Numerical Simulation of Interbedded Shale Failure in Oilsand Reservoirs by Electromagnetic Wave Excitation

dc.contributor.advisorWan, Richard
dc.contributor.authorShi, Longyang
dc.contributor.committeememberWan, Richard
dc.contributor.committeememberWong, Ron Chik Kwong
dc.contributor.committeememberZhou, Qi
dc.date2019-11
dc.date.accessioned2019-09-18T17:56:22Z
dc.date.available2019-09-18T17:56:22Z
dc.date.issued2019-09-13
dc.description.abstractThis thesis work offers an exploratory study of selective heating and fracturing of a shale layer embedded into an oilsand material. A three phase (oil-water-steam) thermal-fluid flow formulation enriched with electromagnetic physics is developed to serve as a basic model to investigate whether selective heating is possible, and thereafter verify the mechanism of shale fracturing by solving a reservoir geomechanics problem. The finite element method is employed to solve numerically this highly nonlinear multiphysics (thermal/fluid/wave propagation) problem in porous media following a staggered scheme. This is coined as the EMTH (Electromagnetic-Thermo-Hydro) modeling framework. It has been found that the configuration of EM sources such as density in the form of interval distances between point-dipoles, and most importantly phase angle, control the electromagnetic field pattern and intensity that determine the efficacy of directing heating towards a specified target. The proper characterization of electrical properties of multiphasic-capillary-porous media is another outstanding issue to address for fully understanding the radiation and heating pattern of electromagnetic wave excitation. A synthetic reservoir geomechanics model for verifying the potential of fracturing is constructed and interfaced with the EMTH framework in a loosely coupled fashion. As such, the evolutions of temperature and pore pressure fields under electromagnetic excitation are treated as parametric inputs into the geomechanics model. Tensile failure within the interbedded shale as expected for fracturing is achieved at a specific combination of initial water/oil saturation setup. Other cases are investigated to help reveal a full image of correlations between electromagnetic excitation, temperature/pore pressure escalation, geomechanical constraints, and natural properties of reservoir.en_US
dc.identifier.citationShi, L. (2019). Numerical Simulation of Interbedded Shale Failure in Oilsand Reservoirs by Electromagnetic Wave Excitation (Master's thesis, University of Calgary, Calgary, Canada). Retrieved from https://prism.ucalgary.ca.en_US
dc.identifier.doihttp://dx.doi.org/10.11575/PRISM/37063
dc.identifier.urihttp://hdl.handle.net/1880/110998
dc.language.isoengen_US
dc.publisher.facultySchulich School of Engineeringen_US
dc.publisher.institutionUniversity of Calgaryen
dc.rightsUniversity of Calgary graduate students retain copyright ownership and moral rights for their thesis. You may use this material in any way that is permitted by the Copyright Act or through licensing that has been assigned to the document. For uses that are not allowable under copyright legislation or licensing, you are required to seek permission.en_US
dc.subjectfinite element methoden_US
dc.subjectmultiphase flowen_US
dc.subjectelectromagnetismen_US
dc.subjectfracturingen_US
dc.subjectmultiphysics couplingen_US
dc.subject.classificationElectricity and Magnetismen_US
dc.subject.classificationPhysics--Radiationen_US
dc.subject.classificationEngineering--Civilen_US
dc.subject.classificationEngineering--Petroleumen_US
dc.subject.classificationGeotechnologyen_US
dc.titleNumerical Simulation of Interbedded Shale Failure in Oilsand Reservoirs by Electromagnetic Wave Excitationen_US
dc.typemaster thesisen_US
thesis.degree.disciplineEngineering – Civilen_US
thesis.degree.grantorUniversity of Calgaryen_US
thesis.degree.nameMaster of Science (MSc)en_US
ucalgary.item.requestcopytrueen_US
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