Number of the records: 1  

Octree-generated virtual mesh for improved contact resolution in CFD-Dem coupling

  1. 1.
    0560841 - ÚT 2023 CZ eng C - Conference Paper (international conference)
    Studeník, O. - Kotouč Šourek, M. - Isoz, Martin
    Octree-generated virtual mesh for improved contact resolution in CFD-Dem coupling.
    Topical Problems of Fluid Mechanics 2022. Praha: Ústav termomechaniky AV ČR, v. v. i., 2022 - (Šimurda, D.; Bodnár, T.), s. 151-158. ISBN 978-80-87012-77-2. ISSN 2336-5781.
    [Topical problems of fluid mechanics 2022. Praha (CZ), 16.02.2022-18.02.2022]
    R&D Projects: GA MŠMT(CZ) EF15_003/0000493
    Institutional support: RVO:61388998
    Keywords : HFDIB-DEM * CFD * DEM * washcoating * OpenFOAM
    OECD category: Applied mechanics
    http://www2.it.cas.cz/fm2015/im/admin/showfile/data/my/Papers/2022/21-TPFM2022.pdf

    The present work is focused on improving the efficiency of a computational fluid dynamics (CFD) – discrete element method (DEM) solver allowing for computations with non-spherical solids. In general, the combination of CFD and DEM allows for simulations of freely moving solid particles within a computational domain containing fluid. The standard approach of CFD-DEM solvers is to approximate solid bodies by spheres, the geometry of which can be fully defined via its radius and center position. Consequently, the standard DEM contact models are based on an overlap depth between particles, which can be easily evaluated for a sphere-sphere contact. However, for a contact between two non-spherical particles, the overlap depth cannot be used and has to be replaced by the more general overlap volume. The precision of the overlap volume computation is (i) crucial for the correct evaluation of contact forces, and (ii) directly dependent on the computational mesh resolution. Still, the contact volume evaluation in DEM for arbitrarily shaped bodies is usually by at least one order of magnitude more demanding on the mesh resolution than the CFD. In order to improve the computational efficiency of our CFD-DEM solver, we introduce the concept of an OCTREEbased virtual mesh, in which the DEM spatial discretization is adaptively refined while the CFD mesh remains unchanged.
    Permanent Link: https://hdl.handle.net/11104/0334776

     
     
Number of the records: 1  

  This site uses cookies to make them easier to browse. Learn more about how we use cookies.