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More About This Textbook
Overview
Extensively revised and thoroughly updated, this popular text de-emphasizes high level mathematics in favor of effective, accurate modeling. Real-world examples amplify the theory and show how to use derived equations to model physical problems. Exercises that parallel the examples build readers' confidence and prepare them to confront the more complex situations they encounter as professionals.
Heat transfer problems in multiphase systems arise in a range of applications and disciplines, including heat exchangers, power generation, and materials processing. For the first time in one book, Heat Transfer in Single and Multiphase Systems covers the fundamentals of heat transfer and addresses all types of multiphase systems. This unified treatment allows readers to better appreciate the analogies, similarities, and common themes of multiphase systems. For each class of multiphase flow, the author discusses terminology, flow classifications, two-phase flow maps, and a range of solution techniques for multiphase problems, including differential, integral, and computation methods.
Editorial Reviews
From The Critics
Naterer (mechanical and industrial engineering, University of Manitoba) describes the principles of heat transfer as they apply to engineering. The upper-level textbook begins with the equations governing conduction, convective, and radiative heat transfer, then presents detailed formulations for each specific type of multiphase system. Heat exchangers and computational heat transfer round out the text. Annotation c. Book News, Inc., Portland, ORProduct Details
Related Subjects
Table of Contents
INTRODUCTION
Vector and Tensor Notations Fundamental Concepts and Definitions Eulerian and Lagrangian Descriptions Properties of a System Conductive Heat Transfer Convective Heat Transfer Radiation Heat Transfer Phase Change Heat Transfer Conservation of Energy Problems
CONDUCTION HEAT TRANSFER
Introduction One-Dimensional Heat Conduction Thermal and Contact Resistances Fins and Extended Surfaces Multidimensional Heat Conduction Graphical Solution Methods Analytical Methods Transient Heat Conduction Combined Transient and Spatial Effects References Problems
CONVECTIVE HEAT TRANSFER
Introduction Convection Governing Equations Velocity and Thermal Boundary Layers External Forced Convection Internal Forced Convection Free Convection Second Law of Thermodynamics Turbulence Modelling References Problems
RADIATIVE HEAT TRANSFER
Introduction Fundamental Processes and Equations Radiation Exchange Between Surfaces Thermal Radiation in Enclosures with Diffuse Gray Surfaces Solar Energy References Problems
PHASE CHANGE HEAT TRANSFER
Introduction Processes of Phase Change Mixture and Two-Fluid Formulations Interface Tracking References Problems
GAS (VAPOR) – LIQUID SYSTEMS
Introduction Boiling Heat Transfer Condensation Heat Transfer Devices with Vapor - Liquid Phase Change References Problems
GAS - SOLID (PARTICLE) SYSTEMS
Introduction Classification of Gas - Solid Flows Dynamics of Gas - Solid Flows Fluidized Beds References Problems
LIQUID – SOLID SYSTEMS
Introduction One-Dimensional Solidification and Melting Phase Change with Convection Phase Change with Coupled Heat and Mass Transfer Problems in Other Geometries Multi-Dimensional Solidification and Melting Dynamics of Liquid - Solid Flows Applications References Problems
GAS –LIQUID – SOLID SYSTEMS
Introduction Droplet Flows with Phase Change Gas Flows with Solidification and Melting Chemically Reacting Systems Multiphase Byproducts of Reacting Flows References Problems
HEAT EXCHANGERS
Introduction Tubular Heat Exchangers Cross-Flow and Shell-and-Tube Heat Exchangers Effectiveness – NTU Method of Analysis Condensers and Evaporators References Problems
COMPUTATIONAL HEAT TRANSFER
Finite Difference Methods Weighted Residual Methods Finite Element Method Hybrid Methods Numerical Methods for Other Applications Accuracy and Efficiency Improvements References Problems
APPENDICES
INDEX