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剪切外流与内流共同作用下的海洋钢悬链线立管振动分析

Vibration analysis of marine steel catenary risers under the combined action of external shear flows and internal flows

  • 摘要: 为了深入分析钢悬链线立管的振动特性,基于Van Der Pol尾流振子模型,该文研究了海洋钢悬链线立管在对数剪切外流和内流共同作用下的振动规律。结果表明:立管振动表现出驻波和行波组合的特性,随内流流速的增加,由驻波主导逐渐转化为行波主导。随来流剖面剪切程度增加,立管振动均方根位移的最大值逐渐减小。而随内流速度的增加,均方根位移的最大值变化与行波传播方向发生转变有关。立管的振动响应呈现出明显的多频特征,且随来流剪切程度的增加,立管振动主频不断升高。但相同的来流剖面下,随着内流流速的增加,振动位移的主导频率反而逐渐减小。立管的振动为多模态共同参与的结果,各模态之间存在竞争关系,振动过程中,振动模态存在空间上竞争与时间上切换的特征。研究结果对钢悬链线立管后期的疲劳预测具有重要的参考意义。

     

    Abstract: To further investigate the vibration response characteristics of steel catenary risers, this study employs the Van Der Pol wake oscillator model to analyze the vibration response characteristics of a marine steel catenary riser subjected to both logarithmic shear external flows and internal flows. The results indicate that the vibration of the riser exhibits a combination of standing and traveling waves. With increasing internal flow velocity, the response shifts from being dominated by standing waves to traveling waves. As the shear intensity of the external flow profile increases, the maximum root mean square displacement of the riser vibration gradually decreases. The variation in the maximum root mean square change displacement with internal flow velocity is related to the change in traveling wave propagation direction. The vibration response of the riser exhibits obvious multi-frequency characteristics, and as the external flow shear degree intensifies, the main vibration frequency of the riser continuously increases. However, under the same external flow profile, as the internal flow velocity increases, the dominant vibration frequency gradually decreases. The vibration involves multiple competing modes, and there is a competitive relationship between each mode, which exhibits spatial competition and temporal switching during the dynamic response. The research results provide valuable insights for the subsequent fatigue prediction of steel catenary risers.

     

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