Abstract
AbstractCavitation generation methods have been used in multifarious directions because of their diversity, and numerous studies and discussions have been conducted on cavitation generation methods. This study aims to explore the generating mechanism and evolution law of volume alternate cavitation (VAC). In the VAC, liquid water is placed in an airtight container with a variable volume. As the volume alternately changes, the liquid water inside the container continues to cavitate. Then, the mixture turbulence model and in-cylinder dynamic grid model are adopted to conduct computational fluid dynamics simulation of volume alternate cavitation. In the simulation, the cloud images at seven heights on the central axis are monitored, and the phenomenon and mechanism of height and eccentricity are analyzed in detail. By employing the cavitation flow visualization method, the generating mechanism and evolution law of cavitation are revealed. The synergistic effects of experiments and high-speed camera capturing confirm the correctness of the simulation results. In the experiment, the volume change stroke of the airtight container is set to 20 mm, the volume change frequency is 18 Hz, and the shooting frequency of the high-speed camera is set to 10000 FPS. The experimental results indicate that the position of the cavitation phenomenon has a reasonable law during the whole evolution cycle of the cavitation cloud. Also, the volume alternation cycle corresponds to the generation, development, and collapse stages of cavitation bubbles.
Funder
National Nature Science Foundation of China
Jiangsu Provincial Key Research and Development Program
Zhenjiang Municipal Key Research and Development Project
Publisher
Springer Science and Business Media LLC
Subject
Industrial and Manufacturing Engineering,Mechanical Engineering
Reference33 articles.
1. A Sarc, T Stepisnik-Perdih, M Petkovsek, et al. The issue of cavitation number value in studies of water treatment by hydrodynamic cavitation. Ultrason Sonochem, 2017, 34: 51–59.
2. N Fujisawa, T Kikuchi, K Fujisawa, et al. Time-resolved observations of pit formation and cloud behavior in cavitating jet. Wear, 2017, 386–387: 99–105.
3. A P Nagalingam, V C Thiruchelvam, S H Yeo. A novel hydrodynamic cavitation abrasive technique for internal surface finishing. Journal of Manufacturing Processes, 2019, 46: 44–58.
4. X Sun, J Liu, L Ji, et al. A review on hydrodynamic cavitation disinfection: The current state of knowledge. Sci Total Environ, 2020, 737: 139–606.
5. P Thanekar, P R Gogate, Z Znak, et al. Degradation of benzene present in wastewater using hydrodynamic cavitation in combination with air. Ultrason Sonochem, 2020, 70: 105–296.