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Understanding Fluid Flow

£21.99

Part of AIMS Library of Mathematical Sciences

  • Date Published: January 2010
  • availability: Available
  • format: Paperback
  • isbn: 9780521132893

£ 21.99
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About the Authors
  • Understanding Fluid Flow takes a fresh approach to introducing fluid dynamics, with physical reasoning and mathematical developments inextricably intertwined. The 'dry' fluid dynamics described by potential theory is set within the context of real viscous flows to give fundamental insight into how fluids behave. The book gives a flavour of theoretical, experimental and numerical approaches to analysing fluid flow, and implicitly develops skills in applied mathematical modelling of physical systems. It is supplemented by movies that are freely downloadable.

    • A fresh view of fluid dynamics, starting with experiment and developing a proper understanding of the roles of viscosity and pressure
    • Short, explains some 'everyday' questions in fluid dynamics: lift on an airfoil, waves, honey spreading on toast, aerodynamic drag
    • Encourages self discovery, via accompanying videos of experiments
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    Product details

    • Date Published: January 2010
    • format: Paperback
    • isbn: 9780521132893
    • length: 120 pages
    • dimensions: 211 x 140 x 10 mm
    • weight: 0.16kg
    • contains: 20 b/w illus.
    • availability: Available
  • Table of Contents

    Preface
    1. Building intuition
    2. Parallel viscous flow
    3. Viscous gravity currents
    4. Equations of flow
    5. Interactions between linear flows
    6. Flows round rigid objects
    7. Waves and instability
    Bibliography
    Index.

  • Resources for

    Understanding Fluid Flow

    Grae Worster

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  • Instructors have used or reviewed this title for the following courses

    • Viscous Fluid Flow
    • fluid mechanics I and ll
  • Author

    Grae Worster, University of Cambridge
    Grae Worster studied Mathematics at Cambridge University and gained a PhD in Geological Fluid Mechanics. He was an Instructor in Applied Mathematics at MIT, a Research Fellow at Trinity College, Cambridge and an Assistant Professor at Northwestern University before finally returning to Cambridge University in 1992, where he is Professor of Fluid Dynamics. Within the Institute of Theoretical Geophysics, his research encompasses the dynamics of buoyancy-driven flows associated with solidification and melting.

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