The numerical formulation developed here includes an efficient grid generation scheme, particularly suited to computational grids for the analysis of turbulent turbomachinery flows and tip clearance flows, and a semi-implicit, pressure-based computational fluid dynamics scheme that directly includes artificial dissipation, and is applicable to both viscous and inviscid flows. The values of these artificial dissipation is optimized to achieve accuracy and convergency in the solution. The numerical model is used to investigate the structure of tip clearance flows in a turbine nozzle. The structure of leakage flow is captured accurately, including blade-to-blade variation of all three velocity components, pitch and yaw angles, losses and blade static pressures in the tip clearance region. The simulation also includes evaluation of such quantities of leakage mass flow, vortex strength, losses, dominant leakage flow regions and the spanwise extent affected by the leakage flow. It is demonstrated, through optimization of grid size and artificial dissipation, that the tip clearance flow field can be captured accurately.
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ASME 1993 International Gas Turbine and Aeroengine Congress and Exposition
May 24–27, 1993
Cincinnati, Ohio, USA
Conference Sponsors:
- International Gas Turbine Institute
ISBN:
978-0-7918-7891-0
PROCEEDINGS PAPER
Numerical Simulation of Tip Clearance Effects in Turbomachinery Free
A. Basson,
A. Basson
The Pennsylvania State University, University Park, PA
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B. Lakshminarayana
B. Lakshminarayana
The Pennsylvania State University, University Park, PA
Search for other works by this author on:
A. Basson
The Pennsylvania State University, University Park, PA
B. Lakshminarayana
The Pennsylvania State University, University Park, PA
Paper No:
93-GT-316, V03BT16A072; 16 pages
Published Online:
February 25, 2015
Citation
Basson, A, & Lakshminarayana, B. "Numerical Simulation of Tip Clearance Effects in Turbomachinery." Proceedings of the ASME 1993 International Gas Turbine and Aeroengine Congress and Exposition. Volume 3B: General. Cincinnati, Ohio, USA. May 24–27, 1993. V03BT16A072. ASME. https://doi.org/10.1115/93-GT-316
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