Exciting a cavitating tip vortex with synthetic inflow turbulence: A CFD analysis of vortex kinematics, dynamics and sound generation

被引:9
|
作者
Klapwijk, M. [1 ,2 ]
Lloyd, T. [2 ]
Vaz, G. [3 ]
van den Boogaard, M. [1 ,2 ]
Van Terwisga, T. [1 ]
机构
[1] Delft Univ Technol, Mekelweg 2, NL-2628 CD Delft, Netherlands
[2] Maritime Res Inst Netherlands, Haagsteeg 2, NL-6708 PM Wageningen, Netherlands
[3] blueOASIS Ericeira Business Factory, Rua Prudencio Franco Trindade 4, P-2655344 Ericeira, Portugal
基金
荷兰研究理事会;
关键词
Elliptical wing; Tip vortex; Cavitation; Acoustics; PANS; IDDES; Synthetic inflow turbulence; FORMULATIONS;
D O I
10.1016/j.oceaneng.2022.111246
中图分类号
U6 [水路运输]; P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
Cavitating tip vortices are one of the main contributors to underwater radiated noise (URN). To predict URN and evaluate propeller designs, it is necessary to predict cavity dynamics. To this end, a tip vortex generated by an elliptical wing is simulated in wetted and cavitating conditions, using scale-resolving simulations. The vortex is excited by synthetic inflow turbulence with varying inflow turbulence intensities. Vortex kinematics and cavity dynamics are analysed, and validated against experiments and a semi-analytical model from literature. The far-field radiated noise is analysed using an acoustic analogy. Using a background noise correction, the sound due to inflow turbulence is removed, and the sound due to cavity dynamics is isolated. Based on the sound spectra, the main noise generating mechanisms are identified. Cavitating simulations predict an increase in far-field radiated noise of approximately 15 dB, while doubling the inflow turbulence intensity results in an increase of approximately 10 dB.
引用
收藏
页数:20
相关论文
共 35 条
  • [11] Sound generation and radiation from rotor tip-vortex pairing phenomenon
    Chung, Ki Hoon
    Kim, Jae Wook
    Ryu, Ki Wahn
    Lee, Kyung Tae
    Lee, Duck Joo
    AIAA Journal, 2006, 44 (06): : 1181 - 1187
  • [12] A panel method for the hydrodynamic analysis of a cavitating propeller with sheet and developed tip vortex cavitation
    Kim, Seungnam
    Kinnas, Spyros A.
    PHYSICS OF FLUIDS, 2023, 35 (12)
  • [13] VISCOUS FLOW ANALYSIS FOR THE TIP VORTEX GENERATION PROCESS.
    Shamroth, S.J.
    Briley, W.R.
    NASA Contractor Reports, 1979, (3184):
  • [14] ANALYSIS OF THE TIP LEAKAGE VORTEX DYNAMICS WITH A SLOTTED WING APPARATUS
    Brion, V.
    Jacquin, L.
    9TH EUROPEAN CONFERENCE ON TURBOMACHINERY: FLUID DYNAMICS AND THERMODYNAMICS, VOLS I AND II, 2011, : 1057 - 1067
  • [15] GENERATION OF SUPERFLUID VORTEX TURBULENCE BY HIGH-AMPLITUDE SECOND SOUND IN HE-4
    KOTSUBO, V
    SWIFT, GW
    JOURNAL OF LOW TEMPERATURE PHYSICS, 1990, 78 (5-6) : 351 - 373
  • [16] Cavitation tunnel analysis of radiated sound from the resonance of a propeller tip vortex cavity
    Pennings, Pepijn
    Westerweel, Jerry
    van Terwisga, Tom
    INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 2016, 83 : 1 - 11
  • [17] Large-Eddy Simulation of Cavitating Tip Leakage Vortex Structures and Dynamics around a NACA0009 Hydrofoil
    Geng, Linlin
    Zhang, Desheng
    Chen, Jian
    Escaler, Xavier
    JOURNAL OF MARINE SCIENCE AND ENGINEERING, 2021, 9 (11)
  • [18] Bit Error Rate Analysis in Atmospheric Turbulence Channel of Synthetic Double Vortex Beam
    Deng, Qingqing
    Chen, Chaoxu
    Chen, Wei
    Yang, Lixia
    Huang, Zhixiang
    Deng, Haochuan
    IEEE PHOTONICS JOURNAL, 2022, 14 (05):
  • [19] Numerical investigation of turbulence characteristics in cavitating flows using BDIM and ILES method: Insights into vortex dynamics and turbulent kinetic energy
    Yang, Meng
    Biao, Huang
    Taotao, Liu
    INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 2025, 185
  • [20] EXPERIMENTAL AND NUMERICAL ANALYSIS OF THE CAVITATING PART LOAD VORTEX DYNAMICS OF LOW-HEAD HYDRAULIC TURBINES
    Houde, Sebastien
    Iliescu, Monica S.
    Fraser, Richard
    Lemay, Sebastien
    Ciocan, Gabriel D.
    Deschenes, Claire
    FLUID MEASUREMENTS AND INSTRUMENTATION CAVITATION AND MULTIPHASE FLOW ADVANCES IN FLUIDS ENGINEERING EDUCATION MICROFLUIDICS, VOL 2, 2012, : 171 - 182