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Wave Drift Forces on Three Barges Arranged Side by Side in Floatover Installation

机译:浮桥安装中三个并排布置的驳船上的波浪漂移力

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Floatover is a new method for installing integrated topside of a spar platform. It has several obvious advantages such as less time and cost compared with derrick lifting. In general, the floatover installation consists of three procedures: firstly a single barge is used for long-distance transportation of the topside in order to get good stability; secondly two barges take place of the single barge for floatover installation near the operating site; finally the topside is transferred from the two barges to the spar hull and the installation is completed. Between the first and second procedures, the case occurs that the single transportation barge is sided left and right by two floatover barges in the second procedure with close proximity. This case is concerned by many designers and operators for the security problem brought by possible large relative motions and forces of the three barges in side by side configuration. The hydrodynamics of side-by-side barges are much more complex than that of a single barge in waves. In numerical simulation, it is a challenge to consider all effects including the hydrodynamic interactions, the shielding effects, the viscous effects and the wave resonance effect which has been observed in the gaps between the barges and has a significant impact on wave drift forces. In this paper, motion responses and wave drift forces were calculated in frequency domain for both the multi-body system and the single body. Far-field, middle-field and near-field method were all carried out to calculate wave drift forces. Numerical analysis was executed using potential flow code WAMIT. Corresponding model tests were also performed in the Deepwater Offshore Basin in Shanghai Jiao Tong University. Comparison between numerical and experimental results shows that numerical results agree well with the experiment and that middle-field method has better convergence than near-field method. The comparison between the multi-body system and single body shows that the hydrodynamic interactions (including wave shielding effect and Helmholtz resonance of water in the gaps) are remarkable and motion responses in the multi-body system are larger than single barge at some frequencies.
机译:Floatover是用于安装spar平台的集成顶侧的新方法。与井架提升相比,它具有几个明显的优势,例如,时间和成本更少。通常,浮桥安装包括三个步骤:首先,使用一艘驳船进行顶面的长距离运输,以获得良好的稳定性;其次,将两个驳船替换为单个驳船,以便在作业现场附近安装浮桥。最终,将顶部从两个驳船转移到翼梁船体,并完成安装。在第一程序和第二程序之间,发生的情况是,单个运输驳船在第二程序中被两个浮置驳船左右靠得很近。许多设计者和操作者担心这种情况,这是由于并排配置的三个驳船可能会有较大的相对运动和作用力而带来的安全性问题。并排驳船的水动力比波浪中单个驳船的水动力要复杂得多。在数值模拟中,要考虑所有效应,包括流体动力相互作用,屏蔽效应,粘性效应和波共振效应,这是在驳船之间的间隙中观察到的,并且对波漂移力有重大影响,这是一个挑战。在本文中,在多域系统和单个系统中,都在频域中计算了运动响应和波漂移力。分别采用远场,中场和近场方法来计算波动力。使用潜在流程代码WAMIT执行数值分析。在上海交通大学的深水近海盆地也进行了相应的模型试验。数值结果与实验结果的比较表明,数值结果与实验结果吻合良好,并且中场方法比近场方法具有更好的收敛性。多体系统与单体系统的比较表明,在某些频率下,流体动力相互作用(包括波屏蔽效应和间隙中水的亥姆霍兹共振)是显着的,并且多体系统中的运动响应大于单驳船。

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