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Modelling Drying Processes: A Reaction Engineering Approach

Modelling Drying Processes: A Reaction Engineering Approach

Modelling Drying Processes: A Reaction Engineering Approach
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Modelling Drying Processes: A Reaction Engineering Approach Hardback - 2013

by Chen, Xiao Dong

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Details

  • Title Modelling Drying Processes: A Reaction Engineering Approach
  • Author Chen, Xiao Dong
  • Binding Hardback
  • Condition Used - Good
  • Pages 252
  • Volumes 1
  • Language ENG
  • Publisher Cambridge University Press
  • Publication date 2013-05-23
  • Features Bibliography, Index
  • Bookseller's Inventory # 1107012104.G
  • ISBN 9781107012103 / 1107012104
  • Weight 1.4 lbs (0.64 kg)
  • Dimensions 9.8 x 6.9 x 0.7 in (24.89 x 17.53 x 1.78 cm)
  • Themes
    • Aspects (Academic): Science/Technology Aspects
  • Category Technology & Industrial Arts
  • Library of Congress subjects Drying, Food - Drying
  • Library of Congress Catalogue Number 2013003983
  • Dewey Decimal Code 664.028
  • Quantity available 1

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Reader reviews for Modelling Drying Processes: A Reaction Engineering Approach

From the publisher

This comprehensive summary of the state-of-the-art and the ideas behind the reaction engineering approach (REA) to drying processes is an ideal resource for researchers, academics and industry practitioners. Starting with the formulation, modelling and applications of the lumped-REA, it goes on to detail the use of the REA to describe local evaporation and condensation, and its coupling with equations of conservation of heat and mass transfer, called the spatial-REA, to model non-equilibrium multiphase drying. Finally, it summarises other established drying models, discussing their features, limitations and comparisons with the REA. Application examples featured throughout help fine-tune the models and implement them for process design, and the evaluation of existing drying processes and product quality during drying. Further uses of the principles of REA are demonstrated, including computational fluid dynamics-based modelling, and further expanded to model other simultaneous heat and mass transfer processes.
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