Finite-time mixing and reaction in packed-bed reactors
Journal article, 2026

We investigate mixing dynamics in porous media at finite times, using pore-scale lattice-Boltzmann simulations combined with Lagrangian particle tracking. We compute fluid deformation in randomly packed beds based on the moving Protean frame approach introduced by Lester et al. (2018 J. Fluid Mech. 855, 770–803). From the extracted Lagrangian kinematics, we construct a mixing model based on lamellar aggregation that well predicts the Eulerian scalar fields obtained from simulations. Our results reveal an early-time mixing regime dominated by shear-driven fluid deformation, where solute mixing arises from the random overlap of diffusive concentration elements. In this regime, mixing proceeds slowly and follows a temporal decay of concentration variance, (Formula presented), where Pe is the Péclet number and α the exponent characterising shear deformation. This dynamic arises when the Péclet number is small relative to the ratio between the exponential-mixing and shear-deformation time scales. This analysis also demonstrates that shear-induced mixing governs the homogenisation of early-stage reactions at the fluid–solid interface in finite-size random packed beds, typically operating at moderate Péclet numbers Pe = O(102).

reacting multiphase flow

laminar mixing

porous media

Author

Dario Jonsson Maggiolo

Chalmers, Mechanics and Maritime Sciences (M2), Fluid Dynamics

Lucien Magson

University of La Rioja

The French Alternative Energies and Atomic Energy Commission (CEA)

Gunther Munz

Fraunhofer Society

Diego Sampedro

University of La Rioja

Angela Sasic-Kalagasidis

Chalmers, Architecture and Civil Engineering, Building Technology

Journal of Fluid Mechanics

0022-1120 (ISSN) 1469-7645 (eISSN)

Vol. 1034 A9

Subject Categories (SSIF 2025)

Fluid Mechanics

Subatomic Physics

DOI

10.1017/jfm.2026.11461

More information

Latest update

5/18/2026