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  4. Kernel-based stochastic collocation for the random two-phase navier-stokes equations
 
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2019
Journal Article
Title

Kernel-based stochastic collocation for the random two-phase navier-stokes equations

Abstract
In this work, we apply stochastic collocation methods with radial kernel basis functions for an uncertainty quantification of the random incompressible two-phase Navier-Stokes equations. Our approach is nonintrusive and we use the existing fluid dynamics solver NaSt3DGPF to solve the incompressible two-phase Navier-Stokes equation for each given realization. We are able to empirically show that the resulting kernel-based stochastic collocation is highly competitive in this setting and even outperforms some other standard methods.
Author(s)
Griebel, Michael  
Rieger, Christian
Zaspel, Peter
Journal
International journal for uncertainty quantification  
Funder
Deutsche Forschungsgemeinschaft DFG  
Open Access
DOI
10.1615/Int.J.UncertaintyQuantification.2019029228
Language
English
Fraunhofer-Institut für Algorithmen und Wissenschaftliches Rechnen SCAI  
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