Porous media transport phenomena / / Faruk Civan
| Porous media transport phenomena / / Faruk Civan |
| Autore | Civan Faruk |
| Edizione | [1st ed.] |
| Pubbl/distr/stampa | Wiley, 2011 |
| Descrizione fisica | 1 online resource (485 p.) |
| Disciplina | 620.1/16 |
| Soggetto topico | Porous materials |
| ISBN |
9786613176288
9781283176286 1283176289 9781118086803 1118086805 9781118086810 1118086813 9781118086438 1118086430 |
| Classificazione | TEC009010 |
| Formato | Materiale a stampa |
| Livello bibliografico | Monografia |
| Lingua di pubblicazione | eng |
| Nota di contenuto | Machine generated contents note: Preface.Chapter 1 Overview.1. Introduction.2. Synopses of Topics Covered in Various Chapters.Chapter 2 Transport Properties of Porous Media.1. Introduction.2. Permeability of Porous Media Based on the Bundle of Tortuous Leaky Tubes Model.3. Permeability of Porous Media Undergoing Alteration by Scale Deposition.4. Temperature Effect on Permeability.5. Effects of Other Factors on Permeability.6. Exercises.Chapter 3 Macroscopic Transport Equations.1. Introductiion.2. Representative Elementary Volume.4. Mass-Weighted Volume Averaging Rule.5. Surface-Area Averaging Rules.6. Applications of Volume and Surface Averaging Rules.7. Double-decomposition for Turbulent Processes in Porous Media.8. Tortuosity Effect.9. Macroscopic Transport Equations by Control Volume Analysis.10. Generalized Volume-Averaged Transport Equations.11. Exercises.Chapter 4 Scaling and Correlation of Transport in Porous Media.1. Introduction.2. Dimensional and Inspectional Analyses Methods.3. Scaling.4.Exercises.Chapter 5 Fluid Motion in Porous Media.1. Introduction.2. Flow Potential.3. Modification of Darcy's Law for Bulk- vs. Fluid-Volume Average Pressures.4. Macroscopic Equation of Motion from the Control Volume Approach and Dimensional Analysis.5. Modification of Darcy's Law for the Threshold Pressure Gradient.6. Convenient Formulations of the Forchheimer Equation.7. Determination of the Parameters of the Forchheimer Equation.8. Flow Demarcation Criteria.9. Entropy Generation in Porous Media.10. Viscous Dissipation in Porous Media.11. Generalized Darcy's Law of Control Volume Analysis.12. Equation of Motion for Non-Newtonian Fluids.13. Exercises.Chapter 6 Gas Transport in Tight Porous Media.1. Introduction.2. Gas Flow through a Capillary Hydraulic Tube.3. Relationship between Transports Expressed on Different Bases.4. The Mean-Free-Path of Molecules: Fixed Vs. Variable Cross-Section Hard Sphere.5. The Knudsen Number.6. Flow Regimes and Gas Transport at Isothermal Conditions.7. Gas Transport at Nonisothermal Conditions.8. Unified Hagen-Poiseuille-Type Equation for Apparent Gas Permeability.9. Single-Component Gas Flow.10. Multi-Component Gas Flow.11. Effect of Different Flow Regimes Flow Path-Extended Klinkenberg Equation.12. Effect of Pore-Size Distribution on Gas Flow through Porous Media.13. Exercises.Chapter 7 Fluid Transport through Porous Media.1. Introduction.2. Coupling Single-Phase Mass and Momentum Balance Equations.3. Cylindrical Leaky-Tank Reservoir Model Including the Non-Darcy Effect.4. Coupling Two-Phase Mass and Momentum Balance Equations for Immiscible Displacement.5. Potential Flow Problems in Porous Media.6. Streamline/Streamtube Formulation and Front Tracking.7. Exercises.Chapter 8 Parameters of Fluid Transfer in Porous Media.1. Introduction.2. Wettability and Wettability Index.3. Capillary Pressure.4. Work of Fluid Displacement.5. Temperature Effect on Wettability Related Properties of Porous Media.6. Direct Methods for Determination of Porous Media Flow Functions and Parameters.7. Indirect Methods for Determination of Porous Media Flow Functions and Parameters.8. Exercises.Chapter 9 Mass, Momentum, and Energy Transport in Porous Media.1. Introduction.2. Dispersive Transport of Species in Heterogeneous and Anisotropic Porous Media.3. General Multi-Phase Fully-Compositional Non-Isothermal Mixture Model.4. Formulation of Source/Sink Terms in Conservation Equations.5. Isothermal Black-Oil Model of a Nonvolatile Oil System.6. Isothermal Limited-Compositional Model of a Volatile Oil System.7. Flow of Gas and Vaporizing-Water Phases in the Near-Wellbore Region. 