Simulations of Cavitating Flows Using Hybrid Unstructured Meshes

Author:

Ahuja Vineet1,Hosangadi Ashvin1,Arunajatesan Srinivasan1

Affiliation:

1. Combustion Research and Flow Technology, Inc. (CRAFT Tech), P.O. Box 1150, Dublin, PA 18917

Abstract

A new multi-phase model for low speed gas/liquid mixtures is presented; it does not require ad-hoc closure models for the variation of mixture density with pressure and yields thermodynamically correct acoustic propagation for multi-phase mixtures. The solution procedure has an interface-capturing scheme that incorporates an additional scalar transport equation for the gas void fraction. Cavitation is modeled via a finite rate source term that initiates phase change when liquid pressure drops below its saturation value. The numerical procedure has been implemented within a multi-element unstructured framework CRUNCH that permits the grid to be locally refined in the interface region. The solution technique incorporates a parallel, domain decomposition strategy for efficient 3D computations. Detailed results are presented for sheet cavitation over a cylindrical head form and a NACA 66 hydrofoil.

Publisher

ASME International

Subject

Mechanical Engineering

Reference16 articles.

1. Kubota, A., Kato, H., and Yamaguchi, H., 1992, “Cavity Flow Predictions Based on the Euler Equations,” J. Fluid Mech., 240, pp. 59–96.

2. Chen, Y., and Heister, S. D., 1996, “Modeling Hydrodynamic Nonequilibrium in Cavitating Flows,” ASME J. Fluids Eng., 118, pp. 172–178.

3. Delaunay, Y., and Kueny, J. L., 1990, “Cavity Flow Predictions based on the Euler Equations,” ASME Cavitation and Multi-Phase Flow Forum, Vol. 109, pp. 153–158.

4. Janssens, M. E., Hulshoff, S. J., and Hoeijmakers, H. W. M., 1997, “Calculation of Unsteady Attached Cavitation,” AIAA-97-1936, 13th AIAA CFD Conferences, Snowmass, CO, June 29–July 2.

5. Merkle, C. L., Feng, J. Z. and Buelow, P. E. O., 1998, “Computational Modeling of the Dynamics of Sheet Cavitation,” Proceedings of the 3rd International Symposium on Cavitation, Grenoble.

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