Slip-velocity of large neutrally-buoyant particles in turbulent flows
arXiv:1207.7142 · doi:10.1088/1367-2630/14/12/125009
Abstract
We discuss possible definitions for a stochastic slip velocity that describes the relative motion between large particles and a turbulent flow. This definition is necessary because the slip velocity used in the standard drag model fails when particle size falls within the inertial subrange of ambient turbulence. We propose two definitions, selected in part due to their simplicity: they do not require filtration of the fluid phase velocity field, nor do they require the construction of conditional averages on particle locations. A key benefit of this simplicity is that the stochastic slip velocity proposed here can be calculated equally well for laboratory, field, and numerical experiments. The stochastic slip velocity allows the definition of a Reynolds number that should indicate whether large particles in turbulent flow behave (a) as passive tracers; (b) as a linear filter of the velocity field; or (c) as a nonlinear filter to the velocity field. We calculate the value of stochastic slip for ellipsoidal and spherical particles (the size of the Taylor microscale) measured in laboratory homogeneous isotropic turbulence. The resulting Reynolds number is significantly higher than 1 for both particle shapes, and velocity statistics show that particle motion is a complex non-linear function of the fluid velocity. We further investigate the nonlinear relationship by comparing the probability distribution of fluctuating velocities for particle and fluid phases.
References in corpus (4)
- Multifractal statistics of Lagrangian velocity and acceleration in turbulence
- Turbulent transport of material particles: An experimental study of finite size effects
- Acceleration of heavy and light particles in turbulence: comparison between experiments and direct numerical simulations
- Distribution of particles and bubbles in turbulence at small Stokes number
Cited by in corpus (11)
- Bubbly and Buoyant Particle-Laden Turbulent Flows
- Sedimentation of finite-size spheres in quiescent and turbulent environments
- Shape-dependence of particle rotation in isotropic turbulence
- Slipping motion of large neutrally-buoyant particles in turbulence
- Refractive-index-matched hydrogel materials for modeling flow-structure interactions
- Reduced particle settling speed in turbulence
- Rotational diffusion of particles in turbulence
- Clustering in laboratory and numerical turbulent swirling flows
- Numerical study on turbulence modulation of finite-size particles in plane-Couette flow
- Statistics of rigid fibers in strongly sheared turbulence
- Lagrangian view of time irreversibility of fluid turbulence