dc.creatorÁlvarez Guadamuz, Mario Andrés
dc.creatorGatica Pérez, Gabriel Nibaldo
dc.creatorRuiz Baier, Ricardo
dc.date.accessioned2022-10-26T20:18:23Z
dc.date.accessioned2023-03-13T12:40:33Z
dc.date.available2022-10-26T20:18:23Z
dc.date.available2023-03-13T12:40:33Z
dc.date.created2022-10-26T20:18:23Z
dc.date.issued2016
dc.identifierhttps://www.esaim-m2an.org/articles/m2an/abs/2016/06/m2an150178/m2an150178.html
dc.identifier1789-1816
dc.identifierhttps://hdl.handle.net/10669/87558
dc.identifier10.1051/m2an/2016007
dc.identifier.urihttps://repositorioslatinoamericanos.uchile.cl/handle/2250/6118570
dc.description.abstractIn this paper we develop an a posteriori error analysis for an augmented mixed-primal finite element approximation of a stationary viscous flow and transport problem. The governing system corresponds to a scalar, nonlinear convection-diffusion equation coupled with a Stokes problem with variable viscosity, and it serves as a prototype model for sedimentation-consolidation processes and other phenomena where the transport of species concentration within a viscous fluid is of interest. The solvability of the continuous mixed-primal formulation along with a priori error estimates for a finite element scheme using Raviart−Thomas spaces of order k for the stress approximation, and continuous piecewise polynomials of degree ≤ k + 1 for both velocity and concentration, have been recently established in [M. Alvarez et al., ESAIM: M2AN 49 (2015) 1399–1427]. Here we derive two efficient and reliable residual-based a posteriori error estimators for that scheme: for the first estimator, and under suitable assumptions on the domain, we apply a Helmholtz decomposition and exploit local approxi- mation properties of the Cl ́ement interpolant and Raviart−Thomas operator to show its reliability. On the other hand, its efficiency follows from inverse inequalities and the localization arguments based on triangle-bubble and edge-bubble functions. Secondly, an alternative error estimator is proposed, whose reliability can be proved without resorting to Helmholtz decompositions. Our theoretical results are then illustrated via some numerical examples, highlighting also the performance of the scheme and properties of the proposed error indicators
dc.languageeng
dc.sourceMathematical Modelling and Numerical Analysis, 50(6), p. 1789-1816.
dc.subjectStokes-transport coupled problem
dc.subjectViscous flow
dc.subjectAugmented mixed-primal formulation
dc.subjectSedimentation- consolidation process
dc.subjectFinite element methods
dc.subjectA posteriori error analysis
dc.subjectvariable viscosity
dc.titleA posteriori error analysis for a viscous flow-transport problem
dc.typeartículo científico


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