An Eulerian/Lagrangian method for the numerical simulation of incompressible convection flows interacting with complex obstacles: application to the natural convection in the Lascaux cave
DOI10.1016/j.ijheatmasstransfer.2008.12.028zbMath1167.80345OpenAlexW2054033034MaRDI QIDQ2270906
Stéphane Vincent, Delphine Lacanette, Philippe Malaurent, Arthur Sarthou, Jean Paul Caltagirone
Publication date: 29 July 2009
Published in: International Journal of Heat and Mass Transfer (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1016/j.ijheatmasstransfer.2008.12.028
natural convectionincompressible flowspenalty methodsfictitious domainsEulerian/Lagrangian grid couplingLascaux cave
Navier-Stokes equations for incompressible viscous fluids (76D05) Flows in porous media; filtration; seepage (76S05) Finite volume methods applied to problems in fluid mechanics (76M12) Free convection (76R10)
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Cites Work
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- Accurate solutions to the square thermally driven cavity at high Rayleigh number
- Modeling three-dimensional multiphase flow using a level contour reconstruction method for front tracking without connectivity
- A one-cell local multigrid method for solving unsteady incompressible multiphase flows
- A natural extension of the conventional finite volume method into polygonal unstructured meshes for CFD application
- A new high-order immersed interface method for solving elliptic equations with imbedded interface of discontinuity
- A general fictitious domain method with immersed jumps and multilevel nested structured meshes
- An adaptative augmented Lagrangian method for three-dimensional multimaterial flows
- Numerical Calculation of Time-Dependent Viscous Incompressible Flow of Fluid with Free Surface
- The immersed boundary method
- Bi-CGSTAB: A Fast and Smoothly Converging Variant of Bi-CG for the Solution of Nonsymmetric Linear Systems
- A class of first order factorization methods
- Numerical modelling of solid particle motion using a new penalty method
- Eulerian–Lagrangian grid coupling and penalty methods for the simulation of multiphase flows interacting with complex objects
- A distributed Lagrange multiplier/fictitious domain method for particulate flows
- Local penalty methods for flows interacting with moving solids at high Reynolds numbers
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