8. Flow of Condensate and Gas-Phase Containing Non-Condensable Gas Species in the Near-Wellbore Region.9. Shape-Averaged Formulations.10. Conductive Heat Transfer with Phase Change.11. Simultaneous Phase Transition and Transport in Porous Media.12. Modeling Non-Isothermal Hydrocarbon Fluid Flow Considering Expansion/Compression and Joule Thomson Effects.13. Exercises.Chapter 10. Suspended Particulate Transport in Porous Media.1. Introduction.2. Deep-Bed Filtration under Non-Isothermal Conditions.3. Cake Filtration over an Effective Filter.4. Exercises.Chapter 11. Transport in Heterogeneous Porous Media.1. Introduction.2. Transport Units and Transport in Heterogeneous Porous Media.3. Models for Transport in Fissured/Fractured Porous Media.4. Species Transport in Fractured Porous Media.5. Immiscible Displacement in Naturally-Fractured Porous Media.6. Method of Weighted Sums (Quadrature) Numerical Solutions.7. Finite-Difference Numerical Solution.8. Exercises.References. |
| Record Nr. | UNINA-9910139645603321 |
Civan Faruk
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| Wiley, 2011 | ||
| Lo trovi qui: Univ. Federico II | ||
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Reservoir Formation Damage : Fundamentals, Modeling, Assessment, and Mitigation
| Reservoir Formation Damage : Fundamentals, Modeling, Assessment, and Mitigation |
| Autore | Civan Faruk |
| Edizione | [4th ed.] |
| Pubbl/distr/stampa | San Diego : , : Elsevier Science & Technology, , 2023 |
| Descrizione fisica | 1 online resource (1097 pages) |
| Disciplina | 622/.338 |
| Soggetto topico | Petroleum - Geology |
| ISBN | 0-323-98473-8 |
| Formato | Materiale a stampa |
| Livello bibliografico | Monografia |
| Lingua di pubblicazione | eng |
| Nota di contenuto |
Front Cover -- Reservoir Formation Damage -- Copyright Page -- Dedication -- Contents -- About the author -- Preface -- 1 Overview of formation damage -- Summary -- 1.1 Introduction -- 1.2 Common formation damage problems, factors, and mechanisms -- 1.3 Completion and fluid damage problems -- 1.4 Supporting subsurface energy storage for global energy transition -- 1.5 Team for understanding and mitigation of formation damage -- 1.6 Objectives of the book -- Exercises -- I. Characterization of reservoir rock for formation damage-reservoir formations, description and characterization, dama... -- 2 Description and characterization of oil and gas reservoirs for formation damage potential -- Summary -- 2.1 Introduction -- 2.2 Origin of petroleum-bearing formations -- 2.3 Types and properties of sedimentary rocks -- 2.4 Operational classification of the constituents of sedimentary rocks -- 2.5 Composition of petroleum-bearing formations -- 2.6 Classification of rock types: depositional, petrographic, and hydraulic -- 2.7 Flow units classification of rock types -- 2.8 Geologic controls on hydrocarbon production -- 2.9 Formation evaluation and reservoir characterization -- Exercises -- 3 Petrographic characteristics of petroleum-bearing formations -- Summary -- 3.1 Introduction -- 3.2 Petrographic characteristics -- 3.2.1 Fabric and texture -- 3.2.2 Porosity -- 3.2.3 Spherical pore space approximation -- 3.2.4 Area open for flow-areosity -- 3.2.5 Tortuosity -- 3.2.6 Interconnectivity of pores-coordination number -- 3.2.7 Pore and pore throat size distributions -- 3.2.7.1 Log-normal distribution -- 3.2.7.2 β-Distribution -- 3.2.7.3 Fractal distribution -- 3.2.7.4 Bimodal distribution -- 3.2.8 Textural parameters -- 3.3 Morphology of dispersed clays in sandstones -- 3.4 Rock damage tendency and formation damage index number -- Exercises.
