Stabilized Petrov-Galerkin methods for the convection-diffusion-reaction and the Helmholtz equations

dc.contributor
Agència de Gestió d'Ajuts Universitaris i de Recerca
dc.contributor
Centro Internacional de Métodos Numéricos en Ingeniería
dc.contributor.author
Nadukandi, Prashanth
dc.date.accessioned
2010-11-30T08:29:02Z
dc.date.available
2010-11-30T08:29:02Z
dc.date.created
2010-01-26
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2010-11-30T08:29:02Z
dc.identifier.uri
http://hdl.handle.net/2072/97194
dc.description.abstract
We present two new stabilized high-resolution numerical methods for the convection–diffusion–reaction (CDR) and the Helmholtz equations respectively. The work embarks upon a priori analysis of some consistency recovery procedures for some stabilization methods belonging to the Petrov–Galerkin framework. It was found that the use of some standard practices (e.g. M-Matrices theory) for the design of essentially non-oscillatory numerical methods is not feasible when consistency recovery methods are employed. Hence, with respect to convective stabilization, such recovery methods are not preferred. Next, we present the design of a high-resolution Petrov–Galerkin (HRPG) method for the 1D CDR problem. The problem is studied from a fresh point of view, including practical implications on the formulation of the maximum principle, M-Matrices theory, monotonicity and total variation diminishing (TVD) finite volume schemes. The current method is next in line to earlier methods that may be viewed as an upwinding plus a discontinuity-capturing operator. Finally, some remarks are made on the extension of the HRPG method to multidimensions. Next, we present a new numerical scheme for the Helmholtz equation resulting in quasi-exact solutions. The focus is on the approximation of the solution to the Helmholtz equation in the interior of the domain using compact stencils. Piecewise linear/bilinear polynomial interpolation are considered on a structured mesh/grid. The only a priori requirement is to provide a mesh/grid resolution of at least eight elements per wavelength. No stabilization parameters are involved in the definition of the scheme. The scheme consists of taking the average of the equation stencils obtained by the standard Galerkin finite element method and the classical finite difference method. Dispersion analysis in 1D and 2D illustrate the quasi-exact properties of this scheme. Finally, some remarks are made on the extension of the scheme to unstructured meshes by designing a method within the Petrov–Galerkin framework.
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8 p.
ca
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185831 bytes
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application/pdf
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eng
ca
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Els ajuts de l'AGAUR;2006FI00836
dc.rights
Aquest document està subjecte a una llicència d'ús de Creative Commons, amb la qual es permet copiar, distribuir i comunicar públicament l'obra sempre que se'n citin l'autor original i l’Agència i no se'n faci cap ús comercial ni obra derivada, tal com queda estipulat en la llicència d'ús (http://creativecommons.org/licenses/by-nc-nd/2.5/es/)
cat
dc.subject.other
Galerkin, Mètodes de
ca
dc.subject.other
Elements finits, Mètode dels
ca
dc.title
Stabilized Petrov-Galerkin methods for the convection-diffusion-reaction and the Helmholtz equations
ca
dc.type
info:eu-repo/semantics/report
ca
dc.subject.udc
51
ca


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