LAPSE:2023.9546
Published Article

LAPSE:2023.9546
Numerical Analysis and Experimental Investigation of Cavitating Flows Considering Thermal and Compressibility Effects
February 27, 2023
Abstract
This article deals with the numerical simulation of unsteady cavitating flow around hydrofoils, supported by experimental research realized in a cavitation tunnel situated in the Centre of Hydraulic Research. Two straight NACA hydrofoils (NACA0020 and NACA2412) were employed. The comprehensive unsteady CFD analysis was based on scale-resolving simulations (hereinafter SRS) with the aim of capturing correctly the interactions between the cavitation structures and re-entrant flow as well as the compressibility and thermal effects of cavitation. The static pressure fluctuations during the cavity oscillation cycles and the evaporation and condensation processes are discussed in detail. To predict correctly the high-pressure peaks during the bubble cloud collapses and the pressure pulse propagation speed, the real properties of water and the mixture total energy conservation equation were considered. In addition, the estimated content of undissolved air was taken into account. The numerical simulations were validated by means of already published experiments or compared with experiments conducted by the authors, and with good agreement.
This article deals with the numerical simulation of unsteady cavitating flow around hydrofoils, supported by experimental research realized in a cavitation tunnel situated in the Centre of Hydraulic Research. Two straight NACA hydrofoils (NACA0020 and NACA2412) were employed. The comprehensive unsteady CFD analysis was based on scale-resolving simulations (hereinafter SRS) with the aim of capturing correctly the interactions between the cavitation structures and re-entrant flow as well as the compressibility and thermal effects of cavitation. The static pressure fluctuations during the cavity oscillation cycles and the evaporation and condensation processes are discussed in detail. To predict correctly the high-pressure peaks during the bubble cloud collapses and the pressure pulse propagation speed, the real properties of water and the mixture total energy conservation equation were considered. In addition, the estimated content of undissolved air was taken into account. The numerical simulations were validated by means of already published experiments or compared with experiments conducted by the authors, and with good agreement.
Record ID
Keywords
cavitation, cavitation tunnel, Computational Fluid Dynamics, hydrofoil, scale resolving simulations, thermal effects
Subject
Suggested Citation
Sedlář M, Krátký T, Komárek M, Vyroubal M. Numerical Analysis and Experimental Investigation of Cavitating Flows Considering Thermal and Compressibility Effects. (2023). LAPSE:2023.9546
Author Affiliations
Journal Name
Energies
Volume
15
Issue
18
First Page
6503
Year
2022
Publication Date
2022-09-06
ISSN
1996-1073
Version Comments
Original Submission
Other Meta
PII: en15186503, Publication Type: Journal Article
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LAPSE:2023.9546
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https://doi.org/10.3390/en15186503
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Feb 27, 2023
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