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WELLHEAD FATIGUE ANALYSIS METHOD: BENEFITS OF A STRUCTURAL RELIABILITY ANALYSIS APPROACH

机译:井口疲劳分析方法:结构可靠度分析方法的优点

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Structural Reliability Analysis (SRA) methods have been applied to marine and offshore structures for decades. SRA has proven useful in life extension exercises and inspection planning of existing offshore structures. It is also a useful tool in code development, where the reliability level provided by the code is calibrated to a target failure probability obtained by SRA. This applies both to extreme load situations and also to a structural system under the influence of a time dependent degradation process such as fatigue.The current analysis methods suggested for service life estimation of subsea wells are deterministic, and these analyses are associated with high sensitivity to variations in input parameters. Thus sensitivity screening is often recommended for certain input parameters, and the worst case is then typically used as a basis for the analysis. The associated level of conservatism embedded in results from a deterministic analysis is not quantified, and it is therefore difficult to know and to justify if unnecessary conservatism can be removed from the calculations.By applying SRA to a wellhead fatigue analysis, the input parameters are accounted for with their associated uncertainty given by probability distributions. Analysis results can be generated by use of Monte-Carlo simulations or FORM/SORM (first/second order reliability methods), accounting for the full scatter of system relations and input variations. The level of conservatism can then be quantified and evaluated versus an acceptable probability of failure.This article presents results from a SRA of a fictitious but still realistic well model, including the main assumptions that were made, and discusses how SRA can be applied to a wellhead fatigue analysis. Global load analyses and local stress calculations were carried out prior to the SRA, and a response surface technique was used to interpolate on these results. This analysis has been limited to two hotspots located in each of the two main load bearing members of the wellhead system. The SRA provides a probability of failure estimate that may be used to give better decision support in the event of life extension of existing subsea wells. In addition, a relative uncertainty ranking of input variables provides insight into the problem and knowledge about where risk reducing efforts should be made to reduce the uncertainty.It should be noted that most attention has been given to the method development, and that more comprehensive analysis work and assessment of specific input is needed in a real case.
机译:结构可靠性分析(SRA)方法已应用于海洋和近海结构数十年。已证明SRA在延长寿命练习和现有海上结构的检查计划中很有用。它也是代码开发中的有用工具,其中将代码提供的可靠性级别校准为SRA获得的目标故障概率。这不仅适用于极端载荷情况,还适用于受时间影响的退化过程(例如疲劳)影响下的结构系统。目前建议用于海底油井使用寿命估算的分析方法是确定性的,并且这些分析与高灵敏度相关输入参数的变化。因此,通常建议对某些输入参数进行灵敏度筛选,然后通常将最坏的情况用作分析的基础。确定性分析结果中嵌入的相关保守性水平尚未量化,因此很难知道并证明是否可以从计算中消除不必要的保守性。通过将SRA应用于井口疲劳分析,可以计算出输入参数因为它们的相关不确定性由概率分布给出。可以通过使用蒙特卡洛模拟或FORM / SORM(一阶/二阶可靠性方法)来生成分析结果,从而充分考虑了系统关系和输入变化的分散性。然后,可以量化和评估保守性水平与可接受的故障概率。本文介绍了一个虚拟但仍很现实的油井模型的SRA结果,包括所做的主要假设,并讨论了如何将SRA应用于油井。井口疲劳分析。在SRA之前进行了全局载荷分析和局部应力计算,并使用响应面技术对这些结果进行插值。该分析仅限于位于井口系统的两个主要承载构件中的每个中的两个热点。 SRA提供了故障概率估计,可在现有海底井寿命延长的情况下提供更好的决策支持。此外,输入变量的相对不确定性等级可提供对问题的了解,以及有关应在何处进行降低风险的工作以减少不确定性的知识。应注意的是,对方法的开发给予了最大的关注,并且进行了更全面的分析在实际情况下,需要进行工作并评估特定的输入。

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