Cavitation Evolution Around a Twist Hydrofoil by Large Eddy Simulation (LES) with Mesh Adaption

被引:0
|
作者
Zhengdong Wang
Linmin Li
Xiaojun Li
Chunye Yang
Zuchao Zhu
机构
[1] Zhejiang Sci-Tech University,Key Laboratory of Fluid Transmission Technology of Zhejiang Province
[2] Ebara Great Pumps Co.,undefined
[3] Ltd.,undefined
来源
关键词
cavitating flow; adaptive mesh refinement; volume of fluid; vorticity force; force element method;
D O I
暂无
中图分类号
学科分类号
摘要
The cavitating flow around a Delft Twist-11 hydrofoil is simulated using the large eddy simulation approach. The volume-of-fluid method incorporated with the Schnerr–Sauer cavitation model is utilized to track the water–vapor interface. Adaptive mesh refinement (AMR) is also applied to improve the simulation accuracy automatically. Two refinement levels are conducted to verify the dominance of AMR in predicting cavitating flows. Results show that cavitation features, including the U-type structure of shedding clouds, are consistent with experimental observations. Even a coarse mesh can precisely capture the phase field without increasing the total cell number significantly using mesh adaption. The predicted shedding frequency agrees fairly well with the experimental data under refinement level 2. This study illustrates that AMR is a promising approach to achieve accurate simulations for multiscale cavitating flows within limited computational costs. Finally, the force element method is currently adopted to investigate the lift and drag fluctuations during the evolution of cavitation structure. The mechanisms of lift and drag fluctuations due to cavitation and the interaction between vorticity forces and cavitation are explicitly revealed.
引用
收藏
页码:627 / 636
页数:9
相关论文
共 50 条
  • [1] Cavitation Evolution Around a Twist Hydrofoil by Large Eddy Simulation(LES) with Mesh Adaption
    WANG Zhengdong
    LI Linmin
    LI Xiaojun
    YANG Chunye
    ZHU Zuchao
    Journal of Ocean University of China, 2023, 22 (03) : 627 - 636
  • [2] Cavitation Evolution Around a Twist Hydrofoil by Large Eddy Simulation (LES) with Mesh Adaption
    Wang, Zhengdong
    Li, Linmin
    Li, Xiaojun
    Yang, Chunye
    Zhu, Zuchao
    JOURNAL OF OCEAN UNIVERSITY OF CHINA, 2023, 22 (03) : 627 - 636
  • [3] Large eddy simulation of cavitating flow around a twist hydrofoil and investigation on force element evolution using a multiscale cavitation model
    Wang, Zhengdong
    Li, Linmin
    Li, Xiaojun
    Zhu, Zuchao
    PHYSICS OF FLUIDS, 2022, 34 (02)
  • [4] Large eddy simulation of unsteady cloud cavitation flow around underwater hydrofoil
    Tan, J.-J. (dlxyjx@njust.edu.cn), 1600, Nanjing University of Science and Technology (36):
  • [5] Large eddy simulation of the periodic cavity evolution and the turbulence characteristics around a Delft Twist-11 hydrofoil
    Yu, An
    Wang, Xincheng
    Tang, Qinghong
    Zhou, Daqing
    JOURNAL OF TURBULENCE, 2020, 21 (07): : 386 - 405
  • [6] Large eddy simulation of cloud cavitation and wake vortex cavitation around a trailing-truncated hydrofoil
    Yin, Ting-yun
    Pavesi, Giorgio
    Pei, Ji
    Yuan, Shou-qi
    Gan, Xing-cheng
    JOURNAL OF HYDRODYNAMICS, 2022, 34 (05) : 893 - 903
  • [7] Large eddy simulation of cloud cavitation and wake vortex cavitation around a trailing-truncated hydrofoil
    Ting-yun Yin
    Giorgio Pavesi
    Ji Pei
    Shou-qi Yuan
    Xing-cheng Gan
    Journal of Hydrodynamics, 2022, 34 : 893 - 903
  • [8] Implicit large eddy simulation of unsteady cloud cavitation around a plane-convex hydrofoil
    Victor Hidalgo
    Xian-wu Luo
    Xavier Escaler
    Bin Ji
    Alvaro Aguinaga
    Journal of Hydrodynamics, 2015, 27 : 815 - 823
  • [9] Implicit large eddy simulation of unsteady cloud cavitation around a plane-convex hydrofoil
    Hidalgo, Victor
    Luo Xian-wu
    Escaler, Xavier
    Ji Bin
    Aguinaga, Alvaro
    JOURNAL OF HYDRODYNAMICS, 2015, 27 (06) : 815 - 823
  • [10] Implicit large eddy simulation of unsteady cloud cavitation around a plane-convex hydrofoil
    HIDALGO Victor
    罗先武
    ESCALER Xavier
    季斌
    AGUINAGA Alvaro
    JournalofHydrodynamics, 2015, 27 (06) : 815 - 823