The classic constitutive equation relating fluid flux to a gradient in potential (pressure head plus gravitational energy) through a porous medium was discovered by Darcy in the mid 1800s. This law states that the flux is proportional to the pressure gradient. However, the passage of the fluid through the porous matrix may cause a local variation of the permeability. For example, the flow may perturb the porous formation by causing particle migration resulting in pore clogging or chemically reacting with the medium to enlarge the pores or diminish the size of the pores. In order to adequately represent these phenomena, we modify the constitutive equations by introducing a memory formalism operating on both the pressure gradient-flux and the pressure-density variations. The memory formalism is then represented with fractional order derivatives. We perform a number of laboratory experiments in uniformly packed columns where a constant pressure is applied on the lower boundary. Both homogeneous and heterogeneous media of different characteristic particle size dimension were employed. The low value assumed by the memory parameters, and in particular by the fractional order, demonstrates that memory is largely influencing the experiments. The data and theory show how mechanical compaction can decrease permeability, and consequently flux.

Flux in porous media with memory: models and experiments / Erika Di, Giuseppe; Moroni, Monica; Michele, Caputo. - In: TRANSPORT IN POROUS MEDIA. - ISSN 0169-3913. - 83:3(2010), pp. 479-500. (Intervento presentato al convegno 23° Convegno Nazionale del Gruppo Nazionale di Geofisica della Terra Solida tenutosi a Roma (Italia) nel Dicembre 2004) [10.1007/s11242-009-9456-4].

Flux in porous media with memory: models and experiments

MORONI, Monica;
2010

Abstract

The classic constitutive equation relating fluid flux to a gradient in potential (pressure head plus gravitational energy) through a porous medium was discovered by Darcy in the mid 1800s. This law states that the flux is proportional to the pressure gradient. However, the passage of the fluid through the porous matrix may cause a local variation of the permeability. For example, the flow may perturb the porous formation by causing particle migration resulting in pore clogging or chemically reacting with the medium to enlarge the pores or diminish the size of the pores. In order to adequately represent these phenomena, we modify the constitutive equations by introducing a memory formalism operating on both the pressure gradient-flux and the pressure-density variations. The memory formalism is then represented with fractional order derivatives. We perform a number of laboratory experiments in uniformly packed columns where a constant pressure is applied on the lower boundary. Both homogeneous and heterogeneous media of different characteristic particle size dimension were employed. The low value assumed by the memory parameters, and in particular by the fractional order, demonstrates that memory is largely influencing the experiments. The data and theory show how mechanical compaction can decrease permeability, and consequently flux.
2010
porous media; mechanical compaction; memory's formalism; fractional derivatives
01 Pubblicazione su rivista::01a Articolo in rivista
Flux in porous media with memory: models and experiments / Erika Di, Giuseppe; Moroni, Monica; Michele, Caputo. - In: TRANSPORT IN POROUS MEDIA. - ISSN 0169-3913. - 83:3(2010), pp. 479-500. (Intervento presentato al convegno 23° Convegno Nazionale del Gruppo Nazionale di Geofisica della Terra Solida tenutosi a Roma (Italia) nel Dicembre 2004) [10.1007/s11242-009-9456-4].
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/494053
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