000797991 000__ 04698cam\a2200529Mu\4500 000797991 001__ 797991 000797991 005__ 20230306143500.0 000797991 006__ m\\\\\o\\d\\\\\\\\ 000797991 007__ cr\cn\nnnunnun 000797991 008__ 170812s2017\\\\gw\\\\\\o\\\\\000\0\eng\d 000797991 019__ $$a1004252233 000797991 020__ $$a9783662550328$$q(electronic book) 000797991 020__ $$a3662550326$$q(electronic book) 000797991 020__ $$z9783662550311 000797991 035__ $$aSP(OCoLC)on1000452371 000797991 035__ $$aSP(OCoLC)1000452371$$z(OCoLC)1004252233 000797991 040__ $$aEBLCP$$beng$$cEBLCP$$dOCLCO$$dN$T$$dGW5XE$$dOCLCF$$dUAB$$dYDX 000797991 049__ $$aISEA 000797991 050_4 $$aTN870.57 000797991 050_4 $$aGB3-5030 000797991 08204 $$a553.2/8$$223 000797991 08204 $$a550 000797991 1001_ $$aYao, Jun. 000797991 24510 $$aFractured Vuggy carbonate reservoir simulation /$$cJun Yao, Zhao-Qin Huang. 000797991 250__ $$a2nd ed. 000797991 260__ $$aBerlin :$$bSpringer,$$cc2017. 000797991 300__ $$a1 online resource (253 pages) 000797991 336__ $$atext$$btxt$$2rdacontent 000797991 337__ $$acomputer$$bc$$2rdamedia 000797991 338__ $$aonline resource$$bcr$$2rdacarrier 000797991 4901_ $$aSpringer Geophysics 000797991 5050_ $$aPreface; Acknowledgements; Contents; 1 Introduction; Abstract; 1.1 Background; 1.2 Characteristics of Fractured Vuggy Carbonate Reservoirs; 1.3 Purpose and Scope; References; 2 Discrete Fracture Model; Abstract; 2.1 Background and the State of the Art; 2.2 Galerkin Finite Element Numerical Simulation; 2.2.1 Discrete Fractured Model; 2.2.2 Two-Phase Flow Mathematical Model; 2.2.3 Finite Element Numerical Formula; 2.2.4 Numerical Examples and Applications; 2.3 Control Volume Method Numerical Simulation; 2.3.1 Two-Phase Flow Control Equations; 2.3.2 Discrete Fracture Mathematical Model 000797991 5058_ $$a2.3.3 Saturation Discontinuity Treatment at the Interface2.3.4 Control Volume Numerical Formulation; 2.3.5 Numerical Examples; 2.4 Mimetic Finite Difference Numerical Simulation; 2.4.1 Two-Phase Fluid Flow Mathematical Model; 2.4.2 Solution Strategies for the Pressure Equation; 2.4.3 The Solution of the Saturation Equation; 2.4.4 Numerical Example; 2.5 The Embedded Discrete Fracture Numerical Simulation; 2.5.1 The Mathematical Model of Embedded Discrete Fracture Model; 2.5.2 Numerical Solution of Mathematical Model; 2.5.3 Numerical Examples; 2.6 Summary and Remarks; References 000797991 5058_ $$a3 Discrete Fracture-Vug Network ModelAbstract; 3.1 Mathematical Models: The State of the Art; 3.1.1 Conventional Continuous Media Model; 3.1.2 Discrete Media Model; 3.1.3 Discrete Fractured-Vuggy Network Model(DFVN); 3.2 The Coupling Theory of Porous Flow-Free Flow; 3.2.1 Coupling Flow Method and Its Surface Condition; 3.2.2 Two Phases Flow of Discrete Fracture-Vug Network; 3.3 Numerical Simulation of Free Flow in Vugs; 3.3.1 Two Impressible Fluids Model; 3.3.2 Time Discrete Formulation; 3.3.3 Operator Splitting Method; 3.3.4 Upwind Finite Element Numerical Calculation Format 000797991 5058_ $$a3.3.5 Examples and Analysis of Numerical Validation3.4 Numerical Simulation of Coupling Seepage Flow-Free Flow; 3.4.1 The Establishment of Discrete Fractured-Vuggy Network Geometry Model; 3.4.2 Two Phases Flow Mathematic Modeling of the Coupling of Seepage Flow-Free Flow; 3.5 Conclusions; References; 4 Equivalent Medium Model; Abstract; 4.1 The Research Status and Trends; 4.2 The Equivalent Process of Fractured Medium; 4.2.1 Brief Introduction to Permeability Tensor; 4.2.2 The Equivalent Permeability Tensor of Fractured Medium; 4.3 The Equivalent Simulation of Fractured-Vuggy Media 000797991 5058_ $$a4.3.1 Equivalent Absolute Permeability Calculation4.3.2 Computation of Pseudo-relative Permeability; 4.4 Numerical Simulation Method for Equivalent Media; 4.4.1 Two-Phase Flow Mathematical Model in Large Scale; 4.4.2 Mixed FEM for Pressure Equation; 4.4.3 FVM for Saturation Equation; 4.4.4 Numerical Examples; 4.5 Summary; References; 5 Hybrid Fracture Model; Abstract; 5.1 Development Characteristics of Fractured Medium; 5.2 Conceptual Model of Seepage; 5.2.1 Continuum Model; 5.2.2 Discrete Fracture Model; 5.2.3 Hybrid Model; 5.3 Types of Coupling Models and Their Realization; 5.3.1 Coupling Model. 000797991 506__ $$aAccess limited to authorized users. 000797991 588__ $$aDescription based on print version record. 000797991 650_0 $$aCarbonate reservoirs$$xMathematical models. 000797991 650_0 $$aPorous materials$$xMathematical models. 000797991 7001_ $$aHuang, Zhao-Qin. 000797991 77608 $$iPrint version:$$aYao, Jun$$tFractured Vuggy Carbonate Reservoir Simulation$$dBerlin, Heidelberg : Springer Berlin Heidelberg,c2017$$z9783662550311 000797991 830_0 $$aSpringer geophysics. 000797991 852__ $$bebk 000797991 85640 $$3SpringerLink$$uhttps://univsouthin.idm.oclc.org/login?url=http://link.springer.com/10.1007/978-3-662-55032-8$$zOnline Access$$91397441.1 000797991 909CO $$ooai:library.usi.edu:797991$$pGLOBAL_SET 000797991 980__ $$aEBOOK 000797991 980__ $$aBIB 000797991 982__ $$aEbook 000797991 983__ $$aOnline 000797991 994__ $$a92$$bISE