Unified Theory of Inertial Granular Flows and Non-Brownian Suspensions
arXiv:1410.3535 · doi:10.1103/PhysRevE.91.062206
Abstract
Rheological properties of dense flows of hard particles are singular as one approaches the jamming threshold where flow ceases, both for aerial granular flows dominated by inertia, and for over-damped suspensions. Concomitantly, the lengthscale characterizing velocity correlations appears to diverge at jamming. Here we introduce a theoretical framework that proposes a tentative, but potentially complete scaling description of stationary flows. Our analysis, which focuses on frictionless particles, applies {\it both} to suspensions and inertial flows of hard particles. We compare our predictions with the empirical literature, as well as with novel numerical data. Overall we find a very good agreement between theory and observations, except for frictional inertial flows whose scaling properties clearly differ from frictionless systems. For over-damped flows, more observations are needed to decide if friction is a relevant perturbation or not. Our analysis makes several new predictions on microscopic dynamical quantities that should be accessible experimentally.
13 pages + 3 pages SI
References in corpus (12)
- Jamming at Zero Temperature and Zero Applied Stress: the Epitome of Disorder
- Fractal free energy landscapes in structural glasses
- Frictionless bead packs have macroscopic friction, but no dilatancy
- Marginal Stability in Structural, Spin and Electron Glasses
- Shear thickening and migration in granular suspensions
- Jamming Criticality Revealed by Removing Localized Buckling Excitations
- Power-law friction in closely-packed granular materials
- Non-affine response: jammed packings versus spring networks
- Geometric interpretation of pre-vitrification in hard sphere liquids
- Jamming in finite systems: stability, anisotropy, fluctuations and scaling
- Critical Scaling of Shearing Rheology at the Jamming Transition of Soft Core Frictionless Disks
- Thinning or thickening? Multiple rheological regimes in dense suspensions of soft particles
Cited by in corpus (25)
- The physics of dense suspensions
- Rheology of dense granular flows for elongated particles
- Viscous-inertial transition in dense granular suspension
- Non-local effects reflect the jamming criticality in granular flows of frictionless particles
- Relaxation dynamics of non-Brownian spheres below jamming
- Transient flows and migration in granular suspensions: key role of Reynolds-like dilatancy
- Breakup of particle-laden droplets in airflow
- Dynamic length scales in athermal, shear-driven, jamming of frictionless disks in two dimensions
- Integration through transients approach to the rheology
- Strain-controlled critical slowing down in the rheology of disordered networks
- Shear Is Not Always Simple: Rate-Dependent Effects of Flow Type on Granular Rheology
- Surfing on minima of isostatic landscapes: avalanches and unjamming transition
- Note: Relaxation time below jamming
- Rheology of granular liquids in extensional flows: Beyond the -law
- Critical Scaling of Compression-Driven Jamming of Athermal Frictionless Spheres in Suspension
- Universal behavior in fragmenting brittle, isotropic solids across material properties
- A self-consistent current response theory of jamming and vibrational modes in low-temperature amorphous solids
- Comparison of compression vs shearing near jamming, for a simple model of athermal frictionless disks in suspension
- Non-Affine Displacements Below Jamming under Athermal Quasi-Static Compression
- Perspective: A Phase Diagram for Deep Learning unifying Jamming, Feature Learning and Lazy Training
- Universality of stress-anisotropic and stress-isotropic jamming of frictionless spheres in three dimensions: Uniaxial vs isotropic compression
- Transition from granular to Brownian suspension : an inclined plane experiment
- Tuning Interparticle Hydrogen Bonding in Shear-Jamming Suspensions: Kinetic Effects and Consequences for Tribology and Rheology
- Criticality of the viscous to inertial transition near jamming in non-Brownian suspensions
- Relaxation dynamics and long-time tails explain shear-induced diffusion of soft athermal particles near jamming