A solution-adaptive hybrid-grid method for the unsteady analysis of turbomachinery
Abstract
A solution-adaptive method for the time-accurate analysis of two-dimensional flows in turbomachinery is described. The method employs a hybrid structured-unstructured zonal grid topology in conjunction with appropriate modeling equations and solution techniques in each zone. The viscous flow region in the immediate vicinity of the airfoils is resolved on structured O-type grids while the rest of the domain is discretized using an unstructured mesh of triangular cells. Implicit, third-order accurate, upwind solutions of the Navier-Stokes equations are obtained in the inner regions. In the outer regions, the Euler equations are solved using an explicit upwind scheme that incorporates a second-order reconstruction procedure. An efficient and robust grid adaptation strategy, including both grid refinement and coarsening capabilities, is developed for the unstructured grid regions. Grid adaptation is also employed to facilitate information transfer at the interfaces between unstructured grids in relative motion. Results for grid adaptation to various features pertinent to turbomachinery flows are presented. Good comparisons between the present results and experimental measurements and earlier structured-grid results are obtained.
- Publication:
-
AIAA
- Pub Date:
- July 1993
- Bibcode:
- 1993fldy.confQ....M
- Keywords:
-
- Computational Grids;
- Navier-Stokes Equation;
- Topology;
- Turbomachinery;
- Two Dimensional Flow;
- Unsteady Flow;
- Airfoils;
- Euler Equations Of Motion;
- Information Transfer;
- Viscous Flow;
- Fluid Mechanics and Heat Transfer