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Application of numerical simulation of submersed rock-berm structure under anchor collision for structural health monitoring of submarine power cables

机译:锚固碰撞下潜岩层结构数值模拟在海底电缆结构健康监测中的应用

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Submersed rock-berm structures are frequently used for protection of underwater lifelines such as pipelines and power cables. During the service life, the rock-berm structure can experience several accidental loads such as anchor collision. The consequences can be severe with a certain level of frequency; hence, the structural responses should be carefully understood for implementing a proper structural health monitoring method. However, no study has been made to quantify the structural responses because it is hard to deal with the individual behavior of each rock. Therefore, this study presents a collision analysis of the submersed rock-berm structure using a fmite element software package by facilitating the smoothed-particle hydrodynamics (SPH) method. The analysis results were compared with those obtained from the Lagrange method. Moreover, two types of anchors (stock anchor and stockless anchor), three collision points and two different drop velocities (terminal velocity of each anchor and 5 m/s) were selected to investigate the changes in the responses. Finally, the effect of these parameters (analysis method, anchor type, collision point and drop velocity) on the analysis results was studied. Accordingly, the effectiveness of the SPH method is verified, a safe rock-berm height (over 1 m) is proposed, and a gauge point (0.5 m above the seabed) is suggested for a structural health monitoring implementation.
机译:浸没的岩层结构通常用于保护水下生命线,例如管道和电缆。在使用寿命期间,岩层结构可能会遇到多种意外载荷,例如锚固碰撞。在一定水平的频率下,后果可能很严重;因此,应仔细理解结构响应,以实施适当的结构健康监测方法。但是,由于很难处理每个岩石的个体行为,因此尚未进行量化结构响应的研究。因此,本研究通过简化粒子流体动力学(SPH)方法,使用有限元软件包对水下岩层结构进行了碰撞分析。将分析结果与通过Lagrange方法获得的结果进行比较。此外,选择了两种类型的锚(股票锚和无股票锚),三个碰撞点和两个不同的下降速度(每个锚的最终速度和5 m / s)来研究响应的变化。最后,研究了这些参数(分析方法,锚点类型,碰撞点和跌落速度)对分析结果的影响。因此,验证了SPH方法的有效性,提出了安全的岩层高度(超过1 m),并建议了一个规范点(海床上方0.5 m)来进行结构健康监测。

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