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Population Balance Models for Particulate Flows in Porous Media: Breakage and Shear-Induced Events
by
Pasquale, Nicodemo Di
, Icardi, Matteo
, Marchisio, Daniele
, Babler, Matthaus U.
, Crevacore, Eleonora
in
Channel flow
/ Civil Engineering
/ Classical and Continuum Physics
/ Dimensional analysis
/ Earth and Environmental Science
/ Earth Sciences
/ equation
/ Flows in porous media
/ Geotechnical Engineering & Applied Earth Sciences
/ Hydrogeology
/ Hydrology/Water Resources
/ Industrial Chemistry/Chemical Engineering
/ Local flow
/ Mathematical analysis
/ Mixing
/ numerical model
/ particle motion
/ Particulate flows
/ Particulate process
/ Population balance equation
/ Population balance modelling
/ Population balance models
/ Population-balance equations
/ Porous materials
/ Porous Media
/ Porous medium
/ power law
/ Shear flow
/ Shear forces
/ Shear rate
/ Shear-induced
/ Spheres
/ Three dimensional flow
/ Transport process
/ Two dimensional flow
/ Upscaling
2023
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Population Balance Models for Particulate Flows in Porous Media: Breakage and Shear-Induced Events
by
Pasquale, Nicodemo Di
, Icardi, Matteo
, Marchisio, Daniele
, Babler, Matthaus U.
, Crevacore, Eleonora
in
Channel flow
/ Civil Engineering
/ Classical and Continuum Physics
/ Dimensional analysis
/ Earth and Environmental Science
/ Earth Sciences
/ equation
/ Flows in porous media
/ Geotechnical Engineering & Applied Earth Sciences
/ Hydrogeology
/ Hydrology/Water Resources
/ Industrial Chemistry/Chemical Engineering
/ Local flow
/ Mathematical analysis
/ Mixing
/ numerical model
/ particle motion
/ Particulate flows
/ Particulate process
/ Population balance equation
/ Population balance modelling
/ Population balance models
/ Population-balance equations
/ Porous materials
/ Porous Media
/ Porous medium
/ power law
/ Shear flow
/ Shear forces
/ Shear rate
/ Shear-induced
/ Spheres
/ Three dimensional flow
/ Transport process
/ Two dimensional flow
/ Upscaling
2023
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Population Balance Models for Particulate Flows in Porous Media: Breakage and Shear-Induced Events
by
Pasquale, Nicodemo Di
, Icardi, Matteo
, Marchisio, Daniele
, Babler, Matthaus U.
, Crevacore, Eleonora
in
Channel flow
/ Civil Engineering
/ Classical and Continuum Physics
/ Dimensional analysis
/ Earth and Environmental Science
/ Earth Sciences
/ equation
/ Flows in porous media
/ Geotechnical Engineering & Applied Earth Sciences
/ Hydrogeology
/ Hydrology/Water Resources
/ Industrial Chemistry/Chemical Engineering
/ Local flow
/ Mathematical analysis
/ Mixing
/ numerical model
/ particle motion
/ Particulate flows
/ Particulate process
/ Population balance equation
/ Population balance modelling
/ Population balance models
/ Population-balance equations
/ Porous materials
/ Porous Media
/ Porous medium
/ power law
/ Shear flow
/ Shear forces
/ Shear rate
/ Shear-induced
/ Spheres
/ Three dimensional flow
/ Transport process
/ Two dimensional flow
/ Upscaling
2023
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Population Balance Models for Particulate Flows in Porous Media: Breakage and Shear-Induced Events
Journal Article
Population Balance Models for Particulate Flows in Porous Media: Breakage and Shear-Induced Events
2023
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Overview
Transport and particulate processes are ubiquitous in environmental, industrial and biological applications, often involving complex geometries and porous media. In this work we present a general population balance model for particle transport at the pore-scale, including aggregation, breakage and surface deposition. The various terms in the equations are analysed with a dimensional analysis, including a novel collision-induced breakage mechanism, and split into one- and two-particles processes. While the first are linear processes, they might both depend on local flow properties (e.g. shear). This means that the upscaling (via volume averaging and homogenisation) to a macroscopic (Darcy-scale) description requires closures assumptions. We discuss this problem and derive an effective macroscopic term for the shear-induced events, such as breakage caused by shear forces on the transported particles. We focus on breakage events as prototype for linear shear-induced events and derive upscaled breakage frequencies in periodic geometries, starting from nonlinear power-law dependence on the local fluid shear rate. Results are presented for a two-dimensional channel flow and a three dimensional regular arrangement of spheres, for arbitrarily fast (mixing-limited) events. Implications for linearised shear-induced collisions are also discussed. This work lays the foundations of a new general framework for multiscale modelling of particulate flows.
Publisher
Springer Netherlands,Springer Nature B.V
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