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Application of analytical model in the prediction of dynamic responses and fatigue damage of flexible risers: Part Ⅱ-Dynamic analysis of flexible risers in large-scale domain using a direct moment correction method

机译:分析模型在柔性立管动力响应预测中的应用:使用直接时刻校正方法的大型域柔性立管的第一动态分析

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In recent years, the dynamic responses of flexible risers have been the focus of many researchers. Most flexible risers undergo a substantial level of irregular motion from environmental loadings, which involves a continuous slip of helical wires. The slip of helical wires especially leads to a hysteretic effect by reducing the bending stiffness, making it hard to predict the dynamic responses of flexible risers. The current study, as an extension to Part I, presents a new large-scale dynamic analysis method for flexible risers. The suggested method creates a large-scale model for the dynamic analysis that considers a geometric and bending nonlinearity of flexible risers. The kinematics of each beam element is formulated based on a Green-Lagrangian strain and the interaction with the seabed, providing a realistic analysis of flexible risers. In particular, the current study introduces a direct moment correction method that modifies the internal force vector using an improved analytical model. The improved analytical model is assigned at each node of the large-scale model and estimates an accurate bending hysteresis curve considering the effect of shear deformation and varying tension. The suggested method corrects the bending moment and shear force of all beam elements based on the bending hysteresis curves obtained from the improved analytical model, by which a complex bending behavior of flexible risers is reflected in a large-scale domain. As a result, this study achieves a more accurate prediction of the dynamic responses and fatigue damage of flexible risers. A new dynamic analysis program, called OPFLEX, is developed herein based on the suggested analysis method. Using the developed program, the current study conducts several numerical investigations to identify the effect of the shear deformation and varying tension. Consequently, it is confirmed that the shear deformation of internal layers reduces the fatigue damage of helical wires by delaying the increase of internal stress. It is also identified that the effect of varying tension deteriorates the fatigue life of flexible risers through a continuous change of contact pressure during bending.
机译:近年来,灵活立管的动态反应是许多研究人员的重点。大多数灵活的立管从环境载荷进行大量的不规则运动,这涉及连续滑动螺旋线。通过降低弯曲刚度,螺旋线的滑动尤其导致滞后效果,使得难以预测柔性立管的动态反应。目前的研究作为第I部分的延伸,为灵活提升管提供了一种新的大规模动态分析方法。建议的方法为动态分析创造了一个大规模模型,其考虑了柔性立管的几何和弯曲非线性。每个梁元件的运动学基于绿拉格朗日菌株和与海底的相互作用配制,提供了对柔性立管的实际分析。特别地,目前的研究介绍了一种直接的时刻校正方法,其使用改进的分析模型改变内部力载体。考虑剪切变形和变化张力的效果,将改进的分析模型分配在大规模模型的每个节点处,并估计准确的弯曲滞后曲线。建议的方法校正基于从改进的分析模型获得的弯曲磁滞曲线的所有光束元件的弯矩和剪切力,通过该弯曲磁滞曲线,通过该沟通率的复杂弯曲行为在大规模域中反映。结果,本研究能够更准确地预测灵活提升管的动态响应和疲劳损坏。一个新的动态分析程序,称为OPFlex,在此基于所提出的分析方法开发。使用开发的程序,目前的研究对剪切变形和变化张力的影响进行了几种数值调查。因此,确认内层的剪切变形通过延迟内部应力的增加来降低螺旋线的疲劳损坏。还认为随着弯曲期间的接触压力的连续变化,变化张力的效果使柔性立管的疲劳寿命劣化。

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