Litcius/Paper detail

Settling of finite-size particles in homogeneous isotropic turbulence: the influence of particle inertia and a unified predictive model

Cheng Peng, Kairzhan Karzhaubayev, Lian‐Ping Wang, Songying Chen, Zhongguo Niu

2025Journal of Fluid Mechanics6 citationsDOI

Abstract

In this work, we conduct particle-resolved direct numerical simulations to investigate the influence of particle inertia on the settling velocity of finite-size particles at low volume fraction in homogeneous isotropic turbulence across various settling numbers. Our results for finite-size particles show only reductions of settling velocity in turbulence compared to the corresponding laminar case. Although increased particle inertia significantly reduces the lateral motion of particles and fluctuations in settling velocity, its effect on the mean settling velocity is not pronounced, except when the settling effect is strong, where increased particle inertia leads to a noticeable reduction. Mechanistically, the nonlinear drag effect, which emphasises contributions from large turbulent scales, cannot fully account for the reduction in settling velocity. The influence of small-scale turbulence, particularly through interactions with the particle boundary layer, should not be overlooked. We also analyse the dependency of turbulence’s modification on particle settling velocity within a broader parameter space, encompassing both sub-Kolmogorov point particles and finite-size particles. Additionally, we develop a qualitative model to predict whether turbulence enhances or retards the settling velocity of particles.

Topics & Concepts

TurbulenceInertiaSettlingIsotropyHomogeneous isotropic turbulenceHomogeneousMechanicsPhysicsParticle (ecology)Classical mechanicsStatistical physicsThermodynamicsDirect numerical simulationReynolds numberGeologyOpticsOceanographyParticle Dynamics in Fluid FlowsAeolian processes and effectsFluid Dynamics and Turbulent Flows