Numerical simulation of premixed combustion using an enriched finite element method |
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Authors: | Fedderik van der Bos Volker Gravemeier |
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Affiliation: | Emmy Noether Research Group “Computational Multiscale Methods for Turbulent Combustion”, Technische Universität München, Boltzmannstrasse 15, D-85747 Garching, Germany; Institute for Computational Mechanics, Technische Universität München, Boltzmannstrasse 15, D-85747 Garching, Germany |
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Abstract: | In this paper we present a novel discretization technique for the simulation of premixed combustion based on a locally enriched finite element method (FEM). Use is made of the G-function approach to premixed combustion in which the domain is divided into two parts, one part containing the burned and another containing the unburned gases. A level-set or G-function is used to define the flame interface separating burned from unburned gases. The eXtended finite element method (X-FEM) is employed, which allows for velocity and pressure fields that are discontinuous across the flame interface. Lagrange multipliers are used to enforce the correct essential interface conditions in the form of jump conditions across the embedded flame interface. A persisting problem with the use of Lagrange multipliers in X-FEM has been the discretization of the Lagrange multipliers. In this paper the distributed Lagrange multiplier technique is adopted. We will provide results from a spatial convergence analysis showing good convergence. However, a small modification of the interface is required to ensure a unique solution. Finally, results are presented from the application of the method to the problems of moving flame fronts, the Darrieus–Landau instability and a piloted Bunsen burner flame. |
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Keywords: | Premixed combustion Multi-phase flow eXtended finite element methods Lagrange multipliers Distributed Lagrange multipliers Level-set methods |
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