II. Characterization of the porous media processes for formation damage-porosity and permeability, mineralogy sensitivi... -- 4 Alteration of the porosity and permeability of geologic formations-basic and advanced relationships -- Summary -- 4.1 Introduction -- 4.2 Basic models for permeability of rocks -- 4.2.1 Kozeny-Carman model for unconsolidated packed grains, flow units concept, and reservoir quality index -- 4.2.2 Modified Fair-Hatch equation -- 4.2.3 Panda and Lake modification of the Kozeny-Carman model for consolidated rocks -- 4.2.4 Civan's power-law model for consolidated rocks -- 4.2.5 Multiparameter regression models -- 4.2.6 Network models -- 4.3 Special effects on porosity-permeability relationships -- 4.3.1 Effect of clay morphology -- 4.3.2 Effect of permeability vanishing below threshold porosity -- 4.3.3 Effect of solid deposition on porosity and permeability described by the bundle of tortuous capillary flow tubes model -- 4.3.4 Effect of dissolution-precipitation and stress on porosity and permeability -- 4.3.5 Effect of temperature and formation damage -- 4.3.6 Effect of effective confining stress1 -- 4.4 Advanced permeability equations -- 4.4.1 Porosity and permeability impairment in porous media altered by deposition -- 4.4.1.1 Civan's equation of the first type -- 4.4.1.2 Adin's equation -- 4.4.1.3 Civan's equation of the second type -- 4.4.1.4 Fogler's equation -- 4.4.1.5 Sharma et al. equation -- 4.4.2 Flow efficiency concept -- 4.4.3 Permeability from the plugging-nonplugging parallel pathways model -- 4.5 Variation of the properties of naturally fractured formations under stress and thermal effects -- 4.5.1 Differential stress, effective stress, Biot-Willis poroelastic or effective stress coefficient, and thermo-hydro-mech. 4.5.2 Petrophysical properties of matrix-fracture dual-compressibility naturally fractured porous formations -- 4.5.3 Kinetics-based modified power-law equation of stress and thermal effects on porous formation properties -- 4.5.4 Parameterization of stress and thermal effects on porous formation properties -- Exercises -- 5 Mineral sensitivity of petroleum-bearing formations -- Summary -- 5.1 Introduction -- 5.2 Mineral sensitivity of sedimentary formations -- 5.3 Mechanism of clay swelling -- 5.4 Modeling of clay swelling -- 5.4.1 Osmotic repulsive pressure and Donnan equilibrium -- 5.4.2 Clay swelling coefficient -- 5.4.3 Water absorption rate -- 5.4.4 Kinetics of swelling-related properties and rate equations -- 5.4.5 Basal spacing of clay -- 5.4.6 Water content during clay swelling -- 5.4.7 Time-dependent clay expansion coefficient -- 5.4.8 Porosity reduction by swelling -- 5.4.9 Permeability reduction by swelling -- 5.4.10 Mechanistic modeling of clay swelling -- 5.5 Cation exchange capacity -- 5.6 Physicochemical sensitivity of clayey formation and clay reactivity coefficient -- 5.7 Clay stabilization -- 5.7.1 Inorganic cations -- 5.7.2 Cationic inorganic polymers -- 5.7.3 Cationic organic polymers -- 5.7.4 Oligomers -- 5.7.5 pH-buffer solutions -- 5.7.6 Chemical alteration of clay with KOH -- 5.8 Clay and silt fines -- 5.9 Intense heat treatment -- Exercises -- 6 Petrophysical alterations-fluid disposition, distribution, and entrapment, flow functions, and petrophysical parameters o... -- Summary -- 6.1 Introduction -- 6.2 Dependence of end-point saturations to porosity and permeability -- 6.3 Alteration and temperature dependency of the rock wettability -- 6.4 Alteration of flow functions: capillary pressure and relative permeability -- 6.4.1 Representing the capillary pressure and relative permeability. 6.4.2 Effect of morphology of dispersed clays on capillary pressure and relative permeability in sandstones -- 6.5 Mobility of gas and water phases, entrapment shock-critical phase entrapment condition -- 6.6 Water-blockage in hydraulically created fractures and reservoir formation -- 6.7 Clay swelling by water imbibition -- 6.8 Sensitivity of shale formations to water -- 6.9 Description of shale behavior -- 6.10 Shale swelling and stability -- 6.11 Simplified modeling of processes affecting wellbore stability -- 6.11.1 Pressure diffusion -- 6.11.2 Ion diffusion -- 6.11.3 Front positions -- 6.11.4 Near-wellbore mud-filtrate invasion -- 6.12 Remediation methods -- 6.12.1 Shale instability problems -- 6.12.2 Permeability jail problems -- 6.12.3 Flowback aids -- 6.12.4 Wettability alteration and emulsion and water blocks -- 6.13 Variation of the relative permeability and capillary pressure curves under stress and thermal effects -- 6.13.1 Kinetics-based modified power-law equation of stress and thermal effects on relative permeability and capillary pressure -- 6.13.2 Parameterization of stress and thermal effects on relative permeability and capillary pressure -- Exercises -- 7 Phase equilibria, solubility, and precipitation in porous media -- Summary -- 7.1 Introduction -- 7.2 Types of precipitation -- 7.2.1 Inorganic precipitation -- 7.2.2 Organic precipitation -- 7.3 Solid/liquid equilibrium and solubility equation -- 7.3.1 Solubility equation for molecular solutions -- 7.3.2 Solubility equation for electrolyte solutions -- 7.4 Solid/gas equilibrium and solubility equation -- 7.5 Crystallization phenomena -- 7.5.1 Grain nucleation, growth, and dissolution -- 7.5.2 Crystallization kinetics -- 7.5.3 Saturation ratio or scaling tendency, saturation index or scaling index, critical supersaturation, threshold supersat. 7.5.4 Effect of hydrodynamic mixing on scale formation and inhibition -- 7.6 Particle growth and dissolution in solution -- 7.7 Scale formation and dissolution at the pore surface -- 7.8 Crystal surface pitting and displacement by dissolution -- Exercises -- 8 Particulate processes in porous media -- Summary -- 8.1 Introduction -- 8.2 Particulate processes -- 8.2.1 Internal processes -- 8.2.2 External processes -- 8.3 Properties affecting particles and suspension of particles -- 8.3.1 Interstitial and superficial fluid velocities -- 8.3.2 Drift delay factor for migration