Channel flow of rigid sphere suspensions: particle dynamics in the inertial regime
Iman Lashgari, Francesco Picano, Wim Paul Breugem, Luca Brandt

TL;DR
This study investigates the dynamics of neutrally-buoyant rigid spherical particles in channel flow across a range of Reynolds numbers and volume fractions, revealing three flow regimes and the predictive power of the Bagnold number for bulk behavior.
Contribution
The paper identifies three distinct flow regimes in inertial channel suspensions and links them to stress contributions, providing new insights into particle dynamics and flow behavior prediction.
Findings
Flow regimes are laminar, turbulent, and inertial shear-thickening.
Bagnold number predicts bulk behavior across regimes.
Particle dispersion and distribution vary with flow regime.
Abstract
We consider suspensions of neutrally-buoyant finite-size rigid spherical particles in channel flow and investigate the relation between the particle dynamics and the mean bulk behavior of the mixture for Reynolds numbers and particle volume fraction , via fully resolved numerical simulations. Analysis of the momentum balance reveals the existence of three different regimes: laminar, turbulent and inertial shear-thickening depending on which of the stress terms, viscous, Reynolds or particle stress, is the major responsible for the momentum transfer across the channel. We show that both Reynolds and particle stress dominated flows fall into the Bagnoldian inertial regime and that the Bagnold number can predict the bulk behavior although this is due to two distinct physical mechanisms. A turbulent flow is characterized by larger particle…
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Taxonomy
TopicsParticle Dynamics in Fluid Flows · Granular flow and fluidized beds · Aeolian processes and effects
