Thermodynamic Suppression Effect of Cavitation Arising in a Hydrofoil in 140 °C Hot Water

Author:

Iga Yuka1,Okajima Junnosuke1,Yamagichi Yuki2,Sasaki Hirotoshi3,Ito Yu4

Affiliation:

1. Institute of Fluid Science, Tohoku University, 2-1-1 Katahira, Aoba-ku, Sendai, Miyagi 980-8577, Japan

2. Mechanical Engineering Division, Graduate School of Engineering, Tohoku University, 1-6-6 Aza-Aoba, Aramaki, Aoba-ku, Sendai, Miyagi 980-8579, Japan

3. Mechanical Maintenance Group, Plant Maintenance Office, Tokai/Tokai-II Power Station, Tokai Head Office, The Japan Atomic Power Company, 1-1 Shirakata, Tokai-mura, Naka-gun, Ibaraki 319-1198, Japan

4. Department of Aeronautics and Astronautics, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-8656, Japan

Abstract

Abstract The thermodynamic suppression effect of cavitation arising in a NACA0015 single hydrofoil is experimentally investigated in water at mainstream temperatures of T∞ = 20 °C to 140 °C in the present study. The cavity length at T∞ = 140 °C is shorter than that at T∞ = 20 °C at a constant cavitation number for all cavity patterns from inception to supercavitation. On the other hand, the cavity length at T∞ = 80 °C is slightly shorter than that at 20 °C in a certain region in which unsteady sheet-cloud cavitation occurs. This indicates that the thermodynamic suppression effect appears easily in unsteady cavitation. In addition, the temperature reduction inside cavities in water is accurately measured using thermistors, which are inserted from the sidewall directly into the cavity. The temperature measurement is performed at a mainstream temperature of less than 80 °C due to limitation of calibration for the sensor. The temperature reduction at 140 °C is then predicted from the measured cavity length. It is shown that the temperature reduction inside the cavity is approximately ΔT = 0.3 °C at T∞ = 80 °C and ΔT = 0.05 °C at T∞ = 20 °C under supercavitation conditions. The predicted temperature reduction inside the cavity is ΔT = 1.1 K at T∞ = 140 °C under supercavitation conditions. Finally, Fruman's prediction equation for ΔT is examined by fitting to the measured and predicted ΔT values with assuming a volume coefficient of evaporation CQ as a fitting parameter.

Funder

Japan Society for the Promotion of Science

Publisher

ASME International

Subject

Mechanical Engineering

Reference29 articles.

1. Cavitation Properties of Liquids;ASME J. Eng. Power,1964

2. The Dynamic Behavior and Compliance of a Stream of Cavitating Babbles;ASME J. Fluids Eng.,1973

3. An Experimental Investigation of Thermal Effects in a Cavitating Inducer;ASME J. Fluids Eng.,2004

4. Thermodynamic Effect on Incipient and Developed Sheet Cavitation,1984

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