On the applicability of 2D URANS and SST k - ω turbulence model to the fluid-structure interaction of rectangular cylinders

被引:33
|
作者
Nieto, F. [1 ]
Hargreaves, D. M. [2 ]
Owen, J. S. [2 ]
Hernandez, S. [1 ]
机构
[1] Univ A Coruna, Sch Civil Engn, La Coruna, Spain
[2] Univ Nottingham, Fac Engn, Nottingham NG7 2RD, England
关键词
computational fluid dynamics; URANS; bluff body aerodynamics; vortex-induced vibration; torsional flutter; flutter derivatives; B/H=4 rectangular cylinder; WIND-STRUCTURE INTERACTION; VORTEX-INDUCED VIBRATION; GIRDER BRIDGE SECTION; AEROELASTIC INSTABILITY; FLUTTER DERIVATIVES; AERODYNAMIC CHARACTERISTICS; EPSILON MODEL; FLOW; LES; PREDICTION;
D O I
10.1080/19942060.2015.1004817
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In this work the practical applicability of a 2D URANS approach adopting a block structured mesh and Menter's SST k - omega turbulence model in fluid-structure interaction (FSI) problems is studied using as a test case a ratio B/H = 4 rectangular cylinder. The vortex-induced vibration (VIV) and torsional flutter phenomena are analyzed based on the computation of the out-of-phase and in-phase components of the forced frequency component of lift and moment coefficients when the section is forced to periodically oscillate both in heave and pitch degrees of freedom. Also the flutter derivatives are evaluated numerically from the same forced oscillation simulations. A good general agreement has been found with both experimental and numerical data reported in the literature. This highlights the benefits of this relatively simple and straightforward approach. These methods, once their feasibility has been checked, are ready to use in parametric design of bridge deck sections and, at a later stage, in the shape optimization of deck girders considering aeroelastic constraints.
引用
收藏
页码:157 / 173
页数:17
相关论文
共 50 条
  • [1] Predictive Capability of a 2D FNPF Fluid-Structure Interaction Model
    Yim, Solomon C.
    Lin, Huan
    Robinson, David C.
    Tanizawa, Katsuji
    JOURNAL OF OFFSHORE MECHANICS AND ARCTIC ENGINEERING-TRANSACTIONS OF THE ASME, 2009, 131 (01): : 1 - 9
  • [2] Regularity results in 2D fluid-structure interaction
    Breit, Dominic
    MATHEMATISCHE ANNALEN, 2024, 388 (02) : 1495 - 1538
  • [3] Procedure for 2D fluid-structure interaction simulation
    Zorn, Joshua E.
    Davis, Roger L.
    JOURNAL OF ALGORITHMS & COMPUTATIONAL TECHNOLOGY, 2019, 13
  • [4] Shape Sensitivity Analysis of a 2D Fluid-Structure Interaction Problem
    Calisti, Valentin
    Lucardesi, Ilaria
    Scheid, Jean-Francois
    JOURNAL OF OPTIMIZATION THEORY AND APPLICATIONS, 2023, 199 (01) : 36 - 79
  • [5] FEEDBACK BOUNDARY STABILIZATION OF 2D FLUID-STRUCTURE INTERACTION SYSTEMS
    Badra, Mehdi
    Takahashi, Takeo
    DISCRETE AND CONTINUOUS DYNAMICAL SYSTEMS, 2017, 37 (05) : 2315 - 2373
  • [6] Deforming mesh with unsteady turbulence model for fluid-structure interaction
    Yeh, J. -T.
    Advances in Fluid Mechanics VI, 2006, 52 : 561 - 570
  • [7] Fluid-structure interaction involving dynamic wetting: 2D modeling and simulations
    Liu, Hao-Ran
    Gao, Peng
    Ding, Hang
    JOURNAL OF COMPUTATIONAL PHYSICS, 2017, 348 : 45 - 65
  • [8] SOLVING 2D FLUID-STRUCTURE INTERACTION PROBLEM BY A COUPLED PARTICLE METHOD
    Zha, Ruosi
    Qiu, Wei
    Peng, Heather
    PROCEEDINGS OF THE ASME 36TH INTERNATIONAL CONFERENCE ON OCEAN, OFFSHORE AND ARCTIC ENGINEERING, 2017, VOL 7A, 2017,
  • [9] 2D simulation of fluid-structure interaction using finite element method
    Mitra, S.
    Sinhamahapatra, K. P.
    FINITE ELEMENTS IN ANALYSIS AND DESIGN, 2008, 45 (01) : 52 - 59
  • [10] Fluid-structure simulations for a 2D fire application
    Xie, Wei
    Luo, Changsong
    DesJardin, Paul E.
    Proceedings of the ASME Heat Transfer Division 2005, Vol 1, 2005, 376-1 : 421 - 428