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Spatial correlations and relative velocities of polydisperse droplets in homogeneous isotropic turbulence

  • Hangyu Zhu
  • , Chong Pan
  • , Huan Lian*
  • *Corresponding author for this work
  • CAS - Institute of Mechanics
  • Beihang University
  • Southern University of Science and Technology

Research output: Contribution to journalArticlepeer-review

Abstract

We investigate the motions of polydisperse droplets in homogeneous and isotropic turbulence at Reynolds numbers R e λ = 200-300. The emphasize is put on the parameter dependences of spatial velocity correlations (SVCs) and relative velocities (RVs) of droplets, which are relevant to particle transport and dispersion in turbulence and have been less studied in experiments. The Kolmogorov-scale Stokes number is S t p = 10 - 1- 10 1, and the settling parameter, i.e., the ratio of particle settling velocity to fluid velocity fluctuations, is S v L = 0.5-2.0. Using high-resolution measurements, we can resolve the motions of turbulence and droplet over a wide range of scales (10 - 1 η to 10 2 η, η is Kolmogorov length). The parabolic behavior in droplet SVCs near the origin is observed, similar to turbulence. The droplet SVCs are smaller than turbulence for all scales and decrease with both S t p and S v L. At large scales, the droplet RVs, smaller than those of turbulence due to the inertial filtering effect, also decrease with S t p and S v L. At small scales, the path-history effect leads to larger droplet RVs than fluid RVs. Interestingly, we find RVs present a non-monotonic trend with S t p and reach a valley at S t p ≈ 1.0. It may originate from particle clustering and preferential sweeping effects, which both prevail at S t p ≈ 1.0. It is also found that droplet motions are less intermittent than turbulence. This is in contrast to the previous observations by simulations with the gravity effect being ignored. The intermittency of droplet RVs decreases with S v L due to the diminished droplet-turbulence interactions, and it presents opposite trends with S t p for small and large scales. Finally, the balance between the effects of path histories and turbulent structures makes the velocity statistics of droplets quasi-independent from the scale in the range of the dissipative scale (r ≲ 5 η).

Original languageEnglish
Article number083320
JournalPhysics of Fluids
Volume34
Issue number8
DOIs
StatePublished - 1 Aug 2022

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