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VIV RESPONSE OF A SUBSEA JUMPER IN UNIFORM CURRENT

机译:均匀电流下跳膜的活体反应

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摘要

Subsea jumpers are susceptible to in-line and/or cross-flow vortex induced vibration (VIV) fatigue damage due to sea bottom currents. However, there is no proven industry standard design analysis methodology currently available specifically for assessing subsea jumper VIV response. In 2012, ExxonMobil conducted a jumper VIV model test to assess the validity of potential jumper VIV prediction approaches. A towing test rig was used to expose a small scale jumper model to flow conditions simulating uniform bottom currents. The jumper model was instrumented to acquire acceleration, bending strain and end connection load data. Several accelerometers and strain gauges were installed to enable reconstruction of static and dynamic deformations and bending deflections along the jumper model. Towing tests at different orientations and tow speeds were performed on both a bare pipe model and a straked pipe model. The data were analyzed to examine the frequencies and amplitudes of the jumper vibration. The data from these experiments provide a benchmark for validating jumper VIV prediction approaches. In this paper, the model test program is presented including model testing philosophy, jumper design and fabrication, and high level model test results.
机译:海底跳线容易受到海底洋流的影响,从而导致直线和/或横流涡激振动(VIV)疲劳损坏。但是,目前没有经过验证的行业标准设计分析方法可用于评估海底跳线VIV响应。 2012年,埃克森美孚(ExxonMobil)进行了跳线VIV模型测试,以评估潜在的跳线VIV预测方法的有效性。使用拖曳试验台将小型跳线模型暴露在模拟均匀底部电流的流动条件下。使用跳线模型来获取加速度,弯曲应变和端部连接载荷数据。安装了多个加速度计和应变仪,以重建沿跳线模型的静态和动态变形以及弯曲变形。在裸管模型和长管模型上都进行了不同方向和牵引速度的牵引测试。分析数据以检查跳线振动的频率和幅度。这些实验的数据为验证跳线VIV预测方法提供了基准。本文提出了模型测试程序,包括模型测试原理,跳线设计和制造以及高级模型测试结果。

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