Numerical investigation of three-dimensional effects of hydrodynamic cavitation in a Venturi tube

被引:0
|
作者
Apte, Dhruv [1 ]
Ge, Mingming [2 ]
Zhang, Guangjian [3 ]
Coutier-Delgosha, Olivier [1 ,4 ]
机构
[1] Kevin T. Crofton Department of Aerospace and Ocean Engineering, Virginia Tech, Blacksburg,VA,24060, United States
[2] National Observation and Research Station of Coastal Ecological Environments in Macao, Macao Environmental Research Institute, Faculty of Innovation Engineering, Macau University of Science and Technology, 999078, China
[3] Research Center of Fluid Machinery Engineering and Technology, Jiangsu University, Zhenjiang,212013, China
[4] Univ. Lille, CNRS, ONERA, Arts et Metiers ParisTech, Centrale Lille, FRE 2017 - LMFL - Laboratoire de Mecanique des fluides de Lille, Kampe de Feriet, Lille,F-59000, France
关键词
Budget control - Cavitation - Digital elevation model - Hydrodynamics - Multiphase flow - Turbulence models - Vorticity;
D O I
10.1016/j.ultsonch.2024.107122
中图分类号
学科分类号
摘要
Hydrodynamic Cavitation (HC) is a highly turbulent, unsteady, multi-phase flow that has been useful in many processing applications like wastewater treatment and process intensification and hence needs to be studied in detail. The aim of this study is to investigate the mechanisms driving HC inside a Venturi tube using numerical simulations. The numerical simulations are conducted in the form of both two-dimensional (2D) and three-dimensional (3D) simulations using the Detached Eddy Simulation (DES) model database to simulate the cavitation–turbulence interplay, and the results are validated against high-fidelity experimental data. Initial 2D calculation results show that though URANS models are able to show unsteady cavitation, they are unable to reproduce the correct cavity morphology while the DES models reproduce the cavity morphology accurately. After extending to 3D simulations and the resulting vorticity budget analysis highlight the cavitation–vortex interactions and show the domination of velocity gradients and the growth and shrinking of the fluid element terms over the baroclinic torque for vortex production. Finally, localized scale comparisons are conducted to evaluate the model's ability to simulate the cavitation–turbulence interaction. It is observed that the 3D DES simulations are able to predict accurately the cavitation–turbulence interaction on a localized scale for turbulence properties like Reynolds shear stress and Turbulent Kinetic Energy (TKE), emphasizing the 3D effects of turbulence and their influence on the cavitating flow. However, significant discrepancies continue to exist between the numerical simulations and experiments, near the throat where the numerical simulations predict a thinner cavity. Therefore, this study offers new insights on simulating HC and highlights the bottleneck between turbulence model development and accurate simulations of HC to provide a reference for improving modeling accuracy. © 2024
引用
下载
收藏
相关论文
共 50 条
  • [21] Investigation of the Cavitation Within Venturi Tube: Influence of the Generated Vortex
    Kozak, Jiri
    Rudolf, Pavel
    Hudec, Martin
    Urban, Ondrej
    Stefan, David
    Huzlik, Rostislav
    Cala, Martin
    ADVANCES IN HYDROINFORMATICS: SIMHYDRO 2017 - CHOOSING THE RIGHT MODEL IN APPLIED HYDRAULICS, 2018, : 1049 - 1067
  • [22] Numerical investigation of three-dimensional effects during dynamic stall
    Costes, M.
    Richez, F.
    Le Pape, A.
    Gaveriaux, R.
    AEROSPACE SCIENCE AND TECHNOLOGY, 2015, 47 : 216 - 237
  • [23] Numerical simulation of the effects of three-dimensional roughness on hydrodynamic lubrication: Correlation coefficients
    Lunde, L
    Tonder, K
    JOURNAL OF TRIBOLOGY-TRANSACTIONS OF THE ASME, 1997, 119 (02): : 315 - 322
  • [25] Numerical investigation of three-dimensional cavitation evolution and excited pressure fluctuations around a twisted hydrofoil
    Ji, Bin
    Luo, Xianwu
    Wu, Yulin
    Miyagawa, Kazuyoshi
    JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2014, 28 (07) : 2659 - 2668
  • [26] Numerical investigation of three-dimensional cloud cavitation with special emphasis on collapse induced shock dynamics
    Schnerr, Guenter H.
    Sezal, Ismail H.
    Schmidt, Steffen J.
    PHYSICS OF FLUIDS, 2008, 20 (04)
  • [27] Numerical investigation of three-dimensional cavitation evolution and excited pressure fluctuations around a twisted hydrofoil
    Bin Ji
    Xianwu Luo
    Yulin Wu
    Kazuyoshi Miyagawa
    Journal of Mechanical Science and Technology, 2014, 28 : 2659 - 2668
  • [28] Three-dimensional numerical investigation of the separation process in a vortex tube at different operating conditions
    Rafiee S.E.
    Sadeghiazad M.M.
    Journal of Marine Science and Application, 2016, 15 (2) : 157 - 165
  • [29] Three-Dimensional Numerical Investigation of Effect of Convergent Nozzles on the Energy Separation in a Vortex Tube
    Pourmahmoud, Nader
    Hassanzadeh, Amir
    Rafiee, Seyyed Ehsan
    Rahimi, Masoud
    INTERNATIONAL JOURNAL OF HEAT AND TECHNOLOGY, 2012, 30 (02) : 133 - 140
  • [30] Numerical investigation on three-dimensional flame acceleration induced by an obstacle and tube internal walls
    Yang, Hong-Wei
    Fan, Bao-Chun
    Li, Hong-Zhi
    2001, Explosion and Shock Waves (21):