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Multiphase Fluid Flow in Porous and Fractured Reservoirs

  • Format
  • Bog, paperback
  • Engelsk

Beskrivelse

Multiphase Fluid Flow in Porous and Fractured Reservoirs discusses the process of modeling fluid flow in petroleum and natural gas reservoirs, a practice that has become increasingly complex thanks to multiple fractures in horizontal drilling and the discovery of more unconventional reservoirs and resources. The book updates the reservoir engineer of today with the latest developments in reservoir simulation by combining a powerhouse of theory, analytical, and numerical methods to create stronger verification and validation modeling methods, ultimately improving recovery in stagnant and complex reservoirs. Going beyond the standard topics in past literature, coverage includes well treatment, Non-Newtonian fluids and rheological models, multiphase fluid coupled with geomechanics in reservoirs, and modeling applications for unconventional petroleum resources. The book equips today’s reservoir engineer and modeler with the most relevant tools and knowledge to establish and solidify stronger oil and gas recovery.

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  • Vægt660 g
  • coffee cup img
    10 cm
    book img
    15,2 cm
    22,9 cm

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    Rock deformation Rock mechanics Non-Newtonian fluids Thermodynamic equilibrium Numerical solution CO2 Shale gas Non-Darcy Flow Relative Permeability Heat transfer Analytical solutions Reservoir Simulation Double Porosity Mathematical model Numerical reservoir simulation Energy balance Bingham Fluid Phase change Triple Porosity Capillary Pressure Hooke's Law Gas Adsorption Porous media Discrete equation Unconventional reservoirs Geomechanics Darcy's law Shale Oil Horizontal Well Reservoir engineering Chemical flooding Shear-thinning Tight Gas Barree and Conway model Buckley�Leverett equation Buckley�Leverett solution for non-Newtonian displacement Buckley�Leverett displacement Buckley�Leverett radial-flow solution Dual-continuum model Buckley�Leverett non-Darcy displacement Composite reservoirs Compositional model Effective Stress Flow driving mechanisms Fractured porous media Fractional flow Fully implicit Flow-governing equation Flow potential Fluid and heat flow Fluid saturation geosequestration Flow�geomechanical coupling Fluid displacement Continuum approach Control Volume High flow velocity Frontal advancing equation in composite reservoirs geothermal reservoirs Hybrid fracture model Heavy oil displacement Inertial effect Immiscible flow in composite reservoirs Dual-permeability Klinkenberg effect Enhanced geothermal system (EGS)Enhanced oil recovery (EOR)Multiphase immiscible fluids Langmuir's isotherm EOS (equations of state)Equilibrium partitioning Mass Conservation Extended Buckley�Leverett solution naturally fractured reservoirs Frontal advancing equation Forchheimer equation Non-Darcy displacement Moment balance Multiple continuum Multistaged fracturing Primary variables Integral finite difference Polymer flooding Primary recovery Initial and boundary conditions Poroelastics Power-law fluid Shock saturation front REV (representative elementary volume)Wettability Shock saturation front in composite reservoirs Thermal recovery THM (thermal�hydrological�mechanical) processes Stress sensitive formations Unstructured Grid Welge graphic method Thermo-poroelastics Two-phase radial flow Non-Darcy flow coefficient Numerical discretization rock and fluid properties MINC (multiple interacting continua)Multi-porosity Newton�Raphson Non-Newtonian displacement Two-phase immiscible flow Radial immiscible displacement tight oil Warren and Root
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