TY - GEN A1 - Cousins, Ben A1 - Le Borne, Sabine A1 - Linke, Alexander A1 - Rebholz, Leo G. A1 - Wang, Zhen T1 - On incompressible flow simulations using Scott-Vogelius finite elements N2 - Recent research has shown that in some practically relevant situations like multi-physics flows[11] divergence-free mixed finite elements may have a significantly smaller discretization error than standard non-divergence-free mixed finite elements. In order to judge the overall performance of divergence-free mixed finite elements, we investigate linear solvers for the saddle point linear systems arising in $((P_k)^d,P_{k-1}^{disc})$ Scott-Vogelius finite element implementations of the incompressible Navier-Stokes equations. We investigate both direct and iterative solver methods. Due to discontinuous pressure elements in the case of Scott-Vogelius elements, considerably more solver strategies seem to deliver promising results than in the case of standard mixed finite elements like Taylor-Hood elements. For direct methods, we extend recent preliminary work using sparse banded solvers on the penalty method formulation to finer meshes, and discuss extensions. For iterative methods, we test augmented Lagrangian and H-LU preconditioners with GMRES, on both full and statically condensed systems. Several numerical experiments are provided that show these classes of solvers are well suited for use with Scott-Vogelius elements, and could deliver an interesting overall performance in several applications. KW - Navier-Stokes equations KW - mixed finite elements KW - Scott-Vogelius element KW - direct linear solver KW - iterative linear solver Y1 - 2012 UR - https://opus4.kobv.de/opus4-matheon/frontdoor/index/index/docId/1166 UR - https://nbn-resolving.org/urn:nbn:de:0296-matheon-11661 ER -