会议论文详细信息
29th IAHR Symposium on Hydraulic Machinery and Systems
Dynamic response of a NACA0009 hydrofoil under cavitation conditions
Wang, W.^1 ; Zhou, L.J.^1^3 ; Wang, Z.W.^2 ; Escaler, X.^4 ; De La Torre, O.^5 ; Kang, W.Z.^1
College of Water Conservancy and Civil Engineering, China Agricultural University, Beijing
100083, China^1
Department of Thermal Engineering, Tsinghua University, Beijing
100084, China^2
Beijing Eng. Research Center of Safety and Energy Saving Technology for Water Supply Network System, Beijing
100083, China^3
Department of Fluid Mechanics, Universitat Politècnica de Catalunya-Barcelona Tech, Spain^4
Department of Aerospace Engineering, University of Bristol, United Kingdom^5
关键词: Added mass effects;    Cavitation conditions;    Cavitation tunnels;    Fluid conditions;    Fluid-structure systems;    Hydraulic machines;    Modal response;    Numerical predictions;   
Others  :  https://iopscience.iop.org/article/10.1088/1755-1315/240/6/062003/pdf
DOI  :  10.1088/1755-1315/240/6/062003
来源: IOP
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【 摘 要 】

The dynamic response of an hydraulic machine is greatly affected by the water due to the added mass effect. However, the presence of cavitation can change the modal response of the coupled fluid-structure system because it modifies the properties of the surrounding fluid, i.e. the speed of sound and density. In this paper, a FEM-based acoustic-fluid model has been used to simulate the dynamic response of a NACA0009 hydrofoil with attached leading edge cavitation. The natural frequencies and the corresponding mode shapes have been compared for the hydrofoil in air, in still water and in cavitation conditions. The numerical predictions show a good agreement with the experimental results obtained in a high-speed cavitation tunnel. They confirm that different fluid conditions can modify the mode shapes in comparison with the modes in air. The nodal lines of the torsion and the second bending modes are slightly shifted with water and cavitation. Furthermore, the third mode of vibration under cavitation conditions appears as a combination of the torsion and the second bending shapes. The results indicate that such alterations are mainly induced by the value of the speed of sound inside the cavity.

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