of suspended particles -- 8.3.3 Particle concentration -- 8.3.4 Viscosity of fine particle suspensions -- 8.4 Forces acting upon particles -- 8.4.1 Forces related to transport mechanisms -- 8.4.1.1 Inertia force -- 8.4.1.2 Gravity force -- 8.4.1.3 Centrifugal forces -- 8.4.1.4 Diffusion force -- 8.4.1.5 Hydrodynamic force -- 8.4.2 Forces related to attachment mechanisms -- 8.4.2.1 London-van der Waals force -- 8.4.2.2 Friction-drag force and hydrodynamic thinning -- 8.4.3 Forces related to detachment mechanisms -- 8.4.3.1 Shearing force -- 8.4.3.2 Electrostatic double-layer force -- 8.4.3.3 Born repulsion force -- 8.4.3.4 Structural forces -- 8.5 Rate equations for particulate processes in porous matrix -- 8.5.1 Surface deposition -- 8.5.2 Pore filling after pore-throat plugging -- 8.5.3 Filtration coefficient -- 8.5.4 Dislodgment and redeposition of particles at pore throats -- 8.5.5 Plugging of fracture entrances during fines invasion into naturally fractured formations -- 8.5.6 Colloidal release and mobilization, salinity shock, and critical salt concentration -- 8.5.7 Hydraulic erosion and mobilization -- 8.6 Particulate phenomena in multiphase systems -- 8.6.1 Effect of wettability on particle behavior -- 8.6.2 Particle transfer across fluid-fluid interfaces. 8.6.3 Delay in deposition of dispersed phases and precipitates in porous formations. |
| Record Nr. | UNINA-9911006704103321 |
Civan Faruk
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| San Diego : , : Elsevier Science & Technology, , 2023 | ||
| Lo trovi qui: Univ. Federico II | ||
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Reservoir formation damage : fundamentals, modeling, assessment, and mitigation / / Faruk Civan
| Reservoir formation damage : fundamentals, modeling, assessment, and mitigation / / Faruk Civan |
| Autore | Civan Faruk |
| Edizione | [2nd ed.] |
| Pubbl/distr/stampa | Oxford, : Gulf Professional, 2007 |
| Descrizione fisica | 1 online resource (1135 p.) |
| Disciplina | 622.338 |
| Soggetto topico |
Hydrocarbon reservoirs
Petroleum - Geology |
| ISBN |
1-280-96256-9
9786610962563 0-08-047143-9 |
| Formato | Materiale a stampa |
| Livello bibliografico | Monografia |
| Lingua di pubblicazione | eng |
| Nota di contenuto |
Front cover; Title page; Copyright page; Table of contents; PREFACE; ABOUT THE AUTHOR; 1 OVERVIEW OF FORMATION DAMAGE; Summary; 1.1 INTRODUCTION; 1.2 COMMON FORMATION DAMAGE PROBLEMS, FACTORS, AND MECHANISMS; 1.3 TEAM FOR UNDERSTANDING AND MITIGATION OF FORMATION DAMAGE; 1.4 OBJECTIVES OF THE BOOK; Exercises; PART I Characterization of Reservoir Rock for Formation Damage - Mineralogy, Texture, Petrographics, Petrophysics, and Instrumental Techniques; 2 MINERALOGY AND MINERAL SENSITIVITY OF PETROLEUM-BEARING FORMATIONS; Summary; 2.1 INTRODUCTION; 2.2 ORIGIN OF PETROLEUM-BEARING FORMATIONS
