English

Entrainment, diffusion and effective compressibility in a self-similar turbulent jet

Fluid Dynamics 2022-09-07 v1

Abstract

An experimental Lagrangian study based on particle tracking velocimetry has been completed in an incompressible turbulent round water jet freely spreading into water. The jet is seeded with tracers only through the nozzle: inhomogeneous seeding called nozzle seeding. The Lagrangian flow tagged by these tracers therefore does not contain any contribution from particles entrained into the jet from the quiescent surrounding fluid. The mean velocity field of the nozzle seeded flow, Uφ\langle \boldsymbol{U_\varphi} \rangle, is found to be essentially indistinguishable from the global mean velocity field of the jet, U\langle \boldsymbol{U} \rangle, for the axial velocity while significant deviations are found for the radial velocity. This results in an effective compressibility of the nozzle seeded flow for which Uφ0\boldsymbol{\nabla \cdot} \langle \boldsymbol{U_\varphi} \rangle \neq 0 even though the global background flow is fully incompressible. By using mass conservation and self-similarity, we quantitatively explain the modified radial velocity profile and analytically express the missing contribution associated to entrained fluid particles. By considering a classical advection-diffusion description, we explicitly connect turbulent diffusion of mass (through the turbulent diffusivity KTK_T) and momentum (through the turbulent viscosity νT\nu_T) to entrainment. This results in new practical relations to experimentally determine the non-uniform spatial profiles of KTK_T and νT\nu_T (and hence of the turbulent Prandtl number σT=νT/KT\sigma_T = \nu_T/K_T) from simple measurements of the mean tracer concentration and axial velocity profiles. Overall, the proposed approach based on nozzle seeded flow gives new experimental and theoretical elements for a better comprehension of turbulent diffusion and entrainment in turbulent jets.

Keywords

Cite

@article{arxiv.2201.02443,
  title  = {Entrainment, diffusion and effective compressibility in a self-similar turbulent jet},
  author = {Thomas Basset and Bianca Viggiano and Thomas Barois and Mathieu Gibert and Nicolas Mordant and Raúl Bayoán Cal and Romain Volk and Mickaël Bourgoin},
  journal= {arXiv preprint arXiv:2201.02443},
  year   = {2022}
}

Comments

Submitted to Journal of Fluid Mechanics