Uncertainty Quantification in Computational Fluid Dynamics edited by Hester Bijl, Didier Lucor, Siddhartha Mishra, Christoph Schwab.

Fluid flows are characterized by uncertain inputs such as random initial data, material and flux coefficients, and boundary conditions. The current volume addresses the pertinent issue of efficiently computing the flow uncertainty, given this initial randomness. It collects seven original review art...

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Bibliographic Details
Corporate Author: SpringerLink (Online service)
Other Authors: Bijl, Hester (Editor), Lucor, Didier (Editor), Mishra, Siddhartha (Editor), Schwab, Christoph (Editor)
Format: eBook
Language:English
Published: Cham : Springer International Publishing : Imprint: Springer, 2013.
Edition:1st ed. 2013.
Series:Lecture Notes in Computational Science and Engineering, 92
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Description
Summary:Fluid flows are characterized by uncertain inputs such as random initial data, material and flux coefficients, and boundary conditions. The current volume addresses the pertinent issue of efficiently computing the flow uncertainty, given this initial randomness. It collects seven original review articles that cover improved versions of the Monte Carlo method (the so-called multi-level Monte Carlo method (MLMC)), moment-based stochastic Galerkin methods and modified versions of the stochastic collocation methods that use adaptive stencil selection of the ENO-WENO type in both physical and stochastic space. The methods are also complemented by concrete applications such as flows around aerofoils and rockets, problems of aeroelasticity (fluid-structure interactions), and shallow water flows for propagating water waves. The wealth of numerical examples provide evidence on the suitability of each proposed method as well as comparisons of different approaches.
Physical Description:XI, 333 p. 188 illus., 115 illus. in color. online resource.
ISBN:9783319008851
ISSN:1439-7358 ;
DOI:10.1007/978-3-319-00885-1