2.3 CONSTITUENTS OF SEDIMENTARY ROCKS2.4 COMPOSITION OF PETROLEUM-BEARING FORMATIONS; 2.5 MINERAL SENSITIVITY OF SEDIMENTARY FORMATIONS; 2.6 MECHANISM OF CLAY SWELLING; 2.7 MODELING CLAY SWELLING; 2.8 CATION EXCHANGE CAPACITY; 2.9 SHALE SWELLING AND STABILITY; Exercises; 3 PETROGRAPHICAL CHARACTERISTICS OF PETROLEUM-BEARING FORMATIONS; Summary; 3.1 INTRODUCTION; 3.2 PETROGRAPHICAL CHARACTERISTICS; 3.3 MORPHOLOGY OF DISPERSED CLAYS IN SANDSTONES; 3.4 ROCK DAMAGE TENDENCY AND FORMATION DAMAGE INDEX NUMBER; 3.5 RESERVOIR CHARACTERIZATION; Exercises; 4 PETROPHYSICS - FLOW FUNCTIONS AND PARAMETERS Summary4.1 INTRODUCTION; 4.2 WETTABILITY ALTERATION; 4.3 DEPENDENCE OF END-POINT SATURATIONS TO POROSITY AND PERMEABILITY; 4.4 ALTERATION OF FLOW FUNCTIONS: CAPILLARY PRESSURE AND RELATIVE PERMEABILITY; 4.5 TEMPERATURE DEPENDENCY OF THE ROCK WETTABILITY; 4.6 EFFECT OF TEMPERATURE ON FORMATION DAMAGE; 4.7 EFFECT OF MORPHOLOGY OF DISPERSED CLAYS ON CAPILLARY PRESSURE AND RELATIVE PERMEABILITY IN SANDSTONES; Exercises; 5 POROSITY AND PERMEABILITY RELATIONSHIPS OF GEOLOGICAL FORMATIONS; Summary; 5.1 INTRODUCTION; 5.2 BASIC MODELS FOR PERMEABILITY OF ROCKS; 5.3 SPECIAL EFFECTS 5.4 ADVANCED APPLICATIONSExercises; 6 INSTRUMENTAL AND LABORATORY TECHNIQUES FOR CHARACTERIZATION OF RESERVOIR ROCK; Summary; 6.1 INTRODUCTION; 6.2 FORMATION EVALUATION (FE); 6.3 INSTRUMENTAL LABORATORY TECHNIQUES; Exercises; PART II Characterization of the Porous Media Processes for Formation Damage - Accountability of Phases and Species, Rock-Fluid-Particle Interactions, and Rate Processes; 7 MULTIPHASE AND MULTISPECIES TRANSPORT IN POROUS MEDIA; Summary; 7.1 INTRODUCTION; 7.2 MULTIPHASE AND SPECIES SYSTEMS IN POROUS MEDIA 7.3 ALTERNATIVE EXPRESSIONS OF VARIOUS SPECIES AND FLOW FOR SYSTEMS IN POROUS MEDIA7.4 MULTISPECIES AND MULTIPHASE MACROSCOPIC TRANSPORT EQUATIONS; Exercises; 8 PARTICULATE PROCESSES IN POROUS MEDIA; Summary; 8.1 INTRODUCTION; 8.2 PARTICULATE PROCESSES; 8.3 PROPERTIES AFFECTING PARTICLES; 8.4 FORCES ACTING UPON PARTICLES; 8.5 RATE EQUATIONS FOR PARTICULATE PROCESSES IN POROUS MATRIX; 8.6 PARTICULATE PHENOMENA IN MULTIPHASE SYSTEMS; 8.7 TEMPERATURE EFFECT ON PARTICULATE PROCESSES; Exercises; 9 CRYSTAL GROWTH AND SCALE FORMATION IN POROUS MEDIA1; Summary; 9.1 INTRODUCTION 9.2 TYPES OF PRECIPITATION |
| Record Nr. | UNINA-9911006610003321 |
Civan Faruk
|
||
| Oxford, : Gulf Professional, 2007 | ||
| Lo trovi qui: Univ. Federico II | ||
| ||
Reservoir Formation Damage, Fundamentals, Modeling, Assessment, and Mitigation
| Reservoir Formation Damage, Fundamentals, Modeling, Assessment, and Mitigation |
| Autore | Civan Faruk |
| Pubbl/distr/stampa | [Place of publication not identified], : Gulf Professional Publishing Imprint, 2000 |
| Disciplina | 622/.338 |
| Soggetto topico |
Mechanical Engineering
Engineering & Applied Sciences Metallurgy & Mineralogy |
| ISBN | 0-08-051616-5 |
| Formato | Materiale a stampa |
| Livello bibliografico | Monografia |
| Lingua di pubblicazione | eng |
| Record Nr. | UNINA-9911006734503321 |
Civan Faruk
|
||
| [Place of publication not identified], : Gulf Professional Publishing Imprint, 2000 | ||
| Lo trovi qui: Univ. Federico II | ||
| ||