• 中国科技核心期刊
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Volume 32 Issue 3
Jun  2024
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LIU Pingan, GAO Hongtao, YANG Yanxi, HUANG Xi, GAO Song, JI Zhentao. Numerical Simulation of Water Entry Process of Trans-Medium Vehicles[J]. Journal of Unmanned Undersea Systems, 2024, 32(3): 463-473. doi: 10.11993/j.issn.2096-3920.2024-0023
Citation: LIU Pingan, GAO Hongtao, YANG Yanxi, HUANG Xi, GAO Song, JI Zhentao. Numerical Simulation of Water Entry Process of Trans-Medium Vehicles[J]. Journal of Unmanned Undersea Systems, 2024, 32(3): 463-473. doi: 10.11993/j.issn.2096-3920.2024-0023

Numerical Simulation of Water Entry Process of Trans-Medium Vehicles

doi: 10.11993/j.issn.2096-3920.2024-0023
  • Received Date: 2024-02-19
  • Accepted Date: 2024-05-11
  • Rev Recd Date: 2024-05-11
  • Available Online: 2024-05-23
  • The trans-medium water entry process of vehicles is often accompanied by multiphase flow, cavitation, phase change, and turbulence instability, which not only heighten the complexity of the flow field, but also render the forces highly unsteady and nonlinear. A numerical model for the water entry process of vehicles was developed. The volume of fluid(VOF) model was employed to capture the gas-liquid interface, and the Schnerr-Sauer model was utilized to describe the cavitation that occurred during the trans-medium process. The simulation of the water entry process of the trans-medium vehicle under different ventilation flows and deflection angles of the cavitator was carried out to investigate the flow field and cavity evolution laws during the trans-medium process. In addition, the fluid dynamics characteristics, as well as the kinematic characteristics of the vehicle during trans-medium process were analyzed. The simulation results show that the vehicle will present two different attitude change modes with the change of the ventilation flow during the water entry process: the increasing angular velocity leveling mode and the periodical pitching-type leveling mode. The water entry leveling process of the vehicle in different modes will show different motion characteristics. Moreover, an increase in the deflection angle of the cavitator and a decrease in the ventilation flow can improve the attitude change rate of the vehicle during the trans-medium water entry process.

     

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  • [1]
    魏洪亮, 陆宏志, 赵静, 等. 水下发射航行器跨介质动态载荷预报研究[J]. 导弹与航天运载技术, 2016(2): 77-80.
    [2]
    Karman T V. The impact of seaplane floats during landing: NACA-TN-321[R]. Washington, US: National Technical Information Service, 1929.
    [3]
    Wagner H. Phenomena associated with impacts and sliding on liquid surfaces[J]. J. Appl. Math. Mech, 1932, 12(4): 193-215.
    [4]
    Yu Y T. Virtual masses of rectangular plates and parallelepipeds in water[J]. Journal of Applied Physics, 1945, 16(11): 724-729. doi: 10.1063/1.1707527
    [5]
    Watanabe I. Analytical expression of hydrodynamic impact pressure by matched asymptotic expansion technique[J]. Transactions of the West-Japan Society of Naval Architects, 1986, 71: 77-85.
    [6]
    Logvinovich G V. Hydrodynamics of flows with free boundaries[M]. New York: Halsted Press, 1973
    [7]
    Worthington A M, Cole R S. Impact with a liquid surface, studied by the aid of instantaneous photography[J]. Proceedings of the Royal Society of London. 1899, 65(1): 153-154.
    [8]
    Truscott T T. Cavity dynamics of water entry for spheres and ballistic projectiles[D]. Boston: Massachusetts Institute of Technology, 2009.
    [9]
    杨晓光, 党建军, 王鹏, 等. 波浪对航行器高速入水载荷特性影响[J]. 兵工学报, 2022, 43(2): 355-362.

    Yang Xiaoguang, Dang Jianjun, Wang Peng, et al. The influence of waves on the impact load during high-speed water-entry of a vehicle[J]. Acta Armamentarii, 2022, 43(2): 355-362.
    [10]
    周可, 黄振贵, 陈志华, 等. 跨介质航行器高速斜入水跳弹现象研究[J]. 装备环境工程, 2022, 19(5): 39-48. doi: 10.7643/issn.1672-9242.2022.05.005
    [11]
    Jiang Y H, Zou Z H, Li J, et al. Numerical analysis of a ventilated supercavity under periodic motion of the cavitator[J]. Journal of Hydrodynamics, 2021, 33(6): 1216-1229. doi: 10.1007/s42241-021-0103-z
    [12]
    Zhang Q, Zong Z, Sun T Z, et al. Characteristics of cavity collapse behind a high-speed projectile entering the water[J]. Physics of Fluids, 2021, 33(6): 62110. doi: 10.1063/5.0053409
    [13]
    郝常乐, 党建军, 陈长盛, 等. 基于双向流固耦合的超空泡射弹入水研究[J]. 力学学报, 2022, 54(3): 678-687. doi: 10.6052/0459-1879-21-510
    [14]
    Kubota A, Kato H, Yamaguchi H. A new modelling of cavitating flows: A numerical study of unsteady cavitation on a hydrofoil section[J]. Journal of fluid Mechanics, 1992, 240: 59-96. doi: 10.1017/S002211209200003X
    [15]
    Schnerr G H, Sauer J. Physical and numerical modeling of unsteady cavitation dynamics[C]//Fourth International Conference on Multiphase Flow. New Orleans, LO, USA: ICMF, 2001.
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