结构与尾流非线性耦合涡激振动预测模型
Prediction of vortex-induced vibration of cylinder based on the nonlinear coupling of structure and wake oscillator
查看参考文献14篇
文摘
|
预测圆柱涡激振动的尾流振子模型中,通常采用线性的耦合模型,例如位移或者速度、加速度耦合来表征结构对尾流的作用。三种线性模型在预测圆柱锁频阶段的动力特性时存在差异,而且适用范围也受质量比的限制。提出了考虑结构与尾流动力非线性耦合的模型,该模型基于加速度耦合并结合速度耦合进行修正,适用范围不受质量比的影响;与实验结果的对比表明该模型可以更合理地给出锁频区域以及结构位移响应和尾流升力。最后,利用新模型讨论了质量比对锁频阶段结构振动幅值、尾流升力及频率比的影响;结果表明,随着质量比的增大,结构锁频区域变窄,结构振幅和尾流升力幅值减小。 |
其他语种文摘
|
In the prediction of cylinder vortex-induced vibration (VIV)using the wake-oscillator model,the action of the structure on the fluid wake oscillator is commonly modeled by linear models such as linear displacement,velocity and acceleration coupling. Howev- er,these linearly coupling models often present different dynamical behaviors during the lock-in,and are suitable to different ranges of mass ratio of cylinder. An alternative nonlinear coupling model,combining a velocity coupling with an acceleration coupling term,is proposed in this study. The comparison of the proposed model with experimental data indicates that the model is capable of presenting a more reasonable dynamical behavior in lock-in and suitable for a wider range of mass ratio. Further,the influences of mass ratio on the structural vibration amplitude,wake lift and frequency ratio are explored. It is found that with the increase of mass ratio,the struc-tural amplitude and wake lift decrease,and meanwhile the range of lock-in gets narrower. |
来源
|
海洋工程
,2012,30(4):37-41 【扩展库】
|
关键词
|
涡激振动
;
尾流振子模型
;
流固耦合
;
质量比
;
锁频
|
地址
|
中国科学院力学研究所, 中国科学院环境力学重点实验室, 北京, 100190
|
语种
|
中文 |
ISSN
|
1005-9865 |
学科
|
海洋学 |
基金
|
中科院方向性资助项目
;
中央高校基本科研业务费专项资金资助项目
|
文献收藏号
|
CSCD:4705574
|
参考文献 共
14
共1页
|
1.
King R. A review of vortex shedding research and its application.
Ocean Engineering,1977(4):141-172
|
CSCD被引
12
次
|
|
|
|
2.
Sarpkaya T. Vortex induced oscillations:a selective review.
Journal of Applied Mechanics,1979,46(2):241-258
|
CSCD被引
28
次
|
|
|
|
3.
Birkoff G.
Jets,Wakes and Cavities,1957
|
CSCD被引
1
次
|
|
|
|
4.
Bishop R E D. The lift and drag forces on a circular cylinder oscillating in a flowing fluid.
Proceedings of the Royal Society of London. A,1964,277:51-75
|
CSCD被引
33
次
|
|
|
|
5.
Hartlen. Lift-oscillator model of vortex-induced vibration.
Journal of the Engineering Mechanics Division, ASCE,1970(96):577-591
|
CSCD被引
45
次
|
|
|
|
6.
Iwan W D. The vortex-induced oscillation of non-uniform structure analysis.
Journal of Sound and Vibration,1981,79(2):291-301
|
CSCD被引
15
次
|
|
|
|
7.
Iwan W. A model for vortex-induced oscillations of structures.
Journal of Applied Mechanics,1974,41(3):581-586
|
CSCD被引
14
次
|
|
|
|
8.
Facchinetti M L. Vortex shedding modeling using diffusive van der Pol oscillators.
Comptes Rendus Mecanique,2002,330:451-456
|
CSCD被引
5
次
|
|
|
|
9.
Facchinetti M L. Coupling of structure and wake oscillators in vortex-induced vibrations.
Journal of Fluids and Structures,2004,19(3):123-140
|
CSCD被引
126
次
|
|
|
|
10.
Facchinetti M L. Vortex-induced traveling waves along a cable.
European Journal of Mechanics B/ Fluids,2004(23):199-208
|
CSCD被引
1
次
|
|
|
|
11.
Khalak A. Motions forces and mode transitions in vortex—induced vibrations at low mass-damping.
Jour-nal of Fluids and Structures,1999(13):813-851
|
CSCD被引
113
次
|
|
|
|
12.
Feng C C.
The Measurement of Vortex-induced effects in flow past stationary and oscillating circular and dissection cylinders,1968
|
CSCD被引
1
次
|
|
|
|
13.
Govardhan R. Critical mass in vortex-induced vibration of a cylinder.
European Journal of Mechanics B/ Fluids,2004,23:17-27
|
CSCD被引
9
次
|
|
|
|
14.
Vikestad K. Added mass and oscillatory frequency for a circular cylinder subjected to vortex-induced vibrations and external disturbance.
Journal of Fluids and Structures,2000,4:1071-1088
|
CSCD被引
17
次
|
|
|
|
|