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Frontiers of Structural and Civil Engineering

ISSN 2095-2430

ISSN 2095-2449(Online)

CN 10-1023/X

邮发代号 80-968

2019 Impact Factor: 1.68

Frontiers of Structural and Civil Engineering  2016, Vol. 10 Issue (4): 363-384   https://doi.org/10.1007/s11709-016-0353-y
  本期目录
Influence of fluid-structure interaction on vortex induced vibration and lock-in phenomena in long span bridges
Nazim Abdul NARIMAN()
Institute of Structural Mechanics, Faculty of Civil Engineering, Bauhaus University Weimar, Weimar 99423, Germany
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Abstract

In this paper, deck models of a cable stayed bridge are generated in ABAQUS-finite element program once using only CFD model (one-way fluid-structure interaction) and another by using both the CFD model and the CSD model together (two-way fluid-structure interaction) in a co-simulation. Shedding frequencies for the associated wind velocities in the lock-in region are calculated in both approaches. The results are validated with Simiu and Scanlan results. The lift and drag coefficients are determined for the two approaches and the latter results are validated with the flat plate theory results by Munson and coauthors. A decrease in the critical wind velocity and the shedding frequencies considering two-way approach was determined compared to those obtained in the one-way approach. The results of the lift and drag forces in the two-way approach showed appreciable decrease in their values. It was concluded that the two-way approach predicts earlier vortex induced vibration for lower critical wind velocities and lock-in phenomena will appear at lower natural frequencies of the long span bridges. This helps the designers to efficiently plan and consider for the design and safety of the long span bridge against this type of vibration.

Key wordsvortex-induced vibration    fluid-structure interaction    Strouhal number    lock-in    kinetic energy
收稿日期: 2016-02-06      出版日期: 2016-11-29
Corresponding Author(s): Nazim Abdul NARIMAN   
 引用本文:   
. [J]. Frontiers of Structural and Civil Engineering, 2016, 10(4): 363-384.
Nazim Abdul NARIMAN. Influence of fluid-structure interaction on vortex induced vibration and lock-in phenomena in long span bridges. Front. Struct. Civ. Eng., 2016, 10(4): 363-384.
 链接本文:  
https://academic.hep.com.cn/fsce/CN/10.1007/s11709-016-0353-y
https://academic.hep.com.cn/fsce/CN/Y2016/V10/I4/363
Fig.1  
Fig.2  
Fig.3  
Fig.4  
Fig.5  
Fig.6  
Fig.7  
Fig.8  
Fig.9  
Fig.10  
Fig.11  
Fig.12  
Fig.13  
Fig.14  
Fig.15  
Fig.16  
Fig.17  
Fig.18  
Fig.19  
Fig.20  
Fig.21  
Fig.22  
Fig.23  
Fig.24  
Fig.25  
Fig.26  
Fig.27  
Fig.28  
Fig.29  
flow velocity m/s Reynolds number one-way Reynolds number two-way lift coefficient
one-way
lift coefficient two-way drag coefficient one-way drag coefficient two-way
1
2
3
4
5
6
8
10
12
15
1.50E+ 05
3.00E+ 05
4.50E+ 05
6.00E+ 05
7.51E+ 05
9.01E+ 05
1.20E+ 06
1.50E+ 06
1.80E+ 06
2.25E+ 06
1.50E+ 05
3.00E+ 05
4.50E+ 05
6.00E+ 05
7.51E+ 05
9.01E+ 05
1.20E+ 06
1.50E+ 06
1.80E+ 06
2.25E+ 06
0.3625
0.097
-0.267
-0.3405
0.398
-0.386
-0.3585
-0.4075
-0.362
-0.365
-0.77
-0.866
-0.445
-0.792
-0.419
-0.317
-0.311
-0.285
-0.269
-0.288
0.0212
0.01955
0.0213
0.0206
0.0216
0.0214
0.0206
0.02335
0.0208
0.0214
-0.0024
0.0042
0.0046
0.00285
0.00455
0.0045
0.0038
0.00325
0.00385
0.00405
Tab.1  
flow velocity m/s shedding frequency one-way (Hz) shedding frequency two-way (Hz) Strouhal number one-way Strouhal number two-way
1
2
3
4
5
6
8
10
12
15
1.241E−01
2.490E−01
3.733E−01
4.962E−01
6.203E−01
7.472E−01
9.978E−01
1.248E+ 00
1.492E+ 00
1.865E+ 00
1.105E−01
2.208E−01
3.292E−01
4.549E−01
5.712E−01
6.758E−01
9.415E−01
1.154E+ 00
1.386E+ 00
1.777E+ 00
3.227E−01
3.237E−01
3.236E−01
3.225E−01
3.225E−01
3.238E−01
3.243E−01
3.244E−01
3.232E−01
3.233E−01
2.873E−01
2.870E−01
2.853E−01
2.957E−01
2.970E−01
2.928E−01
3.060E−01
3.000E−01
3.003E−01
3.080E−01
Tab.2  
Fig.30  
Fig.31  
Fig.32  
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