4.7 Article

Variable-density groundwater flow and solute transport in porous media containing nonuniform discrete fractures

期刊

ADVANCES IN WATER RESOURCES
卷 28, 期 12, 页码 1351-1367

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ELSEVIER SCI LTD
DOI: 10.1016/j.advwatres.2005.04.011

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numerical modeling; fractured rock; inclined fracture; contaminant transport; density; instability; buoyancy term

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Variations in fluid density can greatly affect fluid flow and solute transport in the subsurface. Heterogeneities such as fractures play a major role for the migration of variable-density fluids. Earlier modeling studies of density effects in fractured media were restricted to orthogonal fracture networks, consisting of only vertical and horizontal fractures. The present study addresses the phenomenon of 3D variable-density flow and transport in fractured porous media, where fractures of an arbitrary incline can occur. A general formulation of the body force vector is derived, which accounts for variable-density flow and transport in fractures of any orientation. Simulation results are presented that show the verification of the new model formulation, for the porous matrix and for inclined fractures. Simulations of variable-density flow and solute transport are then conducted for a single fracture, embedded in a porous matrix. The simulations show that density-driven flow in the fracture causes convective flow within the porous matrix and that the high-permeability fracture acts as a barrier for convection. Other simulations were run to investigate the influence of fracture incline on plume migration. Finally, tabular data of the tracer breakthrough curve in the inclined fracture is given to facilitate the verification of other codes. (c) 2005 Elsevier Ltd. All rights reserved.

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