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  • Analysis of Transport Phenomena

    Analysis of Transport Phenomena by Deen, William M.;

    Series: Topics in Chemical Engineering;

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    Product details:

    • Publisher OUP USA
    • Date of Publication 26 March 1998

    • ISBN 9780195084948
    • Binding Hardback
    • No. of pages618 pages
    • Size 243x169x34 mm
    • Weight 1172 g
    • Language English
    • Illustrations line figures, tables
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    Short description:

    Analysis of Transport Phenomena is intended mainly as a text for graduate-level courses in transport phenomena for chemical engineers. Among the analytical methods discussed are scaling, similarity, perturbation, and finite Fourier transform techniques. The physical topics include conduction and diffusion in stationary media, fluid mechanics, forced- and free-convection heat and mass transfer, and multicomponent energy and mass transfer.

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    Long description:

    Analysis of Transport Phenomena is intended mainly as a text for graduate-level courses in transport phenomena for chemical engineers. Among the analytical methods discussed are scaling, similarity, perturbation, and finite Fourier transform techniques. The physical topics include conduction and diffusion in stationary media, fluid mechanics, forced- and free-convection heat and mass transfer, and multicomponent energy and mass transfer.

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    Table of Contents:

    Chapter 1 Diffusive Fluxes and Material Properties
    Introduction
    Basic Constitutive Equations
    Diffusivities for Energy, Species, and Momentum
    Magnitudes of Transport Coefficients
    Molecular Interpretations of Transport Coefficients
    Continuum Approximation
    References
    Problems
    Chapter 2 Conservation Equations and the Fundamentals of Heat and Mass Tansfer
    Introduction
    General Forms of Conservation Equations
    Conservation of Mass
    Conservation of Energy
    Heat Transfer at Interfaces
    Conservation of Chemical Species
    Mass Transfer at Interfaces
    One-Dimensional Examples
    Species Conservation from a Molecular Viewpoint
    References
    Problems
    Chapter 3 Scaling and Approximation Techniques
    Introduction
    Scaling
    Reductions in Dimensionality
    Simplifications Based on Time Scales
    Similarity Method
    Regular Perturbation Analysis
    Singular Perturbation Analysis
    Integral Approximation Method
    References
    Problems
    Chapter 4 Solution Methods for Conduction and Diffusion Problems
    Introduction
    Fundamentals of the Finite Fourier Transform (FFT) Method
    Basis Functions as Solutions to Eigenvalue Problems
    Representation of an Arbitrary Function Using Orthonormal Functions
    FFT Method for Problems in Rectangular Coordinates
    Self-Adjoint Eigenvalue Problems and Sturm-Liouville Theory
    FFT Method for Problems in Cylindrical Coordinates
    FFT Method for Poblems in Spherical Coordinates
    Point-Source Solutions
    Integral Representations
    References
    Problems
    Chapter 5 Fundamentals of Fluid Mechanics
    Introduction
    Fluid Kinetics
    Conservation of Momentum
    Total Stress, Pressure, and Viscous Stress
    Fluid Statics
    Constitutive Equations for the Viscous Stress
    Fluid Mechanics at Interfaces
    Dynamic Pressure
    Stream function
    Nondimensionalization and Simplification of the Navier-Stokes Equation
    Tables
    References
    Problems
    Chapter 6 Unidirectional and Nearly Unidirectional Flow
    Introduction
    Steady Flow with a Pressure Gradient
    Steady Flow with a Moving Surface
    Time-Dependent Flow
    Limitations of Exact Solutions
    Lubrication Approximation
    References
    Problems
    Chapter 7 Creeping Flow
    Introduction
    General Features of Low Reynolds Number Flow
    Unidirectional and Nearly Unidirectional Solutions
    Stream Function Solutions
    Point-Force Solutions
    Particle Motion and Suspension Viscosity
    Corrections to Stokes' Law
    References
    Problems
    Chapter 8 Laminar Flow at High Reynolds Number
    Introduction
    General Features of High Reynolds Number Flow
    Irrotational Flow
    Boundary Layers Near Solid Surfaces
    Internal Boundary Layers
    References
    Problems
    Chapter 9 Forced-Convection Heat and Mass Transfer in Confined Laminar Flows
    Introduction
    Peclet Number
    Nusselt and Sherwood Numbers
    Entrance Region
    Fully Developed Region
    Conservation of Energy: Mechanical Effects
    Taylor Dispersion
    References
    Problems
    Chapter 10 Forced-Convection Heat and Mass Transfer in Unconfined Laminar Flows
    Introduction
    Heat and Mass Transfer in Creeping Flow
    Heat and Mass Transfer in Laminar Boundary Layers
    Scaling Laws for Nusselt and Sherwood Numbers
    References
    Problems
    Chapter 11 Multicomponent Energy and Mass Transfer
    Introduction
    Conservation of Energy: Multicomponent Systems
    Simultaneous Heat and Mass Transfer
    Introduction to Coupled Fluxes
    Stefan-Maxwell Equations
    Generalized Diffusion in Dilute Mixtures
    Transport in Electrolyte Solutions
    Generalized Stefan-Maxwell Equations
    References
    Problems
    Chapter 12 Transport in Buoyancy-Driven Flow
    Introduction
    Buoyancy and the Boussinesq Approximation
    Confined Flows
    Dimensional Analysis and Boundary Layer Equations
    Unconfined Flows
    References
    Problems
    Chapter 13 Transport in Turbulent Flow
    Introduction
    Basic Features of Turbulence
    Time-Smoothed Equations
    Eddy Diffusivity Models
    Other Approaches for Turbulent Flow Calculations
    References
    Appendix: Vectors and Tensors
    Introduction
    Representation of Vectors and Tensors
    Vector and Tensor Products
    Vector Differential Operators
    Integral Transformations
    Position Vectors
    Orthogonal Curvilinear Coordinates
    Surface Geometry
    References

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