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OVERCOMING INSTALLATION CHALLENGES TO WELLHEAD AND CONDUCTOR FATIGUE

机译:克服井口和导管疲劳的安装挑战

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Subsea wells are typically drilled and completed using marine risers with subsea BOP stacks deployed from mobile drilling units. Wave and current induced riser motions are transferred to the wellhead, conductor and casing system which can then cause fatigue issues at the critical connectors and welds. In recent years, the risk of fatigue failure has increased due to the use of 5th and 6th generation rigs with larger BOP stacks, and longer well drilling and completion durations. During the design stage, the fatigue performance of the wellhead, conductor and surface casing is often overlooked. During well construction, variations from design can occur in terms of wellhead stickup, wellhead lockdown and cement levels, both around the conductor and in the annulus between the conductor and surface casing. This paper describes analysis results showing the effect of these variations on the fatigue performance of the wellhead, conductor and surface casing. The recommended analysis load case matrix to account for these uncertainties is also presented, together with the need for as-installed assessments. Recommendations on fatigue resistant designs with equipment configuration and specification options capable of meeting these challenges are presented. Wellhead monitoring and fatigue tracking strategies that can be implemented during drilling and workover operations to address these potential concerns and manage the risk are also discussed.
机译:通常使用具有从移动钻井单元部署的海底防喷器堆栈的海上立管来钻探和完井海底井。波浪和电流引起的立管运动被传递到井口,导体和套管系统,这会在关键的连接器和焊缝处引起疲劳问题。近年来,由于使用具有更大BOP堆栈的第5代和第6代钻机,以及更长的钻井和完井时间,疲劳失效的风险有所增加。在设计阶段,经常忽略井口,导管和地面套管的疲劳性能。在井的施工过程中,在导体周围以及在导体与地面套管之间的环空中,井口粘滞,井口锁定和水泥水位可能会导致设计方面的变化。本文介绍了分析结果,这些结果显示了这些变化对井口,导管和地面套管的疲劳性能的影响。还介绍了建议的分析工况矩阵以解决这些不确定性,以及对安装评估的需求。提出了关于抗疲劳设计的建议,其中包括能够应对这些挑战的设备配置和规格选项。还讨论了可在钻井和修井作业期间实施的井口监测和疲劳跟踪策略,以解决这些潜在问题并管理风险。

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