Three-Dimensional Navier-Stokes Calculations Using the Modified Space-Time CESE Method
Author(s) -
ChauLyan Chang
Publication year - 2007
Publication title -
nasa sti repository (national aeronautics and space administration)
Language(s) - English
Resource type - Conference proceedings
DOI - 10.2514/6.2007-5818
Subject(s) - robustness (evolution) , polygon mesh , hypersonic speed , computational fluid dynamics , mechanics , conservation of mass , finite element method , shock wave , computer science , physics , mathematics , geometry , biochemistry , chemistry , gene , thermodynamics
The space-time conservation element solution element (CESE) method is modified to address the robustness issues of high-aspect-ratio, viscous, near-wall meshes. In this new approach, the dependent variable gradients are evaluated using element edges and the corresponding neighboring solution elements while keeping the original flux integration procedure intact. As such, the excellent flux conservation property is retained and the new edge-based gradients evaluation significantly improves the robustness for high-aspect ratio meshes frequently encountered in three-dimensional, Navier-Stokes calculations. The order of accuracy of the proposed method is demonstrated for oblique acoustic wave propagation, shock-wave interaction, and hypersonic flows over a blunt body. The confirmed second-order convergence along with the enhanced robustness in handling hypersonic blunt body flow calculations makes the proposed approach a very competitive CFD framework for 3D Navier-Stokes simulations.
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