HR: 1340h
AN: H13C-1386 [Abstracts]
TI: A Fracture-Only Reservoir Simulator
AU: * Unsal, E
EM: e.unsal@imperial.ac.uk
AF: Imperial College London, Dept. of Earth Science and Engineering, London, SW7 2AZ,
United Kingdom
AU: Blunt, M J
EM: m.blunt@imperial.ac.uk
AF: Imperial College London, Dept. of Earth Science and Engineering, London, SW7 2AZ,
United Kingdom
AU: Matthai, S K
EM: s.matthai@imperial.ac.uk
AF: Imperial College London, Dept. of Earth Science and Engineering, London, SW7 2AZ,
United Kingdom
AB:
We present a fracture-only reservoir simulator for multiphase flow: the fracture geometry is modeled explicitly,
while fluid movement between fracture and matrix is accommodated using empirical transfer functions. This is a
hybrid between discrete fracture modeling where both the fracture and matrix are gridded, and dual porosity or
dual permeability simulation where both fracture and matrix continua are upscaled. The advantage of this
approach is that the complex fracture geometry that controls the main flow paths is retained. The use of transfer
functions, however, makes the simulation method considerably more efficient than conventional discrete fracture
models.
The transfer functions used accommodate capillary and gravity-mediated flow between fracture and matrix and
have shown to be accurate for simple fracture geometries, capturing both the early and late-time average
behavior. We validate our simulator by comparing our predictions with simulation results where the fracture and
matrix are explicitly modeled. We then show the utility of the approach by simulating multiphase flow in a
geologically realistic fracture network. We demonstrate that both the fracture geometry and capillary forces in the
matrix govern the overall transport.
UR: http://csmp.ese.imperial.ac.uk/wiki/Home
DE: 1800 HYDROLOGY
DE: 1857 Reservoirs (surface)
DE: 1894 Instruments and techniques: modeling
SC: Hydrology [H]
MN: 2007 Fall Meeting