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INVESTIGATION ON REASONS FOR POSSIBLE DIFFERENCE BETWEEN VIM RESPONSE IN THE FIELD AND IN MODEL TESTS

机译:现场和模型测试中Vim响应可能存在差异的原因的调查

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Floating offshore structures, such as production semi-submersibles and spars, can exhibit significant in-line and transverse oscillatory motions under current conditions. When caused by vortex shedding from the floater, such motions are generally called Vortex-Induced Motions (VIM). For semi-submersibles these motions could have a strong impact on the fatigue life of mooring and riser systems. Some field development studies indicate that the VIM induced fatigue damage for larger diameter Steel Catenary Risers (SCRs) can have a magnitude equal to or larger than the wave-induced fatigue damage. The VIM phenomenon for multi-column floaters is characterized by complex interactions between the flow and the motions of the floater. Presently, model tests are the preferred method to predict the VIM response of a multi-column floater. However, several studies indicate that the observed VIM response in the field is less than what is observed in model test campaigns: typical model test results are very conservative. Using such test results in the development of mooring and riser design can easily result in very conservative designs which can have a significant impact on mooring and riser cost, or even affect SCR selection and/or feasibility. The primary objective of the VIM JIP was to increase the physical insight into the VIM phenomenon. This knowledge is then used to address possible areas that could explain the differences between the results from model tests and field observations. To address these objectives, the JIP focused on model testing and CFD studies. A key segment of the JIP was the use of identical semi-submersible hull geometries for the numerical and experimental studies thereby facilitating the interpretation of the various response comparisons. The JIP identified that a CFD model, at model-scale Reynolds number, can reasonably well reproduce the VIM response observed in model tests. However, to have confidence in the CFD results extensive numerical verification studies have to be carried out. The effect of external damping was investigated in model tests and in CFD calculations. Both the numerical and experimental results show that external damping significantly reduces the VIM response. Comparisons between CFD results at model- and full-scale Reynolds number indicate that Froude scaling is applicable, with minor scale effects identified on the amplitudes of the VIM motions. Changing the mass ratio of the floater has a small influence on the VIM response. Experimentally it was found that VIM response under inline or transverse waves is slightly smaller than without the presence of waves and is wave heading and wave height dependent. The presence of waves does not explain the observed differences between model test results and field observations. The effect of unsteady current on the VIM response is minimal. Based on the results from the JIP it is concluded that increased external damping reduces the VIM response. The questions that remain are if the increased external damping is actually present in full-scale conditions and if the mooring and riser systems provide the required damping to reduce the VIM amplitudes.
机译:在当前条件下,浮式海上结构(例如生产型半潜式潜水器和翼梁)可能会显示出明显的轴向和横向振动。当由浮子的涡流脱落引起时,此类运动通常称为涡流诱导运动(VIM)。对于半潜式潜水器,这些运动可能会对系泊系统和立管系统的疲劳寿命产生重大影响。一些现场开发研究表明,VIM引起的大直径钢悬链冒口(SCR)的疲劳损伤的大小可能等于或大于波浪引起的疲劳损伤。多柱浮子的VIM现象的特征是浮子的流动和运动之间存在复杂的相互作用。目前,模型测试是预测多列浮子的VIM响应的首选方法。但是,一些研究表明,在现场观察到的VIM响应小于模型测试活动中观察到的响应:典型的模型测试结果非常保守。在系泊和立管设计的开发中使用此类测试结果很容易导致设计非常保守,这可能对系泊和立管成本产生重大影响,甚至影响SCR的选择和/或可行性。 VIM JIP的主要目标是增加对VIM现象的物理了解。然后,将这些知识用于解决可能解释模型测试结果与现场观察结果之间差异的可能领域。为了实现这些目标,JIP专注于模型测试和CFD研究。 JIP的一个关键部分是在数值和实验研究中使用相同的半潜式船体几何形状,从而简化了各种响应比较的解释。 JIP确认,在模型规模的雷诺数下,CFD模型可以合理地重现模型测试中观察到的VIM响应。但是,要对CFD结果有信心,必须进行广泛的数值验证研究。在模型测试和CFD计算中研究了外部阻尼的影响。数值和实验结果均表明,外部阻尼显着降低了VIM响应。在模型雷诺数和满刻度雷诺数下的CFD结果之间的比较表明,可以使用Froude缩放,并且在VIM运动的振幅上可以识别出较小的缩放效果。更改浮子的质量比对VIM响应的影响很小。通过实验发现,在直列波或横波下,VIM响应要比不存在波时的VIM响应小一些,并且取决于波向和波高。波浪的存在不能解释模型测试结果与现场观测结果之间的差异。不稳定电流对VIM响应的影响最小。根据JIP的结果,可以得出结论,增加外部阻尼会降低VIM响应。剩下的问题是,在满量程条件下是否确实存在增加的外部阻尼,以及系泊系统和立管系统是否提供了所需的阻尼以减小VIM幅度。

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