APS Logo

Characterization of entrainment through turbulent diffusion in a self-similar jet

ORAL

Abstract

A large-scale experimental Lagrangian study based on particle tracking velocimetry has been completed in an incompressible self-similar water jet. The jet is seeded with tracers only through the nozzle: inhomogeneous seeding called nozzle seeding. The Lagrangian flow of tracers therefore does not contain any contribution from particles entrained into the jet from the surrounding fluid. The mean velocity field based on tracer trajectories〈Uφ〉is essentially indistinguishable from the mean velocity field of the jet〈U〉for the axial velocity while important discrepancies are experimentally found for the radial velocity. Even if ·〈U〉= 0, we have ·〈Uφ〉≠ 0 due to the absence of entrained particles. By considering the mean tracer concentration field〈φ〉, a new mass conservation equation is proposed: · (〈φ〉〈Uφ〉) = 0, which leads to a correct description of the experimental radial velocity field and gives new analytical results about entrainment. Finally, to connect entrainment to turbulent diffusion, a classical advection-diffusion equation with a turbulent diffusivity KT is proposed: · (〈φ〉〈U〉- KT ▽〈φ〉) = 0. We theoretically and experimentally determine KT, which can be linked to turbulent viscosity νT through turbulent Prandtl number σT determined as well.

Publication: Basset T., Viggiano B., Barois T., Gibert M., Mordant N., Cal R. B., Volk R. and Bourgoin M. (2021). Characterisation of entrainment through turbulent diffusion in a self-similar jet. In preparation.

Presenters

  • Thomas Basset

    Laboratoire de Physique, École Normale Supérieure de Lyon

Authors

  • Thomas Basset

    Laboratoire de Physique, École Normale Supérieure de Lyon

  • Bianca Viggiano

    Portland State University, Department of Mechanical and Materials Engineering, Portland State University

  • Thomas Barois

    Laboratoire Ondes et Matière d'Aquitaine, Université de Bordeaux

  • Mathieu Gibert

    Institut Néel, Université Grenoble Alpes

  • Nicolas Mordant

    Laboratoire des Écoulements Géophysiques et Industriels, Université Grenoble Alpes, Université Grenoble Alpes, LEGI, UMR 5519 CNRS, F-38 000 Grenoble, France, Universite Grenoble Alpes

  • Raúl Bayoán B Cal

    Portland State University, Department of Mechanical and Materials Engineering, Portland State University

  • Romain Volk

    Laboratoire de Physique, École Normale Supérieure de Lyon

  • Mickaël Bourgoin

    Ecole Normale Superieure de Lyon, Laboratoire de Physique, École Normale Supérieure de Lyon, ENS-Lyon