线性剪切流中深海立管顺流涡激振动响应及疲劳损伤研究

王坤鹏;薛鸿祥;唐文勇

振动与冲击 ›› 2013, Vol. 32 ›› Issue (19) : 1-6.

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振动与冲击 ›› 2013, Vol. 32 ›› Issue (19) : 1-6.
论文

线性剪切流中深海立管顺流涡激振动响应及疲劳损伤研究

  • 王坤鹏,薛鸿祥,唐文勇
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In-Line VIV Induced Fatigue Damage of Deepwater Riser in Linearly Sheared Flow

  • Wang Kun-peng, Xue Hong-xiang, Tang Wen-yong
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摘要

采用圆柱体顺流受迫振荡试验数据,并引入顺流流体力放大因子,建立考虑横流对顺流响应影响的深海立管顺流涡激振动预报模型。该模型假定对应顺流涡激振动两个不稳定区的涡脱落模式相互独立,因此允许对应于不同不稳定区的两个模态能量输入区相互叠加。运用建立的涡激振动预报模型对HanØtangen试验模型进行分析,并与试验结果的位移均方根和主要控制模态进行了比较,结果均吻合较好。采用S-N方法,对顺流涡激振动诱发的深海立管疲劳损伤进行分析,研究了能量比截断值、顶端张紧力和流速分布对疲劳损伤的影响,得到一些有意义的结论。

Abstract

Using the in-line (IL) forced oscillation test data of rigid cylinder, an IL vortex induced vibration (VIV) prediction program for deepwater riser is constructed. The program takes into account the effect of cross-flow (CF) vibration on the IL vibration by introducing IL excitation amplification factor. Generally, there may be some overlap regions in the power-in zone associated with different modes. Under the assumption that the shedding vortex modes associated with different instability region are mutually independent, a method is applied to handle with the overlap regions. The HanØtangen test riser is predicted using the present model, the obtained displacement RMS and the main induced modes matching well with the test data. In order to broad understanding for the IL induced fatigue, fatigue damage analyses are carried out for a deepwater riser by use of S-N approach. Based on these, the effect of power ratio cut-off value, top tension and current profile on the fatigue damage are discussed, and some useful conclusions are obtained.

关键词

顺流涡激振动 / 能量输入叠加区域 / 流体力放大因子 / 疲劳损伤

Key words

in-line vortex induced vibration / the overlapped power-in region / hydrodynamic amplification factor / fatigue damage.

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导出引用
王坤鹏;薛鸿祥;唐文勇. 线性剪切流中深海立管顺流涡激振动响应及疲劳损伤研究[J]. 振动与冲击, 2013, 32(19): 1-6
Wang Kun-peng;Xue Hong-xiang;Tang Wen-yong. In-Line VIV Induced Fatigue Damage of Deepwater Riser in Linearly Sheared Flow[J]. Journal of Vibration and Shock, 2013, 32(19): 1-6

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