A spurious free four-node displacement-based fluid element for fluid-structure interaction analysis

被引:13
|
作者
Kim, YS [1 ]
Yun, CB [1 ]
机构
[1] KOREA ADV INST SCI & TECHNOL, DEPT CIVIL ENGN, TAEJON 305701, SOUTH KOREA
关键词
displacement-based fluid element; liquid storage structure; mass projection; reduced integration; rotational penalty; seismic analysis; submerged internal body;
D O I
10.1016/S0141-0296(96)00144-7
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Fluid-structure interaction analysis of liquid storage structures under earthquake loadings is carried out by modelling the contained liquid by displacement-based fluid elements. To remove spurious modes in the free vibration analysis, a combined usage of rotational penalty and mass projection is proposed in conjunction with the one-point reduced integration for a four-node fluid element. The performance of the fluid element is examined for several cases of the acoustic vibration of fluid in a rigid cavity and the sloshing in liquid storage structures. A procedure is also established for determining the required number of elements with rotational penalty, so that low frequency sloshing modes can be retained while the spurious modes can be removed in the free vibration analysis. Seismic analysis of rectangular liquid storage structures is carried out with a focus on the fluid-structure interaction including the effects of the wall flexibility and a submerged internal body. Comparison with the results obtained by the Eulerian approach using velocity potential shows that the present method gives good results. (C) 1997 Elsevier Science Ltd.
引用
收藏
页码:665 / 678
页数:14
相关论文
共 50 条
  • [1] A MIXED DISPLACEMENT-BASED FINITE-ELEMENT FORMULATION FOR ACOUSTIC FLUID-STRUCTURE INTERACTION
    BATHE, KJ
    NITIKITPAIBOON, C
    WANG, X
    [J]. COMPUTERS & STRUCTURES, 1995, 56 (2-3) : 225 - 237
  • [2] Fast fluid-structure interaction simulations using a displacement-based finite element model equipped with an explicit streamline integration prediction
    Ryzhakov, P. B.
    Marti, J.
    Idelsohn, S. R.
    Onate, E.
    [J]. COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2017, 315 : 1080 - 1097
  • [3] A node-splitting discrete element model for fluid-structure interaction
    Hafver, Andreas
    Jettestuen, Espen
    Feder, Jens
    Meakin, Paul
    Malthe-Sorenssen, Anders
    [J]. PHYSICA A-STATISTICAL MECHANICS AND ITS APPLICATIONS, 2014, 416 : 61 - 79
  • [4] Displacement pressure based mixed finite element formulations for acoustic fluid-structure interaction problems
    Wang, XD
    Bathe, KJ
    [J]. INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN ENGINEERING, 1997, 40 (11) : 2001 - 2017
  • [5] Finite element analysis of fluid-structure interaction in pipeline systems
    Sreejith, B
    Jayaraj, K
    Ganesan, N
    Padmanabhan, C
    Chellapandi, P
    Selvaraj, P
    [J]. NUCLEAR ENGINEERING AND DESIGN, 2004, 227 (03) : 313 - 322
  • [6] A fluid-structure interaction analysis by ALE finite element method
    Watanabe, S
    Hirano, H
    Kawahara, M
    [J]. NUMERICAL METHODS IN ENGINEERING '96, 1996, : 894 - 897
  • [7] Fluid-Structure Interaction by the Spectral Element Method
    N. Bodard
    M. O. Deville
    [J]. Journal of Scientific Computing, 2006, 27 : 123 - 136
  • [8] Fluid-structure interaction by the spectral element method
    Bodard, N.
    Deville, M. O.
    [J]. JOURNAL OF SCIENTIFIC COMPUTING, 2006, 27 (1-3) : 123 - 136
  • [9] Free transverse vibration analysis of an underwater launcher based on fluid-structure interaction
    Niu Q.
    Li T.
    Zhu X.
    Wang L.
    [J]. Journal of Marine Science and Application, 2014, 13 (2) : 178 - 184
  • [10] Fluid-structure interaction for a jacket model structure with imposed displacement
    Mendes, A. C.
    Correia, H. J. D.
    [J]. PROCEEDINGS OF THE EIGHTEENTH (2008) INTERNATIONAL OFFSHORE AND POLAR ENGINEERING CONFERENCE, VOL 1, 2008, : 302 - 309