Energetics of particle-size segregation

Tomás Trewhela, Hugo N. Ulloa

Research output: Contribution to journalArticlepeer-review

Abstract

We introduce a continuum framework for the energetics of particle-size segregation in bidisperse granular flows. Building on continuum segregation equations and a recent segregation flux model, the proposed framework offers general analytical expressions to study the physics of granular flows from a mechanical energy perspective. We demonstrate the framework’s applicability by examining the energetics of shear-driven granular flows. Numerical experiments with varying frictional coefficients and particle-size ratios reveal two distinct phases in the energetics, marked by the separate onset of particle segregation and diffusive remixing. Furthermore, our numerical simulations alongside previous experimental results show that the bulk Richardson number Ri, defined as the potential energy to kinetic energy ratio at steady state, follows the scaling relationship Ri ≡ Êgp(s)k(s) ∝ Pesr1/2 for 0.1 ≤ Ri ≤ 103 and 10−4 ≤ Pesr ≤ 300, the segregation–rheology Péclet number. Finally, we present a Péclet-number-dependent theoretical expression for the degree of mixing (or segregation), validated by the compiled numerical and experimental dataset. Our findings hint that the bulk segregation–mixing state can be predicted and controlled using the segregation Péclet number Pe and Pesr, both determined from known system parameters, providing an instrumental tool for engineering and geophysical applications.

Original languageEnglish
Article numberA50
JournalJournal of Fluid Mechanics
Volume1000
DOIs
StatePublished - 27 Nov 2024
Externally publishedYes

Keywords

  • dry granular material
  • granular mixing
  • sediment transport

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