation grows according to Richardson's law, and nicely compares with previous experimental and numerical measurements. The collective motion of four particles, initially located at the vertices of regular tetrahedra, is also studied. The evolution of tetrad shape and orientation is contrasted with those obtained in homogeneous and isotropic flows. Results show that an agreement is achieved at small time lags. At larger times, the boundary layer reveals its anisotropic structure and the tetrad shape statistics deviate from results obtained in ideal flows. © 2014 AIP Publishing LLC. (literal)
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