The coupling analysis of tank motion and sloshing by a fully nonlinear decoupling method

被引:0
|
作者
Jin Wang
Shi-Li Sun
Jian Hu
机构
[1] Harbin Engineering University,College of Shipbuilding Engineering
[2] China Ship Development and Design Center,undefined
来源
Nonlinear Dynamics | 2017年 / 89卷
关键词
Rectangular liquid tank; Mutual dependence; Auxiliary function method; Nonlinear coupling effects;
D O I
暂无
中图分类号
学科分类号
摘要
In this paper, the three degrees-of-freedom motion of a two-dimensional rectangular liquid tank under wave action is simulated by the boundary element method in time domain. The coupling effects between tank motion and internal sloshing flow are investigated in partially filled conditions. The fourth-order Runge–Kutta method is adopted to update the wave shape and velocity potential on the free surface. The fully nonlinear mutual dependence of the incident wave, tank motion and internal sloshing flow is decoupled through an auxiliary function method, by which the liquid tank acceleration can be obtained directly without knowing the pressure distribution. The corresponding validation of numerical model is carried out and indicates that the accuracy of the present method is satisfactory to evaluate the dynamic responses of tank and sloshing motion. The corresponding response amplitude operators of tank motions for various wave frequencies, amplitudes and filling conditions are obtained, and the nonlinear coupling effects of sloshing flow on the tank responses are analyzed. It is found that the coupling effects have significant influence on sway and roll motion while have little impact on heave motion. The most important coupling effects on roll motion are the split of peak. In addition, due to the nonlinearity of sloshing flow, the roll motion amplitude is not linearly proportional to wave amplitude.
引用
收藏
页码:971 / 985
页数:14
相关论文
共 50 条
  • [1] The coupling analysis of tank motion and sloshing by a fully nonlinear decoupling method
    Wang, Jin
    Sun, Shi-Li
    Hu, Jian
    NONLINEAR DYNAMICS, 2017, 89 (02) : 971 - 985
  • [2] Fully nonlinear numerical simulation and analysis of sloshing and coupling ship motion
    Wang J.
    Wu L.
    Chuan Bo Li Xue/Journal of Ship Mechanics, 2020, 24 (09): : 1142 - 1150
  • [3] Numerical Study on Ship Motion Fully Coupled with LNG Tank Sloshing in CFD Method
    Zhuang, Yuan
    Wan, Decheng
    INTERNATIONAL JOURNAL OF COMPUTATIONAL METHODS, 2019, 16 (06)
  • [4] A 3D fully coupled analysis of nonlinear sloshing and ship motion
    Mitra, S.
    Wang, C. Z.
    Reddy, J. N.
    Khoo, B. C.
    OCEAN ENGINEERING, 2012, 39 : 1 - 13
  • [5] Characteristic Analysis of Nonlinear Sloshing in Baffled Tank
    Lee, Hong-Woo
    Cho, Jin-Rae
    TRANSACTIONS OF THE KOREAN SOCIETY OF MECHANICAL ENGINEERS A, 2005, 29 (11) : 1455 - 1462
  • [6] Fully nonlinear analysis of second-order sloshing resonance in a three-dimensional tank
    Zhang, Chongwei
    Li, Yajie
    Meng, Qicheng
    COMPUTERS & FLUIDS, 2015, 116 : 88 - 104
  • [7] The coupling effect of sloshing and vibrations of a rectangular tank subjected to rectilinear motion
    Kim, Soo-Min
    Kwak, Moon K.
    Kim, Dae W.
    Kim, Kuk-Su
    Amabili, Marco
    ALEXANDRIA ENGINEERING JOURNAL, 2025, 121 : 103 - 116
  • [8] Numerical analysis of ship motion coupled with tank sloshing
    Li, Xu
    Zhang, Tao
    Zhang, YongOu
    Wang, YaXing
    OCEANS 2014 - TAIPEI, 2014,
  • [9] Coupling analysis between vessel motion and internal nonlinear sloshing for FLNG applications
    Zhao, Dongya
    Hu, Zhiqiang
    Chen, Gang
    Chen, Xiaobo
    Feng, Xingya
    JOURNAL OF FLUIDS AND STRUCTURES, 2018, 76 : 431 - 453
  • [10] Numerical Simulation of Highly Nonlinear Sloshing in a Tank Due to Forced Motion
    Scolan, Yves-Marie
    Brosset, Laurent
    INTERNATIONAL JOURNAL OF OFFSHORE AND POLAR ENGINEERING, 2017, 27 (01) : 11 - 17