Essential Computational Fluid Dynamics
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Provides a clear, concise, and self-contained introduction to Computational Fluid Dynamics (CFD) This comprehensively updated new edition covers the fundamental concepts and main methods of modern Computational Fluid Dynamics (CFD). With expert guidance and a wealth of useful techniques, the book offers a clear, concise, and accessible account of the essentials needed to perform and interpret a CFD analysis.
The new edition adds a plethora of new information on such topics as the techniques of interpolation, finite volume discretization on unstructured grids, projection methods, and RANS turbulence modeling. The book has been thoroughly edited to improve clarity and to reflect the recent changes in the practice of CFD. It also features a large number of new end-of-chapter problems. All the attractive features that have contributed to the success of the first edition are retained by this version.
The book remains an indispensable guide, which: Introduces CFD to students and working professionals in the areas of practical applications, such as mechanical, civil, chemical, biomedical, or environmental engineering Focuses on the needs of someone who wants to apply existing CFD software and understand how it works, rather than develop new codes Covers all the essential topics, from the basics of discretization to turbulence modeling and uncertainty analysis Discusses complex issues using simple worked examples and reinforces learning with problems Is accompanied by a website hosting lecture presentations and a solution manual Essential Computational Fluid Dynamics, Second Edition is an ideal textbook for senior undergraduate and graduate students taking their first course on CFD.
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- Wiley Global Research (STMS)
- 9781119474814
- 9781119474623
- ePub
- 2
- Oleg Zikanov
- English
- 2019-08-30
- 100
- 10
- 2
Kaflar
- Cover
- Dedication
- Preface
- About the Companion Website
- Chapter 1: What Is CFD?
- 1.1 Introduction
- 1.2 Brief History of CFD
- 1.3 Outline of the Book
- Bibliography
- Part I: Fundamentals
- Chapter 2: Governing Equations of Fluid Dynamics and Heat Transfer
- 2.1 Preliminary Concepts
- 2.2 Conservation Laws
- 2.3 Equation of State
- 2.4 Equations of Integral Form
- 2.5 Equations in Conservation Form
- 2.6 Equations in Vector Form
- 2.7 Boundary Conditions
- 2.8 Dimensionality and Time Dependence
- Bibliography
- Problems
- Chapter 3: Partial Different Equations
- 3.1 Model Equations: Formulation of a PDE Problem
- 3.2 Mathematical Classification of PDEs of Second Order
- 3.3 Numerical Discretization: Different Kinds of CFD
- Bibliography
- Chapter 4: Finite Difference Method
- 4.1 Computational Grid
- 4.2 Finite Difference Approximation
- 4.3 Development of Finite Difference Schemes
- 4.4 Finite Difference Approximation of Partial Differential Equations
- Bibliography
- Chapter 5: Finite Volume Schemes
- 5.1 Introduction and General Formulation
- 5.2 Approximation of Integrals
- 5.3 Methods of Interpolation
- 5.4 Finite Volume Method on Unstructured Grids
- 5.5 Implementation of Boundary Conditions
- Bibliography
- Problems
- Chapter 6: Numerical Stability for Marching Problems
- 6.1 Introduction and Definition of Stability
- 6.2 Stability Analysis
- 6.3 Implicit Versus Explicit Schemes – Stability and Efficiency Considerations
- Bibliography
- Problems
- Part I: Methods
- Chapter 7: Application to Model Equations
- 7.1 Linear Convection Equation
- 7.2 One‐Dimensional Heat Equation
- 7.3 Burgers and Generic Transport Equations
- 7.4 Method of Lines
- 7.5 Solution of Tridiagonal Systems by Thomas Algorithm
- Bibliography
- Problems
- Chapter 8: Steady‐State Problems
- 8.1 Problems Reducible to Matrix Equations
- 8.2 Direct Methods
- 8.3 Iterative Methods
- 8.4 Systems of Nonlinear Equations
- 8.5 Computational Performance
- Bibliography
- Chapter 9: Unsteady Compressible Fluid Flows and Conduction Heat Transfer
- 9.1 Introduction
- 9.2 Compressible Flows
- 9.3 Unsteady Conduction Heat Transfer
- Bibliography
- Problems
- Chapter 10: Incompressible Flows
- 10.1 General Considerations
- 10.2 Discretization Approach
- 10.3 Projection Method for Unsteady Flows
- 10.4 Projection Methods for Steady‐State Flows
- 10.5 Other Methods
- Bibliography
- Problems
- Part III: ART of CFD
- Chapter 11: Turbulence
- 11.1 Introduction
- 11.2 Direct Numerical Simulation (DNS)
- 11.3 Reynolds‐Averaged Navier–Stokes (RANS) Models
- 11.4 Large Eddy Simulation (LES)
- Bibliography
- Problems
- Chapter 12: Computational Grids
- 12.1 Introduction: Need for Irregular and Unstructured Grids
- 12.2 Irregular Structured Grids
- 12.3 Unstructured Grids
- 12.4 Adaptive Grids
- Bibliography
- Problems
- Chapter 13: Conducting CFD Analysis
- 13.1 Overview: Setting and Solving a CFD Problem
- 13.2 Errors and Uncertainty
- Bibliography
- Problems
- Index
- End User License Agreement