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PULL-DOWN ANALYSIS OF JACK-UP RIGS

机译:顶升钻机的下拉分析

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During demobilization of jack-up rigs, when the rig's legs are stuck in the seabed due to resistance from the surrounding soil, the hull is lowered more than the neutrally buoyant condition to draw the legs up. This operation of pulling down the hull to provide net upward buoyancy force to extricate the legs is called 'pull-down' ; operation. The hull, being partly underwater, attracts considerable wave forces even during relatively calm weather. Due to the changing support condition at bottom of the leg, while it is being extricated, the natural period of the system changes continuously. The dynamic amplification may be high when the wave periods are close to the natural periods of the structure. This makes it imperative to consider dynamic analyses of the rig. A unique but simplified 'pull-down' analysis procedure is developed in this study considering the harmonic wave forces, added mass of the hull in water, boundary condition of the legs in soil, and distributed buoyancy springs under the hull. Wave excitation loads and added mass for the hull are computed using diffraction-radiation analysis of the hull in water. A number of steady state dynamic analyses of the complete jack-up rig structural model have been performed for a range of wave periods, water depths, and drafts of the hull. Three different bottom boundary condition scenarios have been considered - three legs supported, one leg free but two legs still stuck in soil, and two legs free but one leg still stuck. The static and the dynamic load cases are combined to get the maximum effects on the stresses of the leg members. Using this procedure the allowable safe wave heights are predicted for a range of wave periods for a particular water depth, and draft of the hull. Results are presented for one class of jack up rig. The results show that the leg stresses are strongly dependent on the wave periods, indicating the importance of including dynamic effects in the pull-down analysis.
机译:在自升式钻机的复员过程中,当钻机的支腿由于周围土壤的阻力而卡在海床中时,船体下降得比中性浮力要高得多,从而使支腿向上拉。拉下船体以提供向上的净浮力以使腿解脱的这种操作称为“拉下”;操作。即使在相对平静的天气中,部分处于水下的船体也会吸引相当大的波浪力。由于腿部底部支撑状态的变化,在放松时,系统的自然周期会连续变化。当波浪周期接近结构的自然周期时,动态放大可能会很高。因此,必须考虑对钻机进行动态分析。在此研究中,开发了一种独特但简化的“下拉”分析程序,其中考虑了谐波力,水中船体的附加质量,土壤中支腿的边界条件以及船体下方的分布浮力弹簧。使用船体在水中的衍射辐射分析来计算船体的波浪激发载荷和附加质量。在一系列波浪周期,水深和船体吃水深度范围内,已经对完整的自升式钻机结构模型进行了稳态动态分析。已经考虑了三种不同的底部边界条件方案-支撑三只脚,一只脚自由,但是两只脚仍然卡在土壤中,两只脚自由,但是一只脚仍然卡住。将静态和动态载荷工况组合在一起,以最大程度地影响腿部构件的应力。使用此程序,可以针对特定水深和船体吃水量预测一系列波浪周期的允许安全波浪高度。给出了一类自升式钻机的结果。结果表明,腿部应力与波浪周期密切相关,这表明在下拉分析中包括动力效应的重要性。

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