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A methodology to constrain the parameters of a hydrogeological discrete fracture network model for sparsely fractured crystalline rock,exemplified by data from the proposed high-level nuclear waste repository site at Forsmark,Sweden
Authors:Sven Follin  Lee Hartley  Ingvar Rhén  Peter Jackson  Steven Joyce  David Roberts  Ben Swift
Institution:1. SF GeoLogic AB, Box 1139, SE 183 11, T?by, Sweden
2. AMEC, Building 150, Harwell Oxford, Didcot, Oxfordshire, OX11 0QB, UK
3. SWECO Environment, Box 2203, SE 101 24, Gothenburg, Sweden
4. Nuclear Decommissioning Authority, Harwell, Didcot, Oxfordshire, OX11 0RA, UK
Abstract:The large-scale geological structure of the crystalline rock at the proposed high-level nuclear waste repository site at Forsmark, Sweden, has been classified in terms of deformation zones of elevated fracture frequency. The rock between deformation zones was divided into fracture domains according to fracture frequency. A methodology to constrain the geometric and hydraulic parameters that define a discrete fracture network (DFN) model for each fracture domain is presented. The methodology is based on flow logging and down-hole imaging in cored boreholes in combination with DFN realizations, fracture connectivity analysis and pumping test simulations. The simulations suggest that a good match could be obtained for a power law size distribution where the value of the location parameter equals the borehole radius but with different values for the shape parameter, depending on fracture domain and fracture set. Fractures around 10–100 m in size are the ones that typically form the connected network, giving inflows in the simulations. The report also addresses the issue of up-scaling of DFN properties to equivalent continuous porous medium (ECPM) bulk flow properties. Comparisons with double-packer injection tests provide confidence that the derived DFN formulation of detailed flows within individual fractures is also suited to simulating mean bulk flow properties and their spatial variability.
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