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Reliability of Very Large Crude Carrier and Single Anchor Leg Mooring Buoy Mooring System During Squall Event

机译:灾害事件期间非常大的粗载体和单锚腿系泊浮标系泊系统的可靠性

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Mooring systems are integral and sophisticated components of offshore terminals, which are vital elements of the hydrocarbon supply chain. The significant risks to asset integrity and personnel safety associated with compromised mooring systems makes it of paramount importance to evaluate their reliability in multiple scenarios. Because much larger hawser forces occur during sudden changes of wind direction than during steady-state storm conditions, fully-coupled hydrodynamic analyses and simulations were conducted for a 420,000 DWT tanker connected to a single anchor leg mooring (SALM) buoy when subjected to a sudden squall event. The global performance of the SALM and tanker coupled model was evaluated based on consistent analysis of extremes while solving the equations of motion for a system of rigid bodies, each oscillating in six-degrees-of-freedom (DOF) in time domain. The dynamic model conveniently and consistently calculated and documented vessel responses for motion and mooring tension under the environmental conditions specified in each loadcase. A range of wind, wave, and current headings were analyzed to capture the most onerous design conditions for the tanker; and the maximum vessel motions, and mooring line tensions were determined. The analyses were carried out for the vessel in its loaded and ballasted conditions, as well as for two water depths.Results showed that in winds over 50 knots, weathervaning of the tanker to the position of least resistance produced mooring and motion responses exceeding the safe working envelope, while break-out due to tautening of the bow's mooring hawsers occurred in winds over 77 knots. Significant buoy overtopping was also observed during the 3-hour time domain simulations. Mitigations to avoid break-outs and maintain a safe-working environment included a constant stern thrust of 50 tonnes throughout the loading/offloading operations, resulting in a 30% reduction of the total bow mooring force.
机译:系泊系统是近海末端的整体和复杂的组件,是烃供应链的重要元素。与受损系泊系统相关的资产完整性和人员安全的重大风险使其成为最重要的重视,以评估它们在多种情况下的可靠性。由于在风向突然变化期间发生的大量较大的HAWSER力而不是在稳态风暴条件下,对于一个420,000dwt载体,对单个锚杆系泊(SALM)浮标进行了完全耦合的流体动力学分析和模拟。当受到突然时罢工事件。基于对极端的一致性分析来评估SALM和油轮耦合模型的全局性能,同时求解刚体系统的运动方程,每个时域中的六度自由度(DOF)振荡。动态模型在每个LockCase中规定的环境条件下方便且始终计算和记录的血管应答,用于运动和系泊张力。分析了一系列风,波浪和现状,以捕捉油轮的最繁重的设计条件;确定最大血管运动和系泊线张力。在其装载和压载条件下进行血管进行分析,以及两个水深。结果显示,在风中超过50节,油轮的风化耐受抵抗的位置,而且超出了安全的系泊工作信封,而由于蝴蝶结的剧情剧烈突然发生了77个结。在3小时的时间域模拟期间也观察到显着的浮标泛价。缓解和维持安全工作环境的缓解包括在装载/卸载操作中恒定的船尾推力,导致总弓系泊力减少30%。

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