Scaling Effect on Prediction of Cavitation Inception in a Line Vortex Flow

Author:

Hsiao Chao-Tsung1,Chahine Georges L.1,Liu Han-Lieh2

Affiliation:

1. Dynaflow, Inc., 10621-J Iron Bridge Road, Jessup, MD 20794

2. U.S. Patent and Trademark Office, Crystal Plaza 3, Room 2C02, Washington, DC 20231

Abstract

The current study considers the prediction of tip vortex cavitation inception at a fundamental physics based level. Starting form the observation that cavitation inception detection is based on the “monitoring” of the interaction between bubble nuclei and the flow field, the bubble dynamics is investigated in detail. A spherical model coupled with a bubble motion equation is used to study numerically the dynamics of a nucleus in an imposed flow field. The code provides bubble size and position versus time as well as the resulting pressure at any selected monitoring position. This model is used to conduct a parametric study. Bubble size and emitted sound versus time are presented for various nuclei sizes and flow field scales in the case of an ideal Rankine vortex to which a longitudinal viscous core size diffusion model is imposed. Based on the results, one can deduce cavitation inception with the help of either an “optical inception criterion” (maximum bubble size larger than a given value) or an “acoustical inception criterion” (maximum detected noise higher than a given background value). We use here such criteria and conclude that scaling effects can be inherent to the way in which these criteria are exercised if the bubble dynamics knowledge is not taken into account.

Publisher

ASME International

Subject

Mechanical Engineering

Reference19 articles.

1. McCormick, B. W. , 1962, “On Cavitation Produced by a Vortex Trailing from a Lifting Surface,” ASME J. Basic Eng., 84, pp. 369–379.

2. Fruman, D. H., Dugue, C., and Cerrutti, P., 1991, “Tip Vortex Roll-Up and Cavitation,” ASME Cavitation and Multiphase Flow Forum, FED-Vol. 109, ASME, New York, pp. 43–48.

3. Arndt, R. E., and Dugue, C., 1992, “Recent Advances in Tip Vortex Cavitation Research,” Proc. International Symposium on Propulsors Cavitation, Hamburg, Germany, pp. 142–149.

4. Farrell, K. J., and Billet, M. L., 1994, “A Correlation of Leakage Vortex Cavitation in Axial-Flow Pumps,” ASME J. Fluids Eng., 116, pp. 551–557.

5. Arndt, R. E., and Keller, A. P., 1992, “Water Quality Effects on Cavitation Inception in a Trailing Vortex,” ASME J. Fluids Eng., 114, pp. 430–438.

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