Title of article :
Characterisation of induced fracture networks within an enhanced geothermal system using anisotropic electromagnetic modelling
Author/Authors :
MacFarlane، نويسنده , , Jake and Thiel، نويسنده , , Stephan and Pek، نويسنده , , Josef and Peacock، نويسنده , , Jared and Heinson، نويسنده , , Graham، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2014
Abstract :
As opinions regarding the future of energy production shift towards renewable sources, enhanced geothermal systems (EGS) are becoming an attractive prospect. The characterisation of fracture permeability at depth is central to the success of EGS. Recent magnetotelluric (MT) studies of the Paralana geothermal system (PGS), an EGS in South Australia, have measured changes in MT responses which were attributed to fracture networks generated during fluid injection experiments. However, extracting permeabilities from these measurements remains problematic as conventional isotropic MT modelling is unable to accommodate for the complexities present within an EGS. To circumvent this problem, we introduce an electrical anisotropy representation to allow better characterisation of volumes at depth. Forward modelling shows that MT measurements are sensitive to subtle variations in anisotropy. Subsequent two-dimensional anisotropic forward modelling shows that electrical anisotropy is able to reproduce the directional response associated with fractures generated by fluid injection experiments at the PGS. As such, we conclude that MT monitoring combined with anisotropic modelling is a promising alternative to the micro-seismic method when characterising fluid reservoirs within geothermal and coal seam gas reservoirs.
Keywords :
Magnetotellurics , Fractures , Forward modelling , Geothermal , electrical anisotropy , fluid injection
Journal title :
Journal of Volcanology and Geothermal Research
Journal title :
Journal of Volcanology and Geothermal Research