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Implicit preconditioned numerical schemes for the simulation of three-dimensional barotropic flows: 3 (Publications of the Scuola Normale Superiore)

Implicit preconditioned numerical schemes for the simulation of three-dimensional barotropic flows: 3 (Publications of the Scuola Normale Superiore)

Implicit preconditioned numerical schemes for the simulation of
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Implicit preconditioned numerical schemes for the simulation of three-dimensional barotropic flows: 3 (Publications of the Scuola Normale Superiore) Papeback - 2007 - 1st Edition

by Edoardo Sinibaldi

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Scuola Normale Superiore , pp. xvii + 206 2007th edition . Papeback. New.
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  • Title Implicit preconditioned numerical schemes for the simulation of three-dimensional barotropic flows: 3 (Publications of the Scuola Normale Superiore)
  • Author Edoardo Sinibaldi
  • Binding Papeback
  • Edition number 1st
  • Edition 1
  • Condition New
  • Pages 206
  • Volumes 1
  • Language ENG
  • Publisher Scuola Normale Superiore
  • Publication date pp. xvii + 206 2007th edition
  • Illustrated Yes
  • Features Bibliography, Illustrated, Index, Table of Contents
  • Bookseller's Inventory # 6471648
  • ISBN 9788876423109 / 8876423109
  • Weight 0.95 lbs (0.43 kg)
  • Dimensions 9.4 x 5.9 x 0.7 in (23.88 x 14.99 x 1.78 cm)
  • Category Mathematics
  • Library of Congress Catalogue Number 2008372994
  • Dewey Decimal Code 530
  • Quantity available 1

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From the publisher

Starting from a specific industrial problem related to the propellant flow within a liquid propellant rocket engine, a numerical method for simulating three-dimensional, generic barotropic flows in rotating frames is developed. A novel finite volume compressible approach for unstructured grids is proposed, suitably preconditioned for accurately dealing with nearly-incompressible flows. The time-advancing is performed by a novel, generic, linearized implicit scheme. A constructive procedure for solving the one-dimensional Riemann problem associated with a generic convex barotropic state law is presented as well. All the proposed numerical ingredients are validated against one-dimensional exact solutions or three-dimensional experimental data related to complex, industrial flows also involving cavitation phenomena.

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