Numerical simulations of high viscosity DNAPL recovery in highly permeable porous media under isothermal and non-isothermal conditions.

2D tank Coal tar Dense non-aqueous phase liquid Non-isothermal Thermally enhanced DNAPL recovery Two-phase flow

Journal

Journal of contaminant hydrology
ISSN: 1873-6009
Titre abrégé: J Contam Hydrol
Pays: Netherlands
ID NLM: 8805644

Informations de publication

Date de publication:
12 2022
Historique:
received: 31 12 2021
revised: 26 08 2022
accepted: 29 08 2022
pubmed: 23 9 2022
medline: 22 11 2022
entrez: 22 9 2022
Statut: ppublish

Résumé

We developed a decimetric size model based on coupling generalized Darcy's law and heat-transfer equations to model viscous dense non-aqueous phase liquid (DNAPL) pumping through highly permeable porous media under non-isothermal conditions. The presence of fingering and non-wetting phase ganglia was modeled through an unsteady capillary diffusion coefficient and an arbitrary heterogeneous permeability field. The model was validated using existing experimental data of a simple case, an oil injection in a 2D tank packed with glass beads. Next, we compared the results of this model against a DNAPL extracting situation in the 2D tank to better understand the two-phase flow behavior in highly permeable porous media. We found that natural convection during heating plays an essential role in heat transfer, especially in the wetting phase zone. By adding the dynamic effect (unsteady conditions) we were better able to describe the presence of the ganglia in porous media. We observed good agreement between modeled and experimental oil saturation curves until the breakthrough point, with a mean relative error of about 10% for low and high flow rates, and 8% and 16% after breakthrough for low and high flow rates, respectively. Extracting viscous oil at low flow rates and high temperature generates less fingering and is well described by the generalized Darcy's law. The remobilization of residual non-wetting ganglia after the breakthrough point at the outlet is, however, difficult to simulate using the generalized Darcy's law. In the end, we treated this issue by using a perturbed permeability field to simulate the observed fingering in the 2D tank.

Identifiants

pubmed: 36137463
pii: S0169-7722(22)00121-8
doi: 10.1016/j.jconhyd.2022.104073
pii:
doi:

Substances chimiques

Water Pollutants, Chemical 0

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

104073

Informations de copyright

Copyright © 2022 Elsevier B.V. All rights reserved.

Déclaration de conflit d'intérêts

Declaration of Competing Interest The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.

Auteurs

Hossein Davarzani (H)

BRGM (French Geological Survey), 3 avenue Claude Guillemin, 45100 Orléans, France. Electronic address: h.davarzani@brgm.fr.

Nicolas Philippe (N)

BRGM (French Geological Survey), 3 avenue Claude Guillemin, 45100 Orléans, France; REMEA, 22-24 rue Lavoisier, 92000 Nanterre, France.

Maxime Cochennec (M)

BRGM (French Geological Survey), 3 avenue Claude Guillemin, 45100 Orléans, France.

Stéfan Colombano (S)

BRGM (French Geological Survey), 3 avenue Claude Guillemin, 45100 Orléans, France.

Malorie Dierick (M)

REMEA, 22-24 rue Lavoisier, 92000 Nanterre, France.

Behzad Ataie-Ashtiani (B)

LE STUDIUM, Loire Valley Institute for Advanced Studies, Orléans, France.

Pierre-Yves Klein (PY)

REMEA, 22-24 rue Lavoisier, 92000 Nanterre, France.

Manuel Marcoux (M)

Institut de Mécanique des Fluides de Toulouse (IMFT), Université de Toulouse, CNRS, 31400 Toulouse, France.

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Classifications MeSH