Computational Transport Phenomena
Numerical Methods for the Solution of Transport Problems
$273.00 (X)
- Authors:
- W. E. Schiesser, Lehigh University, Pennsylvania
- C. A. Silebi, Lehigh University, Pennsylvania
- Date Published: August 1997
- availability: Available
- format: Hardback
- isbn: 9780521553780
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273.00
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Computational techniques have become indispensable tools in solving complex problems in transport phenomena. This book provides a clear, user-oriented introduction to the subject of computational transport phenomena. Each self-contained chapter includes a detailed worked example and a discussion of the problem system equations. Also included are the numerical methods used; computer code for the solution of the problem system equations; discussion of the numerical solution with emphasis on physical interpretation; and, when appropriate, a comparison of the numerical solution with an analytical solution or a discussion of how the numerical solution goes beyond what can be done analytically, especially for nonlinear problems. Intended for students and a broad range of scientists and engineers, the book includes computer code written in transportable Fortran so the reader can produce the numerical solutions and then extend them to other cases.
Read more- Emphasis is on 'how to' - each chapter includes a worked example and discussion
- Programmes available on the WWW so that readers can reproduce programs in the book or apply the programmes to new problems
- Each chapter is self-contained; readers can select topic of interest
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×Product details
- Date Published: August 1997
- format: Hardback
- isbn: 9780521553780
- length: 470 pages
- dimensions: 262 x 186 x 30 mm
- weight: 1.075kg
- contains: 50 b/w illus.
- availability: Available
Table of Contents
M1. Laminar boundary layer flow
M2. Unsteady laminar flow in a circular tube
M3. Nonlinear, front-sharpening convective systems
H1. Heat conduction in a semi infinite system
H2. One-dimensional heat conduction
H3. Heat transfer in a circular fin
H4. Graetz problem with constant wall heat flux
H5. Graetz problem with constant wall temperature
H6. Heat exchanger dynamics
MA1. Dynamic mass transfer model
MA2. Mass transfer with simultaneous convection and diffusion
MA3. Transient multicomponent diffusion. (M - momentum transfer
H - heat transfer
MA - mass transfer and chemical reaction).
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