Discretizing complex fractured media for flow and transport simulations

Publikation: Beitrag in FachzeitschriftKonferenzaufsatz in FachzeitschriftForschungPeer-Review

Autoren

  • Hussein Mustapha
  • Roussos Dimitrakopoulos
  • Thomas Graf
  • Abbas Firoozabadi

Externe Organisationen

  • McGill University
  • Reservoir Engineering Research Institute (RERI)
  • Yale University
Forschungs-netzwerk anzeigen

Details

OriginalspracheEnglisch
Seiten (von - bis)1566-1570
Seitenumfang5
FachzeitschriftAIP Conference Proceedings
Jahrgang1281
PublikationsstatusVeröffentlicht - 30 Sept. 2010
VeranstaltungInternational Conference on Numerical Analysis and Applied Mathematics 2010, ICNAAM-2010 - Rhodes, Griechenland
Dauer: 19 Sept. 201025 Sept. 2010

Abstract

We present a new method to discretize inclined 3D fractured media for subsurface flow and transport simulations. We first discretize the fractures and generate a 2D finite element mesh for each fracture. Then, the mesh of fractures is analyzed by searching and treating critical geometric configurations. Based on that search, the method generates a mesh quality and allows for including finer grids. The method is validated by solving a solute transport problem in fractured porous media. The results show that the method (i) adequately represents the fractured domain by maintaining the geometric integrity of input surfaces and geologic data, (ii) provides very accurate results for simple and complex fractured domains, (iii) is insensitive to spatial discretization, and (iv) is computationally very efficient. The method is therefore suitable to discretize fracture networks for flow and transport simulations in fractured porous media.

ASJC Scopus Sachgebiete

Zitieren

Discretizing complex fractured media for flow and transport simulations. / Mustapha, Hussein; Dimitrakopoulos, Roussos; Graf, Thomas et al.
in: AIP Conference Proceedings, Jahrgang 1281, 30.09.2010, S. 1566-1570.

Publikation: Beitrag in FachzeitschriftKonferenzaufsatz in FachzeitschriftForschungPeer-Review

Mustapha, H, Dimitrakopoulos, R, Graf, T & Firoozabadi, A 2010, 'Discretizing complex fractured media for flow and transport simulations', AIP Conference Proceedings, Jg. 1281, S. 1566-1570. https://doi.org/10.1063/1.3498107
Mustapha, H., Dimitrakopoulos, R., Graf, T., & Firoozabadi, A. (2010). Discretizing complex fractured media for flow and transport simulations. AIP Conference Proceedings, 1281, 1566-1570. https://doi.org/10.1063/1.3498107
Mustapha H, Dimitrakopoulos R, Graf T, Firoozabadi A. Discretizing complex fractured media for flow and transport simulations. AIP Conference Proceedings. 2010 Sep 30;1281:1566-1570. doi: 10.1063/1.3498107
Mustapha, Hussein ; Dimitrakopoulos, Roussos ; Graf, Thomas et al. / Discretizing complex fractured media for flow and transport simulations. in: AIP Conference Proceedings. 2010 ; Jahrgang 1281. S. 1566-1570.
Download
@article{95eb86fc96034fc498a5dffc79cf2226,
title = "Discretizing complex fractured media for flow and transport simulations",
abstract = "We present a new method to discretize inclined 3D fractured media for subsurface flow and transport simulations. We first discretize the fractures and generate a 2D finite element mesh for each fracture. Then, the mesh of fractures is analyzed by searching and treating critical geometric configurations. Based on that search, the method generates a mesh quality and allows for including finer grids. The method is validated by solving a solute transport problem in fractured porous media. The results show that the method (i) adequately represents the fractured domain by maintaining the geometric integrity of input surfaces and geologic data, (ii) provides very accurate results for simple and complex fractured domains, (iii) is insensitive to spatial discretization, and (iv) is computationally very efficient. The method is therefore suitable to discretize fracture networks for flow and transport simulations in fractured porous media.",
keywords = "3D discrete fractured model, adaptive mesh, flow and transport, mesh generation",
author = "Hussein Mustapha and Roussos Dimitrakopoulos and Thomas Graf and Abbas Firoozabadi",
year = "2010",
month = sep,
day = "30",
doi = "10.1063/1.3498107",
language = "English",
volume = "1281",
pages = "1566--1570",
note = "International Conference on Numerical Analysis and Applied Mathematics 2010, ICNAAM-2010 ; Conference date: 19-09-2010 Through 25-09-2010",

}

Download

TY - JOUR

T1 - Discretizing complex fractured media for flow and transport simulations

AU - Mustapha, Hussein

AU - Dimitrakopoulos, Roussos

AU - Graf, Thomas

AU - Firoozabadi, Abbas

PY - 2010/9/30

Y1 - 2010/9/30

N2 - We present a new method to discretize inclined 3D fractured media for subsurface flow and transport simulations. We first discretize the fractures and generate a 2D finite element mesh for each fracture. Then, the mesh of fractures is analyzed by searching and treating critical geometric configurations. Based on that search, the method generates a mesh quality and allows for including finer grids. The method is validated by solving a solute transport problem in fractured porous media. The results show that the method (i) adequately represents the fractured domain by maintaining the geometric integrity of input surfaces and geologic data, (ii) provides very accurate results for simple and complex fractured domains, (iii) is insensitive to spatial discretization, and (iv) is computationally very efficient. The method is therefore suitable to discretize fracture networks for flow and transport simulations in fractured porous media.

AB - We present a new method to discretize inclined 3D fractured media for subsurface flow and transport simulations. We first discretize the fractures and generate a 2D finite element mesh for each fracture. Then, the mesh of fractures is analyzed by searching and treating critical geometric configurations. Based on that search, the method generates a mesh quality and allows for including finer grids. The method is validated by solving a solute transport problem in fractured porous media. The results show that the method (i) adequately represents the fractured domain by maintaining the geometric integrity of input surfaces and geologic data, (ii) provides very accurate results for simple and complex fractured domains, (iii) is insensitive to spatial discretization, and (iv) is computationally very efficient. The method is therefore suitable to discretize fracture networks for flow and transport simulations in fractured porous media.

KW - 3D discrete fractured model

KW - adaptive mesh

KW - flow and transport

KW - mesh generation

UR - http://www.scopus.com/inward/record.url?scp=79954506580&partnerID=8YFLogxK

U2 - 10.1063/1.3498107

DO - 10.1063/1.3498107

M3 - Conference article

AN - SCOPUS:79954506580

VL - 1281

SP - 1566

EP - 1570

JO - AIP Conference Proceedings

JF - AIP Conference Proceedings

SN - 0094-243X

T2 - International Conference on Numerical Analysis and Applied Mathematics 2010, ICNAAM-2010

Y2 - 19 September 2010 through 25 September 2010

ER -